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Fracture toughness-based models for the prediction of power consumption, product size, and capacity of jaw crushers.

机译:基于断裂韧性的模型,用于预测功率消耗,产品尺寸和颚式破碎机的容量。

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摘要

There is little process control employed at aggregate crushing plants and essentially no optimization at the primary or jaw crushing stage. Jaw crusher selection is very dependent on the subjective judgment/experience of individuals, the characterization of rock material using inadequate and unrepresentative tests, and the desire to limit secondary breakage, resulting in the conservative selection and operation of jaw crushers. A method for predicting the power consumption, product size, and volumetric capacity of jaw crushers based on fracture toughness has been proposed in this study. A new fracture toughness test, the Edge Notched Disk Wedge Splitting test, has been developed and verified in order to rapidly assess the fracture toughness of six quarry rocks. A High Energy Crushing Test system has been used to simulate the operational settings of a jaw crusher so that comparison of fracture toughness, specific comminution energy, and breakage distribution could be performed. The results indicate that the specific comminution energy required to reduce a rock particle to a given size increases with fracture toughness. The breakage distribution has also been shown to be dependent upon fracture toughness as long as the elastic modulus is taken into account. Laboratory jaw crushing experiments show that the capacity of a jaw crusher is dependent upon fracture toughness and the elastic modulus. Models for the prediction of power consumption, breakage function/product size, and volumetric capacity have been developed based on these results. At the experimental level, the models were able to predict the specific comminution energy to within 1% and t10 (characteristic crushing parameter) to within 10%. Prediction of the product size distribution produced by a lab-scale jaw crusher, for four different rocks, was within ±5% (in terms of percent passing). The models allow for the selection of a jaw crusher based on the nature of the rock being broken and the average amount of size reduction done on the feed material. The models can also be used to optimize feed and operational settings, as well to determine the product size produced for a given rock and reduction ratio.
机译:骨料破碎设备几乎没有过程控制,在初级或颚式破碎阶段基本上没有优化。颚式破碎机的选择很大程度上取决于个人的主观判断/经验,使用不充分和没有代表性的测试来表征岩石材料以及限制二次破碎的愿望,从而导致颚式破碎机的选择和操作较为保守。这项研究提出了一种基于断裂韧性预测颚式破碎机功耗,产品尺寸和容积的方法。为了快速评估六个采石场的岩石的断裂韧性,已经开发并验证了一种新的断裂韧性测试,即“边缘缺口盘楔形劈裂测试”。高能破碎测试系统已用于模拟颚式破碎机的运行设置,以便可以比较断裂韧性,比破碎能和破损分布。结果表明,将岩石颗粒还原为给定尺寸所需的比破碎能随断裂韧性而增加。只要考虑到弹性模量,断裂分布也已显示出取决于断裂韧性。实验室颚式破碎实验表明,颚式破碎机的能力取决于断裂韧性和弹性模量。基于这些结果,已经开发出用于预测功耗,破损功能/产品尺寸和容量的模型。在实验水平上,模型能够预测比破碎能在1%以内, t 10 (特征破碎参数)在10%以内。对于四种不同的岩石,实验室规模的颚式破碎机产生的产品尺寸分布的预测值在±5%以内(以通过百分比表示)。这些模型允许根据破碎的岩石的性质以及对进料进行的平均尺寸减小量来选择颚式破碎机。该模型还可以用于优化进料和操作设置,以及确定给定岩石和压下率所产生的产品尺寸。

著录项

  • 作者

    Donovan, James George.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Mining.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 211 p.
  • 总页数 211
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 矿业工程;
  • 关键词

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