(8分)如圖,在△ABC中,AB=AC,點(diǎn)O為底邊上的中點(diǎn),以點(diǎn)O為圓心,1為半徑的半圓與邊AB相切于點(diǎn)D

 1.(1)判斷直線AC與⊙O的位置關(guān)系,并說(shuō)明理由;

 2.(2)當(dāng)∠A=60°時(shí),求圖中陰影部分的面積.

 

【答案】

 

1.解:(1)直線AC與⊙O相切.···················································································· 1分

理由是:

連接OD,過(guò)點(diǎn)OOEAC,垂足為點(diǎn)E

∵⊙O與邊AB相切于點(diǎn)D,

ODAB.·················································································································· 2分

AB=AC,點(diǎn)O為底邊上的中點(diǎn),

AO平分∠BAC············································································································· 3分

又∵ODAB,OEAC

OD= OE······················································································································· 4分

OE是⊙O的半徑.

又∵OEAC,∴直線AC與⊙O相切.··········································································· 5分

 

2.(2)∵AO平分∠BAC,且∠BAC=60°, ∴∠OAD=OAE=30°,

∴∠AOD=AOE=60°,

在Rt△OAD中,∵tan∠OAD = ,∴AD==,同理可得AE=

∴S四邊形ADOE =×OD×AD×2=×1××2=························································· 6分

又∵S扇形形ODE==π·························································································· 7分

∴S陰影= S四邊形ADOE -S扇形形ODE=-π.······································································· 8分

 

【解析】略

 

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