PSEB Solutions for Class 9 Maths Chapter 13 Surface Areas and Volumes Ex 13.4
PSEB Solutions for Class 9 Maths Chapter 13 Surface Areas and Volumes Ex 13.4
PSEB 9th Class Maths Solutions Chapter 13 Surface Areas and Volumes Ex 13.4
Note: Assume π = 22/7, unless stated otherwise.
Question 1.
Find the surface area of a sphere of radius:
(i) 10.5 cm
Answer:
Note: We can also use the formula “Surface area of a sphere = πd2” as
4πr2 = π × 4r2 = π × (2r)2 = πd2, where r and d are radius and diameter of the sphere respectively.
Question 3.
Find the total surface area of a hemisphere of radius 10 cm. (Use π =3.14)
Answer:
For the given hemisphere, radius r = 10 cm.
Total surface area of a hemisphere
= 3πr2
= 3 × 3.14 × 10 × 10 cm2
= 942 cm2
Question 4.
The radius of a spherical balloon increases from 7 cm to 14 cm as air is being pumped into it. Find the ratio of surface areas of the balloon in the two cases.
Answer:
Question 8.
A hemispherical bowl is made of steel, 0.25 cm thick. The inner radius of the bowl is 5 cm. Find the outer curved surface area of the bowl.
Answer:
For the given hemispherical bowl, the inner radius is 5 cm and the thickness of steel is 0.25 cm.
∴ Outer radius r of the given hemispherical bowl = 5 + 0.25 cm = 5.25 cm.
Curved surface area of a hemisphere
Question 9.
A right circular cylinder just encloses a sphere of radius r (see the given figure). Find :
(i) surface area of the sphere,
(ii) curved surface area of the cylinder,
(iii) ratio of the areas obtained in (i) and (ii).
Answer:
Here,
radius of the cylinder = radius of the sphere = r and height of the cylinder h
= 2 × radius of the sphere = 2r
(i) Surface area of the sphere = 4πr2
(ii) Curved surface area of the cylinder
= 2 πrh
= 2 × 1 × r × 2r
= 4 πr2
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