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Question

Given that the 4th term in the expansion of (2+3x8)10 has the maximum numerical value, then x lies in the interval


A

(2,6421)

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B

(6023,2)

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C

(6421,2)

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D

(2,6023)

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Solution

The correct options are
A

(2,6421)


C

(6421,2)


Since t4 is numerically the greatest term,
|t3|<|t4| and |t5|<|t4| |t3t4|<1 and |t5t4|<1But t3t4=10C2(28)(3x8)210C3(27)(3x8)3=2xand t5t4=10C4(26)(3x8)410C3(27)(3x8)3=21x64Now, |t3t4|<1 |2x|<1


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