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ONSET OF WATER HAMMER PHENOMENON FOLLOWING FLOW SURGE CHARACTERISTICS IN TUBE-TYPE CONDENSING FLOWS

机译:在管式冷凝流中流动浪涌特性后的水锤现象的发病

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Two-Phase region, in condensing flow undergoing complete condensation inside a tube, acts as an amplifier of any small internal or external disturbances. A small, externally imposed change in the inlet vapor flow rate, or heat flux, leads to substantial surges in the outlet liquid flow rate, including the possibility of flow reversals. Also, if the conditions are right, slight internal disturbances as a result of vapor/ liquid interaction, can lead to sustained oscillations of large amplitude, such as in the outlet liquid flow rate. Such surging characteristics coupled with rapid bubble collapse may lead to water hammer phenomenon. This paper will summarize both experimental observations and theoretical models as a result of externally imposed, or internally induced, flow changes in condensing flows. The physics of the processes, including liquid/vapor density ratio, vapor compressibility, bubble collapse, and liquid inertia will be highlighted. The condensing flow stability criterion will be used to provide a possible physical and an analytical basis for the catastrophic piping failure due to a condensation induced water hammer.
机译:两相区域,在冷凝流中,在管内的完全冷凝,充当任何小内部或外部干扰的放大器。在入口蒸汽流速或热通量的小,外部施加的变化,导致出口液体流速的显着浪涌,包括流逆转的可能性。而且,如果条件是正确的,由于蒸汽/液相相互作用的结果,略有内部干扰,可以导致大振幅的持续振荡,例如在出口液体流速。与快速泡沫塌陷相结合的这种浪涌特性可能导致水锤现象。本文将总结在外部施加或内部诱导的结果中的实验观察和理论模型,冷凝流动的流动变化。将突出液/蒸气密度比,蒸汽压缩性,泡沫塌陷和液体惯性的方法的物理学。冷凝流动稳定性标准将用于为灾难性管道失效提供可能的物理和分析基础,因为冷凝诱导的水锤。

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