Monday, June 1, 2020

NCERT solution class 10 chapter 13 Surface Areas and Volumes exercise 13.5 mathematics

EXERCISE 13.5




Q 1, Ex 13.5 - Surface Areas And Volumes - Chapter 13 - Maths Class 10th - NCERT

Page No 258:

Question 1:

A copper wire, 3 mm in diameter, is wound about a cylinder whose length is 12 cm, and diameter 10 cm, so as to cover the curved surface of the cylinder. Find the length and mass of the wire, assuming the density of copper to be 8.88 g per cm3.

Answer:


It can be observed that 1 round of wire will cover 3 mm height of cylinder.

Length of wire required in 1 round = Circumference of base of cylinder
= 2πr = 2π × 5 = 10π
Length of wire in 40 rounds = 40 × 10π

= 1257.14 cm = 12.57 m
Radius of wire 
Volume of wire = Area of cross-section of wire × Length of wire
= π(0.15)2 × 1257.14
= 88.898 cm3
Mass = Volume × Density
= 88.898 × 8.88
= 789.41 gm



Question 2:

A right triangle whose sides are 3 cm and 4 cm (other than hypotenuse) is made to revolve about its hypotenuse. Find the volume and surface area of the double cone so formed. (Choose value of π as found appropriate.)

Answer:


The double cone so formed by revolving this right-angled triangle ABC about its hypotenuse is shown in the figure.
Hypotenuse
= 5 cm
Area of ΔABC

Volume of double cone = Volume of cone 1 + Volume of cone 2

= 30.14 cm3
Surface area of double cone = Surface area of cone 1 + Surface area of cone 2
= πrl1 + πrl2

= 52.75 cm2


Q 3, Ex 13.5 - Surface Areas And Volumes - Chapter 13 - Maths Class 10th - NCERT

Question 3:

A cistern, internally measuring 150 cm × 120 cm × 110 cm, has 129600 cm3 of water in it. Porous bricks are placed in the water until the cistern is full to the brim. Each brick absorbs one-seventeenth of its own volume of water. How many bricks can be put in without overflowing the water, each brick being 22.5 cm × 7.5 cm × 6.5 cm?

Answer:

Volume of cistern = 150 × 120 × 110
= 1980000 cm3
Volume to be filled in cistern = 1980000 − 129600
= 1850400 cm3
Let n numbers of porous bricks were placed in the cistern.
Volume of n bricks = n × 22.5 × 7.5 × 6.5
= 1096.875n
As each brick absorbs one-seventeenth of its volume, therefore, volume absorbed by these bricks 

n = 1792.41
Therefore, 1792 bricks were placed in the cistern.



Question 4:

In one fortnight of a given month, there was a rainfall of 10 cm in a river valley. If the area of the valley is 7280 km2, show that the total rainfall was approximately equivalent to the addition to the normal water of three rivers each 1072 km long, 75 m wide and 3 m deep.

Answer:

Area of the valley = 7280 km2
If there was a rainfall of 10 cm in the valley then amount of rainfall in the valley = Area of the valley × 10 cm
Amount of rainfall in the valley = 7280 km2 × 10 cm
=7280×1000m2×10100m=7280×105m3=7.28×108m3
Length of each river, l = 1072 km = 1072 × 1000 m = 1072000 m
Breadth of each river, b = 75 m
Depth of each river, h = 3 m
Volume of each river = l × b × h
= 1072000 × 75 × 3 m3
= 2.412 × 10m3
Volume of three such rivers = 3 × Volume of each river
= 3 × 2.412 × 108 m3 
= 7.236 × 10m3
Thus, the total rainfall is approximately same as the volume of the three rivers.


Q 5, Ex 13.5 - Surface Areas And Volumes - Chapter 13 - Maths Class 10th - NCERT

Question 5:

An oil funnel made of tin sheet consists of a 10 cm long cylindrical portion attached to a frustum of a cone. If the total height is 22 cm, diameter of the cylindrical portion is 8 cm and the diameter of the top of the funnel is 18 cm, find the area of the tin sheet required to make the funnel (see the given figure).

Answer:


Radius (r1) of upper circular end of frustum part 
Radius (r2) of lower circular end of frustum part = Radius of circular end of cylindrical
part

Height (h1) of frustum part = 22 − 10 = 12 cm
Height (h2) of cylindrical part = 10 cm
Slant height (l) of frustum part 
Area of tin sheet required = CSA of frustum part + CSA of cylindrical part

Question 6:

Derive the formula for the curved surface area and total surface area of the frustum of cone.

Answer:


Let ABC be a cone. A frustum DECB is cut by a plane parallel to its base. Let r1 and r2 be the radii of the ends of the frustum of the cone and h be the height of the frustum of the cone.
In ΔABG and ΔADF, DF||BG
∴ ΔABG ∼ ΔADF

CSA of frustum DECB = CSA of cone ABC − CSA cone ADE


CSA of frustum = 

Question 7:

Derive the formula for the volume of the frustum of a cone.

Answer:


Let ABC be a cone. A frustum DECB is cut by a plane parallel to its base.
Let r1 and r2 be the radii of the ends of the frustum of the cone and h be the height of the frustum of the cone.
In ΔABG and ΔADF, DF||BG
∴ ΔABG ∼ ΔADF


Volume of frustum of cone = Volume of cone ABC − Volume of cone ADE





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