A. B.± C.± D.32 查看更多

 

題目列表(包括答案和解析)

a、b為實(shí)數(shù)且b-a=2,若多項(xiàng)式函數(shù)f(x)在區(qū)間(a,b)上的導(dǎo)數(shù)f′(x)滿足f′(x)<0,則一定成立的關(guān)系式是( 。

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.過點(diǎn)作圓的弦,其中弦長(zhǎng)為整數(shù)的共有  ( 。    

A.16條          B. 17條        C. 32條            D. 34條

 

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a,b是正實(shí)數(shù),則(2a+)2+(2b+)2的最小值是

[  ]
A.

8

B.

4

C.

32

D.

16

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(A)(不等式選做題)不等式|x+1|-|x-2|>2的解集為
(
3
2
,+∞)
(
3
2
,+∞)

(B)(幾何證明選做題)如圖,已知Rt△ABC的兩條直角邊AC,BC的長(zhǎng)分別為6cm,8cm,以AC為直徑的圓與AB交于點(diǎn)D,則AD=
18
5
(或3.6)
18
5
(或3.6)
cm.
(C)(坐標(biāo)系與參數(shù)方程選做題)圓C的參數(shù)方程
x=1+cosα
y=1-sinα
(α為參數(shù)),以原點(diǎn)為極點(diǎn),x軸正半軸為極軸建立極坐標(biāo)系,直線l的極坐標(biāo)方程為ρsinθ=1,則直線l與圓C的交點(diǎn)的直角坐標(biāo)是
(0,1),或(2,1)
(0,1),或(2,1)

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設(shè)a,b∈R,a≠2,若定義在(-b,b)內(nèi)的函數(shù)f(x)=lg
1+ax
1+2x
是奇函數(shù),則a+b的取值范圍是(  )

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一、選擇題

1.B  2.A  3.C  4.B  5.B  6.D  7.C  8.C  9.D  10.A

二、填空題

11.  12.  13.-6  14.;  15.①②③④

三、解答題

16.解:⑴

                                                                                                                  3分

=1+1+2cos2x=2+2cos2x=4cos2x

∵x∈[0,]  ∴cosx≥0

=2cosx                                                                                                     6分

⑵ f (x)=cos2x-?2cosx?sinx=cos2x-sin2x

      =2cos(2x+)                                                                                            8分

∵0≤x≤  ∴  ∴  ∴

,當(dāng)x=時(shí)取得該最小值

 ,當(dāng)x=0時(shí)取得該最大值                                                                    12分

17.由題意知,在甲盒中放一球概率為時(shí),在乙盒放一球的概率為                  2分

①當(dāng)n=3時(shí),x=3,y=0的概率為                                                 4分

②當(dāng)n=4時(shí),x+y=4,又|x-y|=ξ,所以ξ的可能取值為0,2,4

(i)當(dāng)ξ=0時(shí),有x=2,y=2,它的概率為                                      4分

(ii)當(dāng)ξ=2時(shí),有x=3,y=1或x=1,y=3

   它的概率為

(iii)當(dāng)ξ=4時(shí),有x=4,y=0或x=0,y=4

   它的概率為

故ξ的分布列為

ξ

0

2

4

10分

p

∴ξ的數(shù)學(xué)期望Eξ=                                                             12分

18.解:⑴證明:在正方形ABCD中,AB⊥BC

又∵PB⊥BC  ∴BC⊥面PAB  ∴BC⊥PA

同理CD⊥PA  ∴PA⊥面ABCD    4分

⑵在AD上取一點(diǎn)O使AO=AD,連接E,O,

則EO∥PA,∴EO⊥面ABCD 過點(diǎn)O做

OH⊥AC交AC于H點(diǎn),連接EH,則EH⊥AC,

從而∠EHO為二面角E-AC-D的平面角                                                             6分

在△PAD中,EO=AP=在△AHO中∠HAO=45°,

∴HO=AOsin45°=,∴tan∠EHO=

∴二面角E-AC-D等于arctan                                                                    8分

⑶當(dāng)F為BC中點(diǎn)時(shí),PF∥面EAC,理由如下:

∵AD∥2FC,∴,又由已知有,∴PF∥ES

∵PF面EAC,EC面EAC  ∴PF∥面EAC,

即當(dāng)F為BC中點(diǎn)時(shí),PF∥面EAC                                                                         12分

19.⑴據(jù)題意,得                                                4分

                                                                          5分

⑵由⑴得:當(dāng)5<x<7時(shí),y=39(2x3-39x2+252x-535)

當(dāng)5<x<6時(shí),y'>0,y=f (x)為增函數(shù)

當(dāng)6<x<7時(shí),y'<0,y=f (x)為減函數(shù)

∴當(dāng)x=6時(shí),f (x)極大值=f (16)=195                                                                      8分

當(dāng)7≤x<8時(shí),y=6(33-x)∈(150,156]

當(dāng)x≥8時(shí),y=-10(x-9)2+160

當(dāng)x=9時(shí),y極大=160                                                                                           10分

綜上知:當(dāng)x=6時(shí),總利潤(rùn)最大,最大值為195                                                     12分

20.⑴設(shè)M(x0,y0),則N(x0,-y0),P(x,y)


 

  
  

   

    
    

    
(x0≠-1且x0≠3)
BN:y=  、
聯(lián)立①②  ∴                                                                                        4分
∵點(diǎn)M(xo,yo)在圓⊙O上,代入圓的方程:
整理:y2=-2(x+1)  (x<-1)                                                                             6分
⑵由
設(shè)S(x1、y1),T(x2、y2),ST的中點(diǎn)坐標(biāo)(x0、y0)
則x1+x2=-(3+)
x1x2                                                                                                           8分
中點(diǎn)到直線的距離
故圓與x=-總相切.                                                                                         13分
⑵另解:∵y2=-2(x+1)知焦點(diǎn)坐標(biāo)為(-,0)                                                   2分
頂點(diǎn)(-1,0),故準(zhǔn)線x=-                                                                               4分
設(shè)S、T到準(zhǔn)線的距離為d1,d2,ST的中點(diǎn)O',O'到x=-的距離為
又由拋物線定義:d1+d2=|ST|,∴
故以ST為直徑的圓與x=-總相切                                                                      8分
21.解:⑴由,得
,有
    =
    =
又b12a1=2,                                                                               3分
                                                                                    4分
⑵證法1:(數(shù)學(xué)歸納法)
1°,當(dāng)n=1時(shí),a1=1,滿足不等式                                                    5分
2°,假設(shè)n=k(k≥1,k∈N*)時(shí)結(jié)論成立
,那么
                                                                                                       7分
由1°,2°可知,n∈N*,都有成立                                                           9分
⑵證法2:由⑴知:                (可參照給分)
,,∴
  ∵
  ∴
當(dāng)n=1時(shí),,綜上
⑵證法3:
∴{an}為遞減數(shù)列
當(dāng)n=1時(shí),an取最大值  ∴an≤1
由⑴中知  
綜上可知
欲證:即證                                                                             11分
即ln(1+Tn)-Tn<0,構(gòu)造函數(shù)f (x)=ln(1+x)-x
當(dāng)x>0時(shí),f ' (x)<0
∴函數(shù)y=f (x)在(0,+∞)內(nèi)遞減
∴f (x)在[0,+∞)內(nèi)的最大值為f (0)=0
∴當(dāng)x≥0時(shí),ln(1+x)-x≤0
又∵Tn>0,∴l(xiāng)n(1+Tn)-Tn<0
∴不等式成立                                                                                           14分
 
		

	
	

		



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