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Design of an actively actuated prosthetic socket

机译:主动式假肢插座的设计

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Purpose - A prosthetic socket worn by an amputee must serve a wide variety of functions, from stationary support to the transfer of forces necessary to move. Because a subject's residual limb changes volume throughout the day, it is desirable that the socket adapt to accommodate volume changes to maintain fit and comfort. The purpose of this paper is to provide steps towards designing a transtibial nylon prothestic socket, fabricated by selective laser sintering (SLS), that automatically adapts to volumetric changes of a residual limb. Design/methodology/approach - An adaptive socket design that has both rigid and compliant regions is proposed to be manufactured by SLS and actuated by inflation. To assess the feasibility of this approach, thin membrane test specimens of various thicknesses and materials were created to understand the relationship between inflation pressure and deflection for SLS manufactured plastics. Finite element analysis (FEA) was assessed as a predictive design tool and verified with the experimental inflation/deflection results. Findings - The initial flat test specimens could only achieve deflection of 2.13mm at 145 kPa (nylon 12) and 3.38mm at 340 kPa (nylon 11). A curved specimen is created that met performance goals with 7.67mm maximum deflection at 714 kPa. FEA for the flat specimens is an accurate predictor of performance, but the results of analyzing the curved specimens are an order of magnitude different from the experimental data. Research limitations/implications - The success of the physical curved specimens is encouraging for future research, but the FEA will need to be further developed before socket performance can be predicted with confidence. Originality/value - A socket that does not fit the subject well will cause movement problems, rehabilitation difficulties, and potentially long-term health issues. This research shows great potential for developing a socket that provides greater comfort and fit.
机译:目的-截肢者佩戴的假牙套必须具有多种功能,从固定支撑到传递必要的移动力。由于受试者的残余肢体全天都会改变体积,因此需要使承窝能够适应体积变化,以保持健康和舒适。本文的目的是为设计一种通过选择性激光烧结(SLS)制造的,能够自动适应残肢体积变化的经胫骨尼龙假体插座提供步骤。设计/方法/方法-拟由SLS制造并具有充气和适应功能的自适应插座设计,该设计既具有刚性区域又具有柔顺区域。为了评估这种方法的可行性,创建了各种厚度和材料的薄膜试样,以了解SLS制造的塑料的充气压力和挠度之间的关系。有限元分析(FEA)被作为一种预测性设计工具进行了评估,并通过实验膨胀/偏转结果进行了验证。研究结果-最初的扁平测试样品在145 kPa(尼龙12)时只能产生2.13mm的挠度,在340 kPa(尼龙11)时只能达到3.38mm的挠度。创建一个弯曲的样品,该样品在714 kPa的最大挠度下达到7.67mm,达到了性能目标。扁平样品的有限元分析是性能的准确预测指标,但弯曲样品的分析结果与实验数据相差一个数量级。研究局限性/含义-物理弯曲标本的成功为将来的研究鼓舞,但在可以自信地预测承窝性能之前,还需要进一步开发FEA。独创性/价值-不能很好地适应受试者的插座会导致运动问题,康复困难以及潜在的长期健康问题。这项研究显示出开发具有更高舒适度和舒适度的插座的巨大潜力。

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