发布时间 : 星期一 文章(优辅资源)重庆市高三第三次诊断性考试数学(理)试题Word版含答案更新完毕开始阅读91a8739a86868762caaedd3383c4bb4cf7ecb7b5
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AB?2,则D?0,0,0?,A10,3,0,C0,0,3,B??1,0,0?,C1?1,3,3,故CA1?0,3,????????3?,CC???1,3,0?,CB???1,0,?3?,设面ACC的法向量111n1??x1,y1,z1?,
??3y1?3z1?0?n1?则有????x1?3y1?0?3,1,1,同理得:面BCC1的法向量n2???3,1,?1,
?设所求二面角为?,则cos??n1n2n1n2?43,故sin??. 55?c2x2y2?e???1; a2??20.解:(1)由题意有:?63?c?3?(2)由对称性,猜测该定点为O?0,0?,设该切线方程为y?kx?b,
则有d?bk2?1?2?b2?2k2?2,
?y?kx?b???2k2?1?x2?4kbx?2b2?6?0, 联立方程有:?x2y2?1??3?6OAOB?x1x2?y1y2??k2?1?x1x2?kb?x1?x2??b2?12k2?3b?12?6k2?6??0,
所以OA?OB,即原点以在AB为直径的圆上.
1ax2?ax?111?1?x????a?21.解:(1)f??x??1?2??, 0xxx2ax0则有:f?x0??x0?1?alnx0?x0?1?lnx0?x0?1?0, x0 全优好卷
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令h?x??lnx?x?1?h??x??1?1?0?x?1, x则h?x?在?0,1?上单调递增,在?1,???上单调递减, 又因为h?1??0,所以x0?1?a??1;
(2)令l?x??x?12?alnx?,则原命题等价于l?x??0恒成立, xex2?ax?112x?ax?1?0,a?x?又l??x??,设, 000x0x2则l?x?在?0,x0?上单减,在?x0,???上单增,
故只需l?x0??0,l?x0??x0?1?1?2??x0??lnx0?, x0?x0?e令m?x??x?1?1?21????x??lnx??m??x????1?2?lnx,所以m?x?在?0,1?上单调递x?x?ex??增,在?1,???上单调递减,又m???m?e??0,∴x0??,e?,即a???e,e??. eeee?1????1????1?1??22.解:(1)?cos???sin??1?x?y?1,?sin??8cos??y?8x;
22?2t?x??2(2)考虑直线方程x?y?1,则其参数方程为?(t为参数),
?y?1?2t??2?2?2121?t?8?t?t?52t?1?0, 代入曲线方程有:????222??则有MP?MQ?t1?t2?102. 2 全优好卷
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?3x?3,x?323.解:(1)f?x??x?3?2x??结合函数图像有:x??0,???;
x?3,x?3?(2)由题意知f??2??0?a?2或a??6,
经检验,两种情况均符合题意,所以a?2或a??6.
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