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首页> 外文期刊>Journal of burn care & research: official publication of the American Burn Association >Simulation of the Velocity and Temperature Distribution of Inhalation Thermal Injury in a Human Upper Airway Model by Application of Computational Fluid Dynamics
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Simulation of the Velocity and Temperature Distribution of Inhalation Thermal Injury in a Human Upper Airway Model by Application of Computational Fluid Dynamics

机译:应用计算流体力学模拟人上呼吸道模型中吸入热损伤的速度和温度分布

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摘要

Inhalation injury is an important cause of death after thermal burns. This study was designed to simulate the velocity and temperature distribution of inhalation thermal injury in the upper airway in humans using computational fluid dynamics. Cervical computed tomography images of three Chinese adults were imported to Mimics software to produce three-dimensional models. After grids were established and boundary conditions were defined, the simulation time was set at 1 minute and the gas temperature was set to 80 to 320 degrees C using ANSYS software (ANSYS, Canonsburg, PA) to simulate the velocity and temperature distribution of inhalation thermal injury. Cross-sections were cut at 2-mm intervals, and maximum airway temperature and velocity were recorded for each cross-section. The maximum velocity peaked in the lower part of the nasal cavity and then decreased with air flow. The velocities in the epiglottis and glottis were higher than those in the surrounding areas. Further, the maximum airway temperature decreased from the nasal cavity to the trachea. Computational fluid dynamics technology can be used to simulate the velocity and temperature distribution of inhaled heated air.
机译:吸入性伤害是热灼伤后死亡的重要原因。本研究旨在使用计算流体力学来模拟人体上呼吸道吸入性热损伤的速度和温度分布。将三名中国成年人的宫颈计算机断层扫描图像导入Mimics软件,以生成三维模型。建立网格并定义边界条件后,使用ANSYS软件(ANSYS,Canonsburg,PA)将模拟时间设置为1分钟,并将气体温度设置为80至320摄氏度,以模拟吸入热的速度和温度分布受伤。以2 mm的间隔切开横截面,并记录每个横截面的最大气道温度和速度。最大速度在鼻腔下部达到峰值,然后随气流而降低。会厌和声门的速度高于周围地区。此外,最大气道温度从鼻腔到气管降低。计算流体动力学技术可用于模拟吸入的热空气的速度和温度分布。

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