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1、全国新课标卷理科数学第1页2014 年高考理科数学试题全国大纲卷注意事项:1.本试卷分第卷选择题和第卷非选择题两部分。第卷1 至 3 页,第卷3 至 5 页。2.答题前,考生务必将自己的、准考证号填写在本试题相应的位置。3.全部答案在答题卡上完成,答在本试题上无效。4.考试结束后,将本试题和答题卡一并交回。第卷一、选择题:本大题共12 个小题,每题 5 分,共 60 分.在每题给出的四个选项中,只有一项是符合题目要求的.1.设103izi,则 z 的共轭复数为A13iB1 3iC13iD1 3i2.设集合2|340Mx xx,|05Nxx,则 MNA(0,4B0,4)C 1,0)D(1,03.
2、设0sin 33a,0cos55b,0tan35c,则A abcB bcaC cbaD cab4.假设向量,a b满足:|1a,()aba,(2)abb,则|bA2 B2C1 D225.有 6 名男医生、5 名女医生,从中选出2 名男医生、1 名女医生组成一个医疗小组,则不同的选法共有A60 种 B70种 C75 种 D150 种6.已知椭圆 C:22221xyab(0)ab的左、右焦点为1F、2F,离心率为33,过2F的直线 l 交C 于 A、B 两点,假设1AF B的周长为4 3,则 C 的方程为A22132xyB2213xyC221128xyD221124xy7.曲线1xyxe在点 1,
3、1处切线的斜率等于A2e Be C2 D18正四棱锥的顶点都在同一球面上,假设该棱锥的高为4,底面边长为 2,则该球的外表积为全国新课标卷理科数学第2页A814B16C 9D2749.已知双曲线 C的离心率为 2,焦点为1F、2F,点 A 在 C 上,假设12|2|F AF A,则21cosAF FA14B13C24D2310.等比数列na中,452,5aa,则数列lgna的前 8 项和等于A6 B5 C4 D311.已知二面角l为060,AB,ABl,A 为垂足,CD,Cl,0135ACD,则异面直线 AB 与 CD 所成角的余弦值为A14B24C34D1212.函数()yfx的图象与函数(
4、)yg x的图象关于直线0 xy对称,则()yf x的反函数是A()yg xB()ygxC()yg xD()ygx第卷共 90 分二、填空题每题5分,总分值 20 分,将答案填在答题纸上13.8()xyyx的展开式中22x y的系数为.14.设 x、y 满足约束条件02321xyxyxy,则4zxy的最大值为.15直线1l和2l是圆222xy的两条切线,假设1l与2l的交点为 1,3,则1l与2l的夹角的正切值等于.16.假设函数()cos2sinf xxax在区间(,)62是减函数,则 a的取值范围是.三、解答题本大题共 6 小题,共 70 分.解答应写出文字说明、证明过程或演算步骤.17.
5、本小题总分值 10 分ABC的内角 A、B、C 的对边分别为 a、b、c,已知 3 cos2 cosaCcA,1tan3A,求 B.18.本小题总分值 12 分等差数列na的前 n 项和为nS,已知110a,2a为整数,且4nSS.文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码
6、:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC
7、10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 H
8、Y10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码
9、:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC
10、10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 H
11、Y10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码
12、:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3全国新课标卷理科数学第3页1求na的通项公式;2设11nnnba a,求数列nb的前 n 项和nT.19.本小题总分值12分如图,三棱柱111ABCA B C中,点1A在平面ABC 内的射影 D 在 AC 上,090ACB,11,2BCACCC.1
13、证明:11ACA B;2设直线1AA与平面11BCC B的距离为3,求二面角1AABC的大小.20.本小题总分值12分设每个工作日甲、乙、丙、丁4 人需使用某种设备的概率分别为0.6 0.5 0.5 0.4、,各人是否需使用设备相互独立.1求同一工作日至少3 人需使用设备的概率;2X 表示同一工作日需使用设备的人数,求X 的数学期望.21.本小题总分值12分已知抛物线 C:22(0)ypx p的焦点为 F,直线4y与 y 轴的交点为 P,与 C 的交点为 Q,且5|4QFPQ.1求 C 的方程;2过 F 的直线 l 与 C 相交于 A、B 两点,假设 AB 的垂直平分线l与 C 相较于 M、N
14、 两点,且 A、M、B、N 四点在同一圆上,求 l 的方程.22.本小题总分值12分函数()ln(1)(1)axf xxaxa.1讨论()f x的单调性;2设111,ln(1)nnaaa,证明:23+22nann.文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10
15、G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9
16、Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B1
17、0I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10
18、G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9
19、Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B1
20、0I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10
21、G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3全国新课标卷理科数学第4页2014 年高考理科数学试题全国大纲卷参考答案一、选择题:1.D 2.B 3.C 4.B 5.C 6.A 7.C 8.A 9.A 10.C 11.B 12.D 二、填空题:13.70 14.5 15.4316.(,2三、解答题:17.本小题
22、总分值 10 分解:由题设和正弦定理得3sincos2sincosACCA故3tancos2sinACC因为1tan3A,所以cos2sinCC即1tan2C 6 分所以tantan180()BACtan()ACtantantantan1ACAC 8 分1即135B10分18.本小题总分值 12 分解:由110a,2a为整数知,等差数列na的公差 d 为整数又4nSS,故450,0aa即1030,1040dd解得10532d因此3d数列na的通项公式为133nan6 分1111()(133)(103)3103133nbnnnn 8 分于是12.nnTbbb文档编码:CK2R5L10G6W8 H
23、Y10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码
24、:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC
25、10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 H
26、Y10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码
27、:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC
28、10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 H
29、Y10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码
30、:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3全国新课标卷理科数学第5页1111111()().()371047103133nn111()3 10310n10(103)nn.12分19.本小题总分值 12 分解法一:因为1A D平面1,ABC A D平面11AAC C,故平面11AAC C平面 ABC,又 BCAC,所以 BC平面11AAC C,3 分连结1AC,因为侧面11AAC C为菱形,故11ACAC由三垂线定理得11ACA B 5 分 BC平面11,AAC C BC平面11BCC B,故平面11AA C C平面11BCC B作11,A ECCE为垂足
31、,则1A E平面11BCC B又直线1/AA平面11BCC B,因而1A E为直线1AA与平面11BCC B的距离,13AE因为1AC为1ACC的平分线,故113ADAE 8 分作,DFAB F为垂足,连结1A F,由三垂线定理得1A FAB,故1A FD为二面角1AABC的平面角由22111ADAAAD得 D 为 AC 中点,1525ACBCDFAB,11tan15A DA FDDF所以二面角1AABC的大小为arctan15 12 分解法二:以 C 为坐标原点,射线CA 为x轴的正半轴,以 CB 的长为单位长,建立如下图的空间直角坐标系Cxyz,由题设知1A D与z轴平行,x轴在平面11A
32、AC C内文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J
33、1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5
34、L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F1
35、0R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J
36、1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5
37、L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F1
38、0R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J
39、1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3全国新课标卷理科数学第6页设1(,0,)A ac,由题设有2a,(2,0,0)A,(0,1,0)B,则(2,1,0)AB,(2,0,0)AC,1(2,0,)AAac,11(4,0,)ACACAAac,1(,1,)BAac 2 分由1|2AA得22(2)2ac,即2240aac于是221140ACBAaac,所以11ACA B 5 分设平面11BCC B的法向量(,)mx y z,则1,mCB mBB,即0m CB,10m BB因为(0,1,0)CB,11(2,0,)
40、BBAAac,故0y,且(2)0axcz令xc,则2za,(,0,2)mca,点 A到平面11BCC B的距离为22|2|cos,|(2)CA mcCAm CAcmca又依题设,A到平面11BCC B的距离为3,所以3c代入解得3a舍去或1a8 分于是1(1,0,3)AA设平面1ABA的法向量(,)np q r,则1,nAA nAB,即10n AA,0n AB,30pr且20pq,令3p,则2 3q,1r,(3,2 3,1)n,又(0,0,1)p为平面 ABC 的法向量,故1cos,|4n pn pnp所以二面角1AABC的大小为1arccos4 12 分20.本小题总分值 12 分解:记iA
41、表示事件:同一工作日乙、丙中恰有i 人需使用设备,0,1,2i,文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9
42、Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B1
43、0I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10
44、G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9
45、Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B1
46、0I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10
47、G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9
48、Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3全国新课标卷理科数学第7页B 表示事件:甲需使用设备,C 表示事件:丁需使用设备,D 表示事件:同一工作日至少3 人需使用设备122DAB CABAB C22()0.6,()0.4,()0.5,0,1,2iiP BP CP ACi 3 分所以122()()P DP AB CABAB C122()()()P AB CP ABP AB C122()()()()()()()()P AP BP CP AP BP AP B
49、P C0.316 分的可能取值为 0,1,2,3,4,其分布列为0(0)()PP BAC0()()()P BP AP C2(10.6)0.5(10.4)0.06001(1)()PP B ACB ACB A C001()()()()()()()()()P BP AP CP BP AP CP BP AP C2220.60.5(10.4)(10.6)0.50.4(10.6)0.5(10.4)0.25222(4)()()()()0.50.60.40.06PP AB CP AP BP C(3)()(4)0.25PP DP(2)1(0)(1)(3)(4)PPPPP1 0.060.25 0.250.060.
50、3810 分数学期望0(0)1(1)2(2)3(3)4(4)EXPPPPP0.2520.383 0.2540.06212 分21.本小题总分值 12 分解:设0(,4)Q x,代入22ypx得08xp文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY10E8J1B10I8 ZC10Y6F10R9Q3文档编码:CK2R5L10G6W8 HY