首页> 外文会议>2017 International Symposium on Wearable Robotics and Rehabilitation >Three-dimensional printing of components for a dynamic upper extremity orthotic: Prototype development: Topics: Advances in upper limb robotics, other
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Three-dimensional printing of components for a dynamic upper extremity orthotic: Prototype development: Topics: Advances in upper limb robotics, other

机译:动态上肢矫形器组件的三维打印:原型开发:主题:上肢机器人技术的进步,其他

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摘要

For patients with upper extremity (UE) functional deficits due to neuromuscular disorders (e.g. stroke), orthotic designs can employ complex assemblies to facilitate functional recovery and augmentation. Three-dimensional (3D) printing technology presents significant benefits to orthotic design, fabrication, and availability. Using advanced printers and an ever-diversifying selection of printable materials, 3D printing has potential to accommodate the design specifications (e.g. static support, dynamic assistance) of a multi-component assembly. Thus, this technology promises to reduce fabrication overhead, to improve access to orthotics, to minimize orthotic repair/replacement concerns, and to facilitate rapid design modification/turnaround. This latter benefit is a crucial aspect for patients requiring serial adjustments to orthotic fit/function during their rehabilitation course. To support technology development, this research project compares an existing upper extremity orthotic with a modified version. This modified orthotic will rely on 3D printing to fabricate elastic components comparable to the metal springs of the original orthotic. To quantify this comparison, testing will comprise standard engineering measures and a clinical study. Engineering measures will include spring coefficient, tensile strength, and fatigue limit. The clinical study will involve repeat measures experimental design; three patients with upper extremity deficits secondary to stroke will perform a standardized UE functional assessment tool (e.g. Box and Block Test) using the original orthotic or the modified orthotic. Each patient will then switch orthotic and repeat the assessment. Data will be analyzed with intent to prove concept, demonstrate potential, and identify areas of improvement for 3D printing technology. At present, our interdisciplinary team of clinicians and engineers has accomplished the following objectives: (i) selection and trial operation of a 3D printer, (ii) identification of potential printable filaments, and (iii) successful fabrication of standardized test elements to support engineering evaluation. Ensuing efforts will focus toward designing the elastic components with computer aided design (CAD) software and then employing expertise from prior objectives to fabricate a functional prototype to support the clinical study.
机译:对于由于神经肌肉疾病(例如中风)而导致上肢(UE)功能缺陷的患者,矫形器设计可以采用复杂的组件来促进功能恢复和增强。三维(3D)打印技术为矫形设计,制造和可用性提供了显着优势。使用先进的打印机和多样化的可打印材料选择,3D打印有潜力适应多组件装配的设计规范(例如静态支撑,动态辅助)。因此,该技术有望减少制造费用,改善矫正器的使用率,最大程度地减少矫正性修复/置换问题并促进快速的设计修改/周转。对于在康复过程中需要对矫形器配合/功能进行系列调整的患者而言,后一个好处是至关重要的方面。为了支持技术开发,该研究项目将现有的上肢矫形器与修改后的版本进行了比较。这种改进的矫形器将依靠3D打印来制造与原始矫形器的金属弹簧相当的弹性组件。为了量化此比较,测试将包括标准工程措施和临床研究。工程措施将包括弹簧系数,抗张强度和疲劳极限。临床研究将涉及重复测量实验设计;三名继发于中风的上肢缺陷患者将使用原始的矫形器或改良的矫形器执行标准化的UE功能评估工具(例如Box and Block Test)。然后,每个患者将切换矫形器并重复评估。将对数据进行分析,以证明概念,展示潜力并确定3D打印技术的改进领域。目前,我们的临床医生和工程师跨学科团队已实现以下目标:(i)3D打印机的选择和试运行;(ii)识别潜在的可打印细丝;(iii)成功制造标准化的测试元件以支持工程设计评价。随后的工作将集中于使用计算机辅助设计(CAD)软件设计弹性组件,然后利用先前目标的专业知识来制造功能原型以支持临床研究。

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