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扭曲螺旋聚合物人工肌肉的螺旋形成及仿生性能表征

Coil Formation and Biomimetic Performance Characterization of Twisted Coiled Polymer Artificial Muscles.

作者信息

Witham Nicholas S, Mersch Johannes, Selzer Lukas, Reiche Christopher F, Solzbacher Florian

机构信息

Department of Biomedical Engineering, University of Utah, Salt Lake City, 84112, USA.

Institute of Solid-State Electronics, TUD Dresden University of Technology, Mommsenstr. 15, 01062 Dresden, Germany.

出版信息

Adv Intell Syst. 2025 Feb;7(2). doi: 10.1002/aisy.202400334. Epub 2024 Sep 2.

Abstract

OBJECTIVE

A biological muscle's force is nonlinearly constrained by its current state (force, length, and speed) and state history. To investigate if artificial muscles can mimic the complete mechanical state spectrum of biological muscles, this study uses a novel method to characterize twisted coiled polymer actuators (TCPAs) mechanically. Thus, comprehensive and reproducible test procedures are established to verify artificial muscle biomimetics regarding stress, strain, and strain rate combinations intrinsic to biological muscle.

APPROACH

A rheometer performs novel high-precision mechanical characterization methods that comprehensively verify biomimetic performance. Sample twist level, torque, length, force, and temperature were controlled and measured during twist-induced coiling, heatsetting/annealing, and mechanical testing. TCPAs were formed from linear low-density polyethylene monofilament.

MAIN RESULTS

LLDPE TCPAs generate larger stresses than biological muscle through the entire spectrum of strains - contracting more than 40%, exerting more than 0.3 MPa at rest length, and withstanding tension of 8 MPa without damage. Thus, the LLDPE TCPAs attained biological muscle performance statically, but additional tests are required to assess this dynamically.

SIGNIFICANCE

The mechanical performance of LLDPE TCPAs enables biomimetic actuation with an intelligent control and measurement system. Their high-throughput textile manufacturability positions them for advanced biomechatronic applications - including prosthetics and exoskeletons.

摘要

目的

生物肌肉的力量受到其当前状态(力量、长度和速度)以及状态历史的非线性限制。为了研究人工肌肉是否能够模拟生物肌肉的完整机械状态谱,本研究采用了一种新颖的方法对扭曲螺旋聚合物致动器(TCPA)进行机械特性表征。因此,建立了全面且可重复的测试程序,以验证人工肌肉在生物肌肉固有的应力、应变和应变率组合方面的仿生性能。

方法

流变仪执行新颖的高精度机械特性表征方法,全面验证仿生性能。在扭曲诱导卷曲、热定型/退火和机械测试过程中,对样品的扭曲程度、扭矩、长度、力量和温度进行控制和测量。TCPA由线性低密度聚乙烯单丝制成。

主要结果

在整个应变谱范围内,线性低密度聚乙烯TCPA产生的应力比生物肌肉更大——收缩超过40%,在静止长度时施加超过0.3兆帕的力,并且能够承受8兆帕的张力而不损坏。因此,线性低密度聚乙烯TCPA在静态下达到了生物肌肉的性能,但需要进行额外测试以动态评估这一点。

意义

线性低密度聚乙烯TCPA的机械性能使得通过智能控制和测量系统实现仿生驱动成为可能。它们的高通量纺织可制造性使其适用于先进的生物机电应用——包括假肢和外骨骼。

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本文引用的文献

2
New twist on artificial muscles.人造肌肉的新进展。
Proc Natl Acad Sci U S A. 2016 Oct 18;113(42):11709-11716. doi: 10.1073/pnas.1605273113. Epub 2016 Sep 26.
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Highly twisted double-helix carbon nanotube yarns.高度扭曲的双螺旋碳纳米管纱线。
ACS Nano. 2013 Feb 26;7(2):1446-53. doi: 10.1021/nn305209h. Epub 2013 Jan 4.
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Contraction dynamics and power output of skeletal muscle.骨骼肌的收缩动力学与功率输出。
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