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NCERT solutions for Class 9 Maths Surface Areas and Volumes Download as PDF
NCERT Solutions for Class 9 Mathematics Surface Areas and Volumes
Assume 
unless stated otherwise.
1. Find the surface area of a sphere of radius:
(i) 10.5 cm
(ii) 5.6 cm
(iii) 14 cm
Ans. (i) Radius of sphere = 105 cm
Surface area of sphere = 
= 
= 1386 cm2
(ii) Radius of sphere = 5.6 m
Surface area of sphere =
= 
= 3.94.84 m2
(iii) Radius of sphere = 14 cm
Surface area of sphere =
= 
= 2464 cm2
2. Find the surface area of a sphere of diameter:
(i) 14 cm
(ii) 21 cm
(iii) 3.5 cm
Ans. (i) Diameter of sphere = 14 cm,
Therefore Radius of sphere = 
= 7 cm
Surface area of sphere =
= 
= 616 cm2
(ii) Diameter of sphere = 21 cm
Radius of sphere = 
cm
Surface area of sphere =
= 
= 1386 cm2
(iii) Diameter of sphere = 3.5 cm
Radius of sphere = 
= 1.75 cm
Surface area of sphere =
= 
= 38.5 cm2
NCERT Solutions for Class 9 Maths Exercise 13.4
3. Find the total surface area of a hemisphere of radius 10 cm.
Ans. Radius of hemisphere 
10 cm
Total surface area of hemisphere = 
= 3 x 3.14 x 10 x 10 = 942 cm2
Hence total surface area of hemisphere is
942 cm2.
NCERT Solutions for Class 9 Maths Exercise 13.4
4. The radius of a spherical balloonincreases from 7 cm to 14 cm as air isbeing pumped into it. Find the ratio ofsurface areas of the balloon in the twocases.
Ans. I case: Radius of balloon 
= 7 cm
Surface area of balloon =
= 
cm2……….(i)
II case: Radius of balloon (R) = 14 cm
Surface area of balloon = 
= 
cm2 …….(ii)
Now, Ratio [from eq. (i) and (ii)],
= 
= 
Hence, required ratio = 1 : 4
NCERT Solutions for Class 9 Maths Exercise 13.4
5.A hemispherical bowl made of brass has inner diameter 105 cm. Find the cost of tin-plating it on the inside at the rate of Rs. 16 per 100 cm2.
Ans. Inner diameter of bowl
= 10.5 cm
Inner radius of bowl 
= 5.25 cm
Now, Inner surface area of bowl
= 
= 
= 
= 
cm2
Cost of tin-plating per 100 cm2
= Rs. 16
Cost of tin-plating per 1 cm2 = 
Cost of tin-plating per cm2
=
= Rs. 27.72
NCERT Solutions for Class 9 Maths Exercise 13.4
6. Find the radius of a sphere whose surface area is 154 cm2.
Ans. Surface area of sphere = 154 cm2
= 154
= 3.5 cm
NCERT Solutions for Class 9 Maths Exercise 13.4
7.The diameter of the moon is approximately one fourth the diameter of the earth. Find the ratio of their surface areas.
Ans. Let diameter of Earth = 
Radius of Earth = 
Surface area of Earth =
= 
Now, Diameter of Moon = 
of diameter of Earth = 
Radius of Moon = 
Surface area of Moon =
= 
= 
Now, Ratio = 
= 
= 
= 
Required ratio = 1 : 16
NCERT Solutions for Class 9 Maths Exercise 13.4
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.
Ans. Inner radius of bowl = 5 cm
Thickness of steel 
= 0.25 cm
Outer radius of bowl (R) = 
= 5 +0.25 = 5.25 cm
Outer curved surface area of bowl
= 
=
=
= = 173.25 cm2
NCERT Solutions for Class 9 Maths Exercise 13.4
9. A right circular cylinder just encloses a sphere of radius 
(See 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).
Ans. (i) Radius of sphere =
Surface area of sphere
= 
The cylinder just encloses the sphere in it.
The height of cylinder will be equal to diameter of sphere.
And The radius of cylinder will be equal to radius of sphere.
(ii) Curved surface area of cylinder
= 
= 
=
(iii) 
Required ratio = 1 :1
NCERT Solutions for Class 9 Maths Exercise 13.4
NCERT Solutions for Class 9 Maths PDF (Download) Free from myCBSEguide app and myCBSEguide website. Ncert solution class 9 Maths includes text book solutions from Mathematics Book. NCERT Solutions for CBSE Class 9 Maths have total 15 chapters. 9 Maths NCERT Solutions in PDF for free Download on our website. Ncert Maths class 9 solutions PDF and Maths ncert class 9 PDF solutions with latest modifications and as per the latest CBSE syllabus are only available in myCBSEguide.
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