Saingam Panumas, Ejaz Ali, Ali Nazam, Nawaz Adnan, Hussain Qudeer, Joyklad Panuwat
Department of Civil Engineering, School of Engineering, King Mongkut's Institute of Technology Ladkrabang, Bangkok 10520, Thailand.
National Institute of Transportation, National University of Sciences and Technology (NUST), Islamabad 44000, Pakistan.
Polymers (Basel). 2023 Feb 8;15(4):844. doi: 10.3390/polym15040844.
Recently, hemp-fiber-reinforced polymer (HFRP) composites have been developed to enhance the strength and ductility of normal and lightweight aggregate concrete along with recycled brick aggregate concrete. In addition, both experimental and analytical investigations have been performed to assess the suitability of the existing strength and strain models. However, the theoretical and analytical expressions to predict the stress-strain curves of HFRP-confined concrete were not developed. Therefore, the main objective of this study was to develop analytical expressions to predict the stress-strain curves of HFRP-confined waste brick aggregate concrete. For this purpose, a new experimental framework was conducted to examine the effectiveness of HFRP in improving the mechanical properties of concrete constructed with recycled brick aggregates. Depending on the strength of the concrete, two groups were formed, i.e., Type-1 concrete and Type-2 concrete. A total of sixteen samples were tested. The ultimate compressive strength and strain significantly increased due to HFRP confinement. Improvements of up to 272% and 457% in the ultimate compressive strength and strain were observed due to hemp confinement, respectively. To predict the ultimate compressive strength and strain of HFRP-confined concrete, this study investigated several existing analytical stress-strain models. Some of the strength models resulted in close agreement with experimental results, but none of the models could accurately predict the ultimate confined strain. Nonlinear regression analysis was conducted to propose expressions to predict the ultimate compressive strength and strain of HFRP-confined concrete. The proposed expressions resulted in good agreement with experimental results. An analytical procedure was proposed to predict the stress-strain curves of hemp-confined concrete constructed by partial replacement of natural coarse aggregates by recycled fired-clay brick aggregates. A close agreement was found between the experimental and analytically predicted stress-strain curves.
最近,麻纤维增强聚合物(HFRP)复合材料已被开发出来,用于提高普通和轻骨料混凝土以及再生砖骨料混凝土的强度和延展性。此外,还进行了实验和分析研究,以评估现有强度和应变模型的适用性。然而,预测HFRP约束混凝土应力-应变曲线的理论和解析表达式尚未得到发展。因此,本研究的主要目的是开发解析表达式,以预测HFRP约束再生砖骨料混凝土的应力-应变曲线。为此,开展了一个新的实验框架,以检验HFRP在改善由再生砖骨料制成的混凝土力学性能方面的有效性。根据混凝土的强度,形成了两组,即1型混凝土和2型混凝土。总共测试了16个样本。由于HFRP的约束,极限抗压强度和应变显著提高。由于麻纤维约束,极限抗压强度和应变分别提高了272%和457%。为了预测HFRP约束混凝土的极限抗压强度和应变,本研究考察了几种现有的解析应力-应变模型。一些强度模型与实验结果吻合较好,但没有一个模型能够准确预测极限约束应变。进行了非线性回归分析,以提出预测HFRP约束混凝土极限抗压强度和应变的表达式。所提出的表达式与实验结果吻合良好。提出了一种解析方法,用于预测用再生烧制粘土砖骨料部分替代天然粗骨料制成的麻纤维约束混凝土的应力-应变曲线。实验和解析预测的应力-应变曲线之间吻合良好。