Square ABCD has an area of 9 square inches. Sides AD and BC
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Square ABCD has an area of 9 square inches. Sides AD and BC are lengthened to x inches each. By how many inches were sides AD and BC lengthened?
(1) The diagonal of the resulting rectangle measures 5 inches.
(2) The resulting rectangle can be cut into three rectangles of equal size.
OA A
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Given that the square ABCD has an area of 9 square inches, we have AD = BC = 3 inches. Thus, the increased length of AD and BC is AD' and BC' = (3 + x) inches.BTGmoderatorDC wrote:
Square ABCD has an area of 9 square inches. Sides AD and BC are lengthened to x inches each. By how many inches were sides AD and BC lengthened?
(1) The diagonal of the resulting rectangle measures 5 inches.
(2) The resulting rectangle can be cut into three rectangles of equal size.
OA A
Source: Manhattan Prep
We have to determine the value of x.
Let's take each statement one by one.
(1) The diagonal of the resulting rectangle measures 5 inches.
For the rectangle ABC'D', the length of the diagonal = √[(AD')^2 + (AB)^2] = √[(3 + x)^2 + (3^2)] = 5
(3 + x)^2 + (3^2) = 5^2
(3 + x)^2 + 9 = 25
(3 + x)^2 = 25 - 9
(3 + x)^2 = 16
x = 1
Sufficient.
(2) The resulting rectangle can be cut into three rectangles of equal size.
Say x = 4, the length of each rectangle 7/3, and the area of each of the three rectangles would be 7/3*3 = 7 sq inches. However, x = 6, the length of each rectangle 9/3 = 3, and the area of each of the three rectangles would be 3*3 = 9 sq inches. No unique answer. Insufficient.
The correct answer: A
Hope this helps!
-Jay
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