VARIABLE STIFFNESS HONEYCOMB METAMATERIALS FOR ADAPTIVE ANKLE BRACE DESIGN

Yujin Park, Yingjun Zhao Dubuc, Amy Slider, P. Sessoms, J. Fraser, K. Loh
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Abstract

Lateral ankle sprains cost billions of dollars in medical expenses annually and frequently result in long-term functional decline and a diminished health-related quality of life. While ankle braces have been shown to be effective in prophylaxis of subsequent ankle sprains, current braces are either too stiff and affect normal gait or too flexible and provide insufficient support during high-intensity activities. In this study, we proposed an adaptive ankle brace design that employs dynamically variable stiffness components to provide minimum support under normal gait movements and maximum rigidity under large ranges of motion. To achieve these unique properties, a honeycomb geometry was designed and three dimensionally printed with thermoplastic polyurethane to exhibit nonlinear, strain-stiffening, elastic behavior. We conducted a series of tensile load tests on different honeycomb unit cell configurations. First, the influence of unit cell designs on their mechanical strength and force-strain profiles was characterized. Second, experimentally calibrated finite element models of individual components simulated the mechanical response of the geometry, which were then used to optimize the geometrical parameters of the honeycomb shape (i.e., ring size, length of lateral elements, and thickness). The results identified promising design parameters for these honeycomb geometries that could be used to realize next-generation adaptive ankle braces.
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用于自适应踝关节支架设计的变刚度蜂窝超材料
踝关节外侧扭伤每年造成数十亿美元的医疗费用,并经常导致长期功能下降和健康相关生活质量下降。虽然踝关节支架已被证明在预防踝关节扭伤方面是有效的,但目前的支架要么太僵硬,影响正常的步态,要么太灵活,在高强度活动中提供的支撑不足。在本研究中,我们提出了一种自适应踝关节支架设计,该设计采用动态可变刚度组件,在正常步态运动时提供最小的支撑,在大范围运动时提供最大的刚度。为了实现这些独特的性能,设计了蜂窝几何形状,并用热塑性聚氨酯三维打印,以表现出非线性,应变硬化,弹性行为。我们对不同的蜂窝单元格结构进行了一系列的拉伸载荷试验。首先,表征了单元格设计对其机械强度和力-应变曲线的影响。其次,通过实验校准单个部件的有限元模型,模拟几何结构的力学响应,然后将其用于优化蜂窝形状的几何参数(即环尺寸、侧单元长度和厚度)。结果确定了蜂窝几何形状的设计参数,可用于实现下一代自适应踝关节支架。
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