已知sinB=3/5,90°小于B小于180°,且sin(A+B)=cosA则tan(A+B)的值是
人气:353 ℃ 时间:2020-05-07 04:17:41
解答
已知sinB=3/5,90°小于B小于180°
所以cosB=-4/5
所以tanB=-3/4
因为sin(A+B)=sinAcosB+sinBcosA=-4sinA/5+3cosA/5=cosA
所以sinA=-cosA/2
所以tanA=sinA/cosA=-1/2
所以tan(A+B)=(tanA+tanB)/(1-tanAtanB)
=(-1/2-3/4)/(1-3/8)
=(-5/4)/(5/8)
=-2
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