tan(π/4+α)=-1/2,试求(sin2α-2cos平方α)/(1-tanα)

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tan(π/4+α)=-1/2,试求(sin2α-2cos平方α)/(1-tanα)tan(π/4+α)=-1/2,试求(sin2α-2cos平方α)/(1-tanα)tan(π/4+α)=-1/2,

tan(π/4+α)=-1/2,试求(sin2α-2cos平方α)/(1-tanα)
tan(π/4+α)=-1/2,试求(sin2α-2cos平方α)/(1-tanα)

tan(π/4+α)=-1/2,试求(sin2α-2cos平方α)/(1-tanα)
根据万能公式,我们知道cos2α=sin(π/2+2α)=2*(-1/2)/[1+(-1/2)^2]=-4/5
(sin2α-2(cosα)^2)/(1-tanα)
=cosα(2sinαcosα-2(cosα)^2)/(cosα-sinα)
=-2(cosα)^2
=-cos2α-1
=4/5-1
=-1/5
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tan(π/4+α)=-1/2
(tanπ/4+ tanα)/ (1- tanπ/4 tanα ) = -1/2
2(1+tanα) = -1+ tanα
tanα= -3
sin2α = 2sinαcosα = -2(3/√10)(1/√10) = -3/5
(cosα)^2 = 1/10
(sin2α-2(cosα)^2)/(1-tanα)
=(-3/5-1/5)/(1+3)
=-1/5

tan(π/4+α)=(1+tana)/(1-tana)=-1/2 tana=-3
sin(2a)= (2tana))/(1+tan^2(a)) =(2*-3)/(1+9)=-3/5
cos(2a)= (1-tan^2(a))/(1+tan^2(a)) =(1-9)/(1+9)=-4/5
(sin2α-2cos平方α)/(1-tanα)=(-3/5+4/5-1)/(1+3)=-1/5