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ON THE ADVANTAGES OF SUPERELASTIC NITI IN ANKLE FOOT ORTHOSES

机译:超弹性镍钛合金在踝足矫形器中的优势

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Foot drop usually happens due to neurological and muscular diseases. It limits individuals' abilities in ankle and toe represented in dorsiflexion during swing phase, and plantar flexion during heel strike. A non-surgical solution to such weakness is the use of ankle foot orthoses (AFOs) which can assist in such abnormal ambulation. The purpose of this work is to develop a new ankle foot orthosis that helps patients to have more normal ankle joint behavior. The proposed AFO device takes advantage of the superelastic behavior of Ni-rich NiTi alloys. In order to evaluate the performance of the Ni-rich NiTi hinged ankle foot orthoses, several motion analysis tests for a normal walking of a healthy subject were conducted. Also, a finite element model were developed to evaluate the performance of superelastic versus stainless steel springs. A Ni-rich NiTi wire was wrapped around a designed rod and the two heads were fixed to the rod (to get the shape of a spring). Then a heat treatment process was performed in a furnace to shape set the NiTi wires and to provide them with the needed superelastic behavior. The produced springs were connected to a designed hinged ankle foot orthoses. Motion analysis was performed on a healthy subject during normal walking in the case of using conventional stainless steel springs, and with using the produced NiTi springs. Joint kinematics and kinetics data of left lower limb (which was equipped with the AFO brace) were collected and calculated to compare normal walking patterns to the resultant walking patterns with the proposed ankle foot orthosis. The CAD file of the AFO, hinge structure and the springs were developed. Each component was meshed and the convergence study were conducted. A finite element model was developed after assembling and introducing all the interactions between parts in Abaqus. The boundary conditions were applied to the system in a way simulating normal walking conditions. Different material properties (stainless steel and superelastic NiTi) were assigned to the springs in the model to evaluate the performance of the system under the aforementioned loading scenario. The results of the motion analysis on a healthy subject during walking indicate that the use of the superelastic NiTi springs causes more normal walk compare to the use of the conventional stainless steel springs, especially during swing phase and heel strike. Moreover, the ankle has closer stiffness profile to the normal walking in the case of using NiTi springs. The results of the finite element analysis show that the super elastic behavior of NiTi results in more hinge rotation while the stress concentration developed on the springs is within the safe levels and cannot cause failure of the NiTi springs. Motion analysis and finite element models were conducted for the proposed hinged AFO and the results were compared with conventional AFO. By taking advantage of the super elastic characteristic of NiTi, more normal walking behavior was observed in the case of using the proposed AFO with Ni-rich NiTi springs.
机译:脚下降通常由于神经系统和肌肉疾病而发生。它限制了在摆动阶段的背包中踝关节和脚趾中的个人能力,并且在脚跟撞击期间的跖屈。对这种弱点的非手术解决方案是使用踝足偏离(AFOS),其可以有助于这种异常的气动。这项工作的目的是开发一个新的踝足矫形器,帮助患者具有更正常的踝关节行为。所提出的AFO装置利用Ni的Niti合金的超弹性行为。为了评估富含NII的NITI HINGED脚踝脚的性能,进行了几种运动分析测试,用于正常地走路的健康受试者。此外,开发了有限元模型以评估超弹性与不锈钢弹簧的性能。富含NII的NITI线缠绕在设计的杆上,并且两个头部固定在杆上(以获得弹簧的形状)。然后在炉中进行热处理工艺以形状设定NITI线并为它们提供所需的超弹性行为。产生的弹簧连接到设计的铰接脚踝脚旁观物。在使用传统的不锈钢弹簧的情况下,在正常行走期间对健康对象进行运动分析,并使用产生的Niti Springs。收集左下肢的关节运动学和动力学数据(配备AFO支架),并计算出与所提出的脚踝脚矫形器相比,将正常的行走模式与所得到的行走模式进行比较。开发了AFO,铰链结构和弹簧的CAD文件。每种组分被啮合,并进行收敛研究。在组装和引入ABAQUS部件之间的所有相互作用后开发了有限元模型。以模拟正常行走条件的方式将边界条件应用于系统。将不同的材料特性(不锈钢和超弹性NITI)分配给模型中的弹簧,以评估系统在上述加载方案下的性能。步行过程中健康主体的运动分析结果表明,使用超弹性NITI弹簧的使用使得与使用传统的不锈钢弹簧的使用相比,特别是在摆动相和鞋跟撞击期间。此外,在使用Niti Springs的情况下,脚踝在正常行走中具有更近的刚度曲线。有限元分析的结果表明,NITI的超弹性行为导致更铰链旋转,而在弹簧上产生的应力集中在安全水平内,不能导致NITI弹簧的失效。进行了运动分析和有限元模型,用于提出铰接AFO,并将结果与​​常规AFO进行比较。通过利用Niti的超弹性特性,在使用富含Ni的Niti Springs的提出的AFO的情况下观察到更正常的行走行为。

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