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An investigation of air and water dual adjustment decoupling control of surface heat exchanger

Fang, Z; Xu, X; Li, Q; You, X; Oladokun, MO

An investigation of air and water dual adjustment decoupling control of surface heat exchanger Thumbnail


Authors

Z Fang

X Xu

Q Li

X You

MO Oladokun



Abstract

The terminal equipment of central cooling system accounts for a significant proportion of the total system's energy consumption. Therefore, it is important to reduce the terminal equipment energy consumption in central air conditioning system. In this study, the difference of the effect of the chilled water flow rate and air supply rate on the surface cooler during the heat transfer process is taken into full account. Matlab/Simulink simulation software is used to model and simulate the heat transfer of surface cooler of the main terminal equipment of air conditioning system. Simulation tests and experimental validations are conducted by using variable chilled water flow rate and variable air supply rate control mode separately. The experiment results show that the simulation model can effectively predict the heat transfer performance of heat exchanger. Further, the study introduced a dual feedback control mode, which synchronously regulates the chilled water flow rate and air supply rate. Also, under certain conditions, the complex heat transfer process of the surface cooler can be decoupled, and single variable control pattern is used to separately regulate the chilled water flow rate and air supply rate. This can effectively shorten the system regulation time, reduce overshoot and improve control performance.

Citation

Fang, Z., Xu, X., Li, Q., You, X., & Oladokun, M. (2018). An investigation of air and water dual adjustment decoupling control of surface heat exchanger. Applied Thermal Engineering, 133, 418-427. https://doi.org/10.1016/j.applthermaleng.2018.01.045

Journal Article Type Article
Acceptance Date Jan 13, 2018
Online Publication Date Jan 17, 2018
Publication Date Mar 25, 2018
Deposit Date Jan 30, 2020
Publicly Available Date Jan 30, 2020
Journal Applied Thermal Engineering
Print ISSN 1359-4311
Electronic ISSN 1873-5606
Publisher Elsevier
Volume 133
Pages 418-427
DOI https://doi.org/10.1016/j.applthermaleng.2018.01.045
Publisher URL https://doi.org/10.1016/j.applthermaleng.2018.01.045
Related Public URLs https://www.sciencedirect.com/journal/applied-thermal-engineering
Additional Information Funders : National Key Research and Development Program of China
Grant Number: 2017YFC0702900

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