Mathematical Analysis on the Durability of Basalt Rebars in Acidic Environment

Lean Yen Han, Rokiah Binti Othman, Chong Beng Wei, R. Jaya, M. Sulaiman, Y. Duraisamy
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Abstract

Fiber reinforced polymer materials have been used as the alternative to conventional steel reinforcement within the construction industry. While Basalt fiber reinforced polymers (BFRP) have shown improved mechanical properties and durability performance compared to conventional steel, it is not immune to degradation and corrosion when subjected to harsh environments. As such, significant studies have been conducted to simulate the mechanical properties of BFRP bars under degradation when subject to different hostile substances. However, there is no standardized conclusion for the performance of BFRP under an acidic environment and in-depth microstructure evaluation as the degradation of BFRP is influenced by myriad factors. This study aimed to produce a Response Surface Methodology (RSM) model to study the effect of pH, temperature, and immersion time on the tensile strength and elastic modulus. Data from existing literature involving acid emersion of BFRP were collected and modelled using RSM to present an overview of the degradation behavior of BFRP. In addition, a synthesis of the microstructure of BFRP reinforcing bars exposed to the acidic environment was evaluated by referring to SEM and EDX. It was concluded that the tensile strength loss due to corrosion was affected by temperature and immersion time in a linear function. On the other hand, tensile strength drop occurred exponentially as an acid with higher pH was used. Hence, the paper revealed the influence of various factors on the corrosion rate of the BFRP rebar.
酸性环境下玄武岩钢筋耐久性的数学分析
纤维增强聚合物材料已被用作建筑行业中传统钢筋的替代品。虽然与传统钢材相比,玄武岩纤维增强聚合物(BFRP)具有更好的机械性能和耐用性,但在恶劣环境下,它也不能幸免于降解和腐蚀。因此,已经进行了大量的研究来模拟BFRP筋在不同有害物质作用下退化的力学性能。然而,由于BFRP的降解受多种因素的影响,对BFRP在酸性环境下的性能和深入的微观结构评价尚无标准化的结论。本研究旨在建立响应面法(RSM)模型,研究pH、温度和浸泡时间对拉伸强度和弹性模量的影响。从现有文献中收集有关BFRP酸浸的数据,并使用RSM进行建模,以概述BFRP的降解行为。此外,通过SEM和EDX对酸性环境下BFRP钢筋的微观结构进行了综合评价。结果表明,腐蚀引起的拉伸强度损失与温度和浸泡时间呈线性关系。另一方面,当pH值较高时,拉伸强度呈指数级下降。因此,本文揭示了各种因素对BFRP钢筋腐蚀速率的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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