Class 9 Exam  >  Class 9 Notes  >  RD Sharma Solutions for Class 9 Mathematics  >  RD Sharma Solutions -Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math

Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics PDF Download

Q1) A cuboidal water tank is 6 m long, 5 m wide and 4.5 m deep. How many liters of water can it hold?

Solution:

Given data:

Length (l) = 6m

Breadth (b) = 5m

Height (h) = 4.5m

Volume of the tank = l*b*h

= 6*5*4.5

= 135m3

It is given that,

1m3  = 1000 liters

Therefore,135m3 = (135∗1000)liters

= 135000 liters

The tank can hold 1,35,000 liters of water.

 

Q2) A cuboidal vessel is 10 m long and 8 m wide. How high must it be made to hold 380 cubic meters of a liquid?

Solution:

Given that

Length of the vessel (l) = 10 m

Width of the Cuboidal vessel = 8 m

Let ‘h’ be the height of the cuboidal vessel.

Volume of the vessel = 380m3

Therefore,l∗b∗h = 380m3

⇒ 10∗8∗h = 380

⇒ h = Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

⇒ h = 4.75m

Therefore, height of the vessel should be 4.75 m.

 

Q3) Find the cost of digging a cuboidal pit 8 m long, 6 m broad and 3 m deep at the rate of Rs 30 per m3

Solution:

Given,

Length of the cuboidal pit (l) = 8 m

Breadth of the cuboidal pit (b) = 6 m

Depth of the cuboidal pit (h) = 3 m

Volume of the Cuboidal pit = l*b*h

= 8*6*3

= 144 m3

Cost of digging 1m3  = Rs. 30

Cost of digging 144m3  = 144*30 = Rs.4320

 

Q4) If V is the volume of a cuboid of dimensions a, b, c and S is its surface area, then prove that Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

Solution:

Given Data:

Length of the cube (l) = a

Breadth of the cube (b) = b

Height of the cube (h) = c

Volume of the cube (V) = l*b*h

= a*b*c

= abc

Surface area of the cube (S) = 2 (lb+bh+hl)

= 2 (ab+bc+ca)

Now, Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

Therefore,Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

Therefore,Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

Hence Proved.

 

Q5) The areas of three adjacent faces of a cuboid are x, y and z.. If the volume is V, Prove that V2 = xyz.

Solution:

Let a, b and d be the length, breadth, and height of the cuboid.

Then, x = ab

y = bc

z = ca

and V = abc [V = l*b*h]

= xyz = ab*bc*ca =  (abc)2

and V = abc

V2 = (abc)2

Therefore,V2 = (xyz)

 

Q6) If the areas of three adjacent face of a cuboid are 8cm3, 18cm3 and 25cm3. Find the volume of the cuboid.

Solution:

WKT, if x, y, z denote the areas of three adjacent faces of a cuboid.

= x = l*b, y = b*h, z = l*h

Volume (V) is given by

V = l*b*h

Now, xyz = lb*bh*hl =  V2

Here x = 8

y = 18

z = 25

Therefore,V2 = 8∗18∗25 = 3600

⇒ V = 60cm3

 

Q7) The breadth of a room is twice its height, one half of its length and the volume of the room is 512 cu. dm. Find its dimensions.

Solution:

Consider l, b and h are the length, breadth and height of the room.

So, b = 2h and b = Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics = 2h

⇒ l = 4h

⇒ l = 4h,b = 2h

Now, Volume = 512dm3

⇒ 4h∗2h∗h = 512

⇒ h3 = 64

⇒ h = 4

So, Length of the room (l) = 4h = 4*4 = 16 dm

Breadth of the room (b) = 2h = 2*4 = 8 dm

And Height of the room (h) = 4 dm.

 

Q8) A river 3m deep and 40m wide is flowing at the rate of 2km per hour. How much water will fall into the sea in a minute?

Solution

Radius of the water flow = 2km per hour = Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics m/min

= Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics m/min

Depth of the river (h) = 3m

Width of the river (b) = 40m

Volume of the water flowing in 1 min =  Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics∗40∗3 = 40003

Thus, 1 minute 4000m3  = 4000000 litres of water will fall in the sea.

 

Q9) Water in a canal 30dm wide and 12dm deep, is flowing with a velocity of 100km every hour. What much area will it irrigate in 30 minutes if 8cm of standing water is desired?

Solution:

Given that,

Water in the canal forms a cuboid of Width (b) = 30dm = 3m

Height (h) = 12dm = 1.2m

Cuboid length is equal to the distance traveled in 30 min with the speed of 100 km per hour.

Therefore, Length of the cuboid =  100∗Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics = 60km  = 50000metres

So, volume of water to be used for irrigation = 5000*3*1.2 m3

Water accumulated in the field forms a cuboid of base area equal to the area of the field and height equal to 8100metres

Therefore,Area of field∗Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics = 50000∗3∗1.2

⇒ Area of field = Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

⇒ 22,50,000metres.

 

Q10) Three metal cubes with edges 6cm, 8cm, 10cm respectively are melted together and formed into a single cube. Find the volume, surface area and diagonal of the new cube.

Solution:

Let ‘a’ be the length of each edge of the new cube.

Then a3 = (63+83+103)cm3

⇒ a3 = 1728

⇒ a = 12

Therefore,Volume of thenewcube = a3 = 1728cm3

Surface area of the new cube =  6a2 = 6∗(12)2 = 864cm2

Diagonal of the newly formed cube =  Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

 

Q11) Two cubes, each of volume 512cm3 are joined end to end. Find the surface area of the resulting cuboid.

Solution:

Given that,

Volume of the cube = 512cm3

⇒ side= 512

⇒ side= 83

⇒ side = 8cm

Dimensions of the new cuboid formed

Length (l) = 8+8 = 16cm, Breadth (b) = 8cm, Height (h) = 8cm

Surface area = 2(lb+bh+hl)

= 2 (16*8+8*8+16*8)

= 640 cm2

Therefore, Surface area is 640 cm2.

 

Q12) Half cubic meter of gold-sheet is extended by hammering so as to cover an area of 1 hectare. Find the thickness of the gold-sheet.

Solution:

Given that, Volume of gold-sheet = 0.5m3

Area of the gold-sheet = 1 hectare = 1*10000 = 10000 m2

Therefore,Thickness of gold sheet = Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

Therefore,Thickness of silve rsheet = Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematicscm

 

Q13) A metal cube of edge 12cm is melted and formed into three smaller cubes. If the edges of the two smaller cubes are 6cm and 8cm, find the edge of the third smaller cube.

Solution:

Volume of the large cube =  v1+v2+v3

Let the edge of the third cube be ‘x’ cm

123 = 63+83+a3 [Volume of cube = side3]

1728 = 216+512+x3

⇒ x3 = 1728−728 = 1000

⇒ x = 10cm

Therefore,Side of thirdside = 10cm

 

Q14) The dimensions of a cinema hall are 100m, 50m, 18m. How many persons can sit in the hall, if each person requires 150m3  of air?

Solution:

Given that

Volume of cinema hall = 100*50*18 m3

Volume of air required by each person = 150 m3

Number of persons who sit in the hall = Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics

 Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics = 600 [Since,V = l×b×h]

Therefore, number of persons who can sit in the hall = 600 members.

 

Q15) Given that 1 cubic cm of marble weighs 0.25kg, the weight of marble block 28cm in width and 5cm thick is 112kg. Find the length of the block.

Solution:

Let the length of the marble block be ‘l’cm

Volume of the marble block = l*b*h cm3

= l*28*5 cm3

Therefore, weight of the marble square = 140l*0.25 kg

As mentioned in the question, weight of the marble = 112 kgs

Therefore,

= 112 = 140l*0.25

= ⇒ l = Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics = 3.2cm.

The document Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions | RD Sharma Solutions for Class 9 Mathematics is a part of the Class 9 Course RD Sharma Solutions for Class 9 Mathematics.
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FAQs on Ex-18.2 (Part - 1), Surface Area And Volume Of A Cuboid And Cube, Class 9, Math RD Sharma Solutions - RD Sharma Solutions for Class 9 Mathematics

1. How do you find the surface area of a cuboid?
Ans. To find the surface area of a cuboid, you need to add the areas of all six faces. The formula for the surface area of a cuboid is 2(lw + lh + wh), where l is the length, w is the width, and h is the height of the cuboid.
2. What is the difference between a cuboid and a cube?
Ans. A cuboid is a three-dimensional shape with six rectangular faces, where the length, width, and height can have different measurements. On the other hand, a cube is a special type of cuboid where all three dimensions are equal. In a cube, all six faces are also equal squares.
3. How do you find the volume of a cube?
Ans. The volume of a cube can be found by multiplying the length of any one side by itself twice. The formula for the volume of a cube is V = a^3, where V is the volume and a is the length of any one side.
4. What is the surface area of a cube?
Ans. The surface area of a cube is found by multiplying the length of any one side by itself, and then multiplying by six. The formula for the surface area of a cube is SA = 6a^2, where SA is the surface area and a is the length of any one side.
5. Can a cuboid and a cube have the same volume?
Ans. Yes, a cuboid and a cube can have the same volume if their dimensions satisfy certain conditions. For example, a cube with side length 5 units will have a volume of 125 cubic units, and a cuboid with dimensions 5 units, 5 units, and 5 units will also have a volume of 125 cubic units. However, it is important to note that in most cases, a cube and a cuboid with the same volume will have different surface areas.
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