部一点,且PC=AC,∠PCA=120°-α.
①∵AB=AC,∠BAC=α,PC=AC,∴∠CPA=∠CAP,∠BCA=∠ABC,
∵∠CAP+∠CPA+∠ACP=180°,
∴∠CPA=∠CAP=(180°-∠ACP)÷2=(60°+α)÷2=30°+
| α |
| 2 |
②证明:∵∠BAP=∠BAC-∠CAP,∠BAC=α,∠CAP=30°+
| α |
| 2 |
∴∠BAP=∠BAC-∠CAP=α-(30°+
| α |
| 2 |
| α |
| 2 |
∴∠BCA=∠ABC=(180-a)÷2=90°-
| α |
| 2 |
∴∠PCB=∠BCA-∠ACP=90-
| α |
| 2 |
| α |
| 2 |
∴∠BAP=∠PCB,
③分别延长CP、AP交AB于E点,交BC于F点,
∵∠BAP=∠PCB,
∴∠PFB=∠PEB,
∴A,E,F,C四点共圆,
∴∠EFB=∠BAC=α,∠EFA=∠ECA,∠FEC=∠CAF,
∴BF=EF,EF=PF,
∴BF=PF
∴∠AFC=∠ABC+∠BAF=90°-
| α |
| 2 |
| α |
| 2 |
∴∠PBC=∠BPF=30°.