化简:[sin(π+3α)cos(-α+3π)sin(α-3π/2)cos(11π/2-α)]÷[cos(3α+9π/2)sin(-α-π)
化简:[sin(π+3α)cos(-α+3π)sin(α-3π/2)cos(11π/2-α)]÷[cos(3α+9π/2)sin(-α-π)...
化简:[sin(π+3α)cos(-α+3π)sin(α-3π/2)cos(11π/2-α)]÷[cos(3α+9π/2)sin(-α-π)
展开
1个回答
展开全部
[sin(π+3 cos(-α+3π)sin(α-3π/2)cos(11π/2-α)]÷[cos(3α+9π/2)sin(-α-π)]
=[-sin3α(-cosα) sin(α-3π/2+2π) cos(6π-(π/2+α))]÷[cos(3α+π/2)sin(-α-π+2π)]
=[-sin3α(-cosα) sin(α+π/2) cos(-(π/2+α))]÷[-sin3αsin(-α+π)]
=[-sin3α(-cosα) cosα(-sinα)]÷[-sin3αsinα]
= cos²α.
=[-sin3α(-cosα) sin(α-3π/2+2π) cos(6π-(π/2+α))]÷[cos(3α+π/2)sin(-α-π+2π)]
=[-sin3α(-cosα) sin(α+π/2) cos(-(π/2+α))]÷[-sin3αsin(-α+π)]
=[-sin3α(-cosα) cosα(-sinα)]÷[-sin3αsinα]
= cos²α.
本回答由提问者推荐
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
