Evaluate #int_0^4 ##int_(sqrtx)^2 sqrt(1+y^3) dydx#=?

Evaluate #int_0^4 ##int_(sqrtx)^2 sqrt(1+y^3) dydx#=?

1 Answer
Ultrilliam
Jun 24, 2018

#= 52/9#

Explanation:

#int_(x=0)^4 int_(y=sqrtx)^2 sqrt(1+y^3) dydx#

Switch order of integration:

#= int_(y=0)^2 int_(x=0)^(y^2) sqrt(1+y^3) dxdy#

#= int_(y=0)^2 [ x sqrt(1+y^3) ]_(x=0)^(y^2) dy#

#= int_(y=0)^2 y^2 sqrt(1+y^3) dy#

#= int_(y=0)^2 d/dx [ 2/9 (1+y^3)^(3/2) ] dy#

#=2/9 [ (1+y^3)^(3/2) ]_(y=0)^2 = 52/9#

Related questions
Impact of this question
1009 views around the world
You can reuse this answer
Creative Commons License