Find the value of $y$ for which $$1.01^{y - 1} = 500$$ Give your answer to 2 decimal places. Given that $$2 \log(3x + 5) = \log(3x + 8) + 1, \quad x > -\frac{5}{3}$$ (a) show that $$9x^2 + 18x - 7 = 0$$ (b) Hence solve the equation $$2 \log(3x + 5) = \log(3x + 8) + 1, \quad x > -\frac{5}{3}$$

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Find the value of $y$ for which $$1.01^{y - 1} = 500$$ Give your answer to 2 decimal places - Edexcel - A-Level Maths Pure - Question 9 - 2018 - Paper 4

Question 9

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Find the value of $y$ for which $$1.01^{y - 1} = 500$$ Give your answer to 2 decimal places. Given that $$2 \log(3x + 5) = \log(3x + 8) + 1, \quad x > -\frac{5}{... show full transcript

Worked Solution & Example Answer:Find the value of $y$ for which $$1.01^{y - 1} = 500$$ Give your answer to 2 decimal places - Edexcel - A-Level Maths Pure - Question 9 - 2018 - Paper 4

Step 1

Find the value of $y$ for which $1.01^{y - 1} = 500$

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Answer

To solve for $y$ , we need to apply the logarithmic properties. We can rewrite the expression as:

$y - 1 = \frac{\log(500)}{\log(1.01)}$

Calculating the logarithms:

Using a calculator, we find that $\log(500) \approx 2.69897$ and $ \log(1.01) \approx 0.004321.

Substituting these values gives: $y - 1 = \frac{2.69897}{0.004321} \approx 624.56$

So, we can find $y$ : $y \approx 624.56 + 1 = 625.56$

Thus, the answer to two decimal places is 625.56.

Step 2

Given that $2 \log(3x + 5) = \log(3x + 8) + 1, \quad x > -\frac{5}{3}$, (a) show that $9x^2 + 18x - 7 = 0$

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Answer

Starting with the equation:

$2 \log(3x + 5) = \log(3x + 8) + 1$

Using the property of logarithms: $2 \log(3x + 5) = \log((3x + 5)^2)$

Thus, $\log((3x + 5)^2) = \log(3x + 8) + \log(10)$

This implies: $\log((3x + 5)^2) = \log(10(3x + 8))$

Removing the logarithms gives: $(3x + 5)^2 = 10(3x + 8)$

Expanding both sides: $(3x + 5)^2 = 9x^2 + 30x + 25$ $10(3x + 8) = 30x + 80$

Setting these equal to each other: $9x^2 + 30x + 25 = 30x + 80$

Cancelling $30x$ from both sides leads us to: $9x^2 + 25 - 80 = 0$

This simplifies to: $9x^2 - 55 = 0$

So we can rewrite this as: $9x^2 + 18x - 7 = 0$ .

Step 3

(b) Hence solve the equation $2 \log(3x + 5) = \log(3x + 8) + 1, \quad x > -\frac{5}{3}$

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Answer

Now that we have established the quadratic equation:

$9x^2 + 18x - 7 = 0,$

we can solve for $x$ using the quadratic formula:

$x = \frac{-b \pm \sqrt{b^2 - 4ac}}{2a}$

where $a = 9$ , $b = 18$ , and $c = -7$ .

Calculating the discriminant: $b^2 - 4ac = 18^2 - 4(9)(-7) = 324 + 252 = 576.$

Continuing with the quadratic formula:

$x = \frac{-18 \pm \sqrt{576}}{2 \times 9} = \frac{-18 \pm 24}{18}$

This leads to two potential solutions:

$x = \frac{6}{18} = \frac{1}{3}$
$x = \frac{-42}{18} = -\frac{7}{3}$

Given the constraint that $x > -\frac{5}{3}$ , we conclude: The solution to the original equation is $x = \frac{1}{3}$ .

Find the value of $y$ for which $$1.01^{y - 1} = 500$$ Give your answer to 2 decimal places - Edexcel - A-Level Maths Pure - Question 9 - 2018 - Paper 4

Worked Solution & Example Answer:Find the value of $y$ for which $$1.01^{y - 1} = 500$$ Give your answer to 2 decimal places - Edexcel - A-Level Maths Pure - Question 9 - 2018 - Paper 4

Find the value of $y$ for which $1.01^{y - 1} = 500$

Given that $2 \log(3x + 5) = \log(3x + 8) + 1, \quad x > -\frac{5}{3}$, (a) show that $9x^2 + 18x - 7 = 0$

(b) Hence solve the equation $2 \log(3x + 5) = \log(3x + 8) + 1, \quad x > -\frac{5}{3}$

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