Question 42053: When 391758 and 394915 are divided by a certain three digit number, the three digit remainder is the same in each case. Find the divisor.
Found 2 solutions by kev82, AnlytcPhil:
Answer by kev82(151)   (Show Source):
Answer by AnlytcPhil(1807)  (Show Source):
You can put this solution on YOUR website! When 391758 and 394915 are divided by a certain three digit number,
the three digit remainder is the same in each case. Find the divisor.
Let D = the required divisor
Let Q1 = quotient when 391758 is divided by D
Let Q2 = quotient when 394915 is divided by D
Let R - the remainder in each case
Then
391758 = Q1·D + R
394915 = Q2·D + R
Subtracting the 1st equation from the 2nd
3157 = Q1·D - Q2·D
3157 = D(Q2 - Q1)
D = 3157/(Q2 - Q1)
So Q2 - Q1 has to be a factor of 3157
3157 = 7×11×41
So the factors of 3157 are 1, 7, 11, 7×11, 7×41, 11×41, and 7×11×41
So Q2-Q1 is one of these: 1, 7, 11, 77, 287, 451, and 3157
So D = 3157, 451, 287, 41, 11, 7, or 1
Only two of these have three digits, 287 and 451.
When 391758 and 394915 are divided by 287, the remainder is 3 in both cases.
But the remainder must be a 3-digit number
When 391758 and 394915 are divided by 451, the remainder is 290 in both cases.
That's a 3-digit remainder. so 451 is the answer.
Edwin
AnlytcPhil@aol.com
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