Effect of ambient temperature and respiration rate on nasal dominance: preliminary findings from a nostril-specific wearable

被引:0
作者
Kumar, Amit [1 ]
Joshi, Deepak [2 ]
机构
[1] Indian Inst Technol, Ctr Biomed Engn, New Delhi, India
[2] All India Inst Med Sci, Dept Biomed Engn, New Delhi, India
关键词
nasal dominance index; range of temperature oscillation in nasal breathing; inspiratory temperature; expiratory temperature; inter-nostril correlation; AIR-FLOW; INSPIRATORY FLOW; HEAT-EXCHANGE; DELIVERY; CYCLE; DISEASE; WATER; PHYSIOLOGY; FLUID;
D O I
10.1088/1752-7163/acf339
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The nasal dominance (ND) determination is crucial for nasal synchronized ventilator, optimum nasal drug delivery, identifying brain hemispheric dominance, nasal airway obstruction surgery, mindfulness breathing, and for possible markers of a conscious state. Given these wider applications of ND, it is interesting to understand the patterns of ND with varying temperature and respiration rates. In this paper, we propose a method which measures peak-to-peak temperature oscillations (difference between end-expiratory and end-inspiratory temperature) for the left and right nostrils during nasal breathing. These nostril-specific temperature oscillations are further used to calculate the nasal dominance index (NDI), nasal laterality ratio (NLR), inter-nostril correlation, and mean of peak-to-peak temperature oscillation for inspiratory and expiratory phase at (1) different ambient temperatures of 18 & DEG;C, 28 & DEG;C, and 38 & DEG;C and (2) at three different respiration rate of 6 bpm, 12 bpm, and 18 bpm. The peak-to-peak temperature (T pp) oscillation range (averaged across participants; n = 8) for the left and right nostril were 3.80 & PLUSMN; 0.57 & DEG;C and 2.34 & PLUSMN; 0.61 & DEG;C, 2.03 & PLUSMN; 0.20 & DEG;C and 1.40 & PLUSMN; 0.26 & DEG;C, and 0.20 & PLUSMN; 0.02 & DEG;C and 0.29 & PLUSMN; 0.03 & DEG;C at the ambient temperature of 18 & DEG;C, 28 & DEG;C, and 38 & DEG;C respectively (averaged across participants and respiration rates). The NDI and NLR averaged across participants and three different respiration rates were 35.67 & PLUSMN; 5.53 and 2.03 & PLUSMN; 1.12; 8.36 & PLUSMN; 10.61 and 2.49 & PLUSMN; 3.69; and -25.04 & PLUSMN; 14.50 and 0.82 & PLUSMN; 0.54 at the ambient temperature of 18 & DEG;C, 28 & DEG;C, and 38 & DEG;C respectively. The Shapiro-Wilk test, and non-parametric Friedman test showed a significant effect of ambient temperature conditions on both NDI and NLR. No significant effect of respiration rate condition was observed on both NDI and NLR. The findings of the proposed study indicate the importance of ambient temperature while determining ND during the diagnosis of breathing disorders such as septum deviation, nasal polyps, nosebleeds, rhinitis, and nasal fractions, and in the intensive care unit for nasal synchronized ventilator.
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页数:13
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共 55 条
  • [31] EFFECT OF WORKING IN HOT ENVIRONMENTS ON RESPIRATORY AIR TEMPERATURES
    LIVINGSTONE, SD
    NOLAN, RW
    CAIN, JB
    KEEFE, AA
    [J]. EUROPEAN JOURNAL OF APPLIED PHYSIOLOGY AND OCCUPATIONAL PHYSIOLOGY, 1994, 69 (02): : 98 - 101
  • [32] RESPIRATORY HEAT EXCHANGE WITH VARYING TEMPERATURE AND HUMIDITY OF INSPIRED AIR
    MCCUTCHAN, JW
    TAYLOR, CL
    [J]. JOURNAL OF APPLIED PHYSIOLOGY, 1951, 4 (02) : 121 - 135
  • [33] RESPIRATORY HEAT AND WATER EXCHANGE - PHYSIOLOGICAL AND CLINICAL IMPLICATIONS
    MCFADDEN, ER
    [J]. JOURNAL OF APPLIED PHYSIOLOGY, 1983, 54 (02) : 331 - 336
  • [34] COMPUTED-TOMOGRAPHY - 3-DIMENSIONAL STUDY OF THE NASAL AIRWAY
    MONTGOMERY, WM
    VIG, PS
    STAAB, EV
    MATTESON, SR
    [J]. AMERICAN JOURNAL OF ORTHODONTICS AND DENTOFACIAL ORTHOPEDICS, 1979, 76 (04) : 363 - 375
  • [35] EEG signatures change during unilateral Yogi nasal breathing
    Niazi, Imran Khan
    Navid, Muhammad Samran
    Bartley, Jim
    Shepherd, Daniel
    Pedersen, Mangor
    Burns, Georgina
    Taylor, Denise
    White, David E.
    [J]. SCIENTIFIC REPORTS, 2022, 12 (01)
  • [36] Measurements of nasal airflow and patency: a critical review with emphasis on the use of peak nasal inspiratory flow in daily practice
    Ottaviano, G.
    Fokkens, W. J.
    [J]. ALLERGY, 2016, 71 (02) : 162 - 174
  • [37] Simulating the Nasal Cycle with Computational Fluid Dynamics
    Patel, Ruchin G.
    Garcia, Guilherme J. M.
    Frank-Ito, Dennis O.
    Kimbell, Julia S.
    Rhee, John S.
    [J]. OTOLARYNGOLOGY-HEAD AND NECK SURGERY, 2015, 152 (02) : 353 - 360
  • [38] Comparison between unilateral PNIF and rhinomanometry in the evaluation of nasal cycle
    Pendolino, Alfonso Luca
    Nardello, Ennio
    Lund, Valerie J.
    Maculan, Pietro
    Scarpa, Bruno
    Martini, Alessandro
    Ottaviano, Giancarlo
    [J]. RHINOLOGY, 2018, 56 (02) : 122 - 126
  • [39] Measurement of exhaled breath temperature in science and clinical practice
    Popov, T. A.
    Kralimarkova, T. Z.
    Dimitrov, V. D.
    [J]. BREATHE, 2012, 8 (03) : 187 - 192
  • [40] Human exhaled breath analysis
    Popov, Todor A.
    [J]. ANNALS OF ALLERGY ASTHMA & IMMUNOLOGY, 2011, 106 (06) : 451 - 456