References
- A.G. Capodaglio, G. Olsson, Energy issues in sustainable
urban wastewater management: use, demand reduction and
recovery in the urban water cycle, Sustainability, 12 (2020) 266,
doi: 10.3390/su12010266.
- Urban Energy, UN-Habitat, 2022. Available at https://unhabitat.
org/topic/urban-energy
- M. Živković, D. Ivezić, Utilizing sewage wastewater heat in
district heating systems in Serbia: effects on sustainability,
Clean Technol. Environ. Policy, 24 (2021) 579–593.
- A. Castillo-Martinez, A. Gutierrez-Escolar, J.-M. Gutierrez-Martinez, J.M. Gomez-Pulido, E. Garcia-Lopez, Water label to
improve water billing in Spanish households, Water, 6 (2014)
1467–1481.
- A. Bertrand, A. Mastrucci, N. Schüler, R. Aggoune, F. Maréchal,
Characterisation of domestic hot water end-uses for integrated
urban thermal energy assessment and optimization,
Appl. Energy, 186 (2017) 152–166.
- https://globalabc.org/index.php/resources/publications/ieatracking-report-buildings (Retrieved August 15, 2022).
- https://commission.europa.eu/strategy-and-policy/priorities-2019-2024/european-green-deal_en (Retrieved
August 15, 2022).
- European Commission, Energy Efficiency and Its Contribution
to Energy Security and the 2030 Framework for Climate and
Energy Policy, 2014.
- European Commission, Directorate-General for Energy,
EU Energy in Figures: Statistical Pocketbook 2019,
Publications Office, 2019. Available at https://data.europa.eu/doi/10.2833/197947
- Net Zero by 2050 – Analysis – IEA, 2022. Available at https://www.iea.org/reports/net-zero-by-2050
- Buildings – Topics – IEA, 2022. Available at https://www.iea.org/topics/buildings
- F. Meggers, H. Leibundgut, The potential of wastewater heat
and exergy: decentralized high-temperature recovery with a
heat pump, Energy Build., 43 (2011) 879–886.
- Evolution of Households Energy Consumption Patterns
Across the EU, 2022. Available at https://www.enerdata.net/publications/executive-briefing/households-energy-efficiency.html
- Take Action for the Sustainable Development Goals – United
Nations Sustainable Development, 2022. Available at
https://www.un.org/sustainabledevelopment/sustainabledevelopment-goals/
- Directive (EU) 2018/2001 of the European Parliament and
of the Council of 11 December 2018 on the Promotion of the
Use of Energy from Renewable Sources, Official Journal of the
European Union, 2018, pp. 82–209.
- EUR-LEX, Sustainable Europe Investment Plan European Green
Deal Investment Plan, 2022. Available at https://eur-lex.europa.
eu/legal-content/EN/TXT/?uri=CELEX%3A52020DC0021
- H. Yang, L. Jieling, Construction of water ecological
infrastructure in the process of urbanization, Desal. Water
Treat., 269 (2022) 284–294.
- Y. Huibin, S. Yonghui, C. Xin. G. Hongjie, P. Jianfeng,
A scheme for a sustainable urban water environmental system
during the urbanization process in China, Engineering,
4 (2018) 190–193.
- D. Đurđević, D. Balić, B. Franković, Wastewater heat utilization
through heat pumps: the case study of City of Rijeka, J. Cleaner
Prod., 231 (2019) 207–213.
- M. Nederlof, J. Frijns, Zero Impact Water Use in the Built
Environment, C. Ravesloot, J. Kimman, R. Rovers, Eds.,
Towards 0-Impact Buildings and Built Environments,
Techne Press, Amsterdam, 2010, pp. 199–208.
- J. Frijns, J. Hofman, M. Nederlof, The potential of (waste) water
as energy carrier, Energy Convers. Manage, 65 (2013) 357–363.
- R. Yao, K. Steemers, A method of formulating energy load
profile for domestic buildings in the UK, Energy Build.,
37 (2005) 663–671.
- F. Schmid, Sewage Water: Interesting Heat Source for Heat
Pumps and Chillers, Energy-Engineer FH, 9th International IEA
Heat Pump Conference, 20–22 May 2008, Zürich, Switzerland,
2009.
- A.R. Mazhar, S. Liu, A. Shukla, A key review of non-industrial
greywater heat harnessing, Energies, 11 (2018) 386, doi: 10.3390/en11020386.
- D. Cecconet, J. Raček, A. Callegari, P. Hlavínek, Energy
recovery from wastewater: a study on heating and cooling
of a multipurpose building with sewage-reclaimed heat
energy, Sustainability, 12 (2019) 116, doi: 10.3390/su12010116.
- United Nations Environment Programme, 2021 Global Status
Report for Buildings and Construction: Towards a Zeroemission,
Efficient and Resilient Buildings and Construction
Sector, Nairobi, 2021
- R. Pintér, A. Vessey, O. Tisso, White Paper, Role of Wastewater
Heat Recovery in Decarbonising European Buildings,
WWHR Europe, Cu0270, 2020.
- M. Al-Abed Allah, M. Abu Abbas, M. Maqableh, Factorial
design of experiment for modeling solar still parameters,
Desal. Water Treat., 270 (2022) 1–11.
- M.Z. Pomianowski, H. Johra, A. Marszal-Pomianowska,
C. Zhang, Sustainable and energy-efficient domestic hot
water systems: a review, Renewable Sustainable Energy Rev.,
128 (2020) 109900, doi: 10.1016/j.rser.2020.109900.
- Opportunities for Swedish Companies in the French
Commercial Heat Pump Market. Available at: https://www.
shcbysweden.se/wp-content/uploads/2021/07/Opportunitiesfor-
Swedish-companies-in-the-French-commercial-heat-pumpmarket.
pdf (Retrieved August 15, 2022).
- H. Jouhara, N. Khordehgah, S. Almahmoud, B. Delpech,
A. Chauhan, S.A. Tassou, Waste heat recovery technologies
and applications, Therm. Sci. Eng. Prog., 6 (2018) 268–289.
- S. Kordana, K. Pochwat, D. Słyś, M. Starzec, Opportunities and
threats of implementing drain water heat recovery units in
Poland, Resources, 8 (2019) 88, doi: 10.3390/resources8020088.
- Evertherm, Five Benefits of Heat Recovery from Wastewater.
Available at https://en.evertherm.se/post/fem-fordelarmed-varmeatervinning-fran-spillvatten
- United Nations Environment Programme, 2020 Global Status
Report for Buildings and Construction: Towards a Zero-
Emission, Efficient and Resilient Buildings and Construction
Sector, Nairobi, 2020.
- United Nations Environment Programme, 2022 Global
Status Report for Buildings and Construction: Towards
a Zero‑Emission, Efficient and Resilient Buildings and
Construction Sector, Nairobi, 2022.
- IEA, Buildings, International Energy Agency, Paris, 2022.
Available at https://www.iea.org/reports/buildings
- M. González-Torres, L. Pérez-Lombard, J.F. Coronel,
I.R. Maestre, D. Yan, A review on buildings energy information:
trends, end-uses, fuels and drivers, Energy Rep., 8 (2022)
626–637.
- Intergovernmental Panel on Climate Change, Buildings,
Climate Change 2014: Mitigation of Climate Change: Working
Group III Contribution to the IPCC Fifth Assessment Report,
Cambridge University Press, 2015, pp. 671–738. doi: 10.1017/CBO9781107415416.015
- Emissions by Sector. Our World in Data, 2022. Available at
https://ourworldindata.org/emissions-by-sector
- J. Leung, Decarbonizing U.S. buildings, Center for Climate and
Energy Solutions, 2018, Available at https://www.c2es.org/document/decarbonizing-u-s-buildings/
- IEA, Tracking Building Envelopes 2020 – Analysis, International
Energy Agency, 2022, Available at https://www.iea.org/reports/building-envelopes
- M. Santamouris, K. Vasilakopoulou, Present and future energy
consumption of buildings: challenges and opportunities
towards decarbonisation, e-prime – Adv. Electr. Eng. Electron.
Energy, 1 (2021) 100002, doi: 10.1016/j.prime.2021.100002.
- U.S. Energy Information Administration, Annual Energy
Outlook 2022, (AEO2022), Buildings.
- Eurostat, Statistics Explained, Statistics Explained, 2022.
Available at https://ec.europa.eu/eurostat/statistics-explained/index.php?title=Energy_consumption_in_households#Energy_consumption_in_households_by_type_of_end-use
- S.S. Cipolla, M. Maglionico, Heat recovery from urban wastewater: analysis of the variability of flow rate and
temperature, Energy Build., 69 (2014) 122–130.
- European Environment Agency, (2021, October 26),
Greenhouse Gas Emissions from Energy Use in Buildings
in Europe, European Environment Agency, 2022. Available
at https://www.eea.europa.eu/data-and-maps/indicators/
greenhouse-gas-emissions-from-energy/assessment
- S.F. Ali, A. Gillich, Opportunities to decarbonize heat in the
UK using urban wastewater heat recovery, Build. Serv. Eng.
Res. Technol., 42 (2021) 715–732.
- P. Eslaminejab, M. Bernier, Impact of Grey Water Heat
Recovery on the Electrical Demand of Domestic Hot Water
Heaters, Proceedings: 11th International Building Performance
Simulation Association Conference and Exhibition,
University of Strathclyde, Glasgow, 2009, pp. 681–687.
- D.J. Lee, N.S. Park, W. Jeong, End-use analysis of household
water by metering: the case study in Korea, Water Environ. J.,
26 (2012) 455–464.
- H. Nagpal, J. Spriet, M. Murali, A. McNabola, Heat recovery
from wastewater—a review of available resource, Water,
13 (2021) 1274, doi: 10.3390/w13091274.
- S.S. Cipolla, M. Maglionico, Heat recovery from urban
wastewater: analysis of the variability of flow rate and
temperature in the sewer of Bologna, Italy, Energy Procedia,
45 (2014) 288–297.
- L. Ni, S.K. Lau, H. Li, T. Zhang, J.S. Stansbury, J. Shi, J. Neal,
Feasibility Study of a localized residential grey water energyrecovery
system, Appl. Therm. Eng., 39 (2012) 53–62.
- D. Saker, M. Vahdati, P.J. Coker, S. Millward, Assessing the
benefits of domestic hot fill washing appliances, Energy Build.,
93 (2015) 282–294.
- A.R. Davila, M.C.E. Cejudo, K. Stoughton, Domestic Hot Water
Temperature Maintenance Technology Review, Technical
Report PNNL-SA-156938, United States, 2021. doi: 10.2172/1813897
- B. Piotrowska, D. Słyś, Comprehensive analysis of the state of
technology in the field of waste heat recovery from grey water,
Energies, 16 (2023), doi: 10.3390/en16010137.
- A.G. Capodaglio, P. Ghilardi, J. Boguniewicz-Zablocka, New
paradigms in urban water management for conservation
and sustainability, Water Pract. Technol., 11 (2016) 176–186.
- K. Ip, K. She, K. Adeyeye, Life-cycle impacts of shower water
waste heat recovery: case study of an installation at a university
sport facility in the UK, Environ. Sci. Pollut. Res., 25 (2017)
19247–19258.
- M. Arnell, E. Lundin, U. Jeppsson, Sustainability Analysis
for Wastewater Heat Recovery – Literature Review, Technical
Report, Division of Industrial Electrical Engineering and
Automation, Lund University, LUTEDX/(TEIE-7267)/1-41, 2017.
- F. Golzar, S. Silveira, Impact of wastewater heat recovery in
buildings on the performance of centralized energy recovery
– a case study of Stockholm, Appl. Energy, 297 (2021) 117141,
doi: 10.1016/j.apenergy.2021.117141.
- R. Červín, T. Matuška, Wastewater Recovery System with Heat
Pump for Hot Water Preparation, IOP Conf. Ser.: Earth Environ.
Sci., 290 (2019) 012091, doi: 10.1088/1755-1315/290/1/012091.
- L. Liu, L. Fu, Y. Jiang, Application of an exhaust heat recovery
system for domestic hot water, Energy, 35 (2010) 1476–1481.
- M. Sandu, A. Albaiyati, I. Nastase, P. Danca, F. Bode,
C. Croitoru, Advanced Solutions to Improve Heat Recovery
From Wastewater in a Double Heat Exchanger, CLIMA 2022,
Conference, 2022. Available at https://doi.org/10.34641/
clima.2022.429
- S. Kordana-Obuch, M. Starzec, D. Słyś, Assessment of the
feasibility of implementing shower heat exchangers in
residential buildings based on users’ energy saving preferences,
Energies, 14 (2021) 5547, doi: 10.3390/en14175547.
- S. Chao, J. Yiqiang, Y. Yang, D. Shiming, W. Xinlei, A field study
of a wastewater source heat pump for domestic hot water
heating, Build. Serv. Eng. Res. Technol., 34 (2012) 433–448.
- X. Liu, L. Ni, S.K. Lau, H. Li, Performance analysis of a multifunctional
heat pump system in cooling mode, Appl. Therm.
Eng., 59 (2013) 253–266.
- R. Vavřička, J. Boháč, M. Tomáš, Experimental development
of the plate shower heat exchanger to reduce the domestic
hot water energy demand, Energy Build., 254 (2022) 111536,
doi: 10.1016/j.enbuild.2021.111536.
- J. Wallin, Case studies of four installed wastewater heat recovery
systems in Sweden, Case Stud. Therm. Eng., 26 (2021) 101108,
doi: 10.1016/j.csite.2021.101108.
- A.G. del Amo, A.A. Lopez, Drain Water Heat Recovery in a
Residential Building, Master Thesis, Faculty of Engineering and
Sustainable Development, University of Gävle, 2015.
- L.T. Wong, K.W. Mui, Y. Guan, Shower water heat recovery in
high-rise residential buildings of Hong Kong, Appl. Energy,
87 (2010) 703–709.
- J. Dong, Z. Zhang, Y. Yao, Y. Jiang, B. Lei, Experimental
performance evaluation of a novel heat pump water heater
assisted with shower drain water, Appl. Energy, 154 (2015)
842–850.
- https://celsiuscity.eu/sewage-budapest/ (Retrieved August 15,
2022).
- S. Selimli, I.A. Eljetlawi, The experimental study of thermal
energy recovery from Shower Greywater, Energy Sources Part
A, 43 (2020) 3032–3044.
- Unlocking the Potential of Renewable Energy Sources, Make
New From Old – Innovative Wastewater Heat Recovery
for the Swimming Pool on Sachsendam, 2022. Available
at https://konventderbuergermeister.eu/support/library.
html?tmpl=response&start=175&tmpl=response
- J. Liebersbach, A. Żabnieńska-Góra, I. Polarczyk, M.A. Sayegh,
Feasibility of grey water heat recovery in indoor swimming
pools, Energies, 14 (2021) 4221, doi: 10.3390/en14144221.
- Three Huber Projects for Wastewater Heat Recovery in
Switzerland, Three HUBER Projects for Wastewater Heat
Recovery in Switzerland – HUBER SE, 2022. Available at:
https://www.huber.de/huber-report/ablage-berichte/energyfrom-wastewater/three-huber-projects-for-wastewaterheat-
recovery-in-switzerland.html
- Tornik’s Energetic, Inzenjer.net –Information and Inspiration
for Engineers, 2020. Available at: https://www.inzenjer.net/projekti/tornikova-energana/ (in Serbian).
- F. Loveridge, A. Schellart, S. Rees, R. Stirling, D. Taborda, S. Tait,
L. Alibardi, G. Biscontin, P. Shepley, I. Shafagh, W. Shepherd,
A. Yildiz, B. Jefferson, The Potential for Heat Recovery and
Thermal Energy Storage in the UK Using Buried Infrastructure,
Proceedings of the Institution of Civil Engineers – Smart
Infrastructure and Construction, 2022, pp. 10–26. doi: 10.1680/jsmic.21.00018
- A Renovation Wave for Europe – Greening our Buildings,
Creating Jobs, Improving Lives, Brussels, 14.10.2020 COM,
2020. Available at https://eur-lex.europa.eu/legal-content/EN/TXT/HTML/?uri=CELEX:52020DC0662
- J. Spiter, S. Gehlin, Measured performance of a mixed-use
commercial-building ground source heat pump system in
Sweden, Energies, 12 (2019), doi: 10.3390/en12102020.
- P. Sevela, J. Frenger, J. Schnieders, R. Pfluger, Potential of
Wastewater Heat Recovery in Reducing the EU’s Energy Need,
CLIMA 2022 Conference, REHVA 14th HVAC World Congress,
22nd–25th May, Rotterdam, The Netherlands, 2022. doi: 10.34641/clima.2022.439
- J. Spriet, A. McNabola, Decentralized drain water heat
recovery: interaction between wastewater and heating
flows on a single residence scale, Proceedings, 2 (2018) 583,
doi: 10.3390/proceedings2110583.
- European Association for Wastewater Heat Recovery,
Unlocking the potential of Wastewater Heat Recovery in the
Recast of the EPBD, Position of the European Association
for Wastewater Heat Recovery on the Proposed Recast of the
Energy Performance of Buildings Directive (EPBD), 2022.
Available at https://copperalliance.org/resource/unlockingt-he-potential-of-waste-water-heat-recovery-in-the-recast-of-the-epbd/
- J. Dieckmann, A. Cooperman, J. Brodrick, Drain water heat
recovery, ASHRAE J., 53 (2011) 58–64.
- S. Kordana-Obuch, SWOT Analysis of Wastewater Heat
Recovery Systems Application, E3S Web of Conferences, 9th
Conference on Interdisciplinary Problems in Environmental
Protection and Engineering EKO-DOK, 17 00042, 2017. doi: 10.1051/e3sconf/20171700042.