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Effect of specimen thicknesses on water absorption and flexural strength of CFRP laminates subjected to water or alkaline solution immersion

机译:试件厚度对浸入水或碱溶液的CFRP层压板的吸水率和弯曲强度的影响

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In this paper, an experimental research was undertaken to investigate the effect of specimen thicknesses on water absorptions and flexural strengths of wet lay-up CFRP laminates subjected to distilled water or alkaline solution immersion up to 180 days. Test results showed that the water uptake and flexural strength retention of CFRP laminates were significantly affected by the adopted specimen thickness. For the same aging time, the water uptake of CFRP laminates decreased in the early stage of immersion and increased in the later stage of immersion with the increase of specimen thickness. Meanwhile, the flexural strength retention generally increased as specimen thickness increased. In addition, a new thickness-based accelerated method for hygrothermal aging test of CFRP laminates was proposed. The accelerated factors of the water uptake and flexural strength retention of CFRP laminates were theoretically deduced. The proposed analytical model of accelerated factors was verified with current test data, and then applied to predict long-term properties of CFRP laminates. Compared with the traditional temperature-based accelerated method, the new thickness-based accelerated method is much easier to apply to predict long-term properties of CFRP laminates with good accuracy. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在本文中,进行了一项实验研究,以研究试样厚度对经受蒸馏水或碱性溶液浸泡长达180天的湿式CFRP层压板的吸水率和弯曲强度的影响。测试结果表明,CFRP层压板的吸水率和弯曲强度保持率显着受采用的试样厚度影响。在相同的老化时间下,随着样品厚度的增加,CFRP层压板的吸水率在浸入初期降低,在浸入后期增加。同时,弯曲强度保持率通常随着样品厚度的增加而增加。此外,提出了一种新的基于厚度的CFRP层压板湿热老化加速试验方法。从理论上推导了CFRP层压板吸水率和弯曲强度保持率的加速因子。提出的加速因素分析模型已通过当前测试数据验证,然后用于预测CFRP层压板的长期性能。与传统的基于温度的加速方法相比,新的基于厚度的加速方法更容易应用于以良好的精度预测CFRP层压板的长期性能。 (C)2019 Elsevier Ltd.保留所有权利。

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