首页> 外文会议>ASME international mechanical engineering congress and exposition;IMECE >Numerical modeling of conjugate heat transfer during free liquid jet impingement
【24h】

Numerical modeling of conjugate heat transfer during free liquid jet impingement

机译:自由液体射流撞击过程中共轭传热的数值模拟

获取原文

摘要

The paper presents the results of numerical simulation of a free jet of high Prandtl number fluid impinging perpendicularly on a solid substrate of finite thickness containing electroncis on the opposite surface. The numerical model was developed considering both solid and fluid regions and solved as a conjugate problem. Equations for the conservation of mass momentum, and energy were solved in the liquid region taking into account the transport processes at the inlet and exit boundaries as well as at the solid-liquid and liquid-gas interfaces. In the solid region, only heat conduction equation was solved. The shape and location of the free surface (liquid-gas interface) was determined iteratively as a part of the solution process by satisfying the kinematic condition as well as the balance of normal and shear forces at this interface. The number of elements in the fluid and solid regions were determined from a systematic grid-independence study. A non-uniform grid dsistribution was used to adequately capture large variations near the solid-fluid interface. Comuted results included the velocity, temperature, and pressure distributions in the fluid, and the ocal and average heat transfer coefficients at the solid-fluid interface Computations were carried out to investigate the influence of different operating parameters such as jet velocity, heat flux, plate thickness, and lante materia. Numerical results were validated with available experimental data. It was found that the local heat transfer coefficient is maximum at the coenter of the disk and decreases gradually with radius as tje flow moves downstream. The average heat transfer coefficient and the maximum temperature occurring in the solid decreased with increase of disk thickness and increase of thermal conductivity of the disk material.
机译:本文介绍了高普朗特数流体的自由射流的数值模拟结果,该自由射流垂直撞击到有限厚度的固体基底上,该基底在相反的表面上带有电子顺式。建立了同时考虑固体和流体区域的数值模型,并将其作为共轭问题进行了求解。考虑到入口和出口边界以及固-液和液-气界面的传输过程,在液体区域求解了质量动量和能量守恒方程。在固体区域,仅求解热传导方程。通过满足运动条件以及在该界面处的法向力和剪切力的平衡,作为固溶过程的一部分,反复确定自由表面的形状和位置(液-气界面)。流体和固体区域中的元素数量是通过系统的网格独立性研究确定的。非均匀网格分布用于充分捕获固体-流体界面附近的大变化。计算结果包括流体中的速度,温度和压力分布,以及固-液界面处的ocal和平均传热系数。进行了计算以研究不同操作参数(如射流速度,热通量,塔板)的影响。厚度和兰特材料。数值结果已通过可用的实验数据验证。已经发现,局部传热系数在盘的中心处最大,并且随着流向下游移动而随着半径逐渐减小。固体中的平均传热系数和最高温度随着盘片厚度的增加和盘片材料的热导率的增加而降低。

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