RD Sharma Class 9 Solutions Chapter 4 Exercise 4.5 (Updated for 2023)

RD Sharma Class 9 Solutions Chapter 4 Exercise 4.5: This exercise is about the sum and difference of cubes identity and conditional identity. RD Sharma Class 9 Maths PDF contains detailed answers prepared by the subject experts to help students study effectively, as well as prepare well to attempt all questions appearing in the exams.

Download the Free PDF of RD Sharma Class 9 Solutions Chapter 4 Exercise 4.5 and get good marks in your Class 9 Maths exams. You can always rely on this book as all the solutions are designed by subject matter experts in easy language with step-by-step explanations. To know more about the RD Sharma Solutions Class 9 Maths, read the whole blog. 

Download RD Sharma Class 9 Solutions Chapter 4 Exercise 4.5 PDF

RD Sharma Class 9 Solutions Chapter 4 Exercise 4.5

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Question 1.
Find the following products:
(i) (3x + 2y + 2z) (9x² + 4y² + 4z² – 6xy – 4yz – 6zx)
(ii) (4x -3y + 2z) (16x² + 9y²+ 4z² + 12xy + 6yz – 8zx)
(iii) (2a – 3b – 2c) (4a² + 9b² + 4c² + 6ab – 6bc + 4ca)
(iv) (3x -4y + 5z) (9x² + 16y² + 25z² + 12xy- 15zx + 20yz)
Solution:
(i) (3x + 2y + 2z) (9x² + 4y² + 4z² – 6xy – 4yz – 6zx)
= (3x + 2y + 2z) [(3x)² + (2y)² + (2z)² – 3x x 2y + 2y x 2z + 2z x 3x]
= (3x)³ + (2y)³  + (2z)³ – 3 x 3x x 2y x 2z
= 27x³ + 8y³ + 8Z³ – 36xyz
(ii) (4x – 3y + 2z) (16x² + 9y² + 4z² + 12xy + 6yz – 8zx)
= (4x -3y + 2z) [(4x)² + (-3y)² + (2z)² – 4x x (-3y + (3y) x (2z) – (2z x 4x)]
= (4x)³ + (-3y)³ + (2z)³ – 3 x 4x x (-3y) x (2z)
= 64x³ – 27y³ + 8z³ + 72xyz
(iii) (2a -3b- 2c) (4a² + 9b² + 4c² + 6ab – 6bc + 4ca)
= (2a -3b- 2c) [(2a)² + (3b)² + (2c)² – 2a x (-3b) – (-3b) x (-2c) – (-2c) x 2a]
= (2a)³ + (3b)³ + (-2c)³ -3x 2a x (-3 b) (-2c)
= 8a³ – 21b³ -8c³ – 36abc
(iv) (3x – 4y + 5z) (9x² + 16y² + 25z² + 12xy – 15zx + 20yz)
= [3x + (-4y) + 5z] [(3x)² + (-4y)² + (5z)² – 3x x (-4y) -(-4y) (5z) – 5z x 3x]
= (3x)³ + (-4y)³ + (5z)³ – 3 x 3x x (-4y) (5z)
= 27x³ – 64y³ + 125z³ + 180xyz

Question 2.

If x + y + z = 8 and xy + yz+ zx = 20, find the value of x³ + y³ + z³ – 3xyz.
Solution:
We know that
x³ + y³ + z³ – 3xyz = (x + y + z) (x² + y² + z² -xy -yz – zx)
Now, x + y + z = 8
Squaring, we get
(x + y + z)² = (8)²
x² + y² + z² + 2(xy + yz + zx) = 64
⇒ x² + y² + z² + 2 x 20 = 64
⇒  x² + y² + z² + 40 = 64
⇒  x² + y² + z² = 64 – 40 = 24
Now,
x³ + y³ + z³ – 3xyz = (x + y + z) [x² + y² + z² – (xy + yz + zx)]
= 8(24 – 20) = 8 x 4 = 32

Question 3.
If a +b + c = 9 and ab + bc + ca = 26, find the value of a³ + b³ + c³ – 3abc.
Solution:
a + b + c = 9, ab + be + ca = 26
Squaring, we get
(a + b + c)² = (9)²
a² + b² + c² + 2 (ab + be + ca) = 81
⇒  a² + b² + c² + 2 x 26 = 81
⇒ a² + b² + c² + 52 = 81
∴  a² + b² + c² = 81 – 52 = 29
Now, a³ + b³ + c³ – 3abc = (a + b + c) [(a² + b² + c² – (ab + bc + ca)]
= 9[29 – 26]
= 9 x 3 = 27

Question 4.
If a + b + c = 9, and a² + b² + c² = 35, find the value of a³ + b³ + c³ – 3abc.
Solution:
a + b + c = 9
Squaring, we get
(a + b + c)² = (9)²
⇒  a² + b² + c² + 2 (ab + be + ca) = 81
⇒  35 + 2(ab + bc + ca) = 81
2(ab + bc + ca) = 81 – 35 = 46
∴  ab + bc + ca = 462 = 23
Now, a³ + b³ + c³ – 3abc
= (a + b + c) [a² + b² + c² – (ab + bc + ca)]
= 9[35 – 23] = 9 x 12 = 108

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