CQb高三网

2018新疆高考文科数学试题及答案解析【Word真题试卷】

 CQb高三网

温馨提示：如有排版问题，请全屏查看，效果更佳！CQb高三网

绝密★启用前CQb高三网

2018年普通高等学校招生全国统一考试CQb高三网

文科数学CQb高三网

注意事项：CQb高三网

              1.答题前，考生先将自己的姓名、准考证号填写清楚，将条形码准确粘贴在条形码区域内。CQb高三网

2.选择题必须使用2B铅笔填涂；非选择题必须使用0.5毫米黑色字迹的签字笔书写，字体工整，笔迹清楚CQb高三网

3.请按照题号顺序在答题卡各题目的答题区域内作答，超出答题区域书写的答案无效；在草稿纸、试卷上答题无效CQb高三网

4.作图可先使用铅笔画出，确定后必须用黑色字迹的签字笔描黑。CQb高三网

5.保持卡面清洁，不要折叠、不要弄破、弄皱，不准使用涂改液、修正带、刮纸刀CQb高三网

 CQb高三网

一、选择题：本题共12小题，每小题5分，共60分。在每小题给出的四个选项中，只有一项是符合题目要求的。CQb高三网

 CQb高三网

一、选择题CQb高三网

1已知集合,则(   )CQb高三网

A.                            B.                            C.                            D.CQb高三网

2(   )CQb高三网

A.                            B.                            C.                            D.CQb高三网

3.中国古建筑借助榫卯将木构件连接起来,构建的突出部分叫榫头,凹进部分叫卯眼,图中木构件右边的小长方体是榫头,若如图摆放的木构件与某一带卯眼的木构件咬合成长方体,则咬合时带卯眼的木构件的俯视图可以是(   )CQb高三网

CQb高三网

A.              B.CQb高三网

C.              D.CQb高三网

4若,则(   )CQb高三网

A.                            B.                            C.              D.CQb高三网

5.若某群体中的成员只用只用现金支付的概率为0.45,既用现金支付也用非现金支付的概率为0.15,则不用现金支付的概率为(   ) CQb高三网

A.0.3        B.0.4        C.0.6        D.0.7CQb高三网

6函数的最小正周期为(   )CQb高三网

A.                            B.                            C.                            D.CQb高三网

7下列函数中,其图像与函数的图像关于直线对称的是(  )CQb高三网

A.                            B.CQb高三网

C.                            D.CQb高三网

8直线分别与轴,轴交于点两点,点在圆上则面积的取值范围是(  )CQb高三网

A.                                                        B.CQb高三网

C.                            D.CQb高三网

9函数的图像大致为(   )CQb高三网

A.              B.CQb高三网
C.              D.CQb高三网

10已知双曲线的离心率为,则点到的最近线的距离为(   )CQb高三网

A.                            B.                            C.                            D.CQb高三网

11的内角的对边分别为,若的面积为则(   )CQb高三网

A.                            B.                            C.                            D.CQb高三网

12设是同一个半径为的球的球面上四点,为等边三角形且其面积为,则三棱锥体积的最大值为(   )CQb高三网

A.                            B.                            C.                            D.CQb高三网

二、填空题CQb高三网

13已知,,,若,则         CQb高三网

14.某公司有大量客户,且不同年龄段客户对其服务的评价有较大差异,为了解客户的评价,该公司准备进行抽样调查,可供选择的抽样方法有简单随机抽样、分层抽样和系统抽样,则最合适的抽样方法是__________ CQb高三网

15若变量满足约束条件,则的最大值是        CQb高三网

16已知函数,,则        CQb高三网

三、解答题CQb高三网

17某工厂为提高生产效率,开展技术创新活动,提出了完成某项生产任务的两种新的生产方式,为比较两种生产方式的效率,选取名工人,将他们随机分成两组,每组人,第一组工人用第一种生产方式,第二组工人用第二种生产方式,根据工人完成生产任务的工作时间(单位:)绘制了如下茎叶图:CQb高三网

CQb高三网

1.根据茎叶图判断哪种生产方式的效率更高?并说明理由;CQb高三网

2.求名工人完成生产任务所需时间的中位数,并将完成生产任务所需时间超过和不超过的工人数填入下面的列联表:CQb高三网

3.根据中的列联表,能否有的把握认为两种生产方式的效率有差异?CQb高三网

附:CQb高三网

18等比数列中,CQb高三网

1.求的通项公式CQb高三网

2.记为的前项和,若,求CQb高三网

19如图,矩形所在平面与半圆弧所在平面垂直,是半圆弧上异于的点CQb高三网

CQb高三网

1.证明:平面平面CQb高三网

2.在线段上是否存在点,使得平面?说明理由CQb高三网

20已知斜率为的直线与椭圆交于两点,线段的中点为CQb高三网

1.证明:CQb高三网

2.设为的右焦点,为上一点,且,证明:CQb高三网

21已知函数CQb高三网

1.求函数在点处的切线方程CQb高三网

2.证明:当时,CQb高三网

22[选修4-4:坐标系与参数方程]CQb高三网

在平面直角坐标系中,的参数方程为(为参数),过点且倾斜角为的直线与交于两点CQb高三网

1.求的取值范围CQb高三网

2.求中点的轨迹的参数方程CQb高三网

23[选修4-5:不等式选讲]CQb高三网

设函数CQb高三网

1.画出的图像CQb高三网

CQb高三网

2.当时,,求的最小值CQb高三网

参考答案CQb高三网

 CQb高三网

一、选择题CQb高三网

答案： CCQb高三网

解析： 由得,,所以CQb高三网

答案： DCQb高三网

解析： 原式CQb高三网

3.答案：ACQb高三网

解析：CQb高三网

答案： BCQb高三网

解析： CQb高三网

5.答案：BCQb高三网

解析：设事件为只用现金支付,事件为只用非现金支付,则CQb高三网

因为,,所以CQb高三网

答案： CCQb高三网

解析： 由已知得CQb高三网

所以的最小正周期为,故选CQb高三网

答案： BCQb高三网

解析： 过点,关于的对称点还是,而只有选项过此点,故选CQb高三网

答案： ACQb高三网

解析： ∵直线分别于轴,轴交于两点CQb高三网

CQb高三网

CQb高三网

∵点在圆上CQb高三网

∴圆心为,设圆心到直线的距离为,则CQb高三网

CQb高三网

故点到直线的距离的范围是,则CQb高三网

CQb高三网

答案： DCQb高三网

解析： ,则解集为,单调递增;解集为,单调递减;故选CQb高三网

答案： DCQb高三网

解析： ∵CQb高三网

CQb高三网

∴双曲线的渐近线方程为CQb高三网

点到的渐近线的距离CQb高三网

故答案选CQb高三网

答案： CCQb高三网

解析： CQb高三网

CQb高三网

CQb高三网

答案： BCQb高三网

解析： 设的边长为,则,CQb高三网

,的高为的距离为CQb高三网

到面的距离最大为CQb高三网

,故选CQb高三网

二、填空题CQb高三网

答案： CQb高三网

解析： CQb高三网

又∵CQb高三网

故有CQb高三网

CQb高三网

14.答案：分层抽样CQb高三网

解析：CQb高三网

答案： 3CQb高三网

解析： 由图可知在直线和的交点处取得最大值CQb高三网

CQb高三网

答案： -2CQb高三网

解析： CQb高三网

CQb高三网

CQb高三网

CQb高三网

CQb高三网

CQb高三网

三、解答题CQb高三网

答案： 1.第二种的生产方式的效率最高; 2.CQb高三网

CQb高三网
3.有的把握认为两种生产方式的效率有差异CQb高三网

解析： 1.第二种生产效率更高,因为第二组多数数据集中在之间,第一组多数数据集中在之间,所以第一组完成任务的平均时间大于第二组,,,,则第二种生产方式的效率更高CQb高三网
2.中位数CQb高三网

CQb高三网
3.CQb高三网

有的把握认为两种生产方式的效率有差异CQb高三网

答案： 1.或CQb高三网
2.CQb高三网

解析： 1.∵CQb高三网

CQb高三网

CQb高三网

或CQb高三网
2.方法一:当时,CQb高三网

CQb高三网

CQb高三网

方法二:当时,CQb高三网

CQb高三网

∴无解CQb高三网

综上所述,CQb高三网

答案： 1.证明:∵矩形半圆面CQb高三网

∴半圆面CQb高三网

∴平面CQb高三网

∵在平面上CQb高三网

CQb高三网

又∵半圆CQb高三网

CQb高三网

∴平面CQb高三网

∵在平面上CQb高三网

∴平面平面CQb高三网
2.线段上存在点且为中点,证明如下:CQb高三网

连接交于点,连接CQb高三网

在矩形中,是的中点,是的中点CQb高三网

CQb高三网

∵在平面上,不在平面上CQb高三网

平面CQb高三网

CQb高三网

答案： 1.方法一:设,则CQb高三网

由方程组得CQb高三网

则CQb高三网

其中CQb高三网

CQb高三网

又∵点为椭圆内的点,且CQb高三网

当时,椭圆上的点的纵坐标CQb高三网

CQb高三网

CQb高三网

CQb高三网

方法二:设直线方程为CQb高三网

设,CQb高三网

联立消得CQb高三网

则CQb高三网

得①CQb高三网

且,CQb高三网

∵CQb高三网

且CQb高三网

且②CQb高三网

由①②得CQb高三网

或CQb高三网

∵CQb高三网

CQb高三网
2.CQb高三网

CQb高三网

∵CQb高三网

∴的坐标为CQb高三网

由于在椭圆上,CQb高三网

CQb高三网

CQb高三网

CQb高三网

直线方程为,即CQb高三网

CQb高三网

,CQb高三网

CQb高三网

,CQb高三网

CQb高三网

CQb高三网

答案： 1.由题意:得CQb高三网

CQb高三网

即曲线在点处的切线斜率为,CQb高三网

即CQb高三网
2.证明:由题意,原不等式等价于恒成立CQb高三网

令CQb高三网

CQb高三网

∵CQb高三网

恒成立CQb高三网

上单调递增CQb高三网

在上存在唯一CQb高三网

使,,即CQb高三网

且在上单调递减,在上单调递增CQb高三网

CQb高三网

又,CQb高三网

CQb高三网

∵CQb高三网

CQb高三网

CQb高三网

,得证CQb高三网
综上所述,当时,CQb高三网

答案： 1.CQb高三网
2. (为参数,)CQb高三网

解析： 1.设直线为,CQb高三网

由题意得直线与圆相交时,CQb高三网

,又∵CQb高三网

CQb高三网
2.设两点分别为,点坐标为CQb高三网

联立,化解得:CQb高三网

由韦达定理得CQb高三网

CQb高三网

CQb高三网

∴点得轨迹得参数方程为CQb高三网

(为参数,)CQb高三网

答案： 1. 图像:CQb高三网

CQb高三网
2.由中可得:,当时,取最小值CQb高三网

的最小值为CQb高三网

 CQb高三网

标签： 新疆高考文科数学试题及答案解析 高考数学试题