Design Considerations and Flow Characteristics for Couette-Type Blood-Shear Devices

Fluids Pub Date : 2024-07-07 DOI:10.3390/fluids9070157
Xingbang Chen, Eldad J. Avital, Shahid Imran, M. M. Abbas, Patrick Hinkle, Theodosios Alexander
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Abstract

Cardiovascular prosthetic devices, stents, prosthetic valves, heart-assist pumps, etc., operate in a wide regime of flows characterized by fluid dynamic flow structures, laminar and turbulent flows, unsteady flow patterns, vortices, and other flow disturbances. These flow disturbances cause shear stress, hemolysis, platelet activation, thrombosis, and other types of blood trauma, leading to neointimal hyperplasia, neoatherosclerosis, pannus overgrowth, etc. Couette-type blood-shearing devices are used to simulate and then clinically measure blood trauma, after which the results can be used to assist in the design of the cardiovascular prosthetic devices. However, previous designs for such blood-shearing devices do not cover the whole range of flow shear, Reynolds numbers, and Taylor numbers characteristic of all types of implanted cardiovascular prosthetic devices, limiting the general applicability of clinical data obtained by tests using different blood-shearing devices. This paper presents the key fluid dynamic parameters that must be met. Based on this, Couette device geometric parameters such as diameter, gap, flow rate, shear stress, and temperature are carefully selected to ensure that the device’s Reynolds numbers, Taylor number, operating temperature, and shear stress in the gap fully represent the flow characteristics across the operating range of all types of cardiovascular prosthetic devices. The outcome is that the numerical data obtained from the presented device can be related to all such prosthetic devices and all flow conditions, making the results obtained with such shearing devices widely applicable across the field. Numerical simulations illustrate that the types of flow patterns generated in the blood-shearing device meet the above criteria.
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Couette 型血液剪切装置的设计考虑因素和流动特性
心血管假体设备、支架、假体瓣膜、心脏辅助泵等都是在以流体动态流动结构、层流和湍流、不稳定流动模式、涡流和其他流动干扰为特征的广泛流动环境中工作的。这些流动扰动会造成剪切应力、溶血、血小板活化、血栓形成和其他类型的血液创伤,导致新内膜增生、新动脉硬化、脓肿过度生长等。Couette 型血液剪切装置用于模拟血液创伤,然后进行临床测量,测量结果可用于辅助心血管假体装置的设计。然而,以往此类血液剪切装置的设计并没有涵盖所有类型植入式心血管假体装置所特有的整个流动剪切力、雷诺数和泰勒数范围,从而限制了使用不同血液剪切装置进行测试所获得的临床数据的普遍适用性。本文介绍了必须满足的关键流体动力学参数。在此基础上,对 Couette 装置的几何参数(如直径、间隙、流速、剪切应力和温度)进行了精心选择,以确保装置的雷诺数、泰勒数、工作温度和间隙中的剪切应力完全代表所有类型心血管假体装置工作范围内的流动特性。其结果是,从所介绍的装置中获得的数值数据可与所有此类假体装置和所有流动条件相关联,从而使通过此类剪切装置获得的结果可广泛应用于整个领域。数值模拟表明,血液剪切装置中产生的流动模式类型符合上述标准。
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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