a) Express $ \frac{25}{x^2(2x + 1)} $ in partial fractions. b) (Figure 2 shows a sketch of part of the curve $ C $ with equation $ y = \frac{5}{\sqrt{(2 + x)}} $, $ x > 0 $ The finite region $ R $ is bounded by the curve $ C $, the x-axis, the line with equation $ x = 1 $ and the line with equation $ x = 4 $. This region is shown shaded in Figure 2. The region $ R $ is rotated through 360° about the x-axis. Use calculus to find the exact volume of the solid of revolution generated, giving your answer in the form $ a + b \ln c $, where $ a, b $ and $ c $ are constants.

A-Level Edexcel Maths Pure Further Integration: a) Express \( \frac{25}{x^2(2x +

a) Express $ \frac{25}{x^2(2x + 1)} $ in partial fractions - Edexcel - A-Level Maths Pure - Question 4 - 2014 - Paper 8

Question 4

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a) Express $ \frac{25}{x^2(2x + 1)} $ in partial fractions. b) (Figure 2 shows a sketch of part of the curve $ C $ with equation \( y = \frac{5}{\sqrt{(2 + x)... show full transcript

Worked Solution & Example Answer:a) Express $ \frac{25}{x^2(2x + 1)} $ in partial fractions - Edexcel - A-Level Maths Pure - Question 4 - 2014 - Paper 8

Step 1

Express $ \frac{25}{x^2(2x + 1)} $ in partial fractions

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Answer

To express ( \frac{25}{x^2(2x + 1)} ) in partial fractions, we can start by assuming a form:

[ \frac{25}{x^2(2x + 1)} = \frac{A}{x} + \frac{B}{x^2} + \frac{C}{2x + 1} ]

Multiplying both sides by the denominator ( x^2(2x + 1) ) yields:

[ 25 = A x(2x + 1) + B(2x + 1) + C x^2 ]

Expanding this gives:

[ 25 = A (2x^2 + x) + B(2x + 1) + C x^2 ]

Thus, rearranging terms, we find:

[ 25 = (2A + C) x^2 + (A + 2B) x + B ]

To find constants ( A, B, C ), we equate coefficients:

For ( x^2 ): ( 2A + C = 0 )
For ( x ): ( A + 2B = 0 )
Constant term: ( B = 25 )

From equation 3, substituting ( B = 25 ) into equation 2 yields:

[ A + 50 = 0 \Rightarrow A = -50 ]

Substituting ( A = -50 ) into equation 1:

[ 2(-50) + C = 0 \Rightarrow C = 100 ]

Thus, we have:

[ \frac{25}{x^2(2x + 1)} = \frac{-50}{x} + \frac{25}{x^2} + \frac{100}{2x + 1}
]

Step 2

Use calculus to find the exact volume of the solid of revolution generated

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Answer

To find the volume of the solid of revolution generated by rotating region ( R ) about the x-axis:

[ V = \int_{1}^{4} \pi y^2 , dx ]

Substituting ( y = \frac{5}{\sqrt{(2 + x)}} ), we have:

[ V = \int_{1}^{4} \pi \left( \frac{5}{\sqrt{(2 + x)}} \right)^2 , dx = \int_{1}^{4} \pi \frac{25}{2 + x} , dx ]

This integral can be computed as follows:

[ V = 25\pi\int_{1}^{4} \frac{1}{2 + x} , dx = 25\pi [\ln(2 + x)]_{1}^{4} ]

Evaluating the integral results in:

[ V = 25\pi [\ln(6) - \ln(3)] = 25\pi \ln\left( \frac{6}{3} \right) = 25\pi \ln(2) ]

Therefore, the exact volume of the solid of revolution is:

[ V = 25\pi \ln(2) ]

a) Express \( \frac{25}{x^2(2x + 1)} \) in partial fractions - Edexcel - A-Level Maths Pure - Question 4 - 2014 - Paper 8

Worked Solution & Example Answer:a) Express \( \frac{25}{x^2(2x + 1)} \) in partial fractions - Edexcel - A-Level Maths Pure - Question 4 - 2014 - Paper 8

Express \( \frac{25}{x^2(2x + 1)} \) in partial fractions

Use calculus to find the exact volume of the solid of revolution generated

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