The sum of the series $1^{2}$ .2 + $2^{2}$ .3 + $3^{2}$ .4 + ........ to n terms is

$\frac{n^{3} {(n + 1)}^{3} (2 n + 1)}{24}$

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$\frac{n (n + 1) (3 n^{2} + 7 n + 2)}{12}$

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$\frac{n (n + 1)}{6}$ [n(n+1) + (2n + 1)]

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$\frac{n (n + 1)}{12}$ [6n(n+1) + 2(2n + 1)]

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Solution

The correct option is B
$\frac{n (n + 1) (3 n^{2} + 7 n + 2)}{12}$

$T_{π}$ = $n^{2}$ (n + 1) = $n^{3}$ + $n^{2}$

$S_{π}$ = $\sum$ $T_{π}$ = $\sum$ $n^{3}$ + $\sum$ $n^{2}$ = ${[\frac{n (n + 1)}{2}]}^{2}$ + $\frac{n (n + 1) (2 n + 1)}{6}$

= $\frac{n (n + 1)}{2}$ [ $\frac{n (n + 1)}{2}$ + $\frac{2 n + 1}{3}$ ] = $\frac{n (n + 1) (3 n^{2} + 7 n + 2)}{12}$

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1^{2} .2 + 2^{2} .3 + 3^{2} .4 +

Find the $12^{t h}$ term of the series $1^{2} .2 + 2^{2} .3 + 3^{2} .4 + - - - - - - - \infty$

\frac{{1.2}^{2} + {2.3}^{2} + {3.4}^{2} + . \cdot . \cdot . \cdot . \cdot + n (n + 1)^{2}}{1^{2} .2 + 2^{2} .3 + 3^{2} .4 + + n^{2} (n + 1)} =

\frac{{1.2}^{2} + {2.3}^{2} + {3.4}^{2} + . . . n (n + 1)^{2}}{1.2 + 2^{2} .3 + 3^{2} .4 + . . . n^{2} (n + 1)}

\frac{{1.2}^{2} + 1. 3^{2} + . . . + n}{1^{2} . 2 + 2^{2} . 3 + . . . + n} = \frac{3 n + 5}{3 n + 1}

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