题目内容
(1)x-| x2-y2 |
| x |
| x2+y2 |
| x |
(2)
| 2x-1y-1(x+y) |
| x-1+y-1 |
分析:(1)先根据加法交换律确定先把含分式的两项相加,再进行计算;
(2)先把负整数指数化为正整数指数的倒数,再进行计算.
(2)先把负整数指数化为正整数指数的倒数,再进行计算.
解答:解:(1)原式=(x-y)-(
-
)
=(x-y)-
=
-
=
;
(2)原式=
=
=
•
=2.
故答案为
、2.
| x2-y2 |
| x |
| x2+y2 |
| x |
=(x-y)-
| -2y2 |
| x |
=
| x-y |
| x |
| -2y2 |
| x |
=
| x2-xy+2y2 |
| x |
(2)原式=
| ||||
|
=
| ||
|
=
| 2(x+y) |
| xy |
| xy |
| x+y |
=2.
故答案为
| x2-xy+2y2 |
| x |
点评:本题主要考查分式的混合运算,遇有负整数指数时,应先把负整数指数化为正整数指数的倒数,再进行计算.
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