Mathematical model for the calculation of oxygen concentrations in a closed circuit oxygen rebreathing apparatus

被引:0
|
作者
Neubauer, B
Zander, R
Tetzlaff, K
机构
[1] FED GERMAN NAVY WEAPONS DIVER BATTAL,ECKERNFORDE,GERMANY
[2] UNIV MAINZ,DEPT PHYSIOL & PATHOPHYSIOL,D-6500 MAINZ,GERMANY
[3] USN,INST MED,DEPT DIVING & HYPERBAR MED,KRONSHAGEN,GERMANY
来源
AVIATION SPACE AND ENVIRONMENTAL MEDICINE | 1997年 / 68卷 / 08期
关键词
D O I
暂无
中图分类号
R1 [预防医学、卫生学];
学科分类号
1004 ; 120402 ;
摘要
Background: Closed circuit oxygen rebreathing diving apparatus are used by armed forces in special tasks because of their advantages of long endurance, low noise and minimal gas escape. There is little knowledge about the administered oxygen concentrations in these systems. Closed circuit oxygen rebreathing apparatus are also used as a first aid device for the treatment of severe disorders. Because of similar constructive components, these rebreathing apparatus are comparable to the Drager LAR V model. Hypothesis: This study was conducted to measure the oxygen concentrations in the LAR V and estimate the correlation between oxygen concentration and pre-breathing purges. Method: Subjects were 12 males who performed the pre-breathing procedure. The oxygen concentrations in the breathing loop were measured after each purge. Results: The oxygen concentrations depended on the volume of the apparatus' dead space, the total capacity of the divers breathing system respective to the volume of the breathing purges and the number of pre-breathing purges. The maximum oxygen concentration was reached after eight purges (O-2 = 85%). An equation to estimate the oxygen concentration inside the LAR V and first aid rebreather was derived. Conclusions: The results indicated that the present purging procedure (three purges) before diving is normally not sufficient to remove the nitrogen totally from the deadspace of the LAR V, the divers airways and lungs. Only a small modification (six purges) is necessary to improve the safety of the diver in case of a diving apparatus malfunction during the mission profile.
引用
收藏
页码:722 / 725
页数:4
相关论文
共 50 条
  • [31] Using a mathematical model to simulate the influence of tubificid worms (Oligochaeta) on oxygen concentrations in hyporheic sediments
    Mermillod-Blondin, Florian
    Poggiale, Jean-Christophe
    Tolla, Caroline
    Auger, Pierre
    Thuiller, Wilfried
    des Chatelliers, Michel Creuze
    FUNDAMENTAL AND APPLIED LIMNOLOGY, 2008, 172 (02) : 135 - 145
  • [32] A mathematical model that describes the relation of low-density lipoprotein and oxygen concentrations in a stenosed artery
    Narayan, S. Shankar
    Anuradha, B.
    Sunanda, S.
    Puneeth, V
    Khan, M. Ijaz
    Abdullah, A.
    Guedri, Kamel
    Jameel, Mohammed
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2022, 36 (26):
  • [33] A mathematical model of cerebral circulation and oxygen supply
    Andreas Jung
    Rupert Faltermeier
    Ralf Rothoerl
    Alexander Brawanski
    Journal of Mathematical Biology, 2005, 51 : 491 - 507
  • [34] Mathematical Model of Oxygen Transport in Tuberculosis Granulomas
    Meenal Datta
    Laura E. Via
    Wei Chen
    James W. Baish
    Lei Xu
    Clifton E. Barry
    Rakesh K. Jain
    Annals of Biomedical Engineering, 2016, 44 : 863 - 872
  • [35] Mathematical Model of Oxygen Transport in Tuberculosis Granulomas
    Datta, Meenal
    Via, Laura E.
    Chen, Wei
    Baish, James W.
    Xu, Lei
    Barry, Clifton E., III
    Jain, Rakesh K.
    ANNALS OF BIOMEDICAL ENGINEERING, 2016, 44 (04) : 863 - 872
  • [36] Mathematical model for nitrogen control in oxygen steelmaking
    Goldstein, DA
    Fruehan, RJ
    METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 1999, 30 (05): : 945 - 956
  • [37] Analysis of a mathematical model of oxygen transport in brain
    Kovtanyuk, Andrey E.
    Chebotarev, Alexander Yu.
    Dekalchuk, Anastasiya A.
    Botkin, Nikolai D.
    Lampe, Renee
    2018 DAYS ON DIFFRACTION (DD), 2018, : 187 - 191
  • [38] Mathematical model of oxygen transport in the cerebral cortex
    Hudetz, AG
    BRAIN RESEARCH, 1999, 817 (1-2) : 75 - 83
  • [39] Mathematical model for ion refractivity of oxygen in slags
    Tokyo Inst of Technology, Tokyo, Japan
    Ironmaking and Steelmaking, 1997, 24 (03): : 239 - 242
  • [40] A mathematical model of cerebral circulation and oxygen supply
    Jung, A
    Faltermeier, R
    Rothoerl, R
    Brawanski, A
    JOURNAL OF MATHEMATICAL BIOLOGY, 2005, 51 (05) : 491 - 507