Flow throttling in surge tanks using porous structures

被引:7
|
作者
Asiaban, Puria [1 ]
Fathi-Moghadam, Manoochehr [1 ]
机构
[1] Shahid Chamran Univ Ahvaz, Dept Hydraul Engn, Ahvaz, Khuzestan Provi, Iran
关键词
Water hammer; Mass oscillation; Surge tank throttle; Porous structure; DESIGN;
D O I
10.1016/j.ijpvp.2018.11.009
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Well-designed local loss throttles at inlet of pressurized and open surge tanks are beneficial in terms of reducing tank size and faster dampening of pressure oscillation. This research investigates porous structures experimentally as a possibility to increase the head loss at surge tanks throttle. Both scenarios of valve closure from upstream and downstream of the pipeline are considered to model pump trip and load rejection in hydropower plants. Performance of porous structure is examined and compared with the case of using simple and differential orifice throttles. Layered porous media is also studied to examine feasibility of achieving variable throttling effect for inflow and outflow from the surge tank. Results confirm considerable advantages of porous throttling over customary orifice throttling for faster transient dampening. This is due to lower head loss coefficient of porous throttle in high velocity flow and higher head loss coefficient in low velocity flow in comparison with the orifice throttle. In a layered porous structure, flow from smaller to larger spheres showed to have an average of 15% lower head loss than the flow from larger to smaller spheres. The Reynolds similarity of the porous spheres is also shown to be governing parameter in up and downscaling of the modeling results in practice.
引用
收藏
页码:301 / 309
页数:9
相关论文
共 50 条
  • [31] Design-Variable Optimization of Hydropower Tunnels and Surge Tanks Using a Genetic Algorithm
    Fathi-Moghadam, M.
    Haghighipour, S.
    Samani, H. Mohammad Vali
    JOURNAL OF WATER RESOURCES PLANNING AND MANAGEMENT, 2013, 139 (02) : 200 - 208
  • [32] Throttling intensification of the flow part of flow control regulators
    Ionaitis, R. R.
    Chekov, M. E.
    ATOMIC ENERGY, 2012, 112 (05) : 323 - 331
  • [33] Throttling intensification of the flow part of flow control regulators
    R. R. Ionaitis
    M. E. Chekov
    Atomic Energy, 2012, 112 : 323 - 331
  • [34] COMPUTER SOLUTION FOR DOUBLE THROTTLED SURGE TANKS.
    Tek, Li Yu
    International Water Power and Dam Construction, 1985, 37 (08): : 49 - 53
  • [35] MODELING AND STABILITY OF HYDRO PLANT WITH 2 SURGE TANKS
    VOURNAS, CD
    PAPAIOANNOU, G
    IEEE TRANSACTIONS ON ENERGY CONVERSION, 1995, 10 (02) : 368 - 375
  • [36] Control of surge tanks for continuous manufacturing of monoclonal antibodies
    Thakur, Garima
    Nikita, Saxena
    Tiwari, Anamika
    Rathore, Anurag S.
    BIOTECHNOLOGY AND BIOENGINEERING, 2021, 118 (05) : 1913 - 1931
  • [37] Fuzzy genetic algorithm approach for optimization of surge tanks
    Chamani, M. R.
    Pourshahabi, S.
    Sheikholeslam, F.
    SCIENTIA IRANICA, 2013, 20 (02) : 278 - 285
  • [38] Time evolution of water surface oscillations in surge tanks
    Guo, Junke
    Woldeyesus, Kokob
    Zhang, Jianmin
    Ju, Xiaoming
    JOURNAL OF HYDRAULIC RESEARCH, 2017, 55 (05) : 657 - 667
  • [39] Condition of setting surge tanks in hydropower plants - A review
    Bao, Haiyan
    Yang, Jiandong
    Zhao, Guilian
    Zeng, Wei
    Liu, Yanna
    Yang, Weijia
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 81 : 2059 - 2070
  • [40] OPTIMIZATION OF DESIGN PARAMETERS OF COMPLEX SURGE TANKS.
    Arshenevskii, N.N.
    Berlin, V.V.
    Murav'ev, O.A.
    Hydrotechnical Construction, 1984, 18 (04): : 145 - 148