See image — AITS & Test Series Chemistry Question
Question
See image
Answer: 5
💡 Solution & Explanation
0 1 2 n k k k k 1 2 n p 2 p ,p ....p where pi odd prime Total number of even divisors 0 1 2 n k k 1 k 1 .... k 1 Total number of odd divisors 1 2 n k 1 k 1 .... k 1 0 1 2 n f p k 1 k 1 k 1 .... k 1 4 k0 = 2, ki = kj = 1, p = 4.3.5 = 60 k0 = 3, ki = 1, p = 24, 40, 56 k0 = 5, p = 32.
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