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Effects of pipe angular velocity and oven configuration on tube temperature distribution in the radiative heating of PVC pipes

机译:管道角速度和烘箱结构对PVC管道辐射加热中管道温度分布的影响

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摘要

Several manufacturing processes in polymer industry aim at obtaining products by deforming preforms or sheets after a heating process. A thorough knowledge of the operating parameters of such heating processes is fundamental to fulfill the often high production requirements with the least energy consumption and to avoid unacceptable defects in the final product. A common example of such an application is the end-forming process of polyvinyl chloride (PVC) tubes, which are enlarged at one end in order to allow pipes connections. The heating phase which comes before the deformation process is usually carried out in ovens equipped with short wave infrared lamps; to ensure uniform heating, pipes rotate with a given angular velocity, which represents a fundamental parameter for the success of the whole manufacturing process. In this work, a transient analysis of the radiative heat exchange between rotating PVC pipes and infrared lamps in an oven for end-forming process has been conducted by means of a finite element model, in order to investigate the influence of cylinder angular velocity on the temperature distribution in the tube. Local view factors have been calculated for different oven configurations and have been expressed as a function of angular velocity, allowing pipe rotation to be simulated as a time-dependent boundary condition, instead of using a moving mesh. Simulations were carried out for different tubes geometries and angular velocities and results were compared with the case of a uniformly irradiated tube in terms of temperature displacement. For a given oven configuration, the results obtained by the numerical model can be used to find a critical angular velocity over which further increase does not lead to appreciable improvements in temperature evenness. The effect of the lamps’ relative position was also investigated, showing a significant influence on critical angular velocities obtained. The model realized represents a potential tool to characterize the end-forming process in terms of critical angular velocity, leading to reductions in machine set-up time and product waste due to thermal failure.
机译:聚合物工业中的几种制造过程旨在通过在加热过程之后使预成型坯或片材变形来获得产品。充分了解此类加热过程的操作参数,对于以最少的能耗满足通常较高的生产要求以及避免最终产品出现不可接受的缺陷至关重要。这种应用的一个常见示例是聚氯乙烯(PVC)管的端部成形工艺,该管的一端扩大以允许连接管道。变形过程之前的加热阶段通常在配备短波红外灯的烤箱中进行;为了确保均匀加热,管道以给定的角速度旋转,这代表了整个制造过程成功的基本参数。在这项工作中,已经通过有限元模型对烤箱中旋转的PVC管和红外线灯之间的辐射热交换进行了瞬态分析,以进行端部成形过程,以研究圆柱角速度对圆柱角速度的影响。管中的温度分布。已经针对不同的烤箱配置计算了局部视场因子,并已将其表示为角速度的函数,从而可以将管道旋转模拟为与时间相关的边界条件,而不是使用移动网格。对不同的管几何形状和角速度进行了仿真,并将结果与​​均匀辐照管的温度位移进行了比较。对于给定的烤箱配置,通过数值模型获得的结果可用于找到临界角速度,在该临界角速度上的进一步增加不会导致温度均匀性的明显改善。还研究了灯的相对位置的影响,显示了对获得的临界角速度的重大影响。所实现的模型代表了一种潜在工具,可根据临界角速度来表征最终成形过程,从而减少了因热故障而导致的机器设置时间和产品浪费。

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