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Jgiunta · Answer 1 · 2021-10-31T21:35:48+0000

Looks like the series is

$\displaystyle\sum_(n=1)^\infty (12)/(n(n+2))$

Split up the summand into partial fractions:

$(12)/(n(n+2))=\frac6n-\frac6{n+2}$

The series has kth partial sum

$S_k=\displaystyle\sum_(n=1)^k(12)/(n(n+2))$

$S_k=\left(6-2\right)+\left(3-\frac32\right)+\left(2-\frac65\right)+\left(\frac32-1\right)+\cdots+\left(\frac6{k-2}-\frac6k\right)+\left(\left(\frac6{k-1}-\frac6{k+1}\right)+\left(\frac6k-\frac6{k+2}\right)$

Several intermediate terms cancel to leave us with

$S_k=6+3-\frac6{k+1}-\frac6{k+2}$

As
$k\to\infty$ , the last two terms converge to 0, so that

$\displaystyle\lim_(k\to\infty)S_k=\sum_(n=1)^\infty(12)/(n(n+2))=\boxed{9}$

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