Spin Coating of 3D Printed Cardiovascular Anatomical Models, Controlling Material Properties on Complex Shapes

Fatima Fazal-Ur-Rehman, Joseph Wolf, Ronnie W. Kisor, Charles E. Taylor
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Abstract

Summary form only given. Developing effective in vitro models of cardiovascular anatomy for surgical procedure evaluations and medical device performance verification is challenging. This is due to the complex geometry, anisotropic material properties, and spatial variation in material properties. The ability to control these effects enables the production of high fidelity models that can exhibit the proper normal and disease states of these tissues for robust in vitro analysis of the fluid-structure interactions taking place in this region. Proposed is a robotic spin coating system that utilizes 3D printed anatomical models to provide the surface mold. The coating is applied according to the desired properties in the region of the model and allowed to cure. During the layering process, application of different materials in targeted regions of the model allow for pathophysiological structures to be embodied (e.g. calcifications, plaque). The subsequent thin walled model is removed from the 3D printed structure either through peeling or dissolution of the underlying mold. Inflation tests illustrate the region material property differences that are consistent with the in silico model and FEA results used to design the appropriate material property regions. The resulting models will be used for evaluation of corrective surgery procedures and assessment of medical device interactions with a variety of tissue properties.
3D打印心血管解剖模型的旋转涂层,控制复杂形状的材料性能
只提供摘要形式。为外科手术评估和医疗器械性能验证开发有效的体外心血管解剖模型具有挑战性。这是由于复杂的几何结构、材料特性的各向异性和材料特性的空间变化。控制这些影响的能力使生产高保真模型能够显示这些组织的正常和疾病状态,以便对该区域发生的流固相互作用进行强有力的体外分析。提出了一种利用3D打印解剖模型提供表面模具的机器人旋转涂层系统。根据模型区域所需的性能涂抹涂层并允许固化。在分层过程中,在模型的目标区域应用不同的材料可以体现病理生理结构(例如钙化,斑块)。随后的薄壁模型通过剥离或溶解底层模具从3D打印结构中移除。膨胀试验说明了区域材料性能差异,这与用于设计适当材料性能区域的计算机模型和有限元分析结果一致。由此产生的模型将用于评估矫正手术程序和评估医疗设备与各种组织特性的相互作用。
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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