首页> 外文期刊>Cold regions science and technology >The application of Mixed Hybrid FEM in the frost heave prediction verified by FEM and indoor frost heave experiments
【24h】

The application of Mixed Hybrid FEM in the frost heave prediction verified by FEM and indoor frost heave experiments

机译:混合混合有限元在有限元验证的冻胀预测和室内冻胀实验中的应用。

获取原文
获取原文并翻译 | 示例
           

摘要

We apply a modified Finite Element Method which is called as Mixed Hybrid FEM (MHF) for the thermal analysis of frost heave amount estimation, since MHF allows simultaneous computation of objective variable and its derivative with the same accuracy. Freezing rate is one of the key factor which affects the accuracy of frost heave prediction, accurate thermal analysis is highly significant for the frost heave evaluation. Therefore, in this study, we apply MHF for the thermal analysis which considers the phase change and latent heat influence. In order to demonstrate the advantage and the applicability of MHF in the application of frost heave simulation, we conduct two indoor frost heave experiments to verify the numerical simulation results obtained by FEM and MHF respectively. Experiment results demonstrate that, under constant freezing rate condition, MHF and FEM have similar results for both thermal analysis and frost heave amount. However, for the fixed boundary temperature condition, MHF has a slower freezing rate and a much more continuous freezing period than FEM. MHF shows a better accuracy for the frost heave amount evaluation compared with FEM as well. And we believe that this difference results from the accurate thermal analysis by MHF, and we also conclude that the advantage of MHF in the thermal analysis would be much more obvious when it is applied to complicated field conditions. Consequently, we recommend adopting the MHF in the thermal analysis of frost heave evaluation due to its high precision and wide applicability.
机译:我们将一种改进的有限元方法(称为混合混合有限元方法(MHF))用于霜冻量估算的热分析,因为MHF可以以相同的精度同时计算目标变量及其导数。冷冻速度是影响霜冻预报精度的关键因素之一,准确的热分析对霜冻的评价具有重要意义。因此,在这项研究中,我们将MHF应用于考虑相变和潜热影响的热分析。为了证明MHF在冻胀模拟应用中的优势和适用性,我们进行了两次室内冻胀试验,以验证分别由FEM和MHF获得的数值模拟结果。实验结果表明,在恒定的冷冻速度条件下,MHF和FEM在热分析和冻胀量方面具有相似的结果。但是,对于固定的边界温度条件,与FEM相比,MHF的冷冻速度更慢,冷冻时间更长。与FEM相比,MHF的冻胀量评估精度更高。并且我们认为,这种差异是由MHF进行的精确热分析导致的,我们还得出结论,当将MHF用于复杂的现场条件时,其在热分析中的优势将更加明显。因此,由于其高精度和广泛适用性,我们建议在霜冻热评估的热分析中采用MHF。

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