...
首页> 外文期刊>Mathematics >Simulation of Natural Convection in a Concentric Hexagonal Annulus Using the Lattice Boltzmann Method Combined with the Smoothed Profile Method
【24h】

Simulation of Natural Convection in a Concentric Hexagonal Annulus Using the Lattice Boltzmann Method Combined with the Smoothed Profile Method

机译:用晶格Boltzmann方法与平滑轮廓法相结合的同心六边形环形自然对流的模拟

获取原文

摘要

This research work presents results obtained from the simulation of natural convection inside a concentric hexagonal annulus by using the lattice Boltzmann method (LBM). The fluid flow (pressure and velocity fields) inside the annulus is evaluated by LBM and a finite difference method (FDM) is used to get the temperature filed. The isothermal and no-slip boundary conditions (BC) on the hexagonal edges are treated with a smooth profile method (SPM). At first, for validating the present simulation technique, a standard benchmarking problem of natural convection inside a cold square cavity with a hot circular cylinder is simulated. Later, natural convection simulations inside the hexagonal annulus are carried out for different values of the aspect ratio, AR (ratio of the inner and outer hexagon sizes), and the Rayleigh number, Ra. The simulation results are presented in terms of isotherms (temperature contours), streamlines, temperature, and velocity distributions inside the annulus. The results show that the fluid flow intensity and the size and number of vortex pairs formed inside the annulus strongly depend on AR and Ra values. Based on the concentric isotherms and weak fluid flow intensity at the low Ra, it is observed that the heat transfer inside the annulus is dominated by the conduction mode. However, multiple circulation zones and distorted isotherms are observed at the high Ra due to the strong convective flow. To further access the accuracy and robustness of the present scheme, the present simulation results are compared with the results given by the commercial software, ANSYS-Fluent ? . For all combinations of AR and Ra values, the simulation results of streamlines and isotherms patterns, and temperature and velocity distributions inside the annulus are in very good agreement with those of the Fluent software.
机译:该研究工作通过使用Lattice Boltzmann方法(LBM)来提出从同心六边形环内的自然对流模拟获得的结果。环形内的流体流动(压力和速度场)通过LBM评估,并且使用有限差分法(FDM)来获得备案的温度。六边形边缘上的等温和无滑动边界条件(BC)用光滑的轮廓法(SPM)处理。首先,为了验证本发明的仿真技术,模拟了具有热圆筒的冷方腔内的自然对流的标准基准问题。后来,六边形环内的自然对流模拟是针对纵横比的不同值进行的,AR(内外六边形尺寸的比率)和瑞利数,RA的不同值进行。模拟结果以等温(温度轮廓),流线,温度和环形内的速度分布而呈现。结果表明,在环内形成的流体流强度和涡流对的尺寸和数量强烈取决于AR和RA值。基于低RA的同心等温线和弱流体流强度,观察到环形内的传热由导通模式支配。然而,由于强烈的对流流动,在高RA处观察到多个循环区和失真的等温。为了进一步访问本方案的准确性和鲁棒性,将本仿真结果与商业软件,ANSYS-FLUENT给出的结果进行比较? 。对于AR和RA值的所有组合,流线和等温图案的仿真结果和环形内的温度和速度分布与流畅的软件非常好。

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