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Optimal Chiller Loading Based on Collaborative Neurodynamic Optimization

delete2023-03-01
delete13
PRE
AI
Z
Zhongying Chen
王娟 封面图
王娟 (Jun Wang) *
Q
Qing‐Long Han
DOI:10.1109/TII.2022.3180080delete
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摘要

摘要

En 中文
Chillers are indispensable machines for heat removal and the primary sources of power consumption in heating, ventilation, and air conditioning systems. In this paper, a cardinality-constrained global optimization problem is formulated to minimize power consumption for optimal chiller loading. The formulated problem is solved using a collaborative neurodynamic optimization method based on multiple neurodynamic models. Experimental results based on available actual chiller parameters are elaborated to demonstrate the superiority of the proposed approach to many baseline methods for optimal chiller loading.
Keyword:
Optimization
Neurodynamics
Linear programming
Power demand
Loading
HVAC
Collaboration
Cardinality constraint
global optimization
heating
ventilation
and air conditioning (HVAC) systems
neurodynamic optimization
optimal chiller loading (OCL)

期刊

IEEE Transactions on Industrial Informatics 封面图
IEEE Transactions on Industrial Informatics
IF:
9.9
论文数:
8.6K
被引数:
6.0W

机构

C
City University of Hong Kong
学者数:
2.3W
论文数: 3.0W
被引数: 6.1W
S
Swinburne University of Technology
学者数:
9.3K
论文数: 1.2W
被引数: 2.0W
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Economic dispatch of chiller plant by gradient method for saving energy
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errChang, Yung-Chung; Chan, Tien-Shun; Lee, Wen-Shing
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