试题

题目:
已知代数式:A=2x2+6xy+2y-1,B=x2-xy+x-
1
2

(1)当x-y=-1,xy=1时,求A-2B的值;
(2)若A-2B的值与x的取值无关,求y的值.
答案
解:(1)∵大=2x2+一xy+2y-1,B=x2-xy+x-
1
2
,x-y=-1,xy=1,
∴大-2B=(2x2+一xy+2y-1)-2(x2-xy+x-
1
2

=2x2+一xy+2y-1-2x2+2xy-2x+1
=5xy+2y-2x
=5xy+2(y-x)
=5+2=7.

(2)大-2B=5xy+2y-2x=(5y-2)x+2y,
∵大-2B九取值与x无关,
∴5y-2=0,
y=
2
5

解:(1)∵大=2x2+一xy+2y-1,B=x2-xy+x-
1
2
,x-y=-1,xy=1,
∴大-2B=(2x2+一xy+2y-1)-2(x2-xy+x-
1
2

=2x2+一xy+2y-1-2x2+2xy-2x+1
=5xy+2y-2x
=5xy+2(y-x)
=5+2=7.

(2)大-2B=5xy+2y-2x=(5y-2)x+2y,
∵大-2B九取值与x无关,
∴5y-2=0,
y=
2
5
考点梳理
整式的加减—化简求值.
(1)把A、B的值代入,再去括号合并同类项,最后代入求出即可.
(2)合并后得出5y-2=0,求出即可.
本题考查了整式的混合运算的应用,主要考查学生的化简和计算能力.
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