题目内容
计算.
(1)a+b+
;
(2)(x+1-
)÷
;
(3)(2+
-
)÷(a-
),其中a=2.
(1)a+b+
| 2b2 |
| a-b |
(2)(x+1-
| 3 |
| x-1 |
| x+2 |
| 2x-2 |
(3)(2+
| 1 |
| a-1 |
| 1 |
| a+1 |
| a |
| 1-a2 |
分析:(1)根据分式运算法则进行通分,在化简的过程中要注意运算顺序和分式的化简.化简的最后结果分子、分母要进行约分,注意运算的结果要化成最简分式或整式.
(2)首先将括号里面进行通分,进而化简即可;
(3)首先将括号里面进行通分,进而化简求值即可.
(2)首先将括号里面进行通分,进而化简即可;
(3)首先将括号里面进行通分,进而化简求值即可.
解答:解:(1)a+b+
=
+
=
;
(2)(x+1-
)÷
=[
-
]×
=
×
=2x-4;
(3)(2+
-
)÷(a-
),
=[
+
-
]÷[
+
]
=
×
=
,
把a=2代入原式得:原式=
=1.
| 2b2 |
| a-b |
=
| (a+b)(a-b) |
| a-b |
| 2b2 |
| a-b |
=
| a2+b2 |
| a-b |
(2)(x+1-
| 3 |
| x-1 |
| x+2 |
| 2x-2 |
=[
| (x+1)(x-1) |
| x-1 |
| 3 |
| x-1 |
| 2(x-1) |
| x+2 |
=
| (x+2)(x-2) |
| x-1 |
| 2(x-1) |
| x+2 |
=2x-4;
(3)(2+
| 1 |
| a-1 |
| 1 |
| a+1 |
| a |
| 1-a2 |
=[
| 2(a+1)(a-1) |
| (a+1)(a-1) |
| (a+1) |
| (a-1)(a+1) |
| a-1 |
| (a+1)(a-1) |
| a(a+1)(a-1) |
| (a+1)(a-1) |
| a |
| (a+1)(a-1) |
=
| 2a2 |
| (a+1)(a-1) |
| (a+1)(a-1) |
| a3 |
=
| 2 |
| a |
把a=2代入原式得:原式=
| 2 |
| a |
点评:此题主要考查了分式的化简求值,正确根据分式的性质进行化简得出是解题关键.
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