1、北师大七年级下册数学 第一章 计算题专项练习(无答案)一、计算(2ab2c)2( 12 ab3c2) (an2)2(a3)2n+1 (2.5x3)2(4x3) (a2b3c4)(xa2b)3 2a5a2a3+(2a4)2a3 (a2)3+(a3)2a2a3 (x)3x2n1+x2n(x)2 (1)(a3)2(a2)3 (2)(a+2b)43(a2b) (a2b)3(ab)22(ab2)23; 2(xy)323(yx)3 12 (xy)25 (a)6a2 (x2)3(x2)2 (a2b)7(a2b)2(2ba)6 (23a2b3c)(12a3b3) (a3)2(a2)3 (xy)2(yx)3 (
2、8)2009( 18 )2010 (5a2b2c3)4(5a3bc)2 (2a2b)43ab2c3ab24b (2x3)(2x+3)(2x1)2 (2m+5)(3m1) (2x5y)(3xy) (x+y)(x22x3) (x+1)2+x(x2) (2m+n)2 (2mn)2: (2a+b)2(2ab)2 xm+15xm1(m是大于1的整数) (x)(x)6; (4)m3m4 (1)( 14 a 13 b)2 (x2+3y2)2; (a22b)2 (0.2x+0.5y)2 (xy+4)(x+y+4)(2x3y)2(y+3x)(3xy) (a2b+3)(a+2b3) ( 52 aa+1b2)2(
3、12 anb2)2( 15 ambn)2 5a4(a24)+(2a2)5(a)2(2a2)2 (ab)m+3(ba)2(ab)m(ba)5 a(a3b)+(a+b)2a(ab)a(a3)(a+7)(a7) (2m+n)(2mn)(m+2n)(m2n) (2m+np)(2mn+p) 2a2b(3b2c)(4ab3) (2x+y3z)25ab5( 34 a3b)( 23 ab3c) (2x2yz2)2 12 xy2z(xyz2)2 (pq)4(qp)3(pq)2 (2ax3)34(a2x4)3(ax)3 (4x+3y)(3y4x)(4x+3y)2 (2ab)(3a22abb2) (b+2)(b2)
4、(b2+4) 二、计算1、已知416m64m=421 , 求(m2)3(m3m2)的值 2.已知单项式9am+1bn+1与2a2m1b2n1的积与5a3b6是同类项,求m,n的值 3.(1)若xn=2,yn=3,求(x2y)2n的值 (2)若3a=6,9b=2,求32a4b+1的值 4.先化简,再求值: (1)(3m7)(3m+7)2m( 32 m1),其中m=3 (2)3xa23x(a3x)+a(9x23ax+a),其中x= 13 ,a= 12 5.若(xmx2n)3xmn与4x2为同类项,且2m+5n=7,求4m225n2的值 6.计算题 (1)已知2x=3,2y=5,求:2x2y的值 (
5、2)x2y+1=0,求:2x4y8的值 7.先化简再求值:(2a1)2+(2a1)(a+4),其中a=2 8.已知 M=2x25xy+6y2, N=7y2+4xy+4x2 ,求M2N,并求当x=1,y=2时,M2N的值 9.已知2a=3,2b=6,2c=12,求证:2b=a+c 32.已知:x+ 1x =3,求x2+ 1x2 的值 10.已知xy=5,xy=4,求x2+y2的值 11.已知m2+n26m+10n+34=0,求m+n 12.先化简,再求值:5x24x2(2x1)3x;其中x=3 13.先化简,再求值:5(3x2yxy2)4(xy2+3x2y)(2x3y2)+(2x2y2)1,其中x=2,y=3 14.如果m2m=1,求代数式(m1)2+(m+1)(m1)+2015的值 15.先化简,再求值:3(m+1)25(m+1)(m1)+2(m1)2,其中m=5
