因(tanB)/(tanC)=(2a-c)/c
切化弦即得:
(sinB/sinC)(cosC/cosB)=(2a-c)/c
利用正.余弦定理带入得:
(b/c)[(a²+b²-c²)(2ac)/(a²+c²-b²)(2ab)]=(2a-c)/c
化简整理得:
a²+c²-b²=2bc(*)
故cosB=(a²+c²-b²)/(2ac)=1/2
故B=π/3
由(*),将a/c=(√3)-1带入得到:
b²=3(2-√3)c²
故sinC/sinB=c/b
故sinC=sinB*(c/b)
=(√3/2)√[1/(3(2-√3))]
=√{1/[4(2-√3)}
=√[(2+√3)/4]
=√[(4+2√3)/(4*2)]
=√[(1+√3)²/(4*2)]
=(√2/2)*(1+√3)/2
=(√2/2)(sinπ/6+cosπ/6)
=sin(π/6+π/4)
=sin(5π/12)
易知tanC>0
故0