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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Optimization of furnace residence time and loading pattern during heat treatment of large size forgings
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Optimization of furnace residence time and loading pattern during heat treatment of large size forgings

机译:大尺寸锻件热处理炉停留时间和装载模式的优化

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摘要

A combination of unsteady 3D CFD simulations and experimental temperature measurements was employed to determine the effect of loading patterns on the temperature distribution within steel forgings inside a gas-fired heat treatment furnace. This was aimed to obtain a more homogenous temperature distribution. Besides, a hybrid methodology using 3D numerical simulations and a high-resolution dilatometer allowed improving residence time of forgings inside the heat treatment furnace. The influence of the loading patterns and skids on temperature distribution and residence time of forgings was examined using thermal analysis four different loading patterns. Comprehensive unsteady thermal analysis of the products heating allowed quantifying the impact of skids usage and their dimensions on the extent of the uniformity of temperature distribution. The results were interpreted in terms of the inter-relationship between the skids usage, their geometry, absorbed radiation, and convective heat fluxes. The analysis showed that temperature non-uniformities of up to 331 K could be produced for non-optimum loading patterns. Using the developed CFD approach, it was possible to reduce the temperature non-uniformity of different sizes of blocks up to 32% via changing the loading pattern inside the furnace. Further, the slab's residence time was improved by almost 15.5% when employing the proposed hybrid approach. This approach could directly be applied to the optimization of different heat treatment cycles of forged blocks in different grades of steels.
机译:采用非稳态三维CFD模拟和实验温度测量相结合的方法,确定了加载方式对燃气热处理炉内钢锻件温度分布的影响。这是为了获得更均匀的温度分布。此外,采用三维数值模拟和高分辨率膨胀计的混合方法可以改善锻件在热处理炉内的停留时间。通过四种不同加载方式的热分析,研究了加载方式和滑移对锻件温度分布和停留时间的影响。通过对产品加热进行全面的非稳态热分析,可以量化垫木的使用及其尺寸对温度分布均匀程度的影响。这些结果是根据撬块使用、几何结构、吸收辐射和对流热通量之间的相互关系来解释的。分析表明,对于非最佳加载模式,可产生高达331K的温度不均匀性。使用开发的CFD方法,通过改变炉内的装料方式,可以将不同尺寸砌块的温度不均匀性降低32%。此外,采用所提出的混合方法时,平板的停留时间提高了近15.5%。该方法可直接应用于不同牌号钢锻件不同热处理周期的优化。

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