大师作文网AB=AC∠cbd=30°∠bcd=20°
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/16 03:10:53
∵AB=AC,∠A=30°,∴∠ABC=∠ACB=75°,∵AB的垂直平分线交AC于D,∴AD=BD,∴∠A=∠ABD=30°,∴∠BDC=60°,∴∠CBD=180°-75°-60°=45°.故填4
c上取be=ba连de然后你自己找角的关系从而找到相等的边
过点C作CE∥AB,交BD于E,如右图所示,设AC=x,∵∠ABC=90,AB=1,AC=x,∴BC=x2−1,∴CE=BC•tan30°=33×x2−1,∵CE∥AB,∴△DCE∽△DAB,∴DC:
∵AB=AD∴∠ABD=∠ADB∵∠ADB=∠C+∠CBD∴∠ABD=∠C+∠CBD∴∠ABC=∠ABD+∠CBD=2∠CBD+∠C已知∠ABC=∠C+30°∴2∠CBD+∠C=∠C+30°即∠CBD
AB=AD∠ABD=∠ADB∠ABD+∠ADB+∠A=180°=>∠ABD=(180°-∠A)/2∠ABC=∠C+30°∠ABC+∠C+∠A=180°∠ABC+(∠ABC-30°)+∠A=180°=>
∵∠ACB=90,∠CBD=30∴CD=BC/√3∵AC=BC∴CD=AC/√3∴AD=AC-CD=AC-AC/√3=(1-√3/3)AC∴AC/CD=[1-√3/3)AC]/(AC/√3)=√3-1
以A为圆心,AB为半径画圆∵AB=AC=AD∴B、C、D都在圆A上∴∠CAD是弧CD对的圆心角,∠CBD是弧CD对的圆周角∴∠CBD=1/2∠CAD=38°
∵AB=AC,∠A=30°∴∠ABC=∠C=1/2(180-30)=75∵AB的垂直平分线交AC于D∴AD=BD∴∠A=ABD=30∴∠CBD=∠ABC-ABD=75-30=45º.
/>设∠DBC=x因为AD=AB所以∠ADB=∠ABD又因为AB=AC所以∠ABC=∠ACB=∠ABD+x由三角形内角和关系知∠DAC+∠ADB=∠DBC+∠ACB所以76°+∠ADB=76°+∠AB
设DC=X∵在△BCD中,∠CBD=30°∴BD=2DC=2X在△DBC中BC=√(BD-DC)=√3X∴BC=AC=√3XAD=AC-DC=√3X-X∴AD/DC=√3X-X/X=X(√3-1)/X
设BC的中点为EBE=ECAE=AEAB=AC△ABE≌△ACE∠AEB=∠AEC=90°∠EAC+∠C=90°=∠CBD+∠C所以∠EAC=∠CBD=∠EAB=1/2∠A祝你学习天天向上,加油!
∵BD⊥AC,∠CBD=25°,∴∠C=65°,过A作AE⊥BC,则∠CAE=90°-∠C=25°,∵∠A=50°,∴∠BAE=25°,在ΔAEB与ΔAEC中,∠CAE=∠BAE=25°,∠AEB=∠
连接AD∵∠CAD=∠CBD=30°∠BAD=∠BCD=20°∴∠BAC=∠BAD+∠CAD=20°+30°=50°∵AB=AC∴∠ABC=∠ACB∴∠ABC=(180°-50°)/2=65°
连接AD∵∠CAD=∠CBD=30°∠BAD=∠BCD=20°∴∠BAC=∠BAD+∠CAD=20°+30°=50°∵AB=AC∴∠ABC=∠ACB∴∠bac=(180°-50°)/2=65°
∵AB=AC,∠A=56°,∴∠ABC=∠ACB=62°.∵BD⊥AC于D,∴∠CBD=90°-62°=28°.
∵AB=AD,∴∠ADB=∠ABD又∵∠ADB=∠CBD+∠C∴∠ABD=∠CBD+∠C∴∠ABC=∠CBD+∠C+∠CBD=∠C+30°即2∠CBD=30°解得∠CBD=15°.故选A.
∵AB=AC,∠A=36°,∴∠ABC=∠ACB=72°.∵BD⊥AC于点D,∴∠CBD=90°-72°=18°.故答案为:18°.