Abstract
The performance of air conditioning systems deteriorate due to the natural aging and wear caused by operating the devices. This is termed “aging degradation,” and it results from a lack of appropriate maintenance which accelerates the degree of performance degradation. The performance degradation of an air conditioning system can cause problems such as increased energy consumption, deteriorated indoor heating environment, and shortened lifespan of air conditioning equipment. To prevent such problems, it is important to establish a long-term maintenance plan to recover degraded performance, such as predicting an appropriate maintenance time by identifying the real-time performance degradation rate based on a system’s operation data. In this study, the performance degradation rate, according to the operating time, was estimated using long-term operation data for devices constituting a heat source system, and the effect of performance degradation of the heat source system’s operation and energy consumption was reviewed using a simulation. The performance degradation rate of the target device was estimated by analyzing the variation trend of the calibration coefficient, which was calculated when the initial performance prediction model was calibrated through operating data. Using this approach, it was confirmed that the annual performance degradation rate was 1.0–1.4% for the heat source equipment, 0.4–1.2% for the cooling towers, and 0.8–1.3% for the pumps. In addition, a heat source system energy simulation calculated the 15-year performance degradation of the heat source equipment to be 34–52% and 7–19% for both the cooling towers and pumps. Due to the equipment performance deterioration, the number of operating heat source equipment and cooling tower fans, and the pump flow rate gradually increased every year, thus accelerating the performance deterioration even further. As a result, energy consumption in the 15th year increased by approximately 41% compared with the initial energy consumption.
Funder
Ministry of Health and Welfare, Republic of Korea
Subject
Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction
Reference15 articles.
1. (2022, November 29). The 2050 Carbon Neutrality and Green Growth Commission, Available online: https://2050cnc.go.kr.
2. (2022, November 29). South Korea Ministry of Land, Infrastructure and Transport, Carbon Neutral Roadmap. Available online: https://unfccc.int/sites/default/files/resource/LTS1_RKorea.pdf.
3. Griffith, B., Long, N., Torcellini, P., Judkoff, R., Crawley, D., and Ryan, J. (2008). Methodology for Modeling Building Energy Performance across the Commercial Sector, National Renewable Energy Laboratory.
4. Climate change and building aging impact on building energy performance and mitigation measures application: A case study in Turin, northern Italy;Waddicor;Build. Environ.,2016
5. Energy Solution in the Industrial and Commercial Sectors;Bannai;Hitachi Rev.,2008
Cited by
4 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献