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Question

In a G.P, it is being given that T1=3, Tn=96 and Sn=189. Then the value of n is
(where Tn and Sn denote the nth term and sum upto nth term repectively)

A
4
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B
5
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C
6
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D
7
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Solution

The correct option is C 6
Given
a=3,Tn=arn1=96Sn=189
Let the common ratio of the given G.P. be r.
Then,
Sn=a(rn1)(r1)189=a(rn1)(r1)(arna)(r1)=189(rTna)(r1)=189
(96r3)(r1)=189
(96r3)=(189r189)
93r=186r=2
Now,
Tn=arn1
3×2n1=96
2n1=32=25
n1=5n=6

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