首页> 外文会议>ASME/JSME/KSME Joint Fluids Engineering Conference;AJK2011 >NUMERICAL SIMULATIONS OF THERMAL-MIXING IN T-JUNCTION PIPING SYSTEM USING LARGE EDDY SIMULATION APPROACH
【24h】

NUMERICAL SIMULATIONS OF THERMAL-MIXING IN T-JUNCTION PIPING SYSTEM USING LARGE EDDY SIMULATION APPROACH

机译:基于大涡模拟方法的T型结管道系统热混合的数值模拟

获取原文

摘要

Thermal striping phenomenon caused by mixing of fluids at different temperatures is one of the most important issues in design of fast breeder reactors (FBRs), because it may cause high-cycle thermal fatigue in structure. Authors have been developed a numerical simulation code MUGTHES to investigate thermal striping phenomena in FBRs and to give transient data of temperature in the fluid and the structure for an evaluation method of the high-cycle thermal fatigue problem. MUGTHES employs the boundary fitted coordinate (BFC) system and deals with three-dimensional transient thermal-hydraulic problems by using the large eddy simulation (LES) approach and artificial wall conditions derived by a wall function law. In this paper, numerical simulations of MUGTHES in T-junction piping system appear. Boundary conditions for the simulations are chosen from an existing water experiment in JAEA, named as WATLON experiment. The wall jet condition in which the branch pipe jet flows away touching main pipe wall on the branch pipe side and the impinging jet condition in which the branch pipe jet impinges on the wall surface on the opposite side of the branch pipe are selected, because significant temperature fluctuation may be induced on the wall surfaces by the branch pipe jet behavior. Numerical results by MUGTHES are validated by comparisons with measured velocity and temperature profiles. Three dimensional large-scale eddies are identified behind of the branch pipe jet in the wall jet case and in front of the branch pipe jet in the impinging jet case, respectively. Through these numerical simulations in the T-pipe, generation mechanism of temperature fluctuation in thermal mixing process is revealed in the relation with the large-scale eddy motion.
机译:在不同温度下混合流体引起的热剥离现象是快速增殖反应堆(FBR)设计中最重要的问题之一,因为它可能会导致结构中出现高循环热疲劳。已经开发出了一个数值模拟代码MUGTHES,用于研究FBR中的热剥离现象,并提供流体和结构中温度的瞬态数据,以作为高循环热疲劳问题的评估方法。 MUGTHES采用边界拟合坐标(BFC)系统,并通过使用大涡模拟(LES)方法和由墙函数定律得出的人工墙条件来处理三维瞬态热工水力问题。在本文中,出现了在T型结管道系统中MUGTHES的数值模拟。模拟的边界条件是从JAEA现有的水实验(称为WATLON实验)中选择的。选择支管射流流走而与支管侧的主管壁相接触的壁射流条件和支管射流冲击在支管相对侧的壁表面上的冲击射流条件,因为这是重要的。支管射流行为可能会在壁面上引起温度波动。 MUGTHES的数值结果通过与测得的速度和温度曲线进行比较而得到验证。在壁式射流箱中的支管射流的后面和在撞击射流箱中的支管射流的前面,分别确定了三个三维的大型涡流。通过对T型管的数值模拟,揭示了热混合过程中温度波动与大涡运动的关系。

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