莆田一中2021届高三模拟考数学参考答案1-4:BBAC5-8:CCBD9.BD10.CD11.ABC12.ACD13.118.514.解析:法一:由题意.法二:直接算15.等16.17.解:(Ⅰ)中,,由正弦定理得;.............................................................................1分所以,................................................................2分化简得;...................................................................................................3分又,所以,所以;......................................................................................................................4分又,所以;............................................................................................................................5分(Ⅱ)中,,,由余弦定理得,所以;............................................................................................................................7分所以,........................................................................8分求得;.............................................................................................9分所以.....................................................................10分18.解:(1)选①Sn=n(n+),可得a1=S1=1+,............................................................1分解得a1=2,...................................................................................................................................2分即Sn=n2+n,则a1+a2=6,.............................................................................................................3分即a2=4,d=a2-a1=2,....................................................................................................................4分所以an=2+2(n-1)=2n;............................................................................................................5分选②S2=a3,a4=a1a2,可得2a1+d=a1+2d,a1+3d=a1(a1+d),..............................................2分解得a1=d=2,..............................................................................................................................4分所以an=2+2(n-1)=2n;..........................................................................................................5分选③a1=2,a4是a2,a8的等比中项,可得a42=a2a8,..............................................................1分即(2+3d)2=(2+d)(2+7d),...........................................................................................2分解得d=2(d=0舍去),............................................................................................................4分5
所以an=2+2(n-1)=2n;.........................................................................................................5分(2)法一:由(1)知,................................................................................6分则,两边同时乘于得...........................................................................8分两式相减得...................................................................11分即或()......................................................12分法二:由(1)知,.........................................................................................6分则,则....................................................................................................7分令,则..................................................................................................8分两式相减得............................................................................10分得...................................................................................................11分即或()......................................................12分5
21解析:(1)由,..................................................2分解得,,............................................................3分故椭圆C的方程为:....................................................4分(2)设点,直线PA,PB的斜率分别为,,则......................................................................................................................6分又,令,得,..........................................................................7分5
同理:,令,得...................................................................8分由椭圆的对称性,知定点在x轴上,设圆过定点,则,...................................................................................................10分解得或..........................................................................................................................11分故以MN为直径的圆,过x轴上两个不同的定点(1,0)和(7,0)........................12分法二:由(1)知A(-2,0),B(2,0),设点P(x0,y0)设直线AP的方程为,令得,,即....................................................................................................5分联立消去x,得:得:,即................................................................................................6分代入,得即P......................................................................................................................7分所以直线BP:,.......................................................................................................8分令得,,即...........................................................................................9分设Q(x,y)是以MN为直径的椭圆上的任一点,则,即.........................................10分令y=0,得x=1或7......................................................................................................................................11分故以MN为直径的圆,过x轴上两个不同的定点(1,0)和(7,0)........................12分5
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