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A preliminary model of high pressure roll grinding using the discrete element method and multi-body dynamics coupling

机译:采用离散元法和多体动力耦合的高压辊磨削初步模型

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摘要

The HPGR is properly regarded as one of the most important recent developments in the field of size reduction. This success is mainly associated to its improved energy efficiency, grinding capacity, lower sensitivity to grindability variations and higher metal recovery in downstream processes compared with conventional grinding technologies such as ball mills and cone crushers. It comprises two counter-rotating rolls mounted on a sturdy frame, one of which is allowed to float and is positioned using hydraulic springs. Comminution in the HPGR is largely determined by the pressure exerted on the bed of particles by the hydraulic system. The paper describes how the coupling of the multi-body dynamic simulation with the discrete element method can be effectively used to describe the performance of the HPGR. The model considers important variables, including the HPGR rolls geometry and design, the hydraulic spring system start-up parameters and the material loading response, to describe key operational outputs as material throughput, operating gap and roller pressure distribution. The preliminary version of the model has been used to demonstrate qualitatively the effect of material properties on the operating gap, the pressure and the energy consumption of a laboratory-scale HPGR. Predictions using the model have been compared to those from phenomenological models, showing good agreement, but also limitations in the DEM approach with the current simple particle replacement model to predict the working gap at high initial nitrogen pressures. (C) 2016 Elsevier B.V. All rights reserved.
机译:HPGR被正确被认为是减少尺寸领域最重要的最新发展之一。这种成功主要与其提高的能效,研磨容量,对磨削性变化的敏感性降低以及下游过程中较高的金属回收率相关联,与球磨机和锥体破碎机等传统的研磨技术相比。它包括安装在坚固框架上的两个反向旋转辊,其中一个被允许浮动并且使用液压弹簧定位。 HPGR中的粉碎主要由液压系统施加在颗粒床上的压力决定。本文介绍了如何用离散元件方法的多体动态模拟的耦合如何有效地用于描述HPGR的性能。该模型考虑了重要的变量,包括HPGR卷几何形状和设计,液压弹簧系统启动参数和材料加载响应,以描述作为材料产量,操作间隙和滚子压力分布的关键操作输出。该模型的初步版本已被用于证明材料特性对实验室标度HPGR的工作差距,压力和能量消耗的质量性。使用该模型的预测已经与现象学模型的预测相比,表现出良好的一致性,而且还限制了DEM方法,目前的简单颗粒替代模型预测高初始氮气压力下的工作差距。 (c)2016年Elsevier B.v.保留所有权利。

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