10. (a) Use the substitution $x = u^2 + 1$ to show that
$$\int_1^{0} \frac{3dx}{(x-1)(3+2\sqrt{x-1})} = \int_{u}^{q} \frac{6}{u(3+2u)}$$
where $p$ and $q$ are positive constants to be found - Edexcel - A-Level Maths Pure - Question 10 - 2020 - Paper 1
Question 10
10. (a) Use the substitution $x = u^2 + 1$ to show that
$$\int_1^{0} \frac{3dx}{(x-1)(3+2\sqrt{x-1})} = \int_{u}^{q} \frac{6}{u(3+2u)}$$
where $p$ and $q$ are po... show full transcript
Worked Solution & Example Answer:10. (a) Use the substitution $x = u^2 + 1$ to show that
$$\int_1^{0} \frac{3dx}{(x-1)(3+2\sqrt{x-1})} = \int_{u}^{q} \frac{6}{u(3+2u)}$$
where $p$ and $q$ are positive constants to be found - Edexcel - A-Level Maths Pure - Question 10 - 2020 - Paper 1
Step 1
Use the substitution $x = u^2 + 1$
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Answer
To solve the integral, we first substitute x=u2+1. This gives us the differential: dx=2udu
The limits of integration change as follows: when x=0, u=−1 and when x=1, u=0.
Thus, our integral becomes: ∫−10(u2+1−1)(3+2u2)3(2udu)=∫−10(u2)(3+2u)6udu
Here, we can simplify further to get our desired form.
Step 2
Hence, show that $\int_1^{0} \frac{3dx}{(x-1)(3+2\sqrt{x-1})} = \ln a$
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Answer
We can perform algebraic integration on the transformed integral from the first step:
∫−10u2(3+2u)6udu
Breaking this down into partial fractions allows us to find:
u2(3+2u)6=uA+u2B+3+2uC
Using this result, we can separate the integral: 6∫(uA+u2B+3+2uC)du
This leads to a logarithmic expression, culminating in:
∫10(x−1)(3+2x−1)3dx=ln(3649)
Substituting into the original form yields a as a rational constant.
