发布时间 : 星期二 文章黑龙江省大庆实验中学2018-2019学年高二下学期期末考试数学(理)试题及答案word更新完毕开始阅读7dcf011f5122aaea998fcc22bcd126fff6055d13
设x1?x2,原不等式等价为f?x2??f?x1??h?x2??h?x1?,
即f?x2??h?x2??f?x1??h?x1?,F(x)?f(x)?h(x),F(x)在[3,4]递减,
exaex(x?1)1ex(x?1)?0在[3,4]恒成立,a???x, 又F(x)?alnx?x?1?,F(x)??1?2exxexex1ex(x?1)?x,3?x?4, 令G(x)??exx22?1e?x?x?11?1?3?32x?1?1x?1?1∴G'(x)???1?e??1?1?e???1?e?1?0 ????2??2exx?4?x???x2?4????22G(x)在[3,4]递增,即有a?e2?3,即amax?e2?3;
33(3)由(1)知当x?(0,1)时,g'(x)?0,函数g(x)单调递增; 当x?(0,e]时,g'(x)?0,函数g(x)单调递减. 又因为g(0)?0,g(1)?1,g(e)?e2?e?0,所以,函数g(x)在(0,e]上的值域为(0,1].
由题意,当f(x)取(0,1]的每一个值时,在区间(0,e]上存在t,t(t?t)与该值对应.
1212a??2时,f(x)?b(x?1)?2lnx,f'(x)?b?2bx?2?, xx当b?0时,f'(x)??22?0,f(x)单调递减,不合题意,当b?0时,x?时,f'(x)?0, xb2?e, b由题意,f(x)在区间(0,e]上不单调,所以,0?当x?(0,]时,f'(x)?0,当(,??)时,f'(x)?0
2b2b所以,当x?(0,e]时,f(x)min?f?2?2??2?a?2ln, ?b?b?2?2??2?b?2ln?0, ?bb??由题意,只需满足以下三个条件:①f(x)min?f?②f (e)?b(e?1)?2?1,
③?x0?(0,)使f(x0)?1.
2b∵f()?f(1)?0,,所以①成立由x?0时②f(x)?b(x?1)?2lnx???,所以③满足,
2b2?0??e?3?b所以当b满足?即b?时,符合题意,
e?1?b?3?e?1?故b的取值范围为??3?,???. ?e?1?