Ii Find the sum- 4-1-n - 4-2-n - 4-3-n - - upto-n-terms

Here, first term, a=4 1/n Common difference , d= ( 4 2/n ) ( 4 1/n )= 2/n+1/n= 1/n ∵ Sum of n terms of an AP, S_n=n/2[2a+(n 1)d] ⇒ S_n=n/2 [ 2 ( 4 1/n ...

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Standard X

Mathematics

Formula for Sum of n Terms of an AP

ii Find the s...

Question

Question 21 (ii)
Find the sum:
$(4 - \frac{1}{n}) + (4 - \frac{2}{n}) + (4 - \frac{3}{n}) + \dots u p t o n t e r m s$

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Solution

Here, first term, $a = 4 - \frac{1}{n}$
Common difference , $d = (4 - \frac{2}{n}) - (4 - \frac{1}{n}) = \frac{- 2}{n} + \frac{1}{n} = \frac{- 1}{n}$
$∵$ Sum of n terms of an AP, $S_{n} = \frac{n}{2} [2 a + (n - 1) d]$
$\Rightarrow S_{n} = \frac{n}{2} [2 (4 - \frac{1}{n}) + (n - 1) (\frac{- 1}{n})]$
$= \frac{n}{2} {8 - \frac{2}{n} - 1 + \frac{1}{n}}$
$= \frac{n}{2} (7 - \frac{1}{n}) = \frac{n}{2} \times (\frac{7 n - 1}{n}) = \frac{7 n - 1}{2}$

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Formula for Sum of n Terms of an AP

Standard X Mathematics

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Question 21 (ii) Find the sum: (4−1n)+(4−2n)+(4−3n)+⋯upto n terms

Here, first term, a=4−1n Common difference , d=(4−2n)−(4−1n)=−2n+1n=−1n ∵ Sum of n terms of an AP, Sn=n2[2a+(n−1)d] ⇒ Sn=n2[2(4−1n)+(n−1)(−1n)] =n2{8−2n−1+1n} =n2(7−1n)=n2×(7n−1n)=7n−12

Question 21 (ii)
Find the sum:
$(4 - \frac{1}{n}) + (4 - \frac{2}{n}) + (4 - \frac{3}{n}) + \dots u p t o n t e r m s$