)比较有难度(分式提升训练.分式章节综合训练(培优))3(m?1)(m?0.时,分式的值为例1:?m223m?m?24a?.没有意义,求要使分式例2.的值aa?31?1a2倍,下列分式的值如何变化?,例3.若的值扩大为原来的yx3yx?xyyx?⑶⑵⑴22y?xyyx?x?n322n?xx?8化简:例4._______?n2n?n?4xx?x16?4111计算:5.例???)(x?2)(x)(x?2)?xx(?1)3?(x1222z?x?yzxyxyz已知例6.3,求-4=-=0,20+8-的值.xzyz??2xy53b63?aab2223.??b?1|(5a|3a?0b)?.的值例7.已知求)?()(.(?)232ba?2b.a:课内练习yyx?x?220y=1.5x+3其中,?y?x?)][?(xyx33xx?b1?)2.的值是负数,则若分式b满足(21?b2>1D.bb1B<0.b≥C.<1bA.|y|?3的值.y,求3.如果分式0的值为23?y2?y).4.下列各分式运算结果正确的是(32324532bccbac10cb255a?②??①.c2bab4323aab1111?xx?11④?.?xy?).x?③3(?222xy3?x1?x1x?1?xD.③④.①②.②④A.①③CBb2a3a3?1??6.)等于(a22b2bab?a33a?2b2b?ab?B..DA.C.b2aa3b2212b?aba?.______.7.(1).______.(2)?????23m?3?mba?a?b9?mn2n?142n?2x6a?xb4;(2()是正整数)(8.化简:1是大于)(1的整数)nnnn?1?1n?2nxbx?x?22a倍,分式的值有什么变化?和都扩大为原来的59.把下列分式中的字母yxx9?2yx)21)((22y?3xyx?222210.???)?(4?x2?x)?x(x2()()x?x)(46111.有意义?为何值时,分式x1??x2x2?y2x?3xy?211,求分式12.的值.已知3??yxy?x?2yx22yx?0xyz?y?z?0,?yx??5z?0,x.,求满足的值13.如果且z,y,x22x?z22yxy?x2202y?3x?xy???0y?0?x.求,(,的值例2:已知)xyxy2x1x?.已知例4.,的值求421x?21x?11abb,a1ab???○○例5.若;实为数,且;求,:○312a?1bba?1?1?111?22?11?bax?x?3xx?1:例,求,6.已知2121.1x?xxx?1111212?○;;○○??312xx1?1xxxx?21212111bc1abcaca,b,???.例7.已知实数,且,为实数,5aba?c3?b?c4abc.求的值cabc?ab?2x1x,?;的值例7.求已知2421??xx71x?x?203a??a1?.求下列代数式的值例8.已知,241a?a?1142?a)(a?;○○;○31224aaa1110??b?ca???()则已知,8.222222222bab?c?ca?b?c?a?0B.1C.-1D.2A.a511b????(),则9.bbbaa?a1A.5B.7C.3D.32x?3ABA,B??为常数,那么10.,已知其中()的值为B?A2x1?xx?xA.-2B.2C.-4D.4BAx?32BA,??.其中,,11.求的值为常数已知BA4?21?x?2x2?xx?2x13??x.已知,求15.的值241?x?xx.求下列分式的值16.y5x?3xy?5113??)已知的值;(1,求yx3?xy?3yx1220??x15?x?=,则(2)已知2xbab?11a?34??=)已知,则3(ab?7a2b2a?b18.分式的计算:432??y?x32aa8?2?????4???(??9xy)???(1(2))??????22axyaa?2a4???????4562x????a?2)(3(4)2??x???2??2xxa?2??221?1x?2x?1x11ba?????????)6)(5(????12x?2x?x?baba????222b?abab?a?a2nmnn?????????2?1)(7()8????22a?ba?bm?nmmn????.22abb2x23x?2x??6x23??ba???))((9102b??2a2?xxx?42?1xa1bx?1????)(11(12)????????222xxa?bb?ax?a?bx????22xx?xx??2x111ab??????)(13(14)??221?x2x?2x?bba?a?ba???化简求值:19.224?abb?2aba?????2??1,b?a,求)已知的值;(1??222222a?babababa?b???m3nn5m?4n????.),求的值(2222mnn?nnmn?mn?abca?2c?a?b2bc2kka??0c??,??b和的值,求.20若(a?b)(b?c)(c?a)cabvv,则上下上,下山的平均速度为21.某人上山的平均速度为(按原路返回)12.的平均速度为
