已知sinα是方程5x^2-7x-6=0的根,α是第三象限角 10
{[sin(-α-3/2π)cos(3/2π-α)]为分子,cos(π/2-α)sin(π/2+α)]为分母,与tan^2(π-α)相乘,求其值。这个问题我还想问α是第三...
{[sin(-α-3/2π)cos(3/2π-α)]为分子,cos(π/2-α)sin(π/2+α)]为分母,与tan^2(π-α)相乘,求其值。这个问题我还想问α是第三象限角,是不是加上π就可以将其变成锐角
展开
1个回答
展开全部
5x²-7x-6=0
(5x+3)(x-2)=0
则sinα=-3/5
cosα=-4/5
tanα=3/4
π<α<3π/2 -3π/2<-α<-π
∵ 0<3π/2-α<π/2
∴ cos(3/2π-α)=-sinα=3/5
∵ -3π<-α-3π/2<-2π-π/2 即 -π<-α-3π/2<-π/2
∴ sin(-α-3π/2)=cosα=-4/5
∵ -π<π/2-α<-π/2
∴ cos(π/2-α)=sinα=-3/5
∵ 3π/2<π/2+α<2π
∴ sin(π/2+α)=cosα=-4/5
故{sin(-α-3/2π)cos(3/2π-α)/[cos(π/2-α)sin(π/2+α)]}*tan²(π-α)
={-4/5*3/5/[-3/5*(-4/5)]}*(-3/4)²
=-1*9/16
=-9/16
(5x+3)(x-2)=0
则sinα=-3/5
cosα=-4/5
tanα=3/4
π<α<3π/2 -3π/2<-α<-π
∵ 0<3π/2-α<π/2
∴ cos(3/2π-α)=-sinα=3/5
∵ -3π<-α-3π/2<-2π-π/2 即 -π<-α-3π/2<-π/2
∴ sin(-α-3π/2)=cosα=-4/5
∵ -π<π/2-α<-π/2
∴ cos(π/2-α)=sinα=-3/5
∵ 3π/2<π/2+α<2π
∴ sin(π/2+α)=cosα=-4/5
故{sin(-α-3/2π)cos(3/2π-α)/[cos(π/2-α)sin(π/2+α)]}*tan²(π-α)
={-4/5*3/5/[-3/5*(-4/5)]}*(-3/4)²
=-1*9/16
=-9/16
追问
能不能化简到-tan^2α(老师的答案),麻烦你了, 我先加5分,结束再加一点
追答
π<α<3π/2
-3π/2<-α<-π
-π/2<π-α<0
tan(π-α)=-tanα
tan²(π-α)=tan²α
{sin(-α-3/2π)cos(3/2π-α)/[cos(π/2-α)sin(π/2+α)]}*tan²(π-α)
={[cosα*(-sinα)]/(sinαcosα)}*tan²α
=-tan²α
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询
