题目内容
10、去掉下列各式中的括号
(1)(a+b)+(c+d)=
(2)(a-b)-(c-d)=
(3)-(a+b)+(c-d)=
(4)-(a-b)-(c-d)=
(5)(a+b)-3(c-d)=
(6)(a+b)+5(c-d)=
(7)(a-b)-2(c+d)=
(8)(a-b-1)-3(c-d+2)=
(9)0-(x-y-2)=
(10)a-[b-2a-(a+b)]=
(1)(a+b)+(c+d)=
a+b+c+d
(2)(a-b)-(c-d)=
a-b-c+d
(3)-(a+b)+(c-d)=
-a-b+c-d
(4)-(a-b)-(c-d)=
-a+b-c+d
(5)(a+b)-3(c-d)=
a+b-3c+3d
(6)(a+b)+5(c-d)=
a+b+5c-5d
(7)(a-b)-2(c+d)=
a-b-2c-2d
(8)(a-b-1)-3(c-d+2)=
a-b-3c+3d-7
(9)0-(x-y-2)=
-x+y+2
(10)a-[b-2a-(a+b)]=
4a
分析:根据负负得正,负正得负,正正得正可得出各个式子的答案.
解答:解:(1)原式=a+b+c+d;
(2)原式=a-b-c+d;
(3)原式=-a-b+c-d;
(4)原式=-a+b-c+d;
(5)原式=a+b-3c+3d;
(6)原式=a+b+5c-5d;
(7)原式=a-b-2c-2d;
(8)原式=a-b-3c+3d-7;
(9)原式=-x+y+2;
(10)原式=a-[b-2a-a-b]=4a.
(2)原式=a-b-c+d;
(3)原式=-a-b+c-d;
(4)原式=-a+b-c+d;
(5)原式=a+b-3c+3d;
(6)原式=a+b+5c-5d;
(7)原式=a-b-2c-2d;
(8)原式=a-b-3c+3d-7;
(9)原式=-x+y+2;
(10)原式=a-[b-2a-a-b]=4a.
点评:本题考查去括号的知识,难度不大,但很容易出错,同学们要注意细心运算,减少出错.
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