, d e i p o c , d e c u d o r p e r e b t o n l l i w y e h t t a h t t n e m e e r g a s s e r p x e s ’ r e w . o e r r s o u b d e e h t d n n t e o n d i e e n h a t r o o l f y l r e r e w e o r m r o e r b a e y h e t h o T t r . e D d E n I e l M I e L h t L I y b O R n e A i v S g S t E n f e o s y n t o r c e p n e o r t t p i r e w h t a y e r b a t d e a t t i m r m o r f s e p i h t y a n w o n d e e t v i i m g i l s e l i h a t t e n d i t d p n e a c n x g e i , s d e e d s , u g r n o i w d e a r t i d b i e h h x T e
CATALYST LOADING & UNLOADING PROCEDURE DESULPHURISER REACTOR (R 1A/B) HYDROGENATOR REACTOR (R 201) HT SHIFT REACTOR (R 200) STEAM REFORMER (H001)
RELOCATED HYDROGEN MANUFACTURING UNIT UNIT No - 052
DOCUMENT NO.
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(REFER DOCUMENT NUMBERING SYSTEM FOR DETAILS) DATE OF ISSUE: I SSUE: 02.05.2009
REFINERY EXPANSION OPERATIONS ESSAR OIL REFINERY, VADINAR
PREPARED BY D N JADEJA
CHECKED BY H UPADHYAY
APPROVED BY S MATH
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r o d e t i b i h x e , d e i p o c , d e c u d o r p e r e b t o n l l i w y e h t t a h t t n e m e e r g a s s e r p x e s ' r e w o r r o b e h t n o d . e e n s a u o l d y e l d e r n e t e m n i e r e a h t y r e o h f T r e . . . w D o r E r o T I b M e I L h t L o I t O r e R d A n e S l S e E h f t o y y b t r n e e v p i o r g t p n e e h t s n e r o a c t n e a t t i m r r o w f s a i y h t b n d o e t n t i e m v i r g e s p l i y a a t e w d d e d t n i a m i n l g e i s h t e n d i , t g p n e i w c x a r e , d d e e h s T u
DATE
DETAILS OF REVISION
02-05-2009 02-05-200 9
FOR ISSUE
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TITLE OF DOCUMENT ESSAR ESSAR OIL LIM ITED REFINERY REFINERY EXPAN SION OPERATI OPERATI ONS
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DESULPHURISER REACTOR (R 1A/B)
INDEX PAGE NO 4
CLAUSE DESCRIPTION 1.0
CATALYST LOADING PROCEDURE 1.1-MECHANICAL DRAWING & NOZZLE SCHEDULE
4
1.2- CATALYST PHYSICAL & CHEMICAL ROPERTIES
5
1.3-PRELIMINARY 1.3-PRELIMI NARY CHECKING
6
1.4-LOADING PROCEDURE
7
1.5-CATALYST LOADING PRECAUTIONS
8
1.6-CHECK 1.6-CHECK LIST FOR CATALYST LOADING
2.0
9-11
1.7-FINAL LEAK TEST
12
CATALYST UNLOADING PROCEDURE
13
2.1-INTRODUCTION
13
2.2-SAFETY
13
2.3-UNLOADING PROCEDURE
14
3.0
CATALYST LOADING EQUIPMENT AND SCOPE
15-18
4.0
MATERIAL SAFETY DATA SHEET FOR CATALYST
19-22
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1.0 Catalyst Loading Procedure:1.1 Mechanical Drawing & Nozzle Details for R-201:-
Mark A B C D M V H S
Qty 1 1 1 1 1 4 1 1
Size 4” 4” 2” 20” 20” 4” 10” 12”
Sch. 120 120 160 STD WT XHVY 40 XHVY STD.WT
Rating 300# 300# 300# 300# 300# -
TITLE OF DOCUMENT ESSAR OIL LIM ITED REFINERY EXPAN SION OPERATI ONS
Facing R.F. R.F. R.F. R.F. R.F. -
Type W.N. W.N. W.N. W.N. W.N. -
Remarks GAS INLET GAS OUTLET DRAIN ACCESS HOLE MANHOLE VENT HOLE HAND HOLE SKIRT SLEEVE FOR DRAIN
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Mechanical Drawing & Nozzle Schedule for R-1B:-
Mark A B C D M V H S
Qty 1 1 1 1 1 4 1 1
Size 4” 4” 2” 20” 20” 4” 10” 12”
Sch. 120 120 160 STD WT XHVY 40 XHVY STD.WT
Rating 300# 300# 300# 300# 300# -
TITLE OF DOCUMENT ESSAR ESSAR OIL LIM ITED REFINERY REFINERY EXPAN SION OPERATI OPERATI ONS
Facing R.F. R.F. R.F. R.F. R.F. -
Type W.N. W.N. W.N. W.N. W.N. W.N. -
Remarks GAS INLET GAS OUTLET DRAIN ACCESS HOLE MANHOLE VENT HOLE HAND HOLE SKIRT SLEEVE FOR DRAIN
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1.2 Catalyst Physical & Chemical Properties:-
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Alumina Ball Specifications:-
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1.3
Preliminary Checking:Plant has been cleaned and reactor is inspected. Reactors internal are uninstalled and reactor is isolated from plants with blind at the inlet and outlet nozzles. Insure that catalyst containers/ drums should always be handled carefully, in order to avoid breakage of the particles. Catalyst must not be exposed to moisture and air; it has to be stored in tightly closed containers under roof. During loading operation, the catalyst and screening facilities have to be protected against rain. Dust and broken particles have to be removed following the procedure for the individual catalyst. The catalyst can be charged either by using basket or by means of loading chute. Immediately after catalyst loading the reactor has to be closed and purged with nitrogen to protect the catalyst against water, air, dirt and foreign matter. Reactor must be kept under slight nitrogen pressure until it is ready to be taken into service. A complete record of the amount of loaded catalyst has to be kept, and 01 kg sample of each catalyst is to be kept after loading. Walking planks or “snow shoes” must be used inside the reactor to avoid crushing of the catalyst particle. Personal involved with handling of catalyst must be familiar with the safety data sheets for the relevant catalyst. Personal involved with handling of catalyst must wear suitable personal protective equipments. Before entering inside the vessel % of oxygen should be >19.8% inside the vessel. Check the quality of alumina/ceramic balls if they are broken, they must be stored and fines must be removed. Ensure that all necessary safety and PPE should be available as well as communication system
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1.4 Catalyst Loading:-
The catalyst is loaded after blowing, cleaning and drying of upstream and downstream piping. Before loading of catalyst man hole should be opened first.. Inspect the interior of each reactor, to ensure that the vessel is clean, dry and free from loose scale and debris. It is essential that the charging level is clearly defines, so as to avoid under-or overfilling. It should be checked that the thermo wells are installed as specified (including gaskets) and that the catalyst retaining plate and the blind flange on the unloading handhold are installed. All measurements should be made from a fixed reference point at the top of the vessel although guidance marks may be made on the vessel internal by means of blackboard chalk. For charging heights and weights see the corresponding catalyst data sheets Weight of catalyst, vendor batch number and any other relevant catalyst data should be recorded. Make sure that the required amount of catalyst and support is loaded
Install a large funnel 18 to 24 inches in diameter at the top, tapering down to four to six inches at the bottom, in the manhole above the bed. To the bottom of the funnel, attach a canvas sock or hose arrangement of sufficient length to reach the bottom of the reactor.
Hoist catalyst or support balls up in buckets and pour into the funnel. As the level builds up in the vessel, raise the funnel and withdraw the chute so that the catalyst/support will flow out.
Keep the chute full all times so catalyst does not drop more than about 12 inches.
Level the catalyst or catalyst support bed every 3 feet of height increase. If it is necessary for a man to enter the vessel during loading, precautions must be taken so that he does not stand directly on the catalyst.
A board must be placed over part of the bed to distribute his weight. After all of the catalyst and catalyst Support balls have been loaded, disconnect the air hose, Close the bottom drain and secure manholes.
Refer to operating and instruction manual supplied by catalyst vendor for detailed procedures.
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1.5 Catalyst Loading Precautions:-
The loading operation should be conducted with reasonable speed; to ensure the catalysts does not pick-up and undue of moisture from the air.
The vessel must be loaded carefully to minimize physical damage to the pellets during loading and to prevent catalysts alteration in normal operation. Careful loading will avoid serious operation problem caused by poor packing of the bed.
The free fall of catalyst should not exceed 500mm to prevent breakage.
The bottom and top screens must be checked.
Larger hopper should be used to move the catalyst from the ground to the filling manhole.
The hopper should be equipped with loading chute of correct diameter and sufficient length.
Personnel handling the catalysts during the loading must wear dust masks.
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1.6 Check List For Catalyst Loading:Sr No
Activity Description
Action By
Preliminary Checking
SI
A
Reactor
1
Check whether the reactor has been isolated. The swing elbow at
PO
FO
M
the outlet should be blinded
2
Open the top manhole by removing the flange connection at the inlet distributor
3
Check whether the oxygen content inside the reactor is above 19.5%, if not aerate the reactor from the outlet flange through an air hose
4
Remove the five concentric support rings together with the baskets
5
Ensure that wooden covers are placed over the baskets
6
Inspect outlet collector & screen on it
7
Check for the proper seal welding of the screen and its fastening on the outlet collector
8
Check for uniform slot openings on the outlet collector
9
After inspecting the plug, close the cover of the pipe tightly and ensure that its slots sit precisely on the grooves in the Pipe.
B
Alumina balls & catalyst
1
There are two types of alumina balls- One of diameter 136mm
2
There are two types of catalyst also: Actisorb C-L2 & Actisorb S2(C7-6)
3
Ensure the availability of all necessary safety & personnel protection equipments like gloves, dust masks, respirators, safety harness as well as means of communication like radios
C
Precaution to be taken while loading
1
Do not roll catalyst drums as it may cause catalyst attrition
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2
Maximum permissible free fall height of the catalyst is 0.5 meter
3
In case of rain stop loading
4
No foreign material like pieces of sleeve, walking boards, tools etc must be left inside the reactor
5
Dust masks should be worn inside the reactor
6
Special loading device checking for availability
7
A stationary hopper should be built on site above the reactor.
8
A slide valve must be fitted to it
9
The hopper legs must be long enough to allow for access into the reactor
10
Canvas sleeves with adequate length of 150 mm diameter
11
A mobile hopper with capacity to hold 3 drums of catalyst
12
A lifting device (crane or a system of winches) to lift the mobile hopper from the ground level
13
Temporary shelters should be erected on top of the reactor and at ground level to protect catalyst from rain
14
A vacuum cleaner should be available to eliminate dust and catalyst fines inside the reactor
15
Device for tooling, lighting, dust masks, respirators, safety harness should be available Sampling bottles for catalyst must be available
D
Loading of the reactor
1
Catalyst sampling
2
Take small amount of catalyst from all the catalyst drums and make two representative samples of minimum 1 kg
3
Transport the 13 mm size alumina balls by the mobile hopper to the top of the reactor
4
Open its slide valve and transfer the contents to the stationary hopper
5
Fill the alumina balls on the collector tray to a height of 3/4"
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6
Rotate the sleeve to uniformly distribute the alumina balls
7
Level this layer using a broom
8
The personnel inside the reactor should stand on a wooden board above the catalyst
9
In a similar fashion transport and fill the 6 mm alumina balls to a height of 1/4" above the previous layer
E
Catalyst loading
1
Load the catalyst inside the reactor by rotating the sleeves
2
Level the catalyst after each meter
3
Retract the sleeve by one meter at this point
4
Now fill this catalyst in this way up to 2.9 meters of the internal height of the reactor
F
Catalyst loading
1
Arrange and fill at ground level this type of catalyst into the mobile hopper
2
Transport and fill the stationary hopper at the top of the reactor
3
Fill the C-L2 catalyst over the previous layer of S2(C7-6)
4
Check if wooden covers are placed over the baskets, If not, cover them
5
Continue loading the catalyst around the baskets to the level Specified.
6
Level the alumina balls
7
Remove the wooden covers of the debris basket
8
Reassure that no tools are left inside the reactor
9
Record the volumes of alumina balls, catalyst loaded, manpower used, time taken for loading
10
Install the inlet distributor at its position
11
Box up the top manhole
12
Remove the blind at the swing elbow flange at the outlet
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1.7 Final Leak Test:After the catalyst loading is completed, the tightness of the reactor has to be ascertained. The reactor is isolated and pressurized with air to the maximum pressure available or compatible with the equipment. The tightness is considered satisfactory when the pressure loss is less than 0.05165kg/cm2/hour, over four consecutive hours. After the leak test the reactor is purged with nitrogen until the oxygen content is 0.2% volume maximum. If for any reason the leak test of the unit as described earlier has not been performed yet, proceed to an overall leak test of the unit, reactor included. After the leak test the reactor is isolated by blinds if start-up is not going to take place immediately and kept under a nitrogen atmosphere.
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2.0 Catalyst Unloading For Desulphuriser Reactor-R 1A/B:-
2.1
Introduction:-
The pressure drop across the catalyst beds will increase over a period of time due to the build up of dust, deterioration of the catalyst, operating mishaps, etc. Eventually the increase in pressure drop will reach a point where the plant must be shut down and the catalyst screened to restore the bed to its normal operating parameters. Screening of the first catalyst layer is required more frequently than the others because any dirt entering the reactor tends to plug this catalyst layer. A crust may also form on the top layer of the first catalyst bed due to operating problems. In this case the pressure drop across the catalyst bed will increase rapidly over a short period of time. Catalyst may need to be removed in order to facilitate repair or inspection of the reactor. This is common in the post and grid type reactors where collapsing of the grid supports may occur. The most common method of removing catalyst from the reactor is by vacuum extraction. Removal by hand can also be done but this is usually restricted to smaller reactors and is more labor intensive. Screening of catalyst is usually done when the reactor has cooled down permitting entry without special protective clothing. Hot entry can be done but requires special procedures and equipment. The following provides a general procedure for the unloading of catalyst from the Desulphuriser Reactor . The user must adapt the following procedures to their specific situation.
2.2 Safety:Catalyst dust is toxic and special safety precautions are required for all personnel involved in the screening operation. Material Safety Data Sheets (MSDS) should be reviewed prior to commencing the operation. Personnel shall wear as a minimum dust respirators, protective goggles, gloves and disposable protective clothing. Externally supplied breathing air is highly recommended for those personnel working in the converter. Standard vessel entry procedures should be followed at all times. minimum: • •
This should include as a
Routine testing of oxygen levels inside the reactor A person stationed outside the reactor man way to monitor the workers inside the vessel. This individual should be equipped with rescue gear and an independent air supply.
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2.3 Unloading Procedure: Plant has been cleaned and reactor has to be inspected.
Reactors internal are uninstalled and reactor is isolated from plants with blind at the inlet and outlet nozzles. Vessel keep under N2 atmosphere till the catalyst oxidized. Vessel is being inspected for any damage before unloading is being started so that remedial measures on operation as well as maintenance side can be planned. During catalyst unloading process, Video camera is to be kept in side the reactor for monitoring internal activity from outside Catalyst unloading job is in inert atmosphere and confined reactor. The risk factors involved are toxicity, Fire explosion, falling, electrocution & suffocation. Hence catalyst unloading job is to be carried out in INERT Atmosphere, only Inert atmosphere certified (OSHA certified) technicians shall be permitted to enter the Reactor with required life support safety appliances The person working in inert atmosphere must have relevant experience of working in inert atmosphere. Stand by person is also required to wear the same safety appliances for emergency call and shall remain present on Reactor top The temperature and oxygen monitoring in the reactor.
Life support system with its components must be as per international safety standard for
working in the inert atmosphere. Start unloading the alumina ball from the top manhole by using a vacuum machine. Keep the unloaded alumina ball in separate drums and screened in order to reuse it. Continue the spent catalysts unloading. Once the alumina ball and catalyst are completely removed, thoroughly clean the catalyst support grids/plate. Clean the bed separation plate located below the catalyst bed as well. Perform an inspection of the reactor and initiate any repairs as required. Carefully check for mechanical damage and areas where gas bypassing can occur Dump the spent catalysts into nitrogen-blanketed metal drums. Unload the bottom layer of alumina balls and store it in a separate drum. Clean inside the reactors for inspection. Catalyst screening operations should be halted if there is a possibility of exposing the catalyst to any form of precipitation (rain, snow, etc.) Catalyst from each bed should be kept separate from each other. Catalyst samples should be taken to be analyzed for activity.
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3.0 Catalyst Loading Equipment:-
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List of Equipment and Tools needed for Catalyst Loading:-
ITEM 1.0 1.1 1.1.1 1.1.2 1.1.3 1.1.4 1.2 1.3 1.4 1.5 1.6 1.7 1.8 1.9 1.1 1.11 1.12 1.13 2.0 2.1 2.1.1 2.2 2.2.1 2.2.2 2.2.3 2.2.4 2.2.5 2.3 2.4 2.5 2.6 2.7 3.0 3.1 3.2 3.3 3.4 3.5 3.6 3.7 3.8 3.9 3.10 3.11 3.12 3.13 3.14 3.15 3.16 3.17 3.18 3.19 3.2
EQUIPMENT OR ACTIVITY GENERAL ITEMS General Utilities:(nearby reactor area) . Air (6-10 bar) . Electricity (220/240v 400/440v) . Water . Nitrogen purge (incl. ground) and blanket 500Nm3 / Hr New Catalyst (in jumbo bags/Drums) New Ceramic Balls, various dia (in drums) Mech. Activities (spading, elbow de/re-tensioning etc.) Exterior lighting at reactor Scaffolding as required Provision drinking water at reactor area Sanitary facilities (showers, toilets) within the plant Drums (and weather protection) for spent catalyst Disposal spent catalyst Fire Fighting (standby personnel & equipment) Final Site Clean Up Pallets MANPOWER: (Day & Night coverage)
Essar Oil Limited
Specialised Staff: Catalyst Technician Ground Support & Logistic Staff: Ground Support Foreman Ground Support Assistants Forklift Driver Truck Driver (drums from/to stores) Crane Driver PPE for all CRIN paid Personnel Air fares Specialised Staff Board & Lodging Specialised Dense Loading Staff Board & Lodging Catalyst Staff Local & in Plant Transport Specialised Staff (ditto) Local & in Plant Transport for Local Staff CATALYST UNLOADING & LOADING (Day & Night) 1No Flatbed Truck (catalyst from/to storage area) 1No Telescopic Crane (capcity as rqd re load & reach) Forklifts (min 2.5T-moving drums at reactor area) *B/A Module (see footnote) Ground Communications Equipment (Walkie Talkies) Reactor Entry Ladder Screening M/c - Multideck SWEECO HP filling compressor BA Bottles Loading socks Mechanical Hand Tools (incl. pneumatic) Hydraulic Bolt Tensioning/Torquing Tools & Procedures Air Hose 3/8in & 3/4in Air Manifolds Chain blocks Reactor internal lighting (24V) c/w transformers Rope Cleaning rags and detergent QA Documentation (i.e. loading logs) Dense Loading Machine x 2 Certified Operators
X
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4.0 Material Safety Data Sheet for Catalyst:-
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HYDROGENATOR REACTOR (R 201)
INDEX CLAUSE 1.0
PAGE NO 28
DESCRIPTION CATALYST LOADING PROCEDURE 1.1-MECHANICAL DRAWING & NOZZLE SCHEDULE 1.2- CATALYST PHYSICAL & CHEMICAL
29
ROPERTIES 1.3-PRELIMINARY CHECKING
30
1.4-LOADING PROCEDURE
31
1.5-CATALYST LOADING PRECAUTIONS
32
1.6-CHECK LIST FOR CATALYST LOADING
2.0
28
33-35
1.7-FINAL LEAK TEST
36
CATALYST UNLOADING PROCEDURE
37
2.1-INTRODUCTION
38
2.2-SAFETY
38
2.3-UNLOADING PROCEDURE
38
3.0
CATALYST LOADING EQUIPMENT AND SCOPE
39-42
4.0
MATERIAL SAFETY DATA SHEET FOR CATALYST
43-45
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1.0 Catalyst Loading Procedure:1.1 Mechanical Drawing & Nozzle Details for R-200:-
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1.2 Catalyst Physical & Chemical Properties:-
Alumina Ball Specifications:-
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1.3
Preliminary Checking:Plant has been cleaned and reactor is inspected. Reactors internal are uninstalled and reactor is isolated from plants with blind at the inlet and outlet nozzles. Insure that catalyst containers/ drums should always be handled carefully, in order to avoid breakage of the particles. Catalyst must not be exposed to moisture and air; it has to be stored in tightly closed containers under roof. During loading operation, the catalyst and screening facilities have to be protected against rain. Dust and broken particles have to be removed following the procedure for the individual catalyst. The catalyst can be charged either by using basket or by means of loading chute. Immediately after catalyst loading the reactor has to be closed and purged with nitrogen to protect the catalyst against water, air, dirt and foreign matter. Reactor must be kept under slight nitrogen pressure until it is ready to be taken into service. A complete record of the amount of loaded catalyst has to be kept, and 01 kg sample of each catalyst is to be kept after loading. Walking planks or “snow shoes” must be used inside the reactor to avoid crushing of the catalyst particle. Personal involved with handling of catalyst must be familiar with the safety data sheets for the relevant catalyst. Personal involved with handling of catalyst must wear suitable personal protective equipments. Before entering inside the vessel % of oxygen should be >19.8% inside the vessel. Check the quality of alumina/ceramic balls if they are broken, they must be stored and fines must be removed. Ensure that all necessary safety and PPE should be available as well as communication system
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1.4 Loading Procedure:-
The catalyst is loaded after blowing, cleaning and drying of upstream and downstream piping. Before loading of catalyst man hole should be opened first.. Inspect the interior of each reactor, to ensure that the vessel is clean, dry and free from loose scale and debris. It is essential that the charging level is clearly defines, so as to avoid under-or overfilling. It should be checked that the thermo wells are installed as specified (including gaskets) and that the catalyst retaining plate and the blind flange on the unloading handhold are installed. All measurements should be made from a fixed reference point at the top of the vessel although guidance marks may be made on the vessel internal by means of blackboard chalk. For charging heights and weights see the corresponding catalyst data sheets Weight of catalyst, vendor batch number and any other relevant catalyst data should be recorded. Make sure that the required amount of catalyst and support is loaded
Install a large funnel 18 to 24 inches in diameter at the top, tapering down to four to six inches at the bottom, in the manhole above the bed. To the bottom of the funnel, attach a canvas sock or hose arrangement of sufficient length to reach the bottom of the reactor.
Hoist catalyst or support balls up in buckets and pour into the funnel. As the level builds up in the vessel, raise the funnel and withdraw the chute so that the catalyst/support will flow out.
Keep the chute full all times so catalyst does not drop more than about 12 inches.
Level the catalyst or catalyst support bed every 3 feet of height increase. If it is necessary for a man to enter the vessel during loading, precautions must be taken so that he does not stand directly on the catalyst.
A board must be placed over part of the bed to distribute his weight. After all of the catalyst and catalyst Support balls have been loaded, disconnect the air hose, Close the bottom drain and secure manholes.
Refer to operating and instruction manual supplied by catalyst vendor for detailed procedures.
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1.5 Catalyst Loading Precautions:-
The loading operation should be conducted with reasonable speed; to ensure the catalysts does not pick-up and undue of moisture from the air.
The vessel must be loaded carefully to minimize physical damage to the pellets during loading and to prevent catalysts alteration in normal operation. Careful loading will avoid serious operation problem caused by poor packing of the bed.
The free fall of catalyst should not exceed 500mm to prevent breakage.
The bottom and top screens must be checked.
Larger hopper should be used to move the catalyst from the ground to the filling manhole.
The hopper should be equipped with loading chute of correct diameter and sufficient length.
Personnel handling the catalysts during the loading must wear dust masks.
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1.6 CHECK LIST:Sr No
Activity Description
Action By
Preliminary Checking
SI
A
Reactor
1
Check whether the reactor has been isolated. The swing elbow
PO
FO
M
at the outlet should be blinded
2
Open the top manhole by removing the flange connection at the inlet distributor
3
Check whether the oxygen content inside the reactor is above 19.5%, if not aerate the reactor from the outlet flange through an air hose
4
Remove the five concentric support rings together with the baskets
5
Ensure that wooden covers are placed over the baskets
6
Inspect outlet collector & screen on it
7
Check for the proper seal welding of the screen and its fastening on the outlet collector
8
Check for uniform slot openings on the outlet collector
9
After inspecting the plug, close the cover of the pipe tightly and ensure that its slots sit precisely on the grooves in the Pipe.
B
Alumina balls & catalyst
1
There are two types of alumina balls- One of diameter 136mm
2
The Catalyst is using HD Max-300TRX(C20-7-03TRX)
3
Ensure the availability of all necessary safety & personnel protection equipments like gloves, dust masks, respirators, safety harness as well as means of communication like radios
C
Precaution to be taken while loading
1
Do not roll catalyst drums as it may cause catalyst attrition
2
Maximum permissible free fall height of the catalyst is 0.5 m
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3
In case of rain stop loading
4
No foreign material like pieces of sleeve, walking boards, tools etc must be left inside the reactor
5
Dust masks should be worn inside the reactor
6
Special loading device checking for availability
7
A stationary hopper should be built on site above the reactor.
8
A slide valve must be fitted to it
9
The hopper legs must be long enough to allow for access into the reactor
10
Canvas sleeves with adequate length of 150 mm diameter
11
A mobile hopper with capacity to hold 3 drums of catalyst
12
A lifting device (crane or a system of winches) to lift the mobile hopper from the ground level
13
Temporary shelters should be erected on top of the reactor and at ground level to protect catalyst from rain
14
A vacuum cleaner should be available to eliminate dust and catalyst fines inside the reactor
15
Device for tooling, lighting, dust masks, respirators, safety harness should be available Sampling bottles for catalyst must be available
D
Loading of the reactor
1
Catalyst sampling
2
Take small amount of catalyst from all the catalyst drums and make two representative samples of minimum 1 kg
3
Transport the 13 mm size alumina balls by the mobile hopper to the top of the reactor
4
Open its slide valve and transfer the contents to the stationary hopper
5
Fill the alumina balls on the collector tray to a height of 3/4"
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6
Rotate the sleeve to uniformly distribute the alumina balls
7
Level this layer using a broom
8
The personnel inside the reactor should stand on a wooden board above the catalyst
9
In a similar fashion transport and fill the 6 mm alumina balls to a height of 1/4" above the previous layer
E
Catalyst loading
1
Load the catalyst inside the reactor by rotating the sleeves
2
Level the catalyst after each meter
3
Retract the sleeve by one meter at this point
4
Now fill this catalyst in this way up to 2.9 meters of the internal height of the reactor
F
Catalyst loading
1
Arrange and fill at ground level this type of catalyst into the mobile hopper
2
Transport and fill the stationary hopper at the top of the reactor
3
Fill the HD Max Catalyst 300TRX(C20-7-03TRX)
4
Check if wooden covers are placed over the baskets, If not, cover them
5
Continue loading the catalyst around the baskets to the level Specified.
6
Level the alumina balls
7
Remove the wooden covers of the debris basket
8
Reassure that no tools are left inside the reactor
9
Record the volumes of alumina balls, catalyst loaded, manpower used, time taken for loading
10
Install the inlet distributor at its position
11
Box up the top manhole
12
Remove the blind at the swing elbow flange at the outlet
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1.7 Final Leak Test:-
After the catalyst loading is completed, the tightness of the reactor has to be ascertained. The reactor is isolated and pressurized with air to the maximum pressure available or compatible with the equipment. The tightness is considered satisfactory when the pressure loss is less than 0.05165kg/cm2/hour, over four consecutive hours. After the leak test the reactor is purged with nitrogen until the oxygen content is 0.2% volume maximum. If for any reason the leak test of the unit as described earlier has not been performed yet, proceed to an overall leak test of the unit, reactor included. After the leak test the reactor is isolated by blinds if start-up is not going to take place immediately and kept under a nitrogen atmosphere.
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2.0 Catalyst Unloading For Hydrogenator Reactor-R 200:-
2.1
Introduction:-
The pressure drop across the catalyst beds will increase over a period of time due to the build up of dust, deterioration of the catalyst, operating mishaps, etc. Eventually the increase in pressure drop will reach a point where the plant must be shut down and the catalyst screened to restore the bed to its normal operating parameters. Screening of the first catalyst layer is required more frequently than the others because any dirt entering the reactor tends to plug this catalyst layer. A crust may also form on the top layer of the first catalyst bed due to operating problems. In this case the pressure drop across the catalyst bed will increase rapidly over a short period of time. Catalyst may need to be removed in order to facilitate repair or inspection of the reactor. This is common in the post and grid type reactors where collapsing of the grid supports may occur. The most common method of removing catalyst from the reactor is by vacuum extraction. Removal by hand can also be done but this is usually restricted to smaller reactors and is more labor intensive. Screening of catalyst is usually done when the reactor has cooled down permitting entry without special protective clothing. Hot entry can be done but requires special procedures and equipment. The following provides a general procedure for the unloading of catalyst from the Hydrogenator Reactor . The user must adapt the following procedures to their specific situation.
2.2 Safety:Catalyst dust is toxic and special safety precautions are required for all personnel involved in the screening operation. Material Safety Data Sheets (MSDS) should be reviewed prior to commencing the operation. Personnel shall wear as a minimum dust respirators, protective goggles, gloves and disposable protective clothing. Externally supplied breathing air is highly recommended for those personnel working in the converter. Standard vessel entry procedures should be followed at all times. minimum: • •
This should include as a
Routine testing of oxygen levels inside the reactor A person stationed outside the reactor man way to monitor the workers inside the vessel. This individual should be equipped with rescue gear and an independent air supply.
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2.3 Unloading Procedure: Plant has been cleaned and reactor has to be inspected.
Reactors internal are uninstalled and reactor is isolated from plants with blind at the inlet and outlet nozzles. Vessel keep under N2 atmosphere till the catalyst oxidized. Vessel is being inspected for any damage before unloading is being started so that remedial measures on operation as well as maintenance side can be planned. During catalyst unloading process, Video camera is to be kept in side the reactor for monitoring internal activity from outside Catalyst unloading job is in inert atmosphere and confined reactor. The risk factors involved are toxicity, Fire explosion, falling, electrocution & suffocation. Hence catalyst unloading job is to be carried out in INERT Atmosphere, only Inert atmosphere certified (OSHA certified) technicians shall be permitted to enter the Reactor with required life support safety appliances The person working in inert atmosphere must have relevant experience of working in inert atmosphere. Stand by person is also required to wear the same safety appliances for emergency call and shall remain present on Reactor top The temperature and oxygen monitoring in the reactor.
Life support system with its components must be as per international safety standard for
working in the inert atmosphere. Start unloading the alumina ball from the top manhole by using a vacuum machine. Keep the unloaded alumina ball in separate drums and screened in order to reuse it. Continue the spent catalysts unloading. Once the alumina ball and catalyst are completely removed, thoroughly clean the catalyst support grids/plate. Clean the bed separation plate located below the catalyst bed as well. Perform an inspection of the reactor and initiate any repairs as required. Carefully check for mechanical damage and areas where gas bypassing can occur Dump the spent catalysts into nitrogen-blanketed metal drums. Unload the bottom layer of alumina balls and store it in a separate drum. Clean inside the reactors for inspection. Catalyst screening operations should be halted if there is a possibility of exposing the catalyst to any form of precipitation (rain, snow, etc.) Catalyst from each bed should be kept separate from each other. Catalyst samples should be taken to be analyzed for activity.
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3.0 Catalyst Loading Equipment & Scope:-
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List of Equipment and Tools needed for Catalyst Loading:-
ITEM 1.0 1.1 1.1.1 1.1.2 1.1.3 1.1.4 1.2 1.3 1.4 1.5 1.6 1.7 1.8 1.9 1.1 1.11 1.12 1.13 2.0 2.1 2.1.1 2.2 2.2.1 2.2.2 2.2.3 2.2.4 2.2.5 2.3 2.4 2.5 2.6 2.7 3.0 3.1 3.2 3.3 3.4 3.5 3.6 3.7 3.8 3.9 3.10 3.11 3.12 3.13 3.14 3.15 3.16 3.17 3.18 3.19 3.2
EQUIPMENT OR ACTIVITY GENERAL ITEMS General Utilities:(nearby reactor area) . Air (6-10 bar) . Electricity (220/240v 400/440v) . Water . Nitrogen purge (incl. ground) and blanket 500Nm3 / Hr New Catalyst (in jumbo bags/Drums) New Ceramic Balls, various dia (in drums) Mech. Activities (spading, elbow de/re-tensioning etc.) Exterior lighting at reactor Scaffolding as required Provision drinking water at reactor area Sanitary facilities (showers, toilets) within the plant Drums (and weather protection) for spent catalyst Disposal spent catalyst Fire Fighting (standby personnel & equipment) Final Site Clean Up Pallets MANPOWER: (Day & Night coverage)
Essar Oil Limited
Specialised Staff: Catalyst Technician Ground Support & Logistic Staff: Ground Support Foreman Ground Support Assistants Forklift Driver Truck Driver (drums from/to stores) Crane Driver PPE for all CRIN paid Personnel Air fares Specialised Staff Board & Lodging Specialised Dense Loading Staff Board & Lodging Catalyst Staff Local & in Plant Transport Specialised Staff (ditto) Local & in Plant Transport for Local Staff CATALYST UNLOADING & LOADING (Day & Night) 1No Flatbed Truck (catalyst from/to storage area) 1No Telescopic Crane (capcity as rqd re load & reach) Forklifts (min 2.5T-moving drums at reactor area) *B/A Module (see footnote) Ground Communications Equipment (Walkie Talkies) Reactor Entry Ladder Screening M/c - Multideck SWEECO HP filling compressor BA Bottles Loading socks Mechanical Hand Tools (incl. pneumatic) Hydraulic Bolt Tensioning/Torquing Tools & Procedures Air Hose 3/8in & 3/4in Air Manifolds Chain blocks Reactor internal lighting (24V) c/w transformers Rope Cleaning rags and detergent QA Documentation (i.e. loading logs) Dense Loading Machine x 2 Certified Operators
X
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X X X X
X
X X X X
X
X
X X X X X X
X
X X X X X X
X X X X X X X X X X X
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4.0 Material Safety Data Sheet for Catalyst:-
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HT SHIFT REACTOR (R 200)
INDEX PAGE NO 47
CLAUSE DESCRIPTION 1.0
CATALYST LOADING PROCEDURE 1.1-MECHANICAL DRAWING & NOZZLE SCHEDULE
47
1.2- CATALYST PHYSICAL & CHEMICAL ROPERTIES
48
1.3-PRELIMINARY CHECKING
49
1.4-LOADING PROCEDURE
50
1.5-CATALYST LOADING PRECAUTIONS
51
1.6-CHECK LIST FOR CATALYST LOADING
2.0
52-54
1.7-FINAL LEAK TEST
55
CATALYST UNLOADING PROCEDURE
56
2.1-INTRODUCTION
56
2.2-SAFETY
56
2.3-UNLOADING PROCEDURE
57
3.0
CATALYST LOADING EQUIPMENT AND SCOPE
58-61
4.0
MATERIAL SAFETY DATA SHEET FOR CATALYST
62-67
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1.0 Catalyst Loading Procedure:1.1 Mechanical Drawing & Nozzle Details for R-201:-
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1.2 Catalyst Physical & Chemical Properties:-
Alumina Ball Specifications:-
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1.3
Preliminary Checking:Plant has been cleaned and reactor is inspected. Reactors internal are uninstalled and reactor is isolated from plants with blind at the inlet and outlet nozzles. Insure that catalyst containers/ drums should always be handled carefully, in order to avoid breakage of the particles. Catalyst must not be exposed to moisture and air; it has to be stored in tightly closed containers under roof. During loading operation, the catalyst and screening facilities have to be protected against rain. Dust and broken particles have to be removed following the procedure for the individual catalyst. The catalyst can be charged either by using basket or by means of loading chute. Immediately after catalyst loading the reactor has to be closed and purged with nitrogen to protect the catalyst against water, air, dirt and foreign matter. Reactor must be kept under slight nitrogen pressure until it is ready to be taken into service. A complete record of the amount of loaded catalyst has to be kept, and 01 kg sample of each catalyst is to be kept after loading. Walking planks or “snow shoes” must be used inside the reactor to avoid crushing of the catalyst particle. Personal involved with handling of catalyst must be familiar with the safety data sheets for the relevant catalyst. Personal involved with handling of catalyst must wear suitable personal protective equipments. Before entering inside the vessel % of oxygen should be >19.8% inside the vessel. Check the quality of alumina/ceramic balls if they are broken, they must be stored and fines must be removed. Ensure that all necessary safety and PPE should be available as well as communication system
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1.4 Catalyst Loading:-
The catalyst is loaded after blowing, cleaning and drying of upstream and downstream piping. Before loading of catalyst man hole should be opened first.. Inspect the interior of each reactor, to ensure that the vessel is clean, dry and free from loose scale and debris. It is essential that the charging level is clearly defines, so as to avoid under-or overfilling. It should be checked that the thermo wells are installed as specified (including gaskets) and that the catalyst retaining plate and the blind flange on the unloading handhold are installed. All measurements should be made from a fixed reference point at the top of the vessel although guidance marks may be made on the vessel internal by means of blackboard chalk. For charging heights and weights see the corresponding catalyst data sheets Weight of catalyst, vendor batch number and any other relevant catalyst data should be recorded. Make sure that the required amount of catalyst and support is loaded
Install a large funnel 18 to 24 inches in diameter at the top, tapering down to four to six inches at the bottom, in the manhole above the bed. To the bottom of the funnel, attach a canvas sock or hose arrangement of sufficient length to reach the bottom of the reactor.
Hoist catalyst or support balls up in buckets and pour into the funnel. As the level builds up in the vessel, raise the funnel and withdraw the chute so that the catalyst/support will flow out.
Keep the chute full all times so catalyst does not drop more than about 12 inches.
Level the catalyst or catalyst support bed every 3 feet of height increase. If it is necessary for a man to enter the vessel during loading, precautions must be taken so that he does not stand directly on the catalyst.
A board must be placed over part of the bed to distribute his weight. After all of the catalyst and catalyst Support balls have been loaded, disconnect the air hose, Close the bottom drain and secure manholes.
Refer to operating and instruction manual supplied by catalyst vendor for detailed procedures.
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1.5 Catalyst Loading Precautions:-
The loading operation should be conducted with reasonable speed; to ensure the catalysts does not pick-up and undue of moisture from the air.
The vessel must be loaded carefully to minimize physical damage to the pellets during loading and to prevent catalysts alteration in normal operation. Careful loading will avoid serious operation problem caused by poor packing of the bed.
The free fall of catalyst should not exceed 500mm to prevent breakage.
The bottom and top screens must be checked.
Larger hopper should be used to move the catalyst from the ground to the filling manhole.
The hopper should be equipped with loading chute of correct diameter and sufficient length.
Personnel handling the catalysts during the loading must wear dust masks.
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1.6 CHECK LIST FOR CATALYST LOADING:Sr No
Activity Description
Action By
Preliminary Checking
SI
A
Reactor
1
Check whether the reactor has been isolated. The swing elbow
PO
FO
M
at the outlet should be blinded
2
Open the top manhole by removing the flange connection at the inlet distributor
3
Check whether the oxygen content inside the reactor is above 19.5%, if not aerate the reactor from the outlet flange through an air hose
4
Remove the five concentric support rings together with the baskets
5
Ensure that wooden covers are placed over the baskets
6
Inspect outlet collector & screen on it
7
Check for the proper seal welding of the screen and its fastening on the outlet collector
8
Check for uniform slot openings on the outlet collector
9
After inspecting the plug, close the cover of the pipe tightly and ensure that its slots sit precisely on the grooves in the Pipe.
B
Alumina balls & catalyst
1
There is 13mm of alumina balls
2
catalyst also: Shift Max 120(C12-4)
3
Ensure the availability of all necessary safety & personnel protection equipments like gloves, dust masks, respirators, safety harness as well as means of communication like radios
C
Precaution to be taken while loading
1
Do not roll catalyst drums as it may cause catalyst attrition
2
Maximum permissible free fall height of the catalyst is 0.5 meter
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3
In case of rain stop loading
4
No foreign material like pieces of sleeve, walking boards, tools etc must be left inside the reactor
5
Dust masks should be worn inside the reactor
6
Special loading device checking for availability
7
A stationary hopper should be built on site above the reactor.
8
A slide valve must be fitted to it
9
The hopper legs must be long enough to allow for access into the reactor
10
Canvas sleeves with adequate length of 150 mm diameter
11
A mobile hopper with capacity to hold 3 drums of catalyst
12
A lifting device (crane or a system of winches) to lift the mobile hopper from the ground level
13
Temporary shelters should be erected on top of the reactor and at ground level to protect catalyst from rain
14
A vacuum cleaner should be available to eliminate dust and catalyst fines inside the reactor
15
Device for tooling, lighting, dust masks, respirators, safety harness should be available Sampling bottles for catalyst must be available
D
Loading of the reactor
1
Catalyst sampling
2
Take small amount of catalyst from all the catalyst drums and make two representative samples of minimum 1 kg
3
Transport the 13 mm size alumina balls by the mobile hopper to the top of the reactor
4
Open its slide valve and transfer the contents to the stationary hopper
5
Fill the alumina balls on the collector tray to a height of 3/4"
6
Rotate the sleeve to uniformly distribute the alumina balls
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7
Level this layer using a broom
8
The personnel inside the reactor should stand on a wooden board above the catalyst
9
In a similar fashion transport and fill the 6 mm alumina balls to a height of 1/4" above the previous layer
E
Catalyst loading
1
Load the catalyst inside the reactor by rotating the sleeves
2
Level the catalyst after each meter
3
Retract the sleeve by one meter at this point
4
Now fill this catalyst in this way up to 2.9 meters of the internal height of the reactor
F
Catalyst loading
1
Arrange and fill at ground level this type of catalyst into the mobile hopper
2
Transport and fill the stationary hopper at the top of the reactor
3
Fill the Shift Max 120(C12-4) catalyst.
4
Check if wooden covers are placed over the baskets, If not, cover them
5
Continue loading the catalyst around the baskets to the level Specified.
6
Level the alumina balls
7
Remove the wooden covers of the debris basket
8
Reassure that no tools are left inside the reactor
9
Record the volumes of alumina balls, catalyst loaded, manpower used, time taken for loading
10
Install the inlet distributor at its position
11
Box up the top manhole
12
Remove the blind at the swing elbow flange at the outlet
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1.7 Final Leak Test:After the catalyst loading is completed, the tightness of the reactor has to be ascertained. The reactor is isolated and pressurized with air to the maximum pressure available or compatible with the equipment. The tightness is considered satisfactory when the pressure loss is less than 0.05165kg/cm2/hour, over four consecutive hours. After the leak test the reactor is purged with nitrogen until the oxygen content is 0.2% volume maximum. If for any reason the leak test of the unit as described earlier has not been performed yet, proceed to an overall leak test of the unit, reactor included. After the leak test the reactor is isolated by blinds if start-up is not going to take place immediately and kept under a nitrogen atmosphere.
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2.0 Catalyst Unloading For HT Shift Reactor-R 201:-
2.1
Introduction:-
The pressure drop across the catalyst beds will increase over a period of time due to the build up of dust, deterioration of the catalyst, operating mishaps, etc. Eventually the increase in pressure drop will reach a point where the plant must be shut down and the catalyst screened to restore the bed to its normal operating parameters. Screening of the first catalyst layer is required more frequently than the others because any dirt entering the reactor tends to plug this catalyst layer. A crust may also form on the top layer of the first catalyst bed due to operating problems. In this case the pressure drop across the catalyst bed will increase rapidly over a short period of time. Catalyst may need to be removed in order to facilitate repair or inspection of the reactor. This is common in the post and grid type reactors where collapsing of the grid supports may occur. The most common method of removing catalyst from the reactor is by vacuum extraction. Removal by hand can also be done but this is usually restricted to smaller reactors and is more labor intensive. Screening of catalyst is usually done when the reactor has cooled down permitting entry without special protective clothing. Hot entry can be done but requires special procedures and equipment. The following provides a general procedure for the unloading of catalyst from the HT Shift Reactor . The user must adapt the following procedures to their specific situation .
2.2 Safety:Catalyst dust is toxic and special safety precautions are required for all personnel involved in the screening operation. Material Safety Data Sheets (MSDS) should be reviewed prior to commencing the operation. Personnel shall wear as a minimum dust respirators, protective goggles, gloves and disposable protective clothing. Externally supplied breathing air is highly recommended for those personnel working in the converter. Standard vessel entry procedures should be followed at all times. minimum: • •
This should include as a
Routine testing of oxygen levels inside the reactor A person stationed outside the reactor man way to monitor the workers inside the vessel. This individual should be equipped with rescue gear and an independent air supply.
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2.3 Unloading Procedure: Plant has been cleaned and reactor has to be inspected.
Reactors internal are uninstalled and reactor is isolated from plants with blind at the inlet and outlet nozzles. Vessel keep under N2 atmosphere till the catalyst oxidized. Vessel is being inspected for any damage before unloading is being started so that remedial measures on operation as well as maintenance side can be planned. During catalyst unloading process, Video camera is to be kept in side the reactor for monitoring internal activity from outside Catalyst unloading job is in inert atmosphere and confined reactor. The risk factors involved are toxicity, Fire explosion, falling, electrocution & suffocation. Hence catalyst unloading job is to be carried out in INERT Atmosphere, only Inert atmosphere certified (OSHA certified) technicians shall be permitted to enter the Reactor with required life support safety appliances The person working in inert atmosphere must have relevant experience of working in inert atmosphere. Stand by person is also required to wear the same safety appliances for emergency call and shall remain present on Reactor top The temperature and oxygen monitoring in the reactor.
Life support system with its components must be as per international safety standard for
working in the inert atmosphere. Start unloading the alumina ball from the top manhole by using a vacuum machine. Keep the unloaded alumina ball in separate drums and screened in order to reuse it. Continue the spent catalysts unloading. Once the alumina ball and catalyst are completely removed, thoroughly clean the catalyst support grids/plate. Clean the bed separation plate located below the catalyst bed as well. Perform an inspection of the reactor and initiate any repairs as required. Carefully check for mechanical damage and areas where gas bypassing can occur Dump the spent catalysts into nitrogen-blanketed metal drums. Unload the bottom layer of alumina balls and store it in a separate drum. Clean inside the reactors for inspection. Catalyst screening operations should be halted if there is a possibility of exposing the catalyst to any form of precipitation (rain, snow, etc.) Catalyst from each bed should be kept separate from each other. Catalyst samples should be taken to be analyzed for activity.
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3.0 Catalyst Loading Equipment:-
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List of Equipment and Tools needed for Catalyst Loading:-
ITEM 1.0 1.1 1.1.1 1.1.2 1.1.3 1.1.4 1.2 1.3 1.4 1.5 1.6 1.7 1.8 1.9 1.1 1.11 1.12 1.13 2.0 2.1 2.1.1 2.2 2.2.1 2.2.2 2.2.3 2.2.4 2.2.5 2.3 2.4 2.5 2.6 2.7 3.0 3.1 3.2 3.3 3.4 3.5 3.6 3.7 3.8 3.9 3.10 3.11 3.12 3.13 3.14 3.15 3.16 3.17 3.18 3.19 3.2
EQUIPMENT OR ACTIVITY GENERAL ITEMS General Utilities:(nearby reactor area) . Air (6-10 bar) . Electricity (220/240v 400/440v) . Water . Nitrogen purge (incl. ground) and blanket 500Nm3 / Hr New Catalyst (in jumbo bags/Drums) New Ceramic Balls, various dia (in drums) Mech. Activities (spading, elbow de/re-tensioning etc.) Exterior lighting at reactor Scaffolding as required Provision drinking water at reactor area Sanitary facilities (showers, toilets) within the plant Drums (and weather protection) for spent catalyst Disposal spent catalyst Fire Fighting (standby personnel & equipment) Final Site Clean Up Pallets MANPOWER: (Day & Night coverage)
Essar Oil Limited
Specialised Staff: Catalyst Technician Ground Support & Logistic Staff: Ground Support Foreman Ground Support Assistants Forklift Driver Truck Driver (drums from/to stores) Crane Driver PPE for all CRIN paid Personnel Air fares Specialised Staff Board & Lodging Specialised Dense Loading Staff Board & Lodging Catalyst Staff Local & in Plant Transport Specialised Staff (ditto) Local & in Plant Transport for Local Staff CATALYST UNLOADING & LOADING (Day & Night) 1No Flatbed Truck (catalyst from/to storage area) 1No Telescopic Crane (capcity as rqd re load & reach) Forklifts (min 2.5T-moving drums at reactor area) *B/A Module (see footnote) Ground Communications Equipment (Walkie Talkies) Reactor Entry Ladder Screening M/c - Multideck SWEECO HP filling compressor BA Bottles Loading socks Mechanical Hand Tools (incl. pneumatic) Hydraulic Bolt Tensioning/Torquing Tools & Procedures Air Hose 3/8in & 3/4in Air Manifolds Chain blocks Reactor internal lighting (24V) c/w transformers Rope Cleaning rags and detergent QA Documentation (i.e. loading logs) Dense Loading Machine x 2 Certified Operators
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4.0 Material Safety Data Sheet for Catalyst:-
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STEAM REFORMER (H001)
INDEX
CLAUSE
PAGE NO 69-71
DESCRIPTION
1.0
GENERAL
2.0
PREPARATION
72
2.1-SCREENING AND CLEANING OF CATALYST
72
3.0
2.2-WEIGHING AND SOCKING OF CATALYST
72-73
STEAM REFORMER & REFORMER TUBE LAYOUT
74-75
3.1- CATALYST PHYSICAL AND CHEMICAL PROPERTIES
76-78
3.2- CATALYST LOADING PRINCIPLES FOR H-001
79
3.3- CATALYST LOADING PROCEDURE FOR H-001
80-81
3.4- LOADING PRECAUTIONS
82
4.0
∆P
MEASUREMENT ACROSS THE EMPTY TUBES
83-85
5.0
CATALYST UNLOADING FOR STEAM REFORMER H-001
86
5.1- INTRODUCTION
86
5.2- SAFTEY
86
5.3- UNLOADING PROCEDURE
87
6.0
EQUIPMENT LIST& SCOPE FOR LOADING & UNLOADING
88-89
7.0
MATERIAL SAFETY DATA SHEET FOR CATALYST
90-99
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1.0 General:Catalyst can be loaded by three procedures traditional UNIDENSE™ loading, Socks method, Spiral method. In this chapter general description of catalyst loading by Unidense technology & Socks method given. About Unidense Technology The UNIDENSE™ technology is a loading method for primary reformer catalyst tubes which is simple and faster then the traditional "sock" loading method. Catalyst is slowly filled into the tube through a specially designed funnel and the loading rope is gradually pulled out of the tube as the catalyst layer builds up. The brushes with flexible springs reduce the speed of the catalyst particles so that breakage is avoided. With the UNIDENSE™ technology the catalyst particles will have a free fall of approx. 0.5 m from the lowest brush to the catalyst surface. This gives a "low intensity" filling and the particles will come to rest before being interlocked by other particles. Hence, there will not be any risk for bridging, and vibration of the tubes is not necessary. The UNIDENSE™ technology ensures a filling without extra voids and a high uniform density along the full length of the tubes is obtained. The catalyst is charged from buckets and the time consuming and expensive socking of the catalyst is avoided. Weighing of catalyst loaded in each tube is not always necessary and is made in only a few tubes or at the client’s request. When more than one type of catalyst is to be loaded in the tubes with the UNIDENSE™ technology the level for each type is easily adjusted by marks on the loading rope, and frequent measurement of loaded outages are therefore not necessary. We have experience from an emergency loading with 5 different types (shapes and sizes), including used and screened catalyst, and the final pressure drop variation was less than ± 5 %. Our guaranty for the variation in pressure drop measurement of the loading is that the final result shall be within ± 5 % of the average. However, a variation of ± 3 % or less is a realistic target when a careful loading has been made. The pressure drop is normally measured with the plant's own equipment and personnel as a quality control, and is normally taken during night in order to minimize variations in temperature and barometric pressure. With the UNIDENSE™ technology we often experience that more catalyst (3 to 7 %) is loaded than with the "sock" method and vibration. This is due to the uniform packing of the catalyst, which will minimize the settling of the catalyst during operation. We have experience from one plant with many starts and stops that the settling of the catalyst was even and only a few inches in all the tubes. The increase in density seams not to result in increased pressure drop in the reformer as normally should. Benefits with Unidense Technology Socking of catalyst and weighing of the socks prior to loading is time consuming and is avoided with the UNIDENSE™ technology. However, the catalyst has to be brought to the tubes, and we have good experience with transfer of the catalyst in bags with up to approx. 30 kg. Bagging of the catalyst is much faster than filling a large number of socks and only a few bags need to be weighed. We have also very good experience by using hoppers and charging the catalyst directly in buckets which is carried to the tubes. TITLE OF DOCUMENT ESSAR OIL LIM ITED REFINERY EXPAN SION OPERATI ONS
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The UNIDENSE™ technology is a fast loading method. The actual time for loading a tube with UNIDENSE™ vary depending on the tube dimensions and is for a 4" i.d. tube less than 10 minutes including the final outage measurement . A reformer with 300 to 400 tubes is normally completed in 3 to 4 shifts of 12 hour. The time it takes to complete the reformer loading with the UNIDENSE™ technology is often less than half of the time for sock loading. Often the time to replace the primary reformer catalyst is the critical item in a maintenance plant stop and reducing the down time is the operator’s main goal. Even using less man-hour for catalyst replacements is a great benefit. Pressure drop of the tubes has proved to be within a narrow range with the majority within ± 2,5 % variation around the average pressure drop. Rarely tubes have pressure drop outside of ± 5 %, and most of the reformers have been completed without reloading of tubes. Since reloading of tubes is avoided, no expensive catalyst is wasted. Often when a "sock" loading is made problems like loosing a part of a sock or a full sock into the tube happens. Sometimes the sock opens during lowering into the tube and catalyst has free fall causing catalyst breakage. The way the vibration is made varies from team to team leading to large variations in loaded density and pressure drop. Adjustment of the loading by vibration and reloading of tubes is time consuming and may delay start up of the plant. Such or similar problems are avoided by the UNIDENSE™ technology, and very seldom tubes need to be emptied and reloaded. We see only positive effects and no negative risks of using the UNIDENSE™ technology compared with the "sock" loading method. The even and stable pressure drop results in even tube wall temperatures and the high uniform loaded density will ensure a long life of the reformer tubes and allow for improved conversion and increased throughput. UNIDENSE™ technology contributes to extended operating periods. In summary the main benefits with the UNIDENSE™ technology are: - No need for socking/weighing of catalyst - Time and manpower saving prior to loading - Catalyst delivered in drums / bags - Lower costs - No need for vibration or hammering - no damage to tubes, insulation and structure - Less risk for refilling of tubes - less problems during the loading and less waste of catalyst - Uniform high loaded density and uniform pressure drop - prolonged tube life and potential for increased production - No bridging or extra voids - less settling and less tendency to hot spots - The loading can be completed in less time - reduced down time and labour cost
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About Sock Loading Method The traditional "sock" loading method results in a loose filling. When the catalyst flushes out of the sock this will be a "high intensity" filling and the catalyst particles will interlock and form bridges . Vibration will remove some of the bridges and increase the density. After the plant is started, the tubes will expand and some bridges may break and cause settling of the catalyst and possibly new bridges and hot spots. When vibration is used on the top of the tube it is obvious that the effect of the vibration in the lower/bottom part of the tube will be less. We have experienced that settling of the catalyst after a "sock" loading has been to such an extent that the catalyst level has been inside the fired zone and resulted in overheating of the top part of the tubes. This document describes how catalyst is loaded and unloaded in the Steam Reformer H-001by means of traditional Sock Method. Each tube in the steam reformer must be packed uniformly with catalyst in such a way that all of the tubes offer a similar resistance to the flow of process gas, so the process gas will be evenly distributed over the reformer. If the flow is not balanced, catalyst in some tubes will tend to be overloaded with gas flows, while those tubes with low gas flows may tend to overheat. The simplest way to check the packing of a tube is to measure the pressure drop though it. The inside of all reformer tubes should always be visually inspected before any catalyst loading takes place. It is quite common to find pieces of cardboard or other debris during this inspection. Today inspection are also executed bye viber objective inspection, there are specialist companies for this kind of inspectctions. Before catalyst charging begins, catalyst tubes, outlet pigtails should be tested, To ensure that they are clear from any obstructions. To check this, a pressure drop test should be carried out, using the pressure drop device as mentioned before. The pressure drop test is done, bye blowing a constant quantity of air or nitrogen through each tube with the inlet pigtails suitably plugged and the outlet ends open to atmosphere. Remove manhole cover on Process Gas Waste Heat Boiler. The constant quantity of air or nitrogen is obtained by the critical flow through the orifice of the pressure drop measurement device, keeping the supply pressure constant (7.0 kg/cm2g).
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2.0 Preparations:The below chapter deals with the preparations which should be made prior to loading.
2.1 Cleaning and Screening of Catalyst:- Even though the almost care is taken during transport of the catalyst, both to and within the site boundaries, the drums may contain a small percentage of dust and fines. The simplest and most effective method of cleaning the catalyst is to pass the catalyst down an inclined sieve. If the catalyst has been subject to extreme rough handling, the cleaning can be effected by blowing with clean dry air in order to remove dust and fines. The mesh size of the sieve should be approximately one half of the minimum external catalyst dimension. Dimensions of recommended mesh apparatus are given below:
Approx.mesh(mm)
16 X 8 4-5
16 X 11 5-6
20 X 18 9-10
The sieving operation should take place on the ground in a screened-off area. Personnel involved in the operation should wear gloves and dust masks.
2.2 Weighing and Socking of Catalyst: It is recommended that catalyst should be loaded via polyethylene or canvas socks and in order to cut down the loading time, we suggest presoaking the whole catalyst charge prior to loading. In most case, the reformer catalyst charge consists of two or more different catalyst types and/or sizes. Due to small variations in particle and loading densities, it is not possible beforehand to predict the exact quantity of each catalyst type to be loaded into each tube. Base on the expected density of the catalyst and the size of the socks available, the quantity of each catalyst type to be loaded is calculated and distributed into a suitable number of socks. The accuracy of the weight of catalyst per sock should be better than ±0.1kg In order to distinguish between various types or sizes of catalysts, socks of different colors or lengths could be applied. In general, the “lay-fat-width” of the socks used should be 1.3 to 1.4 times the inner diameter of the reformer tubes. The thickness of polyethylene socks should be minimum 0.2mm. Suitable specifications of the polyethylene socks are thus: Tube diameter,mm(in) Lay-flat width,mm(in) Loaded sock length, m(ft) Weight per sock, kg
71(2.8) 100(4) 1.5-2.2(5-7) 4-6(9-13)
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100(4) 135(5 ¼) 1.2-1.8(4-6) 6-8(13-18)
125(5) 175(7) 0.9-1.3(3-4) 6-8(13-18)
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Set Up for Screening, Weighing, and Socking of Catalyst:-
Explanation to the figure:The drums are brought to the platform “A” and put on the inclined screen “B” where dust and fines are removed. On platform “C” the catalyst is put into a bucket “D” which is weighted (weight E). The catalyst is then put into the funnel “F” under which the sock”G” is placed
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3.0 Steam Reformer & Reformer Tube Layout:-
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r o d e t i b i h x e , d e i p o c , d e c u d o r p e r e b t o n l l i w y e h t t a h t t n e m e e r g a s s e r p x e s ' r e w o r r o b e h t n o d . e e n s a u o l d y e l d e r n e t e m n i e e r a t h y r e o h f T r . e . . w D o r E r o T b I M e I h L t L o I t O r e R d A n e S l S e E h f t o y y b t r n e e v p i o r g t p n e e h s t n e r o a c t n e a t t i m r r o w f s a i y h t b n d o e t t n i e m v i r g e s p l i y a a t e w d d e d t n i a m i n l g e i h s t e n d i , t g p n e i w c x a r e , d d e e h s T u
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3.1 Catalyst Physical & Chemical Properties:-
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r o d e t i b i h x e , d e i p o c , d e c u d o r p e r e b t o n l l i w y e h t t a h t t n e m e e r g a s s e r p x e s ' r e w o r r o b e h t n o d . e e n s a u o l d y e l d e r n e t e m n i e e r a t h y r e o h f T r . e . . w D o r E r o T b I M e I h L t L o I t O r e R d A n e S l S e E h f t o y y b t r n e e v p i o r g t p n e e h s t n e r o a c t n e a t t i m r r o w f s a i y h t b n d o e t t n i e m v i r g e s p l i y a a t e w d d e d t n i a m i n l g e i h s t e n d i , t g p n e i w c x a r e , d d e e h s T u
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3.2 Catalyst Loading Principles for H-001:The normal method of charging reformer tubes is with pre-filled polythene socks or canvas socks to fill at site. The catalyst to be loaded shall be inspected prior to charging and any fines which could cause an excessive pressure drop when charged should be screened out. The reforming catalyst should be weighed before charging to provide a check on the quantity of the catalyst loaded to each tube. It is important that the catalyst is uniformly loaded in the reformer as this ensures an even pressure drop and thereby an even gas flow distribution. The loading principle applied for the Steam Reformer is based on the idea that each catalyst pellet must drop freely for 500 mm prior to landing on the catalyst surface. The falling height causes the pellets to impact the packed bed with sufficient energy to vibrate the top layer of the bed, thereby ensuring a high loading density. On the other hand the impact speed is too low to cause breakage to the pellets. The controlled free drop height stated above is accomplished by using special loading tubes, which are inserted from the top of the Steam Reformer down to just above the catalyst bed surface. The loading tubes are fitted with an internal spiral. The spiral forces the pellets to roll along the tube inner diameter rather than to fall freely and vertically. Hereby the velocity of the pellets is limited. Initially, the loading tubes will be so long that they reach from 1.5 m above the Steam Reformer bottom to outside the reformer, i.e. approximately 12.5 meters. The catalyst falls into the loading tubes from a loading box with carefully sized compartments matching the demand for catalyst at the specific position. The flow out of the compartments can be blocked by means of relative movement of matching whole plates. As the loading progresses, the loading tubes are gradually withdrawn and shortened so that a pellet free falling height of roughly 500 mm is always respected. Catalyst loading can be performed with the Steam Reformer internal positioned in the pressure shell or in the maintenance structure.
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3.3 Catalyst Loading Procedure - Step by Step:It is recommended that the reformer tubes will be loaded in either two or three stages (50 &100 percent or 30, 60 & 100 percent). A complete loading of the Steam Reformer comprises the following steps:
Cleaning of the reformer inlet piping, distributor and hairpins must be finished prior to catalyst loading in order to avoid dirt blowing to the catalyst
Prior to loading it must be checked that the catalyst tubes are clean and free of grease
The catalyst retaining grid and the blind flange on the unloading hand hole are installed.
Correct installation of the grid in the bottom of the tubes should be verified
When the catalyst is charged into the reformer tubes, it is important that the catalyst is not dropped from more than 500mm.
The catalyst is loaded to abt. 820 - 850 mm distance from the tube top flange.
Space specified above is required to finally install the insulation inserts (length 800 mm) in the top section of each reformer tube.
The catalyst pellets must not be allowed to form bridges across the tubes, as this leads to empty regions in the tubes and overheating during operation.
When using sock method for loading catalyst in the reformer tubes, it is important to ensure that the socks are of the correct size so that they will slide easily up and down the tube when they contains catalyst.
Weight of catalyst, vendor batch number and any other relevant catalyst data should be recorded
Keep the sock full at all times so catalyst does not drop more than about 12 inches.
When the sock has reached the bottom of the tube, the cord is withdrawn with a sharp tug, which allows the bottom end of the sock to unfold and the catalyst to fall gently into the tube. As the catalyst is loaded, it is necessary to vibrate the tube to give uniform packing and ensure even gas distribution. Take some random sample from the charged catalyst. After completion of catalyst loading in tubes its necessary to carryout Pressure Drop Measurement Test on Filled Tubes to insure that there is no voids have been formed as a result of bridging of particles and that he catalyst has not been disintegrated too much as a result of careless loading or excessive tube vibration. Pressure Drop Measurement Test across each loaded tube are carried out in the same way as described under pressure drop measurements on empty tubes. Any tube has an up normal pressure drop reading it should be hammered well or unload and re-load.
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Reformer Tube Sock Loading:-H-001:-
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r o d e t i b i h x e , d e i p o c , d e c u d o r p e r e b t o n l l i w y e h t t a h t t n e m e e r g a s s e r p x e s ' r e w o r r o b e h t n o d . e e n s a u o l d y e l d e r n e t e m n i e e r a t h y r e o h f T r . e . . w D o r E r o T b I M e I h L t L o I t O r e R d A n e S l S e E h f t o y y b t r n e e v p i o r g t p n e e h s t n e r o a c t n e a t t i m r r o w f s a i y h t b n d o e t t n i e m v i r g e s p l i y a a t e w d d e d t n i a m i n l g e i h s t e n d i , t g p n e i w c x a r e , d d e e h s T u
3.4 Loading Precaution:
Check each tube to ensure that it is clear of any blockage to the support grid and the inlet and exit pipe work.
If a sock loading method will be used, care must be taken to avoid the opening prematurely. The height of fall should be limited to 50cm maximum.
Periodically, the tube should be vibrate to settle the catalysts by using a soft hammer to hit the top flange of tube 3-5 times after each sock is loaded excessive vibration can lead to catalyst breakage which must be avoided.
The vibration routine should determine by trial on one or two tubes. After loading for each sock, the tube should hit 3 times and the catalysts depth checked. If there was no further settling 3 hammer blows are sufficient after each sock.
With each catalysts layer, it is important to endure that each tube is loaded with catalysts in the correct order.
The pressure drop of the tube should be checked after the second layer of the catalyst has been loaded. Adjustment of any low pressure deep tubes should be made by limited additional vibration, if there is further settling, additional catalysts should be added.
After the upper half of the catalysts is loaded, a further process of checking pressure drop and adjustment should be made if any tubes remain above 105% of the median pressure drop and then these tubes should be discharge and reloaded.
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4.0 Pressure Drop Measurements across Empty Tubes:The purpose of this procedure is to determine whether the outlet hairpin/outlet system is obstructed or not. For reformer designs without outlet hairpins, the pressure drop should be equal to the “zero” pressure drop of the
∆P
equipment. For the designs, the pressure drop should be uniform and low.
The pressure drop is measured across empty tubes and taken down on a log sheet for each individual tube.
A suitable device for pressure drop measurement is described below The pressure drop across the tubes should be checked with equipment delivering a constant flow of air through the tubes. The principle is that an orifice is designed as a “critical flow nozzle” i.e. sized in such a way that the air flow through its throat is supersonic. This will ensure that the flow will depend only on the upstream pressure. In order to accomplish this, the upstream pressure (absolute) should be at least twice the downstream pressure (atmospheric pressure plus pressure drop across the catalyst). Further the orifice open area should be at least 5 times smaller than the pipe in which it is placed. The standard of the industry an apparatus consisting of the following elements:
Pipe
Valve
Upstream pressure gauge
Restriction orifice
Downstream pressure gauge
Expandable rubber bung equipped with eccentric device for easy expansion
The pipe: The pipe would normally have an inner diameter of 25-50mm (1-2”). The pipe ID should preferably be at least 5 times the orifice size.
The valve: A standard globe valve for easy regulation of upstream pressure.
The upstream pressure gauge: The upstream pressure gauge should be a precision gauge (0.5% accuracy). The upstream pressure should preferably be 70-80% of the full-scale reading. The upstream pressure would typically be between 2 and 4 kg/cm2
The orifice: The flow through the orifice is approximately linearly dependent on the upstream pressure and the orifice size. The pressure drop across the catalyst will be dependent on the tube ID and of course, the catalyst sixe and loaded height.
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For a normal size primary reforming catalyst, we would find the following orifice sizes suitable when operating at an upstream pressure of 2-4 kg/cm2g.
Tube ID(mm)
70
80
90
100
120
140
(inch)
2.8
3.2
3.5
3.9
4.7
5.5
5
6
6
7
8
9
3/16
1/4
1/4
5/16
5/16
11/32
Orifice size(mm) (inch)
Downstream pressure gauge: The downstream pressure gauge should also be of the precision type (0.5% accuracy) and the reading should preferably also be 70-80% of the fullscale reading for the fully loaded tube .
When selecting the above mentioned orifice sizes, the following gauges are recommended:
Up stream pressure Kg/cm2g
2
3
4
0-3
0-4
0-5
0-1
0-1.5
0-2.0
Up stream gauge range Kg/cm2g Down stream gauge range Kg/cm2g
Test before use: It is important that the pressure drop device is designed without undue restriction downstream the orifice, so that the pressure drop across the device itself is small compared to that of the filled catalyst tube. This “built-in” pressure drop is checked by blowing air through the equipment at the same rate as would later be used when checking the pressure drop through the tubes. This “zero” figure should be small.
Special notes: If supersonic flow is not achieved, the orifice diameter should be decreased of the upstream pressure could be increased with due consideration to the accuracy deliberations mentioned above.
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Sketch of ∆P Measurement Equipment:
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5.0 Catalysts Unloading For Steam Reformer-H-001
5.1
Introduction:-
The pressure drop across the catalyst beds will increase over a period of time due to the build up of dust, deterioration of the catalyst, operating mishaps, etc. Eventually the increase in pressure drop will reach a point where the plant must be shut down and the catalyst screened to restore the bed to its normal operating parameters. Screening of the first catalyst layer is required more frequently than the others because any dirt entering the reactor tends to plug this catalyst layer. A crust may also form on the top layer of the first catalyst bed due to operating problems. In this case the pressure drop across the catalyst bed will increase rapidly over a short period of time. Catalyst may need to be removed in order to facilitate repair or inspection of the reactor. This is common in the post and grid type reactors where collapsing of the grid supports may occur. The most common method of removing catalyst from the reactor is by vacuum extraction. Removal by hand can also be done but this is usually restricted to smaller reactors and is more labor intensive. Screening of catalyst is usually done when the reactor has cooled down permitting entry without special protective clothing. Hot entry can be done but requires special procedures and equipment. The following provides a general procedure for the unloading of catalyst from the Steam Reformer . The user must adapt the following procedures to their specific situation .
7.2 Safety:Catalyst dust is toxic and special safety precautions are required for all personnel involved in the screening operation. Material Safety Data Sheets (MSDS) should be reviewed prior to commencing the operation. Personnel shall wear as a minimum dust respirators, protective goggles, gloves and disposable protective clothing. Externally supplied breathing air is highly recommended for those personnel working in the converter. Standard vessel entry procedures should be followed at all times. minimum: •
•
This should include as a
Routine testing of oxygen levels inside the reactor A person stationed outside the reactor man way to monitor the workers inside the vessel. This individual should be equipped with rescue gear and an independent air supply.
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7.3 Unloading Procedure: Plant has been cleaned and reactor has to be inspected.
Reformer internal is uninstalled and reformer is isolated from plants with blind at the inlet and outlet nozzles. Reformer keep under N2 atmosphere till the catalyst oxidized. Reformer is being inspected for any damage before unloading is being started so that remedial measures on operation as well as maintenance side can be planned.
Catalyst unloading job is in inert atmosphere and confined reformer. The risk factors involved are toxicity, Fire explosion, falling, electrocution & suffocation. Hence catalyst unloading job is to be carried out in INERT Atmosphere, only Inert atmosphere certified (OSHA certified) technicians shall be permitted to enter the Reactor with required life support safety appliances
The person working in inert atmosphere must have relevant experience of working in inert atmosphere. Stand by person is also required to wear the same safety appliances for emergency call and shall remain present on Reformer top
The temperature and oxygen monitoring in the reformer.
Life support system with its components must be as per international safety standard for
working in the inert atmosphere. For removal of catalysts from the reformer tubes a vacuum device should be used. The catalysts are sucked up through the hose to a cyclone.
Special care should be taken to avoid over stressing the casing of the furnace by Excessive loads during the unloading.
Continue the spent catalysts unloading. Perform an inspection of the reformer and initiate any repairs as required. Carefully check for mechanical damage and areas where gas bypassing can occur Dump the spent catalysts into nitrogen-blanketed metal drums. Clean inside the reformer for inspection. Catalyst screening operations should be halted if there is a possibility of exposing the catalyst to any form of precipitation (rain, snow, etc.) Catalyst samples should be taken to be analyzed for activity.
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r o d e t i b i h x e , d e i p o c , d e c u d o r p e r e b t o n l l i w y e h t t a h t t n e m e e r g a s s e r p x e s ' r e w o r r o b e h t n o d . e e n s a u o l d y e l d e r n e t e m n i e e r a t h y r e o h f T r . e . . w D o r E r o T b I M e I h L t L o I t O r e R d A n e S l S e E h f t o y y b t r n e e v p i o r g t p n e e h s t n e r o a c t n e a t t i m r r o w f s a i y h t b n d o e t t n i e m v i r g e s p l i y a a t e w d d e d t n i a m i n l g e i h s t e n d i , t g p n e i w c x a r e , d d e e h s T u
6.0 Equipment Requirements for H-001 Catalyst Loading:ITEM 1.0 1.1 1.1.1 1.1.2 1.1.3 1.1.4 1.2 1.3 1.4 1.5 1.6 1.7 1.8 1.9 1.1 1.11 1.12 1.13 1.14 1.15 1.16
EQUIPMENT OR ACTIVITY GENERAL ITEMS General Utilities:(nearby reactor area) . Air (6-10 bar) . Electricity (220/240v 400/440v) . Water . Nitrogen purge (incl. ground) and blanket 500Nm3 / Hr New Catalyst (in jumbo bags/Drums) New Ceramic Balls, various dia (in drums) Mech. Activities (spading, elbow de/re-tensioning etc.) Exterior lighting at reactor Scaffolding as required Provision drinking water at reactor area Sanitary facilities (showers, toilets) within the plant Drums (and weather protection) for spent catalyst Disposal spent catalyst Fire Fighting (standby personnel & equipment) Final Site Clean Up Pallets Apparatus for ∆p measurement on reformer tubes Canvas socks for loading of reformer tubes or unidense Hammer for vibration on reformer tubes rubber or leather faced. 2.0 MANPOWER: (Day & Night coverage)
2.1 2.1.1 2.2 2.2.1 2.2.2 2.2.3 2.2.4 2.2.5 2.3 2.4 2.5 2.6 2.7 3.0 3.1 3.2 3.3 3.4 3.5 3.6
Essar Oil Limited
Specialised Staff: Catalyst Technician Ground Support & Logistic Staff: Ground Support Foreman Ground Support Assistants Forklift Driver Truck Driver (drums from/to stores) Crane Driver PPE for all CRIN paid Personnel Air fares Specialised Staff Board & Lodging Specialised Dense Loading Staff Board & Lodging Catalyst Staff Local & in Plant Transport Specialised Staff (ditto) Local & in Plant Transport for Local Staff CATALYST UNLOADING & LOADING (Day & Night) 1No Flatbed Truck (catalyst from/to storage area) 1No Telescopic Crane (capcity as rqd re load & reach) Forklifts (min 2.5T-moving drums at reactor area) *B/A Module (see footnote) Ground Communications Equipment (Walkie Talkies) Reactor Entry Ladder
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3.7 3.8 3.9 3.10 3.11 3.12 3.13 3.14 3.15 3.16 3.17 3.18 3.19 3.2
Screening M/c - Multideck SWEECO HP filling compressor BA Bottles Loading socks Mechanical Hand Tools (incl. pneumatic) Hydraulic Bolt Tensioning/Torquing Tools & Procedures Air Hose 3/8in & 3/4in Air Manifolds Chain blocks Reactor internal lighting (24V) c/w transformers Rope Cleaning rags and detergent QA Documentation (i.e. loading logs) Dense Loading Machine x 2 Certified Operators
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7.0 Material Safety Data Sheet for Catalyst—G-90:-
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Material Safety Data Sheet for Catalyst C11-NK:-
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Material Safety Data Sheet for Catalyst G-91:-
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