Question

How do you solve `2cos^2theta+3sintheta=0`?

Answer 1

`2(1- sin^2theta) + 3sintheta= 0`

`2 - 2sin^2theta + 3sintheta = 0`

`0= 2sin^2theta - 3sintheta - 2`

`0 = 2sin^2theta - 4sintheta + sin theta - 2`

`0 = 2sintheta(sin theta - 2) + 1(sin theta -2)`

`0 = (2sintheta + 1)(sin theta - 2)`

`sintheta= -1/2 and sintheta= 2`

`theta= (7pi)/6, (11pi)/6`

Hopefully this helps!

Answer 2

Please see the explanation.

Explanation:

Substitute `1 - sin^2(theta)` for `cos^2(theta)`:

`2(1 - sin^2(theta)) + 3sin(theta) = 0`

Use the distributive property:

`2 - 2sin^2(theta)) + 3sin(theta) = 0`

Multiply both side by -1:

`2sin^2(theta)) - 3sin(theta) - 2 = 0`

This is a quadratic where the variable is `sin(theta)`.

It looks like it will factor:

#(sin(theta) - 2)(2sin(theta) + 1) = 0

`sin(theta) = 2 and sin(theta) = -1/2`

We must discard the first root, because it is outside the range of the sine function.

Turning our attention to the second root:

`sin(theta) = -1/2`

Rotating counterclockwise from 0, the first encounter of this is at:

`theta = (7pi)/6`

The next encounter with this is at:

`theta = (11pi)/6`

Add integer rotations of `2pi` to both:

`theta = (7pi)/6 + 2npi` and `theta = (11pi)/6 + 2npi` Where n can be any integer (positive, negative, or zero)