KJACR
Korean Journal of
Air-Conditioning and Refrigeration Engineering
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ISSN : 1229-6422 (Print)
ISSN : 2465-7611 (Online)
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Korean Journal of Air-Conditioning and Refrigeration Engineering
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Korean J. Air-Cond. Refrig. Eng.
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ISSN : 1229-6422 (Print)
ISSN : 2465-7611 (Online)
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2023-09
(Vol.35 No.09)
10.6110/KJACR.2023.35.9.451
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References
1
Bass, B. and New, J., 2022, How will United States Commercial Building Energy Use be Impacted by IPCC Climate Scenarios?, Energy, Vol. 263, No. E, p. 125945.
2
Delmastro, C., Bienassis, T., Goodson, T., Lane, K., Marois, J-B., Martinez-Gordon, R., and Husek, M., 2022, IEA Buildings Sectorial overview, International Energy Agency.
3
Sartori, I., Napolitano, A. and Voss, K., 2012, Net Zero Energy Buildings: A Consistent Definition Framework, Energy and Buildings, Vol. 48, pp. 220-232.
4
Attia S., 2018, Net Zero Energy Buildings (NZEB): Concepts, Frameworks and Roadmap for Project Analysis and Implementation, Butterworth-Heinemann, Elsevier.
5
Marszal, A. J., Heiselberg, P., Bourrelle, J. S., Musall, E., Voss, K., Sartori, I., and Napolitano, A. 2011, Zero Energy Building: A Review of Definitions and Calculation Methodologies, Energy and Buildings, Vol. 43, No. 4, pp. 971-979.
6
Torcellini, P., Pless, S., and Deru, M., Zero Energy Buildings: A Critical Look at the Definition, ACEEE Summer Study, Long Beach, California, 14-18 August 2006.
7
Peterson, K., Torcellini, P., Grant, R., Taylor C., Punjabi, S., Diamond, R., Colker, R., Moy, G. and Kennett, E., 2015, A Common Definition for Zero Energy Buildings, The National Institute of Building Sciences, the U.S. Department of Energy.
8
Directive of the European Parliament and of the Council on the energy performance of buildings (recast), Official Journal of the European Union, 18/06/2010.
9
González-Torres, M. Pérez-Lombard, L. Coronel, J. F., Maestre, I. R., and Yan, D., 2022, A Review on Buildings Energy Information: Trends, End-uses, Fuels and Drivers, Energy Reports, Vol. 8, pp. 626-637.
10
Emmi, G., Zarrella, A., De Carli, M., and Galgaro, A., 2015, Solar Assisted Ground Source Heat Pump in Cold Climates, Energy Procedia, Vol. 82, pp. 623-629.
11
Wemhoener, C., Schwarz, R., and Rominger, L., 2017, IEA HPT Annex 49–Design and Integration of Heat Pumps in nZEB, Energy Procedia, Vol. 122, pp. 661-666.
12
Wu, W., Skye, H. M., and Domanski, P. A., 2018, Selecting HVAC Systems to Achieve Comfortable and Cost-effective Residential Net-zero Energy Buildings, Applied Energy, Vol. 212, pp. 577-591.
13
Wu, W. and Skye, H. M., 2018, Net-zero Nation: HVAC and PV Systems for Residential Net-zero Energy Buildings Across the United States, Energy Conversion and Management, Vol. 177, pp. 605-628.
14
Aranguren, P., DiazDeGarayo, S., Martínez, A., Araiz, M. and Astrain, D., 2019, Heat Pipes Thermal Performance for a Reversible Thermoelectric Cooler-heat Pump for a nZEB, Energy and Buildings, Vol. 187, pp. 163-172.
15
Tian, S., Su, X., Li, H., and Huang, Y., 2021, Using a Coupled Heat Pump Desiccant Wheel System to Improve Indoor Humidity Environment of nZEB in Shanghai: Analysis and Optimization, Building and Environment, Vol. 206, p. 108391.
16
Gondal, I. A., 2021, Prospects of Shallow Geothermal Systems in HVAC for NZEB, Energy and Built Environment, Vol. 2, No. 4, pp. 425-435.
17
Delač, B., Pavković, B., Lenić, K., and Mađerić, D., 2022, Integrated Optimization of the Building Envelope and the HVAC System in nZEB Refurbishment, Applied Thermal Engineering, Vol. 211, p. 118442.
18
D'Agostino, D., Minichiello, F., Petito, F., Renno, C., and Valentino, A., 2022, Retrofit Strategies to Obtain a NZEB Using Low Enthalpy Geothermal Energy Systems, Energy, Vol. 239, p. 122307.
19
Ye, M., Nagano, K., Serageldin, A. A., and Sato, H., 2023, Field Studies on the Energy Consumption and Thermal Comfort of a nZEB Using Radiant Ceiling Panel and Open-loop Ground Water Heat Pump System in a Cold Region, Journal of Building Engineering, Vol. 67, p. 105999.
20
Cho, J., Park, B., and Lim, T., 2019, Experimental and Numerical Study on the Application of Low-temperature Radiant Floor Heating System with Capillary Tube: Thermal Performance Analysis, Applied Thermal Engineering, Vol. 163, p. 114360.
21
Ren, C. and Cao, S. J., 2019, Development and Application of Linear Ventilation And Temperature Models for Indoor Environmental Prediction and HVAC Systems Control, Sustainable Cities and Society, Vol. 51, p. 101673.
22
NG, L. C. and Payne, W. V., 2016, Energy use Consequences of Ventilating a Net-zero Energy House, Applied thermal engineering, Vol. 96, pp. 151-160.
23
Ascione, F., D'Agostino, D., Marino, C., and Minichiello, F., 2016, Earth-to-air Heat Exchanger for NZEB in Mediterranean Climate, Renewable Energy, Vol. 99, pp. 553-563.
24
Rey-Hernández, J. M., José-Alonso, J. F. S., Velasco-Gómez, E., Yousif, C., and Rey-Martínez, F. J., 2020 Performance Analysis of a Hybrid Ventilation System in a Near Zero Energy Building, Building and Environment, Vol. 185, p. 107265.
25
Colclough, S., Kinnane, O., Hewitt, N. and Griffiths, P., 2018, Investigation of nZEB Social Housing Built to the Passive House Standard, Energy and Buildings, Vol. 179, pp. 344-359.
26
Li, X., Lin, A., Young, C. H., Dai, Y., and Wang, C. H., 2019, Energetic and Economic Evaluation of Hybrid Solar Energy Systems in a Residential Net-zero Energy Building, Applied Energy, Vol. 254, 113709.
27
Magrini, A., Lentini, G., Cuman, S., Bodrato, A., and Marenco, L., 2020, From Nearly Zero Energy Buildings (NZEB) to Positive Energy Buildings (PEB): The Next Challenge-The Most Recent European Trends with Some Notes on the Energy Analysis of a Forerunner PEB Example, Developments in the Built Environment, Vol. 3, p. 100019.
28
Rey-Hernández, J. M., Velasco-Gómez, E., San José-Alonso, J. F., Tejero-Gonzalez, A., and Rey-Martinez, F. J., 2018, Energy Analysis at a Near Zero Energy Building: A Case-study in Spain, Energies, Vol. 11, No. 4, p. 857.
29
Harkouss, F., Fardoun, F., and Biwole, P. H., 2019, Optimal Design of Renewable Energy Solution Sets for Net Zero Energy Buildings, Energy, Vol. 179, pp. 1155-1175.
30
Boccalatte, A., Fossa, M., and Ménézo, C., 2020, Best Arrangement of BIPV Surfaces for Future NZEB Districts while Considering Urban Heat Island Effects and the Reduction of Reflected Radiation from Solar Façades, Renewable Energy, Vol. 160, pp. 686-697.
31
García-Gáfaro, C., Escudero-Revilla, C., Flores-Abascal, I., Hidalgo-Betanzos, J. M., and Erkoreka-González, A., 2022, A Photovoltaic Forced Ventilated Façade (PV-FVF) as Heat Source for a Heat Pump: Assessing its Energetical Profit in nZEB Buildings, Energy and Buildings, Vol. 261, p. 111979.
32
Bosu, I., Mahmoud, H., Ookawara, S., and Hassan, H., 2023, Applied Single and Hybrid Solar Energy Techniques for Building Energy Consumption and Thermal Comfort: A Comprehensive Review, Solar Energy, Vol. 259, pp. 188-228.
33
Cho, J., Shin, S., Kim, J., and Hong, H., 2014, Development of an Energy Evaluation Methodology to Make Multiple Predictions of the HVAC&R System Energy Demand for Office Buildings, Energy and Buildings, Vol. 80, pp. 169-183.
34
Cho, J., Kim, J., Lee, S., and Koo, J., 2016, A bi-directional Systematic Design Approach to Energy Optimization for Energy-efficient Buildings, Energy and Buildings, Vol. 120, pp. 135-144.
35
Cho, J., Kim, Y., Koo, J., and Park, W., 2018, Energy-cost Analysis of HVAC System for Office Buildings: Development of a Multiple Prediction Methodology for HVAC System Cost Estimation, Energy and Buildings, Vol. 173, pp. 562-576.
36
Goenaga-Pérez, A., Álvarez-Sanz, M., Terés-Zubiaga, J., and Campos-Celador, A., 2023, Cost-effectiveness and Minimum Requirements of nZEB for Residential Buildings under the New Spanish Technical Building Code, Energy and Buildings, Vol. 287, p. 112986.
37
Fatemi, A., Heidarinejad, G., Targhi, M. Z., and Safarzadeh, M., 2023, Energy Simulation and Life Cycle Cost Discussion for a Novel Fixed Model in Offices as a Zero Energy Building in a Country with Hot and Cold Dry Weather, Energy Conversion and Management, Vol. 277, p. 116604.
38
Krarti M. and Ihm, P., 2016, Evaluation of Net-zero Energy Residential Buildings in the MENA Region, Sustainable Cities and Society, Vol. 22, pp. 116-125.
39
Leiria, D., Johra, H., Marszal-Pomianowska, A., and Pomianowski, M. Z., 2023, A Methodology to Estimate Space Heating and Domestic Hot Water Energy Demand Profile in Residential Buildings from Low-resolution Heat Meter Data, Energy, Vol. 263, No, B, p. 125705.
40
George, D., Pearre, N. S., and Swan, L. G., 2015, High Resolution Measured Domestic Hot Water Consumption of Canadian Homes, Energy and Buildings, Vol. 109, pp. 304-315.
41
Ahmed, K., Pylsy, P., and Kurnitski, J., 2015, Monthly Domestic Hot Water Profiles for Energy Calculation in Finnish Apartment Buildings, Energy and Buildings, Vol. 97, pp. 77-85.
42
Ahmed, K., Pylsy, P., and Kurnitski, J., 2016, Hourly Consumption Profiles of Domestic Hot Water for Different Occupant Groups in Dwellings, Solar Energy, Vol. 137, pp. 516-530.
43
Santiago, J., Rodriguez-Villalón, O., and Sicre, B., 2017, The Generation of Domestic Hot Water Load Profiles in Swiss Residential Buildings Through Statistical Predictions, Energy and Buildings, Vol. 141, pp. 341-348.
44
Marszal-Pomianowska, A., Valeva, B., Georgieva, V., Larsen, O. K., Jensen, R. L., and Zhang, C., 2019, High Resolution Measuring System for Domestic Hot Water Consumption, Development and Field Test, Energy Procedia, Vol. 158, pp. 2859-2864.
45
Ivanko, D., Walnum, H. T., and Nord, N., 2020, Development and Analysis of Hourly DHW Heat Use Profiles in Nursing Homes in Norway, Energy and Buildings, Vol. 222, p. 110070.
46
Lee, J. Y. and Yim, T., 2021, Energy and Flow Demand Analysis of Domestic Hot Water in an Apartment Complex Using a Smart Meter, Energy, Vol. 229, p. 120678.
47
Meireles, I., Sousa, V., Bleys, B., and Poncelet, B., 2022, Domestic Hot Water Consumption Pattern: Relation with Total Water Consumption and Air Temperature, Renewable and Sustainable Energy Reviews, Vol. 157, pp. 112035.
48
Zhou, X., Tian, S., An, J., Yan, D., Zhang, L., and Yang, J., 2022, Modeling Occupant Behavior’s Influence on the Energy Efficiency of Solar Domestic Hot Water Systems, Applied Energy, Vol. 309, p. 118503.
49
Gelažanskas, L. and Gamage, K. A. A., 2015, Forecasting Hot Water Consumption in Residential Houses, Energies, Vol. 8, No. 11, pp. 12702-12714.
50
Ivanko, D., Sørensen, Å. L., and Nord, N., 2020, Selecting the Model and Influencing Variables for DHW Heat use Prediction in Hotels in Norway, Energy and Buildings, Vol. 228, p. 110441.
51
Heidari, A. and Khovalyg, D., 2020, Short-term Energy Use Prediction of Solar-assisted Water Heating System: Application Case of Combined Attention-based LSTM and Time-series Decomposition, Solar Energy, Vol. 207, pp. 626-639.
52
Maltais, L-G. and Gosselin, L., 2021, Predictability Analysis of Domestic Hot Water Consumption with Neural Networks: From Single Units to Large Residential Buildings, Energy, Vol. 229, p. 120658.
53
Maltais, L-G. and Gosselin, L., 2022, Energy Management of Domestic Hot Water Systems with Model Predictive Control and Demand Forecast Based on Machine Learning, Energy Conversion and Management: X, Vol. 15, p. 100254.
54
Heidari, A., Olsen, N., Mermod, P., Alahi, A., and Khovalyg, D., 2021, Adaptive Hot Water Production Based on Supervised Learning, Sustainable Cities and Society, Vol. 66, pp. 102625.
55
Pérez-Fargallo, A., Bienvenido-Huertas, D., Contreras-Espinoza, S., and Marín-Restrepo, L., 2022, Domestic Hot Water Consumption Prediction Models Suited for Dwellings in Central-southern Parts of Chile, Journal of Building Engineering, Vol. 49, p. 104024.
56
Sousa, V. and Meireles, I., 2022, Dynamic Simulation of the Energy Consumption and Carbon Emissions for Domestic Hot Water Production in a Touristic Region, Journal of Cleaner Production, Vol. 355, p. 131828.
57
Kazmi, H., D’Oca, S., Delmastro, C., Lodeweyckx, S., and Corgnati, S. P., 2016, Generalizable Occupant-driven Optimization Model for Domestic hot Water Production in NZEB, Applied Energy, Vol. 175, pp. 1-15.
58
An, J., Yan, D., Deng, G. and Yu, R., 2016, Survey and Performance Analysis of Centralized Domestic Hot Water System in China, Energy and Buildings, Vol. 133, pp. 321-334.
59
Wang, Z., Guo, P., Zhang, H., Yang, W., and Mei, S., 2017, Comprehensive Review on the Development of SAHP for Domestic Hot Water, Renewable and Sustainable Energy Reviews, Vol. 72, pp. 871-881.
60
Kitzberger, T., Kilian, D., Kotik, J., and Pröll, T., 2019, Comprehensive Analysis of the Performance and Intrinsic Energy Losses of Centralized Domestic Hot Water (DHW) Systems in Commercial (educational) Buildings, Energy and Buildings, Vol. 195, pp. 126-138.
61
Velasco, F. J. S., Haddouche, M. R., Illán-Gómez, F., and García-Cascales, J. R., 2022, Experimental Characterization of the Coupling and Heating Performance of a CO2 Water-to-water Heat Pump and a Water Storage Tank for Domestic Hot Water Production System, Energy and Buildings, Vol. 265, p. 112085.
62
Moss, R. W. and Critoph, R. E., 2022, Optimisation of a Recirculating Domestic Hot Water System to Minimise Wait Time and Heat Loss, Energy and Buildings, Vol. 260, p. 111850.