如图所示,已知OE是角AOB的平分线上的一点,EC垂直OA

AOB共线那∠AOB是180°了?能上个图吗我马上就能给你解决了!再问：图已给，请写全些再答：∠EOF=∠COE+∠COD+∠DOF=1/2∠AOC+∠COD+1/2∠DOB=1/2(∠AOC+∠DO

(1)∵∠AOE=140°∴∠BOE=180°-140°=40°∵OE是∠BOD的平分线∴∠DOE=∠BOE=40°∴∠AOD=180°-2*40°=100°∵OC是∠AOD的平分线∴∠AOC=1/2

∵OE平分∠AOD,OF平分∠BOD∴∠AOE=∠DOE,∠BOF=∠DOF∵∠EOF=∠DOE+∠DOF=25°∴∠AOD+∠BOD=2∠EOF=∠AOB=50°

∠DOE=∠DOA+∠AOE=0.5∠COA+(0.5∠COB-∠COA)=0.5∠COB-0.5∠COA=0.5(∠COB-∠COA)=0.5∠AOB=45°角的相等由角平分线得到,不再累赘了

1,∠AOC=30°,∠BOC=90°　　所以∠AOB=120°,∠AOD=½∠AOB=60°　　∠AOE=½∠AOC=15°　　∠DOE=∠AOD-∠AOE=60°-15°=45

（1）∵ OD平分∠BOC,OE平分∠AOC          ∴ ∠AOE&n

⑴∵OC平分∠AOB,∴∠AOC=∠BOC=1/2∠AOB=30°,∵OD、OE分别平分∠BOC、∠AOC,∴∠COD=1/2∠BOC=15°,∠COE=1/2∠AOC=15°,∴∠DOE=∠COD+

(1)∠DOE=∠DOC+∠COE=30°（2）DOE=∠DOC+∠COE=0.5（∠BOC+∠COA)=0.5∠AOB=30°

（1）∵OC是∠AOB的平分线∴∠AOC=∠BOD=1/2∠AOB=1/2×80°=40°,∵OD、OE分别平分∠BOC、∠AOC,∴∠DOC=1/2∠BOC=1/2×40°=20°∠EOC=1/2∠

1、∵OD平分∠AOC∴∠AOC＝2∠AOD∵OE平分∠BOC∴∠BOC＝2∠EOC∴∠AOD＝∠EOC∴∠AOC＝∠BOC∴∠AOB＝∠AOC+∠BOC＝2∠AOC∴2∠AOC＝150∴∠AOC＝7

设∠BOC=x°，则∠AOB=90°+x°，∵OD平分∠AOB，∴∠BOD=12（90-x）°，∵OE平分∠BOC，∴∠BOE=12x°，∴∠DOE=∠BOD-∠BOE=12（90-x）°-12x°=

22.5°再问：麻烦您说下过程！谢谢！再答：∠DOE=0.5∠AOD∠DOF=0.5∠BOD∠EOF=∠DOE+∠DOF=0.5∠AOD+0.5∠BOD=0.5∠AOB=22.5°

若OB在∠AOC内,则∠DOE=∠COE-∠COD=(1/2)(∠AOC-∠BOC)=(1/2)∠AOB=40°；若OA在∠BOC内,则∠DOE=∠COD-∠COE=(1/2)(∠BOC-∠AOC)=

/>∵∠AOB＝90,OC平分∠AOB∴∠AOC＝∠BOC＝∠AOB/2＝90/2＝45∵OD平分∠BOC∴∠COD＝∠BOD＝∠BOC/2＝45/2＝22.5∵OE平分∠AOC∴∠COE＝∠AOE＝

∠AOE+∠BOE=180∠AOD+∠BOD=180∠COA+∠AOD=180∠COE+∠EOD=180∠COB+∠BOD=180∠COA+∠COB=180

对顶角：∠AOC和∠BOD,∠BOC和AOD互补角：∠AOC和∠AOD,∠AOC和∠BOC,∠BOD和∠AOD,∠BOD和∠BOC互余角：∠AOC和∠DOE,∠BOD和∠DOE

∵∠AOC＝∠AOB+∠BOC,OE平分∠AOC∴∠COE＝∠AOC/2＝（∠AOB+∠BOC）/2∵OD平分∠BOC∴∠COD＝∠BOC/2∴∠DOE＝∠COE-∠COD＝（∠AOB+∠BOC）/2

因为∠AOB：∠BOC＝2：3所以设∠AOB为2x,∠BOC为3x.因为角平分线,∠DOB=x,∠EOB=1.5x.x+1.5x=2.5x=60ºx=24º∠AOB=2x=48&#

∵∠AOC+∠BOC=180°，又∵OE平分∠BOC，OD平分∠AOC，∴2∠DOC+2∠EOC=180°，∴∠DOE=90°．

设∠BOE=x,∠COD=y则∠COE=x,∠BOD=2x+y,∠AOD=y∵OD平分∠AOB∴90-y=2x+y∴2x+2x=90∴x+y=45°∴∠DOE=45°请采纳回答