一个恒温动物体温调节的数学模型,包括通过血液流动的热量传递和热反馈控制机制:外衣、代谢率、血流量、通风和出汗率的变化

Q3 Mathematics
J. L. Boldrini, M. Viana, S. F. dos Reis, Barbara Henning
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引用次数: 4

摘要

摘要吸热过程中的体温调节可以使体温保持独立于环境温度。实验数据揭示了体温调节的生理机制与环境条件之间的复杂相互作用。基于物理第一性原理和基本生理机制,我们推导了一个非线性偏积分微分动力学模型,以了解一些热控制机制在吸热过程中的作用。该模型由代表不同组织的四层组成,并包含六种热反馈控制机制。这些机制是由于代谢率产生的热量,以及给定其内部结构的体内热交换,该模型考虑了传导引起的热交换、血液流动引起的热传输、通过对流、辐射和呼吸道蒸发与环境进行的热交换,以及被动和主动情况下的表面蒸发。我们的模型为之前关于经典代谢环境温度U型曲线的解释提供了新的线索。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A mathematical model for thermoregulation in endotherms including heat transport by blood flow and thermal feedback control mechanisms: changes in coat, metabolic rate, blood fluxes, ventilation and sweating rates
ABSTRACT Thermoregulation in endotherms allows the maintenance of the body temperature independent of ambient temperature. Experimental data have revealed complex interactions between the physiological mechanisms of thermoregulation and environmental conditions. We derive a nonlinear partial integro-differential dynamical model based on physical first principles and fundamental physiological mechanisms to understand the role of some thermal control mechanisms in the thermoregulation process of endotherms. The model is composed of four layers representing different tissues and it incorporates six thermal feedback control mechanisms. These mechanisms are heat production due to metabolic rate and heat exchange within the body given its internal structure, and the model considers heat exchange due to conduction, heat transport by blood flow, heat exchange with the ambient through convection, radiation, and evaporation from the respiratory tract and superficial evaporation in both passive and active situations. Our model sheds new light on previous explanations about the classic metabolism-ambient temperature U-shaped curve.
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来源期刊
Letters in Biomathematics
Letters in Biomathematics Mathematics-Statistics and Probability
CiteScore
2.00
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14 weeks
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