超弹性膜致动器:环面和螺旋形多功能结构分析

IF 10.5 Q1 ENGINEERING, BIOMEDICAL Cyborg and bionic systems (Washington, D.C.) Pub Date : 2022-02-02 DOI:10.34133/2022/9786864
Eduardo R. Perez-Guagnelli, Joanna Jones, Dana D. Damian
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引用次数: 2

摘要

医疗领域需要提供机械辅助的技术,例如通过延伸和刺激再生组织的植入物。其中一个挑战是开发执行器,在保持其形状和柔软性的同时,将低压下的高轴向延伸、模块化、多功能和承重能力结合在一起。克服这一挑战将为植入物提供增强的机械辅助能力,以诱导组织再生。本文介绍了两种由叠置超弹性气球膜致动器(HBMAs)构成的新型致动器(M2H),可采用螺旋和环面结构实现。通过采用半软外骨骼对HBMA膨胀进行确定性抑制,使执行器具有轴向扩展和径向扩展能力。因此,这些驱动器由模块组成,可以配置为不同的治疗需求和多功能,以提供解剖学上一致的刺激。我们介绍了m2h - hbma的设计、制造、测试以及数值和实验验证。在低至26 kPa和24 kPa的输入压力下,它们的螺旋形和环形结构可以分别向轴延伸41%和32%。如果单独使用轴向扩展模块,其扩展容量可达>170%。m2h - hbma可以进行独立且同时的膨胀和延伸运动,腔内变形可以忽略不计,并且可以承受至少1kg的轴向力而不坍塌。m2h - hbma克服了超膨胀机器低负载阻力的限制。我们设想M2H-HBMAs作为执行组织再生程序的有前途的工具。
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Hyperelastic Membrane Actuators: Analysis of Toroidal and Helical Multifunctional Configurations
Technologies that provide mechanical assistance are required in the medical field, such as implants that regenerate tissue through elongation and stimulation. One of the challenges is to develop actuators that combine the benefits of high axial extension at low pressures, modularity, multifunction, and load-bearing capabilities into one design while maintaining their shape and softness. Overcoming such a challenge will provide implants with enhanced capacity for mechanical assistance to induce tissue regeneration. We introduce two novel actuators (M2H) built of stacked Hyperelastic Ballooning Membrane Actuators (HBMAs) that can be realized using helical and toroidal configurations. By restraining the HBMA expansion deterministically using a semisoft exoskeleton, the actuators are endowed with axial extension and radial expansion capabilities. These actuators are thus built of modules that can be configured to different therapeutical needs and multifunctionality, to provide anatomically congruent stimulation. We present the design, fabrication, testing, and numerical and experimental validation of the M2H-HBMAs. They can axially extend up to 41% and 32% in their helical and toroidal configurations at input pressures as low as 26 and 24 kPa, respectively. If the axial extension module is used separately, its extension capacity reaches >170%. The M2H-HBMAs can perform independent and simultaneous expansion and extension motions with negligible intraluminal deformation as well as stand at least 1 kg of axial force without collapsing. The M2H-HBMAs overcome the limitations of hyperexpanding machines that show low resistance to load. We envisage M2H-HBMAs as promising tools to perform tissue regeneration procedures.
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CiteScore
7.70
自引率
0.00%
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审稿时长
21 weeks
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