The fast growth of Internet has cre-ated the need for high-speed switches. Re-cently, the crosspoint-queue switch has at-tracted attention because of its scalability and high performance. However, the Cross-point-Queu...The fast growth of Internet has cre-ated the need for high-speed switches. Re-cently, the crosspoint-queue switch has at-tracted attention because of its scalability and high performance. However, the Cross-point-Queue switch does not perform well under non-uniform traffic. To overcome this limitation, the Load-Balanced Cross-point-Queued switch architecture has been proposed. In this architecture, a load-balance stage is placed ahead of the Cross-point-Queued stage. The load-balance stage transforms the incoming non-uniform traffic into nearly uniform traffic at the input port of the second stage. To avoid out-of-order cells, this stage employs flow-based queues in each crosspoint buffer. Analysis and simulation results reveal that under non-uniform traffic, this new switch architecture achieves a delay performance similar to that of the Out-put-Queued switch without the need for inter- nal acceleration. In addition, its throughput is much better than that of the pure cross- point-queued switch. Finally, it can achieve the same packet loss rate as the cross- point-queue switch, while using a buffer size that is only 65% of that used by the cross- point-queue switch.展开更多
Based on a ripped-up and rerouted methodology,a multilayer area detailed router is presented by using simulated evolution technique.A modified maze algorithm is also performed for the single net.
能量路由器是能源互联网领域的核心设备,其电路拓扑能够实现新能源、储能、各类负荷的统一分配。目前,能量路由器缺乏配电网故障恢复能力。该文提出一种实现故障调控与新能源消纳的多端口能量路由器(multi‐port energy router,MP‐ER)...能量路由器是能源互联网领域的核心设备,其电路拓扑能够实现新能源、储能、各类负荷的统一分配。目前,能量路由器缺乏配电网故障恢复能力。该文提出一种实现故障调控与新能源消纳的多端口能量路由器(multi‐port energy router,MP‐ER)。首先,介绍MP‐ER拓扑及原理,根据MP‐ER整体结构,提出以直流母线电压为主信号,各个端口分散控制的控制策略;其次,通过直流母线电压及配电网零序电压情况,将MP‐ER工作模式分为正常模式和故障柔性消弧两种模式,在所提的控制策略下,实现各模态内的稳定、高效运行;最后,针对连接的微网、配电网系统,利用MATLAB数值软件,对该模型进行仿真并验证该文提出的拓扑结构功能的合理性。该研究为能量路由器的研究提出一种新的拓扑结构和模型。展开更多
传统的能量路由器能量管理策略未考虑多台设备之间的柔性互联关系,且在港口应用中港机负荷的冲击性和新能源发电的波动性,使区域电网的可靠供电和经济运行面临挑战。为此,基于模糊逻辑控制提出了一种适用于集群式岸电能量路由器的供能...传统的能量路由器能量管理策略未考虑多台设备之间的柔性互联关系,且在港口应用中港机负荷的冲击性和新能源发电的波动性,使区域电网的可靠供电和经济运行面临挑战。为此,基于模糊逻辑控制提出了一种适用于集群式岸电能量路由器的供能精细化就地管控策略。该方法考虑了互联岸电能量路由器之间输出功率的耦合影响,并依据并网模式下可能的功率流向制定了保证电力用户经济效益的模糊控制规则,使储能输出电流根据电池荷电状态(state of charge, SOC)、电网电价以及各台岸电能量路由器净输出功率的变化进行动态调整。该方法计及了互联系统间的协同作用,构建了互联系统间各端口传输功率关系,有利于分布式能源跨台区协同消纳,且不需要上层调度控制,减少了对通信的依赖。仿真结果验证了所提控制策略的有效性和可行性。展开更多
文摘The fast growth of Internet has cre-ated the need for high-speed switches. Re-cently, the crosspoint-queue switch has at-tracted attention because of its scalability and high performance. However, the Cross-point-Queue switch does not perform well under non-uniform traffic. To overcome this limitation, the Load-Balanced Cross-point-Queued switch architecture has been proposed. In this architecture, a load-balance stage is placed ahead of the Cross-point-Queued stage. The load-balance stage transforms the incoming non-uniform traffic into nearly uniform traffic at the input port of the second stage. To avoid out-of-order cells, this stage employs flow-based queues in each crosspoint buffer. Analysis and simulation results reveal that under non-uniform traffic, this new switch architecture achieves a delay performance similar to that of the Out-put-Queued switch without the need for inter- nal acceleration. In addition, its throughput is much better than that of the pure cross- point-queued switch. Finally, it can achieve the same packet loss rate as the cross- point-queue switch, while using a buffer size that is only 65% of that used by the cross- point-queue switch.
文摘Based on a ripped-up and rerouted methodology,a multilayer area detailed router is presented by using simulated evolution technique.A modified maze algorithm is also performed for the single net.
文摘能量路由器是能源互联网领域的核心设备,其电路拓扑能够实现新能源、储能、各类负荷的统一分配。目前,能量路由器缺乏配电网故障恢复能力。该文提出一种实现故障调控与新能源消纳的多端口能量路由器(multi‐port energy router,MP‐ER)。首先,介绍MP‐ER拓扑及原理,根据MP‐ER整体结构,提出以直流母线电压为主信号,各个端口分散控制的控制策略;其次,通过直流母线电压及配电网零序电压情况,将MP‐ER工作模式分为正常模式和故障柔性消弧两种模式,在所提的控制策略下,实现各模态内的稳定、高效运行;最后,针对连接的微网、配电网系统,利用MATLAB数值软件,对该模型进行仿真并验证该文提出的拓扑结构功能的合理性。该研究为能量路由器的研究提出一种新的拓扑结构和模型。
文摘传统的能量路由器能量管理策略未考虑多台设备之间的柔性互联关系,且在港口应用中港机负荷的冲击性和新能源发电的波动性,使区域电网的可靠供电和经济运行面临挑战。为此,基于模糊逻辑控制提出了一种适用于集群式岸电能量路由器的供能精细化就地管控策略。该方法考虑了互联岸电能量路由器之间输出功率的耦合影响,并依据并网模式下可能的功率流向制定了保证电力用户经济效益的模糊控制规则,使储能输出电流根据电池荷电状态(state of charge, SOC)、电网电价以及各台岸电能量路由器净输出功率的变化进行动态调整。该方法计及了互联系统间的协同作用,构建了互联系统间各端口传输功率关系,有利于分布式能源跨台区协同消纳,且不需要上层调度控制,减少了对通信的依赖。仿真结果验证了所提控制策略的有效性和可行性。