Energy loss assessment of a two-stage pump under natural flow in the marine cooling system based on entropy production theory

被引:4
|
作者
Zhou, Runze [1 ,2 ]
Liu, Houlin [3 ]
Dong, Liang [3 ]
Ooi, Kim Tiow [1 ]
Dai, Cui [4 ]
Shao, Chen [2 ]
Zhao, Yang [2 ]
机构
[1] Nanyang Technol Univ, Sch Mech & Aerosp Engn, 50 Nanyang Ave, Singapore 639798, Singapore
[2] Jiangsu Univ, Res Ctr Fluid Machinery Engn & Technol, Zhenjiang 212013, Peoples R China
[3] Jiangsu Univ, Natl Res Ctr Pumps, Zhenjiang 212013, Peoples R China
[4] Jiangsu Univ, Sch Energy & Power Engn, Zhenjiang 212013, Peoples R China
基金
中国国家自然科学基金;
关键词
Cooling system; Natural flow; Entropy production; Energy loss; Two-stage pump; CAVITATION FLOW; TURBINE; MODEL;
D O I
10.1016/j.tsep.2023.101976
中图分类号
O414.1 [热力学];
学科分类号
摘要
Natural flow conditions are commonly used in the cooling systems of modern high-speed vessels and nuclear submarines. When the vessel's speed satisfies the requirements, it relies on its kinetic energy to supply seawater to the condenser in the cooling system. Under natural flow conditions, the pump is not driven, and the rotor will be "stuck" or rotated passively by the inlet flow shock. The local energy loss caused by the blade tip leakage vortex, surface separation flow, and wake flow significantly impact the system's performance. Entropy pro-duction is an irreversible dissipation effect caused by the energy transfer process. According to the second law of thermodynamics, the entropy production theory can effectively characterize the intensity of local energy loss under natural flow conditions. In this study, the variation law of hydraulic loss and passive rotational speed under different flow rates of a two-stage pump were obtained by natural flow experiments. Moreover, the generation mechanism of intense energy loss under different natural flow conditions was investigated based on computational fluid dynamics (CFD) and entropy production theory. The results show that the entropy pro-duction induced by turbulent kinetic energy (TEP) is dominant, averaging 71.8 %, followed by the wall entropy production (WEP), about 26.1 %. The contribution of viscous dissipation entropy production (VDEP) can be negligible. When the impeller is "stuck" at low flow rates, entropy production is mainly from the flow separation near the blade and the flow shock region close to the guide vane back. The total entropy production of the guide vane accounts for 78 %, higher than the impeller. However, when the impeller rotates passively at high flow rates, the energy loss inside the impeller is dominant, about 62 %. The energy loss occurs around the blade wake region and the high velocity-gradient region near the guide vane. The flow field patterns between the two stages are similar, but the energy loss in the impeller and guide vane of stage II is much higher. The TEP and WEP of the two impeller stages differed by 14 % and 10 %, respectively, and the guide vane of the two stages differed by 8 % and 3 %, at a flow rate of 196.8 m3/h.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] A NUMERICAL RESEARCH ON ENERGY LOSS EVALUATION IN A CENTRIFUGAL PUMP SYSTEM BASED ON LOCAL ENTROPY PRODUCTION METHOD
    Hou, Hucan
    Zhang, Yongxue
    Li, Zhenlin
    THERMAL SCIENCE, 2017, 21 (03): : 1287 - 1299
  • [22] Inter-stage performance and energy characteristics analysis of electric submersible pump based on entropy production theory
    Hui Wang
    Yang Yang
    Bin Xi
    WeiDong Shi
    Chuan Wang
    LeiLei Ji
    XiangYu Song
    ZhaoMing He
    Petroleum Science, 2024, 21 (02) : 1354 - 1368
  • [23] Inter-stage performance and energy characteristics analysis of electric submersible pump based on entropy production theory
    Hui Wang
    Yang Yang
    Bin Xi
    WeiDong Shi
    Chuan Wang
    LeiLei Ji
    XiangYu Song
    ZhaoMing He
    Petroleum Science, 2024, (02) : 1354 - 1368
  • [24] Inter-stage performance and energy characteristics analysis of electric submersible pump based on entropy production theory
    Wang, Hui
    Yang, Yang
    Xi, Bin
    Shi, Wei -Dong
    Wang, Chuan
    Ji, Lei -Lei
    Song, Xiang-Yu
    He, Zhao -Ming
    PETROLEUM SCIENCE, 2024, 21 (02) : 1354 - 1368
  • [25] Energy loss mechanism of a full tubular pump under reverse power generation conditions using entropy production theory
    Shi, Lijian
    Chen, Yiyu
    Yu, Xianlei
    Han, Yi
    Chai, Yao
    Xue, Muzi
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART A-JOURNAL OF POWER AND ENERGY, 2024, 238 (05) : 868 - 886
  • [26] Research on energy loss mechanism and optimization method of liquid ring vacuum pump based on entropy production theory
    Liu, Huayi
    Zhao, Guoyong
    Yu, Shuo
    Li, Qingyun
    Li, Yanjie
    Meng, Fanrui
    Vacuum, 2025, 232
  • [27] Optimal production policy for a two-stage production system under lumpy demand
    Feng, DZ
    Yamashiro, M
    AI 2005: ADVANCES IN ARTIFICIAL INTELLIGENCE, 2005, 3809 : 1173 - 1179
  • [28] Performance analysis of a two-stage evaporation heat pump drying system for graded cooling/dehumidification
    Duan, Shuangping
    Wang, Lin
    Nie, Dongmei
    APPLIED THERMAL ENGINEERING, 2024, 247
  • [29] Two-stage method for system identification based on asymptotic theory
    State Key Laboratory of Industrial Control Technology, Institute of Industrial Process Control, Zhejiang University, Hangzhou 310027, China
    Huagong Xuebao, 2008, 4 (953-957):
  • [30] Scheduling of Renewable Energy Hydrogen Production System Based on Two-Stage Distribution Robust Optimization
    Xia, Luohui
    wu, Bin
    Zhou, Linwei
    Liang, Tao
    Liu, Zicong
    PROCEEDINGS OF THE 10TH HYDROGEN TECHNOLOGY CONVENTION, VOL 1, WHTC 2023, 2024, 393 : 222 - 243