已知a+b+c=0,求a(1/b+1/c)+b(1/a)+c(1/a+1/b)的值
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解:a﹙1/b+1/c﹚+b﹙1/a+1/c﹚+c﹙1/a+1/b﹚
=a﹙b+c﹚/bc+b﹙a+c﹚/ac+c﹙a+b﹚/ab
=﹣a²/bc-b²/ac-c²/ab
=﹣﹙a³+b³+c³﹚/abc
=﹣[a³+b³-﹙a+b﹚³]/abc
=﹣[a³+b³-a³-b³-3a²b-3ab²]/abc
=3ab﹙a+b﹚/abc
=3﹙a+b﹚/c
=﹣3c/c
=﹣3.
=a﹙b+c﹚/bc+b﹙a+c﹚/ac+c﹙a+b﹚/ab
=﹣a²/bc-b²/ac-c²/ab
=﹣﹙a³+b³+c³﹚/abc
=﹣[a³+b³-﹙a+b﹚³]/abc
=﹣[a³+b³-a³-b³-3a²b-3ab²]/abc
=3ab﹙a+b﹚/abc
=3﹙a+b﹚/c
=﹣3c/c
=﹣3.
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