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Usefulness of R-R interval and its variability in evaluation of thermal comfort

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Abstract

The use of R-R interval and the coefficient of variation in R-R intervals (CVR-R) for the evaluation of thermal comfort was investigated. The experiments were carried out with ten male subjects but data from one were excluded from the analysis. Thermal sensation, comfort, and tolerance of environmental conditions were reported and mean skin temperature, R-R interval and CVR-R were monitored during a 3 h period in a climatic chamber with the operative temperature set at 26, 20, or 30° C. Relative humidity was maintained at ca. 50% in each case. At the operative temperature of 20° C, the mean skin temperature was significantly lower, the cold sensation was significantly more intense, and discomfort was significantly greater than at 26° C and R-R interval was increased significantly. Seven of the nine subjects were unable to tolerate this thermal environment. The R-R interval and CVR-R were increased in five and four of those seven subjects, respectively. At the operative temperature of 30° C, the mean skin temperature was significantly higher, and the sensation of warmth was significantly more intense than at 26° C. Seven of the nine subjects felt discomfort, and four of the seven reported an inability to tolerate this thermal environment. The R-R interval and CVR-R were decreased in four and three of these four subjects, respectively. At the operative temperature of 20° C CVR-R was significantly greater than that at 30° C. Together with the subjective indices, R-R interval and CVR-R are considered worthy of further evaluation as objective indications of the effect on people of the thermal environment.

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References

  • Amercian Society of Heating, Refrigerating and Air-Conditioning Engineers (ASHRAE) (1993) American Society of Heating, Refrigerating and Air-Conditioning Engineers Handbook — 1993, Fundamentals, ASHRAE, Atlanta, pp 8.16–8.21

    Google Scholar 

  • Cerutti C, Gustin MP, Pauktre CZ, Lo M, Julien C, Vincent M, Sassard J (1991) Autonomic nervous system and cardiovascular variability in rats: a spectral analysis approach. Am J Physiol 261:1292–1299

    Google Scholar 

  • Fanger PO (1970) Thermal comfort. Danish Technical Press

  • Fanger PO, Langkild G (1975) Inter-individual differences in ambient temperatures preferred by seated person. ASHRAE Trans 81:140–147

    Google Scholar 

  • Fourt J, Hollies N (1970) Clothing comfort and function. Marcel Dekker, New York, pp 26–28

    Google Scholar 

  • Gagge AP, Burton AC, Bazett HC (1941) A practical system of units for the description of the heat exchange of man with his environment. Science 94:428–430

    Google Scholar 

  • Gagge AP, Stolwik JAJ, Hardy JD (1967) Comfort and thermal sensations and associated physiological responses at various ambient temperatures. Environ Res 1:1–20

    PubMed  Google Scholar 

  • Goto S, Ibamoto K, Isoda N, Kawasima Y, Kobayasi Y, Tanaka M, Tamura T, Nakamura T, Naruse T, Minamino O, Mihira K, Yosida K (1981) Studies on thermal sensation and physiological response to thermal environment. Nissusan Sci Found Tokyo 4:99–120 (in Japanese)

    Google Scholar 

  • Hayano J (1988) Quantitative assessment of autonomic function by autoregressive spectral analysis of heart rate variability. Auton Nerv Syst Tokyo 25:334–344 (in Japanese)

    Google Scholar 

  • Hayano J, Taylor JA, Yamada A, Mukai S, Hori R, Asakawa T, Yokoyama K, Watanabe Y, Takata K, Fujinami T (1993) Continuous assessment of hemodynamic control by complex demodulation of cardiovascular variability. Am J Physiol 264:H1229–H1238

    PubMed  Google Scholar 

  • Hirata K, Katayama S (1991) R-R intervals and its variability test. Autonomic function test. Bunkodo Co., Tokyo, pp 21–37 (in Japanese)

    Google Scholar 

  • Japanese Society of Neurovegetative Research (1991) Autonomic function test. Bunkodo Co., Tokyo (in Japanese)

    Google Scholar 

  • Kageyama S, Mocho S, Taniguch I, Abe M (1981) A proposal of a quantitative autonomic function test. Jikeikai Med J 28:81–85

    Google Scholar 

  • Levenson RW, Ekman P, Friesen WV (1990) Voluntary facial action generates emotion-specific autonomic nervous system activity. Psychophysiology 27(4):363–384

    PubMed  Google Scholar 

  • Mochio S (1983) R-R interval variation in ECG and autonomic nervous system with particular reference to its applications to CNS disorders. Neurol 19:127–132 (in Japanese)

    Google Scholar 

  • Pagani M, Lombardi F, Guzzetti S, Rimoldi O, Furlan R, Pizzinelli P, Malfatto G, Dell'Orto S, Piccaluga E, Turiel M, Baselli G, Cerutti S, Malliani A (1986) Power spectral analysis of heart rate and arterial pressure variabilities as a marker of sympatho-vagal interaction in man and conscious dog. Circ Res 59:178–193

    PubMed  Google Scholar 

  • Rohles FH, Wood JE, Nevins RG (1974) The effects of air movement and temperature on the thermal sensation of sedentary man. ASHRAE Trans 88:791–805

    Google Scholar 

  • Sternbach RA (1961) Assessing differential autonomic patterns in emotions. J Psychosom Res 6:87–91

    Google Scholar 

  • Tanabe S, Kimura K, Hara T (1987) Thermal comfort requirements during the summer season in Japan. ASHRAE Trans 93:564–577

    Google Scholar 

  • Tanaka M, Matsui J, Tochihara Y, Onaka T, Yamzaki S, Yosida K (1981) Influence of ambient temperature on the evaluation of cardiovascular function. Jpn J Hyg 35:814–820 (in Japanese)

    Google Scholar 

  • Teichner WH (1958) Assessment of mean body surface temperature. J Appl Physiol 12:169–176

    PubMed  Google Scholar 

  • Winslow CEA, Gagge AP, Herrington LP (1939a) The air movement upon heat losses from the clothed human body. Am J Physiol 127:505–518

    Google Scholar 

  • Winslow CEA, Herrington LP, Gagge AP (1939b) Physiological reactions and sensations of pleasantness under varying atomospheric conditions. American Society of Heating and Ventilating Trans 44:179–194

    Google Scholar 

  • Yaglou CP, Miller WE (1925) Effective temperature with clothing. ASHRAE Trans 31:89–99

    Google Scholar 

  • Yosikawa N, Komatsu T, Moridera K (1987) Autonomic function test by R-R interval measurement. Auton Nerv Syst Tokyo 24:21–27 (in Japanese)

    Google Scholar 

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Hasebe, Y., Iriki, M. & Takahasi, K. Usefulness of R-R interval and its variability in evaluation of thermal comfort. Int J Biometeorol 38, 116–121 (1995). https://doi.org/10.1007/BF01208486

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  • DOI: https://doi.org/10.1007/BF01208486

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