Question
Download Solution PDFIf the seven-digit number 52A6B7C is divisible by 33, and A, B, C are primes, then the maximum value of 2A + 3B + C is:
Answer (Detailed Solution Below)
Detailed Solution
Download Solution PDFGiven:
The seven-digit number 52A6B7C is divisible by 33
Concept used:
If the difference of the sum of alternative digits of a number is divisible by 11, then that number is divisible by 11 completely.
If the sum of digits of a number is a multiple of 3, the number will be completely divisible by 3.
Calculation:
5 + 2 + A + 6 + B + 7 + C = 20 + A + B + C
Possible values of (A + B + C) = 1, 4, 7, 10, 13, 16, 19, 22, 25
Again,
5 + A + B + C - 2 - 6 - 7 = 0 or Multiple of 11
⇒ 5 + A + B + C - 15 = 0 or Multiple of 11
From the above possible values, for (A + B + C) = 10 we get 0
So, A + B + C = 10
Now,
If A = 5, B = 3, C = 2
2A + 3B + C = 10 + 9 + 2
⇒ 21
If A = 3, B = 5, C = 2
2A + 3B + C = 6 + 15 + 2
⇒ 23
If A = 3, B = 2, C = 5
2A + 3B + C = 6 + 6 + 2
⇒ 17
If A = 2, B = 5, C = 3
2A + 3B + C = 4 + 15 + 3
⇒ 22
So, The maximum value of 2A + 3B + C is 23.
∴ The required answer is 23.
Last updated on Jul 19, 2025
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