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Experimental comparison of piezoelectric and magnetostrictive shunt dampers

机译:压电和磁致伸缩分流阻尼器的实验比较

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A novel mechanism called the vibration ring is being developed to enable energy conversion elements to be incorporated into the driveline of a helicopter or other rotating machines. Unwanted vibration is transduced into electrical energy, which provides a damping effect on the driveline. The generated electrical energy may also be used to power other devices (e.g., health monitoring sensors). PZT ('piezoceramic') and PMN-30%PT ('single crystal') stacks, as well as a Tb_(0.3)Dy_(0.7)Fe_(1.92) ('Terfenol-D') rod with a bias magnet array and a pickup coil, were tested as alternative energy conversion elements to use within the vibration ring. They were tuned for broadband damping using shunt resistors, and dynamic compression testing was conducted in a high-speed load frame. Energy conversion was experimentally optimized at 750Hz by tuning the applied bias stress and resistance values. Dynamic testing was conducted up to 1000Hz to determine the effective compressive modulus, shunt loss factor, internal loss factor, and total loss factor. Some of the trends of modulus and internal loss factor versus frequency were unexplained. The single crystal device exhibited the greatest shunt loss factor whereas the Terfenol-D device had the highest internal and total loss factors. Simulations revealed that internal losses in the Terfenol-D device were elevated by eddy current effects, and an improved magnetic circuit could enhance its shunt damping capabilities. Alternatively, the Terfenol-D device may be simplified to utilize only the eddy current dissipation mechanism (no pickup coil or shunt) to create broadband damping.
机译:正在开发出一种称为振动环的新机构以使能量转换元件能够结合到直升机或其他旋转机器的驾驶线中。不需要的振动被输电成电能,这为传动系提供了阻尼效应。产生的电能也可用于为其他设备(例如,健康监测传感器)供电。 PZT('piezoceramic')和PMN-30%Pt('单晶')堆叠,以及带有偏置磁铁阵列的TB_(0.3)DY_(0.7)FE_(1.92)('Terfenol-D')杆和拾取线圈被测试为在振动环内使用的替代能量转换元件。它们通过分流电阻进行宽带阻尼,并且在高速负载框架中进行动态压缩测试。通过调整所施加的偏置应力和电阻值,在750Hz上通过750Hz进行了能量转换。动态测试最多可达1000Hz以确定有效的压缩模量,分流损耗因子,内部损耗因子和总损耗因子。模量和内部损失因子与频率的一些趋势是不可解释的。单晶装置表现出最大的分流损耗因子,而Terfenol-D设备具有最高的内部和总损失因子。仿真显示,涡流效应升高了萜卷-D装置中的内部损失,并且改进的磁路可以增强其分流阻尼能力。或者,可以简化Terfenol-D设备仅利用涡流耗散机构(无拾取线圈或分流)来产生宽带阻尼。

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