如图3,∠P=40°,BP.CP分别平分∠ABC和∠ACD,求∠A的度

30度测验题吧上课没听?

连结AB,记∠CAB为∠1、DBA为∠2,则：∠P=180度-∠1-∠2-∠DAC/2-∠DBC/2=2*（180度-∠1-∠2-∠DAC/2-∠DBC/2）/2=（180度-∠1-∠2-∠DAC+1

∵∠ACD=∠A+∠ABC,CP平分∠ACD∴∠PCD=∠ACD/2=（∠A+∠ABC）/2∵BP平分∠ABC∴∠PBC=∠ABC/2∴∠PCD=∠P+∠PBC=∠P+∠ABC/2∴∠P+∠ABC/2

因为BP,DP分别平分∠ABC,∠ADC（已知）所以∠CDP=∠PDA,∠PBC=∠PBA(角平分线定义）因为∠PFC=∠P+∠PDC=∠C+∠PBC(三角形的一个外角等于与它不相邻的两个内角的和）所

∠PBQ=60°且BQ=BPPB=PQ=QB∠ABC=60°∠ABP=∠CBQBQ=BPBA=BC三角形ABP=三角形CBQ所以PA=CQ=3PB=PQ=QB=4PC=5三角形PQC为直角三角形∠PQ

∠p=180-(1/2∠EBC-∠AED)∠AED=180-∠D-∠DAE分别把未知数尽量用∠C和∠D的关系表示出来在带入试子

∠P=180-∠PBE-∠PEB=180-1/2(180-∠C-∠CGB)-∠AED=90+1/2∠C+1/2∠CGB-(180-∠D-∠DAE)=1/2∠C+1/2∠CGB-90+∠D+(∠DAG+

∵∠ACD＝∠A+∠ABC,CP平分∠ACD∴∠PCD＝∠ACD/2＝（∠A+∠ABC）/2∵BP平分∠ABC∴∠PBC＝∠ABC/2∴∠PCD＝∠P+∠PBC＝∠P+∠ABC/2∴∠P+∠ABC/2

∵∠ACD＝∠A+∠ABC,CP平分∠ACD∴∠PCD＝∠ACD/2＝（∠A+∠ABC）/2∵BP平分∠ABC∴∠PBC＝∠ABC/2∴∠PCD＝∠P+∠PBC＝∠P+∠ABC/2∴∠P+∠ABC/2

/>∵∠ACD＝∠A+∠ABC,CP平分∠ACD∴∠PCD＝∠ACD/2＝（∠A+∠ABC）/2∵BP平分∠ABC∴∠PBC＝∠ABC/2∴∠PCD＝∠P+∠PBC＝∠P+∠ABC/2∴∠P+∠ABC

∠A=50,所以∠ABC+∠ACB=130∠ACP=1/2（180-∠ACB）=90-∠ACB/2∠P=180-∠PBC-（∠ACB+∠ACP）因为∠PBC=∠ABC/2所以∠P=180-∠ABC/2

在PC上截取PE=PA=3∵∠APE=60°∴△APE是等边三角形∴AE=AP,∠PAE=60°∵∠BAC=60°∴∠CAE=∠PAB又∵AC=AB∴△CAE≌△BAP∴CE=PB=5∴PC=PE+C

延长BP交AC于E,AD是∠BAC的平分线,BP⊥AD,∴△ABE是等腰三角形,AB=AE,BP=EP,∠ABE=∠AEB∴BE=BP+EP=2BP,又EC=AC-AE=AC-AB=2BP∴△EBC是

证明：延长BP交AC于G∵AD平分∠BAC∴∠BAD＝∠CAD∵BP⊥AD∴∠ADB＝∠ADG＝90∵AP＝AP∴△ABP≌△AGP（ASA）∴AG＝AB,GP＝BP,∠ABG＝∠AGB∴CG＝AC-

115°延长BA,做PN⊥BD,PF⊥BA,PM⊥AC,设∠PCD=x°,∵CP平分∠ACD,∴∠ACP=∠PCD=x°,PM=PN,∵BP平分∠ABC,∴∠ABP=∠PBC,PF=PN,∴PF=PM

证明：因为∠A的平分线AD交BC于D，BP⊥AD，所以△ABE为等腰三角形，所以AE=AB设∠AEB=z度，∠EBC=y度，∠C=x度，则∠ABC=3x度于是z=x+y，z=3x-y整理得x=y，则B

∵∠A+∠ADO+∠AOD=180°∠C+∠CBO+∠COB=180°∠AOD=∠COB∴∠A+∠ADO=∠C+∠CBO∴∠CBO-∠ADO=∠A-∠C=4°∵∠PFC=∠C+∠CBF∠PFC=∠P+

∠E= ∠AFC=90°(1)∠BAE+∠EAC=90°∠BAE+∠ABE=90°所以∠ABE=∠EAC同理∠BAE=∠ACF(2)AB=AC △ABE≌△CAF(AAS)AE-A

式子一：∠P+1/2∠B=1/2∠A+28°式子二：∠P+1/2∠A=1/2∠B+32°两式子相加得到：2∠P+1/2∠A+1/2∠B=1/2∠A+1/2∠B+28°+32°2∠P=60°∠P=30°