解:延长BO交AC于D
1、
∵BO平分∠ABC
∴∠ABO=1/2∠ABC
∴∠BDC=∠A+∠ABO=∠A+1/2∠ABC
∵CO平分∠ACB
∴∠ACO=1/2∠ACB
∴∠BOC=∠BDC+∠ACO=∠A+1/2(∠ABC+∠ACB)
∵∠ABC+∠ACB=180-∠A
∴∠BOC=∠A+1/2(180-∠A)=1/2(180+∠A)
2、
∵BO是∠ABC的三等分线
∴∠ABO=1/3∠ABC
∴∠BDC=∠A+∠ABO=∠A+1/3∠ABC
∵CO是∠ACB的三等分线
∴∠ACO=1/3∠ACB
∴∠BOC=∠BDC+∠ACO=∠A+1/3(∠ABC+∠ACB)
∵∠ABC+∠ACB=180-∠A
∴∠BOC=∠A+1/3(180-∠A)=1/3(180+2∠A)
3、
∵BO是∠ABC的n等分线
∴∠ABO=1/n∠ABC
∴∠BDC=∠A+∠ABO=∠A+1/n∠ABC
∵CO是∠ACB的n等分线
∴∠ACO=1/n∠ACB
∴∠BOC=∠BDC+∠ACO=∠A+1/n(∠ABC+∠ACB)
∵∠ABC+∠ACB=180-∠A
∴∠BOC=∠A+1/n(180-∠A)=1/n[180+(n-1)∠A]
数学辅导团解答了你的提问,理解请及时采纳为最佳答案。
(1)
∠A=180°-(∠ABC+∠ACB)
=180°-(2∠OBC+2∠OCB)
=180°-2(∠OBC+∠OCB)
=180°-2(180°-∠BOC)
=2∠BOC-180°
2∠BOC-∠A=180°
(2)
∠A=180°-(∠ABC+∠ACB)
=180°-(3∠O2BC+3∠O2CB)
=180°-3(∠O2BC+∠O2CB)
=180°-3(180°-∠BO2C)
=3∠BO2C-2x180°
3∠BO2C-∠A=2x180°
(3)
∠A=180°-(∠ABC+∠ACB)
=180°-(n∠OBC+n∠OCB)
=180°-n(∠OBC+∠OCB)
=180°-n(180°-∠BOC)
=n∠BOC-(n-1)x180°
n∠BOC-∠A=(n-1)x180°
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