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Performance of thermal insulation fabricated by rapid prototyping technology

机译:快速成型技术制造的隔热材料的性能

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Nowadays, 3-D printing technology is very often applied in industry due to design cycles shortening and surface quality improvement when comparing to conventional manufacturing technologies. In order to adapt 3-D printed materials as thermal barriers, it is necessary to determine its thermophysical properties. As far as thermal insulation is concerned, the lowest thermal conductivity is required and therefore the crucial parameter of the material is the porosity. This paper presents the results of experimental investigation of effective thermal conductivity of thermal barriers with variable porosity fabricated by the fused filament fabrication technology. Also the numerical study was presented. The commercial code - COMSOL multiphysics was used to model the coupled heat transfer. The model was than validated by comparing the numerical and experimental results. For each sample the density and thermal conductivity were determined experimentally. The influence of the size and shape of the cell on the formation of free convection was investigated in particular. The effect of the conduction and radiation on temperature and velocity profiles within the enclosure has been analyzed. In addition, the dominant heat transfer mechanisms as a function of density have been identified.
机译:如今,与传统制造技术相比,由于缩短了设计周期并改善了表面质量,3-D打印技术已广泛应用于工业中。为了使3-D打印的材料适合作为热障,必须确定其热物理性质。就绝热而言,要求最低的导热率,因此材料的关键参数是孔隙率。本文介绍了通过熔丝制造技术制造的可变孔隙度热障有效导热系数的实验研究结果。还提出了数值研究。商业代码COMSOL multiphysics用于模拟耦合传热。然后通过比较数值和实验结果验证了该模型。对于每个样品,通过实验确定密度和热导率。特别研究了孔的大小和形状对自由对流形成的影响。已经分析了传导和辐射对外壳内温度和速度分布的影响。另外,已经确定了作为密度函数的主要传热机理。

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