GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2

Gujarat Board GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 Textbook Questions and Answers.

Gujarat Board Textbook Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2

Question 1.
Express each number as a product of its prime

  1. 140
  2. 156
  3. 3825
  4. 5005
  5. 7429

Solution:
1.
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 1
Prime factorisation of
140 = 2 × 2 × 5 × 7

2.
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 2
Prime factorisation of
156 = 2 × 2 × 3 × 13

3.
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 3
Prime factorisation of
3825 = 3 × 3 × 5 × 5 × 17

GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2

4.
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 4
Prime factorisation of
5005 = 5 × 7 × 11 × 13

5.
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 5
Prime factorisation of
7429 = 17 × 19 × 23

Question 2.
Find the LCM and HCF of the following pairs of integers and verify that LCM × HCF = Product of the two numbers.

  1. 26 and 91
  2. 510 and 92
  3. 336 and 54

Solution:
1. Prime factorisation of
26 = 2 × 13
Prime factorisation of
91 = 7 × 13
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 6
HCF of 26 and 91 = 13
LCM = 2 × 7 × 13 = 182
LCM × HCF =182 × 13
= 2366
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 7
Product of two number
= 26 × 91 = 2366
∴ HCF × LCM = Product of two number.

GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2

2. Prime factorisation of
510 = 2 × 3 × 5 × 17
Prime factorisation of
92 = 2 × 2 × 23
HCF of 510 and 92 = 2
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 8
LCM of 510 and 92
= 2 × 2 × 3 × 5 × 17 × 23
= 23460
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 9
LCM × HCF = 23460 × 2
= 46920
Product of two numbers
= 510 × 92
= 46920 = LCM × HCF

GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2

3. Prime factorisation of
336 = 2× 2× 2 × 2 × 3 × 7
Prime factorisation of
54 = 2 × 3 × 3 × 3
HCF of 336 and 54 = 2 × 3 = 6
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 10
LCM 336 and 54
= 2× 2 × 2 × 2 × 3 × 3 × 3 × 7
= 3024
LCM × HCF = 3024 × 6 = 18144
Product of two number 3 9
= 336 × 54 = 18144
= LCM × HCF
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 11

GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2

Question 3.
Find the LCM and HCF of the following integers by applying the prime factorisation method.

  1. 12, 15 and 21
  2. 17, 23 and 29
  3. 8, 9 and 25

Solution:
1. Prime factorisation of 12 = 2 × 2 × 3
Prime factorisation of 15 = 3 × 5
Prime factorisation of 21 = 3 × 7
HCF of 12, 15 and 21 = 3
LCM of 12, 15 and 21
= 2 × 2 × 3 × 5 × 7 = 420

2. Prime factorisation of 17 = 17 × 1
Prime factorisation of 23 = 23 × 1
Prime factorisation of 29 = 29 × 1
HCF of 12, 15, 29 = 1
LCM of 17, 23, 29 = 17 × 23 × 29
= 11339

GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2

3. Prime factorisation of 8 = 2 × 2 × 2
Prime factorisation of 9 = 3 × 3
Prime factorisation of 23 = 23 × 1
HCF of 8, 9 and 23 = 1
LCM of 8, 9, 23 = 2 × 2 × 2 × 3 × 3 × 23
= 1656

Question 4.
Given that HCF (306, 657) = 9, find LCM (306, 657).
Solution:
Given that HCF (306, 657) = 9
LCM × HCF = Product of two numbers
LCM × 9 = 306 × 657
LCM = \(\frac{306 \times 657}{9}\)
LCM = 34 × 657
LCM = 22338
∴ LCM of (306, 657) = 22338.

Question 5.
Check whether 6n can end with the digit 0 for any natural number n.(CBSE)
Solution:
6n will end with the digit zero if 6n is divisible by 2 and 5.
But 6n = (2 × 3)n = 2n × 3n
i.e. in the factorisation of 6n, no factor is of 5. Therefore by the fundamental theorem of arithmetic every composite number can be expressed a product of primes and this factorisation is unique apart from the order in which the prime factors occur.

Therefore our assumption is wrong that 6n ends in zero, thus there does not exist any natural number n for which 6n ends with zero.

GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2

Question 6.
Explain why 7 × 11 × 13 + 13 and 7 × 6 × 5 × 4 × 3 × 2 × 1 + 5 are composite numbers.
Solution:
Given that 7 × 11 × 13 + 13
= (7 × 11 × 1 + 1) × 13
= (77 + 1) × 13
= 78 × 13
Composite number because it is product of more than two factors.
7 × 6 × 5 × 4 × 3 × 2 × 1 + 5
= (7 × 6 × 4 × 3 × 2 × 2 + 1) × 5
= (1008 + 1) × 5
= 1009 × 5
Product of more than two factors, which is a composite number.

Question 7.
There is a circular path around a sports field. Sonia takes 18 minutes to drive one round of the field. While Ravi takes 12 minutes for the same. Suppose they both start at the same point and at the same time and go in the same direction. After how many minutes will they meet again at the starting point?
Solution:
Time taken in one round by Sonia = 18 minute Time taken by Ravi in one round = 12 minute Now we find LCM of 18 and 12, which gives exact number of minutes after which they meet at the starting point again.
Prime factorisation of
18 = 2 × 3 × 3
Prime factorisation of
12 = 2 × 2 × 3
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 12

GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2
LCM of 12 and 18
= 2 × 2 × 3 × 3
= 36 minutes
GSEB Solutions Class 10 Maths Chapter 1 Real Numbers Ex 1.2 img 13
Therefore they will meet again at the starting point after 36 minutes.

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