Improving the energy consumption of a laundry washing machine through drain-water waste heat recovery

Authors

Douline Othusitse1,  Lentlhabetse Budzani1,  Kago Rabasoma1*  ID
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1 Department of Mechanical and Energy Engineering, University of Botswana, Gaborone Private Bag UB 0022, Botswana
Article ID: 710
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DOI:

https://doi.org/10.18686/cest710

Keywords:

waste heat recovery; washing machine; energy efficiency; heat recovery unit (HRU); drain water; energy savings; heat exchangers; sustainability

Abstract

In recent years, improving the energy efficiency of household appliances has become increasingly important due to rising energy costs and growing concerns about environmental sustainability. This study presents the use of waste heat recovery in a domestic laundry washing machine as a practical approach to reducing energy consumption and improving overall energy efficiency. A detailed investigation into the recovery of heat from drain water is carried out, focusing on the design, fabrication, and performance evaluation of a heat recovery unit used to preheat the incoming cold water. The study quantified the amount of heat lost in wastewater during a typical washing machine and designed a simple heat recovery unit (HRU) based on measured operating conditions. Baseline tests were first conducted under identical conditions to evaluate performance. The findings obtained indicate that the implementation of the HRU resulted in an average energy saving of 0.09 kWh per wash cycle, representing/corresponding to an approximate 14% reduction in total energy consumption on an annual basis. This translates to an estimated energy saving of 46.8 kWh per household and a reduction of 9.69 kg of CO₂ emissions. The system remains attractive due to its simplicity, low cost, and ease of implementation, despite the relatively modest annual cost savings per unit.

References

1. Shang Y, Han D, Gozgor G, et al. The impact of climate policy uncertainty on renewable and non-renewable energy demand in the United States. Renewable Energy. 2022; 197: 654–667. doi: 10.1016/j.renene.2022.07.159

2. Kümmel R, Lindenberger D, Paech N. Energy and Life. In: Energy, Entropy, Creativity. Springer; 2025. pp. 25–51. doi: 10.1007/978-3-662-65778-2_2

3. Wehbi Z, Taher R, Faraj J, et al. Waste Water Heat Recovery Systems types and applications: Comprehensive review, critical analysis, and potential recommendations. Energy Reports. 2023; 9: 16–33. doi: 10.1016/j.egyr.2023.05.243

4. Kazi SR, Short M, Isafiade AJ, et al. Heat exchanger network synthesis with detailed exchanger designs—2. Hybrid optimization strategy for synthesis of heat exchanger networks. AIChE Journal. 2021; 67(1): e17057. doi: 10.1002/aic.17057

5. Zhang D, Fang C, Gao Z, et al. Energy, environmental and economic assessment of wastewater heat recovery systems in hotel buildings. Applied Thermal Engineering. 2023; 222: 119949. doi: 10.1016/j.applthermaleng.2022.119949

6. Whitman AM. Thermodynamics: Basic Principles and Engineering Applications. Springer International Publishing; 2020.

7. Filippo C, Anjana D, Tom D, et al. Renewable Energy in Europe—2019: Recent Growth and Knock-On Effects. The European Topic Centre on Climate; 2019. Available online: https://www.eionet.europa.eu/etcs/etc-cme/products/etc-cme-reports/renewable-energy-in-europe-2019-recent-growth-and-knock-on-effects/@@download/file/ETCCME_2019_8_RESeurope.pdf

8. Spriet J, McNabola A, Neugebauer G, et al. Spatial and temporal considerations in the performance of wastewater heat recovery systems. Journal of Cleaner Production. 2020; 247: 119583. doi: 10.1016/j.jclepro.2019.119583

9. Nagpal H, Spriet J, Murali M, et al. Heat Recovery from Wastewater—A Review of Available Resource. Water. 2021; 13(9): 1274. doi: 10.3390/w13091274

10. Golzar F, Silveira S. Impact of wastewater heat recovery in buildings on the performance of centralized energy recovery – A case study of Stockholm. Applied Energy. 2021; 297: 117141. doi: 10.1016/j.apenergy.2021.117141

11. Prajapati P, Raja BD, Patel V, et al. Energy-economic analysis and optimization of a shell and tube heat exchanger using a multi-objective heat transfer search algorithm. Thermal Science and Engineering Progress. 2024; 56: 103021. doi: 10.1016/j.tsep.2024.103021

12. Ononogbo C, Nwosu EC, Nwakuba NR, et al. Opportunities of waste heat recovery from various sources: Review of technologies and implementation. Heliyon. 2023; 9(2): e13590. doi: 10.1016/j.heliyon.2023.e13590

13. Khalid R. Harnessing Modern Energy Cooking Services to Mitigate Urban Heat Stress: A Landscape Study. Modern Energy Cooking Services; 2025. Available online: https://mecs.org.uk/wp-content/uploads/2025/02/Harnessing-MECS-to-mitigate-urban-heat-stress-R-Khalid.pdf#page=4.08

14. Solon K, Volcke EIP, Spérandio M, et al. Resource recovery and wastewater treatment modelling. Environmental Science: Water Research & Technology. 2019; 5(4): 631–642. doi: 10.1039/C8EW00765A

15. Jordán-Cuebas F, Krogmann U. Laundry energy consumption in multistory buildings: Technology versus laundering practices. Journal of Building Engineering. 2026; 120: 115189. doi: 10.1016/j.jobe.2026.115189

16. Pakula C, Stamminger R. Energy and water savings potential in automatic laundry washing processes. Energy Efficiency. 2015b; 8(2): 205–222. doi: 10.1007/s12053-014-9288-0

17. Hao X, Li J, Van Loosdrecht MCM, et al. Energy recovery from wastewater: Heat over organics. Water Research. 2019; 161: 74–77. doi: 10.1016/j.watres.2019.05.106

18. Qiao L, Bai X, Liang X, et al. User behavior and energy-saving potential of electric washing machines. Energy Informatics. 2024; 7(1): 137. doi: 10.1186/s42162-024-00444-x

19. Farhat O, Faraj J, Hachem F, et al. A recent review on waste heat recovery methodologies and applications: Comprehensive review, critical analysis and potential recommendations. Cleaner Engineering and Technology. 2022; 6: 100387. doi: 10.1016/j.clet.2021.100387

20. González LML, Tabarés JLM, Alvarez MG, et al. Feasibility study for the installation of HVAC for a spa by means of energy recovery from thermal water—Part I: Analysis of conditions. Renewable Energy. 2001; 23(1): 123–134. doi: 10.1016/S0960-1481(00)00161-0

21. Łokietek T, Tuchowski W, Leciej-Pirczewska D, et al. Heat Recovery from a Wastewater Treatment Process—Case Study. Energies. 2022; 16(1): 44. doi: 10.3390/en16010044

22. Murr R, Khaled M, Faraj J, et al. Multi drain heat recovery system – Thermal modeling, parametric analysis, and case study. Energy and Buildings. 2020; 228: 110447. doi: 10.1016/j.enbuild.2020.110447

23. Wong LT, Mui KW, Guan Y. Shower water heat recovery in high-rise residential buildings of Hong Kong. Applied Energy. 2010; 87(2): 703–709. doi: 10.1016/j.apenergy.2009.08.008

24. De Paepe M, Theuns E, Lenaers S, et al. Heat recovery system for dishwashers. Applied Thermal Engineering. 2003; 23(6): 743–756. doi: 10.1016/S1359-4311(03)00016-4

25. Selimli S, Karabas T, Taskin Y, et al. Experimental study of the performance of heat recovery by a fin and tube heat exchange tank attached to the dishwasher greywater line. Sustainable Energy Technologies and Assessments. 2019; 36: 100552. doi: 10.1016/j.seta.2019.100552

26. Kim J, Park Y, Yun C, et al. Comparison of environmental and economic impacts caused by the washing machine operation of various regions. Energy Efficiency. 2015; 8(5): 905–918. doi: 10.1007/s12053-015-9333-7

27. Adhikari P. Feasibility Study of Waste Heat Recovery From Laundry Facility: Case Study: Mr Washing Man Oy [Bachelor’s Thesis]. Helsinki Metropolia University of Applied Sciences; 2017. Available online: https://www.theseus.fi/bitstream/handle/10024/122785/EE_Thesis_Prakash_A.pdf?sequence=1&isAllowed=y

28. Selimli S, Abajja KMA. Recovery of greywater thermal energy with a wire on a tube heat exchanger attached to a dishwasher. Water Environment Research. 2021; 93(8): 1333–1345. doi: 10.1002/wer.1518

29. Kordana-Obuch S, Wojtoń M, Starzec M, et al. Opportunities and Challenges for Research on Heat Recovery from Wastewater: Bibliometric and Strategic Analyses. Energies. 2023; 16(17): 6370. doi: 10.3390/en16176370

30. Han S, Li X, Liu Z, et al. Thermal-economic optimization design of shell and tube heat exchanger using an improved sparrow search algorithm. Thermal Science and Engineering Progress. 2023; 45: 102085. doi: 10.1016/j.tsep.2023.102085

31. Çengel YA, Ghajar AJ. Heat and Mass Transfer: Fundamentals & Applications. McGraw Hill Education; 2015.

32. Bergman TL, Lavine AS, Incropera FP, et al. Fundamentals of Heat and Mass Transfer. Wiley; 2018.

33. Yue H, Zhao Y, Ma X, et al. Ethylene glycol: properties, synthesis, and applications. Chemical Society Reviews. 2012; 41(11): 4218. doi: 10.1039/c2cs15359a

34. Zhang X, Wang T, Zhang X, et al. Analysis of multiple factors influencing the efficiency of gravity thermal pipe waste heat recovery: A case study of heat accumulation management in spoil tips. Energy. 2025; 322: 135526. doi: 10.1016/j.energy.2025.135526

35. Tan NT, Dien VM, Binh PH, et al. Evaluation of Performance of Thermoelectric Generator Using Ethylene Glycol as a Heat Exchanger. Journal of Physics: Conference Series. 2025; 2968(1): 012008. doi: 10.1088/1742-6596/2968/1/012008

36. Bourgeois J, Van Der Linden J, Kortuem G, et al. Conversations with my washing machine: an in-the-wild study of demand shifting with self-generated energy. In: Proceedings of the 2014 ACM International Joint Conference on Pervasive and Ubiquitous Computing; 13–17 September 2014; Seattle, DC, USA. pp. 459–470. doi: 10.1145/2632048.2632106

37. Boyano A, Espinosa N, Villanueva A. Rescaling the energy label for washing machines: an opportunity to bring technology development and consumer behaviour closer together. Energy Efficiency. 2020; 13(1): 51–67. doi: 10.1007/s12053-019-09829-4

38. Matos C, Bentes I, Pereira S, et al. Energy consumption, CO2 emissions and costs related to baths water consumption depending on the temperature and the use of flow reducing valves. Science of The Total Environment. 2019; 646: 280–289. doi: 10.1016/j.scitotenv.2018.07.290

39. Pakula C, Stamminger R. Electricity and water consumption for laundry washing by washing machine worldwide. Energy Efficiency. 2010; 3(4): 365–382. doi: 10.1007/s12053-009-9072-8

40. Kowalik R, Sidło W. Drain water heat recovery for domestic hot water in Polish residential buildings: Energy, economic and environmental assessment. Desalination and Water Treatment. 2025; 324: 101475. doi: 10.1016/j.dwt.2025.101475

41. Abdukarimov B, Toxirov M, Boynazarov B, et al. The effect of heat losses and heat transfer coefficient on the efficiency of the solar air heater collector. E3S Web of Conferences. 2023; 452: 04006. doi: 10.1051/e3sconf/202345204006

42. Singh AK, Kumar R. Enhancing renewable energy systems using loop heat pipes: A case research on solar thermal applications. Applied Thermal Engineering. 2025; 275: 126866. doi: 10.1016/j.applthermaleng.2025.126866

43. Sekulić DP, Shah RK. Fundamentals of Heat Exchanger Design, 1st ed. Wiley; 2023. doi: 10.1002/9781119883296

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Published

2026-09-02

How to Cite

Othusitse, D., Budzani, L., & Rabasoma, K. (2026). Improving the energy consumption of a laundry washing machine through drain-water waste heat recovery. Clean Energy Science and Technology, 4(5). https://doi.org/10.18686/cest710