(本題滿分9分)如圖所示,△ABC內(nèi)接于⊙O,AB是⊙O的直徑,點D在⊙O
上,過點C的切線交AD的延長線于點E,且AE⊥CE,連接CD.
(1)求證:DC=BC;
(2)若AB=5,AC=4,求tan∠DCE的值.
(1)證明:連接OC················································································· 1分
∵OA=OC
∴∠OAC=∠OCA
∵CE是⊙O的切線
∴∠OCE=90° ·············································· 2分
∵AE⊥CE
∴∠AEC=∠OCE=90°
∴OC∥AE ·················································· 3分
∴∠OCA=∠CAD ∴∠CAD=∠BAC
∴
∴DC=BC ··························································································· 4分
(2)∵AB是⊙O的直徑 ∴∠ACB=90°
∴·························································· 5分
∵∠CAE=∠BAC ∠AEC=∠ACB=90°
∴△ACE∽△ABC······················································································ 6分
∴ ∴ ······················································ 7分
∵DC=BC=3
∴····················································· 8分
∴-----------9分 (其它解法參考得分)
解析:略
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