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Wan-zheng AI, Jia-hong WANG. 2015: Minimum wall pressure coefficient of orifice plate energy dissipater. Water Science and Engineering, 8(1): 85-88. doi: 10.1016/j.wse.2014.06.001
Citation: Wan-zheng AI, Jia-hong WANG. 2015: Minimum wall pressure coefficient of orifice plate energy dissipater. Water Science and Engineering, 8(1): 85-88. doi: 10.1016/j.wse.2014.06.001

Minimum wall pressure coefficient of orifice plate energy dissipater

doi: 10.1016/j.wse.2014.06.001
Funds:  This work was supported by the Zhejiang Provincial Natural Science Foundation (Grant No. Y15E090022).
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  • Corresponding author: Wan-zheng AI
  • Received Date: 2013-09-10
  • Rev Recd Date: 2014-06-15
  • Orifice plate energy dissipaters have been successfully used in large-scale hydropower projects due to their simple structure, convenient construction procedure, and high energy dissipation ratio. The minimum wall pressure coefficient of an orifice plate can indirectly reflect its cavitation characteristics: the lower the minimum wall pressure coefficient is, the better the ability of the orifice plate to resist cavitation damage is. Thus, it is important to study the minimum wall pressure coefficient of the orifice plate. In this study, this coefficient and related parameters, such as the contraction ratio, defined as the ratio of the orifice plate diameter to the flood-discharging tunnel diameter; the relative thickness, defined as the ratio of the orifice plate thickness to the tunnel diameter; and the Reynolds number of the flow through the orifice plate, were theoretically analyzed, and their relationships were obtained through physical model experiments. It can be concluded that the minimum wall pressure coefficient is mainly dominated by the contraction ratio and relative thickness. The lower the contraction ratio and relative thickness are, the larger the minimum wall pressure coefficient is. The effects of the Reynolds number on the minimum wall pressure coefficient can be neglected when it is larger than 105. An empirical expression was presented to calculate the minimum wall pressure coefficient in this study.

     

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  • Ai, W. Z., and Ding, T. M. 2010. Orifice plate cavitation mechanism and its influencing factors. Water Science and Engineering, 3(3), 321-330.
    Ai, W. Z., and Zhou, Q. 2014. Hydraulic characteristics of multi-stage orifice plate. Journal of Shanghai Jiaotong University (Science), 19(3), 361-366.
    Ai, W. Z., and Wu, J. H. 2014. Comparison on hydraulic characteristics between orifice plate and plug. Journal of Shanghai Jiaotong University (Science), 19(4), 476-480.
    Ball, J. W., Stripling, T., and Tullis, J. P. 1975. Predicting cavitation in sudden enlargements. Journal of the Hydraulics Division, 101(7), 857-870.
    Kim, B. C., Pak, B. C., Cho, N. H., Chi, D. S., Choi, H. M., Choi, Y. M., and Park, K. A. 1998. Effects of cavitation and plate thickness on small diameter ratio orifice meters. Flow Measurement and Instrumentation, 8(2), 85-92.
    Qu, J. X., Yang, Y. Q., Zhang, J. M., and Xu, W. L. 2001. Numerical simulation of cavitation on orifice energy-dissipater. Journal of Sichuan University (Engineering Science Edition), 33(3), 30-33. (in Chinese)
    Russell, S. O., and Ball, J. W. 1967. Sudden-enlargement energy dissipater for Mica dam. Journal of the Hydraulics Division, 93(4), 41-56.
    Takahashi, K., and Matsuda, H. 2001. Cavitation characteristics of restriction orifices: Experiment for shock pressure distribution by cavitation on restriction orifices and occurrence of cavitation at multiperforated orifices due to interference of butterfly valve. Proceedings of the Fourth International Symposium on Cavitation-CAV2001, 1-8. Pasadena: California Institute of Technology.
    Zhang, C. B. 2003. Research on the Hydraulic Properties of an Orifice Spillway Tunnel. Ph. D. Dissertation. Chengdu: Sichuan University. (in Chinese)
    Zhang, Z. J., and Cai, J. M. 1999. Compromise orifice geometry to minimize pressure drop. Journal of Hydraulic Engineering, 125(11), 1150-1153.
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