问答题已知i₁=2sin(314t+200°)A，i₂=2sin(314t-200°)A，试按|φ|≤180°，写出其规范表达式。

【正确答案】正弦量表达式初相位角要求|φ|≤180°，若其超出，应予换算。因此：
i₁=2sin(314t+200°)A=2sin(314t+200°-360°)A
=2sin(314t-160°)A
i₂=2sin(314t-200°)A=2sin(314t-200°+360°)A=2sin(314t+160°)A

【答案解析】