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help with integral question pls!! (1 Viewer)

miracu

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Can someone show their long working out for this?

Screen Shot 2017-05-26 at 9.43.33 PM.png

I keep getting 34b^3/3 as an answer. I know there's a quicker method to answering this but I'm only in 2 unit and we haven't learnt it.
 

InteGrand

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Can someone show their long working out for this?

View attachment 33943

I keep getting 34b^3/3 as an answer. I know there's a quicker method to answering this but I'm only in 2 unit and we haven't learnt it.
Expand the numerator using the formula for (A + B)^2, and then simplify by splitting the fraction. This will leave us with terms that can be integrated using the power rule.
 

miracu

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Expand the numerator using the formula for (A + B)^2, and then simplify by splitting the fraction. This will leave us with terms that can be integrated using the power rule.
I did that, it's the part where I substitute 4b^2 and b^2 which seems to be the problem- I just want to see the full working out to see where I went wrong
 

InteGrand

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I did that, it's the part where I substitute 4b^2 and b^2 which seems to be the problem- I just want to see the full working out to see where I went wrong
Why not post your working, and maybe someone can spot your mistake. In writing out your working here, it's possible that you may spot a mistake too.
 

pikachu975

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Can someone show their long working out for this?

View attachment 33943

I keep getting 34b^3/3 as an answer. I know there's a quicker method to answering this but I'm only in 2 unit and we haven't learnt it.
Integrand becomes (x+2bsqrt(x) + b^2)/sqrt(x)
= sqrt(x) + 2b + b^2 * x^(-1/2)

Integrate
= 2/3 * x^3/2 + 2bx + 2b^2 * sqrt(x)

Sub in boundaries
= 2/3 * (4b^2)^3/2 + 8b^3 + 4b^3 - 2/3 * b^3 - 2b^3 - 2b^3
= 16/3 * b^3 + 12b^3 - 2/3 b^3 - 4b^3
= 38b^3 / 3
 

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