The electrical system in a launch vehicle contains multiple wireless communications systems. A large number of prelaunch tests are needed to verify the correctness and reliability of electric systems at the launch sit...The electrical system in a launch vehicle contains multiple wireless communications systems. A large number of prelaunch tests are needed to verify the correctness and reliability of electric systems at the launch site. The complex electromagnetic environment at a launch site will inevitably cause multipath effect which interfere with prelaunch tests. Theory analysis and simulation of multipath effect, combined with engineering practice, can effective identify and quickly correct abnormal situations, and identify methods and measures to eliminate the influence of multipath interference.展开更多
无线电源是面向不易更换电池的恶劣环境下工作的移动终端开发的无线充电系统。发射端通过LC电路将交变电能以130 k Hz的电磁波方式传输到接收端的LC电路上再转化为直流电给电池充电。本系统利用安培定律电生磁原理和电磁感应定律的磁生...无线电源是面向不易更换电池的恶劣环境下工作的移动终端开发的无线充电系统。发射端通过LC电路将交变电能以130 k Hz的电磁波方式传输到接收端的LC电路上再转化为直流电给电池充电。本系统利用安培定律电生磁原理和电磁感应定律的磁生电原理在发射线圈和接收线圈间生成电磁耦合区免除电路直接接触而实现电能无线传输。系统传能过程中发射端和接收端通过电磁波信号实现实时双向通信,通过分析不同负载的阻抗引起的电磁波变化情况而调整相应的工作状态。本系统研究旨在提高无线电源系统的充电效率和高效的智能检测功能。实验证明,本系统已实现对电子设备高效率无线快速和慢速充电,并能对无线电源系统作出高效的智能检测。电路优化设计后接收机可方便地植入电子设备中,在物联网环境下本系统有广泛的工程应用。展开更多
文摘The electrical system in a launch vehicle contains multiple wireless communications systems. A large number of prelaunch tests are needed to verify the correctness and reliability of electric systems at the launch site. The complex electromagnetic environment at a launch site will inevitably cause multipath effect which interfere with prelaunch tests. Theory analysis and simulation of multipath effect, combined with engineering practice, can effective identify and quickly correct abnormal situations, and identify methods and measures to eliminate the influence of multipath interference.
文摘无线电源是面向不易更换电池的恶劣环境下工作的移动终端开发的无线充电系统。发射端通过LC电路将交变电能以130 k Hz的电磁波方式传输到接收端的LC电路上再转化为直流电给电池充电。本系统利用安培定律电生磁原理和电磁感应定律的磁生电原理在发射线圈和接收线圈间生成电磁耦合区免除电路直接接触而实现电能无线传输。系统传能过程中发射端和接收端通过电磁波信号实现实时双向通信,通过分析不同负载的阻抗引起的电磁波变化情况而调整相应的工作状态。本系统研究旨在提高无线电源系统的充电效率和高效的智能检测功能。实验证明,本系统已实现对电子设备高效率无线快速和慢速充电,并能对无线电源系统作出高效的智能检测。电路优化设计后接收机可方便地植入电子设备中,在物联网环境下本系统有广泛的工程应用。