tanπ/4-x等于
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1.左=tan(x/2+π/4)+tan(x/2-π/4)=tan[(x/2+π/4)+(x/2-π/4)][1-tan(x/2-π/4)tan(x/2+π/4)]=tanx[1-(-1)]=2tan
lim(x->0)tan(x+πsinx/(4x))=tan(0+π/4)=1
根据两角之和的正切角公式tan(π/4)-tan(x)tan(π/4-x)=———————————1+tan(π/4)Xtan(x)因为tan(π/4)=11-tan(x)1-tan(x)所以上式=—
tanx定义域是(kπ-π/2,kπ+π/2)则kπ-π/2
sin(π/3+x)=sin[π/6+(π/6+x)]=sinπ/6cos(π/6+x)+cosπ/6sin(π/6+x)=1/2cos(π/6+x)+√3/2sin(π/6+x)=2/3(等式两边平
tan(X/2+π/4)+tan(x/2-π/4)=(tanx/2+1)/(1-tanx/2)+(tanx/2-1)/(1+tanx/2)=[(tanx/2+1)^2-(tanx/2-1)^2]/[(
∵tanx的单调增区间为(2kπ-π2,2kπ+π2)∴函数f(x)=tan(x+π4)的单调增区间为2kπ-π2<x+π4<2kπ+π2,即kπ−3π4<x<kπ+π4(k∈Z)故答案为(kπ−3π
如图所示,可以再追问
tan(3x-π/3)
证明:左边=[tan(x/2)+tan(π/4)]/[1-tan(x/2)tan(π/4)]+[tan(x/2)-tan(π/4)]/[1+tan(x/2)tan(π/4)]=[tan(x/2)+1]
设tan(x+π/4)=t则t属于(-∞,+∞)当t=2值域是(-∞,-2]并[2,+∞)因为y=t+1/t在(-∞,-1)并(1,+∞)上是单调递增的而tan(-π/4+kπ)=-1tan(π/4+
分子把平方展开之后整个式子化为4tan(x/2)/[1-(tan(x/2))^2]=2{tan(x/2)+tan(x/2)/[1-(tan(x/2))×(tan(x/2))]}=2tanx再问:。。=
x第二象限则cosx
【参考答案】D[sin(π/2-x)+sin(π-x)]/[cos(-x)+sin(2π-x)]=2009根据诱导公式,化简(cosx+sinx)/(cosx-sinx)=2009左边分子分母同时除以
+π/4=a+b-(a-π/4)tan(b+π/4)=tan{a+b-(a-π/4)}={tan(a+b)-tan(a-π/4)}/{1+tan(a+b)tan(a-π/4)}=(3/4-1/2)/(
tan(x/2+π/4)+tan(x/2-π/4)=[tan(x/2)+tan(π/4)]/[1-tan(x/2)tan(π/4)]+[tan(x/2)-tan(π/4)]/[1+tan(x/2)ta
secx+tanx=1/cosx+sinx/cosx=(1+sinx)/cosxtan(π/4+x/2)=[tanπ/4+tan(x/2)]/[1-tan(x/2)]=[1+tan(x/2)]/[1-
tan(2013π+x)=cosxtanx=cosxsinx/cosx=cosxsinx=cos²x=1-sin²x则sin²x+sinx-1=0因为-1
lim(x→0)[tan(π/4-x)]^(cotx)=lim(x→0){e^[cotx*ln(tan(π/4-x))]}只需要求lim(x→0)[cotx*ln(tan(π/4-x))];lim(x