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首页> 外文期刊>International Journal of Heat and Mass Transfer >Methodology for predicting spray quenching of thick-walled metal alloy tubes
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Methodology for predicting spray quenching of thick-walled metal alloy tubes

机译:预测厚壁金属合金管喷射淬火的方法

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摘要

This paper explores the parametric influences of spray quenching for thick-walled metal alloy tubes. Using the point-source depiction of a spray, an analytical model is derived to determine the shape and size of the spray impact zone, as well as the distribution of volumetric flux across the same zone. This distribution is incorporated into heat transfer correlations for all spray boiling regimes to generate a complete boiling curve for every location across the impact zone. By setting boundary conditions for both the sprayed and unsprayed portions of the tube surface, a heat diffusion model is constructed for a unit cell of the tube for both aluminum alloy and steel. This model is used to construct spray quench curves for every point along the sprayed surface and within the wall. Increasing nozzle pressure drop or decreasing orifice-to-surface distance are shown to increase the magnitude of volumetric flux, which hastens the onset of the rapid cooling stages of the quench as well as improves overall cooling effectiveness. The sprayed surface is characterized by fast thermal response to the spray, while regions within the wall display more gradual response due to heat diffusion delays. With their superior thermal diffusivity, aluminum alloy tubes transmit the cooling effect through the wall faster than steel tubes. For steel, the cooling effect is more concentrated near the sprayed surface, causing the sprayed surface to cool much faster and locations within the wall much slower than for aluminum alloy. The predictive approach presented in this paper facilitates the determination of surface temperature gradients in the quenched part to guard against stress concentration. Also, when combined with metallurgical transformation models for the alloy, it may be possible to predict material properties such as hardness and strength.
机译:本文探讨了喷射淬火对厚壁金属合金管的参数影响。使用喷雾的点源描述,得出分析模型,以确定喷雾冲击区的形状和大小,以及同一区域的体积通量分布。对于所有喷雾沸腾方案,均会将这种分布合并到传热相关性中,以生成影响区域内每个位置的完整沸腾曲线。通过设置管表面喷涂和未喷涂部分的边界条件,可以为铝合金和钢制的管的晶胞构建热扩散模型。该模型用于构造沿喷涂表面和壁内每个点的喷涂淬火曲线。增大喷嘴压降或减小孔与表面的距离,可以增加体积通量的大小,从而加快淬火快速冷却阶段的开始,并提高总体冷却效率。喷涂表面的特征在于对喷涂的快速热响应,而壁内的区域由于热扩散延迟而显示出更多的渐进响应。凭借其出色的热扩散率,铝合金管比钢管更快地将冷却效果通过壁传递。对于钢,冷却效果更集中在喷涂表面附近,这导致喷涂表面的冷却速度比铝合金快得多,而壁内的位置则慢得多。本文提出的预测方法有助于确定淬火零件中的表面温度梯度,以防止应力集中。同样,当与合金的冶金转变模型结合使用时,可能可以预测材料性能,例如硬度和强度。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2012年第12期|p.2953-2964|共12页
  • 作者单位

    Boiling and Two-Phase Flow Laboratory, School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907, USA;

    Boiling and Two-Phase Flow Laboratory, School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    spray cooling; quenching; boiling curve;

    机译:喷雾冷却;淬火;沸腾曲线;

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