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Question

For any three positive real numbers a, b and c, if 9(25a2+b2)+25(c23ac)=15b(3a+c), then

A
b, c and a are in A.P
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B
b, c and a are in G.P
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C
a, b, and c are in A.P
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D
a, b and c are in G.P
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Solution

The correct option is A b, c and a are in A.P
We have,
225a2+9b2+25c275ac45ab15bc=0
(15a)2+(3b)2+(5c)2(15a)(5c)(15a)(3b)(3b)(5c)=0
12[(15a3b)2+(3b5c)2+(5c15a)2]=0
15a=3b,3b=5c
and 5c=15a
15a=3b=5c
a1=b5=c3=λ(say)
a=λ,b=5λ,c=3λ
Hence, b, c and a are in AP.

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