题目内容

计算:
(1)
4
a-2
+
3
2-a
+
1
a2-a-2

(2)
a-4
a2-9
(1+
10a-19
a2-8a+16
)÷
1
a-3

(3)已知:x2+x-1=0,求x(1-
2
1-x
)÷(x+1)-
x(x2-1)
x2-2x+1
的值.
(1)原式=
4
a-2
-
3
a-2
+
1
(a-2)(a+1)

=
1
a-2
+
1
(a-2)(a+1)

=
a+1
(a-2)(a+1)
+
1
(a-2)(a+1)

=
a+2
(a-2)(a+1)


(2)原式=
a-4
(a+3)(a-3)
•(
a2-8a+16
(a-4)2
+
10a-19
(a-4)2
)•(a-3)
=
a-4
(a+3)(a-3)
a2+2a-3
(a-4)2
•(a-3)
=
a-1
a-4


(3)原式=
x(x+1)
x-1
1
x+1
-
x(x+1)
x-1

=
-x2
x-1

∵x2+x-1=0,
∴x-1=-x2,原式=
-x2
-x2
=1
练习册系列答案
相关题目
20、计算:
①3b-2a2-(-4a+a2+3b)+a2
②(4m3n-6m2n2+12mn3)÷2mn.
3、计算:①(16a3-8a2-4a)÷4a=
4a2-2a-1
;②0.252008×42009=
4
计算:
(1)
4
a-2
+
3
2-a
+
1
a2-a-2

(2)
a-4
a2-9
(1+
10a-19
a2-8a+16
)÷
1
a-3

(3)已知:x2+x-1=0,求x(1-
2
1-x
)÷(x+1)-
x(x2-1)
x2-2x+1
的值.
计算:
(1)
4a
-
5a
1
a
+
a

(2)(
3
-2
2
)×
6

违法和不良信息举报电话:027-86699610 举报邮箱:58377363@163.com

精英家教网