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Introduction to Linear Polynomials Mathematics Ganita Manjari class 9 in English Medium ncert book solutions Exercise Set 2.4
Introduction to Linear Polynomials Exercise Set 2.4 – Complete NCERT Book Solutions for Class 9 Mathematics Ganita Manjari (English Medium). Get all chapter explanations, extra questions, solved examples and additional practice questions for Introduction to Linear Polynomials Exercise Set 2.4 to help you master concepts and score higher.
Introduction to Linear Polynomials Mathematics Ganita Manjari class 9 in English Medium ncert book solutions Exercise Set 2.4
NCERT Solutions for Class 9 Mathematics Ganita Manjari play an important role in helping students understand the concepts of the chapter Introduction to Linear Polynomials clearly. This chapter includes the topic Exercise Set 2.4, which is essential from both academic and examination point of view. The solutions provided here are prepared strictly according to the latest NCERT syllabus and follow the guidelines of CBSE to ensure accuracy and relevance. Each question is explained in a simple and student-friendly manner so that learners can grasp the concepts without confusion. These NCERT Solutions are useful for regular study, homework help, and exam preparation. All textbook questions are solved step by step to improve problem-solving skills and conceptual clarity. Students of Class 9 studying Mathematics Ganita Manjari can use these solutions to revise important topics, understand difficult questions, and practise effectively before examinations. The chapter Introduction to Linear Polynomials is explained in a structured way, making it easier for students to connect the theory with the topic Exercise Set 2.4. By studying these updated NCERT Solutions for Class 9 Mathematics Ganita Manjari, students can build a strong foundation, boost their confidence, and score better marks in school and board exams.
Introduction to Linear Polynomials
Exercise Set 2.4
Exercise Set 2.4
Q1. Suppose a plant has height 1.75 feet and it grows by 0.5 feet each month.
(i) Find the height after 7 months.
(ii) Make a table of values for t varying from 0 to 10 months and show how the height, h, increases every month.
(iii) Find an expression that relates h and t, and explain why it represents linear growth.
Q2. A mobile phone is bought for ₹10,000. Its value decreases by ₹800 every year.
(i) Find the value of the phone after 3 years.
(ii) Make a table of values for t varying from 0 to 8 years and show how the value of the phone, v, depreciates with time.
(iii) Find an expression that relates v and t, and explain why it represents linear decay.
Q3. The initial population of a village is 750. Every year, 50 people move from a nearby city to the village.
(i) Find the population of the village after 6 years.
(ii) Make a table of values for t varying from 0 to 10 years and show how the population, P, increases every year.
(iii) Find an expression that relates P and t, and explain why it represents linear growth.
Q4. A telecom company charges ₹600 for a certain recharge scheme. This prepaid balance is reduced by ₹15 each day after the recharge.
(i) Write an equation that models the remaining balance b(x) after using the scheme for x days. Explain why it represents linear decay.
(ii) After how many days will the balance run out?
(iii) Make a table of values for x varying from 1 to 10 days and show how the balance b(x), reduces with time.
Solutions:
Q1. Suppose a plant has height 1.75 feet and it grows by 0.5 feet each month.
Solution:
Initial height of plant = 1.75 feet
Growth every month = 0.5 feet
(i) Height after 7 months
h = 1.75 + (0.5 × 7)
h = 1.75 + 3.5
h = 5.25 feet
So, the height after 7 months is 5.25 feet.
(ii) Table of values
t (months) h (feet)
0 1.75
1 2.25
2 2.75
3 3.25
4 3.75
5 4.25
6 4.75
7 5.25
8 5.75
9 6.25
10 6.75
(iii) Expression relating h and t
h = 1.75 + 0.5t
This represents linear growth because the height increases by the same amount every month.
Q2. A mobile phone is bought for ₹10,000. Its value decreases by ₹800 every year.
Solution:
Initial value of phone = ₹10,000
Decrease every year = ₹800
(i) Value after 3 years
v = 10000 − (800 × 3)
v = 10000 − 2400
v = ₹7600
So, the value after 3 years is ₹7600.
(ii) Table of values
t (years) v (₹)
0 10000
1 9200
2 8400
3 7600
4 6800
5 6000
6 5200
7 4400
8 3600
(iii) Expression relating v and t
v = 10000 − 800t
This represents linear decay because the value decreases by the same amount every year.
Q3. The initial population of a village is 750. Every year, 50 people move from a nearby city to the village.
Solution:
Initial population = 750
Increase every year = 50 people
(i) Population after 6 years
P = 750 + (50 × 6)
P = 750 + 300
P = 1050
So, the population after 6 years is 1050.
(ii) Table of values
t (years) P
0 750
1 800
2 850
3 900
4 950
5 1000
6 1050
7 1100
8 1150
9 1200
10 1250
(iii) Expression relating P and t
P = 750 + 50t
This represents linear growth because the population increases by the same amount every year.
Q4. A telecom company charges ₹600 for a certain recharge scheme. This prepaid balance is reduced by ₹15 each day after the recharge.
Solution:
Initial balance = ₹600
Reduction every day = ₹15
(i) Equation representing remaining balance
b(x) = 600 − 15x
This represents linear decay because the balance decreases by the same amount every day.
(ii) Number of days after which balance becomes zero
600 − 15x = 0
15x = 600
x = 600/15
x = 40
So, the balance will run out after 40 days.
(iii) Table of values
x (days) b(x)
1 585
2 570
3 555
4 540
5 525
6 510
7 495
8 480
9 465
10 450
See other sub-topics of this chapter:
1. Exercise Set 2.1 2. Exercise Set 2.2 3. Exercise Set 2.3 4. Exercise Set 2.4 5. Exercise Set 2.5 6. Exercise Set 2.6 7. Exercise Set 2.7