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Preliminary Study on Interactive Control for the Artificial Myocardium by Shape Memory Alloy Fibre

机译:形状记忆合金纤维对人工心肌互动控制的初步研究

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The authors have been developing a sophisticated artificial myocardium for the treatment of heart failure, which is capable of supporting contractile function from the outside of the ventricle. The purpose of this study was to construct the control methodology of functional assistance by an artificial myocardium using small active mechanical elements composed of shape memory alloy fibres (Biometal). In order to achieve a sophisticated mechanical support by using shape memory alloy fibres, the diameter of which was 100 microns, the mechanical response of the myocardial assist device unit was examined by using PID (Proportional-Integral-Derivative) control method. Prior to the evaluation of dynamic characteristics, the relationship between strain and electric resistance of the shape memory alloy fibre and also the inditial response of each unit were obtained in the electrical bridge circuit; The component for the PTD control was designed for the regulation of the myocardial contractile function. An originally-designed RISC microcomputer was employed and the input or output signals were controlled by pulse width modulation method in respect of displacement controls. Consequently, the optimal PID parameters were confirmed and the fibrous displacement was successfully regulated under the different heat transfer conditions simulating internal body temperature as well as bias tensile loading. Then it was indicated that this control methodology could be useful for more sophisticated ventricular passive or active restraint by using the artificial myocardium on physiological demand interactively.
机译:作者一直在开发一种复杂的人工心肌,用于治疗心力衰竭,这能够从心室外部支撑收缩功能。本研究的目的是使用人造心肌使用由形状记忆合金纤维(生物截止物)组成的小型有源机械元件来构建功能辅助的控制方法。为了通过使用形状记忆合金纤维来实现复杂的机械支撑,通过使用PID(比例 - 积分衍生物)控制方法,检查电磁辅助装置单元的机械响应。在评估动态特性之前,在电桥电路中获得了形状记忆合金光纤的应变和电阻之间的关系和每个单元的电阻的关系; PTD控制的组件被设计用于调节心肌收缩功能。采用最初设计的RISC微计算机,并通过脉冲宽度调制方法对位移控制的控制或输出信号控制。因此,确认了最佳PID参数,并且在模拟内体温度的不同传热条件下成功地调节了纤维位移,以及偏压拉伸载荷。然后表明该控制方法可以通过以交互式地使用人造心肌来对更复杂的心室被动或主动束缚有用。

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