(1)如图所示,已知△ABC中,∠ABC、∠ACB的平分线相交于点O.试说明∠BOC=90°+12∠A;(2)如图所示,在△ABC中,BD、CD分别是∠ABC、∠ACB的外角平分线.试说明∠D=90°-12∠A;(3)如图所示,已知BD
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(1)如图所示,已知△ABC中,∠ABC、∠ACB的平分线相交于点O.试说明∠BOC=90°+12∠A;(2)如图所示,在△ABC中,BD、CD分别是∠ABC、∠ACB的外角平分线.试说明∠D=90°-12∠A;(3)如图所示,已知BD
(1)如图所示,已知△ABC中,∠ABC、∠ACB的平分线相交于点O.试说明∠BOC=90°+12∠A;
(2)如图所示,在△ABC中,BD、CD分别是∠ABC、∠ACB的外角平分线.试说明∠D=90°-12∠A;
(3)如图所示,已知BD为△ABC的角平分线,CD为△ABC外角∠ACE的平分线,且与BD交于点D,试说明∠A=2∠D.
图片
(1)如图所示,已知△ABC中,∠ABC、∠ACB的平分线相交于点O.试说明∠BOC=90°+12∠A;(2)如图所示,在△ABC中,BD、CD分别是∠ABC、∠ACB的外角平分线.试说明∠D=90°-12∠A;(3)如图所示,已知BD
1)∵BO,CO分别平分∠ABC,∠ACB
∴∠1=1/2∠ABC,
∠2=1/2∠ACB
∵∠O=180°-(∠1=∠2)
∴∠O=180°-1/2(∠ABC+∠ACB)
=180°-1/2(180°-∠A)
=180°-90°+1/2∠A
=90°+1/2∠A
则:∠O=90°+1/2∠A
2)∵BD,CD分别平分∠ABD,∠ACD
∴∠CBD=1/2∠ABC=∠A+∠ACB,
∠BCD=1/2∠ACB= ∠A+∠ABC
∵∠D=180°-(∠CBD-∠BDC)
∴∠D=180°-1/2(∠A+∠ACB+ ∠ABC+∠A)
=180°-1/2(180°+∠A)
=180°-90°-1/2∠A
=90°-1/2∠A
则:∠D=90°-1/2∠A
3)∵BD,CD分别平分∠ABC,∠ACE
∴∠ABC=2∠DBE,
∠ACE=2∠DCE=2(∠D+∠DBE)=2∠D+2∠DBE
∵∠A=∠ACE-∠ABC
∴∠A=2∠D+2∠DBE-2∠DBE
=2∠D
则:∠A=2∠D
(图发错了吧,我是按照你说的题画的图,再做的,自己看一看,有什么不对的地方,自己修改一下,自己记住这三个结论^-^)
,
结论可能是错误的
(1)∠BOC=180-∠OBC-∠OCB,∠A+∠ABC+∠ACB=180可以得到∠BOC=180-1/2(∠ABC+∠ACB)而∠ABC+∠ACB=180-∠A,∠BOC=180-1/2(180-∠A)=90+1/2∠A;
(2)图在哪?
(3)∠D+∠DBC+∠DCB=180,∠DCB=∠DCA+∠ACB,∠DCA=1/2∠ACE,∠ACE=∠ABC+∠BAC,∠DBC=1/...
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(1)∠BOC=180-∠OBC-∠OCB,∠A+∠ABC+∠ACB=180可以得到∠BOC=180-1/2(∠ABC+∠ACB)而∠ABC+∠ACB=180-∠A,∠BOC=180-1/2(180-∠A)=90+1/2∠A;
(2)图在哪?
(3)∠D+∠DBC+∠DCB=180,∠DCB=∠DCA+∠ACB,∠DCA=1/2∠ACE,∠ACE=∠ABC+∠BAC,∠DBC=1/2∠ABC,故∠D=180-∠DBC-∠DCB=180-(1/2∠ABC)-(∠DCA+∠ACB)=180-(1/2∠ABC)-(1/2∠ACE+∠ACB)=180-1/2∠ABC-1/2(∠ABC+∠BAC)-∠ACB=∠BAC-1/2∠BAC=1/2∠BAC,即∠D=1/2∠BAC,即∠A=2∠D;
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∵BO,CO分别平分∠ABC,∠ACB
∴∠1=1/2∠ABC,
∠2=1/2∠ACB
∵∠O=180°-(∠1=∠2)
∴∠O=180°-1/2(∠ABC+∠ACB)
=180°-1/2(180°-∠A)
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∵BO,CO分别平分∠ABC,∠ACB
∴∠1=1/2∠ABC,
∠2=1/2∠ACB
∵∠O=180°-(∠1=∠2)
∴∠O=180°-1/2(∠ABC+∠ACB)
=180°-1/2(180°-∠A)
=180°-90°+1/2∠A
=90°+1/2∠A
则:∠O=90°+1/2∠A
2)∵BD,CD分别平分∠ABD,∠ACD
∴∠CBD=1/2∠ABC=∠A+∠ACB,
∠BCD=1/2∠ACB= ∠A+∠ABC
∵∠D=180°-(∠CBD-∠BDC)
∴∠D=180°-1/2(∠A+∠ACB+ ∠ABC+∠A)
=180°-1/2(180°+∠A)
=180°-90°-1/2∠A
=90°-1/2∠A
则:∠D=90°-1/2∠A
3)∵BD,CD分别平分∠ABC,∠ACE
∴∠ABC=2∠DBE,
∠ACE=2∠DCE=2(∠D+∠DBE)=2∠D+2∠DBE
∵∠A=∠ACE-∠ABC
∴∠A=2∠D+2∠DBE-2∠DBE
=2∠D
则:∠A=2∠D
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