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28 July, 21:05

find two positive even consecutive integers such that a square of the smaller integer is 10 more than the larger integer

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  1. 28 July, 21:24
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    the two positive consecutive integers are 4 and 6.

    Step-by-step explanation:

    Let the smaller integer be s; then s^2 = (s + 2) + 10.

    Simplifying, s^2 - s - 2 - 10 = 0, or

    s^2 - s - 12 = 0.

    Solve this by factoring: (s - 4) (s + 3) = 0.

    Then s = 4 and s = - 3.

    If the first even integer is 4, the next is 6. We omit s = - 3 because it's not even.

    The smaller integer is 4. Does this satisfy the equation s^2 = (s + 2) + 10?

    4^2 = (4 + 2) + 10 True or False?

    16 = 6 + 10 = 16.

    True.

    So the two positive consecutive integers are 4 and 6.
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