△ABC中,BC=3,AB=2,且sinC/sinB=2/5*(根号6+1),则A=?

问题描述:

△ABC中,BC=3,AB=2,且sinC/sinB=2/5*(根号6+1),则A=?

根据正弦定理得,sinC/sinB=AB/AC=2(√6+1)/5
2(√6+1)AC=5AB
∵AB=2
∴AC=5/(√6+1)=√6-1
又根据余弦定理
cosA=(AC²+AB²-BC²)/(2*AC*AB)=(2-2√6)/[4(√6-1)]
=-1/2
A=120°