Prove that the following sequence $(sinfrac{pi k}{3})_{k=1}^infty$ diverges

Question

$$x_k := sin left(frac{pi k}{3} right),qquad x_{infty} := lim_{k to infty}{x_k}$$

I tried to prove by contradiction. Assume limit exists and is $L$. Fix $epsilon=frac{sqrt{3}}{4}$. There exists $Kinmathbb{Z}^{+}$ such that $k>K$ implies $$|sinfrac{pi k}{3}-L|<epsilon$$ Notice that for $k=6l+1$ or $k=6l+2$ where $linmathbb{Z}^{geq 0}$, $lvert frac{sqrt{3}}{2}-Lrvert<frac{sqrt{3}}{4}$. Also, for $k=6l+4$ or $k=6l+5$ where $linmathbb{Z}^{geq 0}$, $lvert -frac{sqrt{3}}{2}-Lrvert<frac{sqrt{3}}{4}$. Now we know that $sqrt{3}=lvertfrac{sqrt{3}}{2}-big(-frac{sqrt{3}}{2}big)rvert=|frac{sqrt{3}}{2}+L-L-big(-frac{sqrt{3}}{2}big)|leq|frac{sqrt{3}}{2}+L|+|-L-big(-frac{sqrt{3}}{2}big)|$   $=|-frac{sqrt{3}}{2}-L|+|frac{sqrt{3}}{2}-L|<frac{sqrt{3}}{4}+frac{sqrt{3}}{4}=frac{sqrt{3}}{2};Rightarrow;sqrt{3}<frac{sqrt{3}}{2}$. Hence, we get a contradiction. Therefore, the sequence diverges.
Is this proof correct? If not, can you help me to prove using epsilon-delta definition?

zkutch · Answer

Let's consider 3 sub sequences
$$k=6n Rightarrow sinfrac{pi k}{3}=sin 2pi n=0 $$
$$k=6n+1 Rightarrow sinfrac{pi k}{3}=sin left(2pi n +frac{pi }{3} right) = frac{sqrt{3} }{2}$$
$$k=9n+1 Rightarrow sinfrac{pi k}{3}=sin left(2pi n +pi+frac{pi }{3} right) = -frac{sqrt{3} }{2}$$
So we have 3 limit points.

Prove that the following sequence $(sinfrac{pi k}{3})_{k=1}^infty$ diverges

One Answer

Add your own answers!

Ask a Question