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Question

Show that a1,a2,,an form an AP where an is defined as below

an=3+4n . Also find the sum of the first 15 terms in each case.


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Solution

Step-1 an=3+4nis general term of AP

The nth term is an=3+4n.

Substitute n=1,2,3 into the given nth term:

a1=3+41a1=7a2=3+42a2=11a3=3+43a3=15

Thus, the series is 7,11,15,.

Observe that the common difference in the series is 4.

Step-2 Sum of 15 terms of an AP:

Now, apply the formula for the sum of n terms, which is given by Sn=n2[2a+n-1d].

Since the first term is a=7 and the common difference is d=4, the sum of 15 terms is as follows:

S15=15227+15-14S15=15214+144S15=15270S15=525

Hence, the given an=3+4n form an AP and the sum of 15 terms of a given term is 525.


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