解:(1)表达式:u=220√2sinωt
i1=10√2sin(ωt+π/2)
i2=10sin(ωt-π/4)
2)t=0时u=220×√2×sin0o=0(V)
i1=10√2×sin(π/2)=14.14(A)
i2=10sin(-π/4)=-7.07(A)
答案:各正弦量的表达式为u=220√2sinωt,i1=10√2sin(ωt+π/2),i2=10sin(ωt-π/4),当t=0时u=0V,i1=14.14A,i2=-7.07A。
解:(1)表达式:u=220√2sinωt
i1=10√2sin(ωt+π/2)
i2=10sin(ωt-π/4)
2)t=0时u=220×√2×sin0o=0(V)
i1=10√2×sin(π/2)=14.14(A)
i2=10sin(-π/4)=-7.07(A)
答案:各正弦量的表达式为u=220√2sinωt,i1=10√2sin(ωt+π/2),i2=10sin(ωt-π/4),当t=0时u=0V,i1=14.14A,i2=-7.07A。
