2024届广西南宁市高三二模数学答案

2024-05-02 · 4页 · 308.3 K

2024南宁市初中毕业班适应性测试数学参考答案一、选择题(本大题共12小题,每小题3分,共36分)题号123456789101112答案ABACABDACBDC二、填空题(本大题共6小题,每小题2分,共12分)113.x(x-5);14.x≥3;15.;16.(0,6);17.25;18.nm2.3三、解答题(本大题共72分)19.(本题满分6分)解:原式=9(1)+2,·····························3分=-9+2,·····································4分=-7.········································6分20.(本题满分6分)解:原式=a22abb22abb2,·············2分=a24ab.································4分1当a=2,b=-时,41原式=2242(),·····················5分4=4-2=2.··········································6分21.(本题满分10分)(1)如图所示,CE即为所求;·····················5分(2)证明:∵在Rt△ABC中,∠ACB=90°,∠A=40°,∴∠B=90°-40°=50°.··················6分又点D为AB中点,∴CD=BD.·······························7分(第21题图)∴∠B=∠DCB=50°.·················8分∵CE平分∠BCD,1∴∠BCE=∠BCD=25°.···········9分2∴∠AEC=∠B+∠BCE=75°.········10分数学参考答案第1页(共4页){#{QQABAYCUggAoAIJAARhCQQ2QCAMQkBEACAoGhFAEIAAByAFABAA=}#}22.(本题满分10分)(1)m=40,a=12,n%=40%;·················3分(2)他的说法是错误的.····························4分理由如下:∵在参加测试的40名学生测试成绩中,排在最中间的两个分数都是85,8585∴中位数为85.·····················6分2∵84<85,∴有一半以上的同学成绩超过了84分.···7分∴小邕的说法是错误的.(3)解:500×(40%+30%)=350(人)············9分答:估计本年级中食品安全意识良好的学生人数为350人.····················10分23.(本题满分10分)(1)证明:∵AB∥DE,∴∠B=∠E.······································1分又BF=CE,∴BF+FC=CE+FC,即BC=EF.·············2分在△ABC和△DEF中ABDEBE,·····································3分BCEF∴△ABC≌△DEF(SAS).···················4分(2)解:连接AD交FC于点O,∵△ABC≌△DEF,∴AC=DF,∠ACB=∠DFE.················5分∴AC∥DF.∴四边形ACDF是平行四边形.(第23题图)又AF=FD,∴四边形ACDF是菱形.·······················6分1∴AD⊥CF,OF=OC=FC=2.2在Rt△ACO中∴AOAC2OC2(13)2223,··7分∴AD=2AO=6.··································8分11∴S四边形ACDF=FCAD6412.·····10分22数学参考答案第2页(共4页){#{QQABAYCUggAoAIJAARhCQQ2QCAMQkBEACAoGhFAEIAAByAFABAA=}#}24.(本题满分10分)(1)解:设团购群1《儒林外史》和《简爱》的单价分别是x元、y元;············1分3x2y12220由题意得:,·····3分4x3y288x48解得.···························5分y32答:团购群1《儒林外史》和《简爱》的单价分别是48元、32元.············6分(2)解:团购群1:(4832)150.784(0元),·······································7分团购群2:7015105(0元)1050-40393(0元),····8分∵840<930,·································9分∴选择团购群1购买更合算.············10分25.(本题满分10分)(1)证明:如图1,连接OC,·····················1分∵OA=OB,CA=CB,∴OC⊥AB.····································3分又OC为半径,∴AB是⊙O的切线.························4分(2)解:设半径为R,1在Rt△OCB中,∠OCB=90°,BC=AB=4,(第25题图1)22OB2OC2BC2,即R2R242,解得R=3,···································5分∴OB=OE+BE=5.··························6分方法一:如图2,过O作OM⊥EG于点M,又OA=OB,AC=BC,∴∠A=∠B.又OF=OE,∴∠F=∠OEF=∠BEG.∴△AFG∽△BEG.··························7分∴∠AGF=∠BGE=90°,(第25题图2)FGAGAF84.EGBGBE2∴FG=4EG,AG=4GB.∴AB=4GB+GB=8.8解得GB=.··································8分5222286∴EGBEBG2.·············································9分55618∴EFFGEG3EG3.················································10分55数学参考答案第3页(共4页){#{QQABAYCUggAoAIJAARhCQQ2QCAMQkBEACAoGhFAEIAAByAFABAA=}#}方法二:如图3,连接DE,ODOE3∵∠DOE=∠AOB,,OAOB5∴△DOE∽△AOB.·························7分DEOE3∴.ABOB524∴DE=.····································8分(第25题图3)5∵DF是⊙O直径,∴∠DEF=90°.·····························9分22222418∴EFDFDE6.··········································10分5526.(本题满分10分)(1)解:由题意可知,抛物线顶点为(2,2),经过B(0,1.2)2设抛物线的解析式为yax22···············································1分2将点B(0,1.2)代入,得1.2a022,1解得a.·············································································2分512∴抛物线的解析式为yx22.············································3分5(2)队伍排列时,最高的队员在正中间其位置的横坐标为2,其余同学按照从高到低的顺序在其两侧对称排列.身高为1.68与1.73的队员所在位置的横坐标分别为1.5与2.5,···············4分身高为1.60的队员所在位置的横坐标分别为1与3;∵1.8<2,∴身高最高的队员可以通过.·····························································5分1212由题意,把x1.5代入yx22中,得y1.5221.95.55∵1.95>1.73>1.68,∴可以通过.··················································································6分1212由题意,把x1代入yx22中,得y1221.8.55∵1.8>1.60,∴可以通过.··················································································7分综上所述,所有队员都可以通过.12(3)由题意,把y1.60代入yx22中,512则1.6x22.·····································································8分5解得+(舍去).分x122,x122···················································9∵22>0.5,∴最左边的跳绳队员与离他最近的甩绳队员之间距离的取值范围:22<x≤1.··············································································10分数学参考答案第4页(共4页){#{QQABAYCUggAoAIJAARhCQQ2QCAMQkBEACAoGhFAEIAAByAFABAA=}#}

VIP会员专享最低仅需0.2元/天

VIP会员免费下载,付费最高可省50%

开通VIP

导出为Word

图片预览模式

文字预览模式
版权说明:本文档由用户提供并上传,收益归属内容提供方,若内容存在侵权,请进行举报
预览说明:图片预览排版和原文档一致,但图片尺寸过小时会导致预览不清晰,文字预览已重新排版并隐藏图片
相关精选
查看更多
更多推荐