Answer:
Option D
Explanation:
Given information
Bulk unit weight of 107.0 lb/cf
Water content of 7.3%,=0.073
Specific gravity of the soil solids is 2.62
Specifications
Dry unit weight is 113 lb/cf
Water content is 6%.
Volume of embankment is 440,000-cy
Borrow material
[tex]Dry_{unit,weight}=\frac {bulk_{unit,weight}}{1+water_{content}}=\frac {107}{1+0.073}= 99.72041 lb/cf[/tex]
Embankment
Considering that the volume of embankment is inversely proportional to the dry unit weight
[tex]\frac {V_{embankment}}{V_{borrow}}=\frac {Dry_{borrow}}{Dry_{embankment}}[/tex]
Therefore, [tex]V_{borrow}=V_{embankment} *\frac {Dry_{embarkement}}{Dry_{borrow}}[/tex]
[tex]V_{borrow}=440,000-cy*\frac {113 lb/cf }{99.72041 lb/cf }= 498594-cy[/tex]
Therefore, volume of borrow material is 498594-cy
(b)
The weight of water in embankment is found by multiplying the moisture content and dry unit weight.
Assuming that all the specifications are achieved, weight of water in embankment=0.06*113=6.78 lb/cf
Since [tex]1 yd^{3}= 27 ft^{3}[/tex]
The embankment requires water of 6.78*27*440000= 80546400 lb
Borrow materials’ water will also be 0.073*99.72041=7.27959 lb/cf
Borrow material requires water of 7.27959*27*498594=97998120 lb
Extra water between borrow material and embankment=97998120 lb-80546400 lb=17451720 lb
[tex]Unit_{weight}=\frac {17451720}{498594}=35.00186 lb[/tex]
1 gallon is approximately [tex]8.35 yd^{3}[/tex] hence
[tex]\frac {35.00186 lb/yd^{3}}{8.35}=4.19184 gallons/yd^{3}[/tex]
That's approximately 4.2 gallons
