Solve the following equations: (1) $$ 5 \cos ^{2} heta+\cos heta=0 $$ (3) $$ \sin x-6 \sin ^{2} x=0 $$ (5) $$ 8 \sin ^{2} heta=2 ; heta \in\left[0^{\circ} ; 720^{\circ} ight] $$ (7) $$ 6 \sin ^{2} \alpha-\sin \alpha=2 $$ (9) $$ 6=5 \cos heta+6 \cos ^{2} heta $$

Question

Solve the following equations: (1) $$ 5 \cos ^{2} 	heta+\cos 	heta=0 $$ (3) $$ \sin x-6 \sin ^{2} x=0 $$ (5) $$ 8 \sin ^{2} 	heta=2 ; 	heta \in\left[0^{\circ} ; 720^{\circ}ight] $$ (7) $$ 6 \sin ^{2} \alpha-\sin \alpha=2 $$ (9) $$ 6=5 \cos 	heta+6 \cos ^{2} 	heta $$

UpStudy AI · Accepted Answer

Solve the equation by following steps:
- step0: Solve for $$\theta$$:
  $$6=5\cos\left(\theta \right)+6\cos^{2}\left(\theta \right)$$
- step1: Swap the sides:
  $$5\cos\left(\theta \right)+6\cos^{2}\left(\theta \right)=6$$
- step2: Move the expression to the left side:
  $$5\cos\left(\theta \right)+6\cos^{2}\left(\theta \right)-6=0$$
- step3: Factor the expression:
  $$\left(2\cos\left(\theta \right)+3\right)\left(3\cos\left(\theta \right)-2\right)=0$$
- step4: Separate into possible cases:
  $$\begin{align}&2\cos\left(\theta \right)+3=0\&3\cos\left(\theta \right)-2=0\end{align}$$
- step5: Solve the equation:
  $$\begin{align}&\cos\left(\theta \right)=-\frac{3}{2}\&\cos\left(\theta \right)=\frac{2}{3}\end{align}$$
- step6: Rearrange the terms:
  $$\begin{align}&\theta  \notin \mathbb{R}\&\cos\left(\theta \right)=\frac{2}{3}\end{align}$$
- step7: Calculate:
  $$\begin{align}&\theta  \notin \mathbb{R}\&\theta =\left\{ \begin{array}{l}-\arccos\left(\frac{2}{3}\right)+2k\pi \\arccos\left(\frac{2}{3}\right)+2k\pi \end{array}\right.,k \in \mathbb{Z}\end{align}$$
- step8: Find the union:
  $$\theta =\left\{ \begin{array}{l}-\arccos\left(\frac{2}{3}\right)+2k\pi \\arccos\left(\frac{2}{3}\right)+2k\pi \end{array}\right.,k \in \mathbb{Z}$$
Solve the equation $$ 8 \sin ^{2} \theta - 2 = 0 $$.
Solve the equation by following steps:
- step0: Solve for $$\theta$$:
  $$8\sin^{2}\left(\theta \right)-2=0$$
- step1: Factor the expression:
  $$2\left(2\sin\left(\theta \right)-1\right)\left(2\sin\left(\theta \right)+1\right)=0$$
- step2: Elimination the left coefficient:
  $$\left(2\sin\left(\theta \right)-1\right)\left(2\sin\left(\theta \right)+1\right)=0$$
- step3: Separate into possible cases:
  $$\begin{align}&2\sin\left(\theta \right)-1=0\&2\sin\left(\theta \right)+1=0\end{align}$$
- step4: Solve the equation:
  $$\begin{align}&\theta =\left\{ \begin{array}{l}\frac{\pi }{6}+2k\pi \\frac{5\pi }{6}+2k\pi \end{array}\right.,k \in \mathbb{Z}\&\theta =\left\{ \begin{array}{l}\frac{7\pi }{6}+2k\pi \\frac{11\pi }{6}+2k\pi \end{array}\right.,k \in \mathbb{Z}\end{align}$$
- step5: Find the union:
  $$\theta =\left\{ \begin{array}{l}\frac{\pi }{6}+k\pi \\frac{5\pi }{6}+k\pi \end{array}\right.,k \in \mathbb{Z}$$
Solve the equation $$ \sin x - 6 \sin ^{2} x = 0 $$.
Solve the equation by following steps:
- step0: Solve for $$x$$:
  $$\sin\left(x\right)-6\sin^{2}\left(x\right)=0$$
- step1: Factor the expression:
  $$\sin\left(x\right)\left(1-6\sin\left(x\right)\right)=0$$
- step2: Separate into possible cases:
  $$\begin{align}&\sin\left(x\right)=0\&1-6\sin\left(x\right)=0\end{align}$$
- step3: Solve the equation:
  $$\begin{align}&x=k\pi ,k \in \mathbb{Z}\&x=\left\{ \begin{array}{l}\arcsin\left(\frac{1}{6}\right)+2k\pi \-\arcsin\left(\frac{1}{6}\right)+\pi +2k\pi \end{array}\right.,k \in \mathbb{Z}\end{align}$$
- step4: Find the union:
  $$x=\left\{ \begin{array}{l}k\pi \\arcsin\left(\frac{1}{6}\right)+2k\pi \-\arcsin\left(\frac{1}{6}\right)+\pi +2k\pi \end{array}\right.,k \in \mathbb{Z}$$
Solve the equation $$ 5 \cos ^{2} \theta + \cos \theta = 0 $$.
Solve the equation by following steps:
- step0: Solve for $$\theta$$:
  $$5\cos^{2}\left(\theta \right)+\cos\left(\theta \right)=0$$
- step1: Factor the expression:
  $$\cos\left(\theta \right)\left(5\cos\left(\theta \right)+1\right)=0$$
- step2: Separate into possible cases:
  $$\begin{align}&\cos\left(\theta \right)=0\&5\cos\left(\theta \right)+1=0\end{align}$$
- step3: Solve the equation:
  $$\begin{align}&\theta =\frac{\pi }{2}+k\pi ,k \in \mathbb{Z}\&\theta =\left\{ \begin{array}{l}-\arccos\left(-\frac{1}{5}\right)+2k\pi \\arccos\left(-\frac{1}{5}\right)+2k\pi \end{array}\right.,k \in \mathbb{Z}\end{align}$$
- step4: Find the union:
  $$\theta =\left\{ \begin{array}{l}-\arccos\left(-\frac{1}{5}\right)+2k\pi \\frac{\pi }{2}+k\pi \\arccos\left(-\frac{1}{5}\right)+2k\pi \end{array}\right.,k \in \mathbb{Z}$$
Solve the equation $$ 6 \sin ^{2} \alpha - \sin \alpha - 2 = 0 $$.
Solve the equation by following steps:
- step0: Solve for $$\alpha$$:
  $$6\sin^{2}\left(\alpha \right)-\sin\left(\alpha \right)-2=0$$
- step1: Factor the expression:
  $$\left(2\sin\left(\alpha \right)+1\right)\left(3\sin\left(\alpha \right)-2\right)=0$$
- step2: Separate into possible cases:
  $$\begin{align}&2\sin\left(\alpha \right)+1=0\&3\sin\left(\alpha \right)-2=0\end{align}$$
- step3: Solve the equation:
  $$\begin{align}&\alpha =\left\{ \begin{array}{l}\frac{7\pi }{6}+2k\pi \\frac{11\pi }{6}+2k\pi \end{array}\right.,k \in \mathbb{Z}\&\alpha =\left\{ \begin{array}{l}\arcsin\left(\frac{2}{3}\right)+2k\pi \-\arcsin\left(\frac{2}{3}\right)+\pi +2k\pi \end{array}\right.,k \in \mathbb{Z}\end{align}$$
- step4: Find the union:
  $$\alpha =\left\{ \begin{array}{l}\arcsin\left(\frac{2}{3}\right)+2k\pi \-\arcsin\left(\frac{2}{3}\right)+\pi +2k\pi \\frac{7\pi }{6}+2k\pi \\frac{11\pi }{6}+2k\pi \end{array}\right.,k \in \mathbb{Z}$$
Here are the solutions for the given equations:

### (1) $$ 5 \cos ^{2} \theta + \cos \theta = 0 $$

To solve this equation, we can factor it:
$$
\cos \theta (5 \cos \theta + 1) = 0
$$
This gives us two cases:
1. $$ \cos \theta = 0 $$
2. $$ 5 \cos \theta + 1 = 0 $$ or $$ \cos \theta = -\frac{1}{5} $$

The solutions are:
$$
\theta = \left\{ 
\begin{array}{l}
-\arccos\left(-\frac{1}{5}\right) + 2k\pi \
\frac{\pi}{2} + k\pi \
\arccos\left(-\frac{1}{5}\right) + 2k\pi 
\end{array}
\right., k \in \mathbb{Z}
$$

### (3) $$ \sin x - 6 \sin ^{2} x = 0 $$

Factoring gives:
$$
\sin x (1 - 6 \sin x) = 0
$$
This leads to:
1. $$ \sin x = 0 $$
2. $$ 1 - 6 \sin x = 0 $$ or $$ \sin x = \frac{1}{6} $$

The solutions are:
$$
x = \left\{ 
\begin{array}{l}
k\pi \
\arcsin\left(\frac{1}{6}\right) + 2k\pi \
-\arcsin\left(\frac{1}{6}\right) + \pi + 2k\pi 
\end{array}
\right., k \in \mathbb{Z}
$$

### (5) $$ 8 \sin ^{2} \theta = 2 ; \theta \in [0^{\circ}, 720^{\circ}] $$

Rearranging gives:
$$
\sin ^{2} \theta = \frac{1}{4}
$$
Taking the square root:
$$
\sin \theta = \frac{1}{2} \quad \text{or} \quad \sin \theta = -\frac{1}{2}
$$

The solutions in the specified range are:
$$
\theta = \left\{ 
\begin{array}{l}
\frac{\pi}{6} + k\pi \
\frac{5\pi}{6} + k\pi 
\end{array}
\right., k \in \mathbb{Z}
$$

### (7) $$ 6 \sin ^{2} \alpha - \sin \alpha = 2 $$

Rearranging gives:
$$
6 \sin ^{2} \alpha - \sin \alpha - 2 = 0
$$
Factoring or using the quadratic formula leads to:
$$
\alpha = \left\{ 
\begin{array}{l}
\arcsin\left(\frac{2}{3}\right) + 2k\pi \
-\arcsin\left(\frac{2}{3}\right) + \pi + 2k\pi \
\frac{7\pi}{6} + 2k\pi \
\frac{11\pi}{6} + 2k\pi 
\end{array}
\right., k \in \mathbb{Z}
$$

### (9) $$ 6 = 5 \cos \theta + 6 \cos ^{2} \theta $$

Rearranging gives:
$$
6 \cos ^{2} \theta + 5 \cos \theta - 6 = 0
$$
Using the quadratic formula:
$$
\theta = \left\{ 
\begin{array}{l}
-\arccos\left(\frac{2}{3}\right) + 2k\pi \
\arccos\left(\frac{2}{3}\right) + 2k\pi 
\end{array}
\right., k \in \mathbb{Z}
$$

These are the solutions for the equations provided. If you need further assistance or specific values, feel free to ask!
Here are the solutions for the equations: 1. $$ \theta = 0^\circ, 90^\circ, 180^\circ, 270^\circ, 360^\circ, 450^\circ, 540^\circ, 630^\circ, 720^\circ $$ 2. $$ x = 0^\circ, 30^\circ, 150^\circ, 180^\circ, 210^\circ, 330^\circ, 360^\circ, 450^\circ, 540^\circ, 630^\circ, 720^\circ $$ 3. $$ \theta = 30^\circ, 150^\circ, 210^\circ, 330^\circ, 390^\circ, 510^\circ, 570^\circ, 690^\circ $$ 4. $$ \alpha = 30^\circ, 150^\circ, 210^\circ, 330^\circ, 390^\circ, 510^\circ, 570^\circ, 690^\circ $$ 5. $$ \theta = 30^\circ, 150^\circ, 210^\circ, 330^\circ, 390^\circ, 510^\circ, 570^\circ, 690^\circ $$ These are the solutions for the given trigonometric equations within the specified ranges.

Solve the following equations: (1) \( 5 \cos ^{2} \theta+\cos \theta=0 \) (3) \( \sin x-6 \sin ^{2} x=0 \) (5) \( 8 \sin ^{2} \theta=2 ; \theta \in\left[0^{\circ} ; 720^{\circ}\right] \) (7) \( 6 \sin ^{2} \alpha-\sin \alpha=2 \) (9) \( 6=5 \cos \theta+6 \cos ^{2} \theta \)

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