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AN EXPERIMENT TO ASSESS THE HEAT TRANSFER PERFORMANCE OF THERMOELECTRIC-DRIVEN CONDITIONED MATTRESS

ABSTRACT
This study sets out to describe the design, construction and testing of thermoelectric-driven conditioned mattress intended to reduce the human-mattress interface temperature, in order to satisfy the personal sleep thermal comfort requirements in hot conditions. A prototype of thermoelectric-driven conditioned mattress is constructed and tested. A series of experimental studies related to the temperature of different cushion layers and time from start-up to stable state have been carried out, specifically to analyze the difference in heat transfer performance of two types of temperature control layers (i.e., integral water cushion and circulating water pipes) in cooling operations. The steady-state results showed that, the type of temperature control layer and pre-set temperature exhibited a remarkable influence on the cooling performance of mattress. The mattress with integral water cushion had a superior cooling performance as compared to mattress with circulating water pipes under similar conditions. Specifically, the upper surface temperature of mattress with integral water cushion at the pre-set temperature of 20°C, 18°C, and 16°C were 1.97°C, 2.46°C, and 3.08°C lower than indoor air temperature, respectively. Besides, the temperature contour maps of temperature control layer and upper cushion layer for two types of mattresses were constructed using the bilinear interpolation, respectively, thus expected to provide reference for the untested temperatures in this study. This study aims to effectively evaluate the heat transfer performance of the thermoelectric-driven conditioned mattress, and shows highly practical value in further applications of this system in improving human thermal comfort during sleep.
KEYWORDS
PAPER SUBMITTED: 2020-11-11
PAPER REVISED: 2021-02-16
PAPER ACCEPTED: 2021-03-03
PUBLISHED ONLINE: 2021-04-10
DOI REFERENCE: https://doi.org/10.2298/TSCI201111146L
CITATION EXPORT: view in browser or download as text file
THERMAL SCIENCE YEAR 2022, VOLUME 26, ISSUE Issue 1, PAGES [785 - 799]
REFERENCES
  1. Klepeis, N. E., et al., The Naional human activity pattern survey (NHAPS): a resource for assessing exposure to environmental pollutants, Journal of Exposure Analysis and Environmental Epidemiology, 11 (2001), 3, pp. 231-252.
  2. Oishi, Y., Lazarus, M., The control of sleep and wakefulness by mesolimbic dopamine systems, Neuroscience Research, 118 (2017), pp. 66-73.
  3. Moldofsky, H., Sleep and the immune system, International Journal of Immunopharmacology, 17 (1995), 8, pp. 649-654.
  4. Kuo, T. B., et al., The effect of bedding system selected by manual muscle testing on sleep-related cardiovascular functions, BioMed research international, 2013, 937986.
  5. Okamoto, K., et al., The effects of a newly designed air mattress upon sleep and bed climate, Applied Human Science Journal of Physiological Anthropology, 16 (1997), 4, pp. 161-166.
  6. DeVocht, J. W., et al., Biomechanical evaluation of four different mattresses, Applied Ergonomics, 37 (2006), 3, pp. 297-304.
  7. López-Torres, M., et al., Objective firmness, average pressure and subjective perception in mattresses for the elderly, Applied Ergonomics, 39 (2008), 1, pp. 123-130.
  8. Kräuchi, K., et al., Sleep on a high heat capacity mattress increases conductive body heat loss and slow wave sleep, Physiology and Behavior, 185 (2018), pp. 23-30.
  9. Xia, L. L., et al., Bed heating improves the sleep quality and health of the elderly who adapted to no heating in a cold environment, Energy and Buildings, 210 (2020), pp. 109687.
  10. Califano, R., et al., The effect of human-mattress interface's temperature on perceived thermal comfort, Applied Ergonomics, 58 (2017), pp. 334-341.
  11. Quesada, J. I. P., et al., Assessment of a mattress with phase change materials using a thermal and perception test, Experimental Thermal and Fluid Science, 81 (2017), pp. 358-363.
  12. Bivolarova, M., et al., Bed-integrated local exhaust ventilation system combined with local air cleaning for improved IAQ in hospital patient rooms, Building and Environment, 100 (2016), pp.10-18.
  13. Neves, S. F., et al., Advances in the optimization of apparel heating products: a numerical approach to study heat transport through a blanket with an embedded smart heating system, Applied Thermal Engineering, 87 (2015), pp. 491-498.
  14. Zhang, C. J., et al., Designing a smart electrically heated sleeping bag to improve wearers' feet thermal comfort while sleeping in a cold ambient environment, Textile Research Journal, 87 (2017), 10, pp. 1251-1260.
  15. Wang, D. J., et al., Heat transfer characteristics of a novel sleeping bed with an integrated hot water heating system, Applied Thermal Engineering, 113 (2017), pp. 79-86.
  16. Cai, R. P., et al., Experimental investigation of the heat transfer performance of a novel double independent chambers casing heat pipe applied for heat dissipation at low temperatures, Applied Thermal Engineering, 188 (2021), pp. 116508.
  17. Jung, E. G., Boo, J. H., A novel transient thermohydraulic model of a micro heat pipe, International Journal of Heat and Mass Transfer, 140 (2019), pp. 819-827.
  18. Xie, K., et al., Experimental investigation on an aluminum oscillating heat pipe charged with water, Applied Thermal Engineering, 162 (2019), pp.114182.
  19. Perez-Protto, S., et al., Argalious, Circulating-water garment or the combination of a circulating-water mattress and forced-air cover to maintain core temperature during major upper-abdominal surgery, British Journal of Anaesthesia, 105 (2010), 4, pp. 466-470.
  20. Xin, Y. L., et al., Experimental study on thermal comfort in a confined sleeping environment heating with capillary radiation panel, Energy and Buildings, 205 (2019), pp. 109540.
  21. Rincón-Casado, A., et al., An experimental and computational approach to thermoelectric-based conditioned mattresses, Applied Thermal Engineering, 135 (2018), pp. 472-482.
  22. Song, W. F., et al., Effect of partial-body heating on thermal comfort and sleep quality of young female adults in a cold indoor environment, Building and Environment, 169 (2020), pp. 106585.
  23. Aléx, J., et al., Effect evaluation of a heated ambulance mattress-prototype on body temperatures and thermal comfort - an experimental study, Scandinavian Journal of Trauma, Resuscitation and Emergency Medicine, 22 (2014), pp. 43.
  24. Qian, S., et al., An experimental study on the heat transfer performance of a loop heatpipe system with ethanol-water mixture as working fluid for aircraft anti-icing, International Journal of Heat and Mass Transfer, 139 (2019), pp. 280-292.
  25. Chen, W. H., et al., Predictions of biochar production and torrefaction performance from sugarcane bagasse using interpolation and regression analysis, Bioresource Technology, 246 (2017), pp. 12-19.
  26. Enescu, D., Virjoghe, E., A review on thermoelectric cooling parameters and performance, Renewable and Sustainable Energy Reviews, 38 (2014), pp. 903-916.
  27. Martínez, A., et al., Dynamic model for simulation of thermoelectric self cooling applications, Energy, 55 (2013), pp. 1114-1126.

© 2024 Society of Thermal Engineers of Serbia. Published by the Vinča Institute of Nuclear Sciences, National Institute of the Republic of Serbia, Belgrade, Serbia. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International licence