首页> 外文会议>5th Joint ASME(American Society of Mechanical Engineers)/JSME(Japanese Society of Mechanical Engineers) Fluids Engineering Division Summer Conference 2007(FEDSM2007) >HEAT TRANSFER AND AIR DIFFUSION PHENOMENA IN A BED OF POLYMER POWDER USING APPARENT HEAT CAPACITY METHOD: APPLICATION TO THE ROTATIONAL MOLDING PROCESS
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HEAT TRANSFER AND AIR DIFFUSION PHENOMENA IN A BED OF POLYMER POWDER USING APPARENT HEAT CAPACITY METHOD: APPLICATION TO THE ROTATIONAL MOLDING PROCESS

机译:表观热容法在聚合物粉床中的传热与空气扩散现象:在旋转成型工艺中的应用

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The process of rotational moulding consists in manufacturing plastic parts by heating a polymer powder in a biaxial rotating mould. In order to optimise the production cycle of this process, a complete simulation model has to be used. This model should describe the phenomena of heat and mass transfer in a moving granular media with phase change, coalescence, sintering, air evacuation and crystallization during the cooling stage. This paper focus on the study of heat and mass transfer in a quiescent polymer powder during the heating stage. An experimental device has been built. It consists in an open plane static mold on which an initial thickness, e, of a polymer powder is deposited. This powder is then heated until it melts. An inverse heat conduction method is used to determine the heat flux and temperature at the interface between the mold and the powder. This interfacial heat flux is taken as a boundary condition in a numerical heat transfer model witch takes into account the heat transfer in granular media with phase change, coalescence, sintering, air bubbles evacuation and rheological behaviour of the polymer. For the numerical simulation of the heat transfer, the apparent specific heat method is used. This approach allows to solve the same energy equation for all the material phases, so one do not have to calculate the melting front evolution. This fine modelling, close to the real physical phenomena makes it possible to estimate the temperature profile and the evolution of the polymer powder characteristics (phase change, air diffusion, viscosity, evolution of the thermophysical properties of the equivalent homogeneous medium, thickness reduction, air volume fraction...). Several results are then presented, and the influence of different parameters, like the thermal contact resistance, the process initial conditions and the polymer's rheological characteristics are studied and commented. Indeed the predictions of the temperature rises in the polymer bed, agree well with the experimental measurements.
机译:旋转模塑的过程包括通过在双轴旋转模具中加热聚合物粉末来制造塑料零件。为了优化此过程的生产周期,必须使用完整的仿真模型。该模型应描述在冷却过程中运动的颗粒介质中的热和质量传递现象,包括相变,聚结,烧结,空气抽空和结晶。本文着重研究静态聚合物粉末在加热阶段的传热和传质。已经建立了实验装置。它包括一个开放平面的静态模具,在该模具上沉积了初始厚度e的聚合物粉末。然后将该粉末加热直至熔化。逆导热方法用于确定模具和粉末之间的界面处的热通量和温度。在数值传热模型中将此界面热通量作为边界条件,考虑了相变,聚结,烧结,气泡排空和聚合物的流变行为在粒状介质中的传热。对于传热的数值模拟,使用了表观比热法。这种方法可以为所有材料相求解相同的能量方程,因此不必计算熔化前沿的演变。这种接近真实物理现象的精细建模可以估算温度曲线和聚合物粉末特性的演变(相变,空气扩散,粘度,等效均质介质的热物理性质的演变,厚度减小,空气体积分数...)。然后给出了一些结果,并研究和评论了不同参数的影响,如热接触电阻,工艺初始条件和聚合物的流变特性。实际上,对聚合物床中温度升高的预测与实验测量结果非常吻合。

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