prove that (a+b+c)whole cube-acube-bcube-ccube=3(a+b)(b+c)(c+a). plzzz
Answers
Answered by
9
Heya mate.....
(a+b+c)³-a³-b³-c³
=(a+b)³+c³+3(a+b)c(a+b+c)-a³-b³-c³
[Using the formula, (a+b)³=a³+b³+3ab(a+b)]
=a³+b³+3ab(a+b)+3c(a+b)(a+b+c)-a³-b³
=3ab(a+b)+3c(a+b)(a+b+c)
=(a+b){3ab+3c(a+b+c)}
=3(a+b)(ab+ca+cb+c²)
=3(a+b){a(b+c)+c(b+c)}
=3(a+b)(b+c)(c+a)
(Proved)
@skb
(a+b+c)³-a³-b³-c³
=(a+b)³+c³+3(a+b)c(a+b+c)-a³-b³-c³
[Using the formula, (a+b)³=a³+b³+3ab(a+b)]
=a³+b³+3ab(a+b)+3c(a+b)(a+b+c)-a³-b³
=3ab(a+b)+3c(a+b)(a+b+c)
=(a+b){3ab+3c(a+b+c)}
=3(a+b)(ab+ca+cb+c²)
=3(a+b){a(b+c)+c(b+c)}
=3(a+b)(b+c)(c+a)
(Proved)
@skb
Answered by
5
Hence Proved
hope it helps..
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