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Thermo-magnetic shape control of nano-ferromagnetic particle doped shape memory alloy for orthopedic devices and rehabilitation techniques

机译:矫形设备用纳米铁磁颗粒掺杂形状记忆合金的热磁形状控制及修复技术

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Recent advancement in smart materials facilitated the use of Shape Memory Alloy(SMA) in treatment of different orthopedic problems and rehabilitation technique to treat paralyzed patients. But Shape Memory alloy lacks the controllability while regaining the shape from martensite to austenite during thermal loading. Therefore, in this paper we introduced a mechatronic device which provides the control over the shape change of new hybrid material having property of SMA and shape memory property of anticipated material is verified by finite element analysis in COMSOL Multiphysics. In the proposed methodology the shape is controlled by generating a controlled thermo-magnetic loading, and hybrid material formed by doping a nano-ferromagnetic particle in porous NiTi SMA. For the proof of the concept an experiment is carried out by using a bimetallic strip, microcontroller, sensor and proper feedback circuitry system and it is observed that for the supply of 4V and bent angle for flex sensor between 0 to 40 degree, current through the solenoid is 3.63A producing Magnetic field of 1.42mT and for flex sensor b ent angle 4 0 to 7 5 degree the current through the solenoid is 1.2A producing Magnetic field of 0.47mT for same supply and if the flex sensor bent angle increases more than 75 degree then the voltage supply cutoffs which indicate the absence of Magnetic field.
机译:智能材料的最新发展促进了使用形状记忆合金(SMA)来治疗各种骨科疾病以及康复技术来治疗瘫痪的患者。但是形状记忆合金在热载荷过程中从马氏体恢复为奥氏体时缺乏可控性。因此,在本文中,我们介绍了一种机电一体化设备,该设备可控制具有SMA特性的新型混合材料的形状变化,并通过COMSOL Multiphysics中的有限元分析验证了预期材料的形状记忆特性。在提出的方法中,通过产生受控的热磁载荷来控制形状,并通过在多孔NiTi SMA中掺杂纳米铁磁颗粒形成混合材料。为了证明这一概念,通过使用双金属条,微控制器,传感器和适当的反馈电路系统进行了实验,观察到对于挠性传感器在0至40度之间提供4V电源和弯曲角度时,电流通过螺线管的电流为3.63A,产生的磁场为1.42mT,挠性传感器的弯曲角度为4 0至7 5度,通过电磁阀的电流为1.2A,产生的磁场为0.47mT,对于相同的电源,并且挠性传感器的弯曲角度增加到然后在75度的电压下切断,表明没有磁场。

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