Class 10 Exam  >  Class 10 Notes  >  Extra Documents, Videos & Tests for Class 10  >  RD Sharma Solutions - Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10 PDF Download

In each of the following systems of equation determine whether the system has a unique solution, no solution or infinite solutions. In case there is a unique solution, find it from 1 to 4:

(1) x − 3y − 3 = 0

   3x − 9y − 2 = 0

Sol.

The given system may be written as

x − 3y − 3 = 0

3x − 9y − 2 = 0

The given system of equation is of the form

a1x + b1y − c= 0

a2x + b2y − c2 = 0

Where, a1 = 1,b1 = − 3,c1 = − 3

a2 = 3,b2 = − 9,c2 = − 2

We have,

a1/a2 = 1/3

b1/b2 = − 3/ − 9 = 13

and , c1/c= − 3/ − 2 = 3/2

a1/a2 = b1/b2 ≠ c1/c2

Therefore, the given equation has no solution.

 

(2) 2x + y − 5 = 0

   4x + 2y − 10 = 0

Sol.

The given system may be written as

2x + y − 5 = 0

4x + 2y − 10 = 0

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c2 = 0

Where, a= 2,b= 1,c1 = − 5

a2 = 4,b2 = 2,c2 = − 10

We have,

a1/a2 = 2/4 = 1/2

b1/b2 = 1/2

and , c1/c2 = − 5/ − 10 = 1/2

So, a1/a2 = b1/b2 = c1/c2

Therefore, the given equation has infinitely many solution.

 

(3) 3x − 5y = 20

   6x − 10y = 40

Sol.

The given system may be written as

3x − 5y = 20

6x − 10y = 40

The given system of equation is of the form

a1x + b1y − c= 0

a2x + b2y − c2 = 0

Where, a1 = 3,b1 = − 5,c= − 20

a2 = 6,b= − 10,c2 = − 40

We have,

a1/a2 = 3/6 = 1/2

b1/b2 = − 5/ − 10 = 1/2

and , c1/c2 = − 20 /− 40 = 1/2

So, a1/a2 = b1/b2 = c1/c2

Therefore, the given equation has infinitely many solution.

 

(4) x − 2y − 8 = 0

   5x − 10y − 10 = 0

Sol.

The given system may be written as

x − 2y − 8 = 0

5x − 10y − 10 = 0

The given system of equation is of the form

a1x + b1y − c= 0

a2x + b2y − c2 = 0

Where, a1 = 1,b1 = − 2,c= − 8

a2 = 5,b2 = − 10,c2 = − 10

We have,

a1/a2 = 1/5

b1/b2 = − 2 /− 10 = 1/5

and , c1/c2 = − 8/ − 10 = 4/5

a1/a= b1/b2 ≠ c1/c2

Therefore, the given equation has no solution.

 

Find the value of k for each of the following system of equations which have a unique solution (5-8)

(5) kx + 2y − 5 = 0

     3x + y − 1 = 0

Sol.

The given system may be written as

kx + 2y − 5 = 0

3x + y − 1 = 0

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c2 = 0

Where, a1 = k,b= 2,c1 = − 5

a2 = 3,b2 = 1,c2 = − 1

For unique solution,we have

a1/a≠ b1/b2

k/3 ≠ 2/1

⇒ k ≠ 6

Therefore, the given system will have unique solution for all real values of k other than 6.

 

(6) 4x + ky + 8 = 0

    2x + 2y + 2 = 0

Sol.

The given system may be written as

4x + ky + 8 = 0

2x + 2y + 2 = 0

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c2 = 0

Where, a1 = 4,b= k,c1 = 8

a2 = 2,b= 2,c2 = 2

For unique solution,we have

a1/a2 ≠ b1/b2

4/2 ≠ k/2

⇒ k ≠ 4

Therefore, the given system will have unique solution for all real values of k other than 4.

 

(7) 4x − 5y = k

    2x − 3y = 12

Sol.

The given system may be written as

4x − 5y − k = 0

2x − 3y − 12 = 0

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c= 0

Where, a= 4,b1 = − 5,c1 = − k

a2 = 2,b= − 3,c= − 12

For unique solution,we have

a1a2 ≠ b1b2

4/2 ≠ − 5/ − 3

⇒ k can have any real values.

Therefore, the given system will have unique solution for all real values of k.

 

(8) x + 2y = 3

    5x + ky + 7 = 0

Sol.

The given system may be written as

x + 2y = 3

5x + ky + 7 = 0

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c= 0

Where, a= 1,b= 2,c1 = − 3

a2 = 5,b2 = k,c2 = 7

For unique solution,we have

a1a2 ≠ b1b2

1/5 ≠ 2/k

⇒ k ≠ 10

Therefore, the given system will have unique solution for all real values of k other than 10.

 

Find the value of k for which each of the following system of equations having infinitely many solution: (9-19)

(9) 2x + 3y − 5 = 0

    6x − ky − 15 = 0

Sol.

The given system may be written as

2x + 3y − 5 = 0

6x − ky − 15 = 0

The given system of equation is of the form

a1x + b1y − c= 0

a2x + b2y − c2 = 0

Where, a= 2,b1 = 3,c1 = − 5

a2 = 6,b2 = k,c= − 15

For unique solution,we have

a1/a2 = b1/b2 = c1/c2

2/6 ≠ 3/k

⇒ k = 9

Therefore, the given system of equation will have infinitely many solutions, if k = 9.


(10) 4x + 5y = 3

    kx + 15y = 9

Sol.

The given system may be written as

4x + 5y = 3

kx + 15y = 9

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c2 = 0

Where, a1 = 4,b1 = 5,c1 = 3

a= k,b2 = 15,c2 = 9

For unique solution,we have

a1/a2 = b1/b2 = c1/c2

4/k = 5/15 = − 3/ − 9

4/k = 1/3

⇒ k ≠ 12

Therefore, the given system will have infinitely many solutions if k = 12.

 

(11) kx − 2y + 6 = 0

    4x + 3y + 9 = 0

Sol.

The given system may be written as

kx − 2y + 6 = 0

4x + 3y + 9 = 0

The given system of equation is of the form

a1x + b1y − c= 0

a2x + b2y − c2 = 0

Where, a= k,b1 = − 2,c1 = 6

a2 = 4,b2 = − 3,c= 9

For unique solution,we have

a1/a2 = b1/b2 = c1/c2

k/4 = − 2 /− 3 = 2/3

⇒ k = 8/3

Therefore, the given system of equations will have infinitely many solutions, if k = 8/3.

 

(12) 8x + 5y = 9

    kx + 10y = 19

Sol.

The given system may be written as

8x + 5y = 9

kx + 10y = 19

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c2 = 0

Where, a1 = 8,b1 = 5,c1 = − 9

a2 = k,b2 = 10,c2 = − 18

For unique solution,we have

a1/a2 = b1/b2 = c1/c2

8/k = 5/10 = − 9 /− 18 = 1/2

⇒ k = 16

Therefore, the given system of equations will have infinitely many solutions, if k = 16.

 

(13) 2x − 3y = 7

    (k + 2)x − (2k + 1)y = 3(2k − 1)

Sol.

The given system may be written as

2x − 3y = 7

(k + 2)x − (2k + 1)y = 3(2k − 1)

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c2 = 0

Where, a1 = 2,b1 = − 3,c1 = − 7

a= k,b= − (2k + 1),c= − 3(2k − 1)

For unique solution,we have

a1/a2 = b1/b2 = c1/c2

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10 and  Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

⇒ 2(2k + 1) = 3(k + 2) and 3×3(2k − 1) = 7(2k + 1)

⇒ 4k + 2 = 3k + 6 and 18k − 9 = 14k + 7

⇒ k = 4 and 4k = 16⇒ k = 4

Therefore, the given system of equations will have infinitely many solutions, if k = 4.

 

(14) 2x + 3y = 2

    (k + 2)x + (2k + 1)y = 2(k − 1)

Sol.

The given system may be written as

2x + 3y = 2

(k + 2)x + (2k + 1)y = 2(k − 1)

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c2 = 0

Where, a1 = 2,b1 = 3,c1 = − 2

a2 = (k + 2),b2 = (2k + 1),c2 = − 2(k − 1)

For unique solution,we have

a1/a2 = b1/b2 = c1/c2

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10 and Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

⇒ 2(2k + 1) = 3(k + 2) and 3(k − 1) = (2k + 1)

⇒ 4k + 2 = 3k + 6 and 3k − 3 = 2k + 1

⇒ k = 4 and k = 4

Therefore, the given system of equations will have infinitely many solutions, if k = 4.

 

(15) x + (k + 1)y = 4

    (k + 1)x + 9y = (5k + 2)

Sol.

The given system may be written as

x + (k + 1)y = 4

(k + 1)x + 9y = (5k + 2)

The given system of equation is of the form

a1x + b1y − c= 0

a2x + b2y − c2 = 0

Where, a1 = 1,b= (k + 1),c1 = − 4

a= (k + 1),b2 = 9,c2 = − (5k + 2)

For unique solution,we have

a1/a2 = b1/b2 = c1/c2

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

⇒ 9 = (k + 1)and (k + 1)(5k + 2) = 36

⇒ 9 = k2 + 2k + 1 and 5k+ 2k + 5k + 2 = 36

⇒ k2 + 2k − 8 = 0 and 5k2 + 7k − 34 = 0

⇒ k2 + 4k − 2k − 8 = 0 and 5k2 + 17k − 10k − 34 = 0

⇒ k(k + 4) − 2(k + 4) = 0 and (5k + 17) − 2(5k + 17) = 0

⇒ (k + 4)(k − 2) = 0 and (5k + 17)(k − 2) = 0

⇒ k = − 4 ork = 2 and k = − 17/5 ork = 2

thus, k = 2 satisfies both the condition.

Therefore, the given system of equations will have infinitely many solutions, if k = 2.


(16) kx + 3y = 2k + 1

    2(k + 1)x + 9y = (7k + 1)

Sol.

The given system may be written as

kx + 3y = 2k + 1

2(k + 1)x + 9y = (7k + 1)

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c2 = 0

Where, a1 = k,b1 = 3,c1 = − (2k + 1)

a= 2(k + 1),b2 = 9,c2 = − (7k + 1)

For unique solution,we have

a1/a2 = b1/b2 = c1/c2

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

⇒ 9k = 3×2(k + 1) and 3(7k + 1) = 9(2k + 1)

⇒ 9k − 6k = 6 and 21k − 18k = 9 − 3

⇒ 3k = 6 and 3k = 6

⇒ k = 2 and k = 2

Therefore, the given system of equations will have infinitely many solutions, if k = 2.

 

(17) 2x + (k − 2)y = k

    6x + (2k − 1)y = (2k + 5)

Sol.

The given system may be written as

2x + (k − 2)y = k

6x + (2k − 1)y = (2k + 5)

The given system of equation is of the form

a1x + b1y − c= 0

a2x + b2y − c2 = 0

Where, a= 2,b1 = (k − 2),c1 = − k

a2 = 6,b2 = (2k − 1),c2 = − (2k + 5)

For unique solution,we have

a1/a2 = b1/b2 = c1/c2

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10 and 2k+ 5k − 4k − 10 = 2k2 − k

⇒ 2k − 3k = − 6 + 1 and k + k = 10

⇒ − k = − 5 and 2k = 10

⇒ k = 5 and k = 5

Therefore, the given system of equations will have infinitely many solutions, if k = 5.

 

(18) 2x + 3y = 7

    (k + 1)x + (2k − 1)y = (4k + 1)

Sol.

The given system may be written as

2x + 3y = 7

(k + 1)x + (2k − 1)y = (4k + 1)

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c2 = 0

Where, a1 = 2,b1 = 3,c= − 7

a2 = k + 1,b2 = 2k − 1,c2 = − (4k + 1)

For unique solution,we have

a1/a2 = b1/b2 = c1/c2

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Extra close brace or missing open brace

⇒ 4k − 2 = 3k + 3 and 12k + 3 = 14k − 7

⇒ k = 5 and 2k = 10

⇒ k = 5 and k = 5

Therefore, the given system of equations will have infinitely many solutions, if k = 5.

 

(19) 2x + 3y = k

    (k − 1)x + (k + 2)y = 3k

Sol.

The given system may be written as

2x + 3y = k

(k − 1)x + (k + 2)y = 3k

The given system of equation is of the form

a1x + b1y − c1 = 0

a2x + b2y − c2 = 0

Where, a1 = 2,b1 = 3,c1 = − k

a2 = k − 1,b2 = k + 2,c2 = − 3k

For unique solution,we have

a1/a2 = b1/b2 = c1/c2

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Extra close brace or missing open brace

⇒ 2k + 4 = 3k − 3 and 9 = k + 2

⇒ k = 7 and k = 7

Therefore, the given system of equations will have infinitely many solutions, if k = 7.

 

Find the value of k for which the following system of equation has no solution : (20-25)

(20) kx − 5y = 2

    6x + 2y = 7

Sol.

The given system may be written as

kx − 5y = 2

6x + 2y = 7

The given system of equation is of the form

a1x + b1y − c= 0

a2x + b2y − c2 = 0

Where, a1 = k,b1 = − 5,c1 = − 2

a2 = 6,b2 = 2,c= − 7

For no solution,we have

a1/a2 = b1/b2 ≠ c1/c2

k/6 = − 5/2 ≠ 2/7

⇒ 2k = − 30

⇒ k = − 15

Therefore, the given system of equations will have no solutions, if k = − 15.

The document Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10 is a part of the Class 10 Course Extra Documents, Videos & Tests for Class 10.
All you need of Class 10 at this link: Class 10
5 videos|292 docs|59 tests

Top Courses for Class 10

FAQs on Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1), Class 10, Maths RD Sharma Solutions - Extra Documents, Videos & Tests for Class 10

1. How can I solve a pair of linear equations in two variables?
Ans. To solve a pair of linear equations in two variables, you can use various methods such as substitution method, elimination method, and graphing method. These methods involve manipulating the equations to eliminate one variable and find the value of the other variable.
2. What is the importance of solving linear equations in two variables?
Ans. Solving linear equations in two variables is important as it helps in finding the solution to real-life problems that involve two unknowns. It allows us to determine the values of variables and understand the relationship between them in a given system of equations.
3. Can linear equations in two variables have more than one solution?
Ans. Yes, linear equations in two variables can have more than one solution. This occurs when the two equations represent the same line or when the two lines are parallel. In such cases, all the points on the line(s) will satisfy both equations, resulting in infinite solutions.
4. What is the graphical representation of a pair of linear equations in two variables?
Ans. Graphical representation of a pair of linear equations in two variables involves plotting the equations on a coordinate plane. The intersection point of the two lines represents the solution to the system of equations. If the lines intersect at a single point, it indicates a unique solution. If the lines are parallel, there is no solution, and if the lines coincide, there are infinite solutions.
5. How can I check if a given point is a solution to a pair of linear equations in two variables?
Ans. To check if a given point is a solution to a pair of linear equations in two variables, substitute the values of the variables in both equations and see if they satisfy both equations simultaneously. If the values satisfy both equations, the point is a solution; otherwise, it is not a solution.
5 videos|292 docs|59 tests
Download as PDF
Explore Courses for Class 10 exam

Top Courses for Class 10

Signup for Free!
Signup to see your scores go up within 7 days! Learn & Practice with 1000+ FREE Notes, Videos & Tests.
10M+ students study on EduRev
Related Searches

Class 10

,

Videos & Tests for Class 10

,

mock tests for examination

,

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1)

,

Exam

,

Class 10

,

study material

,

Extra Questions

,

MCQs

,

past year papers

,

Important questions

,

Previous Year Questions with Solutions

,

pdf

,

Sample Paper

,

ppt

,

Objective type Questions

,

practice quizzes

,

Free

,

Videos & Tests for Class 10

,

Maths RD Sharma Solutions | Extra Documents

,

video lectures

,

Viva Questions

,

Maths RD Sharma Solutions | Extra Documents

,

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1)

,

Maths RD Sharma Solutions | Extra Documents

,

Videos & Tests for Class 10

,

Summary

,

shortcuts and tricks

,

Ex-3.5 Pair Of Linear Equations In Two Variables (Part - 1)

,

Class 10

,

Semester Notes

;