为了提升虚拟直流电机的电压惯量与阻尼支持能力,并进一步简化附加控制器结构,显著改善直流微网的动态稳定性,提出了一种新型的虚拟直流电机控制(virtual DC machine control,VDMC)。首先,将双向DC/DC换流器与直流电机进行类比,通过模...为了提升虚拟直流电机的电压惯量与阻尼支持能力,并进一步简化附加控制器结构,显著改善直流微网的动态稳定性,提出了一种新型的虚拟直流电机控制(virtual DC machine control,VDMC)。首先,将双向DC/DC换流器与直流电机进行类比,通过模拟直流电机的功率调节特性,得到适用于双向DC/DC换流器的VDMC模型。其次,通过对所提出VDMC进行改进,得到了更为简化的控制结构,并且具备更加优越的电压动态性能和惯性支撑能力。在此基础上,对改进后的虚拟电机设计自适应电压惯量调节控制技术,使其能够动态响应电压变化,进一步提高系统的动态稳定性。最后,根据阻抗比判据,理论分析所提VDMC对系统的稳定性支持作用,并通过时域仿真算例,验证所提控制策略的有效性。展开更多
In this paper, a high power factor LED driver with hot swap, smart output voltage regulation and dimming control is proposed. The dimming control is used to change LED brightness. During converter is working, the hot ...In this paper, a high power factor LED driver with hot swap, smart output voltage regulation and dimming control is proposed. The dimming control is used to change LED brightness. During converter is working, the hot swap function supply users to remove and insert LED module. The smart output voltage can regulate quickly and rightly output voltage in different number of LED series connection. The system consists two stages, one is 50 W flyback converter which is used as power factor corrector, it is input source is 110-220 V, PF (power factor) is about 0,994. The other is Boost DC/DC converter, it can offer 35-60 V of output voltage. Finally, a prototype has been built and tested. The simulation and experimental results are shown to verify the feasibility of the proposed method.展开更多
This paper proposes a parameter determination method of distribution voltage regulators load ratio control transformers (LRT) and step voltage regulators (SVR) considering the tap change and voltage profile. The m...This paper proposes a parameter determination method of distribution voltage regulators load ratio control transformers (LRT) and step voltage regulators (SVR) considering the tap change and voltage profile. The method takes two procedures in order to simplify the optimization problem and to reduce calculation time. One is to simultaneously determine the control parameters of LRT and SVR minimizing voltage violations and voltage variations. The algorithm is based on particle swarm optimization (PSO), which is one of non-linear optimization methods by using a concept of swarm intelligence. Another is to determine the dead-band width of LRT and SVR on the basis of bi-evaluation of tap change and voltage margin. The concept of a Pareto optimal solution is used for the decision of the best dead-band width. As the results of numerical simulations using distribution network model, the validity of the proposed method has been affirmed.展开更多
文摘为了提升虚拟直流电机的电压惯量与阻尼支持能力,并进一步简化附加控制器结构,显著改善直流微网的动态稳定性,提出了一种新型的虚拟直流电机控制(virtual DC machine control,VDMC)。首先,将双向DC/DC换流器与直流电机进行类比,通过模拟直流电机的功率调节特性,得到适用于双向DC/DC换流器的VDMC模型。其次,通过对所提出VDMC进行改进,得到了更为简化的控制结构,并且具备更加优越的电压动态性能和惯性支撑能力。在此基础上,对改进后的虚拟电机设计自适应电压惯量调节控制技术,使其能够动态响应电压变化,进一步提高系统的动态稳定性。最后,根据阻抗比判据,理论分析所提VDMC对系统的稳定性支持作用,并通过时域仿真算例,验证所提控制策略的有效性。
文摘提出了以ADP3193为核心控制芯片的现代电压调节模块(Voltage Regulator Module,简称VRM)控制系统。介绍了系统的电流环、电阻环和电压环3个控制环路的工作原理。利用Flex-ModeTM控制的电流环使得多相的Buck电路达到电流平衡;利用电阻环实现了系统的自适应电压配置(Adaptive Voltage Positioning,简称AVP)功能;电压环使用典型的Ⅲ型补偿网络,稳定了输出电压,并使输出具有良好的瞬态响应。最后,给出了实测波形,验证了理论分析。
文摘In this paper, a high power factor LED driver with hot swap, smart output voltage regulation and dimming control is proposed. The dimming control is used to change LED brightness. During converter is working, the hot swap function supply users to remove and insert LED module. The smart output voltage can regulate quickly and rightly output voltage in different number of LED series connection. The system consists two stages, one is 50 W flyback converter which is used as power factor corrector, it is input source is 110-220 V, PF (power factor) is about 0,994. The other is Boost DC/DC converter, it can offer 35-60 V of output voltage. Finally, a prototype has been built and tested. The simulation and experimental results are shown to verify the feasibility of the proposed method.
文摘This paper proposes a parameter determination method of distribution voltage regulators load ratio control transformers (LRT) and step voltage regulators (SVR) considering the tap change and voltage profile. The method takes two procedures in order to simplify the optimization problem and to reduce calculation time. One is to simultaneously determine the control parameters of LRT and SVR minimizing voltage violations and voltage variations. The algorithm is based on particle swarm optimization (PSO), which is one of non-linear optimization methods by using a concept of swarm intelligence. Another is to determine the dead-band width of LRT and SVR on the basis of bi-evaluation of tap change and voltage margin. The concept of a Pareto optimal solution is used for the decision of the best dead-band width. As the results of numerical simulations using distribution network model, the validity of the proposed method has been affirmed.