Variances in airflows during different ventilation modes in a dynamic U-shaped cave

Airflow dynamics were studied in Císařská Cave (Moravian Karst, Czech Republic) under different seasonal conditions. The dependence of airflows on the difference between external and cave temperatures is nonlinear and roughly obeys the Darcy-Weisbach equation. The upward airflows were found to be sy...

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Main Authors: Faimon Jiři, Lang Marek
Format: Article
Language:English
Published: University of South Florida Libraries 2013-05-01
Series:International Journal of Speleology
Subjects:
Online Access:http://scholarcommons.usf.edu/cgi/viewcontent.cgi?article=1091&context=ijs
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spelling doaj-90d731f7dfa64085a91c39eb77bdbed02021-05-02T02:29:27ZengUniversity of South Florida LibrariesInternational Journal of Speleology0392-66721827-806X2013-05-01422115122http://dx.doi.org/10.5038/1827-806X.42.2.3Variances in airflows during different ventilation modes in a dynamic U-shaped caveFaimon JiřiLang MarekAirflow dynamics were studied in Císařská Cave (Moravian Karst, Czech Republic) under different seasonal conditions. The dependence of airflows on the difference between external and cave temperatures is nonlinear and roughly obeys the Darcy-Weisbach equation. The upward airflows were found to be systematically higher than the downward airflows under comparable driving forces. The principle reason is nonlinearity between air temperature and air density. U-shaped cave geometry magnifies this effect by feedback between external temperature and airflow driving forces. Whereas this feedback is positive during the upward airflow ventilation mode, it is negative during the downward airflow mode. To discuss the behavior in detail, a simplified model based on balancing the masses of two equivalent air columns of different temperatures and densities is proposed. The results contribute to a better understanding of cave microclimate evolution, cave CO2 dynamics, and speleothem growth.http://scholarcommons.usf.edu/cgi/viewcontent.cgi?article=1091&context=ijsairf l owairdensitycavetemperaturedifferencetemperatureprof i leventilationmodeconceptual model
collection DOAJ
language English
format Article
sources DOAJ
author Faimon Jiři
Lang Marek
spellingShingle Faimon Jiři
Lang Marek
Variances in airflows during different ventilation modes in a dynamic U-shaped cave
International Journal of Speleology
airf l ow
airdensity
cave
temperaturedifference
temperatureprof i le
ventilationmode
conceptual model
author_facet Faimon Jiři
Lang Marek
author_sort Faimon Jiři
title Variances in airflows during different ventilation modes in a dynamic U-shaped cave
title_short Variances in airflows during different ventilation modes in a dynamic U-shaped cave
title_full Variances in airflows during different ventilation modes in a dynamic U-shaped cave
title_fullStr Variances in airflows during different ventilation modes in a dynamic U-shaped cave
title_full_unstemmed Variances in airflows during different ventilation modes in a dynamic U-shaped cave
title_sort variances in airflows during different ventilation modes in a dynamic u-shaped cave
publisher University of South Florida Libraries
series International Journal of Speleology
issn 0392-6672
1827-806X
publishDate 2013-05-01
description Airflow dynamics were studied in Císařská Cave (Moravian Karst, Czech Republic) under different seasonal conditions. The dependence of airflows on the difference between external and cave temperatures is nonlinear and roughly obeys the Darcy-Weisbach equation. The upward airflows were found to be systematically higher than the downward airflows under comparable driving forces. The principle reason is nonlinearity between air temperature and air density. U-shaped cave geometry magnifies this effect by feedback between external temperature and airflow driving forces. Whereas this feedback is positive during the upward airflow ventilation mode, it is negative during the downward airflow mode. To discuss the behavior in detail, a simplified model based on balancing the masses of two equivalent air columns of different temperatures and densities is proposed. The results contribute to a better understanding of cave microclimate evolution, cave CO2 dynamics, and speleothem growth.
topic airf l ow
airdensity
cave
temperaturedifference
temperatureprof i le
ventilationmode
conceptual model
url http://scholarcommons.usf.edu/cgi/viewcontent.cgi?article=1091&context=ijs
work_keys_str_mv AT faimonjiri variancesinairflowsduringdifferentventilationmodesinadynamicushapedcave
AT langmarek variancesinairflowsduringdifferentventilationmodesinadynamicushapedcave
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