化简
(1)3a2-2a+4a2-7a;????????????????
(2)8a-a3+a2+4a3-a2-7a-6;
(3)2(2a-3b)+3(2b-3a);???????
(4)(-2ab+3a)-(2a-b)+6ab;
(5)a2-[-4ab+(ab-a2)]-2ab;?? ??
(6)a2-[(ab-a2)+4ab]-ab.
网友回答
解:(1)原式=3a2+4a2-2a-7a=7a2-9a;
(2)原式=-a3+4a3+a2-a2+8a-7a-6
=3a3+a-6;
(3)原式=4a-6b+6b-9a=-5a;
(4)原式=-2ab+3a-2a+b+6ab
=4ab+a+b;
(5)原式=a2-[-4ab+ab-a2]-2ab
=a2-4ab-ab+a2-2ab
=2a2+ab;
(6)原式=a2-[ab-a2+4ab]-ab
=a2-ab+a2-4ab-ab
=a2-5ab.
解析分析:(1)合并同类项即可求解;
(2)合并同类项即可求解;
(3)首先去括号,然后合并同类项即可求解;
(4)首先去括号时首先去小括号,然后去中括号,最后合并同类项即可求解;
(5)首先去括号时首先去小括号,然后去中括号,最后合并同类项即可求解.
点评:本题考查了整式的加减,解决此类题目的关键是熟记去括号法则,及熟练运用合并同类项的法则,其是各地中考的常考点.注意去括号法则为:--得+,-+得-,++得+,+-得-.