Math, asked by sarmaupasana3, 4 days ago

9(a³+b³+c³) > (a+b+c)³ prove it

Answers

Answered by River123

0

Answer:

(a+b+c)³-a³-b³-c³

=(a+b)³+3(a+b)²c+3(a+b)c²+c³-a³-b³-c³

=a³+3a²b+3ab²+b³+3(a²+2ab+b²)c+3ac²+3bc²+c³-a³-b³-c³

=3a²b+3ab²+3a²c+6abc+3b²c+3ac²+3bc²

=3(2abc+a²b+ab²+a²c+ac²+b²c+bc²)

3(a+b)(b+c)(c+a)

= 3 (ab + b² + ac + bc) (c + a)

=3(abc+b²c+ac²+bc²+a²b+ab²+a²c+abc)

=3(2abc+a²b+ab²+a²c+ac²+b²c+bc²)

∴, LHS=RHS (Proved)

Step-by-step explanation:

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