Artificial Organs Laboratory, Department of Surgery, University of Maryland School of Medicine, Baltimore, MD 21201, USA.
Artif Organs. 2012 Apr;36(4):387-99. doi: 10.1111/j.1525-1594.2011.01369.x. Epub 2011 Dec 6.
Mechanical ventilation and extracorporeal membrane oxygenation are the only immediate options available for patients with respiratory failure. However, these options present significant shortcomings. To address this unmet need for respiratory support, innovative respiratory assist devices are being developed. In this study, we present the computational model-based design, and analysis of functional characteristics and hemocompatibility performance, of an innovative wearable artificial pump-lung (APL) for ambulatory respiratory support. Computer-aided design and computational fluid dynamics (CFD)-based modeling were utilized to generate the geometrical model and to acquire the fluid flow field, gas transfer, and blood damage potential. With the knowledge of flow field, gas transfer, and blood damage potential through the whole device, design parameters were adjusted to achieve the desired specifications based on the concept of virtual prototyping using the computational modeling in conjunction with consideration of the constraints on fabrication processes and materials. Based on the results of the CFD design and analysis, the physical model of the wearable APL was fabricated. Computationally predicted hydrodynamic pumping function, gas transfer, and blood damage potential were compared with experimental data from in vitro evaluation of the wearable APL. The hydrodynamic performance, oxygen transfer, and blood damage potential predicted with computational modeling, along with the in vitro experimental data, indicated that this APL meets the design specifications for respiratory support with excellent biocompatibility at the targeted operating condition.
机械通气和体外膜肺氧合是呼吸衰竭患者唯一可立即选择的方法。然而,这些方法存在明显的缺点。为了解决呼吸支持的这一未满足的需求,正在开发创新的呼吸辅助设备。在这项研究中,我们提出了一种用于可移动呼吸支持的新型可穿戴人工泵肺(APL)的基于计算模型的设计、功能特性和血液相容性性能分析。计算机辅助设计和基于计算流体动力学(CFD)的建模用于生成几何模型,并获取流体流场、气体传递和血液损伤潜力。通过整个设备的流场、气体传递和血液损伤潜力的知识,根据虚拟原型设计的概念,根据制造工艺和材料的限制调整设计参数,以达到预期的规格。基于 CFD 设计和分析的结果,制造了可穿戴 APL 的物理模型。从可穿戴 APL 的体外评估中计算预测的流体动力泵功能、气体传递和血液损伤潜力与实验数据进行了比较。计算模型预测的流体动力性能、氧气传递和血液损伤潜力以及体外实验数据表明,这种 APL 在目标工作条件下具有出色的血液相容性,满足呼吸支持的设计规格。