A-Level Edexcel Maths Pure Polynomials: Given that $\sin^{2}\theta + \co

Given that $\sin^{2}\theta + \cos^{2}\theta \equiv 1$, show that $1 + \cot^{2}\theta \equiv \csc^{2}\theta$ - Edexcel - A-Level Maths Pure - Question 7 - 2008 - Paper 5

Question 7

$Given-that-$\sin^{2}\theta-+-\cos^{2}\theta-\equiv-1$,-show-that-$1-+-\cot^{2}\theta-\equiv-\csc^{2}\theta$-Edexcel-A-Level Maths Pure-Question 7-2008-Paper 5.png$

Given that $\sin^{2}\theta + \cos^{2}\theta \equiv 1$, show that $1 + \cot^{2}\theta \equiv \csc^{2}\theta$. (b) Solve, for $0 < \theta < 180^{\circ}$, the equati... show full transcript

Worked Solution & Example Answer:Given that $\sin^{2}\theta + \cos^{2}\theta \equiv 1$, show that $1 + \cot^{2}\theta \equiv \csc^{2}\theta$ - Edexcel - A-Level Maths Pure - Question 7 - 2008 - Paper 5

Step 1

Given that $\sin^{2}\theta + \cos^{2}\theta \equiv 1$, show that $1 + \cot^{2}\theta \equiv \csc^{2}\theta$

96%

114 rated

Answer

To prove this, we start from the identity given:

Recall the Pythagorean identity:
[ \sin^{2}\theta + \cos^{2}\theta \equiv 1 ]
By dividing all terms by $\sin^{2}\theta$ , we obtain:
[ \frac{\sin^{2}\theta}{\sin^{2}\theta} + \frac{\cos^{2}\theta}{\sin^{2}\theta} \equiv \frac{1}{\sin^{2}\theta} ]
which simplifies to:
[ 1 + \cot^{2}\theta \equiv \csc^{2}\theta ]

Thus, we have shown the required result.

Step 2

Solve, for $0 < \theta < 180^{\circ}$, the equation $2 \cot^{2}\theta - 9 \csc\theta = 3$

99%

104 rated

Answer

Rewrite the equation:
[ 2 \cot^{2}\theta - 9 \csc\theta - 3 = 0 ]
Substitute $\csc\theta$ and $\cot\theta$ in terms of sine and cosine functions:
[ \cot\theta = \frac{\cos\theta}{\sin\theta} \text{ and } \csc\theta = \frac{1}{\sin\theta} ]
This leads to:
[ 2 \left( \frac{\cos^{2}\theta}{\sin^{2}\theta} \right) - 9 \left( \frac{1}{\sin\theta} \right) - 3 = 0 ]
Rearranging terms gives the quadratic:
[ 2\csc^{2}\theta - 9\csc\theta - 6 = 0 ]
Applying the quadratic formula $x = \frac{-b \pm \sqrt{b^{2} - 4ac}}{2a}$ where $a=2$ , $b=-9$ , and $c=-6$ : [ \csc\theta = \frac{9 \pm \sqrt{(-9)^{2} - 4(2)(-6)}}{2(2)} ]
which simplifies to: [ \csc\theta = \frac{9 \pm \sqrt{81 + 48}}{4} = \frac{9 \pm \sqrt{129}}{4} \approx 3.5 \text{ or } -0.5 ]
Therefore, the valid solutions for $\theta$ (not within the range for $\csc\theta$ ) will be from the positive value, leading to:
[ \theta \approx 11.5^{\circ}, 168.5^{\circ} ]

Thus, the solutions for $\theta$ up to 1 decimal place are $11.5^{\circ}$ and $168.5^{\circ}$ .

Given that $\sin^{2}\theta + \cos^{2}\theta \equiv 1$, show that $1 + \cot^{2}\theta \equiv \csc^{2}\theta$ - Edexcel - A-Level Maths Pure - Question 7 - 2008 - Paper 5

Worked Solution & Example Answer:Given that $\sin^{2}\theta + \cos^{2}\theta \equiv 1$, show that $1 + \cot^{2}\theta \equiv \csc^{2}\theta$ - Edexcel - A-Level Maths Pure - Question 7 - 2008 - Paper 5

Given that $\sin^{2}\theta + \cos^{2}\theta \equiv 1$, show that $1 + \cot^{2}\theta \equiv \csc^{2}\theta$

Solve, for $0 < \theta < 180^{\circ}$, the equation $2 \cot^{2}\theta - 9 \csc\theta = 3$

Join the A-Level students using SimpleStudy...