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成型过程中的加热条件对复合板残余应力-应变行为的影响

Effect of Heating Conditions during Moulding on Residual Stress-Strain Behaviour of a Composite Panel.

作者信息

Kondratiev Andrii, Píštěk Václav, Vambol Oleksii, Kučera Pavel

机构信息

Department of Building Technology and Construction Materials, O.M. Beketov National University of Urban Economy in Kharkiv, Marshal Bazhanov Str. 17, 61002 Kharkiv, Ukraine.

Institute of Automotive Engineering, Brno University of Technology, Technická 2896/2, 616 69 Brno, Czech Republic.

出版信息

Polymers (Basel). 2022 Apr 20;14(9):1660. doi: 10.3390/polym14091660.

Abstract

Currently, we observe extensive use of products made of polymeric composite materials in various industries. These materials are being increasingly used to manufacture large-sized structural parts that bear significant loads. However, increase in the volume of composites used in critical structures is impeded by the instability of properties of the resulting products. In most cases, the reason for this is the residual thermal stress-strain behaviour of the composite structure. This paper deals with the development of a method to predict the residual stress-strain behaviour depending on the heating conditions and distribution of the temperature field over the thickness of the moulded composite package. The method establishes the relationship between moulding process parameters and the effect of the auxiliary and basic equipment on the distribution of the temperature field, stresses, and strains in the moulded product. It is shown that the rate of temperature change at the stage of heating has its effect on the amount of residual deformation of the structure. Experimental studies have been carried out to determine the influence of several factors (rates of heating and cooling) on the residual deflection of the composite panel. Experimental data proves that specimens moulded under conditions of an increased heating rate get a greater deflection than those moulded at a lower heating rate. The error of results during the full-scale experiment did not exceed 6.8%. Our results provide an opportunity to determine the residual thermal stress-strain behaviour of the moulded structure with the required degree of accuracy without a series of experiments. It allows us to significantly simplify the practical implementation of the developed method and avoid any additional production costs.

摘要

目前,我们观察到聚合物复合材料制成的产品在各个行业中得到广泛应用。这些材料越来越多地用于制造承受重大载荷的大型结构部件。然而,关键结构中使用的复合材料体积的增加受到所得产品性能不稳定的阻碍。在大多数情况下,原因是复合结构的残余热应力-应变行为。本文探讨了一种根据加热条件和模制复合包装厚度上的温度场分布来预测残余应力-应变行为的方法的开发。该方法建立了成型工艺参数与辅助设备和基本设备对成型产品中温度场、应力和应变分布的影响之间的关系。结果表明,加热阶段的温度变化速率对结构的残余变形量有影响。已经进行了实验研究,以确定几个因素(加热和冷却速率)对复合板残余挠度的影响。实验数据证明,在加热速率增加的条件下模制的试样比在较低加热速率下模制的试样具有更大的挠度。全尺寸实验期间结果的误差不超过6.8%。我们的结果提供了一个机会,无需进行一系列实验就能以所需的精度确定模制结构的残余热应力-应变行为。这使我们能够显著简化所开发方法的实际应用,并避免任何额外的生产成本。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e606/9105912/64721f9f86e3/polymers-14-01660-g001.jpg

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