Asked by Anon
Evaluate integral of x times the square root of (x-4) dx
I got u-(8u^(3/2) over 3)
Can anyone check this for me?
I got u-(8u^(3/2) over 3)
Can anyone check this for me?
Answers
Answered by
Steve
if u^2 = x-4
2u du = dx
x = u^2+4
∫x√(x-4) dx = ∫(u^2+4)u 2u du
= ∫2u^4 + 8u^2 du
= 2/5 u^5 + 8/3 u^3
= u^3 (2/5 u^2 + 8/3)
= (x-4)^(3/2) (2/5 (x-4) + 8/3)
= 2/15 (x-4)^(3/2) (3x+8)
2u du = dx
x = u^2+4
∫x√(x-4) dx = ∫(u^2+4)u 2u du
= ∫2u^4 + 8u^2 du
= 2/5 u^5 + 8/3 u^3
= u^3 (2/5 u^2 + 8/3)
= (x-4)^(3/2) (2/5 (x-4) + 8/3)
= 2/15 (x-4)^(3/2) (3x+8)
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