首页> 外文期刊>Journal of Materials Processing Technology >Numerical simulation of a secondary aluminum melting furnace heated by a plasma torch
【24h】

Numerical simulation of a secondary aluminum melting furnace heated by a plasma torch

机译:等离子炬加热的二次铝熔炉的数值模拟

获取原文
获取原文并翻译 | 示例
       

摘要

Tests carried out in an experimental prototype of crucible melting furnace heated by a plasma torch are numerically simulated with a commercial CFD code, in order to calculate melting time, heat losses and temperature distributions in the aluminum load and refractory parts. The objective is to develop a calculating tool to assist in the design and scaling-up of industrial furnaces. Models used are 2D axisymmetric and take into account heat conduction in solid parts, convection in air and molten aluminum, interactions between gas-liquid-solid zones and radiation heat transfer. Fusion of solid aluminum is modeled with the enthalpy method. The simulation is able to predict temperatures and melting times at a reasonable computational expense. Several calculation strategies are tested concerning their computational economy and their accuracy in computing different key parameters. Results show that interactions gas-liquid-solid have an important effect. Firstly, a proper account of heat transfer and losses requires solving the conjugated problem comprising refractory walls and heated load. Secondly, thermal interaction with air cavities seems to determine the convective movement of the molten load and therefore inner-load temperature patterns and their time evolution. Nevertheless, this comprehensive simulation consumes 3.6 times the computational resources of a simplified model, where the momentum equations are not solved for the air cavity and overall furnace parameters are still reasonably predicted (e.g., with an error in fusion time less than 7.3%).
机译:为了模拟铝负载和耐火零件中的熔化时间,热量损失和温度分布,使用商用CFD代码对在用等离子炬加热的坩埚熔化炉的实验原型中进行的试验进行了数值模拟。目的是开发一种计算工具,以协助设计和按比例放大工业炉。所使用的模型是2D轴对称的,并考虑了固体零件中的热传导,空气和熔融铝中的对流,气-液-固区域之间的相互作用以及辐射传热。固态铝的熔合是用焓法建模的。该仿真能够以合理的计算费用预测温度和熔化时间。测试了几种计算策略,涉及它们的计算经济性以及在计算不同关键参数时的准确性。结果表明,气-液-固相互作用具有重要作用。首先,对传热和损失的适当考虑需要解决包括耐火墙和热负荷的共轭问题。其次,与气腔的热相互作用似乎决定了熔融载荷的对流运动,从而决定了内部载荷的温度模式及其时间演变。尽管如此,这种全面的模拟所消耗的计算资源是简化模型的3.6倍,在简化模型中,气腔的动量方程没有得到解决,炉子的总体参数仍然得到了合理的预测(例如,熔化时间误差小于7.3%)。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号