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NCERT Solutions for Class 7 Maths Chapter 2 Fractions and Decimals Exercise 2.1Ex 2.1 Class 7 Maths Question 1.Solve:
Solution:
Ex 2.1 Class 7 Maths Question 2.Arrange the following in descending order:
Solution:
Ex 2.1 Class 7 Maths Question 3.In a “magic square” the sum of number in each row, in each column and along the diagonals is the same. Is this a magic square?
Solution:
(i) , , (ii) , ,29
23
821
15
37
710
Since, the sum of all the fraction row wise, column wise and the diagonal wise is same i.e. .Hence, it is a magic square.
Ex 2.1 Class 7 Maths Question 4.A rectangular sheet of paper is cm long and cm wide. Find its perimeter.Solution:
Ex 2.1 Class 7 Maths Question 5.Find the perimeter of (i) ∆ABE (ii) the rectangle BCDE in this figure. Whose perimeter is greater?Solution:(i) Perimeter of ∆ABE
1511
12 12 10 2
3
Thus perimeter of ∆ABE is greater than the perimeter of the rectangle BCDE.
Ex 2.1 Class 7 Maths Question 6.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?Solution:The width of the picture
7 35 7 3
10
Hence, the required width to be trimmed cm.
Ex 2.1 Class 7 Maths Question 7.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? Whohad the larger share? By how much?Solution:Let the whole part of the apple be 1.
Ex 2.1 Class 7 Maths Question 8.Michael finished colouring a picture in hour. Vaibhav finished colouring the same picture in hour. Who worked longer? By whatfraction was it longer?Solution:Time taken by Michael = hourTime taken by Vaibhav = hour
= 310
= 35
712
34
71234
NCERT Solutions for Class 7 Maths Chapter 2 Fractions and Decimals Exercise 2.2Ex 2.2 Class 7 Maths Question 1.Which of the drawings (a) to (d) show.
Solution:(i) represents drawing (d)
(ii) represents drawing (b)(iii) represents drawing (a)
(ic) represents drawing (c)
Ex 2.2 Class 7 Maths Question 2.Some pictures (a) to (c) are given below. Tell which of them show:
(i)2 × 15
(iii)3 × 23
(ii)2 × 12
(iv)3 × 14
2 × 15
2 × 12
3 × 23
3 × 14
Solution:(i) represents figure (c)
(ii) represents figure (a)
(iii) represents figure (b)
Ex 2.2 Class 7 Maths Question 3.Multiply and reduce to lowest form and convert into a mixed fraction:
Solution:
Ex 2.2 Class 7 Maths Question 4.Shade:(i) of the circles in box (a)(ii) of the circles in box (b)
(iii) of the circles in box (c)
3 × =15
35
2 × =13
23
3 × = 234
14
122335
Ex 2.2 Class 7 Maths Question 7.Find:
Solution:
Ex 2.2 Class 7 Maths Question 8.Vidya and Pratap went for a picnic. Their mother gave them a water bottle that contained 5 litres of water. Vidya consumed of thewater. Pratap consumed the remaining water.(i) How much water did Vidya drink?(ii) What fraction of the total quantity of water did Pratap drink?Solution:(i) Water consumed by Vidya = of 5 litres
Water consumed by Patap= 5 litres – 2 litres = 3 litres(ii) Fraction of water consumed by Pratap= litres
25
25
35
NCERT Solutions for Class 7 Maths Chapter 2 Fractions and Decimals Exercise 2.3Ex 2.3 Class 7 Maths Question 1.Find:
Solution:
Ex 2.3 Class 7 Maths Question 2.Multiply and reduce to lowest form (if possible):
Ex 2.3 Class 7 Maths Question 4.Which is greater:
Solution:
Ex 2.3 Class 7 Maths Question 5.Saili plants 4 saplings, in a row, in her garden. The distance between two adjacent saplings is m. Find the distance between the firstand the last sapling.Solution:Number of saplings = 4Distance between two adjacent saplings = m∴ Distance between the first and the last sapling
34
34
Ex 2.3 Class 7 Maths Question 6.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 thebook?Solution:In 1 day Lipika needs hours
In 6 days Lipika will need hours
Hence the required hours = .
Ex 2.3 Class 7 Maths Question 7.A car runs 16 km using 1 litre of petrol. How much distance will it cover using litres of petrol?Solution:In 1 litre of petrol, the car covers 16 km distance In litres of petrol, the car will cover × 16 km distance
Hence, the required distance = 44 km.
Ex 2.3 Class 7 Maths Question 8.
Solution:
1 34
1 34
6 × 1 34
10 12
2 34
2 34
2 34
NCERT Solutions for Class 7 Maths Chapter 2 Fractions and Decimals Exercise 2.4
Ex 2.4 Class 7 Maths Question 1.Find:
Solution:
Ex 2.4 Class 7 Maths Question 2.Find the reciprocal of each of the following fractions. Classify the reciprocals as proper fractions, improper fractions and whole numbers.
(i) Reciprocal of , which is improper fraction.
(ii) Reciprocal of , which is improper fraction.
(iii) Reciprocal of , which is proper fraction.
=37
73
=58
85
=97
79
(iv) Reciprocal of , which is proper fraction.
(vi) Reciprocal of , which is proper fraction.
(vi) Reciprocal of , which is whole number.
(vii) Reciprocal of , which is whole number.
Ex 2.4 Class 7 Maths Question 3.Find:
Solution:
Ex 2.4 Class 7 Maths Question 4.Find:
Solution:
=65
56
=127
712
= 818
= 11111
NCERT Solutions for Class 7 Maths Chapter 2 Fractions and Decimals Exercise 2.5Ex 2.5 Class 7 Maths Question 1.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 0.88Solution:(i) 0.5 or 0.05Comparing the tenths place, we get 5 > 0∴ 0.5 > 0.05
(ii) 0.7 or 0.5Comparing the tenths place, we get 7 > 5∴ 0.7 > 0.5
(iii) 7 or 0.7Comparing the one’s place, we get 7 > 0∴ 7 > 0.7
(iv) 1.37 or 1.49Comparing the tenths place, we get 3 < 4∴ 1.37 < 1.49 or 1.49 > 1.37
(v) 2.03 or 2.30Comparing the tenths place, we get 0 < 3∴ 2.03 < 2.30 or 2.30 > 2.03
(vi) 0.8 or 0.88 ⇒ 0.80 or 0.88Since tenths place is same.Comparing the hundredth place, we get 0 < 8∴ 0.80 < 0.88 or 0.88 > 0.80
Ex 2.5 Class 7 Maths Question 2.Express as rupees using decimals:(i) 7 paise(ii) 7 rupees 7 paise(iii) 77 rupees 77 paise(iv) 50 paise(v) 235 paiseSolution:(i) Since 1 rupee = 100 paise and 1 paise = rupees
7 paise = rupees = 0.07 rupees
(ii) 7 rupees 7 paise = 7 rupees + rupees= 7.07 rupees
(iii) 77 rupees 77 paise = 77 rupees + rupees= 77.77 rupees
(iv) 50 paise = rupees = 0.50 rupees
(v) 235 paise = rupees = 2.35 rupees
Ex 2.5 Class 7 Maths Question 3.(i) Express 5 cm in metre and kilometre(ii) Express 35 mm in cm, m and km.Solution:(i) 1 metre = 100 cm1 kilometre = 1000 metre = 100 × 1000 cm= 100000 cm∴ 5 cm = metre = 0.05 metre
5 cm = km = 0.00005 kmHence, 5 cm = 0.05 m and 0.00005 km
(ii) 1 cm = 10 mm and 1 km = 100000 cm∴ 35 mm = cm = 3.5 cm,
35 mm = m = 0.035 m
35 mm = km = 0.000035 kmHence, 35 mm = 3.5 cm, 0.035 m and 0.000035 km.
1100
7100
7100
77100
50100
235100
51005
100000
3510
351000
351000000
Ex 2.5 Class 7 Maths Question 4.Express in kg:(i) 200 g(ii) 3470 g(iii) 4 kg 8 gSolution:(i) 200g = kg [∵ 1 kg = 1000g]= 0.2 kg(ii) 3470 g = = 3.47 kg [∵ 1 kg = 1000 g]
(iii) 4 kg 8 g = 4 kg + kg [∵ 1 kg = 1000 g]= 4 kg + 0.008 kg = 4.008 kg
Ex 2.5 Class 7 Maths Question 5.Write the following decimal numbers in the expanded form:(i) 20.03(ii) 2.03(iii) 200.03(iv) 2.034Solution:(i) 20.03 = 2 × 10 + 0 × 1 + 0 × + 3 ×
(ii) 2.03 = 2 × 1 + 0 × + 3 ×
(iii) 200.03 = 2 × 100 + 0 × 10 + 0 × 1 + 0 × +3 ×
(iv) 2.034 = 2 × 1 + 0 × + 3 × + 4 ×
Ex 2.5 Class 7 Maths Question 6.Write the place value of 2 in the following decimal numbers:(i) 2.56(ii) 21.37(iii) 10.25(iv) 9.42(v) 63.352Solution:(i) Place value of 2 in 2.56 = 2 × 1 = 2 i.e. ones(ii) Place value of 2 in 21.37 = 2 × 10 = 20 i.e. tens(iii) Place value of 2 in 10.25 = = 0.2 i.e. tenths
(iv) Place value of 2 in 9.42 = = 0.02 i.e. hundredths
(v) Place value of 2 in 63.352 = = 0.002 i.e. thousandths.
Ex 2.5 Class 7 Maths Question 7.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 Ato 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?Solution:Distance travelled by Dinesh from A to C= AB + BC= 7.5 km +- 12.7 km= 20.2 km
Distance travelled by Ayub from A to C= AD + DC= 9.3 km + 11.8 km = 21.1 kmSince 21.1 km > 20.2 km.Hence, Ayub travelled more distance.
Ex 2.5 Class 7 Maths Question 8.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 morefruits?Solution:Fruits bought by Shyama
2001000
347010000
810000
110
1100
110
1100
110
1100
110
110
11000
2102
1002
1000
= 5 kg 300 g apples + 3 kg 250 g mangoes= 5.300 kg apples + 3.250 kg mangoes= 8.550 kg of fruitsFruits bought by Sarala= 4 kg 800 g oranges +- 4 kg 150 g bananas= 4.800 kg oranges + 4.150 kg bananas= 8.950 kg of fruitsSince 8.950 kg > 8.550 kgHence, Sarala bought more fruits.
Ex 2.5 Class 7 Maths Question 9.How much less is 28 km than 42.6 km?Solution:Since 28 km < 42.6 km
Hence, 28 km is less than 42.6 km by 14.6 km.
NCERT Solutions for Class 7 Maths Chapter 2 Fractions and Decimals Exercise 2.6Ex 2.6 Class 7 Maths Question 1.Find:(i) 0.2 × 6(ii) 8 × 4.6(iii) 2.71 × 5(iv) 20.1 × 4(v) 0.05 × 7(vi) 211.02 × 4(vii) 2 × 0.86Solution:(i) 0.2 × 6∵ 2 × 6 = 12 and we have 1 digit right to the decimal point in 0.2.Thus 0.2 × 6 = 1.2
(ii) 8 × 4.6∵ 8 × 46 = 368 and there is one digit right to the decimal point in 4.6.Thus 8 × 4.6 = 36.8
(iii) 2.71 × 5∵ 271 × 5 = 1355 and there are two digits right to the decimal point in 2.71.Thus 2.71 × 5 = 13.55
(iv) 20.1 × 4∵ 201 × 4 = 804 and there is one digit right to the decimal point in 20.1.∵ 20.1 × 4 = 80.4
(v) 0.05 × 7∵ 5 × 7 = 35 and there are 2 digits right to the decimal point in 0.05.Thus 0.05 × 7 = 0.35
(vi) 211.02 × 4∵ 21102 × 4 = 84408 and there are 2 digits right to the decimal point in 211.02.Thus 211.02 × 4 = 844.08
(vii) 2 × 0.86∵ 2 × 86 = 172 and there are 2 digits right to the decimal point in 0.86.Thus 2 × 0.86 = 1.72
Ex 2.6 Class 7 Maths Question 2.Find the area of rectangle whose length is 5.7 cm and breadth is 3 cm.Solution:Length = 5.7 cmBreadth = 3 cmArea of rectangle = length × breadth= 5.7 × 3 = 17.1 cm2
Hence, the required area =17.1 cm2
Ex 2.6 Class 7 Maths Question 3.Find:(i) 1.3 × 10(ii) 36.8 × 10(iii) 153.7 × 10(iv) 168.07 × 10(v) 31.1 × 100(vi) 156.1 × 100(vii) 3.62 × 100
(viii) 43.07 × 100(ix) 0.5 × 10(x) 0.08 × 10(xi) 0.9 × 100(xii) 0.03 × 1000Solution:
Ex 2.6 Class 7 Maths Question 4.A two-wheeler covers a distance of 55.3 km in one litre of petrol. How much distance will it cover is 10 litres of petrol?Solution:Distance covered in 1 litre = 55.3 kmDistance covered in 10 litres = 55.3 × 10 km
Hence, the required distance = 553 km
Ex 2.6 Class 7 Maths Question 5.Find:(i) 2.5 ×0.3(ii) 0.1 × 51.7(iii) 0.2 × 316.8(iv) 1.3 × 3.1(v) 0.5 × 0.05(vi) 11.2 × 0.15(vii) 1.07 × 0.02(viii) 10.05 × 1.05(ix) 100.01 × 1.1(x) 100.01 × 1.1Solution:(i) 0 2.5 × 0.3∵ 25 × 3 = 75 and there are 2 digits (1 + 1) right to the decimal points in 2.5 and 0.3.Thus 2.5 × 0.3 = 0.75
(ii) 0.1 × 51.7∵ 1 × 517 = 517 and there are two digits (1 + 1) right to the decimal places in 0.1 and 51.7.
(iii) 0.2 × 316.8∵ 2 × 3168 = 6336 and there are 2 digits (1 + 1) right to the decimal points in 0.2 and 316.8.Thus 0.2 × 316.8 = 63.36.
(iv) 1.3 × 3.1∵ 13 × 31 = 403 and there are 2 digits (1 + 1) right to the decimal points in 1.3 and 3.1.Thus 1.3 × 3.1 – 4.03
(v) 0.5 × 0.05∵ 5 × 5 = 25 and there are 3 digits (1 + 2) right to the decimal points in 0.5 and 0.05.Thus 0.5 × 0.05 = 0.025
(vi) 11.2 × 0.15∵ 112 × 15 = 1680 and there are 3 digits (1 + 2) right to the decimal points in 11.2 and 0.15.Thus 11.2 × 0.15 = 1.680
(vii) 1.07 × 0.02∵ 107 × 2 = 214 and there are 4-digits (2 + 2) right to the decimal places is 1.07 × 0.02.Thus 1.07 × 0.02 = 0.0214
(viii) 10.05 × 1.05∵ 1005 × 105 = 105525 and there are 4 digits (2 + 2) right to the decimal places in 10.05 × 1.05.Thus 10.05 × 1.05 = 10.5525
(ix) 101.01 × 0.01∵ 10101 × 1 = 10101 and there are 4 digits (2 + 2) right to the decimal places in 101.01 and 0.01.Thus 101.01 × 0.01 = 1.0101
(x) 100.01 × 1.1∵ 10001 × 11 = 110011 and there are 3 digits (2 + 1) right to the decimal points in 100.01 and 1.1.Thus 100.01 × 1.1 = 110.011.
NCERT Solutions for Class 7 Maths Chapter 2 Fractions and Decimals Exercise 2.7Ex 2.7 Class 7 Maths Question 1.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 ÷ 5Solution:
Ex 2.7 Class 7 Maths Question 2.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 ÷10Solution:(i) 4.8 ÷ 10 = 0.48 (Shifting the decimal point to the left by 1 place)(ii) 52.5 ÷ 10 = 5.25 (Shifting the decimal point to the left by 1 place)(iii) 0.7 ÷ 10 = 0.07 (Shifting the decimal point to the left by 1 place)(iv) 33.1 ÷ 10 = 3.31 (Shifting the decimal point to the left by 1 place)(v) 272.23 ÷ 10 = 27.223 (Shifting the decimal point to the left by 1 place)(vi) 0.56 4- 10 = 0.056(Shifting the decimal point to the left by 1 place)(vii) 3.97 ÷ 10 = 0.397(Shifting the decimal point to the left by 1 place)
Ex 2.7 Class 7 Maths Question 4.Find:(i) 7.9 ÷ 1000(ii) 26.3 ÷ 1000(iii) 38.53 ÷ 1000(iv) 128.9 ÷ 1000(v) 0.5 ÷ 1000
Solution:(i) 7.9 ÷ 1000 = 0.0079 (Shifting the decimal point to the left by 3 places)(ii) 26.3 ÷ 1000 = 0.0263 (Shifting the decimal point to the left by 3 places)(iii) 38.53 ÷ 1000 = 0.03853 (Shifting the decimal point to the left by 3 places)(iv) 128.9 ÷ 1000 = 0.1289 (Shifting the decimal point to the left by 3 places)(v) 0.5 ÷ 1000 = 0.0005 (Shifting the decimal point to the left by 3 places)
Ex 2.7 Class 7 Maths Question 5.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 ÷ 1.3Solution:
Ex 2.7 Class 7 Maths Question 6.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?Solution:2.4 litres of petrol is required to cover 43.2 km distance∴ 1 litre of petrol will be required to cover 43.2
Hence, the required distance = 18 km