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犬类的喘气:热应激和运动时的气流路径

Panting in dogs: paths of air flow in response to heat and exercise.

作者信息

Goldberg M B, Langman V A, Taylor C R

出版信息

Respir Physiol. 1981 Mar;43(3):327-38. doi: 10.1016/0034-5687(81)90113-4.

DOI:10.1016/0034-5687(81)90113-4
PMID:7280382
Abstract

Panting is the major avenue of evaporative cooling in dogs exposed to heat and/or exercise. We found modulation of evaporation was achieved by varying the paths of airflow during inhalation and exhalation. The direction of airflow through the nose and mouth was determined by measuring pressure changes and temperature at the openings of one nostril and the mouth in three dogs (av. weight 22 kg). Rates of oxygen consumption and respiratory evaporation were measured simultaneously. Three patterns of panting were observed as the demand for respiratory evaporation increased: (I), inhalation and exhalation through nose; (II), inhalation through nose, exhalation through nose and mouth; and (III), inhalation through nose and mouth, exhalation through nose and mouth. Pattern I was observed in resting dogs when ambient temperature was below 26 degrees C and when animals ran at slow speeds in the cold (e.g. 0.8 m . s(-1) at 10 degrees C). Patterns II and III were observed when dogs rested quietly at ambient temperatures above 30 degrees C and during exercise except when dogs ran slowly at very low temperatures. Patterns II and III rarely occurred independently for long periods of time. Instead, there was normally a continual oscillation between the two. The proportion of the time that the dog used Pattern III instead of Pattern II increased as temperature and/or speed were increased; but the correlation between rate of respiratory evaporation and the percentage of time Pattern III was utilized was weak (r2=0.63).

摘要

喘气是受热和/或运动的犬类蒸发散热的主要途径。我们发现,通过改变吸气和呼气过程中的气流路径,可以调节蒸发散热。通过测量三只犬(平均体重22千克)一个鼻孔开口和口腔开口处的压力变化及温度,确定了气流通过鼻子和嘴巴的方向。同时测量了氧气消耗率和呼吸蒸发率。随着呼吸蒸发需求的增加,观察到三种喘气模式:(I),通过鼻子吸气和呼气;(II),通过鼻子吸气,通过鼻子和嘴巴呼气;(III),通过鼻子和嘴巴吸气,通过鼻子和嘴巴呼气。模式I在环境温度低于26摄氏度时的静息犬中观察到,以及动物在寒冷环境中低速奔跑时(例如在10摄氏度时速度为0.8米·秒-1)。当犬在环境温度高于30摄氏度时安静休息以及运动时,观察到模式II和III,但犬在极低温度下缓慢奔跑时除外。模式II和III很少长时间独立出现。相反,两者之间通常会持续振荡。随着温度和/或速度的增加,犬使用模式III而非模式II的时间比例增加;但呼吸蒸发率与模式III使用时间百分比之间的相关性较弱(r2 = 0.63)。

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1
Panting in dogs: paths of air flow in response to heat and exercise.犬类的喘气:热应激和运动时的气流路径
Respir Physiol. 1981 Mar;43(3):327-38. doi: 10.1016/0034-5687(81)90113-4.
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Panting in dogs: unidirectional air flow over evaporative surfaces.犬类的喘气:蒸发表面上的单向气流。
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Relationship between blood pressure alterations and bursts of panting in the conscious dog: a comparison of the effects of exercise and heat exposure.清醒犬的血压变化与喘气发作之间的关系:运动和热暴露影响的比较。
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Thermal panting in dogs: the lateral nasal gland, a source of water for evaporative cooling.犬类的热性喘气:外侧鼻腺,蒸发散热的水源。
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Panting in reindeer (Rangifer tarandus).驯鹿(Rangifer tarandus)的喘气。
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Thermoregulatory influences on common carotid blood flow in the dog.体温调节对犬颈总动脉血流的影响。
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Lingual blood flow and its hypothalamic control in the dog during panting.犬在喘气时的舌血流量及其下丘脑控制。
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Comparison of maximal oxygen consumption with oral and nasal breathing.经口呼吸与经鼻呼吸时最大耗氧量的比较。
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J Appl Physiol (1985). 1987 Dec;63(6):2240-6. doi: 10.1152/jappl.1987.63.6.2240.
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