RD Sharma Class 9 Solutions Chapter 5 Exercise 5.1 (Updated for 2024)

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RD Sharma Class 9 Solutions Chapter 5 Exercise 5.1

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Exercise 5.1 Page No: 5.9

Question 1: Factorize x³ + x – 3x² – 3

Solution:

x³ + x – 3x² – 3

Here x is common factor in x³ + x and – 3 is common factor in – 3x² – 3

x³ – 3x² + x – 3

x² (x – 3) + 1(x – 3)

Taking ( x – 3) common

(x – 3) (x² + 1)

Therefore x³ + x – 3x² – 3 = (x – 3) (x² + 1)

Question 2: Factorize a(a + b)³ – 3a²b(a + b)

Solution:

a(a + b)³ – 3a²b(a + b)

Taking a(a + b) as common factor

= a(a + b) {(a + b)² – 3ab}

= a(a + b) {a² + b² + 2ab – 3ab}

= a(a + b) (a² + b² – ab)

Question 3: Factorize x(x³ – y³) + 3xy(x – y)

Solution:

x(x³ – y³) + 3xy(x – y)

= x(x – y) (x² + xy + y²) + 3xy(x – y)

Taking x(x – y) as a common factor

= x(x – y) (x² + xy + y² + 3y)

= x(x – y) (x² + xy + y² + 3y)

Question 4: Factorize a²x² + (ax² + 1)x + a

Solution:

a²x² + (ax² + 1)x + a

= a²x² + a + (ax² + 1)x

= a(ax² + 1) + x(ax² + 1)

= (ax² + 1) (a + x)

Question 5: Factorize x² + y – xy – x

Solution:

x² + y – xy – x

= x² – x – xy + y

= x(x- 1) – y(x – 1)

= (x – 1) (x – y)

Question 6: Factorize x³ – 2x²y + 3xy² – 6y³

Solution:

x³ – 2x²y + 3xy² – 6y³

= x²(x – 2y) + 3y²(x – 2y)

= (x – 2y) (x² + 3y²)

Question 7: Factorize 6ab – b² + 12ac – 2bc

Solution:

6ab – b² + 12ac – 2bc

= 6ab + 12ac – b² – 2bc

Taking 6a common from the first two terms and –b from the last two terms

= 6a(b + 2c) – b(b + 2c)

Taking (b + 2c) common factor

= (b + 2c) (6a – b)

Question 8: Factorize (x² + 1/x²) – 4(x + 1/x) + 6

Solution:

(x² + 1/x²) – 4(x + 1/x) + 6

= x² + 1/x² – 4x – 4/x + 4 + 2

= x² + 1/x² + 4 + 2 – 4/x – 4x

= (x²) + (1/x) ² + (-2)² + 2x(1/x) + 2(1/x)(-2) + 2(-2)x

As we know, x² + y² + z² + 2xy + 2yz + 2zx = (x+y+z) ²

So, we can write;

= (x + 1/x + (-2 )) ²

or (x + 1/x – 2) ²

Therefore, x² + 1/x²) – 4(x + 1/x) + 6 = (x + 1/x – 2) ²

Question 9: Factorize x(x – 2) (x – 4) + 4x – 8

Solution:

x(x – 2) (x – 4) + 4x – 8

= x(x – 2) (x – 4) + 4(x – 2)

= (x – 2) [x(x – 4) + 4]

= (x – 2) (x² – 4x + 4)

= (x – 2) [x² – 2 (x)(2) + (2) ²]

= (x – 2) (x – 2) ²

= (x – 2)³

Question 10: Factorize ( x + 2 ) ( x² + 25 ) – 10x² – 20x

Solution :

( x + 2) ( x² + 25) – 10x ( x + 2 )

Take ( x + 2 ) as common factor;

= ( x + 2 )( x² + 25 – 10x)

=( x + 2 ) ( x² – 10x + 25)

Expanding the middle term of ( x² – 10x + 25 )

=( x + 2 ) ( x² – 5x – 5x + 25 )

=( x + 2 ){ x (x – 5 ) – 5 ( x – 5 )}

=( x + 2 )( x – 5 )( x – 5 )

=( x + 2 )( x – 5 )²

Therefore, ( x + 2) ( x² + 25) – 10x ( x + 2 ) = ( x + 2 )( x – 5 )²

Question 11: Factorize 2a² + 2√6 ab + 3b²

Solution:

2a² + 2√6 ab + 3b²

Above expression can be written as ( √2a )² + 2 × √2a × √3b + ( √3b)²

As we know, ( p + q ) ² = p² + q² + 2pq

Here p = √2a and q = √3b

= (√2a + √3b )²

Therefore, 2a² + 2√6 ab + 3b² = (√2a + √3b )²

Question 12: Factorize (a – b + c)² + (b – c + a) ² + 2(a – b + c) (b – c + a)

Solution:

(a – b + c)² + ( b – c + a) ² + 2(a – b + c) (b – c + a)

{Because p² + q² + 2pq = (p + q) ²}

Here p = a – b + c and q = b – c + a

= [a – b + c + b- c + a]²

= (2a)²

= 4a²

Question 13: Factorize a² + b² + 2( ab+bc+ca )

Solution:

a² + b² + 2ab + 2bc + 2ca

As we know, p² + q² + 2pq = (p + q) ²

We get,

= ( a+b)² + 2bc + 2ca

= ( a+b)² + 2c( b + a )

Or ( a+b)² + 2c( a + b )

Take ( a + b ) as a common factor;

= ( a + b )( a + b + 2c )

Therefore, a² + b² + 2ab + 2bc + 2ca = ( a + b )( a + b + 2c )

Question 14: Factorize 4(x-y) ² – 12(x – y)(x + y) + 9(x + y)²

Solution :

Consider ( x – y ) = p, ( x + y ) = q

= 4p² – 12pq + 9q²

Expanding the middle term, -12 = -6 -6 also 4× 9=-6 × -6

= 4p² – 6pq – 6pq + 9q²

=2p( 2p – 3q ) -3q( 2p – 3q )

= ( 2p – 3q ) ( 2p – 3q )

= ( 2p – 3q )²

Substituting back p = x – y and q = x + y;

= [2( x-y ) – 3( x+y)]² = [ 2x – 2y – 3x – 3y ] ²

= (2x-3x-2y-3y ) ²

=[ -x – 5y] ²

=[( -1 )( x+5y )] ²

=( x+5y ) ²

Therefore, 4(x-y) ² – 12(x – y)(x + y) + 9(x + y)² = ( x+5y )²

Question 15: Factorize a² – b² + 2bc – c²

Solution :

a² – b² + 2bc – c²

As we know, ( a-b)² = a² + b² – 2ab

= a² – ( b – c) ²

Also we know, a² – b² = ( a+b)( a-b)

= ( a + b – c )( a – ( b – c ))

= ( a + b – c )( a – b + c )

Therefore, a² – b² + 2bc – c² =( a + b – c )( a – b + c )

Question 16: Factorize a² + 2ab + b² – c²

Solution:

a² + 2ab + b² – c²

= (a² + 2ab + b²) – c²

= (a + b)² – (c) ²

We know, a² – b² = (a + b) (a – b)

= (a + b + c) (a + b – c)

Therefore a² + 2ab + b² – c² = (a + b + c) (a + b – c)

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