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VALIDATION OF TUMBLING MILL CHARGE INDUCED TORQUE AS PREDICTED BY SIMULATIONS

机译:通过模拟预测的推翻磨机电荷诱导扭矩的验证

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Understanding mill charge motion is important. In the charge, the centre of gravity is shifted from the rotational centre of the mill system, and its motion is induced by rotation of the mill, while at the same time the charge creates a torque into the mill system. Breakage of ore particles and wear of liners/ball media are closely linked to the motion. To study these phenomena in a physically correct manner, numerical models for different parts of the mill system are needed. Validations of such models are scarce, because of the difficulty to measure in a tumbling mill. Experimental measurements in a lab mill were done for diverse load cases: varying feed materials, mill fillings, mill speeds and pulp liquids. The mill is set up to directly measure the charge-induced torque. The accuracy is good with relative uncertainty smaller than ±2% for relevant load cases. A full three dimensional numerical model of the whole mill is used to predict induced torque. Agreement between predicted and measured torque at steady-state is good. In addition, the model can accurately predict the mill start-up behavior for torque and mill power. This proves that the model is physically correct, and can be used for full-scale mills.
机译:了解轧机充电运动很重要。在电荷中,重心从研磨系统的旋转中心移位,并且通过研磨机的旋转诱导其运动,同时电荷在研磨系统中产生扭矩。矿石颗粒的破损和衬垫/球介质的磨损与运动密切相关。为了以物理正确的方式研究这些现象,需要用于轧机系统的不同部分的数值模型。由于难以测量翻滚磨机,这种模型的验证是稀缺的。实验室磨机的实验测量是为多样化的载荷盒进行的:不同的饲料材料,轧机,轧机速度和纸浆液体。该磨机设置为直接测量电荷感应扭矩。对于相关载荷盒的相对不确定性,精度良好,相对不确定度小于±2%。全磨机的全三维数值模型用于预测感应扭矩。在稳态的预测和测量扭矩之间的同意是好的。此外,该模型可以准确地预测扭矩和轧机功率的研磨机启动行为。这证明了该模型物理正确,可用于全尺寸磨坊。

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