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$证明:(1)连接OA.$
$∵ DA×AC=DC×AB,∴\frac {DA}{DC}=\frac {AB}{AC}$
$∵ BC是⊙O的直径,$
$∴ ∠BAC=90°.$
$∵ EA⊥CD,$
$∴ ∠ADC=90°,$
$∴ ∠BAC=∠ADC,$
$∴ △ABC∽△DAC,$
$∴ ∠ACB=∠DCA.$
$∵ OA=OC,$
$∴ ∠OAC=∠ACB,$
$∴ ∠OAC=∠DCA,$
$∴ OA//CD,$
$∴ ∠OAE=∠CDE=90°,$
$∴ OA⊥DE.$
$又 ∵ OA为⊙O的半径,$
$∴ 直线EA是⊙O的切线$(更多请点击查看作业精灵详解)
$解:(1)由题意,分三种情况讨论:①{AC}^{2}=AB·BC$
$∴AC=\sqrt {6}(负值舍去)$
$②{AB}^{2}=AC·BC$
$∴AC=\frac 4 3$
$③{BC}^{2}=AB·AC$
$∴AC=\frac 9 2$
$综上所述,AC的长为\sqrt {6}或\frac 4 3或\frac 9 2$
$(2)∵AD//BC,$
$∴∠ACB=∠CAD,$
$又∵∠BAC=∠ADC,$
$∴△ABC\backsim △DCA,$
$∴\frac {BC}{CA}=\frac {CA}{AD},即CA^{2}=\ \text {BC}·AD,$
$∵AD//BC,$
$∴∠ADB=∠CBD,$
$∵BD平分∠ABC,$
$∴∠ABD=∠CBD,$
$∴∠ADB=∠ABD,$
$∴AB=AD,$
$∴CA^{2}=\ \text {BC}·AB,$
$∴△ABC是比例三角形.$(更多请点击查看作业精灵详解)
$解:(2) ∵ BC=BE,$
$∴ S_{△BAE}=S_{△ABC}= \frac {1}{2}\ \mathrm {S}_{△ACE}.$
$∵ OB=OA,$
$∴ ∠OBA=∠OAB.$
$∵ ∠BAC=90°,∠OAE=90°,$
$∴ ∠OBA +∠ACE=90°,∠OAB +∠BAE=90°,$
$∴ ∠ACE=∠BAE.$
$又 ∵ ∠E=∠E.$
$∴ △ACE∽△BAE$
$∴ \frac {S_{△ACE}}{S_{△BAE}} = \frac {AC²}{BA²} =2.$
$设BA²=x,则AC²=2x。$
$∴ 在Rt△BAC中,BC²=AC²+BA²=3x,$
$∴ \frac {AC²}{BC²} = \frac {2x}{3x} = \frac {2}{3} .$
$由(1),得△ABC∽△DAC,$
$∴ \frac {S_{△DAC}}{S_{△ABC}} = \frac {AC²}{BC²} = \frac {2}{3} ,$
$即 \frac {S_{△ACD}}{S_{△BAE}} = \frac {2}{3} ,$
$∴ S_{△ACD}= \frac {2}{3}S_{△BAE},$
$∴ m=\frac {2}{3}$
$解:(3)过点A作AH⊥BD于点H$
作业帮
$∵AD=AB,AH⊥BD$
$∴∠BHA=90°,BH=\frac 1 2BD$
$∵AD//BC$
$∴∠ADC=90°$
$∴∠BCD=180°-∠ADC=90°$
$∴∠BHA=∠BCD=90°$
$又∵∠ABH=∠DBC$
$∴△ABH∽△DBC$
$∴\frac {AB}{DB}=\frac {BH}{BC},即AB·BC=BH·DB$
$∴AB·BC=\frac 1 2{BD}^{2}$
$又∵AB·BC={AC}^{2}$
$∴\frac 1 2{BD}^{2}={AC}^{2}$
$∴\frac {BD}{AC}=\sqrt {2}$
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