作业帮cosα(2secα+tanα)(secα-2tanα)+3tanα
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cosα(2secα+tanα)(secα-2tanα)+3tanα
cosα(2secα+tanα)(secα-2tanα)+3tanα
cosα(2secα+tanα)(secα-2tanα)+3tanα
cosα(2secα+tanα)(secα-2tanα)+3tanα
=cosα(2secα*secα-4secα*tanα+secα*tanα-2tanα*tanα)+3tanα
=cosα[2(secα*secα-tanα*tanα)-4secα*tanα+secα*tanα]+3tanα
=cosα(2-3secα*tanα)+3tanα
=2cosα-3cosα*secα*tanα+3tanα
=2cosα-3tanα+3tanα
=2cosα
cosα(2secα+tanα)(secα-2tanα)+3tanα
tanα+secα-1/tanα-secα+1=1+sinα/cosα
tan^2 α+1=sec^2
化简:cosα+sinα*tanα-secα
若secα-tanα=2,则secα+tanα=?
求证:(tanα+secα-1)/(tanα-secα+1)=(1+sinα)/cosα如题
求证:(1+secα+tanα)/(1+secα+tanα)=(1+sinα)/cosα
求证1+sinα/cosα=tanα+secα-1/tanα-secα+1
证明 1+secα+tanα/ 1+secα-tanα = 1+sinα/ cosα
4cosα/secα(cotα/2-tanα/2)
证明:1-2(secα)^2=(tanα)^4-(secα)^4
求解三角函数的数学题.求证:1 + secα + tanα ---------------- =secα + tanα1 + secα - tanα
化简(tanα+cotα)/secα
求证(1-secα+tanα)/(1+secα-tanα)=(secα+tanα-1)/(secα+tanα+1)急急急急急急急急快回啊
求证:(tanα+secα-1)/(tanα-secα+1)=(secα+tanα+1)/(secα-tanα+1)
cos(α-π/2)*tan(-α-3π/2)*sec(-α+5π/2)*tan(α+5π/2)
三角函数公式(secα)^2-(tanα)^2=多少
证明:cos^4α+sin^2αcos^2α+sin^2α+tan^2α=sec^2α