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Investigation of waterhammer in piping networks with voids containing non-condensable gas

机译:含不可凝气体空隙的管网中水锤的研究

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A waterhammer code, PTRAN, has been developed for analyzing hydraulic pressure transients in complex piping systems and for prediction of waterhammer loads for use in design assessment of piping and associated supports. The calculation scheme uses the two-equation method of characteristics. PTRAN had been validated against a series of waterhammer experiments and theoretical calculations of sample problems. To further improve and extend the prediction capability, a voidon-condensable gas model was incorporated into PTRAN to account for the effects of air content in the voids. A set of void collapse experiments were carried out in a nominal 50 mm diameter test rig to investigate the waterhammer phenomena. The test conditions covered three sizes of initial void volumes and a selected range of air content between 0 and 100%. This paper presents the comparison of the PTRAN predictions and the experimental results for the waterhammer caused by void collapse when the void contains a known fraction of non-condensable gas. An application of the model to study the waterhammer transients for a typical high pressure emergency core cooling (ECC) system is also discussed. Considering non-condensable gas in initial voids is shown by a PTRAN simulation to be beneficial in the reduction of waterhammer loads for piping systems.
机译:已经开发了水锤代码PTRAN,用于分析复杂管道系统中的液压瞬变并预测水锤载荷,以用于管道和相关支架的设计评估。计算方案使用特征的二等式方法。 PTRAN已针对一系列水击实验和样本问题的理论计算进行了验证。为了进一步提高和扩展预测能力,将孔隙/不可凝气体模型合并到PTRAN中,以解决孔隙中空气含量的影响。在标称直径为50 mm的试验台上进行了一组孔隙坍塌实验,以研究水锤现象。测试条件涵盖三种尺寸的初始空隙体积和0至100%之间的选定空气含量范围。本文介绍了PTRAN预测值与水锤在空隙中包含已知比例的不可凝气体时由空隙崩塌引起的实验结果的比较。还讨论了该模型在研究典型高压应急堆芯冷却(ECC)系统的水锤瞬变中的应用。 PTRAN模拟表明,考虑初始空隙中的不可凝气体有助于减少管道系统的水锤载荷。

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