10th STD- MATHS- Chapter 2- Numbers and Sequences Ex 2.2 (All Sums in English) - Tamil Crowd (Health Care)

10th STD- MATHS- Chapter 2- Numbers and Sequences Ex 2.2 (All Sums in English)

 10th STD- MATHS- Chapter 2- Numbers and Sequences Ex 2.2 

(All Sums in English)

Question 1.

For what values of natural number n, 4n can end with the digit 6?

Solution:

4n = (2 × 2)n = 2n × 2n

2 is a factor of 4n.

So, 4n is always even and end with 4 and 6.

When n is an even number say 2, 4, 6, 8 then 4n can end with the digit 6.

Example:

42 = 16

43 = 64

44 = 256

45 = 1,024

46 = 4,096

47 = 16,384

48 = 65, 536

49 = 262,144

Question 2.

If m, n are natural numbers, for what values of m, does 2n × 5m ends in 5?

Solution:

2n is always even for any values of n.

[Example. 22 = 4, 23 = 8, 24 = 16 etc]

5m is always odd and it ends with 5.

[Example. 52 = 25, 53 = 125, 54 = 625 etc]

But 2n × 5m is always even and end in 0.

[Example. 23 × 53 = 8 × 125 = 1000

22 × 52 = 4 × 25 = 100]

∴ 2n × 5m cannot end with the digit 5 for any values of m.

Question 3.

Find the H.C.F. of 252525 and 363636.

Solution:

To find the H.C.F. of 252525 and 363636

Using Euclid’s Division algorithm

363636 = 252525 × 1 + 111111

The remainder 111111 ≠ 0.

∴ Again by division algorithm

252525 = 111111 × 2 + 30303

The remainder 30303 ≠ 0.

∴ Again by division algorithm.

111111 = 30303 × 3 + 20202

The remainder 20202 ≠ 0.

∴ Again by division algorithm

30303 = 20202 × 1 + 10101

The remainder 10101 ≠ 0.

∴ Again using division algorithm

20202 = 10101 × 2 + 0

The remainder is 0.

∴ 10101 is the H.C.F. of 363636 and 252525.

Question 4.

If 13824 = 2a × 3b then find a and b.

Solution:

If 13824 = 2a × 3b

Using the prime factorization tree

13824 = 2 × 2 × 2 × 2 × 2 × 2 × 2 × 2 × 2 × 3 × 3 × 3

= 29 × 33 = 2a × 3b

∴ a = 9, b = 3.

Question 5.

If p1x1 × p2x2 × p3x3 × p4x4 = 113400 where p1, p2, p3, p4 are primes in ascending order and x1, x2, x3, x4 are integers, find the value of P1, P2, P3, P4 and x1, x2, x3, x4.

Solution:

If p1x1 × p2x2 × p3x3 × p4x4 = 113400

p1, p2, p3, P4 are primes in ascending order, x1, x2, x3, x4 are integers.

using Prime factorization tree.

113400 = 2 × 2 × 2 × 3 × 3 × 3 × 3 × 5 × 5 × 7

= 23 × 34 × 52 × 7

= p1x1 × p2x2 × p3x3 × p4x4

∴ p1= 2, p2 = 3, p3 = 5, p4 = 7, x1 = 3, x2 = 4, x3 = 2, x4 = 1.

Question 6.

Find the L.C.M. and H.C.F. of 408 and 170 by applying the fundamental theorem of arithmetic.

Solution:

408 and 170.

408 = 23 × 31 × 171

170 = 21 × 51 × 171

∴ H.C.F. = 21 × 171 = 34.

To find L.C.M, we list all prime factors of 408 and 170, and their greatest exponents as follows.

∴ L.C.M. = 23 × 31 × 51 × 171

= 2040.

 

Question 7.

Find the greatest number consisting of 6 digits which is exactly divisible by 24, 15, 36?

Solution:

To find L.C.M of 24, 15, 36

24 = 23 × 3

15 = 3 × 5

36 = 22 × 32

∴ L.C.M = 23 × 32 × 51

= 8 × 9 × 5

= 360

If a number has to be exactly divisible by 24, 15, and 36, then it has to be divisible by 360. Greatest 6 digit number is 999999.

Common multiplies of 24, 15, 36 with 6 digits are 103680, 116640, 115520, …933120, 999720 with six digits.

∴ The greatest number consisting 6 digits which is exactly divisible by 24, 15, 36 is 999720.

Question 8.

What is the smallest number that when divided by three numbers such as 35, 56 and 91 leaves remainder 7 in each case?

Solution:

Find the L.C.M of 35, 56, and 91

35 – 5 × 7 56

56 = 2 × 2 × 2 × 7

91 = 7 × 13

L.C.M = 23 × 5 × 7 × 13

= 3640

Since it leaves remainder 7

The required number = 3640 + 7

= 3647

The smallest number is = 3647

Question 9.

Find the least number that is divisible by the first ten natural numbers.

Solution:

The least number that is divisible by the first ten natural numbers is 2520.

Hint:

1,2, 3,4, 5, 6, 7, 8,9,10

The least multiple of 2 & 4 is 8

The least multiple of 3 is 9

The least multiple of 7 is 7

The least multiple of 5 is 5

∴ 5 × 7 × 9 × 8 = 2520.

L.C.M is 8 × 9 × 7 × 5

= 40 × 63

= 2520

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