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On the Nature of Critical Heat Flux in Microchannels

机译:关于微通道中临界热通量的性质

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摘要

The critical heat flux (CHF) limit is an important consideration in the design of most flow boiling systems. Before the use of micro-channels under saturated flow boiling conditions becomes widely accepted in cooling of high-heat-flux devices, such as electronics and laser diodes, it is essential to have a clear understanding of the CHF mechanism. This must be coupled with an extensive database covering a wide range of fluids, channel configurations, and operating conditions. The experiments required to obtain this information pose unique challenges. Among other issues, flow distribution among parallel channels, conjugate effects, and instrumentation need to be considered. An examination of the limited CHF data indicates that CHF in parallel microchannels seems to be the result of either an upstream compressible volume instability or an excursive instability rather than the conventional dryout mechanism. It is expected that the CHF in parallel microchannels would be higher if the flow is stabilized by an orifice at the entrance of each channel. The nature of CHF in microchannels is thus different than anticipated, but recent advances in microelectronic fabrication may make it possible to realize the higher power levels.
机译:临界热通量(CHF)限制是大多数流动沸腾系统设计中的重要考虑因素。在饱和流沸腾条件下使用微通道在冷却高热通量设备(如电子设备和激光二极管)中被广泛接受之前,必须对CHF机理有清楚的了解。这必须与涵盖广泛的流体,通道配置和操作条件的广泛数据库相结合。获得此信息所需的实验提出了独特的挑战。除其他问题外,还需要考虑并行通道之间的流量分配,共轭效应和仪器。检查有限的CHF数据表明,平行微通道中的CHF似乎是上游可压缩体积不稳定性或偏移不稳定性的结果,而不是常规的变干机制。可以预期,如果通过每个通道入口处的孔口使流量稳定,则平行微通道中的CHF会更高。因此,微通道中CHF的性质与预期的不同,但是微电子制造领域的最新进展可能使实现更高的功率水平成为可能。

著录项

  • 来源
    《Journal of Heat Transfer》 |2005年第1期|p.101-107|共7页
  • 作者

    A. E. Bergles; S. G. Kandlikar;

  • 作者单位

    ASME, Mechanical Engineering Department, Massachusetts Institute of Technology, Cambridge, MA 02139;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 热力工程、热机;
  • 关键词

  • 入库时间 2022-08-18 00:27:45

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