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Numerical simulation of the performance of a human nasal cavity

机译:人体鼻腔性能的数值模拟

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摘要

Purpose - The paper aims to focus on airflow and heat transfer inside the human nasal cavity. The contribution of this work is the inertial analysis of the momentum and thermal stress of the cavity throughout the respiratory cycle. Design/methodology/approach - By means of computer tomography scans, an accurate three-dimensional anatomical representation of the human nasal cavity was obtained. A three-dimensional numerical model is presented in order to predict the time evolution of flow patterns during a quiet breathing cycle, covering inhalation and exhalation. An inertial analysis of the momentum and a detailed study of the thermal behaviour during the breathing cycle is carried out. Findings - Head loss, velocity and temperature values are in agreement with experimental results from previous studies. Based on these results, the influence of the inhalation and the exhalation on the flow pattern and air conditioning has been reviewed. Results suggest that the anterior and posterior turbinate regions are where the air conditioning is primarily produced. Practical implications - The future goal is to investigate respiratory disorders to increase the effectiveness of the eventual treatment of the pathology. The model could be a useful tool to predict, for instance, the modification of the flow patterns due to septal perforations. Originality/value - The transient resolution provides insight into the momentum and thermal inertia though the breathing which is far from being well understood.
机译:目的-本文旨在关注人体鼻腔内的气流和热传递。这项工作的贡献是对整个呼吸周期内腔的动量和热应力的惯性分析。设计/方法/方法-通过计算机断层扫描,可以获得人鼻腔的精确三维解剖图。提出了一个三维数值模型,以预测在安静的呼吸周期内流型的时间演变,包括吸气和呼气。进行了动量的惯性分析并详细研究了呼吸循环中的热行为。研究结果-压头损失,速度和温度值与先前研究的实验结果一致。基于这些结果,研究了吸气和呼气对流型和空调的影响。结果表明,前鼻甲和后鼻甲区域是主要产生空调的地方。实际意义-未来的目标是研究呼吸系统疾病,以提高最终治疗病理的效率。该模型可能是有用的工具,以预测(例如)由于间隔穿孔而引起的流场变化。独创性/值-瞬态分辨率可提供对动量和热惯性的深入了解,尽管呼吸远未得到很好的理解。

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