基于耦合仿真技术的摆式磨机进气风道优化设计
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桂林电子科技大学 机电工程学院

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广西重点研发计划项目(项目号:桂科AB23075080);广西制造系统与先进制造技术重点实验室(主任基金)项目(项目号:22-35-4-S007);2021年广西研究生联合培养基地项目(桂学位(2021)6号)。


Optimal Design of Pendulum Mill Inlet Air Duct Based on Coupled Simulation Technology
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Guilin University of Electronic Technology

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    摘要:

    为了解决摆式磨机存在高能耗、风道积料和局部磨损等问题,对现有进气风道(蜗壳和风道叶片)结构设计方案进行研究。基于流体动力学与多相流及离散元耦合仿真技术,进行摆式磨机的内部风场与颗粒场的数值模拟。进行蜗壳线型、风道叶片角度和叶片数量的响应面仿真试验,结果表明优化蜗壳线型有利于降低压损和设备能耗,合理选择叶片角度和叶片数量有利于降低风道的不均匀系数进而调控流场。基于压损和不均匀系数的多目标优化,确定风道结构的最优方案:蜗壳2,叶片数量18片、叶片角度55°。优化方案的成品收集效率高达95.3%,比企业原方案提高13.4%。仿真结果与现场实验数据的一致性较好,可以为摆式磨机的优化与节能设计提供指导。

    Abstract:

    In order to solve the problems of high energy consumption, air duct accumulation and local wear of pendulum mill, the structural design scheme of air inlet duct (including volute and air duct blade) was studied. Based on coupling simulation techniques of fluid dynamics, multiphase flow and discrete element, Numerical simulation of the internal wind field and particle field of the pendulum mill were carried out. The response surface simulation tests of volute profile, blade Angle and blade number were also performed. The results show that optimizing volute profile is beneficial to reducing pressure loss and equipment energy consumption, and reasonable selection of blade angle and blade number is beneficial to reducing the non-uniform coefficient of air duct and regulating flow field. Based on the multi-objective optimization of pressure loss and non-uniformity coefficient, the optimal scheme of air duct structure is determined as: volute 2, blade number 18, blade angle 55°. The finished product collection efficiency of the optimized scheme is 95.3%, which is 13.4% higher than that of the original scheme. The simulation results are in good agreement with the field experimental data, which can provide guidance for the optimization and energy-saving design of pendulum mill.

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  • 收稿日期:2024-05-11
  • 最后修改日期:2024-06-27
  • 录用日期:2024-07-01
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