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trig
- Thread starter carebear
- Start date
2. Don't know where to start....
Solve cosx + 1 = sqrt3 sin x
...Please help
\(\displaystyle cos(x)+1-\sqrt{3}sin(x)=0\)
Rewrite as:
\(\displaystyle 2cos(x+\frac{\pi}{3})+1=0\)
Now, continue.
D
Deleted member 4993
Guest
carebear said:I don't understand how you rewrote that....could you please explain that broken down....
\(\displaystyle A * cos(x) - B* sin(x) = \ \sqrt{A^2+B^2}\cdot \left (\frac{A}{\sqrt{A^2+B^2}}\cdot cos(x) \ - \ \frac{B}{\sqrt{A^2+B^2}}\cdot sin(x)\right )\)
let
\(\displaystyle \frac{A}{\sqrt{A^2+B^2}} \ = \ cos(\theta)\)
then
\(\displaystyle \frac{B}{\sqrt{A^2+B^2}} \ = \ sin(\theta)\)
we get
\(\displaystyle A * cos(x) - B* sin(x) = \ \sqrt{A^2+B^2}\cdot [cos(\theta)\cdot cos(x) \ - \ sin(\theta)\cdot sin(x)] \ = \ \ \sqrt{A^2+B^2}\cdot [cos(\theta + x)]\)
In your case:
A = 1
B = ?3