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信息发布者:
A
D
$-\frac{8x^{3}}{y^{3}}$
$\frac{2}{x + 1}$
解:原式$=(x + 1)(x - 1)\cdot\frac{1}{2(x + 1)}=\frac{x - 1}{2}.$
当$x = 3$时,原式$=\frac{3 - 1}{2}=1.$

$解:原式=-\frac {12y}{x^2}$

$ \begin{aligned} 解:原式&=\frac {a(a+b)}{a-b}×\frac {a-b}{ab} \\ &=\frac{a+b}{b} \\ \end{aligned}$
$ \begin{aligned} 解:原式&=\frac {2}{(x+1)(x-1)}×\frac {(x-1)(x+2)}{2(2+x)} \\ &=\frac{1}{x+1} \\ \end{aligned}$
$ \begin{aligned}解:原式&=\frac {2(x+y)}{5a^2b}•\frac {10ab^2}{(x+y)(x-y)} \\ &=\frac{4b}{a(x-y)} \\ \end{aligned}$
$ \begin{aligned}解:原式&=\frac {x+3}{(x-2)^2}×\frac {(x-2)^2}{x(x+3)} \\ &=\frac 1x \\ \end{aligned}$
$ \begin{aligned}解:原式&=\frac {(a-1)^2}{a-1}×\frac {1}{a(a-1)} \\ &=\frac{1}{a} \\ \end{aligned}$
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