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Active control of a smart composite with shape memory alloy sheet using a plastic optical fiber sensor

机译:使用塑料光纤传感器主动控制形状记忆合金薄板的智能复合材料

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This paper investigates the morphing characteristics of a fiber metal laminate (FML) based on shape memory alloy (SMA) skin and a carbon fiber reinforced epoxy composite. Prior to manufacture, the SMA surface layer was trained by heating them to 500 C in a furnace and quenching rapidly in a water bath. The SMA skin was then bonded to the composite and a thin silicon heater was attached to the SMA skin. During activation, the deflection of the beam was detected via a plastic optical fiber (POF) sensor bonded to the upper surface of the smart FML. The output from the POF sensor was monitored using a photodetector which in turn was connected to a control unit. This closed-loop arrangement enables the operator to introduce the prescribed set-point deflection values of the beam. The desired deflections of the smart FML are achieved by the control unit switching on, and subsequently switching off, the silicon heater using the POF to provide the feedback signal. Tests have shown that this smart FML is capable of accurately achieving prescribed values of beam deflection based on the POF sensors signal. The repeatability of the system has been demonstrated by systematically increasing and then decreasing the prescribed deflection and monitoring the subsequent response. In addition, the structure has been shown to be capable of accommodating unwanted disturbances, such as those associated with external loading regimes. During initial studies, using an on-off control strategy, the beam tended to overshoot the required deflection before stabilizing at the set-point value some tens of seconds later. This effect was reduced through the tuning of a proportional-integrative- derivative (PID) control setting on the control unit. It is believed that the findings outlined in this paper demonstrate the potential benefits offered by smart hybrid structures.
机译:本文研究了基于形状记忆合金(SMA)表皮和碳纤维增强环氧复合材料的纤维金属层压板(FML)的变形特性。在制造之前,通过在炉中将SMA表面层加热至500°C并在水浴中快速淬火来对SMA表面层进行培训。然后将SMA蒙皮粘合到复合材料上,然后将薄硅加热器连接到SMA蒙皮。在激活过程中,光束的偏转是通过连接到智能FML上表面的塑料光纤(POF)传感器检测到的。使用光电探测器监视POF传感器的输出,该光电探测器又连接到控制单元。这种闭环布置使操作员能够引入规定的光束定点偏转值。通过使用POF提供反馈信号的控制单元打开并随后关闭硅加热器,可以实现智能FML的所需偏转。测试表明,该智能FML能够基于POF传感器信号准确地达到规定的光束偏转值。系统的可重复性已通过系统地增大然后减小规定的挠度并监视后续响应得到了证明。另外,已经显示出该结构能够适应不希望的干扰,例如与外部加载方式相关的干扰。在最初的研究中,使用开/关控制策略,在趋于几十秒后,光束趋于超出所需的偏转,然后稳定在设定点值。通过调整控制单元上的比例积分微分(PID)控制设置,可以减少这种影响。可以相信,本文概述的发现证明了智能混合结构的潜在好处。

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