第15页

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$(8-2\sqrt{2})$


22.5°
$2-\sqrt{2}$
$ 证明:如图, 连接 O C 、 A C .$
$ \because \angle A O B=120^{\circ}, C 是 \widehat{A B} 的中点, $
$ \therefore \angle A O C=60^{\circ}.又 \because O A=O C,$
$ \therefore \triangle A O C 为等边三角形.\therefore A C=A O .$
$ \because O A \perp C E,$
$ \therefore \widehat{A E}=\widehat{A C}.$
$ \therefore A E=A C .$
$ \therefore A E=A O$



$ $
$解:(1)\because A B 是 \odot O 的直径, $
$ \therefore \angle A C B=90^{\circ} . $
$ \because \widehat{A C}=\widehat{B C}, $
$ \therefore \angle A=\angle A B C=45^{\circ} $
$ \because \angle A O D=130^{\circ}, $
$ \therefore \angle A C D=65^{\circ} . $
$ \because \angle B E C 是 \triangle A C E 的外角,$
$ \therefore \angle B E C=\angle A+\angle A C D=110^{\circ}$


$(2) \because B F 平分 \angle A B D,$
$\therefore \angle E B F=\angle D B F.$
$\because \widehat{A C}=\widehat{B C},\therefore \angle A B C=\angle C D B.$
$又 \because \angle C F B=\angle D B F+\angle F D B,$
$\ \angle C B F=\angle A B C+\angle E B F,$
$\therefore \angle C B F=\angle C F B .$
$\therefore C F=B C $
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