NCERT Solutions for Class 7 Maths Chapter 2 – Fractions and Decimals. Furthermore, here we’ve provided you with the latest solution for Class 7 Maths Chapter 2 – Fractions and Decimals. As a result here you’ll find solutions to all the exercises. This NCERT Class 7 solution will help you to score good marks in your exam.

Students can refer to our solution for NCERT Class 7 Maths Chapter 2 – Fractions and Decimals. The Chapter 2 Solution of NCERT will help students prepare for the exams and easily crack the exam. Below we’ve provided you with the exercise-wise latest solution.

NCERT Solutions for Class 7 Maths Chapter 2 – Fractions and Decimals Exercise Wise Solution

Exercise 2.1 – Page 31 of NCERT
Exercise 2.2 – Page 36 of NCERT
Exercise 2.3 – Page 41 of NCERT
Exercise 2.4 – Page 46 of NCERT
Exercise 2.5 – Page 47 of NCERT
Exercise 2.6 – Page 52 of NCERT
Exercise 2.7 – Page 55 of NCERT

NCERT Solutions for Class 7 Maths Chapter 2 – Fractions and Decimals Exercise 2.1 Solution

Here you’ll find NCERT Chapter 2 – Integers Exercise 2.1 Solution.
Exercise 2.1: Solutions of Questions on Page Number: 31

Q1: Solve:

(i)

(ii)

(iii)

(iv)

(v)

(vi)

(vii)

Answer :

(i)

(ii)

(iii)

(iv)

(v)

(vi)

(vii)

Q2: Arrange the following in descending order:

(i)

(ii)

Answer:

(i)

Changing them to like fractions, we obtain

Since 42>24>14,

(ii)

Changing them to like fractions, we obtain

As 49 > 30>14,

Q3: In a “magic square“, the sum of the numbers in each row, in each column and along the diagonal is the same. Is this a magic square?

(Along the first row )


Answer:

Along the first row, sum

=

Along the second row, sum =

Along the third row, sum =

Along the first column, sum =

Along the second column, sum =

Along the third column, sum =

Along the first diagonal, sum =

Since the sum of the numbers in each row, in each column, and along the diagonals is the same, it is a magic square.

Q4: A rectangular sheet of paper is cm long and cm wide. Find its perimeter.

Answer:

Length =

Breadth = 

Perimeter = 2 × (Length + Breadth)

Q5: Find the perimeters of (i) ΔABE (ii) the rectangle BCDE in this figure. Whose perimeter is greater?

Answer:

(i) Perimeter of ΔABE = AB + BE + EA

(ii)

As 531 > 430,

Perimeter of rectangle = 2 (Length + Breadth)

Perimeter of ΔABE =

Changing them to like fractions, we obtain


Perimeter (ΔABE) > Perimeter (BCDE)

Q6: Salil wants to put a picture in a frame. The     picture is cm wide.

To fit in the frame the picture cannot be more       than cm wide. How much should the picture be trimmed?

Answer:

Width of picture =

Required width =

Q7: Ritu ate part of an apple and the remaining apple was eaten by her brother Somu. How much part of the apple did Somu eat? Who had the larger share? By how much?

Answer:

Part of apple eaten by Ritu =

Part of apple eaten by Somu = 1 – Part of apple eaten by Ritu

=  

Therefore, Somu ate part of the apple.

Since 3 > 2, Ritu had the larger share. Difference between the 2 shares =

Therefore, Ritu’s share is larger than the share of Somu by .

Q8: Michael finished colouring a picture in hour. Vaibhav finished colouring the same picture in hour. Who worked longer? By what fraction was it longer?

Answer :

Time taken by Michael =

Time taken by Vaibhav =

Converting these fractions into like fractions, we obtain

Since 9 > 7,

Vaibhav worked longer.

Difference = = =

NCERT Solutions for Class 7 Maths Chapter 2 – Fractions and Decimals Exercise 2.2 Solution

Here you’ll find NCERT Chapter 2 – Integers Exercise 2.2 Solution.
Exercise 2.2: Solutions of Questions on Page Number: 36

Q1: Which of the drawings (a) to (d) show:

(i) (ii) (iii) (iv)

(a)

(b)

(c)

(d)

Answer :

(i) represents addition of 2 figures, each representing 1 shaded part out of 5 equal         parts. Hence, is represented by (d).
(ii) represents addition of 2 figures, each representing 1 shaded part out of 2 equal parts. Hence, is represented by (b)
(iii) represents addition of 3 figures, each representing 2 shaded parts out of 3 equal parts. Hence, is represented by (a)

(iv) represents addition of 3 figures, each representing 2 shaded parts out of 3 equal parts. Hence, is represented by (c)

Q2: Some pictures (a) to (c) are given below. Tell which of them show:

(i)

(ii)

(iii)

(a)

(b)

(c)

Answer :

(i) represents the addition of 3 figures, each representing 1 shaded part out of 5 equal parts and represents 3 shaded parts out of 5 equal parts. Hence, is represented by (c).

(ii) represents the addition of 2 figures, each representing 1 shaded part out of 3 equal parts and represents 2 shaded parts out of 3 equal parts. Hence, is represented by (a).

(iii) represents the addition of 3 figures, each representing 3 shaded parts out of 4 equal parts and represents 2 fully shaded figures and one figure having 1 part as shaded out of 4 equal parts. Hence, is represented by (b)

Q3: Multiply and reduce to lowest form and convert into a mixed fraction:

(i)

(ii)

(iii)

(iv)

(v)

(vi)

(vii)

(viii) 20 x 4/5

(ix)

(x)

Answer:

(i)

(ii)

(iii)

(iv)

(v)

(vi)

(vii)

(viii)

(ix)

(x)

Q4: Shade

(i) 1/2 of the circles in box (a)
(ii) of the triangles in box (b)

(iii) of the squares in box (c)

Answer:

  1. It can be observed that there are 12 circles in the given box. We have to shade of the circles in it. As, therefore, we will shade any 6 circles of it.
  2. It can be observed that there are 9 triangles in the given box. We have to shade of the triangles in it. As, therefore, we will shade any 6 triangles of it.
  1. It can be observed that there are 15 squares in the given box. We have to shade of the squares in it. As , therefore, we will shade any 9 squares of it.

Q5: Find:

 (a) of (i) 24 (ii) 46

(b) of (i) 18 (ii) 27

(c) of (i) 16 (ii) 36
(d) of (i) 20 (ii) 35

Answer :

  1. (i)  (ii)
  2. (i)  (ii)
  3. (i)  (ii)
  4. (i)  (ii)

Q6: Multiply and express as a mixed fraction:

(a)   (b)

(c)   (d)

(e)   (f)

Answer:

(a)

(b)  

(c)

(d)  

(e)  

(f)  

Q7 :

Find (a) of (i) (ii) (b) of (i) (ii)

Answer:

(a) (i)

(ii)

(b) (i)

(ii)

Q8: Vidya and Pratap went for a picnic. Their mother gave them a water bottle that contained 5 litres of water. Vidya consumed of the water. Pratap consumed the remaining water.

  1. How much water did Vidya drink?
  2. What fraction of the total quantity of water did Pratap drink?

Answer:

  1. Water consumed by Vidya = of 5 litres
  2. Water consumed by Pratap = of the total water

NCERT Solutions for Class 7 Maths Chapter 2 – Fractions and Decimals Exercise 2.3 Solution

Here you’ll find NCERT Chapter 2 – Integers Exercise 2.3 Solution.
Exercise 2.3: Solutions of Questions on Page Number: 41

Q1: Find:

(i) of (a) (b) (c)

(ii)of (a) (b) 6/5 (c) 3/10

Answer:

(i) (a)  (b)  (c)

(c)

Q2: Multiply and reduce to lowest form (if possible):

(i)

(ii)

(iii)

(iv)

(v)

(vi)

(vii)

Answer :

(i)  

(ii)

(iii)

(iv)

(v)

(vi)

(vii)

Q3: Multiply the following fractions:

(i) (ii) (iii)

(iv) (v) (vi)

(vii)

Answer:

(i)

This is an improper fraction and it can be written as a mixed fraction as .

(ii)

This is an improper fraction and it can be written as a mixed fraction as .

(iii)  

This is a whole number.

(iv)
This is an improper fraction and it can be written as a mixed fraction as .

(v)

This is an improper fraction and it can be written as a mixed fraction as .

(vi)
This is an improper fraction and it can be written as a mixed fraction as .

(vii)
This is an improper fraction and it can be written as a mixed fraction as .

Q4: Which is greater:

(i)  2/7 of 3/4  or 3/5 of 5/8

(ii) 1/2 of 6/7 or 2/3 of

Answer :

(i)

Converting these fractions into like fractions,

Therefore, of is greater.

(ii)

Therefore,   of   is greater.

Q5: Saili plants 4 saplings, in a row, in her garden. The distance between two adjacent saplings is m. Find the distance between the first and the last sapling.

Answer:

From the figure, it can be observed that gaps between 1st and last sapling = 3 Length of 1 gap = Therefore, distance between I and IV sapling =

Q6: Lipika reads a book for hours everyday. She reads the entire book in 6 days. How many hours in all were required by her to read the book?

Answer :

Number of hours Lipika reads the book per day = Number of days = 6

Total number of hours required by her to read    the book =

Q7: A car runs 16 km using 1 litre of petrol. How much distance will it cover using litres of petrol. Answer:
Number of kms a car can run per litre petrol = 16 km

Quantity of petrol = litre petrol = litres of petrol.

Number of kms a car can run

It will cover 44 km distance by litres of petrol

for = 44 km

Q8:

(i) Provide the number in the box , such that .

(ii) The simplest form of the number obtained is __________.

  1. (i) Provide the number in the box , such

(ii) The simplest form of the number obtained in

Answer :

(i) As ,

Therefore, the number in the box , such that is .

(ii) The simplest form of is .

(b) (i) As

Therefore, the number in the box , such that is .

(ii) As cannot be further simplified, therefore, its simplest fo rm is

NCERT Solutions for Class 7 Maths Chapter 2 – Fractions and Decimals Exercise 2.4 Solution

Here you’ll find NCERT Chapter 2 – Integers Exercise 2.4 Solution.
Exercise 2.4: Solutions of Questions on Page Number: 46

Q1:

Answer:

(i)

(ii)

(iii)

(iv)

(v)

(vi)

Q2: Find the reciprocal of each of the following fractions. Classify the reciprocals as proper fractions, improper fractions and whole numbers.

(i) (ii) (iii)

(iv) (v) (vi) (vii)

Answer:

A proper fraction is the fraction which has its denominator greater than its numerator while improper fraction is the fraction which has its numerator greater than its denominator. Whole numbers are a collection of all positive integers including 0.

(i)  Reciprocal =

Therefore, it is an improper fraction.

(ii)  Reciprocal =

Therefore, it is an improper fraction.

(iii)

Reciprocal =

Therefore, it is a proper fraction.

(iv)  Reciprocal =

Therefore, it is a proper fraction.

(v)  Reciprocal =

Therefore, it is a proper fraction.

(vi)

Reciprocal =

(vii) Therefore, it is a whole number.Reciprocal = Therefore, it is a whole number.

Q3 : Find:

Answer :

(i)

(ii)

(iii)

(iv)

(v)

(vi)

Q4: Find:

Answers:

(i)

(ii)

(iii)

(iv)

(v)

(vi)

(vii)

(viii)

 

NCERT Solutions for Class 7 Maths Chapter 2 – Fractions and Decimals Exercise 2.5 Solution

Here you’ll find NCERT Chapter 2 – Integers Exercise 2.5 Solution.
Exercise 2.5: Solutions of Questions on Page Number: 47

Q1: Which is greater?

(i) 0.5 or 0.05 (ii) 0.7 or 0.5 (iii) 7 or 0.7

(iv) 1.37 or 1.49 (v) 2.03 or 2.30 (vi) 0.8 or 0.88

Answer :

(i) 0.5 or 0.05

Converting these decimal numbers into equivalent fractions,

It can be observed that both fractions have the same denominator. As 50 > 5,

Therefore, 0.5 > 0.05

(ii) 0.7 or 0.5

Converting these decimal numbers into equivalent fractions,

It can be observed that both fractions have the same denominator. As 7 > 5,

Therefore, 0.7 >0.5

(iii) 7 or 0.7

Converting these decimal numbers into equivalent fractions,

It can be observed that both fractions have the same denominator. As 7 > 0.7,

Therefore, 7 > 0.7

(iv) 1.37 or 1.49
Converting these decimal numbers into equivalent fractions,

It can be observed that both fractions have the same denominator. As 137 < 149,

Therefore, 1.37 < 1.49

(v) 2.03 or 2.30

Converting these decimal numbers into equivalent fractions,

It can be observed that both fractions have the same denominator. As 203 < 230,

Therefore, 2.03 < 2.30

(vi) 0.8 or 0.88

Converting these decimal numbers into equivalent fractions,

It can be observed that both fractions have the same denominator. As 80 < 88, Therefore,

0.8 < 0.88

Q2: Express as rupees using decimals:

(i) 7 paise (ii) 7 rupees 7 paise (iii) 77 rupees 77 paise

(iv) 50 paise (v) 235 paise

Answer:

There are 100 paise in 1 rupee. Therefore, if we want to convert paise into rupees, then we have to divide paise by 100.

  1. 7 paise =
  2. 7 Rs 7 paise =

= Rs 7.07

  1. 77 Rs 77 paise   = Rs 77.77
  1. 50 paise
  2. 235 paise

Q3 :

  1. Express 5 cm in metre and kilometre
  2. Express 35 mm in cm, m and km

Answer :

  1. 5 cm
  2. 35 mm

Q4: Express in kg:

(i) 200 g (ii) 3470 g (iii) 4 kg 8 g

Answer:

  1. 200 g
  2. 3470 g
  3. 4 kg 8 g = 4.008 kg

Q5: Write the following decimal numbers in the expanded form: (i) 20.03 (ii) 2.03 (iii) 200.03

(iv) 2.034

Answer:

(i) 20.03

(ii) 2.03

(iii) 200.03

(iv) 2.034

Q6: Write the place value of 2 in the following decimal numbers: (i) 2.56 (ii) 21.37 (iii) 10.25

(iv) 9.42 (v) 63.352

Answer:

(i) 2.56 Ones

(ii) 21.37 Tens

(iii) 10.25 Tenths

(iv) 9.42 Hundredths

(v) 63.352 Thousandths

Q7: Dinesh went from place A to place B and from there to place C. A is 7.5 km from B and B is 12.7 km from C. Ayub went from place A to place D and from there to place C. D is 9.3 km from A and C is 11.8 km from D. Who travelled more and by how much?

Answer :

Distance travelled by Dinesh = AB + BC = (7.5 + 12.7) km

Therefore, Dinesh travelled 20.2 km.

Distance travelled by Ayub = AD + DC = (9.3 + 11.8) km

Therefore, Ayub travelled 21.1 km. Hence, Ayub travelled more distance. Difference = (21.1 – 20.2) km

Therefore, Ayub travelled 0.9 km more than Dinesh.

Q8: Shyama bought 5 kg 300 g apples and 3 kg 250 g mangoes. Sarala bought 4 kg 800 g oranges and 4 kg 150 g bananas. Who bought more fruits?

Answer:

Total fruits bought by Shyama = 5 kg 300 g + 3 kg 250 g

= 8 kg 550 g

=

= 8.550 kg

Total fruits bought by Sarala = 4 kg 800 g + 4 kg 150 g

= 8 kg 950 g

=

= 8.950 kg

Sarala bought more fruits.

Q9: How much less is 28 km than 42.6 km?

Answer:

Therefore, 28 km is 14.6 km less than 42.6 km.

NCERT Solutions for Class 7 Maths Chapter 2 – Fractions and Decimals Exercise 2.6 Solution

Here you’ll find NCERT Chapter 2 – Integers Exercise 2.6 Solution.|
Exercise 2.6: Solutions of Questions on Page Number: 52

Q1: Find:

(i) 0.2 x 6 (ii) 8 x 4.6 (iii) 2.71 x 5

(iv) 20.1 x 4 (v) 0.05 x 7 (vi) 211.02 x 4

(vii) 2 x 0.86

Answer:

(i)

(ii)

(iii)

(iv)

(v)

(vi)

(vii)

Q2: Find the area of rectangle whose length is 5.7 cm and breadth is 3 cm.

Answer:

Length = 5.7 cm Breadth = 3 cm

Area = Length x Breadth

= 5.7 x 3 = 17.1 cm2

Q3: Find:

(i) 1.3 x 10 (ii) 36.8 x 10 (iii) 153.7 x 10

(iv) 168.07 x 10 (v) 31.1 x 100 (vi) 156.1 x 100

(vii) 3.62 x 100 (viii) 43.07 x 100 (ix) 0.5 x 10

(x) 0.08 x 10 (xi) 0.9 x 100 (xii) 0.03 x 1000

Answer:

We know that when a decimal number is multiplied by 10, 100, 1000, the decimal point in the product is shifted to the right by as many places as there are zeroes. Therefore, these products can be calculated as

(i) 1.3 x 10 = 13

(ii) 36.8 x 10 = 368

(iii) 153.7 x 10 = 1537

(vi) 168.07 x 10 = 1680.7

(v) 31.1 x 100 = 3110

(vi) 156.1 x 100 = 15610

(vii) 3.62 x 100 = 362

(viii) 43.07 x 100 = 4307

(ix) 0.5 x 10 = 5 (x) 0.08 x 10 = 0.8

(xi) 0.9 x 100 = 90 (xiii) 0.03 x 1000 = 30

Q4: A two-wheeler covers a distance of 55.3 km in one litre of petrol. How much distance will it cover in 10 litres of petrol?

Answer:

Distance covered in 1 litre of petrol = 55.3 km

Distance covered in 10litre of petrol = 10 x 55.3 = 553 km Therefore, it will cover 553 km distance in 10 litre petrol.

Q5: Find:

(i) 2.5 x 0.3 (ii) 0.1 x 51.7 (iii) 0.2 x 316.8

(iv) 1.3 x 3.1 (v) 0.5 x 0.05 (vi) 11.2 x 0.15

(vii) 1.07 x 0.02 (viii) 10.05 x 1.05 (ix) 101.01 x 0.01

(x) 100.01 x 1.1

Answer:

(i)

(ii)

(iii)

(iv)

(v)

(vi)

(vii)

(viii)

(ix)

(x)

NCERT Solutions for Class 7 Maths Chapter 2 – Fractions and Decimals Exercise 2.7 Solution

Here you’ll find NCERT Chapter 2 – Integers Exercise 2.7 Solution.
Exercise 2.7: Solutions of Questions on Page Number: 55

Q1 : Find:

(i) 0.4 ÷ 2 (ii) 0.35 ÷ 5 (iii) 2.48 ÷ 4

(iv) 65.4 ÷ 6 (v) 651.2 ÷ 4 (vi) 14.49 ÷ 7

(vii) 3.96 ÷ 4 (viii) 0.80 ÷ 5

Answer:

(i)

(ii)

(iii)

(iv)

(v)

(vi)

(vii)

(viii)

Q2: Find:

(i) 4.8 ÷ 10 (ii) 52.5 ÷ 10 (iii) 0.7 ÷ 10

(iv) 33.1÷ 10 (v) 272.23 ÷ 10 (vi) 0.56 ÷ 10

(vii) 3.97 ÷ 10

Answer:

We know that when a decimal number is divided by a multiple of 10 only (i.e., 10, 100, 1000, etc.), the decimal point will be shifted to the left by as many places as there are zeroes. Since here we are dividing by 10, the decimal will shift to the left by 1 place.

(i) 4.8 ÷· 10 = 0 .48

(ii) 52.5 ÷ 10 = 5.25

(iii) 0.7 ÷ 10 = 0.07 (iv) 33.1 ÷ 10 = 3.31

(v) 272.23 ÷ 10 = 27.223

(vi) 0.56 ÷ 10 = 0.056 (vii) 3.97 ÷ 10 = 0.397

Q3: Find:

(i) 2.7 ÷ 100 (ii) 0.3 ÷ 100 (iii) 0.78 ÷ 100

(iv) 432.6 ÷ 100 (v) 23.6 ÷ 100 (vi) 98.53 ÷ 100

Answer:

We know that when a decimal number is divided by a multiple of 10 only (i.e., 10, 100, 1000, etc.), the decimal point will be shifted to the left by as many places as there are zeroes. Since here we are dividing by 100, the decimal will shift to the left by 2 places.

(i) 2.7 ÷ 100 = 0.027

(ii) 0.3 ÷ 100 = 0.003

(iii) 0.78 ÷ 100 = 0.0078

(iv) 432.6 ÷ 100 = 4.326

(v) 23.6 ÷ 100 = 0.236 (vi) 98.53 ÷ 100 = 0.9853

Q4: Find:

(i) 7.9 ÷ 1000 (ii) 26.3÷ 1000 (iii) 38.53 ÷ 1000

(iv) 128.9÷ 1000 (v) 0.5 ÷ 1000

Answer:

We know that when a decimal number is divided by a multiple of 10 only (i.e., 10, 100, 1000, etc.), the decimal point will be shifted to the left by as many places as there are zeroes. Since here we are dividing by 1000, the decimal will shift to the left by 3 places.

(i) 7.9 ÷ 1000 = 0.0079

(ii) 26.3 ÷ 1000 = 0.0263

(iii) 38.53 ÷ 1000 = 0.03853

(iv) 128.9 ÷ 1000 = 0.1289

(v) 0.5 ÷ 1000 = 0.0005

Q5: Find:

(i) 7 ÷ 3.5 (ii) 36 ÷ 0.2 (iii) 3.25 ÷ 0.5

(iv) 30.94 ÷ 0.7 (v) 0.5 ÷ 0.25 (vi) 7.75 ÷ 0.25

(vii) 76.5 ÷ 0.15 (viii) 37.8 ÷ 1.4 (ix) 2.73 ÷ 1.3

Answer:

(i)

(ii)

(iii)

(iv)

(v)

(vi)

(vii)

(viii)

(ix)

Q6: A vehicle covers a distance of 43.2 km in 2.4 litres of petrol. How much distance will it cover in one litre of petrol?

Answer:

Distance covered in 2.4 litres of petrol = 43.2 km

Distance covered in 1 litre of petrol =
Therefore, the vehicle will cover 18 km in 1 litre petrol.

NCERT Class 7 Maths All Chapters Solution 

Chapter 1: Integers

Chapter 2: Fractions and Decimals

Chapter 3: Data Handling

Chapter 4: Simple Equations

Chapter 5: Lines and Angles

Chapter 6: The Triangle and its Properties.

Chapter 7: Congruence of Triangles

Chapter 8: Comparing Quantities 

Chapter 9: Rational Numbers

Chapter 10: Practical Geometry

Chapter 11: Perimeter and Area

Chapter 12: Algebraic Expression

Chapter 13: Exponents and Powers

Chapter 14: Symmetry

Chapter 15: Visualising Solid Shapes