问题标题:
【已知cos(π/2-α)-sin(π/2+α)=1/5,且0<α<π,求下列各式的值:(1)sin(π+α)cos(π+α);;(2)sin(3π/2-α)+cos(3π/2-α);;(3)cos3^(3π/2+α)-sin^3(3π/2+α)】
问题描述:
已知cos(π/2-α)-sin(π/2+α)=1/5,且0<α<π,求下列各式的值:
(1)sin(π+α)cos(π+α);;(2)sin(3π/2-α)+cos(3π/2-α);;
(3)cos3^(3π/2+α)-sin^3(3π/2+α)
冷朝霞回答:
cos(π/2-α)-sin(π/2+α)=sina-cosa=1/5①两边平方得:1-2sinacosa=1/25sinacosa=12/25∴sin^2a+cos^2a=(sina+cosa)^2-2sinacosa=(sina+cosa)^2-24/25...
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