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Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles

Q1: Find the area of the shaded region in given Fig. where arcs drawn with centres A, B, C and D intersect in pairs at mid-points P, Q, R and S of the sides AB, BC, CD and DA, respectively of a square ABCD (Use π = 3.14).
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles(a) 30.96 cm2
(b) 90.96 cm
2 
(c) 120.96 cm
2 
(d) 180
.96 cm2 
Ans: (a)
Area of all four sectors made by square and circle are equal.
And each sector have an angle of 90º
And radius of circle is 12/2 cm = 6 cm
Area of shaded region = Area of square ABCD − 4 × Area of one sector
⇒ Area of shaded region = Area of square ABCD − Area of circle with radius 6 cm
= 12 × 12 − π × 62 cm2 
=144 − 113.04 cm2 = 30.96 cm2

Q2: PQRS is the diameter of a circle of radius 6 cm. The lengths PQ, QR and RS are equal. Semi-circles are drawn with PQ and QS as diameters as shown in figure, the ratio of the area of the shaded region to that of the unshaded region is 5:1. If true then enter 1 and if false then enter 0.
Class 10 Maths Chapter 11 HOTS Questions - Area Related to CirclesAns: 
Area of circle = πr2  = 36π
PQ = QR = RS = 2cm
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles
Thus answer is false. 0

Q3: In figure ABC is a right-angled triangle right-angled at A. Semicircle are drawn on AB, AC and BC as diameters. Find the area of the shaded region.
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles
(a) 6sq. unit
(b) 9sq. unit
(c) 8sq. unit
(d) 5sq. unit

Ans: (a)
Area of shaded region = area of semicircle AB + area of semi-circle AC - (area of semicircle on side BC) + area of ΔABC
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles
Area ΔABC= 1/2  × AB × AC = 1/2 × 3 × 4 = 6 sq. units
Therefore, area of shaded region = 3.54 + 6.28 − 9.82 + 6
 = 6 sq. units

Q4: In a circular table corner of radius 32 cm, a design is formed leaving an equilateral triangle ABC in the middle as shown in Fig. Find the area of the design.
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles
Ans: 
In △BOD By Trigonometry,
BD = 32sin 60o = 27.71cm
BC = 55.43cm
OD = 32 cos 60o
=16cm
∴ Area of △ BOC = 1/2  × 16 × 55.43
= 443.4cm2
∴ Area of Equilateral triangle = 3 × A△BOC = 3 × 443.4 =1330.2cm2
Area of circle = π × r2 =3.14 × 32 × 32 = 3215.36cm2
∴ Area of shaded region = 3215.36 − 1330.2 = 1885.16cm2
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles

Q5: Two semi-circles are drawn on the diameter of a semi-circle with radius 18cm. A circle with centre C is drawn such that it touches the two semi-circles. Find area of shaded region.
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles 
Ans: Draw RM ⊥ AB
AM = MB = AB/2  =18 cm
AP = PM = MQ = QB = 18/2 = 9 cm
MR = AM = 18㎝
CM = RM − CR = 18 − r
PC = PE + EC = 9 + r
In triangle CMP
PC2 = CM2 + PM2 ⇒ (9+r)2 = (18−r)2 + 92
⇒ 81 + 18r + r2 = 324 − 36r + r2 + 81 ⇒ 54r = 324 ⇒ r = 6 cm
∴ Area of shaded region=area of semi-circle AB−2 area of semi-circle-area of circle with C as centre
Class 10 Maths Chapter 11 HOTS Questions - Area Related to Circles
=162π − 81π − 36π = 45π cm2

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