Computational Modeling of Nasal Cavity Aerodynamics: Implications for Surgical Outcomes and Targeted Drug Administration.

Guiliang Liu, W Jared Martin, Yasine Mirmozaffari, Rui Ni, Zheng Li
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Abstract

The primary goal of sinonasal surgery is to improve a patient's quality of life, which is generally achieved by enhancing drug delivery (eg, saline rinses, nasal steroids) and nasal airflow. Both drug delivery and nasal airflow are dependent on the anatomic structure of the sinonasal cavity and the relationship between this anatomy and airflow and drug delivery can be studied using computational fluid dynamics (CFD). CFD generally uses computed tomography scans and computational algorithms to predict airflow or drug delivery and can help us understand surgical outcomes and optimize drug delivery for patients. This study employs CFD to simulate nasal airflow dynamics and optimize drug delivery in the nasal cavity to highlight the utility of CFD for studying sinonasal disease. Utilizing COMSOL Multiphysics software, we developed detailed models to analyze changes in airflow characteristics before and after functional endoscopic sinus surgery, focusing on pressure distribution, velocity profiles, streamline patterns, and heat transfer. This research examines the impact of varying levels of nasal airway obstruction on airflow and heat transfer. In addition, we explore the characteristics of nasal drug delivery by simulating diverse spray parameters, including particle size, spray angle, and velocity. Our comprehensive approach allows for the visualization of drug particle trajectories and deposition patterns, providing crucial insights for enhancing surgical outcomes and improving targeted drug administration. By integrating patient-specific nasal cavity models and considering factors such as airway outlet pressure, this study offers valuable data on pressure cross-sections, flow rate variations, and particle behavior within the nasal passages. The findings of this research can be useful for both surgical planning and the development of more effective nasal drug delivery methods, potentially leading to enhanced clinical outcomes in respiratory treatment.

鼻腔空气动力学的计算模型:对手术结果和靶向药物管理的影响。
鼻窦手术的主要目的是改善患者的生活质量,这通常是通过加强药物输送(如生理盐水冲洗、鼻腔类固醇)和鼻腔气流来实现的。药物给药和鼻腔气流都依赖于鼻腔的解剖结构,这种解剖结构与气流和药物给药之间的关系可以用计算流体动力学(CFD)来研究。CFD通常使用计算机断层扫描和计算算法来预测气流或药物输送,可以帮助我们了解手术结果并优化患者的药物输送。本研究利用CFD模拟鼻腔气流动力学,优化鼻腔给药,突出CFD在鼻窦疾病研究中的应用。利用COMSOL Multiphysics软件,我们开发了详细的模型来分析功能性内窥镜鼻窦手术前后气流特性的变化,重点关注压力分布、速度分布、流线模式和传热。本研究探讨不同程度的鼻气道阻塞对气流和传热的影响。此外,我们还通过模拟不同的喷雾参数,包括粒径、喷雾角度和速度,来探索鼻腔给药的特性。我们的综合方法允许药物颗粒轨迹和沉积模式的可视化,为提高手术效果和改善靶向药物管理提供重要见解。通过整合患者特异性鼻腔模型并考虑气道出口压力等因素,本研究提供了有关鼻道内压力截面、流速变化和颗粒行为的有价值数据。本研究结果可用于手术计划和开发更有效的鼻腔给药方法,有可能提高呼吸治疗的临床效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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