LAPSE:2023.21954
Published Article

LAPSE:2023.21954
Formulation of Coefficient of Performance Characteristics of Water-cooled Chillers and Evaluation of Composite COP for Combined Chillers
March 23, 2023
Abstract
The Coefficient of Performance of an ordinary water-cooled chiller is presented as a relationship with the chiller load factor and cooling water temperature. However, the cooling water temperature fluctuates according to the processed heat of the cooling tower originating in the cooling energy of the chiller and to the outside temperature and humidity. It is therefore difficult to obtain the cooling water temperature under the processed-heat and weather conditions at the time of evaluation. This, in turn, makes it difficult to determine the Coefficient of Performance of a water-cooled chiller at the evaluation time. In this research, we formulated the Coefficient of Performance of a water-cooled chiller as a relationship with the chiller load factor and specific enthalpy of outside air. Specifically, we used the Number of Transfer Units (NTU) model of a cooling tower to calculate the cooling water temperature corresponding to the cooling-tower load factor targeting a counterflow cooling tower for a range of values of outside-air specific enthalpy. This technique makes it possible to evaluate the Coefficient of Performance of a water-cooled chiller without determining the cooling water temperature. Furthermore, for the case of installing multiple units of chillers, it becomes possible to calculate the composite Coefficient of Performance of those chillers without having to determine the cooling water temperatures for the different operation load factors of those chillers. Moreover, since the composite Coefficient of Performance can be calculated by combining the different installation capacities of these chillers, the energy consumption of multiple chillers can be calculated at the basic planning stage.
The Coefficient of Performance of an ordinary water-cooled chiller is presented as a relationship with the chiller load factor and cooling water temperature. However, the cooling water temperature fluctuates according to the processed heat of the cooling tower originating in the cooling energy of the chiller and to the outside temperature and humidity. It is therefore difficult to obtain the cooling water temperature under the processed-heat and weather conditions at the time of evaluation. This, in turn, makes it difficult to determine the Coefficient of Performance of a water-cooled chiller at the evaluation time. In this research, we formulated the Coefficient of Performance of a water-cooled chiller as a relationship with the chiller load factor and specific enthalpy of outside air. Specifically, we used the Number of Transfer Units (NTU) model of a cooling tower to calculate the cooling water temperature corresponding to the cooling-tower load factor targeting a counterflow cooling tower for a range of values of outside-air specific enthalpy. This technique makes it possible to evaluate the Coefficient of Performance of a water-cooled chiller without determining the cooling water temperature. Furthermore, for the case of installing multiple units of chillers, it becomes possible to calculate the composite Coefficient of Performance of those chillers without having to determine the cooling water temperatures for the different operation load factors of those chillers. Moreover, since the composite Coefficient of Performance can be calculated by combining the different installation capacities of these chillers, the energy consumption of multiple chillers can be calculated at the basic planning stage.
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Keywords
Coefficient of Performance, cooling tower, cooling water temperature, energy consumption, equipment master planning, outside air specific enthalpy, partial load, water-cooled chiller
Subject
Suggested Citation
Yamamoto T, Hayama H, Hayashi T. Formulation of Coefficient of Performance Characteristics of Water-cooled Chillers and Evaluation of Composite COP for Combined Chillers. (2023). LAPSE:2023.21954
Author Affiliations
Yamamoto T: Intee Corporation, 2−14 Nihonbashi 3 Chome, Chuoku, Tokyo 103−0027, Japan
Hayama H: Division of Human Environmental System, Faculty of Engineering, Hokkaido University, N13-W8, Kita-ku, Sapporo 060−8628, Japan [ORCID]
Hayashi T: Hirosawa Electric Corporation, 2−13−14 Nishikoujiya, Ohtaku, Tokyo 144−0034, Japan
Hayama H: Division of Human Environmental System, Faculty of Engineering, Hokkaido University, N13-W8, Kita-ku, Sapporo 060−8628, Japan [ORCID]
Hayashi T: Hirosawa Electric Corporation, 2−13−14 Nishikoujiya, Ohtaku, Tokyo 144−0034, Japan
Journal Name
Energies
Volume
13
Issue
5
Article Number
E1182
Year
2020
Publication Date
2020-03-04
ISSN
1996-1073
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PII: en13051182, Publication Type: Journal Article
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LAPSE:2023.21954
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https://doi.org/10.3390/en13051182
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Mar 23, 2023
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