已知sina/2-cosa/2=√10/5,a属于(π/2,π),tan(π-b)=1/2,求tan(a-2b)的值
人气:350 ℃ 时间:2020-05-04 13:43:43
解答
sina/2-cosa/2=√10/5sina/2*cosπ/4-cosa/2*sinπ/4=√5/5sin(a/2-π/4)=√5/5因为a属于(π/2,π),所以a/2-π/4属于(0,π/4)所以cos(a/2-π/4)>0cos(a/2-π/4)=√(1-sin²(a/2-π/4))=2√5/5tan(a/2-π/4)=sin(...
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