The area bounded by the curve x2 + y2 = 1 in first quadrant is

Question

The area bounded by the curve x2 + y2 = 1 in first quadrant is (A) (π/4) sq. units (B) (π/2) sq. units (C) (π/3) sq. units (D) (π/6) sq. units

Tardigrade Admin · Accepted Answer

We have, x2 + y2 = 1, a circle with centre (0,0) and radius = 1. <img class="img-fluid question-image" alt="image" src="https://cdn.tardigrade.in/img/question/mathematics/8b68fcd2f5c1ccb7d78b1bf6efaf9405-.png" /> Required area = area of shaded region =∫ limits01√1-x2 dx=[(x/2)√1-x2+(1/2)sin-1(x/1)]01 =[(1/2)sin-11]=((1/2)×(π/2))=(π/4) Sq. units

Q. The area bounded by the curve $x^{2} + y^{2} = 1$ in first quadrant is

$\frac{π}{4}$ sq. units

$\frac{π}{2}$ sq. units

$\frac{π}{3}$ sq. units

$\frac{π}{6}$ sq. units

Q. The area bounded by the curve x2+y2=1 in first quadrant is

4π​ sq. units

2π​ sq. units

3π​ sq. units

6π​ sq. units

We have, x2+y2=1, a circle with centre (0,0) and radius = 1. Required area = area of shaded region =0∫1​1−x2​dx=[2x​1−x2​+21​sin−11x​]01​ =[21​sin−11]=(21​×2π​)=4π​ Sq. units

Q. The area bounded by the curve $x^{2} + y^{2} = 1$ in first quadrant is

$\frac{π}{4}$ sq. units

$\frac{π}{2}$ sq. units

$\frac{π}{3}$ sq. units

$\frac{π}{6}$ sq. units