tan7π
@滑孟2249:tan(7π+α) 怎么化?给我详细!要快!! -
郦待13835622968…… tan(7π+α)=tan(3*2π+π+α)=tan(π+α)=tanα
@滑孟2249:tan7兀是多少? -
郦待13835622968…… tan7π等于0 求给分
@滑孟2249:tan(7π+α)诱导公式? -
郦待13835622968…… 函数y=tanx的最小正周期为T=π,即tan(π+α)=tanα ∴kπ也为函数y=tanx的周期(k为整数) 当k=7时,tan(7π+α)=tanα
@滑孟2249:化简tan(7π+α) - 作业帮
郦待13835622968…… [答案] 因为tanα的周期为π 所以tan(a+7π)=tana
@滑孟2249:比较sin2π/5,cos5π/6,tan7π/5的大小(详细过程) - 作业帮
郦待13835622968…… [答案] sin2π/5=sin72 cos5π/6= cos75=sin15 故sin2π/5 >cos5π/6 tan7π/5=tan(7π/5 -π)=tan2π/5=(sin2π/5) / (cos2π/5), 而 0所以 tan7π/5 > sin2π/5 >cos5π/6
@滑孟2249:tan7π/4 的值为 答案是 - 1 我想知道怎么来的.谢谢. - 作业帮
郦待13835622968…… [答案] tan7π/4 =tan(π+3π/4) =tan3π/4 =-1
@滑孟2249:若tan(7π+α)=a,则sin(α - 3π)+cos(π - α)/sin( - α) - cos(π+α)=? - 作业帮
郦待13835622968…… [答案] tan(7π+α)=tan(6π+(π+α))=tan(π+α)=tanαsin(α-3π)+cos(π-α)/sin(-α)-cos(π+α)=sin(-(3π-a))-cosα/(-sinα)+cosα=-sin(3π-α)-cosα/(-sinα)+cosα=sinα-cosα/-(sinα-cosα)=-1...
@滑孟2249:比较tan7π/8与tanπ/16的大小 尽快 谢 - 作业帮
郦待13835622968…… [答案] tan周期为 π ,tan7π/8 = tan(-π/8) 所以tan7π/8
@滑孟2249:tan乘以6分之7π等于多少? - 作业帮
郦待13835622968…… [答案] tanx周期是π 所以tan7π/6=tan(2*0.5π+π/6)=tanπ/6=√3
@滑孟2249:【急】tan7π/8与tanπ/6比较大小 -
郦待13835622968…… tan7π/8=tan(π-π/8)=tan(-π/8) y=tanx在区间(-π/2,π/2)上是递增的, -π/2<-π/8所以,tan(-π/8)即:tan(7π/8)
郦待13835622968…… tan(7π+α)=tan(3*2π+π+α)=tan(π+α)=tanα
@滑孟2249:tan7兀是多少? -
郦待13835622968…… tan7π等于0 求给分
@滑孟2249:tan(7π+α)诱导公式? -
郦待13835622968…… 函数y=tanx的最小正周期为T=π,即tan(π+α)=tanα ∴kπ也为函数y=tanx的周期(k为整数) 当k=7时,tan(7π+α)=tanα
@滑孟2249:化简tan(7π+α) - 作业帮
郦待13835622968…… [答案] 因为tanα的周期为π 所以tan(a+7π)=tana
@滑孟2249:比较sin2π/5,cos5π/6,tan7π/5的大小(详细过程) - 作业帮
郦待13835622968…… [答案] sin2π/5=sin72 cos5π/6= cos75=sin15 故sin2π/5 >cos5π/6 tan7π/5=tan(7π/5 -π)=tan2π/5=(sin2π/5) / (cos2π/5), 而 0所以 tan7π/5 > sin2π/5 >cos5π/6
@滑孟2249:tan7π/4 的值为 答案是 - 1 我想知道怎么来的.谢谢. - 作业帮
郦待13835622968…… [答案] tan7π/4 =tan(π+3π/4) =tan3π/4 =-1
@滑孟2249:若tan(7π+α)=a,则sin(α - 3π)+cos(π - α)/sin( - α) - cos(π+α)=? - 作业帮
郦待13835622968…… [答案] tan(7π+α)=tan(6π+(π+α))=tan(π+α)=tanαsin(α-3π)+cos(π-α)/sin(-α)-cos(π+α)=sin(-(3π-a))-cosα/(-sinα)+cosα=-sin(3π-α)-cosα/(-sinα)+cosα=sinα-cosα/-(sinα-cosα)=-1...
@滑孟2249:比较tan7π/8与tanπ/16的大小 尽快 谢 - 作业帮
郦待13835622968…… [答案] tan周期为 π ,tan7π/8 = tan(-π/8) 所以tan7π/8
@滑孟2249:tan乘以6分之7π等于多少? - 作业帮
郦待13835622968…… [答案] tanx周期是π 所以tan7π/6=tan(2*0.5π+π/6)=tanπ/6=√3
@滑孟2249:【急】tan7π/8与tanπ/6比较大小 -
郦待13835622968…… tan7π/8=tan(π-π/8)=tan(-π/8) y=tanx在区间(-π/2,π/2)上是递增的, -π/2<-π/8所以,tan(-π/8)即:tan(7π/8)
