演化自由表面射流下流动和传热分布的统一分析

IF 5.8 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Ron S. Harnik, Herman D. Haustein
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引用次数: 0

摘要

层流射流撞击是一种有效的传热方法,尽管其流体力学和由此产生的对流仍未完全理解,特别是在更复杂的自由表面射流结构下。本研究扩展了先前关于滞止区传热的工作,以涵盖整个壁面流动直至液压跃变,适用于各种各样的到达剖面,受液体性质、重力、表面张力、流速和几何形状的影响超过一个数量级。与先前的浸没射流解决方案类似,表明到达剖面的形状决定了滞止区壁面压力分布和径向加速度。对于自由表面射流来说,更宽的压力分布(与“更平坦”的轮廓相关)受到自由表面存在的影响,导致停滞区边缘径向加速度增加和速度超调——超过最大入射速度。这被认为是在停滞区边缘过渡到超临界流动的机制。该分析引入了两个新的物理参数,它们与径向速度超调的大小和到达剖面的非均匀性测量有关,从而使Watson的均匀壁面射流解决方案适用于所有其他进入剖面。在适应的停滞区解和沃森的适应解之间进行插值,可以捕捉到各种流动方面的演变:边界层生长(包括局部变薄)、自由流速度、壁面剪切等。采用雷诺类比,将修正后的流动解转化为换热分布。结果表明,它与现在和过去对水平和垂直射流的模拟非常吻合。此外,它可以捕捉到在停滞区边缘的换热偏离中心峰的出现,以及它随飞行距离和/或在重力影响增加的情况下的增长。本研究为更有效地设计和优化射流冷却应用提供了一个简单的工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unified analysis of flow and heat transfer distribution under evolved free-surface jets
Laminar jet impingement is an efficient method for heat transfer processes, though much of its hydrodynamics and the resulting convection are still not fully understood, especially under the more complex free-surface jet configuration. The present study expands a previous work on the stagnation zone heat transfer to cover the entire wall-flow up to the hydraulic jump, for a wide variety of arriving profiles, subject to the influences of liquid properties, gravity, surface tension, flow rate and geometry of over an order of magnitude. Similarly to a previous submerged jets solution, it is shown that the shape of the arriving profile dictates the stagnation zone wall pressure distribution and radial acceleration. Uniquely for free-surface jets, wider pressure distributions (associated with “flatter” profiles) become affected by the presence of the free surface, leading to increased radial acceleration at the edge of the stagnation zone and a velocity overshoot – beyond the maximal incoming velocity. This is proposed as the mechanism for transition to supercritical flow at the edge of the stagnation zone. The analysis introduces two novel physical parameters, associated with the magnitude of the radial velocity overshoot and measure of arriving profile non-uniformity, to adapt Watson’s uniform wall-jet solution to all other incoming profiles. An interpolation between the adapted stagnation zone solution and Watson’s adapted solution is shown to capture the evolution of various flow aspects: boundary layer growth (including local thinning), free-stream velocity, wall shear, etc. Employing Reynolds analogy, the modified flow solution can be converted to the heat transfer distribution. It is shown to agree well with present and past simulations for horizontal and vertical jets. Moreover, it is seen to capture the emergence of the heat transfer off-center peak, at the edge of the stagnation zone, as well as its growth with flight distance and/or under increasing gravitational influence. The present study provides a simple tool for more efficient design and optimization of jet cooling applications.
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来源期刊
CiteScore
10.30
自引率
13.50%
发文量
1319
审稿时长
41 days
期刊介绍: International Journal of Heat and Mass Transfer is the vehicle for the exchange of basic ideas in heat and mass transfer between research workers and engineers throughout the world. It focuses on both analytical and experimental research, with an emphasis on contributions which increase the basic understanding of transfer processes and their application to engineering problems. Topics include: -New methods of measuring and/or correlating transport-property data -Energy engineering -Environmental applications of heat and/or mass transfer
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