The area bounded by x−axis, the curve y=(1+8x2) and the ordinates at x=2 and x=4 is divided into two equal parts at x=a. Then a2−√2a−2=
A
2.00
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B
2
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C
2.0
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Solution
We have, y=1+8x2
Required area=4∫2ydx =4∫2(1+8x2)dx=[x−8x]42=4
If x=a bisects the area then we have a∫2(1+8x2)dx=[x−8x]a2=[a−8a−2+4]=42 ⇒a−8a=0⇒a2=8 ⇒a=±2√2
Since 2<a<4 ∴a=2√2⇒a2−√2a−2=2