化简[1-tan(π/4-A)]/[1+tan(π/4+A)]=
来源:学生作业帮助网 编辑:作业帮 时间:2024/12/02 04:12:51
x){3hCݒ<
&ц06okTOR;%6&S6Z@C.yh/{6cӎϧ0|6w_,ywͳEXlޜ<ٱźM//~v>[:KF 1 5
化简[1-tan(π/4-A)]/[1+tan(π/4+A)]=
化简[1-tan(π/4-A)]/[1+tan(π/4+A)]=
化简[1-tan(π/4-A)]/[1+tan(π/4+A)]=
[1-tan(π/4-A)]/[1+tan(π/4+A)]
=[tan(π/4)-tan(π/4-A)]/[1+tan(π/4)*tan(π/4+A)]
=tan(π/4-π/4/4+A)
=tan(A)
此题关键是利用1=tan(π/4)来进行转换
如果认为讲解不够清楚,
化简[1-tan(π/4-A)]/[1+tan(π/4+A)]=
[1/tan a/2-tan a/2]*(1+tan a*tan a/2)化简
已知tan(A+B)=2/5,tan(B-π/4)=1/4,求tan(A+π/4已知tan(A+B)=2/5,tan(B-π/4)=1/4,求tan(A+π/4)
化简tan(π/4+a)-tan(π/4-a)]
化简tana+(1+tana)tan(π/4-a)
化简 (cot a/2 -tan a/2)(1+ tan a * tan a/2)
tan(a+b)=3/4,tan(a-π/4)=1/2,那么tan(b+π/4)等于多少
化简:[tan(5/4)π+tan(5/12)π]/[1-tan(5/12)π]
化简:[tan(5π)/4+tan(5π)/12]/[1-tan(5π)/12]
tan(A+B)=2/54,tan(B-π)=1/4,那么tan(A+π/4)
化简:[tan(π/4+a)-tan(π/4-a)]/tan2a-tan(π/4+a)tan(π/4-a)
(tan(2a+b)乘以tan(a-b))/(1-tan(2a+b)tan(a-b))化简
化简:{[tan(π/4+a)-tan(π/4-a)]/tan2a} *tan(π/4+a)
a+b=3/4π,求(1-tan a)(1+tan b)
a+b=3 π/4,则(1-tan a)(1-tan b)=
(tanπ/4+tanα)/(1-tanπ/4tanα)怎么解
化简tan+1/tan
1/[tan(A/2)]=tan(π/4+B/2)由此证A+B=π/2在△ABC中,已知[tan(A/2)+tan(A/2)*tan(B/2)]/(1-tan(B/2)=1,则有1/[tan(A/2)]=tan(π/4+B/2),由此证A+B=π/2