大师作文网(-√3/2-1/2i)^12+[ (2+2i)/(1-√3i) ]^8
来源:学生作业帮 编辑:大师作文网作业帮 分类:数学作业 时间:2024/11/13 17:46:49
(-√3/2-1/2i)^12+[ (2+2i)/(1-√3i) ]^8
√3是根号3
√3是根号3
![(-√3/2-1/2i)^12+[ (2+2i)/(1-√3i) ]^8](/uploads/image/z/17754372-36-2.jpg?t=%28-%E2%88%9A3%2F2-1%2F2i%29%5E12%2B%5B+%282%2B2i%29%2F%281-%E2%88%9A3i%29+%5D%5E8)
-√3/2-1/2i=cos(-2π/3)+isin(-2π/3)
(2+2i)/(1-√3i)=2√2(cosπ/4+isinπ/4)/2[cos(-π/3)+isin(-π/3)]
所以(-√3/2-1/2i)^12+[ (2+2i)/(1-√3i) ]^8
=[cos(-2π/3)+isin(-2π/3)]^12+[2√2(cosπ/4+isinπ/4)/2[cos(-π/3)+isin(-π/3)]]^8
=e^-8πi+16e^14πi/3=1+16e^2πi/3=-8√3+16+8i
(2+2i)/(1-√3i)=2√2(cosπ/4+isinπ/4)/2[cos(-π/3)+isin(-π/3)]
所以(-√3/2-1/2i)^12+[ (2+2i)/(1-√3i) ]^8
=[cos(-2π/3)+isin(-2π/3)]^12+[2√2(cosπ/4+isinπ/4)/2[cos(-π/3)+isin(-π/3)]]^8
=e^-8πi+16e^14πi/3=1+16e^2πi/3=-8√3+16+8i
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