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Designing an Intelligent Expert Control System Using Acoustic Signature for Grinding Mill Operation

机译:设计智能专家控制系统,采用磨削轧机运行的声学签名

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This paper presents an instrumentation scheme to use acoustic signal as the control signal to regulate the operation of a grinding mill. Due to the very operational nature of the grinding mill, it is not hard rather impossible to install conventional sensors like optical, temperature etc. inside the grinding mill for obtaining feedback signal which could monitor the grinding operation. Therefore, conventional functioning of the grinding mill does not provide a mechanism to achieve optimum grinding by regulating the parameters of the mill in case either mill enters into an erroneous state or the product deviates from the desired range. Moreover, on study it has found that there is no scheme existing to predict grinding operation by which parameters of the mill could be tuned. In this work an appropriate theoretical background has also been established to predict dynamic breakage characteristics with respect to particle size distribution of materials, adequately supported by experimental data. The breakage characteristic has been verified using a Neural Network model while the validation of the learning scheme is also demonstrated in the paper.
机译:本文介绍了使用声学信号作为控制信号来调节磨机的操作的仪表方案。由于研磨机的非常操作性质,在研磨机内部的光学,温度等中安装传统传感器是不难安装的,以获得可能监测研磨操作的反馈信号。因此,磨磨机的常规功能不提供通过调节研磨机的参数来实现最佳研磨的机制,以便在任一轧机进入错误状态或产品偏离所需范围内。此外,在研究中,已经发现,没有现有的方案来预测可以调整研磨机的参数的研磨操作。在这项工作中,还建立了适当的理论背景,以预测关于材料的粒度分布的动态破损特性,通过实验数据充分支持。已经使用神经网络模型验证了破损特性,而在纸上还证明了学习方案的验证。

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