Fukushima Kyosuke, Kabir Mahmudul, Kanda Kensuke, Obara Naoko, Fukuyama Mayuko, Otsuki Akira
Graduate School of Engineering Science, Akita University, 1-1 Tegata Gakuen Machi, Akita 010-8502, Japan.
Graduate School of Engineering Science, Cooperative Major in Life Cycle Design Engineering, Tegata Campus, Akita University, 1-1 Tegata Gakuen Machi, Akita 010-8502, Japan.
Materials (Basel). 2022 Jun 28;15(13):4549. doi: 10.3390/ma15134549.
The equivalent circuit model is widely used in high-voltage (HV) engineering to simulate the behavior of HV applications for insulation/dielectric materials. In this study, equivalent circuit models were prepared in order to represent the electric and dielectric properties of minerals and voids in a granite rock sample. The HV electric-pulse application shows a good possibility of achieving a high energy efficiency with the size reduction and selective liberation of minerals from rocks. The electric and dielectric properties were first measured, and the mineral compositions were also determined by using a micro-X-ray fluorescence spectrometer. Ten patterns of equivalent circuit models were then prepared after considering the mineral distribution in granite. Hard rocks, as well as minerals, are dielectric materials that can be represented as resistors and capacitors in parallel connections. The values of the electric circuit parameters were determined from the known electric and dielectric parameters of the minerals in granite. The average calculated data of the electric properties of granite agreed with the measured data. The conductivity values were 53.5 pS/m (measurement) and 36.2 pS/m (simulation) in this work. Although there were some differences between the measured and calculated data of dielectric loss (), their trend as a function of frequency agreed. Even though our study specifically dealt with granite, the developed equivalent circuit model can be applied to any other rock.
等效电路模型在高压工程中被广泛用于模拟高压绝缘/介电材料应用的行为。在本研究中,制备了等效电路模型以表征花岗岩岩样中矿物和孔隙的电学和介电特性。高压电脉冲应用显示出通过减小岩石尺寸和选择性释放矿物来实现高能效的良好可能性。首先测量了电学和介电特性,并使用微X射线荧光光谱仪确定了矿物成分。然后在考虑花岗岩中矿物分布的情况下制备了十种等效电路模型。硬岩以及矿物都是介电材料,可以表示为并联的电阻器和电容器。电路参数值由花岗岩中矿物的已知电学和介电参数确定。花岗岩电学性质的平均计算数据与测量数据相符。在本工作中,电导率值分别为53.5 pS/m(测量值)和36.2 pS/m(模拟值)。尽管介电损耗的测量数据和计算数据之间存在一些差异,但它们随频率的变化趋势是一致的。尽管我们的研究专门针对花岗岩,但所开发的等效电路模型可应用于任何其他岩石。