如图.bp分别平分角abd角acd求证角p等于角a加角d

AD是△ABC的角平分线DE、DF分别是△ABD和△ACD的高所以AD垂直平分EF．

∵∠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

如下：∠ACD=∠ABC+∠A=∠ABC+70°∠PCD=1/2*∠ACD=1/2*∠ABC+35°∠PCD=∠PBC+∠P∠PBC+∠P=1/2*∠ABC+35°∠P=35°

1,∵AD∥BC∴∠DAB﹢∠ABC=180∵BP,AP分别平分∠ABC∠DAB∴∠BAP﹢∠ABP=(∠DAB﹢∠ABC)∕∕2=180∕2=90∴∠APB=180-∠BAP-∠ABP=90,即AP

（1）分别过点P作PD⊥AB于D,PE⊥BC于E,PF⊥AC于F．∵BP、CP是△ABC的外角平分线,∴PD=PE,PE=PF,∴PD=PF．∴点P必在∠BAC的平分线上．（2）由于角A=50,则角B

∵∠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

∵∠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

1.角p等于65度,角P等于角A加角D2,解不出来····3.不符合

∵ABCD是平行四边形,∴AD∥BC,∴∠DAB+∠ABC=180°,∵AP平分∠DAB,∴∠PAB=1/2∠DAB,∵AP⊥BP,∴∠PBA+∠PAB=90°,∴∠PBA+1/2∠DAB=90°,2

∠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

再问：请问为什么DP＝PC再答：再答：再答：可以了吗

在BC延长线上取点E∵∠A+∠ABC+∠ACB＝180∴∠ABC+∠ACB＝180-∠A∵∠ACE＝180-∠ACB,CP平分∠ACE∴∠PCE＝∠ACE/2＝（180-∠ACB）/2＝90-∠ACB

因为AB//CD,所以∠ABD+∠CDB=180因为BE,DE分别平分∠ABD,∠CDB,所以∠EBD+∠FDE=90因为EF//AB,所以∠1=∠EBD因为EF//CD,所以∠2=∠FDE所以∠1+

∵∠A=86°,∴∠ABC+∠ACB=94°又∵BP平分∠ABC,CP平分∠ACB∴∠PBC=1/2∠ABC,∠PCB=1/2∠ACB.∴∠PBC+∠PCB=1/1(∠ABC+∠ACB）=47°.∴∠

证明：需要做辅助线,三条垂线,第一,过P向AC作垂线垂足为D,过P向AB坐垂线垂足为E,过P向BC做垂线垂足为F.之后根据外角平分线,角ECP和角BCP相等,加上直角和公共边,便可说明三角形ECP和F

如图,由题意得<1+<2+2x=180-70=110<1+<2+2y=180-40=140两式相加得2（<1+<2+x+y)=110+140=250所以<1+

过P依次向AB、BC、CD、AD作垂线,垂足依次为E、F、G、H.∵AP平分∠BAD、PH⊥AH、PE⊥AE,∴PH＝PE,又AP＝AP,∴Rt△PAH≌Rt△PAE,∴AH＝AE.······①∵P