Samacheer Kalvi 10th Maths - Numbers and Sequences Ex 2.3

10th Maths Book Back Question and Answers – Chapter 2 Exercise 2.3:

Samacheer Kalvi 10th Standard Maths Book Back Questions with Answers PDF uploaded and the same given below. Class-tenth candidates and those preparing for TNPSC exams can check the Maths Book Back Answers PDF below. Samacheer Kalvi Class 10th Std Maths Book Back Answers Chapter 2 Exercise 2.3 Solutions are available below. Check the complete Samacheer Kalvi 10th Maths – Numbers and Sequences Ex 2.3 Book Back Answers below:

We also provide class 10th other units Maths Book Back One and Two Mark Solutions Guide on our site. Students looking for the 10th standard Maths Ex 2.3 – Numbers and Sequences Book Back Questions with Answer PDF

For the complete Samacheer Kalvi 10th Maths Book Back Solutions Guide PDF, check the link – Samacheer Kalvi 10th Maths Book Back Answers

Samacheer Kalvi 10th Maths Book Back Answers – Ex 2.3 Numbers and Sequences

Samacheer Kalvi 10th Maths Book Subject One Mark, Two Mark, Five Mark Guide questions and answers are below. Check Maths Book Back Questions with Answers. Take the printout and use it for exam purposes.

For Samacheer Kalvi 10th Maths Book PDF, check the link – 10th Maths Book PDF

Chapter 2 Numbers and Sequences Ex 2.3

1. Find the least positive value of x such that
(i) 71 ≡ x (mod 8)
(ii) 78 + x ≡ 3 (mod 5)
(iii) 89 ≡ (x + 3) (mod 4)
(iv) 96 = x7 (mod 5)
(v) 5x ≡ 4 (mod 6)
Solution:
To find the least value of x such that
(i) 71 ≡ x (mod 8)
71 ≡ 7 (mod 8)
∴ x = 7.[ ∵ 71 – 7 = 64 which is divisible by 8]

(ii) 78 + x ≡ 3 (mod 5)
⇒ 78 + x – 3 = 5n for some integer n.
75 + x = 5 n
75 + x is a multiple of 5.
75 + 5 = 80. 80 is a multiple of 5.
Therefore, the least value of x must be 5.

(iii) 89 ≡ (x + 3) (mod 4)
89 – (x + 3) = 4n for some integer n.
86 – x = 4 n
86 – x is a multiple of 4.
∴ The least value of x must be 2 then
86 – 2 = 84.
84 is a multiple of 4.
∴ x value must be 2.

(iv) 96 ≡ x7 (mod 5)
96 – x7 = 5n for some integer n.
672−x7 = 5n
672 – x = 35n.
672 – x is a multiple of 35.
∴ The least value of x must be 7 i.e. 665 is a multiple of 35.

(v) 5x ≡ 4 (mod 6)
5x – 4 = 6M for some integer n.
5x = 6n + 4
x = 6n+45
When we put 1, 6, 11, … as n values in x = 6n+45 which is divisible by 5.
When n = 1, x = 105 = 2
When n = 6, x = 36+45 = 405 = 8 and so on.
∴ The solutions are 2, 8, 14…..
∴ Least value is 2.

2. If x is congruent to 13 modulo 17 then 7x – 3 is congruent to which number modulo 17?
Answer:
Given x ≡ 13 (mod 17) ……(1)
7x – 3 ≡ a (mod 17) ……..(2)
From (1) we get
x- 13 = 17 n (n may be any integer)
x – 13 is a multiple of 17
∴ The least value of x = 30
From (2) we get
7(30) – 3 ≡ a(mod 17)
210 – 3 ≡ a(mod 17)
207 ≡ a (mod 17)
207 ≡ 3(mod 17)
∴ The value of a = 3

3. Solve 5x ≡ 4 (mod 6)
Solution:
5x ≡ 4 (mod 6)
5x – 4 = 6M for some integer n.
5x = 6n + 4
x = 6n+45 where n = 1, 6, 11,…..
∴ x = 2, 8, 14,…

4.Solve 3x – 2 ≡ 0 (mod 11)
Solution:
3x – 2 ≡ 0 (mod 11)
3x – 2 = 11 n for some integer n.
3x = 11n + 2

5. What is the time 100 hours after 7 a.m.?
Solution:
100 ≡ x (mod 12) (∵7 comes in every 12 hrs)
100 ≡ 4 (mod 12) (∵ Least value of x is 4)
∴ The time 100 hrs after 7 O’ clock is 7 + 4 = 11 O’ clock i.e. 11 a.m

6. What is time 15 hours before 11 p.m.?
Answer:
15 ≡ x (mod 12)
15 ≡ 3 (mod 12)
The value of x must be 3.

The time 15 hours before 11 o’clock is (11 – 3) 8 pm

7. Today is Tuesday. My uncle will come after 45 days. In which day my uncle will be coming?
Solution:
No. of days in a week = 7 days.
45 ≡ x (mod 7)
45 – x = 7n
45 – x is a multiple of 7.
∴ Value of x must be 3.
∴ Three days after Tuesday is Friday. Uncle will come on Friday.

8. Prove that 2ⁿ + 6 × 9n is always divisible by 7 for any positive integer n.
Answer:
9 = 2 (mod 7)
9ⁿ = 2ⁿ (mod 7) and 2ⁿ = 2ⁿ (mod 7)
2ⁿ + 6 × 9ⁿ = 2ⁿ (mod 7) + 6 [2ⁿ (mod 7)]
= 2ⁿ (mod 7) + 6 × 2ⁿ (mod 7)
7 × 2ⁿ (mod 7)
It is always divisible for any positive integer n

9. Find the remainder when 2⁸¹ is divided by 17.
Solution:
2⁸¹ ≡ x (mod 17)
2⁴⁰ × 2⁴⁰ × 2⁴¹ ≡ x (mod 17)
(2⁴)¹⁰ × (2⁴)¹⁰ × 2¹ ≡ x (mod 17)
(16)¹⁰ × (16)¹⁰ × 2 ≡ x(mod 17)
(16⁵)² × (16⁵)² × 2
(16⁵) ≡ 16 (mod 17)
(16⁵)² ≡ 16² (mod 17)
(16⁵)² ≡ 256 (mod 17)
≡ 1 (mod 17) [∵ 255 is divisible by 17]
(16⁵)² × (16⁵)² × 2 ≡ 1 × 1 × 2 (mod 17)
∴ 2⁸¹ ≡ 2(mod 17)
∴ x = 2

10. The duration of flight travel from Chennai to London through British Airlines is approximately 11 hours. The aeroplane begins its journey on Sunday at 23:30 hours. If the time at Chennai is four and a half hours ahead to that of London’s time, then find the time in London, when will the flight lands at London Airport.
Solution:
The duration of the flight from Chennai to London is 11 hours.
Starting time at Chennai is 23.30 hrs. = 11.30 p.m.
Travelling time = 11.00 hrs. = 22.30 hrs = 10.30 a.m.
Chennai is 412 hrs ahead to London.
= 10.30 – 4.30 = 6.00
∴ At 6 a.m. on Monday the flight will reach at London Airport.

How To Get Govt. Job Without Wasting Years?
CLICK HERE

02 Apr 2022