b?面AA1B1B?a//b a?面ABC?b//面ABC b?面A1BC 面ABC?面A1BC?BC?b//BC?b?面AA1B1B ?BC?平面AA1B1B
19、(12分)证法一?a?b?2ab?2(a?b)?(a?b)2222?a?b222b?(a?)22
?(a?1)?(b?2)222?(
a?1?b?22)?(5)?222254?a?1?b?22?254?a?b?3?252a?b?192证法二:令a?1?x b?2?y?a?1?x2
2b?2?y?P(x,y)满足 x?0 的区域,
y?0 x?y?5
目标函数Z=a?b?x2?y2?3,由线性规划可求x2?y2 的最小值为
252?Z?252?3?192
20、(13分)(1)g'(x)??x?x?ax?12令x2?x?a?0???1?4a?0 g'(x)?0两 x2??1?1?4a2根为x1与x2且x1?x2 x1??1?1?4a2 a?0时x1??1,x2?0
?当a?0时g(x)在(-1,x2)上递增,在(x2,??)递减
n?2n)?ln(1?1)?ln(1?1)?????ln(1?1)?(2)原命题等价于证明ln(1?1123n
方法一用数学归纳法证明
方法二由(1)知2ln(1?x)?x?2ln2?122121?ln(x?1)?1x?(ln2?)44
211ln(1?)??令x?1得n4n1n2?ln2?14
1221111ln(1?1)?ln(1?)?ln(1?)?????ln(1?)?(1?123n4?132?142?????1n2)?(ln2?1)n41?(1?411?2?12?3?13?411?????(n-1)?(ln2?)n )n41211?1(2?)?(ln2?)n?4n4?(ln2?1)n 46
只需证ln2?
34314?12即可,即ln2?3?ln2?ln44424?ln416
?lne4?ln4e?ln311332.7?ln419.68 ?ln2?4?2?(ln2?4)n?n?12?n?22
?111ln(1?1)?ln(1?)?ln(1?)?????ln(1?)?123nn?2n2
(1?
?11)(1?12)(1?13)....(1?1nn?2)?e21、(14分)(1)证明:an?1?can?1?can?1?1?c(an?1)
a?1时,{an-1}等比数列。a1?1?a?1?an?1?(a?1)cn?1?an?(a?1)cn?1?1
n11n?11n?b?n() ()?1??()?1(2)由(1)的an??1 n2222由错位相减法得Sn(3)Cn?4??2?5nn?22n
(?4)?1nn
dn?25?16n(16?1)(16?4)?25?16n2nn(16)?3?16?41162?116325?16(16)nn2?116n2516n
25?(1?())161611n1?Tn?d1?d2?????dn?25(16???????)?1?116?5(1?3116n)?53
阜阳一中高三第二次月考数学答案(理科)
一、选择题(共10小题,每小题5分,每小题只有一个正确答案)
1
2
3
4
5
6
7
8
9 0
B
A
B
A
C
B
C
C
B
B 1
二、填空题:(共5小题,每小题5分)
7
11 3 12. 32 13. 三、解答题:
,??) 15. [1,??) 2 14. (1216、(12分)(1)f(x)?2sinxcosx?2cos3[k??8?,k???]82x?2sin(2x??4)?1的增区间是
K?Z
(2)a?b?(2sinx?cosx,?cosx)
c?(2,1)?(a?b)//c?2sin所以sinx?cosx??2cosx?tanx??12 由于x为第二象限角
x?55
cosx??255?(a?b)?c?2(2sinx?cosx)?3cosx??565
17、(12分)?函数f(x)为奇函数,且在[?1,1]上为增函数,
f(?1)??1?2f(1)?1f(0)?0?f(x)在[?1,1]上的最大值为f(1).若
?2at?1?f(1)max?1?t2f(x)?t?2at?1?t2?2at?0
. 令?(x)?t2?2at?(?2t)a?t2看成一条直线 a?[?1,1]上恒成立,??(1)?0
且?(?1)?0 ?t??2或t=0或t?2 故t的范围(??,?2]?{0}?[2,??) 18、(12分)(1)连BC1 在?A1BC1中,M、N分别为线段A1B、A1C1的中点
?MN//BC1 BC1?平面BB1CC1 故MN//平面BCC1B1
(2)
?ABC?A1B1C1为直三棱柱,
?BB1?面A B?面BB1C1C?面ABC又面A1BC?面A1B1BA
方法一: 取ABA1面上一点P作PR?AB PQ?A1B.?PR?面ABB1A1 又平面A1BC?面A1ABB1且交线为AB?PR?面ABC?PR?BC 同理PQ?BC ?BC?平面AA1B1B
方法二:过C作CS?A1B CT?AB?面ABC?面AA1B1B 面ABC?面AA1B1B?AB ?CT?面AA1B1B 同理
CS?面AA1B1B?CS//CT?CS与CT重合为CB?BC?平面AA1B1B
方法三:在面ABC内,作a?AB,在面A1BC中作b?A1B
?面ABC?面AA1B1B 面ABC?面AA1B1B?AB?a?面AA1B1B 同理
8
b?面AA1B1B?a//b a?面ABC?b//面ABC b?面A1BC 面ABC?面A1BC?BC?b//BC?b?面AA1B1B ?BC?平面AA1B1B
19、(12分)证法一?a?b?2ab?2(a?b)?(a?b)2222?a?b222b?(a?)22
?(a?1)?(b?2)222?(
a?1?b?22)?(5)?222254?a?1?b?22?254?a?b?3?252a?b?192证法二:令a?1?x b?2?y?a?1?x2
2b?2?y?P(x,y)满足 x?0 的区域,
y?0 x?y?5
目标函数Z=a?b?x2?y2?3,由线性规划可求x2?y2 的最小值为
252?Z?252?3?192
20、(13分)(1)g'(x)??x?x?ax?12令x2?x?a?0???1?4a?0 g'(x)?0两 x2??1?1?4a2根为x1与x2且x1?x2 x1??1?1?4a2 a?0时x1??1,x2?0
?当a?0时g(x)在(-1,x2)上递增,在(x2,??)递减
n?2n)?ln(1?1)?ln(1?1)?????ln(1?1)?(2)原命题等价于证明ln(1?1123n
方法一用数学归纳法证明
方法二由(1)知2ln(1?x)?x?2ln2?122121?ln(x?1)?1x?(ln2?)44
211ln(1?)??令x?1得n4n1n2?ln2?14
1221111ln(1?1)?ln(1?)?ln(1?)?????ln(1?)?(1?123n4?132?142?????1n2)?(ln2?1)n41?(1?411?2?12?3?13?411?????(n-1)?(ln2?)n )n41211?1(2?)?(ln2?)n?4n4?(ln2?1)n 49
只需证ln2?
34314?12即可,即ln2?3?ln2?ln44424?ln416
?lne4?ln4e?ln311332.7?ln419.68 ?ln2?4?2?(ln2?4)n?n?12?n?22
?111ln(1?1)?ln(1?)?ln(1?)?????ln(1?)?123nn?2n2
(1?
?11)(1?12)(1?13)....(1?1nn?2)?e21、(14分)(1)证明:an?1?can?1?can?1?1?c(an?1)
a?1时,{an-1}等比数列。a1?1?a?1?an?1?(a?1)cn?1?an?(a?1)cn?1?1
n11n?11n?b?n() ()?1??()?1(2)由(1)的an??1 n2222由错位相减法得Sn(3)Cn?4??2?5nn?22n
(?4)?1nn
dn?25?16n(16?1)(16?4)?25?16n2nn(16)?3?16?41162?116325?16(16)nn2?116n2516n
25?(1?())161611n1?Tn?d1?d2?????dn?25(16???????)?1?116?5(1?3116n)?53
10