尼龙作动器的非线性热弹性分析

J. Murín, M. Minar, P. Melek, V. Goga, V. Kutǐs, Juraj Paulech
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引用次数: 0

摘要

一个新的驱动器,由两个尼龙弹簧,设计在一个形式的冯米塞斯桁架系统。尼龙弹簧(一种人造肌肉)是通过扭转尼龙线产生的。由于扭转进入预应力弹簧,纤维形成了新的微观结构。弹簧经过机械伸长后,加温后表现为负的温度膨胀。这是实际应用的主要优势。执行器的加热是通过缠绕在尼龙弹簧上的电线来实现的。采用半解析和数值方法对作动器进行几何非线性热弹性分析,得到其在电-热-机械载荷作用下的变形。通过对实际模型的测量,验证了计算结果。两者的结果非常吻合。一个新的驱动器,由两个尼龙弹簧,设计在一个形式的冯米塞斯桁架系统。尼龙弹簧(一种人造肌肉)是通过扭转尼龙线产生的。由于扭转进入预应力弹簧,纤维形成了新的微观结构。弹簧经过机械伸长后,加温后表现为负的温度膨胀。这是实际应用的主要优势。执行器的加热是通过缠绕在尼龙弹簧上的电线来实现的。采用半解析和数值方法对作动器进行几何非线性热弹性分析,得到其在电-热-机械载荷作用下的变形。通过对实际模型的测量,验证了计算结果。两者的结果非常吻合。
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Non-linear thermoelastic analysis of the nylon actuator
A new actuator, consisting of two nylon springs, is designed in a form of the von Mises truss system. The nylon spring (an artificial muscle) is produced by twisting of the nylon line. As a result of the twisting into the prestressed spring, a new microstructure of the fibre has been formed. The spring, after its mechanical elongation, exhibits a negative temperature expansion after its warming. This is the main advantage for the practical applications. The heating of the actuator is realized by the electric wire, which is wound on the nylon springs. Semi analytical and numerical methods are used for geometric non-linear thermo elastic analysis of the actuator to obtain its deformation caused by the electro-thermo-mechanical loads. The calculated results are verified by the measurement on the real model. A very good agreement of both the results is obtained.A new actuator, consisting of two nylon springs, is designed in a form of the von Mises truss system. The nylon spring (an artificial muscle) is produced by twisting of the nylon line. As a result of the twisting into the prestressed spring, a new microstructure of the fibre has been formed. The spring, after its mechanical elongation, exhibits a negative temperature expansion after its warming. This is the main advantage for the practical applications. The heating of the actuator is realized by the electric wire, which is wound on the nylon springs. Semi analytical and numerical methods are used for geometric non-linear thermo elastic analysis of the actuator to obtain its deformation caused by the electro-thermo-mechanical loads. The calculated results are verified by the measurement on the real model. A very good agreement of both the results is obtained.
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