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Quantitative Aptitude Question on Mensuration

In a triangle ABC,AB=AC=8cm. A circle drawn with BC as diameter passes through A. Another circle drawn with center at A passes through B and C. Then the area,in sq.cm,of the overlapping region between the two circles is

A

16(π1)16(\pi−1)

B

32(π1)32(π−1)

C

32π32π

D

16π16π

Answer

32(π1)32(π−1)

Explanation

Solution

The correct answer is B:(32(π1)32(\pi-1)
Given:
Triangle ABC with AB=AC=8cm.
Circle with BC as diameter passes through A (let's call this Circle 1).
Circle with center at A passes through B and C (let's call this Circle 2).
Circle
First, let's find the radius of Circle 1:
The diameter of Circle 1 is BC,which is also the side AC of triangle ABC.Since AB=AC=8cm,BC=8cm.
So, the radius of Circle  1=BC2=82=4cmCircle\space 1=\frac{BC}{2}=\frac{8}{2}=4cm.
Next,let's find the radius of Circle 2:
Since Circle 2 has center at A and passes through B and C, the radius of Circle 2 is AB=8cm.
Now,let's find the distance between the centers of Circle 1 and Circle 2:
The centers of Circle 1 and Circle 2 are A and B,respectively.The distance between A and B is AB=8cm.
The overlapping region between two circles occurs when the distance between their centers is less than the sum of their radii.In this case, the condition for overlap is:
Distance between centers<Radius of Circle 1+Radius of Circle 2
8 cm< 4cm+8cm
8 cm< 12cm
Since 8cm is indeed less than 12cm, there is an overlapping region between the two circles.
To find the area of the overlapping region, we can use the formula for the area of the intersection of two circles:
Area of overlap=Circle 1 area sector-Triangle area+Circle 2 area sector
Circle 1 area sector=(θ360)×π×r2(\frac{θ}{360}) \times π \times r^2, where θ is the angle of the sector formed by the overlapping region (in degrees), and r is the radius of Circle 1.
Triangle area=0.5×base×height0.5\times{base}\times{height}, where the base is AB=8cm, and the height is the distance between the centers of the circles (8 cm).
Circle 2 area sector=(θ360)×π×r2(\frac{θ}{360}) \times π \times r^2, where θ is the angle of the sector formed by the overlapping region (in degrees), and r is the radius of Circle 2.
Substituting the values:
θθ=360° (since the overlapping region is essentially the whole circle)
r (Circle 1)=4 cm
r (Circle 2)=8 cm
Circle 1 area sector=(360360)×π×(42)=16π(\frac{360}{360}) \times π \times (4^2) = 16π
Triangle area=0.5×8×8=320.5 \times 8 \times 8=32
Circle 2 area sector=(360360)×π×(82)=64π(\frac{360}{360}) \times π \times (8^2) = 64π
Area of overlap=16π32+64π=80π32=48π16π-32+64π=80π-32=48π
So, the correct option is:** B**. 32(π−1)