直流电源系统是变电站的重要组成设备,它可为负载提供不间断电源,因此要求应用于直流电源的高频开关电源模块必须具备功率因数校正功能。利用Freescale新型号MC56F8025的高性能特性,完成了基于DSP的具有软开关特性的数字控制有源功率因...直流电源系统是变电站的重要组成设备,它可为负载提供不间断电源,因此要求应用于直流电源的高频开关电源模块必须具备功率因数校正功能。利用Freescale新型号MC56F8025的高性能特性,完成了基于DSP的具有软开关特性的数字控制有源功率因数校正(Active Power Factor Correction,简称APFC)电路的设计,描述了系统设计过程。最后通过2.2kW的实验样机验证了数字控制的优良特性。展开更多
When boost power factor correction(PFC) circuit works with large scale load fluctuations, it is easy to cause a higher total harmonic distortion and a lower power factor because of traditional controllers and inductor...When boost power factor correction(PFC) circuit works with large scale load fluctuations, it is easy to cause a higher total harmonic distortion and a lower power factor because of traditional controllers and inductor current mode. To solve this problem, this paper proposes a PFC control system, which can operate with load fluctuations up to 1 000 W by using duty cycle feed-forward control theory to achieve smooth switching mode. The duty cycles in the next period of the control system are pre-estimated in the current cycle, which enhances the speeds of AD samplers and switching frequency, and reduces the cost and volume of the equipment to some extent. Introductions of system decoupling and feed-forward of input-voltage greatly improve the system performance. Both theoretical simulation and experimental results prove the advantage of the proposed scheme.展开更多
文摘直流电源系统是变电站的重要组成设备,它可为负载提供不间断电源,因此要求应用于直流电源的高频开关电源模块必须具备功率因数校正功能。利用Freescale新型号MC56F8025的高性能特性,完成了基于DSP的具有软开关特性的数字控制有源功率因数校正(Active Power Factor Correction,简称APFC)电路的设计,描述了系统设计过程。最后通过2.2kW的实验样机验证了数字控制的优良特性。
基金Supported by the National Basic Research Program of China("973"Program,No.2009CB219700)
文摘When boost power factor correction(PFC) circuit works with large scale load fluctuations, it is easy to cause a higher total harmonic distortion and a lower power factor because of traditional controllers and inductor current mode. To solve this problem, this paper proposes a PFC control system, which can operate with load fluctuations up to 1 000 W by using duty cycle feed-forward control theory to achieve smooth switching mode. The duty cycles in the next period of the control system are pre-estimated in the current cycle, which enhances the speeds of AD samplers and switching frequency, and reduces the cost and volume of the equipment to some extent. Introductions of system decoupling and feed-forward of input-voltage greatly improve the system performance. Both theoretical simulation and experimental results prove the advantage of the proposed scheme.