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19 April, 02:53

Base course aggregate has a target density of 121.8 lb/ft3 in place It will be laid down and compacted in a rectangular street repair area of 1000 ft x 60 ft x 6 in. The aggregate in the stockpile contains 3.5% moisture. If the required compaction is 95% of the target, how many pounds of aggregate will be needed?

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  1. 19 April, 03:06
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    total weight of the aggregate = 3594878.28 lbs

    Explanation:

    given data

    density = 121.8 lb/ft³

    area = 1000 ft x 60 ft x 6 in = 1000 ft x 60 ft x 0.5 ft

    moisture = 3.5 %

    compaction = 95%

    solution

    we get here first volume of the space that is filled with the aggregate that is

    volume = 1000 ft x 60 ft x 0.5 ft = 30,000 cu ft

    now we get fill space with aggregate that compact to 95% of dry density.

    so we fill space with aggregate of density that is = 95% of 121.8

    = 115.71 lb / cu ft

    so now dry weight of aggregate is

    dry weight of aggregate = 30,000 * 115.71 = 3471300 lb

    when we assume that moisture percentage is by weight

    then weight of the moisture in aggregate will be

    weight of the moisture in aggregate = 3.56 % of 3471300 lb

    weight of the moisture in aggregate = 123578.28 lbs

    and

    we get total weight of the aggregate to fill space that is

    total weight of the aggregate = 3471300 lb + 123578.28 lb

    total weight of the aggregate = 3594878.28 lbs
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