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A Process for Design, Verification, Validation, and Manufacture of Medical Devices Using Immersive VR Environments

机译:使用沉浸式VR环境进行医疗设备的设计,验证,确认和制造的过程

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This paper presents a framework and detailed vision for using immersive virtual reality (VR) environments to improve the design, verification, validation, and manufacture of medical devices. Major advances in medical device design and manufacture currently require extensive and expensive product cycles that include animal and clinical trials. The current design process limits opportunities to thoroughly understand and refine current designs and to explore new high-risk, high-payoff designs. For the past 4 years, our interdisciplinary research group has been working toward developing strategies to dramatically increase the role of simulation in medical device engineering, including linking simulations with visualization and interactive design. Although this vision aligns nicely with the stated goals of the FDA and the increasingly important role that simulation plays in engineering, manufacturing, and science today, the interdisciplinary expertise needed to realize a simulation-based visual design environment for real-world medical device design problems makes implementing (and even generating a system-level design for) such a system extremely challenging. In this paper, we present our vision for a new process of simulation-based medical device engineering and the impact it can have within the field. We also present our experiences developing the initial components of a framework to realize this vision and applying them to improve the design of replacement mechanical heart valves. Relative to commercial software packages and other systems used in engineering research, the vision and framework described are unique in the combined emphasis on 3D user interfaces, ensemble visualization, and incorporating state-of-the-art custom computational fluid dynamics codes. We believe that this holistic conception of simulation-based engineering, including abilities to not just simulate with unprecedented accuracy but also to visualize and interact with simulation results, is critical to making simulation-based engineering practical as a tool for major innovation in medical devices. Beyond the medical device arena, the framework and strategies described may well generalize to simulation-based engineering processes in other domains that also involve simulating, visualizing, and interacting with data that describe spatially complex time-varying phenomena.
机译:本文为使用沉浸式虚拟现实(VR)环境改善医疗设备的设计,验证,确认和制造提供了框架和详细的愿景。当前,医疗设备设计和制造的重大进步要求广泛而昂贵的产品周期,包括动物和临床试验。当前的设计过程限制了彻底了解和完善当前设计以及探索新的高风险,高回报设计的机会。在过去的四年中,我们的跨学科研究小组一直在努力开发策略,以显着提高仿真在医疗设备工程中的作用,包括将仿真与可视化和交互设计联系起来。尽管这一愿景与FDA既定目标以及当今仿真在工程,制造和科学中日益重要的作用非常吻合,但跨学科的专业知识需要为现实世界中的医疗设备设计问题实现基于仿真的视觉设计环境使得实施(甚至生成系统级设计)这样的系统极具挑战性。在本文中,我们提出了对基于仿真的医疗设备工程新过程的愿景及其在该领域可能产生的影响。我们还将介绍我们开发框架的初始组件以实现这一愿景并将其应用于改进替代性机械心脏瓣膜的设计的经验。相对于工程研究中使用的商业软件包和其他系统,所描述的愿景和框架在3D用户界面,整体可视化以及结合了最先进的自定义计算流体动力学代码的综合强调中是独一无二的。我们认为,这种基于仿真的工程学的整体概念,不仅包括以前所未有的精度进行仿真,而且还能够可视化仿真结果并与仿真结果进行交互,对于使基于仿真的工程学成为医疗器械重大创新的实用工具至关重要。除了医疗设备领域之外,所描述的框架和策略还可以广泛推广到其他领域中基于仿真的工程流程,这些流程还涉及对描述空间复杂时变现象的数据进行仿真,可视化以及与之交互。

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