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2 September, 09:21

Suppose there is a pile of quarters, dimes and pennies with a total value of $1.07. How much of each coin can be present without being able to make change for a dollar?

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  1. 2 September, 11:39
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    Hello,

    In the triplet below (x, y, z) x is the number of quaters,

    y the number of dimes,

    z the number of pennies

    Answer is : (1, 8, 2), (3, 3, 2)

    I107 = (0, 0, 107) but : 100 = 0*25 + 0*10 + 100

    107 = (0, 1, 97) but : 100 = 0*25 + 1*10 + 90

    107 = (0, 2, 87) but : 100 = 0*25 + 2*10 + 80

    107 = (0, 3, 77) but : 100 = 0*25 + 3*10 + 70

    107 = (0, 4, 67) but : 100 = 0*25 + 4*10 + 60

    107 = (0, 5, 57) but : 100 = 0*25 + 5*10 + 50

    107 = (0, 6, 47) but : 100 = 0*25 + 6*10 + 40

    107 = (0, 7, 37) but : 100 = 0*25 + 7*10 + 30

    107 = (0, 8, 27) but : 100 = 0*25 + 8*10 + 20

    107 = (0, 9, 17) but : 100 = 0*25 + 9*10 + 10

    107 = (0, 10, 7) but : 100 = 0*25 + 10*10 + 0

    107 = (1, 0, 82) but : 100 = 1*25 + 0*10 + 75

    107 = (1, 1, 72) but : 100 = 1*25 + 1*10 + 65

    107 = (1, 2, 62) but : 100 = 1*25 + 2*10 + 55

    107 = (1, 3, 52) but : 100 = 1*25 + 3*10 + 45

    107 = (1, 4, 42) but : 100 = 1*25 + 4*10 + 35

    107 = (1, 5, 32) but : 100 = 1*25 + 5*10 + 25

    107 = (1, 6, 22) but : 100 = 1*25 + 6*10 + 15

    107 = (1, 7, 12) but : 100 = 1*25 + 7*10 + 5

    107 = (1, 8, 2) is good

    107 = (2, 0, 57) but : 100 = 2*25 + 0*10 + 50

    107 = (2, 1, 47) but : 100 = 2*25 + 1*10 + 40

    107 = (2, 2, 37) but : 100 = 2*25 + 2*10 + 30

    107 = (2, 3, 27) but : 100 = 2*25 + 3*10 + 20

    107 = (2, 4, 17) but : 100 = 2*25 + 4*10 + 10

    107 = (2, 5, 7) but : 100 = 2*25 + 5*10 + 0

    107 = (3, 0, 32) but : 100 = 3*25 + 0*10 + 25

    107 = (3, 1, 22) but : 100 = 3*25 + 1*10 + 15

    107 = (3, 2, 12) but : 100 = 3*25 + 2*10 + 5

    107 = (3, 3, 2) is good

    107 = (4, 0, 7) but : 100 = 4*25 + 0*10 + 0
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