Analysis of flow loss characteristics of slanted axial-flow pump device based on entropy production theory

Author:

Yang Fan12ORCID,Li Zhongbin1,Hu Wenzhu1,Liu Chao13,Jiang Dongjin1,Liu Dongsheng4,Nasr Ahmed15

Affiliation:

1. College of Hydraulic Science and Engineering, Yangzhou University, Yangzhou 225009, People's Republic of China

2. Key Laboratory of Fluid and Power Machinery, Ministry of Education, Chengdu 610039, People's Republic of China

3. Hydrodynamic Engineering Laboratory of Jiangsu Province, Yangzhou 225009, People's Republic of China

4. Nanjing Hydraulic Research Institute, Nanjing 210029, People's Republic of China

5. Egyptian Ministry of Water Resources and Irrigation, Imbaba, Giza 12666, Egypt

Abstract

Slanted axial-flow pump devices are widely applied in urban water supply, irrigation and drainage engineering fields. The second law of thermodynamics is applied to investigate the flow loss characteristics of the 30° slanted axial-flow pump model according to the flow loss analysis method of entropy production theory, so that the hydraulic loss characteristics can be revealed in internal flow process of the slanted axial-flow pump. The three-dimensional numerical simulation of the whole flow conduit in slanted axial-flow pump was conducted and the entropy production increased in the flow process was calculated. The location and distribution characteristics of the flow loss of the pump were qualitatively analysed. The results show that the entropy production in impeller is the highest among the pump components. With the increase of flow rate, the proportion of the entropy production in impeller in total value of the pump device increases continuously. The wall entropy production of impeller, guide vane and outlet conduit are lower than the mainstream entropy production, and the mainstream entropy production occupies the dominant position. As the flow rate grows, the proportion of turbulent dissipation entropy production decreases, and the proportion of wall dissipation entropy production increases. At 0.8 Q bep , the proportion of turbulent dissipation entropy production is close to 74%, which is about 2.8 times that of wall entropy production. Under 1.2 Q bep condition, the proportion of turbulent dissipation entropy production is just 5.5% higher than that of wall dissipation entropy production.

Funder

open research subject of Key Laboratory of Fluid and Power Machinery, Ministry of Education

Postgraduate Research & Practice Innovation Program of Jiangsu Province

National Natural Science Foundation of China

Science and Technology Plan Project of Yangzhou City

Major projects of the Natural Science Foundation of the Jiangsu Higher Education Institutions of China

Technology Project of Water Resources Department of Jiangsu Province

Priority Academic Program Development of Jiangsu Higher Education Institutions

Publisher

The Royal Society

Subject

Multidisciplinary

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