∴∠BEC=90°+40°=130°,
③如图3,当CE⊥AC时,
∵∠CBE=40°,∠ACB=30°,
∴∠BEC=180°-40°-30°-90°=20°.
28、解:(1)?CDE?400
βA(2)?BAD?30o
x°αy°y°(3)设?ABC??ACB?y,?ADE??AED?x,?CDE??,
ooDBCx°E?BAD??
图1
①如图1,当点D在点B的左侧时,?ADC?xo??
oo?1???y?x??∴?o,?1???2?得,2????0,∴2??? oy?x????2????Aβ②如图2,当点D在线段BC上时,?ADC?y??
oBoo??1?,2?1得,?????,∴2??? ?y?x??∴?o????oy???x??2????x°y°Dy°Eαx°C图2
③如图3,当点D在点C右侧时,?ADC?y??
oooo??y???x???180?1?∴?o,?2???1?得,2????0,∴2??? oox?y???1802????
相关推荐:
loading