2(-cos(π/6)+isin(π/6)) =2(cos(π-π/6)+isin(π-π/6))为什么是π-π/6呢,谁能告诉我

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2(-cos(π/6)+isin(π/6)) =2(cos(π-π/6)+isin(π-π/6))为什么是π-π/6呢,谁能告诉我
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2(-cos(π/6)+isin(π/6)) =2(cos(π-π/6)+isin(π-π/6))为什么是π-π/6呢,谁能告诉我
2(-cos(π/6)+isin(π/6)) =2(cos(π-π/6)+isin(π-π/6))为什么是π-π/6呢,谁能告诉我

2(-cos(π/6)+isin(π/6)) =2(cos(π-π/6)+isin(π-π/6))为什么是π-π/6呢,谁能告诉我
-cosa=cos(π-a)
sina=sin(π-a)

cos(π-π/6)= -cos(π/6)
sin(π-π/6) = sin(π/6)
2(-cos(π/6)+isin(π/6)) =2(cos(π-π/6)+isin(π-π/6))
我们要做成 r(cosα+ isinα)的形式

2(-cos(π/6)+isin(π/6)) =2(cos(π-π/6)+isin(π-π/6))为什么是π-π/6呢,谁能告诉我 cos(15π/6)+isin(15π/6)=cos(5π/2)+isin(5π/2),5π/2是怎么算出来的,求解 设复数z=√2(cosπ/6+isinπ/6),则z^2=? 计算,√2(cos兀/12+isin兀/12).√3(cos兀/6+isin兀/6) 求证:(cosπ/6+isinπ/6)^n=cos(nπ/6)+i *sin( nπ/6)谢谢 cosπ/12-isinπ/12的模求cosπ/12-isinπ/12的模A 1 B√2 C -1 D cosπ/12 复数 -根号3+i的三角形式可以表示为A.2(cosπ/6+isinπ/6) B.2(cos11π/6+isinπ11π/6)C.2(cos5π/6+isin5π/6)D.2(cos11π/6-isinπ11π/6)选哪个??? 化下列复数为极式2(cosπ/4+isinπ/4)2(cos2π/3+isin2π/3)/8(cosπ/4-isinπ/4) 复数-4(-cosπ/6+isinπ/6)的模是_,辐角的主值是_ 把2(cosπ/3-isinπ/3)写成x+iy的形式括号里是- -2(cosπ/3+isinπ/3)的三角式是 √2(cosπ/4+isinπ/4)的代数形式是? 复数-cosπ/7-isinπ/7的辐角主值是 3÷(cosπ/3+isinπ/3) 在复数z=1+cosα+isinα(π 求复数z=1+cosα+isinα(π 求复数z=1+cosα+isinα(π 已知复数z=cos(2π/3)+isin(2π/3) 那么z^n的规律是什么?