题目内容
如图,
是⊙
的直径,
、
在⊙
上,连结
,过
作
∥
交
于
,交⊙
于
,交
于点
,且
.
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(1)判断直线
与⊙
的位置关系,并说明理由;
(2)若⊙
的半径为
,
,
,求
的长.
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(1)判断直线
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(2)若⊙
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(1)直线BP和⊙O相切,理由见解析;(2)BP的长为2.
试题分析:(1)连接BC,求出∠ACB=90°,根据PF∥AC,推出BC⊥PF,求出∠PBC+∠BPF=90°,求出∠PBC+∠ABC=90°,根据切线的判定推出即可;
(2)根据勾股定理求出BC,证△ABC和△BEP相似,得出比例式,即可求出BP.
试题解析:(1)直线BP和⊙O相切,
理由:连接BC,
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∵AB是⊙O直径,
∴∠ACB=90°,
∵PF∥AC,
∴BC⊥PF,
则∠PBC+∠BPF=90°,
∵∠BPF=∠ADC,∠ADC=∠ABC,
∴∠BPF=∠ABC,
∴∠PBC+∠ABC=90°,
即∠PBA=90°,
∴PB⊥AB,
∵AB是直径,
∴直线BP和⊙O相切;
(2)由已知,得∠ACB=90°,
∵AC=2,AB=2
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∴由勾股定理得:BC=4,
∵∠BPF=∠ADC,∠ADC=∠ABC,
∴∠BPF=∠ABC,
由(1),得∠ABP=∠ACB=90°,
∴△ACB∽△EBP,
∴
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解得BP=2,
即BP的长为2.
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