The least multiple of 7, which leaves a remainder of 4, when divided by 6, 9, 15

Question

The least multiple of 7, which leaves a remainder of 4, when divided by 6, 9, 15 and 18 is:

Options:

A . 74

B . 94

C . 184

D . 364

Answer: Option D

L.C.M. of 6, 9, 15 and 18 is 90.

Let required number be 90k + 4, which is multiple of 7.

Least value of k for which (90k + 4) is divisible by 7 is k = 4.

Therefore Required number = (90 x 4) + 4 = 364.

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