已知cos(π2−α)=2cos(3π2+β),3sin(3π2−α)=−2sin(π2+β),且0<α<π,0<β<π,求α,β的值.

问题描述:

已知cos(

π
2
−α)=
2
cos(
2
+β)
3
sin(
2
−α)
=
2
sin(
π
2
+β)
,且0<α<π,0<β<π,求α,β的值.

∵cos(π2-α)=sinα,cos(3π2+β)=sinβ,sin(3π2-α)=-cosα,sin(π2+β)=cosβ,∴已知的两等式变形为:sinα=2sinβ①,-3cosα=-2cosβ②,①2+②2得:sin2α+3cos2α=2(sin2β+cos2β)=2,又sin2...