Question:
Find the area of the region in the first quadrant enclosed by x-axis,line x=√3y and the circle x2+y2=4
Find the area of the region in the first quadrant enclosed by x-axis,line x=√3y and the circle x2+y2=4
Updated On: Sep 1, 2023
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Solution and Explanation
The area of the region bounded by the circle,x2+y2=4,x=√3y,and the x-axis is the
area OAB.
The point of intersection of the line and the circle in the first quadrant is(√3,1).
Area OAB=Area ΔOCA+Area ACB
Area of OAC=1/2×OC×AC=1/2×√3×1=√3/2...(1)
Area of ABC=∫2√3ydx
=∫2√3√4-x2dx
=[x/2√4-x2+4/2sin-1x/2]2√3
=[2×π/2-√3/2√4-3-2sin-1(√3/2)]
=[π-√3π/2-2(/3)]
=[π-√3/2-2π/3]
=[π/3-√3/2]...(2)
Therefore,area enclosed by x-axis,the line x=√3y,and the circle x2+y2=4 in the first
quadrant=√3π/2+/3-3√/2π=/3units.
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