可持续椰枣纤维混凝土的高温性能评价:MCDM和Weibull分析方法

IF 3.2 Q3 Mathematics
Musa Adamu , Yasser E. Ibrahim , Ashwin Raut
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引用次数: 0

摘要

研究了高温条件下含有粉末活性炭(PAC)的枣椰树纤维(DPF)增强混凝土的优化及性能评价。采用多准则决策(MCDM)和威布尔分布分析对混凝土的性能进行了分析。测量了300°C、600°C和900°C时的失重和残余抗压强度。设计了不同DPF(0%、1%、2%和3%)和PAC(0%、1%、2%和3%水泥重量)的混凝土混合料。性能评价包括抗压强度、和易性、吸水率和质量损失。EDAS法鉴定Mix M1D1P (1% DPF, 1% PAC)为性能最佳的混合成分。优化后的混合料具有较高的抗压强度(54.13 MPa)、800℃时的残余强度(25.17 MPa)和较低的质量损失(9.84%),适合高温应用。MCDM结果显示,适度PAC含量(1%)的混合物优于那些含有过多DPF和PAC的混合物,因为它们降低了孔隙率,增强了强度保持。通过Weibull分布验证了统计信度,600°C时的残余强度具有高度相关(R²= 0.981)。研究结果强调了DPF作为一种可持续纤维的潜力,它可以提高热稳定性和机械性能,同时支持环保建筑实践。这项研究通过提供材料选择和优化的系统框架来推进智能混凝土技术,为耐用和可持续的高性能混凝土应用铺平了道路。本研究还探讨了其在结构和热障系统中的实际应用,为土木工程和可持续建筑实践提供了功能预见。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High-temperature performance evaluation of sustainable date palm fiber concrete with activated carbon: An MCDM and Weibull analysis approach
This study explores the optimization and performance evaluation of date palm fiber (DPF) reinforced concrete containing powdered activated carbon (PAC) subjected to high temperatures. Multi-criteria decision-making (MCDM) and Weibull distribution analyses were used to analyse the concrete’s properties. Weight loss and residual compressive strength at 300 °C, 600 °C, and 900 °C were measured. The concrete mixes were designed with varying DPF (0 %, 1 %, 2 %, and 3 %) and PAC (0 %, 1 %, 2 %, and 3 % by cement weight). Performance evaluation included compressive strength, workability, water absorption, and mass loss were measured. The EDAS method identified Mix M1D1P (1 % DPF, 1 % PAC) as the best-performing mix composition. The optimal mix demonstrated high compressive strength (54.13 MPa), residual strength at 800 °C (25.17 MPa), and low mass loss (9.84 %), making it suitable for high-temperature applications. The MCDM results revealed that mixes with moderate PAC content (1 %) outperformed those with excessive DPF and PAC due to reduced porosity and enhanced strength retention. Statistical reliability was verified through Weibull distribution, with high degree of correlation (R² = 0.981) for the residual strength at 600 °C. The findings underscore the potential of DPF as a sustainable fiber that enhances thermal stability and mechanical performance while supporting eco-friendly construction practices. This study advances smart concrete technology by providing a systematic framework for material selection and optimization, paving the way for durable and sustainable high-performance concrete applications. The findings in this study also explores its practical applications in structural and thermal barrier systems, offering functional foresight for civil engineering and sustainable construction practices.
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来源期刊
Results in Control and Optimization
Results in Control and Optimization Mathematics-Control and Optimization
CiteScore
3.00
自引率
0.00%
发文量
51
审稿时长
91 days
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