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Dynamic Simualtion and Performance Study of Magnetostrictive Transducers for Ultrasonic Applications

机译:超声波应用磁致伸缩传感器的动态仿真与性能研究

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A dynamic simulation model of magnetostrictive actuators and transducers ahs been used to study the performance and thermal balance of an ultrasonic magnetostrictive power transducer. electrically resistive, eddy current, mechancially resistive and hysteresis losses have been deduced when the transducer works agasinst a purely mechanically resistive load for a moderate driving current of 10 A and a frequency of 21 kHz. The eddy current losses can be reduced significantly by laminating the active material. However, the hysteresis losses are the main source for heating the tranducers. Teh power losses obtained fro mthe dynamci simualtions have been used as thermal sources in electro-thermal finite element calcualtions. The calculations show that free air convection is not enough to cool the actuator. Water cooling of the actuator with a flow of 6.8 l/min will decrease the active materials temperature to around 80 deg C. This has been obtained by estiamting the heat transfer and use the heat flow as sinks in the finite element calcualtions. The design of a magnetostrictive ultrasonic transducer must therefore comprise an optimal working point regarding magnetic biasing and mechancial pre-stress to minimize the hysteresis.
机译:磁致伸缩致动器和换能器的动态仿真模型AHS研究了超声波磁致伸缩电力换能器的性能和热平衡。当换能器在诸如10a的中等驱动电流和21kHz的频率时,已经推断出电阻,涡流,机电电阻和滞后损耗。通过层压活性材料,可以显着降低涡流损耗。然而,滞后损失是加热伴侣的主要来源。可以使用的Teh功率损失MymoCi Simualtions已被用作电热有限元计算中的热源。计算表明,自由空气对流不足以冷却致动器。致动器的水冷却有6.8升/分钟的流动将使活性材料温度降低至约80℃。这是通过在有限元计算中的沉积物中的传热而获得的,这已经获得了约80℃。因此,磁致伸缩超声换能器的设计必须包括关于磁偏置和机械预应力的最佳工作点以最小化滞后。

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