The Optimal Operation and Dispatch of Commerce Air-Conditioning System by Considering Demand Response Strategies
The purpose of this paper is to discuss an optimal operation and schedule of commerce air-conditioning system by considering the demand response in order to obtain the maximal benefit; this paper first collects the operating data of the chiller units in commercial users, calculates the cooling load...
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MDPI AG
2022-08-01
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author | Ching-Jui Tien Chung-Yuen Yang Ming-Tang Tsai Chin-Yang Chung |
author_facet | Ching-Jui Tien Chung-Yuen Yang Ming-Tang Tsai Chin-Yang Chung |
author_sort | Ching-Jui Tien |
collection | DOAJ |
description | The purpose of this paper is to discuss an optimal operation and schedule of commerce air-conditioning system by considering the demand response in order to obtain the maximal benefit; this paper first collects the operating data of the chiller units in commercial users, calculates the cooling load of each unit, and derives the relationship between the cooling loads and power consumption of each unit. The weather information, such as temperature and humidity of inside/outside, are collected in the EXECL database, and the cooling load of the mall’s space is simulated by using the Least Square Support Vector Machine (LSSVM). Under the selected plan of power reduction, the requirement of space cooling loads, and the various operation constraints, the dispatch model of the commerce air-conditioning system with demand response strategies is formulated to minimize the total cost. A Modify Particle Swarm Optimization with Time-Varying Acceleration Coefficients (MPSO-TVAC) is proposed to solve the daily economic dispatch of the air-conditioning system. In the MPSO-TVAC procedure, the dynamic control parameters are embedded in the particle swarm of the PSO-TVAC in order to improve the behavior patterns of each particle swarm and increase its search efficiency in high dimensions. Different modifications in moving patterns of MPSO-TVAC are proposed to search the feasible space more effectively. By using MPSO-TVAC, it provides an optimal mechanism for variables regulated to increase the efficiency of the performing search and look for the probability of an optimal solution. Simulation results also provide an efficient method for commercial users to reduce their electricity bills and raise the ability of the market’s competition. |
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issn | 2411-5134 |
language | English |
last_indexed | 2024-03-09T23:38:09Z |
publishDate | 2022-08-01 |
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spelling | doaj.art-957d29fc8c6e4429bd2f4fdadd9a388e2023-11-23T16:56:38ZengMDPI AGInventions2411-51342022-08-01736910.3390/inventions7030069The Optimal Operation and Dispatch of Commerce Air-Conditioning System by Considering Demand Response StrategiesChing-Jui Tien0Chung-Yuen Yang1Ming-Tang Tsai2Chin-Yang Chung3Department of Electrical Engineering, Cheng-Shiu University, Kaohsiung 833, TaiwanDepartment of Electrical Engineering, Cheng-Shiu University, Kaohsiung 833, TaiwanDepartment of Electrical Engineering, Cheng-Shiu University, Kaohsiung 833, TaiwanDepartment of Electrical Engineering, Cheng-Shiu University, Kaohsiung 833, TaiwanThe purpose of this paper is to discuss an optimal operation and schedule of commerce air-conditioning system by considering the demand response in order to obtain the maximal benefit; this paper first collects the operating data of the chiller units in commercial users, calculates the cooling load of each unit, and derives the relationship between the cooling loads and power consumption of each unit. The weather information, such as temperature and humidity of inside/outside, are collected in the EXECL database, and the cooling load of the mall’s space is simulated by using the Least Square Support Vector Machine (LSSVM). Under the selected plan of power reduction, the requirement of space cooling loads, and the various operation constraints, the dispatch model of the commerce air-conditioning system with demand response strategies is formulated to minimize the total cost. A Modify Particle Swarm Optimization with Time-Varying Acceleration Coefficients (MPSO-TVAC) is proposed to solve the daily economic dispatch of the air-conditioning system. In the MPSO-TVAC procedure, the dynamic control parameters are embedded in the particle swarm of the PSO-TVAC in order to improve the behavior patterns of each particle swarm and increase its search efficiency in high dimensions. Different modifications in moving patterns of MPSO-TVAC are proposed to search the feasible space more effectively. By using MPSO-TVAC, it provides an optimal mechanism for variables regulated to increase the efficiency of the performing search and look for the probability of an optimal solution. Simulation results also provide an efficient method for commercial users to reduce their electricity bills and raise the ability of the market’s competition.https://www.mdpi.com/2411-5134/7/3/69air-conditioning systemparticle swarm optimizationdemand responseleast square support vector machine |
spellingShingle | Ching-Jui Tien Chung-Yuen Yang Ming-Tang Tsai Chin-Yang Chung The Optimal Operation and Dispatch of Commerce Air-Conditioning System by Considering Demand Response Strategies Inventions air-conditioning system particle swarm optimization demand response least square support vector machine |
title | The Optimal Operation and Dispatch of Commerce Air-Conditioning System by Considering Demand Response Strategies |
title_full | The Optimal Operation and Dispatch of Commerce Air-Conditioning System by Considering Demand Response Strategies |
title_fullStr | The Optimal Operation and Dispatch of Commerce Air-Conditioning System by Considering Demand Response Strategies |
title_full_unstemmed | The Optimal Operation and Dispatch of Commerce Air-Conditioning System by Considering Demand Response Strategies |
title_short | The Optimal Operation and Dispatch of Commerce Air-Conditioning System by Considering Demand Response Strategies |
title_sort | optimal operation and dispatch of commerce air conditioning system by considering demand response strategies |
topic | air-conditioning system particle swarm optimization demand response least square support vector machine |
url | https://www.mdpi.com/2411-5134/7/3/69 |
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