A-Level Edexcel Maths Pure Solving Equations: 8. (a) Show that the equation $$

8. (a) Show that the equation $$\cos^2 x = 8 \sin^2 x - 6 \sin x$$ can be written in the form $$(3 \sin x - 1)^2 = 2$$ (b) Hence solve, for $0 \leq x < 360^{\circ}$, $$\cos^2 x = 8 \sin^2 x - 6 \sin x$$ giving your answers to 2 decimal places. - Edexcel - A-Level Maths Pure - Question 9 - 2016 - Paper 2

Question 9

$8.-(a)-Show-that-the-equation-$$\cos^2-x-=-8-\sin^2-x---6-\sin-x$$-can-be-written-in-the-form-$$(3-\sin-x---1)^2-=-2$$--(b)-Hence-solve,-for-$0-\leq-x-<-360^{\circ}$,-$$\cos^2-x-=-8-\sin^2-x---6-\sin-x$$-giving-your-answers-to-2-decimal-places.-Edexcel-A-Level Maths Pure-Question 9-2016-Paper 2.png$

8. (a) Show that the equation $$\cos^2 x = 8 \sin^2 x - 6 \sin x$$ can be written in the form $$(3 \sin x - 1)^2 = 2$$ (b) Hence solve, for $0 \leq x < 360^{\circ}$... show full transcript

Worked Solution & Example Answer:8. (a) Show that the equation $$\cos^2 x = 8 \sin^2 x - 6 \sin x$$ can be written in the form $$(3 \sin x - 1)^2 = 2$$ (b) Hence solve, for $0 \leq x < 360^{\circ}$, $$\cos^2 x = 8 \sin^2 x - 6 \sin x$$ giving your answers to 2 decimal places. - Edexcel - A-Level Maths Pure - Question 9 - 2016 - Paper 2

Step 1

Show that the equation can be written in the form $(3 \sin x - 1)^2 = 2$

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Answer

To show that the given equation can be transformed into the desired form, we start with:

$\cos^2 x = 8 \sin^2 x - 6 \sin x$

Using the Pythagorean identity, we know: $\cos^2 x = 1 - \sin^2 x$

Substituting this into the equation gives:

$1 - \sin^2 x = 8 \sin^2 x - 6 \sin x$

Rearranging this yields:

$1 = 9 \sin^2 x - 6 \sin x$

Now, we can rearrange it to:

$9 \sin^2 x - 6 \sin x - 1 = 0$

Next, we apply completing the square:

$9 \left( \sin^2 x - \frac{2}{3} \sin x \right) = 1$

Now, complete the square for the term in parentheses:

$\sin^2 x - \frac{2}{3} \sin x = \left( \sin x - \frac{1}{3} \right)^2 - \frac{1}{9}$

Thus, we have:

$9 \left( \left( \sin x - \frac{1}{3} \right)^2 - \frac{1}{9} \right) = 1$

Simplifying gives:

$9 \left( \sin x - \frac{1}{3} \right)^2 - 1 = 1$

Then, adding 1 to both sides leads to:

$9 \left( \sin x - \frac{1}{3} \right)^2 = 2$

Dividing through by 9 yields:

$\left( 3 \sin x - 1 \right)^2 = 2$

Step 2

Hence solve, for $0 \leq x < 360^{\circ}$

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Answer

From the equation:

$\left( 3 \sin x - 1 \right)^2 = 2$

Taking the square root of both sides, we find:

$3 \sin x - 1 = \sqrt{2} \quad \text{or} \quad 3 \sin x - 1 = -\sqrt{2}$

This gives us two equations to solve:

Equation 1:

$3 \sin x = 1 + \sqrt{2}$

Thus,

$\sin x = \frac{1 + \sqrt{2}}{3}$

Equation 2:

$3 \sin x = 1 - \sqrt{2}$

So,

$\sin x = \frac{1 - \sqrt{2}}{3}$

Next, we calculate the values:

For Equation 1:

Approximate: (\frac{1 + \sqrt{2}}{3} \approx 0.814)
This corresponds to: (x \approx 53.86^{\circ}) and (x \approx 126.14^{\circ})

For Equation 2:

Approximate: (\frac{1 - \sqrt{2}}{3} \approx -0.138) (not valid as sine values must be between -1 and 1)

Thus, the valid solutions for $x$ in the range $0 \leq x < 360^{\circ}$ are approximately:

(x \approx 53.86^{\circ})
(x \approx 126.14^{\circ})

Since we need answers to two decimal places, final answers are:

(x \approx 53.86^{\circ}, 126.14^{\circ})

Show that the equation can be written in the form $(3 \sin x - 1)^2 = 2$

Hence solve, for $0 \leq x < 360^{\circ}$

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