大功率超声应用中火花间隙参数的优化

Mark P. Wilson, L. balmer, M. Given, S. Macgregor, I. Timoshkin
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摘要

利用脉冲功率技术产生的高功率超声(HPU)在工业和商业上的应用引起了相当大的兴趣。这些应用包括金属喷丸、矿石和矿物提取前的处理、钻井技术以及废料的粉碎和回收。在所有这些应用中,重要的是优化引起工作介质中冲击波的放电参数,以最大限度地提高处理效率。在斯特拉斯克莱德大学的一个研究项目中,研究了HPU在废物处理中的一些应用,以协助回收利用。考虑了两种系统,即制造不锈钢和玻璃瓶的炉渣。使用炉渣材料,目的是将不锈钢从硅酸盐基体中分离出来,使其得以回收。瓶子玻璃的目的是粉碎材料,使其能够以更有价值的形式被回收。随着放电间隙参数的变化,这些过程的效率测量是根据处理的材料质量与输入的能量进行的。与此同时,利用电感传感器进行了测量,以确定在相同条件下放电产生的HPU脉冲中的能量。材料处理效率与远场测量的HPU脉冲强度之间存在相关性。希望这种方法将允许使用诱导测量来确定最佳间隙参数,而不是基于材料加工的耗时试验
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of the Spark Gap Parameters for High Power Ultrasound Applications
There is considerable interest in the industrial and commercial applications of high power ultrasound (HPU) generated using pulsed power techniques. These applications include metal peening, the treatment of ores and minerals before extraction, drilling technologies and the comminution and recovery of waste materials. In all of these applications, it is important to optimise the parameters of the discharge causing the shock wave in the working medium to maximise the efficiency of the treatment. In a research project at the University of Strathclyde, some applications of HPU to the treatment of waste to assist in recycling have been investigated. Two systems have been considered, slag from the manufacture of stainless steel and bottle glass. With the slag material, it is intended to separate stainless steel from the silicate matrix to permit its recovery. With the bottle glass, the intention is comminution of the material to allow it to be recycled in a more valuable form. Measurements of the efficiency of these processes have been made in terms of the mass of material processed versus the energy input as the parameters of the discharge gap have been varied. In parallel with this work, measurements have been made using pinducer sensors to determine the energy in HPU pulses generated by discharges under identical conditions. Correlations are made between the efficiency of material treatment and the intensity of the HPU pulse measured in the far field. It is hoped that this approach will allow the optimal gap parameters to be determined using pinducer measurements rather than time consuming trials based around materials processing
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