Class 10 Exam  >  Class 10 Notes  >  Extra Documents, Videos & Tests for Class 10  >  RD Sharma Solutions - Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10 PDF Download

Question 34

x + y = 5xy

3x + 2y = 13xy

Sol.

The given system of equations is:

x + y = 5xy ………………….. (i)

3x + 2y = 13xy……………… (ii)

Multiplying equation (i) by 2 and equation (ii) 1 we get,

2x + + 2y = 10xy ………………… (iii)

3x + 2y = 13xy ……………………. (iv)

Subtracting equation (iii) from equation (iv) we get,

3x − 2x = 13xy − 10xy

= x = 3xy

=  x/3x = y

=  1/3 = y

Putting y =  1/3 = y in equation (i) we get,

= x + y = 5(x)( 1/3)

= x + x/3x =  5x/3

= 2x = 1

= x =  1/2 = y

Hence Solution of the given system of equation is 1/2 and 1/3

 

Question 35. x + y = xy

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Sol. x + y = xy ………………………………….. (i)

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10………………….. (ii)

Adding equation (i) and (ii) we get,

2x = 2xy + 6xy

= 2x = 6xy

= y = x + y = xy

= y = 1/4

Putting = y = 1/4 in equation (i) , we get,

= x + 1/4 = 2x(1/4)

= x = − 1/2

Hence the Solution of the given system of equation is = x = − 1/2

And y = 1/4 respectively.

 

Question 36. 2(3u − v) = 5uv

2(u + 3v) = 5uv

Solution. 2(3u − v) = 5uv

= 6u − 2v = 5uv …………………. (i)

2(u + 3v) = 5uv

2u + 6v = 5uv …………………….. (ii)

Multiplying equation (i) by 3 and equation (ii) by 1 we get,

18u − 6v = 15uv …………………….. (iii)

2u + 6v = 5uv ………………………….. (iv)

Adding equation (iii) and equation (iv) we get,

18u + 2u = 15uv + 5uv

= v = 1

Putting v = 1 in equation (i) we get,

6u − 2 = 5u

= u = 2

Hence the Solution of the given system of Solution of equation is 2 and 1 respectively.

 

Question 37. 

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

 

Sol. Then the given system of equation becomes:

2u + 3v = − 17/5 ………………………..(i)

5u − v = 2 ……………………… (ii)

Multiplying equation (ii) by 3

Adding equation (iv) and equation (iii) , we get

15u − 2u = − 17/5 + 5

= 13u = 13/5

= u = 1/5

Putting u = 1/5 in equation (i)

5(1/5) + v = − 2

= v = 1

Now,

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

= 3x + 2y = 5 ……………..(iv)

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

= 3x − 2y = 1 …………………..(v)

Adding equation (iv) and (v) we get,

6x = 6

= x = 1

Putting the value of x in equation (v) we get,

3 + 2y = 5

= y = 1

The Solutions of the given system of equation are 1 and 1 respectively.

 

Question 38. 

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Sol. Then the given system of equation becomes:

44u + 30v = 10 ……………………….. (i)

55u + 40v = 13 ………………………(ii)

Multiplying equation (i) by 4 and (ii) by 3

176u + 120v = 40 ……………………… (iii)

165u + 120v = 39 ……………………… (iv)

Subtracting equation (iv) from (iii) we get,

176 − 165u = 40 − 39

= u = 1/11

Putting the value of u in equation (i)

44(1/11) + 30v = 10

= 4 + 30v = 10

= 30v = 6

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

= x + y = 11……………..(v)

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

= x − y = 5 …………………..(vi)

Adding equation (v) and (vi) we get,

2x = 16

= x = 8

Putting the value of x in equation (v)

8 + y = 11

= y = 3

The Solutions of the given system of equation are 8 and 3 respectively.

 

Question 40

 

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

 

Sol. Then the given system of equation becomes:

10p + 2q = 4 ……………………….. (i)

15p − 5q = − 2 ………………………(ii)

Multiplying equation (i) by 4 and (ii) by 3

176u + 120v = 40 ……………………… (iii)

165u + 120v = 39 ……………………… (iv)

Using cross multiplication method we get,

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

p =  1/5 and q = 1

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

x + y = 5…………………….. 3

x − y = 1 ……………………..4

Adding equation 3 and 4 we get,

x = 3

Substituting the value of x in equation 3 we get,

y = 2

The Solution of the given system of Solution is 3 and 2 respectively.

 

Question 41

 

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

 

Sol. Then the given system of equation becomes:

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10 2 ………………………………..1

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10 1……………………………………. 2

Can be written as 5p + q = 2 ………………………………… 3

6p − 3q = 1 ………………………………………. 4

Equation 3 and 4 from a pair of linear equation in the general form. Now, we  can use any method to solve these equations.

We get p = 1/3

q =  1/3

Substituting the Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10 for p , we have

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

x − 1 = 3

x = 4

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

y − 2 = 3

y = 5

The Solution of the required pair of equation is 4 and 5 respectively.

 

Question 42

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Sol. 7/y − 2/x = 5…………………………..1

8/y + 7/x = 15……………………………2

Let 1/x = p

Let 1/y = q

The given equation s reduce to:

− 2p + 7q = 5

= − 2p + 7q − 5 = 0 ……………………………….. 3

7p + 8q = 15

= 7p + 8q − 15 = 0 …………………………… 4

Using cross multiplication method we get,

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions | Extra Documents, Videos & Tests for Class 10

p = 1 and q = 1

p = 1/x

q = 1/y

x = 1 and y = 1

 

Question 43. 152x − 378y = − 74

− 378x + 152y = − 604

Sol. 152x − 378y = − 74 ……………………………. 1

− 378x + 152y = − 604 …………………………. 2

Adding the equations 1 and 2 , we obtain

− 226x − 226y = − 678

= x + y = 3 ……………………….. 3

Subtracting the equation 2 from equation 1, we obtain

530x + 530y = 530

x − y = 1 …………………………….4

Adding equations 3 and 4 we obtain,

2x = 4

= x = 2

Substituting the value of x in equation 3 we obtain y = 1

 

Question 44. 99x + 101y = 409

101x + 99y = 501

Sol. The given system of equation are :

99x + 101y = 409 ………………………….1

101x + 99y = 501…………………………….. 2

Adding equation 1 and 2 we get ,

99x + 101x + 101y + 99y = 49 + 501

= 200(x + y) = 1000

= x + y = 5 ……………………….. 3

Subtracting equation 1 from 2

101x − 99x + 99y − 101y = 501 − 499

= 2(x − y) = 2

= x − y = 1 ………………………………. 4

Adding equation 3 and 4 we get,

2x = 6

= x = 3

Putting x = 3 in equation 3 we get,

3 + y = 5

= y = 2

The Solution of the given system of equation is 3 and 2 respectively.

 

Question 45. 23x − 29y = 98

29x − 23y = 110

Sol. 23x − 29y = 98 ………………………………1

29x − 23y = 110 ………………………………… 2

Adding equation 1 and 2 we get,

= 6(x + y) = 12

= x + y = 2 ………………………3

Subtracting equation 1 from 2 we get,

52(x − y) = 208

= x − y = 4 ……………………………. 4

Adding equation 3 and 4 we get,

2x = 6

= x = 3

Putting the value of x in equation 4

3 + y = 2

= y = − 1

The Solution of the given system of equation is 3 and − 1 respectively.

 

Question 46. x − y + z = 4

x − 2y − 2z = 9

2x + y + 3z = 1

Sol. x − y + z = 4 …………………………..1

x − 2y − 2z = 9…………………………..2

2x + y + 3z = 1……………………………3

From equation 1

z = 4 − x + y

z = − x + y + 4

Subtracting the value of the z in equation 2 we get,

x − 2y − 2( − x + y + 4) = 9

= x − 2y + 2x − 2y − 8 = 8

= 3x − 4y = 17 …………………………….. 4

Subtracting the value of z in equation 3, we get,

2x + y + 3( − x + y + 4) = 1

= 2x + y + 3x + 3y + 12 = 1

= − x + 4y = − 11

Adding equation 4 and 5 we get,

3x − x − 4y + 4y = 17 − 11

= 2x = 6

= x = 3

Putting x = 3 in equation 4, we get,

9 − 4y = 17

= − 4y = 17 − 9

= y = − 2

Putting x = 3 and y = − 2 in z = − x + y + 4 , we get,

Z = − 3 − 2 + 4

= − 1

The Solution of the given system of equation are 3 , − 2 and − 1 respectively.

 

Question 47. x − y + z = 4

x + y + z = 2

2x + y − 3z = 0

Sol. x − y + z = 4 ………………………………….1

x + y + z = 2……………………………………..2

2x + y − 3z = 0………………………………………3

From equation 1

= z = − x + y + 4

Substituting z = − x + y + 4 in equation 2 , we get ,

= x + y + ( − x + y + 4) = 2

= x + y − x + y + 4 = 2

= 2y = 2

= y = 1

Substituting the value of z in equation 3

2x + y − 3( − x + y + 4) = 0

= 2x + y + 3x − 3y − 12 = 0

= 5x − 2y = 12 ………………………………. 4

Putting the y = − 1 in equation 4

5x − 2( − 1) = 12

5x = 10

= x = 2

Putting x = 2 and y = − 1 in z = − x + y + 4

Z = − 2 − 1 + 4

= 1

The Solution of the given system of equations are 2 , − 1 and 1 respectively.

The document Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), 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.
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FAQs on Ex-3.3 Pair Of Linear Equations In Two Variables (Part - 3), Class 10, Maths RD Sharma Solutions - Extra Documents, Videos & Tests for Class 10

1. What are linear equations in two variables?
Ans. Linear equations in two variables are equations in which the highest power of the variables is 1 and they are related in a linear manner. These equations can be represented by a straight line on a graph.
2. How many solutions can a pair of linear equations have?
Ans. A pair of linear equations can have three types of solutions: 1. Unique solution: When the two lines intersect at a single point, the pair of equations has a unique solution. 2. Infinite solutions: When the two lines coincide or are superimposed on each other, the pair of equations has infinitely many solutions. 3. No solution: When the two lines are parallel and do not intersect, the pair of equations has no solution.
3. How can we solve a pair of linear equations graphically?
Ans. To solve a pair of linear equations graphically, we can plot the given equations on a graph and find the point of intersection (if any). The coordinates of the point of intersection represent the solution to the system of equations.
4. What is the substitution method for solving a pair of linear equations?
Ans. The substitution method is a way of solving a pair of linear equations algebraically. In this method, we solve one equation for one variable and substitute that value into the other equation. By substituting the value, we can solve for the remaining variable and find the solution to the system of equations.
5. Can a pair of linear equations have more than one unique solution?
Ans. No, a pair of linear equations cannot have more than one unique solution. The nature of linear equations is such that they represent straight lines, and two lines can intersect at most at one point. Therefore, a pair of linear equations can have either a unique solution, infinitely many solutions, or no solution.
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