如图,△ABC的外角∠ACD的平分线CP与内角∠ABC平分线BP交于点P,若∠BPC=40°,则∠CAP= _ .
问题描述:
如图,△ABC的外角∠ACD的平分线CP与内角∠ABC平分线BP交于点P,若∠BPC=40°,则∠CAP= ___ .
答
延长BA,作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,∵∠BPC=40°,∴∠ABP=∠PBC=∠PCD-∠BPC=(x-40)°,∴∠BAC=∠ACD-...