b2=a2+c2-2accosB,(3分)
∴a2-b2=b2-a2-2bccosA+2accosB整理得
| a2-b2 |
| c2 |
| acosB-bcosA |
| c |
依正弦定理,有
| a |
| c |
| sinA |
| sinC |
| b |
| c |
| sinB |
| sinC |
∴
| a2-b2 |
| c2 |
| sinAcosB-sinBcosA |
| sinC |
=
| sin(A-B) |
| sinC |
| a2-b2 |
| c2 |
| sin(A-B) |
| sinC |
| a2-b2 |
| c2 |
| acosB-bcosA |
| c |
| a |
| c |
| sinA |
| sinC |
| b |
| c |
| sinB |
| sinC |
| a2-b2 |
| c2 |
| sinAcosB-sinBcosA |
| sinC |
| sin(A-B) |
| sinC |