Integral Definido. Exercicios Resolvidos

Matemática 1

Anatolie Sochirca ACM DEETC ISEL

Integral definido. Exercícios resolvidos. a) Calcular os integrais definidos utilizando a fórmula de Barrow.

1

∫ 1 + x dx .

Exercício 1.

0

1

1   1 1  (1 + x) 2 +1   1 + x d (1 + x ) = ∫ (1 + x) 2 d (1 + x ) =  1   0 +1    2 

1

∫ 1 + x dx = ∫ 0

0

2

=

3

= 0

1

x dx

∫ ( x

Exercício 2.

−1

1 1

1

x dx

∫ ( x

−1

2

)

+1

2

∫

1

(1 + l nx ) dx

2

= 0

.

1

1

∫

1

∫

1

=−

1 2

−1

x

e

((

∫ (1 + l nx) ⋅ x 1

e

−1

)

1 −

1

∫

1  1  = − ⋅ 2  2  x + 1 

1

=− −

1

1  1

 =0 2  12 + 1 ( −1) 2 + 1  ⋅ 

−

1

.

dx

=

)

2

⋅ x + 1

(1 + l nx ) dx

 l n 2 x  = (l nx ) +  1  2    1 e

3

2

2

1

x

+1

2

3

d ( x )

∫

Exercício 3.

∫

1

2 2 −2 d ( x ) d ( x + 1) 1 1 1 2 2 2 ( ) x d ( x + 1) = = = ⋅ = ⋅ = ⋅ + 1 2 2 2 2 2 − 1 ( x 2 + 1) 2 − 1 ( x 2 + 1) 2 −1 + 1) −1 ( x

e

e

)

2

− 2+1 2  x ( + 1) 1   ⋅  2  − 2 + 1 

=

0

3    (1 + x) 2   = 3      2 

 2  32  2 ⋅  (1 + 1) − (1 + 0)  = ⋅  2 − 1 = ⋅ (2 2 − 1).   3   3   3

1

⋅ (1 + x ) 2

3

2 

1

=

e

e

e

1

1

1

∫ (1 + l nx) ⋅ d (l nx) = ∫ d (l nx) + ∫ l nx d (l nx) =

 l n 2 e l n 2 1  1  = (l n e − l n1) +  − = 1+  2  2  2

=

3 2

.

1

Matemática 1


2

dx

∫

Exercício 4.

16 − x

0

2

∫ 0

2

dx

=

16 − x 2

.

2

 x  = arcsen    4 

dx

∫

4 2 − x 2

0

2

 2   0   − arcsen  =  4   4 

= arcsen 0

π π  1   − arcsen(0) = − 0 = . 6 6  2 

= arcsen

1

∫ x

Exercício 5.

0

dx 2

+ 4 x + 5

.

O polinómio do denominador denominador não tem raizes reais:

⇒ x=

x 2 + 4 x + 5 = 0

−4±

16 − 20

=

−4±

−4

.

2 2 Portanto é uma fracção elementar do terceiro tipo. 1

∫ x

dx 2

0

1

∫ x

=

+ 4 x + 5

0

= (arctg ( x + 2) )

1 0

dx 2

+ 4 x + 4 + 1

1

=

1

dx

∫ ( x + 2) 0

2

= +1

∫ 1

2

0

d ( x + 2) + ( x + 2)

2

=

= arctg (1 + 2) − arctg (0 + 2) = arctg (3) − arctg ( 2) .

π

2

Exercício 6.

∫ sen(2 x) dx . 0

1o

método :

π

π

2

2

π

1

1

2

1

∫ sen(2 x) dx = ∫ sen(2 x) ⋅ 2 ⋅ d (2 x) = 2 ⋅ ∫ sen(2 x) ⋅ d (2 x) = − 2 ⋅ (cos(2 x)) 0

=−

0

π

2 0

=

0

 1   π  1 1 c os c os  c os ⋅ ⋅ − ⋅ = − ⋅ ( ( π ) − c os (0) ) = − ⋅ (− 1 − 1) = 1 . 2 ( 2 0 )     2  2 2 2   

2

Matemática 1


2

dx

∫

Exercício 4.

16 − x

0

2

∫ 0

2

dx

=

16 − x 2

.

2

 x  = arcsen    4 

dx

∫

4 2 − x 2

0

2

 2   0   − arcsen  =  4   4 

= arcsen 0

π π  1   − arcsen(0) = − 0 = . 6 6  2 

= arcsen

1

∫ x

Exercício 5.

0

dx 2

+ 4 x + 5

.

O polinómio do denominador denominador não tem raizes reais:

⇒ x=

x 2 + 4 x + 5 = 0

−4±

16 − 20

=

−4±

−4

.

2 2 Portanto é uma fracção elementar do terceiro tipo. 1

∫ x

dx 2

0

1

∫ x

=

+ 4 x + 5

0

= (arctg ( x + 2) )

1 0

dx 2

+ 4 x + 4 + 1

1

=

1

dx

∫ ( x + 2) 0

2

= +1

∫ 1

2

0

d ( x + 2) + ( x + 2)

2

=

= arctg (1 + 2) − arctg (0 + 2) = arctg (3) − arctg ( 2) .

π

2

Exercício 6.

∫ sen(2 x) dx . 0

1o

método :

π

π

2

2

π

1

1

2

1

∫ sen(2 x) dx = ∫ sen(2 x) ⋅ 2 ⋅ d (2 x) = 2 ⋅ ∫ sen(2 x) ⋅ d (2 x) = − 2 ⋅ (cos(2 x)) 0

=−

0

π

2 0

=

0

 1   π  1 1 c os c os  c os ⋅ ⋅ − ⋅ = − ⋅ ( ( π ) − c os (0) ) = − ⋅ (− 1 − 1) = 1 . 2 ( 2 0 )     2  2 2 2   

2

Matemática 1

2o


método :

π

π

π

π

 sen x    sen x dx senx x dx senx d senx = ⋅ ⋅ ⋅ = ⋅ ⋅ = ⋅ ( 2 ) 2 cos 2 ( ) 2 ∫ 0 ∫ 0 ∫ 0 2   2

2

2

2

 2  π    sen    2  12 sen 0 2     = 2⋅ − = 2 ⋅ 2  2 2      

−

2

= 0

0 2 

 = 1.

2 

π

2

cosx

∫ sen x dx .

Exercício 7.

3

π

6

π

π

π

2

2

2

c osx

∫ sen x 3

dx =

d ( senx )

∫ sen x 3

π

 ( sen x)

  − + 3 1  

∫

=

π

π

π

6

6

6

( sen x) − 3 ⋅ d ( sen x) = 

− 3+1

π

2

=− π

1  1  ⋅  2  sen 2 x 

=

π

6

6

      1  1 1  = − 1 ⋅ 1 =− ⋅ −   2  2 12 2  π  2  π   sen sen       2 6       

2

  1  1 3 ( ) − = − ⋅ − = 1 4 . 2  2 2  1       2  

1

∫ ( x − 2e )⋅ dx . x

Exercício 8.

0

 x 2  ∫ 0 ( x − 2e )⋅ dx = ∫ 0 x ⋅ dx − ∫ 0 2e ⋅ dx = ∫ 0 x ⋅ dx − 2 ⋅ ∫ 0 e ⋅ dx =   2  1

1

1

1

x

 12 =   2

−

1

x

0 2 

1

( )

x

1

− 2⋅ e

x

1

=

0

0

5

 − 2 ⋅ (e1 − e 0 ) = − 2e + 2 = − 2e . 2  2 2

8

∫ (

Exercício 9.

)

2 x + 3 x ⋅ dx .

0

8

∫ ( 0

3

)

2 x + x ⋅ dx =

8

∫ 0

8

2 x ⋅ dx +

∫ x ⋅ dx = 3

0

8

∫

1

8

∫

1

2 ⋅ x 2 ⋅ dx + x 3 ⋅ dx = 0

0

3

Matemática 1


 1 +1   x 2   2 ⋅  1 + 1    2 

=

8

8

 1 +1   x 3   + 1+  1   3 

0

8

3 2  2  2 ⋅ ⋅  x  3  

=

0

8

4 3  3  + ⋅ x  4  

= 0

0

3 3 4  2 2  3  43 2 2  2 3 3 4 2 2 3 100 3 2 = ⋅ 8 − 0  + ⋅ 8 − 0 3  = ⋅ 8 + ⋅ 8 = ⋅ 16 2 + ⋅ 16 = .  4   3  3 4 3 4 3   

2

2 x − 1

∫ x

Exercício 10.

3

1

2 x − 1

A função 2 x − 1 3

x + x

.

é racional.

x 3 + x

2 x − 1

=

⋅ dx

+ x

2

=

x( x + 1)

A

+

x

Bx + C

⇒ 2 x − 1 = Ax 2 + A + Bx 2

2

x + 1

2

+ Cx = ( A + B ) x + Cx + A

Obtemos o sistema:

 A + B = 0 ,   C = 2 ,  A = −1, 

 A = −1,   B = 1,  C = 2 . 

⇔

Portanto 2

2

 − 1 x + 2  ∫ 1 x 3 + x ⋅ dx = ∫ 1  x + x 2 + 1  ⋅ dx 2 x − 1

2

2

=−

2   x = − ∫ ⋅ dx + ∫  2 + 2  ⋅ dx x x x + + 1 1   1 1 2

=−

1

∫ x

⋅ dx +

1

(

= − l n x

1 2

2

⋅

∫ x 1

1

1

2

+1

2

=−

2

1

∫ x

⋅ dx +

1

⋅ d ( x + 1) + 2 ⋅

2

1

2

2

x + 2

∫ x ⋅ dx + ∫ x

2

1

2

1

∫ x 1

∫ x

+1

2

+1

2

x 2

1

1

⋅ dx =

+1

⋅ dx +

∫ x 1

2 2

+1

⋅ dx =

⋅ dx =

) 1 + 1 ⋅ (l n x 2 + 1 ) 1 + 2 ⋅ (arctg x ) 12 = − (l n 2 − l n1) + 1 ⋅ (l n 5 − l n 2) + 2

2

2

+ 2 ⋅ (arctg 2 − arctg 1) =

2

1 2

⋅ ln 5 −

3 2

 

⋅ l n 2 + 2 ⋅  arctg 2 −

π   1  5    = ⋅ l n   + 2 ⋅  arctg 2 −  . 4  2 4   8  

π

4

Matemática 1


b) Calcular os integrais efectuando a substituição de variável. π

2

∫ senx ⋅ cos

Exercício 11.

2

x ⋅ dx .

0

Fazemos a substituição senx = t . Então temos: dt senx = t ⇒ x = arcsen t ⇒ dx = e cos 2 x = 1 − sen 2 x = 1 − t 2 . 1 − t 2 Determinamos os limites de integração para a variável t :

⇒ t i nf

xi nf = 0

= sen(0) =

x s up =

0,

π

 π   =1  2 

⇒ t s up

2

= sen

Portanto π

1

2

∫ senx ⋅ cos

∫

2

x ⋅ dx = t ⋅ (1 − t ) ⋅

0

=−

1

⋅

2

∫ 1 − t

2

2

⋅ d (1 − t

)=−

0

⋅

2

1 − t ⋅ dt =

0

1

1

∫ t ⋅

2

∫ (1 − t ) 2

0

1 2

1

1

⋅

2

∫ 1 − t

2

2

⋅ d (t

)=

0

 1   2 2 +1  1 (1 − t ) 2  ⋅ d (1 − t ) = − ⋅  2  1  +1    2 

1

= 0

1

 3   2 2  1 (1 − t )  = − ⋅ 3 2      2 

1 

(1 − t )2  = − ⋅  3   3

1

2

=−

1 

⋅  1 −1

3 

0

(

2

)

3 2

−

(1 − 0 ) 2

3 2

 1 = 3. 

0

1

Exercício 12.

⋅ dt =

1 − t 2

0

1

1

1

2

∫ e

x

0

1 +e

−x

⋅ dx .

x Fazemos a substituição e = t . Então temos: dt e x = t ⇒ x = l n t ⇒ dx = . t Determinamos os limites de integração para a variável t :

⇒ t i nf

xi nf = 0

0

= e = 1,

1 x s up = 1 ⇒ t s up = e = e .

Portanto 1

∫ e

x

0

1

1 +e

− x

⋅ dx =

∫ 0

e

1 x

e +

1

⋅ dx =

∫ 1

e x

= arctg e − arctg 1 = arctg e −

π

4

1

⋅

1

1 t t + t

e

⋅ dt =

∫ t

2

1

1 +1

⋅ dt = (arctg t )

e

1

=

.

5

Matemática 1


4

Exercício 13.

∫ x ⋅

x 2 + 9 ⋅ dx .

0

2 x + 9 = t . Então temos:

Fazemos a substituição

x 2 + 9 = t ⇒ x 2 + 9 = t 2

t ⋅ dt

⇒ x = t 2 − 9 ⇒ dx =

.

2

t − 9

Determinamos os limites de integração para a variável t : xi nf = 0

⇒ t i nf

=

9 = 3,

⇒ t s up

x s up = 4

42 + 9 = 5 .

=

Portanto 4

5

∫

2

x ⋅ x + 9 ⋅ dx =

0

∫

2

t − 9 ⋅ t ⋅

3

2

Exercício 14.

∫ 0

5

 t 3  2 ⋅ dt = ∫ t ⋅ dt =   3  2 t − 9   3 5

t

dx x + 1 + ( x + 1)

3

= 3

53

−

3

33

=

3

98 3

.

.

x + 1 = t . Então temos:

Fazemos a substituição x + 1 = t ⇒ x + 1 = t 2

⇒ x = t 2 − 1 ⇒ dx = 2t ⋅ dt .


⇒ t i nf

=

1 = 1,

x s up = 2

⇒ t s up

=

2 +1 = 3 .

Portanto 2

∫ x + 1 + 3

2⋅

=

( x + 1)

0

=

2

dx

dt

∫ 1 + t

2

=

3

∫ 0

3

dx x + 1 + ( x + 1)

3

=

2t ⋅ dt

∫ t + t

3

1

(

3

3

=

2⋅

t ⋅ dt

∫ t (1 + t ) = 2

1

)

 π π  π − = .  3 4  6

2 ⋅ (arctg t ) 1 = 2 ⋅ arctg 3 − arctg 1 = 2 ⋅ 

1

π

2

Exercício 15.

dx

∫ 1 + sen x + cos x . 0

 x  Fazemos a substituição tg   = t . Então temos:  2  senx =

2

2t 2

1 + t

,

c os x =

1 − t

2

1 + t

.

6

Matemática 1


 x  tg   = t ⇒  2 

x

2

⇒ x = 2 ⋅ arctg t ⇒ dx =

= arctg t

2 ⋅ dt 1 + t 2

.


⇒ t i nf

= tg (0) =

x s up =

0,

π

⇒ t s up

2

 π   = 1.  4 

= tg 

Portanto π

2

1

dx

1

∫ 1 + sen x + cos x ∫ =

0

0

1

=

1

∫ 1 + t

1+

(

2t 2

1 + t

1 + t )

⋅ d (1 + t ) = l n

1 0

⋅

+

2 ⋅ dt

1 − t 2 1 + t 2

1

=

1

2 ⋅ dt

∫ 1 + t

2

2

+ 2t + 1 − t

0

=

dt

∫ 1 + t = 0

2

1 + t

(

1+1 − ln 1+ 0 ) = ln 2 .

= ln

0

4

dx

∫ 1 +

Exercício 16.

.

x

0

x = t . Então temos:

Fazemos a substituição x = t ⇒ x = t 2

⇒ dx = 2t ⋅ dt .


⇒ t i nf

=

0 =0,

x s up = 4

⇒ t s up

=

4 = 2.

Portanto 4

2

dx

∫ 1 +

=

x

0

2t ⋅ dt

∫ 1 + t

∫

2 ⋅ dt − 2 ⋅ 0

=

=

2⋅

0

2

=

2

2

1

∫ 1 + t

2

1 + t − 1

∫ 1 + t = 2 ⋅ ∫ 1 + t 0

2

⋅ dt =

0

⋅ d (1 + t ) =

 1 + t

2 ⋅ (t ) 0 − 2 ⋅ (l n 1 + t 2

1 

∫  1 + t − 1 + t  ⋅ dt =

2⋅  0

)

2

=

0

0

2 ⋅ ( 2 − 0) − 2 ⋅ (l n 1 + 2 − l n 1 + 0 ) = 4 − 2 ⋅ l n 3 . 0

Exercício 17.

∫ 1 +

dx 3

−1

Fazemos a substituição 3

t ⋅ dt

x +1 3

x + 1 = t ⇒ x + 1 = t 3

.

x + 1 = t . Então temos:

⇒ x = t 3 − 1 ⇒ dx = 3t 2 ⋅ dt .

7

Matemática 1


Determinamos os limites de integração para a variável t : xi nf = −1 ⇒

t i nf = 3 − 1 + 1 = 0 ,

⇒ t s up

x s up = 0

=

3

0 +1 = 1.

Portanto 0

1

dx

∫ 1 +

3

−1

=

x + 1

1

3t 2 dt

1

t 2 dt

 1 t 2 − 1  ⋅ dt = 3 ⋅ ∫   1 + t + 1 + t  ⋅ dt = 1 + t  0 

∫ 1 + t = 3 ⋅ ∫ 1 + t = 3 ⋅ ∫ 0

0

0

1

1

1 + t 2 − 1

1

(t − 1)(t + 1)   1  1  = 3 ⋅ ∫  + + t − 1 ⋅ dt =  ⋅ dt = 3 ⋅ ∫  1 + t 1 + t  1 + t  0  0  1

=

3⋅

1

∫ 1 + t

1

1

∫

∫

0

0

⋅ dt + 3 ⋅ t ⋅ dt − 3 ⋅ dt =

0

 12 = 3 ⋅ (l n 1 + 1 − l n 1 + 0 ) + 3 ⋅  2  3

x

∫

Exercício 18.

6 − x

0

6 − x

= t

x

⇒

x

6 − x 2

6 − x

0

 t 2  + 3⋅  2   

0 2 

1

− 3 ⋅ (t )

1

=

0

0

3

 − 3 ⋅ (1 − 0) = 3 ⋅ l n 2 − . 2  2

⋅ dx .

Fazemos a substituição x

−

3 ⋅ (l n 1 + t )

1

= t

= t . Então temos:

⇒ x = 6t

2

2

− x ⋅ t

⇒ x =

6t 2

⇒

1 + t 2

′

 6t 2  12t (1 + t 2 ) − 6t 2 ⋅ 2t 12t  ⋅ = ⋅ = ⋅ dt . dx =  dt dt 2  2 2 2 2 t + 1 (1 + t ) (1 + t )   Determinamos os limites de integração para a variável t : xi nf = 0

⇒ t i nf

=

x s up = 3 ⇒

0,

t s up = 1 .

Portanto 3

∫ 0

x

6 − x

1

⋅ dx =

12t

∫ (1 + t ) t ⋅

0

2 2

1

⋅ dt = 12 ⋅

t 2

∫ (1 + t ) 0

2 2

1

⋅ dt =

6⋅

t ⋅ 2t ⋅ dt

∫ (1 + t ) 0

2 2

1

=

2t ⋅ dt

∫ (1 + t )

6 ⋅ t ⋅ 0

2 2

=

Na continuação integramos por partes: U = t ,

dU = dt ;

8

Matemática 1


2t ⋅ dt

dV =

(1 + t )

2 2

, V =

2t ⋅ dt

d (t 2 )

d (1 + t 2 )

∫ (1 + t ) ∫ (1 + t ) ∫ (1 + t ) 2 2

=

2 2

=

2 2

(1 + t ) =

2 − 2+1

=−

− 2 +1

1 1 + t 2

.

Obtemos

  t  1 = 6 ⋅ −   2   1 + t  0 =

dt 

  1 = ⋅ 6  ∫ 0 1 + t 2  −  1 + 12  1

+

−

0  1 + ( ) = arctg t  2 0 1 + 0  

 1 π  3 ⋅ (π − 2) . + = 2  2 4 

6⋅−

1

Exercício 19.

∫ e

dx

x

0

+1

.

x Fazemos a substituição e = t . Então temos: dt e x = t ⇒ x = l n t ⇒ dx = . t

Determinamos os limites de integração para a variável t :

⇒ t i nf

xi nf = 0

x s up = 1 ⇒ t s up = e1 = e .

0

= e = 1,

Portanto 1

∫ e

e

dx

x

0

=

+1

e

dt

1 + t − t

∫ (t + 1) ⋅ t ∫ (t + 1) ⋅ t =

1

1

 1 + t t   − ∫ 1  (t + 1) ⋅ t (t + 1) ⋅ t  ⋅ dt = e

⋅ dt =

e e e  1 1  1 1  dt dt d t l n t = ∫  − ⋅ = ⋅ − ⋅ + = ( ) ( 1 ) ∫ 1 t ∫ 1 t + 1  t (t + 1)  1  1  e

(

− l n t + 1

e

)1

=

= (l ne − l n1) − (l n(e + 1) − l n 2) = l ne + l n 2 − l n(e + 1) = l n ( 2e) − l n(e + 1) = l n

3

Exercício 20.

∫ 1

dx

(1 + x 2 ) 3

2e e +1

.

.

Fazemos a substituição x = tg t . Então temos: dx =

dt c os 2 t

,

 sen t   1 + x 2 = 1 + (tg t ) = 1 +  t cos  

Porque x = tg t ⇒ variável t :

2

2

= 1+

sen 2 t

cos 2 t

=

cos 2 t + sen 2 t cos 2 t

=

1 cos 2 t

.

t = arctg x , determinamos os limites de integração para a

9

Matemática 1


xi nf = 1 ⇒

π

t i nf = arctg (1) =

x s up =

,

4

⇒ t s up

3

= arctg (

π

3) =

3

.

Portanto dt

π

3

3

dx

∫

(1 + x )

1

dx

∫

= 2 3

1

3

( 1 + x )

3

2

∫ 

=

π

4

dt

π

2

3

c os t

1     cos 2 t   

3

=

∫ 

π

4

dt

π

2

3

c os t

1    c os t  

=

3

∫ π

4

π

2

c os t = 1 3

c os t

3

3

c os t ⋅ dt

∫ π

2

=

cos t

4

π

3

=

3  π   π   − sen  =  3   4  2

π

∫

c os t ⋅ dt = (sent )

= sen

3 π

3

π

2

−

3− 2

=

2

.

2

4

c) Calcular os integrais aplicando o método de integração por partes. 1

∫ xe

Exercício 21.

−x

dx .

0

Fazemos: U = x

⇒ dU = dx ,

dV = e − x dx

⇒ V = ∫ e − x dx = −e − x .

Portanto 1

xe dx = ( x ⋅ (− e

∫

− x

− x

))

1

1

−

0

0

∫ (− e )dx = −( x ⋅ (e )) − x

− x

1

1

+

0

0

( ( ))

= − x ⋅ e

− x

1 0

( )

− e

−x

1

=−

0

∫

e

1

1

0

0

− x − x dx = −( x ⋅ (e )) + (− e ) =

− x

0

(1 ⋅ e

−1

−0⋅e

0

) − (e

−1

−e

0

) = − 1 − 1 +1 = 1− 2 . e

e

e

1 2

∫ arcsen x dx .

Exercício 22.

0

Fazemos: U = arcsen x

′

⇒ dU = (arcsen x ) dx =

1 1 − x

dV = dx

2

dx ,

⇒ V = ∫ dx = x .

Portanto 1

1

2

∫ arcsen x dx = ( x ⋅ arcsen x )

2

1

−

2 0

0

∫ 0

1

x

1 − x

2

dx = ( x ⋅ arcsen x )

1

= ( x ⋅ arcsen x )

1 2 0

+

1 2

2

⋅

2 0

−

1 2

2

⋅

∫ 0

d ( x 2 )

1− x

=

2

1 2

d ( − x )

∫ 0

1

1 − x

2


1 2 0

+

1 2

2

⋅

d (1 − x 2 )

∫ 0

1 − x

=

2

10

Matemática 1


1 1


1 2 0

+

2

1

2 ⋅ (1 − x )

−

∫

2

1 2

0

 1   2 − 2 +1  1 1 (1 − x ) 2  ⋅ d (1 − x ) = ( x ⋅ arcsen x ) 2 + ⋅  0 1 2    − +1    2

1  2  1     1   1   2  =  2 ⋅ arcsen 2  − 0 ⋅ arcsen(0) +  1 −  2            

2

= 0

  1 π π 3 3 2 − (1 − 0 ) 2  = ⋅ + −1 = + − 1. 2 6 4 12 2   1

π

3

x ⋅ dx

∫ sen

Exercício 23.

2

π

x

.

4

Fazemos:

⇒ dU = dx ,

U = x

dV =

dx 2

sen x

⇒ V = ∫

dx

= − ctg x .

2

sen x

Portanto π

3

π

x ⋅ dx

∫ sen x 2

= (− x ⋅ ctg x )

3 π

−

4

π

π

3

π

∫

( −ctg x) ⋅ dx = (− x ⋅ ctg x)

3 π

4

π

4

3

π

+

cos x

∫ sen x ⋅ dx = π

4

4

π

3

π

= − ( x ⋅ ctg x )

3 π

d ( sen x)

∫

+

4

sen x

π

π

= − ( x ⋅ ctg x )

3 π

π

(

+ l n senx

4

)3

π

=

4

4

=−

 π  π  π  π     π   ⋅ ctg   − ⋅ ctg    +  l n sen   3  4  4     3   3

 π   π (9 − 4 3 ) 1  3  + ⋅ ln  .  = 36 2  4    2 

− l n sen

π

Exercício 24.

∫ x

3

⋅ senx ⋅ dx .

0

Fazemos:

⇒ dU = 3 x 2 dx ,

U = x 3

dV = sen x dx

⇒ V = ∫ sen x dx = − cos x .

Portanto π

∫ x

π

3

(

3

⋅ senx ⋅ dx = − x ⋅ c os x

)

π

−

0

0

∫ 3 x

2

(

3

3

)

⋅ ( −c os x) ⋅ dx = − π ⋅ c os π + −0 ⋅ c os 0 +

0

π

∫

π

2

+ 3 ⋅ x ⋅ c os x ⋅ dx = 0

3 π

∫

2

+ 3 ⋅ x ⋅ c os x ⋅ dx = 0

11

Matemática 1


Integramos por partes:

⇒ dU = 2 xdx ,

U = x 2

dV = c os x dx

⇒ V = ∫ cos x dx = sen x .

Portanto na continuação temos:

=

3 π

 2 + 3 ⋅  ( x ⋅ senx ) 0 



π

π

−

∫

2 x ⋅ sen x ⋅ dx  =



0

π

=

3 π

+ 3⋅

(

π

2

)

2

π

∫

⋅ sen(π ) − 0 ⋅ sen(0) − 6 ⋅ x ⋅ sen x ⋅ dx =

3 π

∫

− 6 ⋅ x ⋅ sen x ⋅ dx =

0

0

Mais uma vez integramos por partes: U = x

⇒ dU = dx ,

dV = sen x dx

⇒ V = ∫ sen x dx = − c os x .

Portanto obtemos:

=

3 π

 − 6 ⋅  (− x ⋅ c os x ) 0 



π

π

−

∫

( −c os x) ⋅ dx  =



0

π

=

3 π

∫

+ 6 ⋅ (π ⋅ c os (π ) − 0 ⋅ c os (0) ) − 6 ⋅ c os x ⋅ dx = 0

= π − 6π − 6 ⋅ (sen x ) 3

π

0

= π − 6π − 6 ⋅ (sen (π ) − sen (0)) = π − 6π . 3

3

π

2

Exercício 25.

∫ e

2x

⋅ c os x ⋅ dx .

0

Fazemos: U = e 2 x

⇒ dU = 2 ⋅ e 2 x ⋅ dx ,

dV = cos x dx

⇒ V = ∫ c os x dx = sen x .

Portanto π

π

2

∫ e

2 x

(

⋅ c os x ⋅ dx = e

2 x

⋅ sen x

)

2

π

2 0

−

0

∫ 2 ⋅ e

2x

⋅ sen x ⋅ dx =

0

π

π

 2⋅   π  2⋅0 2 x =  e 2 ⋅ sen   − e ⋅ sen (0)  − 2 ⋅ ∫ e ⋅ sen x ⋅ dx = e    2  0   2

π

2

π

∫

− 2⋅ e

2x

⋅ sen x ⋅ dx =

0

Mais uma vez integramos por partes:

U = e 2 x

⇒ dU = 2 ⋅ e 2 x ⋅ dx ,

dV = sen x dx

⇒ V = ∫ sen x dx = − c os x .

12

Matemática 1


Na continuação temos:

  2 x = e − 2 ⋅ (− e ⋅ c os x ) 2  0 

π

π

  2 x = e + 2 ⋅ (e ⋅ c os x ) 2  0 

π

π

  2x − ∫ 2 ⋅ e ⋅ (− c os x ) ⋅ dx =  0  π

2

  2 x − ∫ 2 ⋅ e ⋅ c os x ⋅ dx = e  0  π

π

2

2

π

∫

− 2 − 4⋅ e

2x

⋅ cos x ⋅ dx

.

0

Portanto obtemos: π

π

2

∫ e

2

2 x


π

∫

− 2 − 4⋅ e

0

2x

⋅ c os x ⋅ dx .

0

Resolvemos a equação obtida em relação ao integral: π

π

2

∫

5⋅ e

2

2x


π

−2

e

0

∫ e

e −2 π

2x

⋅ c os x ⋅ dx =

0

5

.

e

Exercício 26.

∫ sen (l nx) dx . 1

Fazemos: U = sen (l nx) dV = dx

′ ⇒ dU = (sen (l nx) ) ⋅ dx = cos (l nx) ⋅

1 x

⋅ dx ,

⇒ V = ∫ dx = x .

Portanto e

∫

e

e

∫

sen (l nx ) dx = ( x ⋅ sen (l nx ) ) 1 − x ⋅ c os (l nx) ⋅

1

1

= (e ⋅ sen (l n(e)) − 1 ⋅ sen (l n (1)) ) −

1 x

⋅ dx =

e

e

1

1

∫ cos (l nx) ⋅ dx = e ⋅ sen(1) − ∫ cos (l nx) ⋅ dx =

Mais uma vez integramos por partes: U = c os (l nx)

dV = dx

′ ⇒ dU = (cos (l nx) ) ⋅ dx = −sen (l nx ) ⋅

1 x

⋅ dx ,

⇒ V = ∫ dx = x .

13

Matemática 1



 e = e ⋅ sen(1) −  ( x ⋅ c os (l nx )) 1 



e

−

∫

( − sen (l nx)) ⋅ dx  =



1

e

= e ⋅ sen(1) − (e ⋅ c os (l n(e)) − 1 ⋅ cos (l n(1)) ) −

∫ sen (l nx) ⋅ dx = 1

e

= e ⋅ sen(1) − e ⋅ c os (1) + 1 −

∫ sen (l nx) ⋅ dx . 1

Portanto obtemos: e

e

1

1

∫ sen (l nx) ⋅ dx = e ⋅ sen(1) − e ⋅ cos (1) + 1 − ∫ sen (l nx) ⋅ dx . Resolvemos a equação obtida em relação ao integral: e

2⋅

∫

e

∫

sen (l nx) ⋅ dx = e ⋅ sen(1) − e ⋅ c os (1) + 1 e

1

e ⋅ sen(1) − e ⋅ c os (1) + 1

sen (l nx) ⋅ dx =

2

1

1

arcsen x

∫

Exercício 27.

1 + x

0

.

⋅ dx .

Fazemos: U = arcsen x

1

′

⇒ dU = (arcsen x ) ⋅ dx =

1 − x dV =

1 1 + x

⇒ V = ∫

⋅ dx

1 1 + x

⋅ dx =

∫ (1 + x)

2

−

⋅ dx ,

1 2

⋅ d (1 + x) =

(1 + x ) −

1 2

−

1 2

+1

=

2 1 + x .

+1

Portanto 1

arcsen x

∫

1 + x

0

=

(2

⋅ dx =

(2

1 + x ⋅ arcsen x

)

1

1

−

0

∫

2 1 + x ⋅

1 1 − x

0

=

⋅ dx =

1

) ∫

1 + 1 ⋅ arcsen (1) − 2 1 + 0 ⋅ arcsen (0) − 2 1 + x ⋅ 0

=

2

2 2⋅

π

2

1

− 2⋅

∫ 0

1 1 − x

 2π + 4 ⋅  (1 − x )  

 2   

1

1

⋅ dx =

2π + 2 ⋅

∫ 0

1

= 0

1 1 − x

 2π + 4 ⋅  (1 − 1)  

1 − x ⋅ 1 + x

⋅ d (1 − x ) =

1 2

1

1

− (1 − 0)

2

⋅ dx =

1    (1 − x) − 2 +1   2π + 2 ⋅   − 1 +1     2 

1

= 0

  = 2π − 4 .   14

Matemática 1


1

∫ arctg

Exercício 28.

x ⋅ dx .

0

Fazemos: ′

1

⇒ dU = (arctg x ) ⋅ dx =

U = arctg x

1+

( x )

2

⋅

( x )′ ⋅ dx =

dx

2 x ⋅ (1 + x )

,

dV = dx ⇒ V = x . Portanto 1

∫ arctg

(

x ⋅ dx = x ⋅ arctg x

)

0

0

=

(1 ⋅ arctg

)

1 − 0 ⋅ arctg 0 −

1

1

1

∫

− x ⋅ 0

1

⋅

2

1

⋅ dx =

2 x ⋅ (1 + x)

x

∫ 1 + x

⋅ dx =

π

0

−

4

1

1

⋅

2

x

∫ 1 + x ⋅ dx = 0

Fazemos a substituição x = t ⇒ x = t 2

⇒ dx = 2t dt ;


⇒ t i nf

xi nf = 0

=

x s up = 1 ⇒

0 =0,

t s up = 1 = 1 .

Na continuação temos: =

π

4

=

=

−

1

1

⋅

2

t

∫ 1 + t

2

0

 1 + t 2 −   1 + t 2 4 ∫ 0 

π

π

4

⋅ 2t ⋅ dt =

− (t )

1 0

1

−

4

 ⋅ dt =

1 + t 2 

+ (arctg t )

1 0

=

π

4

t 2

∫ 1 + t

2

⋅ dt =

0

1 

1

−

π

π

4

1

−

1 + t 2 − 1

∫ 1 + t

2

⋅ dt =

0

1

1

1

π 1  1  − ∫ 1 − ⋅ = − + ⋅ dt = dt dt  ∫ 2 4 0  1 + t 2  4 ∫ + 1 t 0 0

π

− (1 − 0) + (arctg (1) − arctg (0)) =

π

2

−1.

1

Exercício 29.

∫ x ⋅ l n (1 + x

2

) ⋅ dx .

0

Fazemos: U = l n (1 + x 2 ) dV = x dx

′

⇒ dU = (l n (1 + x 2 ) ) ⋅ dx =

⇒ V =

x 2

2

1 1 + x

2

⋅

(1 + x )′ ⋅ dx = 2 x ⋅ dx , 2

1 + x 2

.

Portanto

15

Matemática 1


 x 2 2 2   ⋅ + ⋅ = ⋅ + x l n x dx l n x ( 1 ) ( 1 )  ∫ 0  2   1

1

1

−

x 3

∫ 1 + x

2

⋅ dx =

0

0

1  12 02 x + x 3 − x 2 2  =  2 ⋅ l n (1 + 1 ) − 2 ⋅ l n (1 + 0 )  − ∫ 1 + x 2 ⋅ dx =   0

=

=

=

1

1 1 1 x  x  ⋅ l n ( 2) − ∫  x − ⋅ = ⋅ − ⋅ + ⋅ dx = ( 2 ) dx l n x dx  2 2 ∫ ∫ 2 2 + + 1 1 x x   0 0 0

1

 x 2  ⋅ l n (2) −   2  2  

1

1 2

⋅ l n ( 2) −

1

1

+

2

2

1

+

1 2

0

(

1

⋅

d (1 + x 2 )

∫

=

1 + x 2

0

2

⋅ l n (1 + 1

1 2

⋅ l n ( 2) −

1

+

2

) − l n (1 + 0 2 ) ) = l n (2) −

1 2

1 2

(

⋅ l n (1 + x

2

1

)) = 0

.

1

Exercício 30.

∫ l n (1 + x) ⋅ dx . 0

Fazemos: U = l n (1 + x) dV = dx

′ ⇒ dU = (l n (1 + x) ) ⋅ dx =

⇒ V = x .

1 1 + x

⋅ dx

,

Portanto 1

∫ l n (1 + x) ⋅ dx = ( x ⋅ l n (1 + x)) 0

1 0

1

−

1

x

0

1

1 + x − 1

∫ 1 + x ⋅ dx = (1 ⋅ l n (1 + 1) − 0 ⋅ l n (1 + 0)) − ∫ 1 + x

2

⋅ dx =

0

1

1

1  1  = l n ( 2) − ∫ 1 − ⋅ d (1 + x) =  ⋅ dx = l n (2) − ∫ dx + ∫ + + 1 1 x x   0 0 0 1

= l n ( 2) −

1

1

∫ dx + ∫ 1 + x ⋅ d (1 + x) = l n (2) − ( x) 0

1 0

+ (l n (1 + x ))

1 0

=

0

= l n ( 2) − (1 − 0) + (l n (1 + 1) − l n (1 + 0) ) =

2 ⋅ l n ( 2) − 1 .

16

Matemática 1


d) Calcular os integrais.

π

2

x + sen x

∫ 1 + cos x ⋅ dx .

Exercício 31.

π

6

 x  Fazemos a substituição tg   = t . Então temos:  2  senx =

2t 1 + t 2

,

c os x =

 x  tg   = t ⇒  2 

x

2

1 − t 2 1 + t 2

= arctg t

.

⇒ x = 2 ⋅ arctg t ⇒ dx =

2 ⋅ dt 1 + t 2

.

Determinamos os limites de integração para a variável t : xi nf =

π

6

⇒ t i nf

 π  , 12  

= tg 

x s up =

π

2

⇒ t s up

 π   = 1. 4  

= tg 

Portanto π

2

x + sen x

∫ 1 + cos x

1

 π  tg    12 

π

6

2 ⋅ arctg t +

1

=

∫

⋅ dx =

1+

∫

1 + t 2

∫  π  tg    12 

2 ⋅ arctg t +

2t

1 + t 2 ⋅ 2 ⋅ dt = 1 + t 2 + 1 − t 2 1 + t 2 1 + t 2

2t 1

∫ π

1

2⋅

1 + t 2 ⋅ 2 ⋅ dt = 1 − t 2 1 + t 2

1

2t   1 + t 2 ⋅ 2 ⋅ dt = arctg t ⋅ + ⋅ dt = 2  2  2 + t 1 + t 2 1     tg   2  12  1 + t

 π  tg    12 

=

2t

2 ⋅ arctg t +

1

∫

∫

arctg t ⋅ dt + 2 ⋅

 π    12 

t 2  1 + t

⋅ dt =

 π   12 

tg 

tg 

Integramos por partes o primeiro integral: U = arctg t ⇒

dU =

1 1 + t 2

⋅ dt ;

dV = dt ⇒ V = t .


17

Matemática 1


 1   = 2 ⋅  t ⋅ arctg (t )   tg      12   π

 1  t t − ∫ ⋅ dt  + 2 ⋅ ∫ ⋅ dt = 2 2 + + t t 1 1      tg  tg     12   12   1

π

π

1 1    π    t t π    tg  = 2 ⋅ 1 ⋅ arctg (1) − tg  ⋅ arctg  − 2 ⋅ ∫ ⋅ dt + 2 ⋅ ∫ ⋅ dt =      2 2   12 12 t t + + 1 1             tg   tg  

=

 π

2 ⋅ 

−

 4

π

12

π

π

 12 

 12 

 π   π π  π    = − ⋅ tg   .  12   2 6  12 

⋅ tg 

π

2

∫

sen 3 x ⋅ cos x ⋅ dx .

Exercício 32.

0

1o

método :

π

π

2

2

∫ sen x ⋅ 3

∫

2

2

c os x ⋅ dx = sen x ⋅ cos x ⋅ sen x ⋅ dx =

0

=−

π

0

π

2

2

∫ (1 − cos x )⋅

cos x ⋅ d (cos x) = −

0

   (c osx ) 12 +1   = − 1   +1    2 

2

0

cos x ⋅ d (−cos x) =

π

2

1

5

∫ (cosx) 2 ⋅ d (cos x) + ∫ (cosx) 2 ⋅ d (cos x) = 0

π

0

π

   (cosx ) 52 +1   + 5   +1    2 

3  2    π   2 c os = − ⋅     3    2   

2o

2

0

π

2

∫ (1 − cos x)⋅

2

π

2   ⋅  (c osx ) 2  3   3

=−

2 0

π

2   ⋅  (c osx ) 2  7   7

+

2

=

0

0

7    2    π   2 − (c os (0)) 2  + ⋅    c os  2   7         3

  2 2 − (c os (0 )) 2  = −  3 7  7

=

8 21

.

método :

Porque a função sen x tem exponente impar fazemos a seguinte substituição de variável: c os x = t ,

sen 2 x = 1 − c os 2 x = 1 − t 2 ,

senx dx = − d (c os x ) .

18

Matemática 1



⇒ t i nf

xi nf = 0

= c os (0) = 1 ,

x s up =

π

2

 π  =0 2  

⇒ t s up

= c os

Portanto π

π

2

2

∫ sen x ⋅

2

∫

3

2

cos x ⋅ dx = sen x ⋅ c os x ⋅ sen x ⋅ dx =

0

0

0

=−

π

∫ (1 − t )⋅ 2

1

2

cos x ⋅ ( −d (c os x)) =

0

1

t ⋅ d t =

∫ (1 − cos x )⋅

∫ (1 − t )⋅ 2

0

 1 +1  1 1 1 5  t 2  2 2  = ∫ t ⋅ d t − ∫ t ⋅ d t =   1 +1 0 0    2 

1

0

 12 t ⋅ d t = ∫  t  0 

5

1

 5 +1   t 2   −  5 + 1    2 

− t 2

  ⋅ d t =  

1

=

3 2  2   ⋅ t  3  

1

0

7 2  2   − ⋅ t  7  

1

= 0

2 3

−

2 7

8

=

21

.

0

2

∫ ( x

Exercício 33.

3

− 2 x ) ⋅ l n x ⋅ dx .

1

Integramos por partes. Fazemos: 1 ′ U = l n x ⇒ dU = (l n x ) ⋅ dx = ⋅ dx , x 3

dV = ( x − 2 x ) ⋅ dx

⇒ V = ∫ ( x

3

− 2 x) ⋅ dx

⇒ V =

x 4

4

−x

2

.

Portanto

  x 4 3 ∫ 1 ( x − 2 x) ⋅ l n x ⋅ dx =   4 2

  2 4 =   4  

  14 − 2  ⋅ln 2 −   4   2

2

 2   l n x − x  ⋅     1

x 3

2

− x

2

 1  ⋅ ⋅ dx =  x

2  2  x 3    x 3     − 1  ⋅ l n 1 − ∫     4 − x  ⋅ dx = − ∫  4 − x  ⋅ dx =    1   1  2

2

 x 4   = − ∫ ⋅ dx + ∫ x ⋅ dx = −  4  16  1 1 1 2

 x 4 − ∫   4 1  2

2

 x 2  +  2    1

 2 4 = −  16 

14 

 2 2  − +  16   2

−

12 

15

3

 = − + 2  16 2

=

9 16

.

19

Matemática 1


2

4 2 − x − 2 + x

∫ (

Exercício 34.

)

2 + x + 4 2 − x ⋅ ( x + 2)

0

2

⋅ dx .

Transformamos a função integranda de modo a obter expressões de forma

2

∫ ( 0

2

4 2 − x − 2 + x

)

2 + x + 4 2 − x ⋅ ( x + 2) 2 2 − x

Fazemos a substituição

2 + x

⋅ dx =

∫  0

2

= t

4⋅

2 − x 2 + x

2 + x

.

−1

2 − x   ⋅ ( x + 2) 2 2 + x 

1 + 4 ⋅  

2 − x

⋅ dx = (∗)

.

Então 2 − x

2

= t

2 + x x =

2 − 2 ⋅ t 2 t 2 + 1

⇒ 2 − x = t 2 ⋅ (2 + x) ⇒ 2 − x = 2 ⋅ t 2

=

4 − 2 − 2 ⋅ t 2 t 2 + 1

=

4 − ( 2 + 2 ⋅ t 2 ) t 2 + 1

=

4 t 2 + 1

2

+ t ⋅ x

−

⇒ 2 − 2 ⋅ t 2

( 2 + 2 ⋅ t 2 ) t 2 + 1

=

4 t 2 + 1

2

= x ⋅ (t + 1)

⇒

− 2.

Portanto 8 t  4   4  d − = = − ⋅ dt . 2    2 2 2 2  t + 1   t + 1  ( t + 1 )

dx = d 


⇒ t i nf

=

2−0 2+0

= 1,

x s up = 2

⇒ t s up

=

2−2

=

2+2

0.


  0 (4 ⋅ t − 1) ⋅ 8t 8t  ⋅ − ⋅ dt  = ∫ ⋅ dt = (∗) = ∫ 2  2 2  t ⋅ ( + ⋅ ) 16 1 4 4 ( t + 1 )  1  1 (1 + 4 ⋅ t ) ⋅  − 2 + 2    2  t + 1  0

0

=

4 ⋅ t − 1

(4 ⋅ t − 1) ⋅ 8t

1

1

4 ⋅ t 2 − t

∫ 16 ⋅ (1 + 4 ⋅ t ) ⋅ dt = − 2 ⋅ ∫ 4 ⋅ t + 1 ⋅ dt = 1

0

A função integranda é racional irregular. Dividimos o polinómio do numerador pelo polinómio do denominador e obtemos: 1

1

1

1

1  1 1  1  1  1 1   1 1 = − ⋅ ∫  t − + ⋅  ⋅ dt = − ⋅ ∫ t ⋅ dt − ⋅ ∫  −  ⋅ dt + ⋅ ∫  ⋅  ⋅ dt = 2 0  2 2 4 ⋅ t + 1  2 0 2 0  2  2 0  2 4 ⋅ t + 1  1

20

Matemática 1

=−

1 2

1

∫

⋅ t ⋅ dt + 0

1  t 2   = − ⋅ 2  2 

=−


1  12 ⋅

2  2

1

−

1 4

1

∫

⋅ dt + 0

1 4

1

⋅

1

∫ 4 ⋅ t + 1 0

 1   1  + ⋅  t  + ⋅  l n 4 ⋅ t + 1   4   0 16   1

0

⋅ dt = −

0 2 

1

1 2

1

∫

⋅ t ⋅ dt + 0

1 4

1

∫

⋅ dt +

16

1

⋅

1

∫ 4 ⋅ t + 1 ⋅ d (4t + 1) = 0

1

= 0

1

 + ⋅ (1 − 0) + ⋅ l n 4 ⋅ 1 + 1 − l n 4 ⋅ 0 + 1 2  4 16

Exercício 35.

0

1

=−

1 4

+

1 4

+

ln 5

16

=

ln5

16

.

Calcular a área da região plana A = {( x, y ) ∈ R 2 : y ≤ 2 − x 2 ∧ y ≥ x }.

A região é limitada pelo gráfico da parábola y = 2 − x 2 orientada em baixo e pela recta y = x . O esboço da região é apresentado na figura 1. Os limites de variação (integração) da variável x é o segmento que é a projecção da região sobre o eixo O x . Portanto para determinar os limites de integração determinamos as abcissas dos pontos de intersecção da parábola y = 2 − x 2 com a recta y = x : y = x ∧ y = 2 − x 2

x =

−1 ±

2

9

=

⇒ x = 2 − x 2

−1± 3

2

⇒ x 2 + x − 2 = 0 ⇒

⇒ x = −2 ∨ x = 1 .

21

Matemática 1


Porque a linha que delimita a região na parte de baixo é dada analiticamente só por uma função e a linha que delimita a região na parte de cima também é dada analiticamente só por uma função temos: 1

S A =

∫ (2 − x

2

1

)

∫ 2 dx − ∫ x

− x dx =

−2

−2

 13 = ( 2 ⋅ 1 − 2 ⋅ ( −2)) −  3 

Exercício 36.

1

−

1

2

∫

dx − x dx = ( 2 x)

−2

( −2) 3   12

− 3   2

1 −2

−2

−

(−2) 2 

9

 x 3  −  3    3

 = 6− + 2  3 2

=

9 2

1

−2

 x 2  −  2   

1

= −2

.

Calcular a área da região plana A = ( x, y ) ∈ R 2 : y 2 ≥ 2 x + 4 ∧ y ≥ x − 2 .

A região é limitada pelo gráfico da parábola y 2 = 2 x + 4 orientada no sentido positivo do eixo O x e pela recta y = x − 2 . O esboço da região é apresentado na figura 2.

Porque y 2 = 2 x + 4

⇔

coordenadas

( − 2, 0 )

x =

1

y 2 − 2 concluímos que o vértice B da parábola tem as

2 e a parábola intersecta o eixo O y nos pontos C = ( 0 , − 2 ) e

D = ( 0 , 2 ) . Determinamos as coordenadas dos pontos de intersecção da parábola y 2 = 2 x + 4 com a recta y = x − 2 : y 2 = 2 x + 4 ∧ y = x − 2

⇒ ( x − 2) 2

= 2 x + 4

⇒ x 2

− 4 x + 4 = 2 x + 4

⇒

22

Matemática 1


x 2 − 6 x = 0 ⇒ x = 0 ∨ x = 6 . Calculemos a área da região.

1o

método

A projecção da região sobre o eixo O x é o segmento [ − 2 , 6 ] . Porque a linha que delimita a região na parte de baixo é dada analiticamente por duas funções a área da região representa a soma das áreas das regiões ( BCD) e (CDE ) . A região ( BCD) é limitada na parte de baixo pelo ramo y = − 2 x + 4 , na parte de cima pelo ramo y =

2 x + 4 da parábola e a sua projecção sobre o eixo O x é o

segmento [ − 2 , 0 ] . Portanto 0

S ( BCD ) =

∫ (

(

0

))

2 x + 4 − − 2 x + 4 dx =

−2

∫ 2 ⋅

2 x + 4 dx =

−2

1    (2 x + 4) 2 +1   = ∫ (2 x + 4) 2 d (2 x + 4) =  1   −2 +1    2 

∫

2 x + 4 d (2 x + 4) =

−2

0 3  2  = ⋅  ( 2 x + 4) 2   3  

1

0

0

0

= −2

2 3

3

2

⋅ 42 =

3

⋅4

4=

16 3

.

−2

A região (CDE ) é limitada na parte de baixo pela recta y = x − 2 , na parte de cima pelo ramo y =

2 x + 4 da parábola e a sua projecção sobre o eixo O x é o

segmento [ 0 , 6 ] . Portanto 6

S ( CDE ) =

∫ (

6

)

2 x + 4 − ( x − 2) dx =

0

1

=

2

6

⋅

1

∫ (2 x + 4)

1 2

6

∫

∫

0

0

d (2 x + 4) − x dx + 2 dx =

0

6

0

 x 2  −  2   

⋅ (64 − 8) − 18 + 12 =

56

S A = S ( BCD ) + S (CDE ) =

3

16 3

+

6

+ 2 ⋅ ( x )

6 0

0

−6 =

38 3

=

38 3 54 3

∫

6

6

∫

∫

0

0

2 x + 4 dx − x dx + 2 dx =

0

6

3 Portanto

2o

)

2 x + 4 − x + 2 dx =

0

3  1  = ⋅  ( 2 x + 4) 2   3  

=

∫ (

6

1   +1   1 ( 2 x + 4) 2   ⋅ 1 2   +1    2 

6

 x 2  −  2   

6

+ 2 ⋅ ( x )

6 0

=

0

0

3 3   6 2 0 2  1  2 2 = ⋅  ( 2 ⋅ 6 + 4) − ( 2 ⋅ 0 + 4)  −    2 − 2  + 2 ⋅ (6 − 0) = 3    

.

= 18 .

método Observamos que em relação ao eixo O y a região é limitada à esquerda

pela parábola x =

1 2

2

y − 2 , à direita pela recta x = y + 2 e a sua projecção sobre o eixo

O y é o segmento [ − 2 , 4 ] . Portanto

23

Matemática 1


4

1 2  S A = ∫  y + 2 − y 2 − 2 4

 (4 + y) 2  =  2   

− −2

Exercício 37.

4

4

4

1 2  1   2 + 2  dy = ∫  4 + y − y  dy = ∫ (4 + y ) d ( 4 + y ) − ⋅ ∫ y dy = 2  2 −2  − 2 −2

1  y 3 

 ⋅ 2  3 

4

−2

 8 2 =  2 

−

2 2 

−

2 

1  4 3

⋅ − 2  3

( −2) 3 

 = 30 − 12 = 18 .

3 

Calcular a área da região plana

A = {( x, y ) ∈ R 2 : x 2 + ( y − 1) 2 ≥ 1 ∧ x 2 + ( y − 2) 2 ≤ 4 ∧ y ≥ x 2

}.

A região é situada fora da circunferência x 2 + ( y − 1) 2 = 1 , dentro da circunferência x 2 + ( y − 2) 2 = 4 e entre os ramos da parábola y = x 2 . O esboço da região é dado na figura 3 e porque as funções que delimitam a região são pares concluímos que a região é simétrica em relação ao eixo O y . Portanto para determinar a área S A da região calculemos a área S da metade da região situada á direita do eixo O y e multiplicamos o resultado obtido por dois. A metade da região situada á direita do eixo O y é limitada na parte de baixo pela circunferência x 2 + ( y − 1) 2 = 1 (mais precisamente pela semicircunferência y = 1 + 1 − x 2 )

e pela parábola y = x 2 . Na parte de cima é limitada pela

semicircunferência y = 2 + 4 − x 2 . Determinamos os pontos de intersecção da parábola com as circunferências:

 y = x 2    x 2 + ( y − 1) 2   y = x 2    y = 0 

∨

⇔ =1

 y = x 2    y = 1 

 y = x 2    y + y 2 − 2 y + 1 = 1 

⇔

⇔

 y = x 2    y 2 − y = 0 

⇔

 y = x 2    y = 0 ∨ y = 1 

⇔

( x, y ) = (0, 0) ∨ ( x, y ) = (−1, 1) ∨ ( x, y ) = (1, 1) .

24

Matemática 1


Para metade da região situada á direita do eixo O y temos os pontos ( x, y ) = (0, 0) e ( x, y ) = (1, 1) de intersecção da parábola com a circunferência x 2 + ( y − 1) 2 = 1 .

 y = x 2    x 2 + ( y − 2) 2   y = x 2    y = 0 

⇔ =

4

 y = x 2    y = 3 

∨

 y = x 2    y + y 2 − 4 y + 4 = 4 

⇔

 y = x 2    y 2 − 3 y = 0 

⇔

⇔

 y = x 2    y = 0 ∨ y = 3 

( x, y ) = (0, 0) ∨ ( x, y ) = (− 3 , 3) ∨ ( x, y ) = ( 3 , 3) .

Para metade da região situada

á direita do eixo O y temos os pontos

( x, y ) = (0, 0) e ( x, y ) = ( 3 , 3) de intersecção da parábola

com a circunferência

x 2 + ( y − 2) 2 = 4 .

Portanto a projecção da parte direita da região sobre o eixo O x é o segmento 0 , 3 . Calculemos a área dela S : 1

3

∫ (2 +

S=

2

4 − x − 1 − 1 − x

2

)dx + ∫ (2 +

0

1

1

=

3

∫ (1 +

2

4 − x − 1 − x

2

)dx + ∫ (2 +

0

1

∫ d x + ∫ 0

1

4 − x dx −

∫

∫

0

0

1 0

4 − x dx −

∫

4 − x dx −

1

1

4 − x dx −

∫

∫

∫

1

1

1 − x dx + 2 d x − x 2 dx =

∫ 1 − x

2

dx + 2 ⋅ ( x)

3 1

 x 3  −  3   

1 − x 2 dx + 2 3 − 2 − 3 +

0

2 3

3

+

∫ 0

1

2

4 − x dx −

∫

4 − x dx − x 2 dx = 1

1

2

3

2

3

0

0

3−

∫

1

2

3

∫

∫ 3

2

0

0

= 1+

∫

3

dx + 2 d x +

1

2

3

+

3

2

0

3

d x +

= ( x )

=

∫ 1 − x

2

0

1

=

)

4 − x 2 − x 2 dx =

1

1

=

)

4 − x 2 − x 2 dx =

∫ 1 − x 0

2

dx =

3−

2 3

1

3

= 1

=

3 3

+ 2⋅

∫ 0

2

1

 x  1 −   dx − ∫ 1 − x 2 dx = (∗)  2  0

25

⇔

Matemática 1


No primeiro integral fazemos a substituição x = 2 sen t . Então

 x  1−    2 

d x = 2 ⋅ c os t ⋅ d t e

2

1 − sen 2 t =

=

c os 2 t = c os t


xi nf

=

0 ⇒ t i nf

x s up =

 xi nf   2  = arcsen (0) = 0 ,    3  π  x s up    = arcsen  = arcsen   2   2 = 3.    

= arcsen 

⇒ t s up

3

No segundo integral fazemos a substituição x = sen u . Então 2 2 1 − x = 1 − sen u =

d x = c os u ⋅ d u e

c os 2 u = c os u

Determinamos os limites de integração para a variável u :

)

⇒ u i nf

xi nf = 0

= arcsen x i nf = arcsen (0) =

u s up = arcsen ( x s up ) = arcsen (1) =

x s up = 1 ⇒

0, π

2

.

Na continuação temos: π

(∗) = 3 −

2 3

+ 2⋅

=

=

3−

3−

3

2 3

+ 2⋅

∫ 2 ⋅ cos t ⋅ dt − ∫ cos u du =

=

3− 3−

2 3 2 3

2

0

1 + c os ( 2α ) 2

=

1

c os ( 2α )

+

2

2

temos:

π

π

3

 1 cos(2 u )  ∫ 0  2 + 2  du = 2

∫

(1 + cos( 2t ) ) ⋅ dt − 

0

π

π

3

3

∫

+ 2 ⋅ d t + 0

   

+ 2 ⋅  t 

π

1

3 0

π

2

1

2

∫ cos(2t ) ⋅ d (2 t ) − 2 ⋅ ∫ du − 4 ⋅ ∫ cos(2 u) ⋅ d (2 u) = 0

π

=

2

2

0

2 Como cos α =

2

π

3

0

π









+  sen ( 2t ) 

π

π

3

− 0

0

1   ⋅u  2  

2 0

−

1   ⋅  sen ( 2 u )  4  

2

= 0

 1  π  1  π    2π  sen sen  − ⋅  − 0  − ⋅ (sen (π ) − sen (0) ) = − 0 +  − ( 0 )    3 3       2  2  4

+ 2⋅

26

Matemática 1

=

3−

2


+ 2⋅

3

π

3

+

3

−

2

π

=

9 3−4

4

+

6

5π

.

12

Portanto

 9 3 − 4 5π  9 3 − 4 5π = . + +  6  12 3 6  

S A = 2S = 2 ⋅ 

Calcular o comprimento da linha dada pela função f ( x ) = l n x , com

Exercício 38.

x ∈ 2 2 , 2 6 . b

Para calcular o comprimento da linha utilizamos a fórmula l =

∫ 1 + [ f ′( x)]

2

⋅ dx .

a

Temos: a = 2 2 , b = 2 6 , f ′( x ) =

1

.

x

Portanto 2 6

∫

l=

2 2

 1  1+    x 

2

2 6

x 2 + 1

∫

⋅ dx =

x 2

2 2

2 6

x 2 + 1

∫

⋅ dx =

x

2 2

⋅ dx = (∗)

Integramos por substituição. x 2 + 1 = t ⇒ x 2 + 1 = t 2

Fazemos d x =

′ − 1 ⋅ dt =

)

( t

2

t

⇒ x 2

2

= t − 1

⇒ x = t 2 − 1 .

⋅ d t .

2

t − 1

Determinamos os limites de integração para a variável t : xi nf = 2 2

⇒ t i nf

=

(x )

x s up = 2 6

⇒ t s up

=

(x )

2

+1 =

i nf

2

+1 =

s up

(2 2 )

2

(2 6 )

2

+1 =

+1 =

9 = 3,

25 = 5 .

Na continuação temos: 5

(∗) =

∫ 3

5

t 2

t − 1

⋅

5

t

⋅ dt =

2

t − 1 5

∫ t

t 2

2

3

−1

5

⋅ dt =

∫ 3

 t 2 − 1 1   dt ⋅ = + 2 ∫ 3  t 2 − 1 t 2 − 1  ⋅ dt = t − 1

t 2 − 1 + 1

5

5

1  1  = ∫ 1 + 2 ⋅ dt =  ⋅ dt = ∫ dt + ∫ 2 t t − − 1 1   3 3 3 Representamos a fracção racional como soma de fracções elementares:

27

Matemática 1


1  A = ,   A + B = 0 A B 1 2 ⇒ 1 = ( A + B) ⋅ t + ( A − B) ⇒  ⇒  = + 2 1 A B − = 1 t − 1 t − 1 t + 1   B = − . 2  Então: 1   1 5 5 5   1 1 1 1 2 2  ⋅ dt = ∫ dt + ⋅ ∫ = ∫ dt + ∫  − ⋅ dt − ⋅ ∫ ⋅ dt = − − − + 1 1 2 1 2 1 t t t t   3 3 3 3 3     5

5

  =  t    =

5

3

1   + ⋅  l n (t − 1)  2  

(5 − 3) +

5

3

1   − ⋅  l n (t + 1)  2  

5

= 3

1   1   ⋅ l n (5 − 1) − l n (3 − 1) − ⋅ l n (5 + 1) − l n (3 + 1) =  2   2    

















1 1 1 2  16  = 2 + ⋅ l n ( 4) − l n (2) − l n (6) + l n ( 4)  = 2 + ⋅ l n (16)− l n (12)  = 2 + ⋅ l n  .  = 2 + ln   2  2  2 3  12 

Exercício 39.

 

com x ∈  0 ,

Calcular o comprimento da linha dada pela função f ( x) = l n (c os x) ,

 . 6 

π

b

Para calcular o comprimento da linha utilizamos a fórmula l =

∫

1 + [ f ′( x)] ⋅ dx . 2

a

Temos: a = 0 , b =

  , f ′( x) =  l n (cos x)  6  

π

′ =−

sen x c os x

.

Portanto

π

6

l=

∫ 0

π

 sen x   1 +  − c os x  

2

6

⋅ dx =

π

2

sen x

6

∫ 1 + cos x ⋅ dx = ∫ 2

0

0

π

2

2

c os x + sen x 2

c os x

6

⋅ dx =

1

∫ cos x ⋅ dx = (∗) 0

Integramos por substituição. 2 1 − t  x  Fazemos tg   = t ⇒ x = 2 ⋅ arctg (t ) ⇒ dx = . ⋅ d t . c os x = 2 2 1 + t 1 + t  2  2


28

Matemática 1

⇒ t i nf

xi nf = x s up =


π

⇒ t s up

6

 xi nf   2  = tg (0) = 0 ,    x s up   π   = tg  = tg  .  2  12    

= tg 

Na continuação temos:  π    12 

 π    12 

tg 

∫

(∗) =

0

tg 

1

⋅

2

1 − t 2 1 + t 2

∫

⋅ d t =

0

2 1 − t 2

⋅ d t =

2

1 + t Representamos a fracção racional como soma de fracções elementares:  A − B = 0 A B 2 A B t A B ⇒ ⇒ ⇒ = + = − ⋅ + + 2 ( ) ( )  A B + = 2 1 − t 2 1 − t 1 + t 

 A = 1,   B = 1.

Então:  π    12 

tg 

=

∫ 0

1   1 +   ⋅ d t =  1 − t 1 + t 

 π    12 

 π    12 

tg 

=−

∫ 0

  

 π    12 

 π    12 

tg 

= − ln

∫ 0

tg 

1 1 − t

tg 

1 1 − t

⋅ d (1 − t ) +

∫ 0

 π    12 

1 − tg 

− ln

1 1 + t

⋅ d t +

∫ 0

1 1 + t



⋅ d (1 + )t = −  ln

 



⋅ d t =



 π    12 

tg 

1 − t 



 π   



+ ln



0



 π    12 

tg 

1 + t 



= 0



1 − 0  +  l n 1 + tg   − l n 1 + 0  = 12

 



   π   π    π    1 + tg     cos   + sen    π   π   12   = l n   12   12   = = l n 1 + tg   − l n 1 − tg   = l n    π    π   π    12   12  tg c os sen − − 1          12    12      12     π  π     π   π      cos   + sen c os sen   ⋅ −             12  12 12        12    = ln = 2   π   π     c os − sen         12     12        3   π   π   π   c os 2   − sen 2      cos      12 12 6        = l n  2  = l n 3 .   = ln  = ln     1  π   π   π   2  π  2  π   c os   − 2 ⋅ c os   ⋅ sen  + sen     1 − sen   1−   12   12   12   12    6    2   

29

Integral Definido. Exercicios Resolvidos

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