Mathematics Question on Series

Question

The $n^{th}$ term of the series $1+3 + 7 + 13 + 21 +$ is $9901$ . The value of $n$ is ................

Answer 1

Solution

Given, series
$1+3+7+13+21+...$
Also, $t_{n}=9901$ ...(i)
Let $S_{n}=1+3+7+13+21+...n$ terms
and $S_{n}=1+3+7+13+...n$ terms
On subtracting
$0 =(1+2+4+6+8+...)-t_{n}$
$t_{n} =1+2+4+6+8+...n$ terms
$t_{n} =1+2[1+2+3+4+...(n-1)$ terms]
$t_{n}= 1+2\left[\frac{(n-1)(n-1+1)}{2}\right]$
$t_{n}= 1+n(n-1)$
$9901=1+n(n-1)$ [from E (i)]
$n^{2}-n-9900=0$
$n^{2}-100 n+99 n-9900=0$
$n(n-100)+99(n-100)=0$
$(n-100)(n+99)=0$
$\Rightarrow n=100(n=-99$ , neglecting)
(because terms not negative)