2APBP证明过程如下:12
设AC的中点为D,RtAPD中,1在AP1故AP1BP2
aADb同理BP22si
Bsi
APD2si
A1
baabR2CQ22si
A2si
B2si
A2si
B
15(1)由题意得2ak2ak1ak1ak,即bk1
11bk,q22212k22,lima2k1a1b1;三、由a2k1a1b1b2b2k2a1b11k323212a2kb1b2b2k1a1b112k1a1,lima2kb1a1k323222因为S存在,limaklima2k1lima2ka1b10,则a1b1kkk33341k1所以S2k1a2k1b1b3b2k3a2k113441k4故S2kb1b3b2k11,SlimSklimS2k1limS2kkkk343
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