分析:(1)(2)關(guān)鍵是化簡(jiǎn),然后把給定的值代入求值.
(3)先化簡(jiǎn),再根據(jù)不含x2項(xiàng),即x2項(xiàng)的系數(shù)為0,得關(guān)于m的方程,求解再代入多項(xiàng)式2m3-[3m3-(4m-5)+m]化簡(jiǎn)求值.
解答:解:(1)原式=2a2b+2b2a-[2a2b-2+3ab2+2]
=2a2b+2b2a-2a2b+2-3ab2-2
=-ab2
當(dāng)a=2,b=-2時(shí),原式=-2×(-2)2=-8.
(2)由題意知,A=(7a2-7ab)+2B
=(7a2-7ab)+2(-4a2+6ab+7)
=7a2-7ab-8a2+12ab+14
=-a2+5ab+14
∵|a+1|+(b-2)2=0,
∴a+1=0,b-2=0,即a=-1,b=2.
當(dāng)a=-1,b=2時(shí),原式=-1-10+14=3.
(3)(2mx2-x2+3x+1)-(5x2-4y2+3x)
=2mx2-x2+3x+1-5x2+4y2-3x
=(2m-6)x2+4y2+1
∵不含x2項(xiàng)
∴2m-6=0,解得m=3.
∴2m3-[3m3-(4m-5)+m]
=2m3-[3m3-4m+5+m]
=2m3-3m3+4m-5-m
=-m3+3m-5
當(dāng)m=3時(shí)
原式=-27+9-5=-23.
點(diǎn)評(píng):整式的混合運(yùn)算,主要考查了公式法、單項(xiàng)式與多項(xiàng)式相乘以及合并同類(lèi)項(xiàng)的知識(shí)點(diǎn).