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Factorisation Using Algebraic Identities

Question 32 F...

Question

Question 32
Factorise the following:
(i) $1 - 64 a^{3} - 12 a + 48 a^{2}$

(ii) $8 p^{3} + \frac{12}{5} p^{2} + \frac{6}{25} p + \frac{1}{125}$

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Solution

(i)
$1 - 64 a^{3} - 12 a + 48 a^{2} = (1)^{3} - (4 a)^{3} - 3 \times 1^{2} \times 4 a + 3 \times 1 \times (4 a)^{2}$
$[U s i n g t h e i d e n t i t y (a - b)^{3} = a^{3} - b^{3} - 3 a^{2} b + 3 a b^{2}]$
$= (1 - 4 a)^{3} = (1 - 4 a) (1 - 4 a) (1 - 4 a)$

(ii)
$8 p^{3} + \frac{12}{5} p^{2} + \frac{6}{25} p + \frac{1}{125}$
$= (2 p)^{3} + 3 \times (2 p)^{2} \times \frac{1}{5} + 3 \times (2 p) \times {(\frac{1}{5})}^{2} + {(\frac{1}{5})}^{3}$
$[U s i n g t h e i d e n t i t y, (a + b)^{3} = a^{3} + b^{3} + 3 a^{2} b + 3 a b^{2}]$
= $(2 p + \frac{1}{5})^{3}$
$= (2 p + \frac{1}{5}) (2 p + \frac{1}{5}) (2 p + \frac{1}{5})$

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Similar questions

Q. Factorise the following:
(i)

1 - 64 a^{3} - 12 a + 48 a^{2}

8 p^{3} + \frac{12}{5} p^{2} + \frac{6}{25} p + \frac{1}{125}

Question 32
Factorise the following:
(i) $1 - 64 a^{3} - 12 a + 48 a^{2}$

(ii) $8 p^{3} + \frac{12}{5} p^{2} + \frac{6}{25} p + \frac{1}{125}$

Factorise the following :

8 p^{3} + \frac{12}{5} p^{2} + \frac{6}{25} p + \frac{1}{125}

Q. Factorise each of the following

8 p^{3} - \frac{12}{5} p^{2} + \frac{6}{25} p - \frac{1}{125}

{8 P}^{3} + \frac{12}{5} P^{2} + \frac{6}{25} P + \frac{1}{125}

P = 1

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Factorisation Using Algebraic Identities

Standard IX Mathematics

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