Is 3 sin(alpha)+4 cos(beta)=8 possible

Question

asked Jul 21, 2018 139k views

2 Answers

Khaalid · Answer 1 · 2018-07-26T06:55:15+0000

Answer:

No, it's not possible

Explanation:

We know that for various values of x ,
$-1\leq \sin x\leq 1$

and
$-1\leq \cos x \leq 1$

For values of
$\alpha$ ,
$-1\leq \sin \alpha\leq 1$

On multiplying all sides by 3, we get

$-3\leq 3\sin \alpha\leq 3$

For values of
$\beta$ ,
$-1\leq\cos \beta\leq 1$

On multiplying all sides by 4, we get

$-4\leq 4\cos \beta\leq 4$

On adding all sides of
$-3\leq 3\sin \alpha\leq 3\,\,,\,\,-4\leq 4\cos \beta\leq 4$ , we get

$-3-4\leq 3\sin \alpha+ 4\cos \beta\leq 3+4\\-7\leq 3\sin \alpha+ 4\cos \beta\leq 7$

Therefore, maximum value of
$3\sin \alpha+ 4\cos \beta$ is 7.

So, it's not possible that
$3\sin \alpha+ 4\cos \beta=8$