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INCORPORATING RADIANT HEAT EXCHANGE INTO FINITE ELEMENT MODELS OF HYDROMETALLURGICAL PROCESS EQUIPMENT

机译:将辐射热交换纳入湿法冶金工艺设备的有限元模型

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Radiation plays a critical role in the thermal behaviour of hydrometallurgical process equipment. This effect is particularly important when designing refractory lined equipment used in pressure leach/oxidation processes. In order to simplify this non-linear mode of heat transfer, the effects of radiation had previously been incorporated in an equivalent convective film coefficient in finite element methods (FEM). This prior method omits the effects of radiosity, a critical aspect of radiation heat transfer, which affects the design of refractory lining systems in autoclave vessels. Given that 60% of the heat loss in actual plant practice of an autoclave is due to radiation, reliability in the FEM is therefore impacted. This study validates the use of radiosity in FEM through thermal loading using a combination of simple geometries to be applied to complex environments such as vessel nozzle clusters. The added benefits of using a radiosity load includes an increase in confidence in thermal distribution results, greater accuracy in determining appropriate refractory lining systems, weld overlay sizing, and increased accuracy in structural analysis.
机译:辐射在湿法冶金工艺设备的热行为中起着关键作用。当在压力浸出/氧化过程中设计耐火衬里设备时,这种效果特别重要。为了简化这种非线性传热模式,辐射的效果先前已掺入有限元方法(FEM)中的等效对流膜系数中。该先前的方法省略了放射性,辐射热传递的关键方面的效果,这影响了高压釜容器中的耐火衬里系统的设计。鉴于高压釜实际植物实践中的60%的热量损失是由于辐射,因此影响了有限元的可靠性。本研究通过使用简单的几何形状的组合验证通过热负荷在诸如血管喷嘴簇之类的复杂环境中的热负荷来验证通过热负荷的使用。使用光学性载荷的增加的益处包括对热分布结果的置信度的增加,在确定适当的耐火衬里系统,焊接覆盖层尺寸和结构分析中提高精度时,更高的精度。

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