Energy benchmarking of water heating systems in social housing

Authors

DOI:

https://doi.org/10.46421/encac.v17i1.3788

Keywords:

Hot water, Energy efficiency, Energy benchmark, Social housing

Abstract

The objective of this work is to perform a benchmarking (comparative analysis) of residential water heating systems and to evaluate the application in different cities in Brazil. The energy efficiency tables for electric showers, gas heaters and solar water heating components made available by IPT and INMETRO were evaluated. The data from the different appliances was analysed and discussions were presented on how the interpretations can help designers understand which system to use and how to compare them energetically. Next, the sizing of four water heating systems was performed by means of the methodology made available by the Inmetro Normative Instruction for the Energy Efficiency Rating of Residential Buildings (INI-R), of Ordinance no. 309 of September 6, 2022. The four systems considered were: electric showers, gas water heater, electric boiler with accumulation and solar heating with electric support. A housing unit in a multi-family building was chosen and its use was evaluated in twelve different Brazilian cities with different bioclimatic zones. The results were used to compare primary energy consumption with energy benchmarking. Primary energy consumption varied between 1599 and 3226 kWh/year for electric showers, and the use of solar energy supplied between 24 and 100% of the energy for water heating. One can also perceive that electric showers had less impact in locations with lower hot water demand, such as buildings in the North and Northeast of the country. Overall, one hopes to assist designers with information on the energy efficiency of water heating.

Author Biographies

Igor Catão Martins Vaz, Federal University of Santa Catarina

Master's degree in Civil Engineering from the Federal University of Santa Catarina. PhD student in Civil Engineering at the Federal University of Santa Catarina (Florianópolis - SC, Brazil).

Matheus Geraldi, Federal University of Santa Catarina

Doctorate in Civil Engineering from the Federal University of Santa Catarina. Post-doctoral student in Civil Engineering at the Federal University of Santa Catarina (Florianópolis - SC, Brazil).

Renata De Vecchi, Federal University of Santa Catarina

Doctorate in Civil Engineering from the Federal University of Santa Catarina. Post-doctoral student in Civil Engineering at the Federal University of Santa Catarina (Florianópolis - SC, Brazil).

Ana Paula Melo, Federal University of Santa Catarina

Doctorate in Civil Engineering from the Federal University of Santa Catarina. `Professor at the Federal University of Santa Catarina (Florianópolis - SC, Brazil).

Roberto Lamberts, Federal University of Santa Catarina

PhD in Civil Engineering from the University of Leeds. Professor at the Federal University of Santa Catarina (Florianópolis - SC, Brazil).

Enedir Ghisi, Federal University of Santa Catarina

PhD in Civil Engineering from the University of Leeds. Professor at the Federal University of Santa Catarina (Florianópolis - SC, Brazil).

References

ABNT (Associação Brasileira de Normas Técnicas). Grupo de Trabalho de Zoneamento Bioclimático. Comissão de Estudos de Eficiência Energética e Desempenho Térmico nas Edificações. CE 002. 135007. 2023.

ALTOÉ, L.; OLIVEIRA FILHO, D.; CARLO, J. C. Análise energética de sistemas solares térmicos para diferentes demandas de água em uma residência unifamiliar. Ambiente Construído, v. 12, n. 3, p. 75–87, set. 2012.

BOOYSEN, M. J. et al. How much energy can optimal control of domestic water heating save? Energy for Sustainable Development, v. 51, p. 73–85, ago. 2019.

BRASIL. Portaria Nº 309, de 6 de setembro de 2022. Aprova as Instruções Normativas e os Requisitos de Avaliação da Conformidade para a Eficiência Energética das Edificações Comerciais, de Serviços e Públicas e Residenciais – Consolidado. 2022.

EPE (Empresa de Pesquisa Energética). Balanço Energético Nacional - Relatório final (2022). Ministério de Minas e Energia. Rio de Janeiro: EPE, 2022.

GERALDI, M. S. et al. Análise longitudinal do consumo de energia elétrica do setor residencial no Brasil. XIX Encontro Nacional de Tecnologia do Ambiente Construído, n. 19, p. 14, 9 nov. 2022.

IEA (2019), The Critical Role of Buildings, IEA, Paris https://www.iea.org/reports/the-critical-role-of-buildings, License: CC BY 4.0

IEA (2022), Buildings, IEA, Paris https://www.iea.org/reports/buildings, License: CC BY 4.0

IPCC, 2022: Summary for Policymakers. In: Climate Change 2022: Mitigation of Climate Change. Contribution of Working Group III to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press, Cambridge, UK and New York, NY, USA. doi: 10.1017/9781009157926.001

INMETRO (Instituto Nacional De Metrologia, Qualidade E Tecnologia). Tabelas de consumo/eficiência energética. Disponível em: http://www.inmetro.gov.br/consumidor/tabelas.asp. Acesso em: 15 mar. 2023.

IPT (Instituto de Pesquisas Tecnológicas). Certificação de chuveiro elétrico. Laboratório de instalações prediais e saneamento. 2022.

PNCEE (Programa Nacional de Conservação de Energia Elétrica). Pesquisa de posse de equipamentos e hábitos de uso (PPH). 2019. Disponível em https://www.eletrobras.com/pphweb. Acesso em: 15 mar. 2023.

RAMESH, T.; PRAKASH, R.; SHUKLA, K. K. Life cycle energy analysis of buildings: An overview. Energy and Buildings, v. 42, n. 10, p. 1592–1600, out. 2010.

SANGOI, J. M.; GHISI, E. Energy Efficiency of Water Heating Systems in Single-Family Dwellings in Brazil. Water, v. 11, n. 5, p. 1068, 22 maio 2019.

SBORZ, J. et al. Hourly and daily domestic hot water consumption in social housing dwellings: An analysis in apartment buildings in Southern Brazil. Solar Energy, v. 232, p. 459–470, jan. 2022.

TEIXEIRA, C. A. et al. Bottom-up modelling of electricity end-use consumption of the residential sector in Brazil. Ambiente Construído, v. 22, n. 3, p. 113–131, set. 2022.

UNITED NATIONS. Sustainable Development Goals. Goal 7 - Ensure access to affordable, reliable, sustainable and modern energy for all. Disponível em: https://sdgs.un.org/goals/goal7. Acesso em: 15 mar. 2023.

VECHI, M.; GHISI, E. Evaluation of Water Heating Systems Through Life Cycle Assessment. European Journal of Sustainable Development, v. 7, n. 3, 1 jul. 2018.

WILLEM, H.; LIN, Y.; LEKOV, A. Review of energy efficiency and system performance of residential heat pump water heaters. Energy and Buildings, v. 143, p. 191–201, maio 2017.

Published

2023-10-26

How to Cite

VAZ, Igor Catão Martins; GERALDI, Matheus; VECCHI, Renata De; MELO, Ana Paula; LAMBERTS, Roberto; GHISI, Enedir. Energy benchmarking of water heating systems in social housing. In: ENCONTRO NACIONAL DE CONFORTO NO AMBIENTE CONSTRUÍDO, 17., 2023. Anais [...]. [S. l.], 2023. p. 1–10. DOI: 10.46421/encac.v17i1.3788. Disponível em: https://eventos.antac.org.br/index.php/encac/article/view/3788. Acesso em: 5 jul. 2024.

Issue

Section

5. Eficiência Energética

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