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用于预测最佳力学性能的纤维增强混凝土建模

Modelling Fibre-Reinforced Concrete for Predicting Optimal Mechanical Properties.

作者信息

Khalel Hamad Hasan Zedan, Khan Muhammad

机构信息

School of Aerospace, Transport and Manufacturing, Cranfield University, Building 50, College Road, Cranfield MK43 0AL, UK.

出版信息

Materials (Basel). 2023 May 12;16(10):3700. doi: 10.3390/ma16103700.

Abstract

Fibre-reinforced cementitious composites are highly effective for construction due to their enhanced mechanical properties. The selection of fibre material for this reinforcement is always challenging as it is mainly dominated by the properties required at the construction site. Materials like steel and plastic fibres have been rigorously used for their good mechanical properties. Academic researchers have comprehensively discussed the impact and challenges of fibre reinforcement to obtain optimal properties of resultant concrete. However, most of this research concludes its analysis without considering the collective influence of key fibre parameters such as its shape, type, length, and percentage. There is still a need for a model that can consider these key parameters as input, provide the properties of reinforced concrete as output, and facilitate the user to analyse the optimal fibre addition per the construction requirement. Thus, the current work proposes a Khan Khalel model that can predict the desirable compressive and flexural strengths for any given values of key fibre parameters. The accuracy of the numerical model in this study, the flexural strength of SFRC, had the lowest and most significant errors, and the MSE was between 0.121% and 0.926%. Statistical tools are used to develop and validate the model with numerical results. The proposed model is easy to use but predicts compressive and flexural strengths with errors under 6% and 15%, respectively. This error primarily represents the assumption made for the input of fibre material during model development. It is based on the material's elastic modulus and hence neglects the plastic behaviour of the fibre. A possible modification in the model for considering the plastic behaviour of the fibre will be considered as future work.

摘要

纤维增强水泥基复合材料因其增强的力学性能而在建筑中非常有效。由于主要受施工现场所需性能的主导,为这种增强选择纤维材料一直具有挑战性。钢纤维和塑料纤维等材料因其良好的力学性能而被广泛使用。学术研究人员全面讨论了纤维增强对获得所得混凝土最佳性能的影响和挑战。然而,大多数此类研究在分析时没有考虑关键纤维参数(如形状、类型、长度和百分比)的综合影响。仍然需要一个模型,该模型可以将这些关键参数作为输入,提供钢筋混凝土的性能作为输出,并便于用户根据施工要求分析最佳纤维添加量。因此,当前的工作提出了一种汗·哈利勒模型,该模型可以预测关键纤维参数的任何给定值所需的抗压强度和抗弯强度。本研究中数值模型的准确性,即钢纤维混凝土的抗弯强度,具有最低且最显著的误差,均方误差在0.121%至0.926%之间。使用统计工具根据数值结果开发和验证该模型。所提出的模型易于使用,但预测的抗压强度和抗弯强度误差分别在6%和15%以下。这种误差主要代表了模型开发过程中对纤维材料输入所做的假设。它基于材料的弹性模量,因此忽略了纤维的塑性行为。考虑纤维塑性行为的模型的可能修改将作为未来的工作。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/38a1/10223664/9152c914bc17/materials-16-03700-g008.jpg

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