Let Sk=k∑r=1tan−1(6r22r+1+32r+1), then limk→∞Sk is equal to : – InterviewSolution

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1.	Let Sk=k∑r=1tan−1(6r22r+1+32r+1), then limk→∞Sk is equal to :
Answer» Let $S_{k} = k \sum r = 1 {tan}^{- 1} (\frac{6^{r}}{2^{2 r + 1} + 3^{2 r + 1}})$ , then $lim k \to \infty S_{k}$ is equal to :

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