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Numerical and experimental investigation of laminar free convection around a thin wire: Long time scalings and assessment of numerical approach

机译:细线周围层流自由对流的数值和实验研究:长时间定标和数值方法评估

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Transient and steady free convection around a line heat source is studied experimentally and numerically. Experiments are performed with a thin platinum wire of 50 μm in radius immersed in water and heated by Joule effect. Time evolution of velocity and temperature fields are measured by PIV (Particle Image Velocimetry) and micro-thermocouple for three different heating rates. Numerical simulations are done using a time-stepping algorithm based on a velocity-pressure formulation. The equations are discretized on a domain of limited extension, using spectral type approximations and a domain decomposition technique, and a pressure condition is imposed at the outer boundary. A three-stage scenario is proposed for the development of transient free convection around a thin wire, and, at each stage, the numerical approach is assessed through detailed comparison between numerical and experimental results. Previously established scaling laws for the onset of convective motion are checked for long time behavior. Numerical and experimental results confirm that these laws remain meaningful at long time and a qualitative similarity is observed for the transients. In addition, a steady case of a heated wire in air is studied and compared with the experimental study of Brodowicz and Kierkus [Brodowicz, K., Kier-kus, W., 1966. Experimental investigation of free-convection in air above horizontal wire with constant flux. Int. J. Heat Mass Trans. 9, 81-94]. Despite a wire superheat of 210 K, good agreement is observed between the experiment and numerical simulations performed under the Boussinesq assumption. In particular, numerical simulations match with the scaling laws of the far-field above the wire.
机译:对管道热源周围的瞬态和稳态自由对流进行了实验和数值研究。实验是将半径为50μm的细铂金线浸入水中并通过焦耳效应进行加热。速度和温度场的时间演化是通过PIV(颗粒图像测速)和微热电偶测量三种不同加热速率的。使用基于速度-压力公式的时间步长算法进行数值模拟。使用频谱类型近似和域分解技术,将方程在有限扩展域上离散化,并在外边界施加压力条件。提出了一个三阶段的方案来发展细金属丝周围的瞬态自由对流,并且在每个阶段,通过对数值结果和实验结果进行详细比较来评估数值方法。检查先前建立的对流运动发生的缩放定律,以了解长时间的行为。数值和实验结果证实,这些定律在很长一段时间内仍然有意义,并且观察到瞬态的定性相似性。此外,还研究了空气中加热丝的稳定情况,并将其与Brodowicz和Kierkus的实验研究进行了比较[Brodowicz,K.,Kier-kus,W.,1966。水平对流的空气中自由对流的实验研究具有恒定的通量。诠释J.传热质量。 9,81-94]。尽管线过热为210 K,但在Boussinesq假设下进行的实验与数值模拟之间观察到良好的一致性。特别是,数值模拟与导线上方远场的缩放定律匹配。

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