Asked by jeanie
find the area of y=x sqrt(x^2+16), bound by the x-axis and the vertical line x=3
I got 22.5 is that correct?
I got 22.5 is that correct?
Answers
Answered by
Reiny
The function crosses the origin
so I see it as
A = ∫ x(x^2+16)^(1/2) dx from 0 to 3
= [ (1/3)(x^2+16)^(3/2) ] from 0 to 3
= (1/3)(25)^(3/2) - 0
= (1/3)(125)
= 125/3
so I see it as
A = ∫ x(x^2+16)^(1/2) dx from 0 to 3
= [ (1/3)(x^2+16)^(3/2) ] from 0 to 3
= (1/3)(25)^(3/2) - 0
= (1/3)(125)
= 125/3
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