直流线路故障的快速、可靠识别是基于模块化多电平换流器(modular multilevel converter,MMC)的柔性多端直流输电(multi-terminal direct current,MTDC)系统发展的关键技术之一。通过分析柔性多端直流系统线路故障后电流的暂态特征,提...直流线路故障的快速、可靠识别是基于模块化多电平换流器(modular multilevel converter,MMC)的柔性多端直流输电(multi-terminal direct current,MTDC)系统发展的关键技术之一。通过分析柔性多端直流系统线路故障后电流的暂态特征,提出了一套基于单端电流模量分析的MMC-MTDC系统直流线路故障识别方案。该方案通过对电流一模故障分量动态偏差值极值极性与大小的检测实现了直流线路故障快速定位,并利用故障后电流零模故障分量的差异,从而实现了对故障极的快速判别。在PSCAD仿真平台上搭建了双极四端MMC型柔性直流电网的模型,通过仿真算例验证了该保护在不同故障位置和过渡电阻下均能快速、可靠地检测到直流线路故障并且准确识别故障极。展开更多
The effect of structure,elastic modulus and thickness of lower modulus layer in porous titanium implants on the stress distribution at the implant-bone interface was investigated.Three-dimensional finite element model...The effect of structure,elastic modulus and thickness of lower modulus layer in porous titanium implants on the stress distribution at the implant-bone interface was investigated.Three-dimensional finite element models of different titanium implants were constructed.The structures of the implants included the whole lower modulus style (No.1),bio-mimetic style (No.2),the whole lower modulus style in cancellous bone (No.3) and the whole dense style No.4.The stress distributions at bone-implant interface under static loading were analyzed using Ansys Workbench 10.0 software.The results indicated that the distribution of interface stress is strongly depended on the structure of the implants.The maximum stresses in cancellous bone and root region of implant No.2 are lower than those in the other three implants.A decrease in the modulus of the low modulus layer facilitates the interface stress transferring.Increasing the thickness of the low modulus layer can reduce the stress and induce a more uniform stress distribution at the interface.Among the four implants,biomimetic style implant No.2 is superior in transferring implant-bone interface stress to surrounding bones.展开更多
文摘直流线路故障的快速、可靠识别是基于模块化多电平换流器(modular multilevel converter,MMC)的柔性多端直流输电(multi-terminal direct current,MTDC)系统发展的关键技术之一。通过分析柔性多端直流系统线路故障后电流的暂态特征,提出了一套基于单端电流模量分析的MMC-MTDC系统直流线路故障识别方案。该方案通过对电流一模故障分量动态偏差值极值极性与大小的检测实现了直流线路故障快速定位,并利用故障后电流零模故障分量的差异,从而实现了对故障极的快速判别。在PSCAD仿真平台上搭建了双极四端MMC型柔性直流电网的模型,通过仿真算例验证了该保护在不同故障位置和过渡电阻下均能快速、可靠地检测到直流线路故障并且准确识别故障极。
基金Project(30770576) supported by the National Natural Science Foundation of ChinaProject(2007AA03Z114) supported by Hi-tech Research and Development Program of ChinaProject supported by State Key Laboratory of Powder Metallurgy,China
文摘The effect of structure,elastic modulus and thickness of lower modulus layer in porous titanium implants on the stress distribution at the implant-bone interface was investigated.Three-dimensional finite element models of different titanium implants were constructed.The structures of the implants included the whole lower modulus style (No.1),bio-mimetic style (No.2),the whole lower modulus style in cancellous bone (No.3) and the whole dense style No.4.The stress distributions at bone-implant interface under static loading were analyzed using Ansys Workbench 10.0 software.The results indicated that the distribution of interface stress is strongly depended on the structure of the implants.The maximum stresses in cancellous bone and root region of implant No.2 are lower than those in the other three implants.A decrease in the modulus of the low modulus layer facilitates the interface stress transferring.Increasing the thickness of the low modulus layer can reduce the stress and induce a more uniform stress distribution at the interface.Among the four implants,biomimetic style implant No.2 is superior in transferring implant-bone interface stress to surrounding bones.