I am supposed to use double angle identity, however, I cant seem to fit any of the equations. I tried saying that the first part of the equation is sin(2x), but I don`t understand why that is incorrect, as $sinx*cosx*2=sin(2x)$. Therefore k would be equal to 2, but the correct answer is supposed to be 6.
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$$2\sin(3x)\cos(3x)=\sin(6x)$$ so $$\sin(6x)=\sin(kx)$$ Then you can use $$2 \sin \left(\frac{x}{2}-\frac{y}{2}\right) \cos \left(\frac{x}{2}+\frac{y}{2}\right)=0$$
Dr. Sonnhard Graubner
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I just don`t understand why it is $sin(6x)$, what did you multiply or do to get there? – joao leal Nov 26 '19 at 13:42