Performance of a new recuperative Heat and Moisture Exchange Mask

Authors

  • Mario P. Wehrle Department of Anaesthesiology, Ulm University, Ulm, Germany; Department of Internal Medicine, Spitalzentrum Oberwallis, Visp, Switzerland
  • Thomas Küpper Institute of Occupational and Social Medicine, RWTH Aachen Technical University, Aachen, Germany
  • Claus-M. Muth Department of Anaesthesiology, Ulm University, Ulm, Germany

DOI:

https://doi.org/10.5604/01.3001.0014.7869

Keywords:

heat exchanger mask, cold weather mask, heat and moisture exchanger mask, recuperative HME

Abstract

Aim of the study: The purpose of this work is to show the possibility to use a recuperative design of a heat and moisture exchange face mask (HME). Such HME are used as cold weather face masks for Arctic expeditions and conditioning of air for long-term intubated patients. Common regenerative HME have the disadvantage of increasing airway resistance and airway volume (dead space). In recuperative devices, the separation of inspired and expired airflow could reduce dead space and resistance.
Materials and methods: Prototype HMEs were built using two concentric ducts of aluminium or cotton. A valve ensures that expired and inspired air are led through either the inner or the outer tube. The inner tube’s wall transmits heat and water. The HMEs were tested in a simulated Arctic environment using a breathing simulator and characterized in terms of heat and moisture exchange efficiency. The new design was also tested at room temperature in order to simulate the conditions of long-term intubation. To compare the results, the relative difference in temperature (Performance Coefficient PC) between the expired and the inspired air was calculated.
Results: During the experiments, the ambient temperature was −37°C and therefore the absolute water content was about zero. The recuperative HME conditioned the air to 21°C and 10.7 mg/l water (61% relative humidity), giving a PC of 82%. At room temperature the recuperative mask showed a PC of 62%.
Conclusion: The recuperative HME shows great potential. It might be of use in clinical conditions and Arctic expeditions.

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Johnson DL, Bos CJ, Rivington RN, Doge P. A technical and functional assessment of cold weather masks in severe cold conditions. Research and Standards Division, Bureau of Radiation and Medical Devices Report; 1987.   Google Scholar

Rosen AE, Rosen JM. Effect of a face mask on respiratory water loss during sleep in cold conditions. Wilderness Environ Med. 1995;6(2):189-195.   Google Scholar

Lange AK. Kälteanpassung bei Tieren und Menschen. Polarforschung. 1960;30:11-18.   Google Scholar

Küpper T, Steffgen J, Jansing P. Cold exposure during helicopter rescue operations in the Western Alps. Ann Occup Hyg. 2003;47(1):7-16. doi: 10.1093/annhyg/meg008.   Google Scholar

Cain JB, Livingstone SD, Nolan RW, Keefe AA. Respiratory heat loss during work at various ambient temperatures. Respir Physiol. 1990;79(2):145-150. doi: 10.1016/0034-5687(90)90014-P.   Google Scholar

Davis MS, Malayer JR, Vandeventer L, Royer CM, McKenzie EC, Williamson KK. Cold weather exercise and airway cytokine expression. J Appl Physiol. 2005;98(6):2132-2136. doi: 10.1152/japplphysiol.01218.2004.   Google Scholar

Iotti GA, Olivei MC, Palo A, Galbusera C, Veronesi R, Comelli A, Braschi A. Unfavorable mechanical effects of heat and moisture exchangers in ventilated patients. Intensive Care Med. 1997;23(4):399-405. doi: 10.1007/s001340050347.   Google Scholar

Restrepo RD, Walsh BK. Humidification during invasive and noninvasive mechanical ventilation. Respir Care. 2012;57(5):782-788. doi: 10.4187/respcare.01766.   Google Scholar

Branson RD, Davis K, Campbell RS, Johnson DJ, Porembka DT. Humidification in the intensive care unit. Prospective study of a new protocol utilizing heated humidification and a hygroscopic condenser humidifier. Chest. 1993;104(6):1800-1805. Doi: 10.1378/chest.104.6.1800.   Google Scholar

Roberts, DE; Hamlet, MP. Prevention of Cold Injuries. In: Lounsbury DE, Bellamy RF, Zajtchuk R, eds., Textbook of Military Medicine – Medical Aspects of Harsh Environments. Vol. 1. Washington, DC: TMM Publications; 2001:411-427.   Google Scholar

Deutsches Institut für Normung (DIN). EN 342: Protective clothing – Ensembles and garments for protection against cold. Beuth Verlag; 2004.   Google Scholar

Deutsche Gesetzliche Unfallversicherung (DGUV), BGR-189 Use of protective clothing, Carl Heymanns Verlag; 2007.   Google Scholar

Naumenko IM, Tuchinskiĭ LI, Beloshchitskiĭ TV, Ledovskiĭ AM. Protection of the respiratory organs while working in the cold. Gig Tr Prof Zabol. 1989;(10):28-31.   Google Scholar

Carnevale N, Ducharme MB. Benefits of respiratory heat and moisture exchangers during cold exposures. Toronto: Defence and Civil Institute of Environmental Medicine: 1999.   Google Scholar

Hampson NB, Hampson LA. Inducing high levels of carbon monoxide in a tent. Am J Emerg Med. 2005;23(2):204. doi: 10.1016/j.ajem.2004.09.030.   Google Scholar

Betten DP, Castle DJ, Bales LL, Hughes MJ. Effect of fuel type on carbon monoxide accumulation in tents of varied design. Wilderness Environ Med. 2013;24(3):280-284. doi: 10.1016/j.wem.2013.03.023.   Google Scholar

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Published

2021-03-05

How to Cite

Wehrle, M. P., Küpper, T., & Muth, C.-M. (2021). Performance of a new recuperative Heat and Moisture Exchange Mask. Health Promotion & Physical Activity, 14(1), 9–16. https://doi.org/10.5604/01.3001.0014.7869

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