山东省烟台德州东营2024年高考诊断性测试 数学答案

2024-03-15 · U1 上传 · 4页 · 220.4 K

2024高考诊断测试数学参考答案及评分标准一、选择题ACBCBDAA二、选择题9.ABD10.BCD11.BC三、填空题59512.413.10,10+14.[,]242四、解答题215.解:(1)f'(x)=2ax+1−,···································2分x1直线xy+2+1=0的斜率k=−,2由题意知f'(2)=2,···································4分1即4a+1−1=2,所以a=.····································5分2(2)f(x)的定义域为(0,+).···································6分1因为fx()0,所以b−x2−x+2lnx.21设g(x)=−x2−x+2lnx,x(0,+),则bg()x.························8分2max2−x2−x+2(−x+1)(x+2)g'(x)=−x−1+==···················9分xxx当x(0,1)时,g'(x)0,所以g(x)在(0,1)单调递增,当x(1,+)时,g'(x)0,所以g(x)在(1,+)单调递减,···············11分3所以g(x)=g(1)=−.max23所以b−.·······························13分216.解:(1)因为AB⊥AC,AB==33AC,1所以=ACB60,OA==BC3.············································1分2因为AB=3,AD=2DB,所以DB=1.在DBO中,=DBO30,,OB=3,由余弦定理OD2=12+(3)2−213cos30=1,所以OD=1.·········3分在ADO中,,AD=2,AO=3,由勾股定理,AO⊥OD.·····4分因为AO1⊥平面ABC,OD平面,所以AO1⊥OD.·····················································5分数学参考答案(第1页,共4页){#{QQABSYKEogCoAAAAAQgCEwEoCkGQkAGCAKoOAAAIMAAAyQFABCA=}#}因为AOAO1=O,所以OD⊥平面AOA1.······································6分因为AA1平面,所以AA1⊥OD;·····································7分(2)由(1)可知,OA,,ODOA1两两垂直,以O为坐标原点,方向分别为x,,yz轴正方向,建立如图所示的空间直角坐标系O−xyz.······8分因为AA1=23,AO=3,所以AO1=3.·············9分33则A(3,0,0),A(0,0,3),B(−,,0).···········10分12233333可得BA=−(,,3),BA=−(,,0),12222设m=(,,)xyz为平面ABA1的一个法向量,33x−y+30z=22则,取x=3,则y=3,z=1,333xy−=022故m=(3,3,1),·····························12分由题意可知,n=(0,1,0)为平面AOA1的一个法向量,·······················13分mn3313因为cosmn,===,|mn|||1313313所以二面角B−−AAO的余弦值为.·······························15分11317.解:(1)两人得分之和大于100分可分为甲得40分、乙得70分,甲得分、乙得40分,甲得分、乙得分三种情况,所以得分大于100分的概率1121411141217p=++=.··························4分5332533253324515111(2)抢答环节任意一题甲得15分的概率p=+=.············7分212243(3)X的可能取值为2,3,4,5.12因为甲任意一题得分的概率为,所以任意一题乙得分的概率为.·····8分33111214PX(=2)=()2=,PXC(=3)=1=,39233327121228PXC(=4)=1()2+()4=,333338112121232PXCC(=5)=1()3+3()3=.···················12分4433333381所以的分布列为2345142832P9278181··································13分数学参考答案(第2页,共4页){#{QQABSYKEogCoAAAAAQgCEwEoCkGQkAGCAKoOAAAIMAAAyQFABCA=}#}142832326所以EX()=2+3+4+5=.·····················15分927818181c18.解:(1)由题意知,a=2,=5,又因为c2=+a2b2,···················2分a解得b=4.xy22所以,双曲线C的方程为−=1.·············································3分416设直线l的方程为x=+my3,xy22−=122联立416,消x可得,(4m−1)y+24my+20=0.···············4分x=+my3不妨设P(x1,y1),Q(x2,y2),1−24m20则m,且yy+=,yy=.·························5分21241m2−1241m2−yyyy所以12127分kkAPAQ==2·····················x1+2x2+2my1y2+5m(y1+y2)+254=−.·····························9分51(2)设直线AP的方程为y=+k(x2),则直线DM:y=−(x−3),ky=+k(x2)5k联立1,解得y=,·····································11分yx=−(−3)Mk2+1k4−100k用−替换上式中的k可得y=.·······························13分5kN25k2+16253125k2故SS=||yy=·································15分124MN(kk22++1)(2516)3125=.1625k2++41k2161625因为25kk22+225=40,当且仅当k=时,“=”成立,kk22531253125所以SS,故SS的最大值为.·························17分1281128119.解:(1)由题意可得yt=−1cos,||OB==BMt,所以x=|OB|−sint=t−sint,································2分数学参考答案(第3页,共4页){#{QQABSYKEogCoAAAAAQgCEwEoCkGQkAGCAKoOAAAIMAAAyQFABCA=}#}所以x=−tsint,yt=−1cos.································4分(2)证明:由复合函数求导公式yt=yxxt,yxxtytsint所以yx===.··········································7分xttx1−costsint所以tan=,1−cost2cos22因为1+cos2=2cos2==sin2++cos2tan2122(1−cost)2===1−costy=,sint0()2+12−2cost1−cost1+cos2所以为定值1.·········································10分y0t(3)由题意,F(t)=(1−cost)22+sint=2−2cost=2|sin|.··········13分2tt因为0,sin022t所以Ft()=2sin,2t所以F(t)=−4cos+c(c为常数),······································15分2F(2)−F(0)=(−4cos+c)−(−4cos0+c)=8,所以OE的长度为8.·································17分数学参考答案(第4页,共4页){#{QQABSYKEogCoAAAAAQgCEwEoCkGQkAGCAKoOAAAIMAAAyQFABCA=}#}

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