Approximate approach for improving pressure attenuation accuracy during hydraulic transients

被引:2
|
作者
Yu, Chao [1 ]
Yu, Xiaodong [1 ,2 ]
Zhang, Lei [1 ,3 ]
Neupane, Bhusan [1 ]
Zhang, Jian [1 ,2 ]
机构
[1] Hohai Univ, Coll Water Conservancy & Hydropower Engn, Nanjing 210098, Jiangsu, Peoples R China
[2] Hohai Univ, State Key Lab Hydrol Water Resources & Hydraul En, Nanjing 210098, Peoples R China
[3] Xinjiang Agr Univ, Coll Hydraul & Civil Engn, Urumqi 830052, Xinjiang, Peoples R China
基金
中国国家自然科学基金;
关键词
hydraulic transients; method of characteristics; moody diagram; pressure attenuation; UNSTEADY FRICTION MODELS; SYSTEMATIC EVALUATION; ENERGY-DISSIPATION; PIPE-FLOW;
D O I
10.2166/ws.2021.394
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The quasi-steady friction model is generally adopted in water hammer simulation in pipe network systems, which cannot accurately reflect the attenuation of pressure, while the existing unsteady friction model is challenging to use in complex pipe network systems. In this study, a convenient method for treating the friction term is proposed based on the Moody diagram. The attenuation process of water hammer pressure can be accurately reflected by reading the relationship curve between Reynolds number and the Darcy friction factor in the pipeline transient process. Combined with the classical water hammer experiment and the long pipe valve closing experiment in our laboratory, the accuracy of this model is verified, and the influence of absolute roughness (e) and Reynolds number (Re) on the model was analyzed as well. The results show that the pressure attenuation using the Method of Characteristics (MOC) and the proposed friction model has a good agreement with the experimental data. The absolute roughness has little influence on the results in hydraulically smooth pipe, while the minimum Reynolds number has a significant influence. When selecting the minimum Reynolds number, 2% similar to 5% of the initial flow rate is recommended for calculation.
引用
收藏
页码:3387 / 3398
页数:12
相关论文
共 50 条
  • [32] New approach for improving performance of water hydraulic and hydraulic system
    Kitagawa, Ato
    Liu, Canghai
    PROCEEDINGS OF THE SEVENTH INTERNATIONAL CONFERENCE ON FLUID POWER TRANSMISSION AND CONTROL, 2009, : A18 - A22
  • [33] Experimental analysis of air valve behaviour during hydraulic transients
    Balacco, Gabriella
    Apollonio, Ciro
    Piccinni, Alberto Ferruccio
    JOURNAL OF APPLIED WATER ENGINEERING AND RESEARCH, 2015, 3 (01): : 3 - 11
  • [34] Potential for pathogen intrusion during pressure transients
    Karim, MR
    Abbaszadegan, M
    Lechevallier, M
    JOURNAL AMERICAN WATER WORKS ASSOCIATION, 2003, 95 (05): : 134 - 146
  • [35] Fluid-structure interaction in pipe coils during hydraulic transients
    Ferras, D.
    Manso, P. A.
    Covas, D. I. C.
    Schleiss, A. J.
    JOURNAL OF HYDRAULIC RESEARCH, 2017, 55 (04) : 491 - 505
  • [36] Theoretical Analysis of Gas Release during Transient Process of Hydraulic Transients
    Zhao, Li
    Song, Zhang-Chi
    Wu, Rong-Chu
    Wang, Jian-Ping
    3RD INTERNATIONAL CONFERENCE ON EDUCATION AND SOCIAL DEVELOPMENT (ICESD 2017), 2017, 129 : 707 - 715
  • [37] Experimental distinction of damping mechanisms during hydraulic transients in pipe flow
    Ferras, David
    Manso, Pedro A.
    Schleiss, Anton J.
    Covas, Didia I. C.
    JOURNAL OF FLUIDS AND STRUCTURES, 2016, 66 : 424 - 446
  • [38] Improving the Measurement Accuracy of a Piezoelectric Pressure Sensor
    Ovechkina, Elena
    Dianov, Sergey
    Glushkova, Victoria
    2019 URAL SYMPOSIUM ON BIOMEDICAL ENGINEERING, RADIOELECTRONICS AND INFORMATION TECHNOLOGY (USBEREIT), 2019, : 455 - 457
  • [39] Ways of improving the accuracy of arterial pressure oscillometry
    Zislin B.D.
    Chistyakov A.V.
    Bagin V.A.
    Soloukhin E.N.
    Polunin V.A.
    Devaikin E.V.
    Pochepko D.V.
    Biomedical Engineering, 2005, 39 (4) : 174 - 178
  • [40] IMPROVING THE ACCURACY OF BLOOD-PRESSURE MEASUREMENT
    不详
    POSTGRADUATE MEDICINE, 1985, 77 (07) : 120 - 121