题目内容
已知:如图,在
△ABC中,∠ABC=90°,以AB上的点O为圆心,OB的长为半径的圆与AB交于点E,与AC切于点D.
【小题1】求证:BC=CD;
【小题2】求证:∠ADE=∠ABD;
【小题3】设AD=2,AE=1,求⊙O直径的长.
p;【答案】
【小题1】∵∠ABC=90°,
∴OB⊥BC.················································ 1分
∵OB是⊙O的半径,
∴CB为⊙O的切线.····································· 2分
又∵CD切⊙O于点D,
∴BC=CD;
【小题2】∵BE是⊙O的直径,
∴∠BDE=90°.
∴∠ADE+∠CDB =90°.···························· 4分
又∵∠ABC=90°,
∴∠ABD+∠CBD=90°.·························································· 5分
由(1)得BC=CD,∴∠CDB =∠CBD.
∴∠ADE=∠ABD; 6分
【小题3】由(2)得,∠ADE=∠ABD,∠A=∠A.
∴△ADE∽△ABD.································································· 7分
∴
=
.······································································· 8分
∴
=
,∴BE=3,·························································· 9分
∴所求⊙O的直径长为3. 10分解析:
p;【解析】略
【小题1】∵∠ABC=90°,
∴OB⊥BC.················································ 1分
∵OB是⊙O的半径,
∴CB为⊙O的切线.····································· 2分又∵CD切⊙O于点D,
∴BC=CD;
【小题2】∵BE是⊙O的直径,
∴∠BDE=90°.
∴∠ADE+∠CDB =90°.···························· 4分
又∵∠ABC=90°,
∴∠ABD+∠CBD=90°.·························································· 5分
由(1)得BC=CD,∴∠CDB =∠CBD.
∴∠ADE=∠ABD; 6分
【小题3】由(2)得,∠ADE=∠ABD,∠A=∠A.
∴△ADE∽△ABD.································································· 7分
∴
=.······································································· 8分∴
=,∴BE=3,·························································· 9分∴所求⊙O的直径长为3. 10分解析:
p;【解析】略
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