ABCP is a quadrant of a circle of radius 14 cm. with AC as diameter, a semicircle is drawn. Find the area of the shaded portion

BCP is a quadrant of a circle of radius 14cm. With AC as diameter,a semi-circle is drawn. Find the area of the shaded portion.

ABCP is a quadrant of a circle of radius 14cm. With AC as diameter,a semi-circle is drawn.Find the area of the shaded portion.

In Fig. 12.64, ABCP is a quadrant of a circle of radius 20 cm. With AC as diameter, a semi-cirde is drawn. Find the area of the shaded portion.

In the given figure, ABC is a quadrant of a circle of radius 14 cm and a semicircle is drawn with BC as diameter. Find the area of the shaded region.

In Fig.12.33,ABC is a quadrant of a circle of radius 14cm and a semicircle is drawn with BC as diameter.Find the area of the shaded region.

In the given figue, ABCD is a quadrant of a circle of radius 28 cm and a semicircle ABECA is drawn with AC as diameter. Find the area of the shaded region.

In the figure, ABC is a right angled triangle with B = 90^(@) , BC = 21 cm and AB = 28 cm. With AC as diameter of a semicircle and with BC as radius, a quarter circle is drawn. Find the area of the shaded portion correct to two decimal places

In figure ABDC is a quadrant of a circle of a radius 28 cm and a semi circles BEC is drawn with BC as diameter find the area of shaded region:

The radius of each circle is 'a'. Then the area of the shaded portion is :

In the given figure DeltaABC is a right angled triangle with /_B=90^(@),AB=48cm and BC=14cm . With AC as diameter a semicircle is drawn and with BC as radius, a quadrant of a circle is drawn. Find the area of the shaded region. [Use pi=22/7 ]