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Design of current-sharing control interface circuits for hot swappable N + X power modules.

机译:可热插拔的N + X电源模块的均流控制接口电路设计。

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摘要

Distributed power systems, compared with the centralized ones, possess lots of merits in capability, reliability, redundancy, and modularity. They are widely utilized in the cases of high current and high power in order to achieve high efficiency, high availability, low-cost maintenance, and low-cost upgrade. Among the existing configurations of them, the parallel one is the most commonly used. By adopting the parallel configuration, the risky high-current stresses of the systems can be safely shared by several power modules (PMs) of the same low power rating. However, in practice, few PMs can be identical due to manufacture tolerance and aging. When the non-identical PMs are paralleled together, how to even the load-current distribution among them becomes an important issue. In order to achieve a perfect current distribution, an amount of current-sharing (CS) techniques, including the ones about active current programming, have been developed and improved. Up to now, they are directly applied into the PMs. Further for the sake of the system availability, in most cases, between the paralleled PMs and the common load an ORing-MOSFET circuit is inserted. It can offer many protection functions like under voltage protection (UVP) and over voltage protection (OVP) so that the faulty PMs can be detected and isolated from the system.; When the CS techniques are directly applied into the ORing-MOSFET circuits, they evolve into the CS control interface circuits. The content of this thesis is about the design of the CS control interface circuits. All the CS control loops are placed in the CS interface circuit. The voltage-regulating control loops in the paralleled PMs and the CS control loops in the CS interface circuit are connected in cascade, which makes it possible to design and optimize these two kinds of the control loops relatively independently. All the CS control interconnections exist inside of the CS interface circuit. No interconnection fault will happen to harm the system reliability. It becomes possible to connect and disconnect the paralleled PMs while the system is hot and operative. Although newly-developing, the CS interface circuits are expected to become popular for the high-availability parallel PM systems.
机译:与集中式电源系统相比,分布式电源系统在功能,可靠性,冗余性和模块化方面具有许多优点。它们在高电流和高功率的情况下被广泛使用,以实现高效率,高可用性,低成本维护和低成本升级。在它们的现有配置中,并行配置是最常用的。通过采用并行配置,系统的危险高电流应力可以由具有相同低额定功率的多个电源模块(PM)安全地共享。但是,实际上,由于制造公差和老化,很少有PM可以相同。当不同的PM并联在一起时,如何使它们之间的负载-电流分布变得重要。为了获得理想的电流分布,已经开发并改进了包括共享有源电流编程在内的大量电流共享(CS)技术。到目前为止,它们已直接应用于PM。此外,出于系统可用性的考虑,在大多数情况下,在并联的PM和公共负载之间插入ORing-MOSFET电路。它可以提供许多保护功能,例如欠压保护(UVP)和过压保护(OVP),以便可以检测出故障的PM并将其与系统隔离。当CS技术直接应用于ORing-MOSFET电路时,它们发展成为CS控制接口电路。本文的内容是关于CS控制接口电路的设计。所有CS控制回路都放置在CS接口电路中。并联的PM中的电压调节控制回路和CS接口电路中的CS控制回路是级联连接的,这使得可以相对独立地设计和优化这两种控制回路。所有CS控制互连都存在于CS接口电路内部。不会发生互连故障,不会损害系统可靠性。在系统热运行时,可以连接和断开并行的PM。尽管是新开发的,但CS接口电路有望在高可用性并行PM系统中流行。

著录项

  • 作者

    Chen, Yi.;

  • 作者单位

    Hong Kong Polytechnic University (Hong Kong).;

  • 授予单位 Hong Kong Polytechnic University (Hong Kong).;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 205 p.
  • 总页数 205
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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