RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D

RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D

These Solutions are part of RS Aggarwal Solutions Class 7. Here we have given RS Aggarwal Solutions Class 7 Chapter 2 Fractions Ex 2D.

Other Exercises

OBJECTIVE QUESTIONS
Mark (√) against the correct answer in each of the following:
Question 1.
Solution:
(c)
Denominator in (a) and (b) is 10
These are decimal fractions
But denominator of (c) is 3
\(\frac { 10 }{ 3 }\) is a vulgar fraction

Question 2.
Solution:
(c)
\(\frac { 7 }{ 10 }\) and \(\frac { 7 }{ 9 }\) are proper fractions as each of these have numerator less than its denominator
\(\frac { 9 }{ 7 }\) is improper fraction

Question 3.
Solution:
(a)
\(\frac { 105 }{ 112 }\) is reducible fraction because HCF 112 of 105 and 112 is 7

Question 4.
Solution:
(c)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 1

Question 5.
Solution:
(c)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 2
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 3

Question 6.
Solution:
(d)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 4

Question 7.
Solution:
(c)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 5

Question 8.
Solution:
(d)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 6

Question 9.
Solution:
(d)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 7

Question 10.
Solution:
(b)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 8

Question 11.
Solution:
(d)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 9

Question 12.
Solution:
(c)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 10

Question 13.
Solution:
(d)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 11

Question 14.
Solution:
(d)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 12

Question 15.
Solution:
(b)
The correct statement will be
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 13

Question 16.
Solution:
(c)
A car runs in 1 litre of petrol = 16 km
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 14

Question 17.
Solution:
(a)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2D 15

Hope given RS Aggarwal Solutions Class 7 Chapter 2 Fractions Ex 2D are helpful to complete your math homework.

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RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper

RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper

These Solutions are part of RS Aggarwal Solutions Class 7. Here we have given RS Aggarwal Solutions Class 7 Chapter 3 Decimals CCE Test Paper.

Other Exercises

Question 1.
Solution:
Cost of 1 pen = ₹ 32.50
Cost of 24 such pens = ₹ (32.50 x 24) = ₹ 80
Hence, the cost of 24 pens is ₹ 780.

Question 2.
Solution:
Distance covered by the bus in 1 hour = 64.5 km
Distance covered in 18h = (64.5 x 18) km = 1161 km
Hence, the bus can cover a distance of 1161 km in 18h.

Question 3.
Solution:
First, we will find the product 68 x 65 x 4
Now, 68 x 65 x 4 = 4420 x 4 = 17680
Sum of decimal places in the given decimals = (2 + 1 + 2) = 5
So, the product have five decimal places.
0.68 x 6.5 x 0.04 = 0.17680 = 0.1768

Question 4.
Solution:
Total weight of all the bags = 2231 kg
Weight of each bag = 48.5 kg
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 1

Question 5.
Solution:
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 2
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 3

Question 6.
Solution:
Product of the given decimals = 1.824
One decimal = 0.64
The other decimal = 1.824 ÷ 0.64
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 4
Hence, the other decimal is 2.85.

Question 7.
Solution:
Thickness of the pile of plywoods = 2.43 m = 2.43 x 100 cm = 243 cm
Thickness of one piece of plywood = 0.45 cm
Required no. of pieces of plywood
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 5
Hence, the required number of pieces of plywood is 540.

Question 8.
Solution:
Let the number of sides of the polygon be n.
Length of each side of the polygon = 3.8 cm
Perimeter of the polygon = (3.8 x n) cm
But it is given that its perimeter is 22.8 cm.
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 6
Hence, the given polygon has six sides.

Mark (✓) against the correct answer in each of the following :
Question 9.
Solution:
(b) 2.04
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 7

Question 10.
Solution:
(b) 1\(\frac { 1 }{ 125 }\)
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 8

Question 11.
Solution:
(c) 2.005 kg
2 kg 5 g = (2 x 1000) g + 5 g = (2005)g
= \(\frac { 2005 }{ 1000 }\) kg = 2.005 kg

Question 12.
Solution:
(b) 0.08
We have :
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 9

Question 13.
Solution:
(c) 0.011
First, we will find the product 11 x 1 x 1
i.e. 11 x 1 x 1 = 11 x 1 = 11
Sum of decimal places in the given decimals = (1 + 1 + 2) = 4
1.1 x 0.1 x 0.01 = 0.0011 [4 places of decimal]

Question 14.
Solution:
(b) 2.03
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 10
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 11

Question 15.
Solution:
(c) is correct
Let the number added be x We have :
2.06 + x = 3.1
⇒ x = 3.1 – 2.06
Converting the given decimals into like decimals, we get:
2.06 and 3.10
Thus, required number = (3.10 – 2.06) = 1.04
Hence, 1.04 should be added to 2.06 to get 3.1.

Question 16.
Solution:
(b) 0.06 .
We have :
0.1 – x = 0.04
⇒ x = 0.1 – 0.04
Converting the given decimals into like decimals, we get:
0.10 and 0.04
Thus, required number = (0.10 – 0.04) = 0.06
Hence, 0.06 should be subtracted from 0.1 to get 0.04.

Question 17.
Solution:
(i) 1.001 ÷ 14 = 0.0715
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 12
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 13
47 x 53 = 2491
Sum of decimal places in the given decimals = (2 + 1) = 3
0.47 x 5.3 = 2.491
(iv) 0.023 x 0.03 = 0.69
Explanation first, we will multiply 23 by 3
23 x 3 = 69
Sum of decimal places in the given decimals = (3 + 2) = 5
0.023 x 0.03 =0.00069
(v) (0.7)2 = 0.69
Explanation : (0.7)2 = 0.7 x 0.7
First, we will find the product 0.7 x 0.7
Now, 7 x 7 = 49
Sum of decimal places in the given decimals = (1 + 1) = 2
So, the product must have two decimal places.
(0.7)2 = 0.7 x 0.7 = 0.49
(vi) (0.05)3 = 0.000125
Explanation : First, we will find the
product 0.05 x 0.05 x 0.05
Now, 5 x 5 x 5 = 125
Sum of decimal places in the given decimals = (2 + 2 + 2) = 6
So, the product must have six decimal places.
(0.05)2 = 0.05 x 0.05 x 0.05 = 0.000125

Question 18.
Solution:
(i) False
We have :
0.5 x 0.05 Now, 5 x 5 = 25
Sum of decimal places in the given decimals = (1 + 2) = 3
0.5 x 0.5 = 0.025
(ii) True
We have :
0.25 x 0.8
Now, 25 x 8 = 200
Sum of decimal places in the given decimals = (2 + 1) = 3
0.25 x 0.8 = 0.200 = 0.2
(iii) True
We have :
0.35 ÷ 0.7
RS Aggarwal Class 7 Solutions Chapter 3 Decimals CCE Test Paper 14
(iv) False We have :
0.4 x 0.4 x 0.4
Now, 4 x 4 x 4 = 64
Sum of decimal places in the given decimals = (1 + 1 + 1) = 3
0.4 x 0.4 x 0.4 = 0.064
(v) True
6 cm = \(\frac { 6 }{ 100 }\) m = 0.06 m

Hope given RS Aggarwal Solutions Class 7 Chapter 3 Decimals CCE Test Paper are helpful to complete your math homework.

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RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C

RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C

These Solutions are part of RS Aggarwal Solutions Class 7. Here we have given RS Aggarwal Solutions Class 7 Chapter 3 Decimals Ex 3C.

Other Exercises

Question 1.
Solution:
We know that by multiplying by 10, the decimal point is shifted one place to its right side.
(i) 73.92 x 10 = 739.2
(ii) 7.54 x 10 = 75.4
(iii) 84.003 x 10 = 840.03
(iv) 0.83 x 10 = 8.3
(v) 0.7 x 10 = 7.0
(vi) 0.032 x 10 = 0.32

Question 2.
Solution:
We know that by multiplying a decimal by 100, two decimal points are shifted to it right side
(i) 2.397 x 100 = 239.7
(ii) 6.83 x 100 = 683.0
(iii) 2.9 x 100 = 290
(iv) 0.08 x 100 = 8
(v) 0.6 x 100 = 60
(vi) 0.003 x 100 = 0.3

Question 3.
Solution:
We know that by multiplying a decimal by 1000, three places of decimal are shifted to its right.
(i) 6.7314 x 1000 = 6731.4
(ii) 0.182 x 1000 = 182
(iii) 0.076 x 1000 = 76
(iv) 6.25 x 1000 = 6250
(v) 4.8 x 1000=4800
(vi) 0.06 x 1000 = 60

Question 4.
Solution:
(i) 5.4 x 16 = 86.4 (One place of decimal)
(ii) 3.65 x 19 = 69.35 (Two place of decimal)
(iii) 0.854 x 12 = 10.2468 (Three place of decimal)
(iv) 36.73 x 48 = 1763.04 (Two places of decimal)
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 1
(v) 4.125 x 86=354.750 (Three places of decimal)
= 354.75
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 2
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 3

Question 5.
Solution:
(i) 7.6 x 2.4= 18.24
{Sum of decimal places = 1 + 1 = 2}
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 4
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 5
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 6
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 7
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 8

Question 6.
Solution:
(i) 13 x 1.3 x 0.13 = 2.197
{Sum of decimal places = 1 + 2 = 3}
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 9
(ii) 2.4 x 1.5 x 2.5 = 9.000 = 9
{Sum of decimal places = 1 + 1 + 1 = 3}
(iii) 0.8 x 3.5 x 0.05 = 0.1400 = 0.14
{Sum of decimal places = 1 + 1 + 2 = 4}
(iv) 0.2 x 0.02 x 0.002 = 0.000008
{Sum of decimal places = 1 + 2 + 3 = 6}
(v) 11.1 x 1.1 x 0.11 = 1.3431
{Sum of decimal places = 1 + 1 + 2 = 4}
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 10
(vi) 2.1 x 0.21 x 0.021 = 0.00926
21 x 21 = 441
441 x 21 = 9261
{Sum of decimal places = 1 + 2 + 3 = 6}

Question 7.
Solution:
(i) (1.2)²= 1.2 x 1.2 = 1.44
{Sum of decimal places = 1 + 1 = 2}
(ii) (0.7)² = 0.7 x 0.7 = 0.49
{Sum of decimal places = 1 + 1 = 2}
(iii) (0.04)² = 0.04 x 0.04 = 0.0016
{Sum of decimal places = 2 + 2 = 4}
(iv) (0.11)² = 0.11 x 0.11 =0.0121
{Sum of decimal places = 2 + 2 = 4}

Question 8.
Solution:
(i) (0.3)3 = 0.3 x 0.3 x 0.3 = 0.027
{Sum of decimal places = 1 + 1 + 1 = 3}
(ii) (0.05)3= 0.05 x 0.05 x 0.05 = 0.000125
{Sum of decimal places = 2 + 2 + 2 = 6}
(iii) (1.5)3 = 1.5 x 1.5 x 1.5 = 3.375
{Sum of decimal places = 1 + 1 + 1 = 3}
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 11

Question 9.
Solution:
Distance covered in one hour = 62.5 km
Distance covered in 18 hours = 62.5 x 18 km = 1125.0 km

Question 10.
Solution:
Weight of one tin of oil = 16.8 kg
Weight of 45 tins = 16.8 x 45 kg = 756.0 kg = 756 kg
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 12

Question 11.
Solution:
Weight of wheat in one bag = 97.8 kg
weight of wheat in 500 bags = 97.8 x 500 kg = 48900.0 kg = 48900 kg
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 13

Question 12.
Solution:
Weight of one bag = 48.450 kg
Weight of 16 bags = 48.450 x 16 = 775.200 kg
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 14

Question 13.
Solution:
Quantity of sauce in one bottle = 0.845 kg
quantity of sauce in 72 bottles = 0.845 x 72 kg = 60.840 kg
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 15

Question 14.
Solution:
Quantity of jam in one bottle = 925 .
Quantity of jam in 25 bottles = 925 x 25 g = 23135 g = 23.125 kg
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 16

Question 15.
Solution:
Oil in one drum = 16.850 litres
Oil in 48 drums = 16.850 x 48 = 808.800 = 808.800 litres
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 17

Question 16.
Solution:
Cost of 1 kg rice = Rs 56.80
Cost of 16.25 kg of rice = Rs 56.80 x 16.25 = Rs 923.0000 = Rs 923
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 18

Question 17.
Solution:
Cost of one metre of cloth = Rs 108.5 0
Costof 18.5 metres of cloth = Rs 108.50 x 18.5 = Rs 2007.250 = Rs 2007.25
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 19

Question 18.
Solution:
Distance covered in one litre = 8.6 km
Distance covered in 36.5 litres = 8.6 x 36.5 km = 313.90 km = 313.9 km
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 20

Question 19.
Solution:
Charges for 1 km = Rs 9.80
Charges for 106.5 km = Rs 9.80 x 106.5 = Rs 1043.700 = Rs 1043.70
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3C 21

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RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C

RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C

These Solutions are part of RS Aggarwal Solutions Class 7. Here we have given RS Aggarwal Solutions Class 7 Chapter 2 Fractions Ex 2C.

Other Exercises

Question 1.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 1

Question 2.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 2
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 3

Question 3.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 4
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 5

Question 4.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 6

Question 5.
Solution:
Total weight of 18 boxes
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 7

Question 6.
Solution:
Total amount of oranges=Rs 378
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 8
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 9

Question 7.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 10

Question 8.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 11
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 12

Question 9.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 13

Question 10.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 14
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 15

Question 11.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 16

Question 12.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 17
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 18

Question 13.
Solution:
Total quantity of milk = 24 litres
and quantity of milk got by one student = \(\frac { 2 }{ 5 }\) litres
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 19

Question 14.
Solution:
Quantity of water in a bucket
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 20
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 21

Question 15.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 22

Question 16.
Solution:
Product of two numbers = 42
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 23

Question 17.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2C 24

Hope given RS Aggarwal Solutions Class 7 Chapter 2 Fractions Ex 2C are helpful to complete your math homework.

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RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B

RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B

These Solutions are part of RS Aggarwal Solutions Class 7. Here we have given RS Aggarwal Solutions Class 7 Chapter 2 Fractions Ex 2B.

Other Exercises

Question 1.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 1
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 2
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 3

Question 2.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 4
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 5
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 6

Question 3.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 7
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 8
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 9
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 10

Question 4.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 11

Question 5.
Solution:
Cost of 1 metre pf cloth
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 12

Question 6.
Solution:
Distance covered in 1 hour
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 13

Question 7.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 14

Question 8.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 15

Question 9.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 16

Question 10.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 17

Question 11.
Solution:
Weight of Amit = 35 kg.
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 18

Question 12.
Solution:
Total number of students in a class = 42
Number of boys = \(\frac { 5 }{ 7 }\) of 42 = 5 x 6 = 30
Number of girls = 42 – 30 = 12

Question 13.
Solution:
Sapna total income for one month = Rs 24000
Amount spent = \(\frac { 7 }{ 8 }\) of her income
= \(\frac { 7 }{ 8 }\) x 24000
= Rs (7 x 3000) = Rs 21000
Amount deposited in the bank per month = Rs 24000 – 21000 = Rs 3000

Question 14.
Solution:
Length of each side of a square
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 19

Question 15.
Solution:
Length of rectangular field (l)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions Ex 2B 20

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RS Aggarwal Class 7 Solutions Chapter 1 Integers CCE Test Paper

RS Aggarwal Class 7 Solutions Chapter 1 Integers CCE Test Paper

These Solutions are part of RS Aggarwal Solutions Class 7. Here we have given RS Aggarwal Solutions Class 7 Chapter 1 Integers CCE Test Paper.

Other Exercises

Question 1.
Solution:
Let the other integer be a. Then, we have;
a + (-12) = 43
⇒ a = 43 – (-12) = 55
Hence, the other integer is 55.

Question 2.
Solution:
p – (-8) = 3
⇒ p = 3 + (-8)
⇒ p = -5
Hence, the value of p is -5.

Question 3.
Solution:
Product of (-16) and (-9) = (-16) x (-9) = 144
Now, (-132) ÷ 6 gives the quotient -22.
144 + (-22) = 122

Question 4.
Solution:
Suppose that a divides -240 to obtain 16. Then, we have:
(-240) ÷ a =16
⇒ a = (-240) ÷ 16 = -15
Hence, -15 should divide -240 to obtain 16.

Question 5.
Solution:
Let a be divided by (-7) to obtain 12. Then, we have:
a ÷ (-7) = 12
a = \(\frac { -7 }{ 12 }\)
Hence, \(\frac { -7 }{ 12 }\) should be divided by -7 to obtain 12.

Question 6.
Solution:
(i) -450
(ii) 360
(iii) -1080
(iv) -600
(v) (-5)5 = -3125
(vi) (-1)25 = -1

Question 7.
Solution:
(i) (-16) x 12 + (-16) x 8 = (-16) x (12 + 8) [Associative property]
= (-16) x 20
= -320
(ii) 25 x (-33) + 25 x (-17)
= 25 x [(-33) + (-17)] [Associative property]
= 25 x (-50)
= -1250
(iii) (-19) x (-25) + (-19) x (-15)
= (-19) x [(-25) + (-15)] [Associative property]
= (-19) x (-40)
= 760
(iv) (-47) x 68 – (-47) x 38
= (-47) x (68 – 38) [Asssociative property]
= (-47) x 30
= -1410
(v) (-105) ÷ 21
(-105) ÷ 21 = -5
(vi) (-168) ÷ (-14) = 12
(vii) 0 ÷ (-34)
= 0 (zero).
Dividing 0 by any integer gives 0.
(viii) 37 ÷ 0
Not defined.
Dividing any integer by zero is not defined.

Mark (√) against the correct answer in each of the following:
Question 8.
Solution:
(d) -8
Let the other integer be a. Then, we have:
2 + a = -6
⇒ a = -6 – 2 = -8
⇒ The other integer is -8.

Question 9.
Solution:
(b) 8
Suppose that a is subtracted from (-7). Then, we have
-7 – a = -15
a = -7 + 15 = 8
8 must be subtracted from -7 to obtain-15.

Question 10.
Solution:
(b) 108
(108) + (-18) = -6

Question 11.
Solution:
(a) 370
= (-37) x (-7) + (-37) x (-3)
= (-37) x [(-7) + (-3)] [Associative property]
= (-37) x (-10)
= 370

Question 12.
Solution:
(c) -250
=(-25) x 8 + (-25) x 2
= (-25) x (8 + 2) [Associative property]
= (-25) x 10 = -250

Question 13.
Solution:
(b) -3
(-9) – (-6)
= (-9) + 6
= -3

Question 14.
Solution:
(b) -6
-8 – (-6) = 2
Hence, -8 is -6 less than -2.

Question 15.
Solution:
(i) (-35) x -1 = 35
(ii) (-53) x (1) = -53
(iii) (-14) x (-1) = (-16) x (-14) [Commutative property]
(iv) (-21) x (0) = 0 [Property of zero]
(v) (-119) ÷ 17 = (-7)
(vi) (-247) ÷ (-19) = 13
(vii) (0) ÷ 31 = 0
(viii) (152) ÷ (-19) = -8

Question 16.
Solution:
(i) True (T)
(ii) (-8) ÷ 0 = 0
False (F). Dividing any integer by zero is not defined.
(iii) False (F).
(-1) ÷ (-1) = 1
(iv) True (T)
(v) True(T)
(vi) False (T).
68 ÷ (-17) = -4

Hope given RS Aggarwal Solutions Class 7 Chapter 1 Integers CCE Test Paper are helpful to complete your math homework.

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RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3E

RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3E

These Solutions are part of RS Aggarwal Solutions Class 7. Here we have given RS Aggarwal Solutions Class 7 Chapter 3 Decimals Ex 3E.

Other Exercises

OBJECTIVE QUESTIONS
Mark (✓) against the correct answer in each of the following:
Question 1.
Solution:
(b)
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3E 1

Question 2.
Solution:
(c)
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3E 2

Question 3.
Solution:
(b)
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3E 3
= \(\frac { 208 }{ 100 }\) = 2.08

Question 4.
Solution:
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3E 4

Question 5.
Solution:
(b) 70g = \(\frac { 70 }{ 1000 }\) = 0.07 kg

Question 6.
Solution:
(c) 5 kg 6 g = 5\(\frac { 6 }{ 1000 }\) kg = 5.006 kg

Question 7.
Solution:
(c) 2 km 5 m = 2\(\frac { 5 }{ 1000 }\) km = 2.005 km

Question 8.
Solution:
(c)
1.007 – 0.7 = 1.007 – 0.700 = 0.307

Question 9.
Solution:
(b)
0.1 – 0.03 = 0.10 – 0.03 = 0.07

Question 10.
Solution:
(c)
3.5 – 3.07 = 3.50 – 3.07 = 0.43

Question 11.
Solution:
(c)
0.23 x 0.3 = 0.069

Question 12.
Solution:
(b)
0.02 x 30 = .60 = .6

Question 13.
Solution:
(b)
0.25 x 0.8 = 0.200 = 0.2

Question 14.
Solution:
(c)
0.4 x 0.4 x 0.4 = 0.064

Question 15.
Solution:
(b)
1.1 x .1 x .01 = .0011

Question 16.
Solution:
(a)
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3E 5

Question 17.
Solution:
(b)
1.02 ÷ 6 = \(\frac { 1.02 }{ 6 }\) = 0.17

Question 18.
Solution:
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3E 6

Question 19.
Solution:
(b)
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3E 7

Question 20.
Solution:
(a)
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3E 8

Question 21.
Solution:
(c)
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3E 9

Hope given RS Aggarwal Solutions Class 7 Chapter 3 Decimals Ex 3E are helpful to complete your math homework.

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RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D

RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D

These Solutions are part of RS Aggarwal Solutions Class 7. Here we have given RS Aggarwal Solutions Class 7 Chapter 4 Rational Numbers Ex 4D.

Other Exercises

Question 1.
Solution:
(i) Additive inverse of 5 = -5
(ii) Additive inverse of -9 = – (-9) = 9
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 1
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 2

Question 2.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 3
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 4
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 5
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 6
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 7
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 8

Question 3.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 9
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 10
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 11
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 12
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 13
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 14

Question 4.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 15

Question 5.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 16

Question 6.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 17

Question 7.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 18

Question 8.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 19
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 20

Question 9.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 21

Question 10.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 22

Question 11.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 23

Question 12.
Solution:
The required number = \(\frac { -1 }{ 1 }\) – \(\frac { 2 }{ 9 }\)
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 24

Question 13.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 25

Question 14.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 26

Question 15.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 27

Question 16.
Solution:
RS Aggarwal Class 7 Solutions Chapter 4 Rational Numbers Ex 4D 28

Hope given RS Aggarwal Solutions Class 7 Chapter 4 Rational Numbers Ex 4D are helpful to complete your math homework.

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RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper

RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper

These Solutions are part of RS Aggarwal Solutions Class 7. Here we have given RS Aggarwal Solutions Class 7 Chapter 2 Fractions CCE Test Paper.

Other Exercises

Question 1.
Solution:
(i) A number of the form \(\frac { a }{ b }\), where a and b are rational numbers, is called a natural number.
Here, a is the numerator and b is the denominator.
(a) \(\frac { 2 }{ 3 }\) is a fraction with 2 as the numerator and 3 as the denominator.
(b) \(\frac { 12 }{ 5 }\) is a fraction with 12 as the numerator and 5 as the denominator.
(ii) A fraction whose denominator is a whole number other than 10, 100, 1000, etc., is called a vulgar faction.
Examples : \(\frac { 2 }{ 5 }\) and \(\frac { 4 }{ 15 }\).
(iii) A fraction whose numerator is greater than or equal to its denominator is called an improper fraction.
Example : \(\frac { 11 }{ 3 }\) and \(\frac { 41 }{ 35 }\)

Question 2.
Solution:
Required number to be added
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 1
Hence, the required number is 8\(\frac { 2 }{ 5 }\)

Question 3.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 2

Question 4.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 3

Question 5.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 4
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 5

Question 6.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 6

Question 7.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 7
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 8

Question 8.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 9
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 10

Question 9.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 11

Mark (√) against the correct answer in each of the following:

Question 10.

Solution:
(d) \(\frac { 5 }{ 8 }\)
\(\frac { 5 }{ 8 }\) is a vulgar fraction, because its denominator is other than 10,100, 1000, etc.

Question 11.
Solution:
(c) \(\frac { 46 }{ 63 }\)
A fraction \(\frac { a }{ b }\) is said to be irreducible or in its lowest terms if the HCF of a and b is 1
46 = 2 x 23 x 1
63 = 3 x 3 x 21 x 1
Clearly, the HCF of 46 and 63 is 1.
Hence, \(\frac { 46 }{ 63 }\) is an irreducible fraction.

Question 12.
Solution:
(d) None of these
Reciprocal of 1\(\frac { 3 }{ 5 }\) = Reciprocal of \(\frac { 8 }{ 5 }\) = \(\frac { 5 }{ 8 }\)

Question 13.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 12

Question 14.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 13
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 14

Question 15.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 15

Question 16.
Solution:
(b) 33 km
Distance covered by the car on
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 16

Question 17.
Solution:
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 17
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 18

Question 18.
Solution:
(i) False.
By cross multiplication, we have:
9 x 24 = 216 and 13 x 16 = 208
However, 216 > 208
\(\frac { 9 }{ 16 }\) > \(\frac { 13 }{ 24 }\)
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 19
RS Aggarwal Class 7 Solutions Chapter 2 Fractions CCE Test Paper 20

Hope given RS Aggarwal Solutions Class 7 Chapter 2 Fractions CCE Test Paper are helpful to complete your math homework.

If you have any doubts, please comment below. Learn Insta try to provide online math tutoring for you.

RS Aggarwal Class 7 Solutions Chapter 1 Integers Ex 1D

RS Aggarwal Class 7 Solutions Chapter 1 Integers Ex 1D

These Solutions are part of RS Aggarwal Solutions Class 7. Here we have given RS Aggarwal Solutions Class 7 Chapter 1 Integers Ex 1D.

Other Exercises

OBJECTIVE QUESTIONS
Mark (√) against the correct answer in each of the following.
Question 1.
Solution:
(c)
6 – (-8) = 6 + 8 = 14

Question 2.
Solution:
(b)
-9 – (-6) = -9 + 6 = -3

Question 3.
Solution:
(d)
-3 + 5 = 2

Question 4.
Solution:
(a)
-1 – (+5) = -1 – 5 = -6

Question 5.
Solution:
(a)
-2 – (4) = -2 – 4 = -6

Question 6.
Solution:
(b)
-4 – (+4) = -4 – 4 = -8

Question 7.
Solution:
(b)
-3 – (-5) = -3 + 5 = 2

Question 8.
Solution:
(c)
-3 – (-9) = -3 + 9 = 6

Question 9.
Solution:
(c)
-5 – (6) = -5 – 6 = -11

Question 10.
Solution:
(c)
-8 – (-13) = -8 + 13 = 5

Question 11.
Solution:
(a)
(-36) ÷ (-9) = 4

Question 12.
Solution:
(b)
0 ÷ (-5) = 0
(Zero divided by any integer other than zero, is zero)

Question 13.
Solution:
(c)
Division by zero is not defined

Question 14.
Solution:
(b)

Question 15.
Solution:
(b)
-3 + 9 = 6

Question 16.
Solution:
(a)
-4 – (-10) = -4 + 10 = 6

Question 17.
Solution:
(a)
Sum = 14
One integer = -8
Second = 14 – (-8) = 14 + 8 = 22

Question 18.
Solution:
(c)

Question 19.
Solution:
(b)
(-15) x 8 + (-15) x 2
= (-15) {8 + 2}
= -15 x 10 = -150

Question 20.
Solution:
(b)
(-12) x 6 – (-12) x 4 = (-12) (6 – 4) = -12 x 2 = -24

Question 21.
Solution:
(b)
(-27) x (-16)+ (-27) x (-14)
= (-27) {-16 – 14}
= (-27) x (-30)
= 810

Question 22.
Solution:
(a)
30 x (-23) + 30 x 14
= 30 x (-23 + 14)
= 30 x (-9)
= -270

Question 23.
Solution:
(c)
Sum of two integers = 93
One integer = -59
Second = 93 – (-59) = 93 + 59 = 152

Question 24.
Solution:
(b)
(?) ÷ (-18) = -5
Let x ÷ (-18) = -5
⇒ \(\frac { x }{ -18 }\) = -5
⇒ x = (-5) x (-18) = 90

Hope given RS Aggarwal Solutions Class 7 Chapter 1 Integers Ex 1D are helpful to complete your math homework.

If you have any doubts, please comment below. Learn Insta try to provide online math tutoring for you.

RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B

RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B

These Solutions are part of RS Aggarwal Solutions Class 7. Here we have given RS Aggarwal Solutions Class 7 Chapter 3 Decimals Ex 3B.

Other Exercises

Add:
Question 1.
Solution:
Converting them into like decimals 16.00, 8.70, 0.94, 6.80 and 7.77
Now, adding them,
16.0 + 8.70 + 0.94 + 6.80 + 7.77 = 40.21
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 1

Question 2.
Solution:
Converting them into like decimals 18.600, 206.370, 8.008, 26.400, 6.900
Adding we get
18.600 + 206.370 + 8.008 + 26.400 + 6.900 = 266.278
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 2

Question 3.
Solution:
Converting them into like decimals, 63.50, 9.70, 0.80, 26.66, 12.17
Adding we get:
63.50 + 9.70 + 0.80 + 26.66 + 12.17 = 112.83
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 3

Question 4.
Solution:
Converting them into like decimals 17.400, 86.390, 9.435, 8.800, 0.060
Adding we get:
17.400 + 86.390 + 9.435 + 8.800 + 0.060 = 122.085
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 4

Question 5.
Solution:
Converting them into like decimals 26.900, 19.740, 231.769, 0.048
Now adding we get:
26.900 + 19.740 + 231.769 + 0.048 = 278.457
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 5

Question 6.
Solution:
Converting them into like decimals 23.800, 8.940, 0.078 and 214.600
Now adding we get:
23.800 + 8.940 + 0.078 + 214.600 = 247.418
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 6

Question 7.
Solution:
Converting them into like decimals.
6.606, 66.600, 666.000,0.066, 0.660
Now adding we get:
6.606 + 66.600 + 666.000 + 0.066 + 0,660 = 739.932
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 7

Question 8.
Solution:
9.090, 0.909, 99.900, 9.990, 0.099
Now adding we get:
9.090 + 0.909 + 99.900 + 9.990 + 0.099 = 119.988
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 8

Subtract:
Question 9.
Solution:
14.79 from 72.43
72.43 – 14.79 = 57.64
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 9

Question 10.
Solution:
Converting them into like decimals, We get
36.74 and 52.60
Now 52.60 – 36.74 = 15.86
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 10

Question 11.
Solution:
Converting them into like decimals, We get
13.876 and 22.000
22.000 – 13.876 = 8.124
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 11

Question 12.
Solution:
Converting them into like decimals, We get
15.079 and 24.160
24.160 – 15.079 = 9.081
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 12

Question 13.
Solution:
Converting them into like decimals We get
0.680 and 1.007
1.007 – 0.680 = 0.327
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 13

Question 14.
Solution:
Converting them into like decimals,
We get 0.4678 and 5.0500
5.0500 – 0.4678 = 4.5822
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 14

Question 15.
Solution:
Converting them into like decimals,
We get 2.5307 and 8.0000
8.0 – 2.5307 = 5.4693
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 15

Question 16.
Solution:
There are like decimals
9.1 – 6.732 = 2.269
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 16

Question 17.
Solution:
Converting them into like decimals,
We get 5.746 and 9.100
9.100 – 5.746 = 3.354
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 17

Question 18.
Solution:
Converting into like decimals, we get,
63.59 and 92.00
Required number = 92.00 – 63.58 = 28.42
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 18

Question 19.
Solution:
Converting into like decimals, we get:
8.100 and 0.813
Required number = 8.100 – 0.813 = 7.287
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 19

Question 20.
Solution:
Converting them into like decimals, we get: 32.67 and 60.10
Required number = 60.10 – 32.67 = 27.43
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 20

Question 21.
Solution:
Converting into like decimals, we get 74.3 and 26.87
Required number = 74.30 – 26.87 = 47.43
RS Aggarwal Class 7 Solutions Chapter 3 Decimals Ex 3B 21

Question 22.
Solution:
Cost of notebook = Rs. 23.75
Cost ofpencil = Rs. 2.85
Costofpen =Rs. 15.90
Total cost = Rs. 42.50
Amount gave to the shop keeper = 50 rupees
Balance amount got = Rs 50.00 – Rs 42.50 = 7.50

Hope given RS Aggarwal Solutions Class 7 Chapter 3 Decimals Ex 3B are helpful to complete your math homework.

If you have any doubts, please comment below. Learn Insta try to provide online math tutoring for you.