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以再生粗骨料和橡胶颗粒作为可持续工业副产品的环保型混凝土在建筑实践中的优化。

Optimization of eco-friendly concrete with recycled coarse aggregates and rubber particles as sustainable industrial byproducts for construction practices.

作者信息

Agrawal Dhiraj, Waghe Uday, Ansari Khalid, Amran Mugahed, Gamil Yaser, Alluqmani Ayed E, Thakare Nitin

机构信息

Department of Civil Engineering, Yeshwantrao Chavan College of Engineering, Hingna Road, Wanadongri, Nagpur, 441110, India.

Department of Civil Engineering, College of Engineering, Prince Sattam Bin Abdulaziz University, 11942, Alkharj, Saudi Arabia.

出版信息

Heliyon. 2024 Feb 12;10(4):e25923. doi: 10.1016/j.heliyon.2024.e25923. eCollection 2024 Feb 29.

DOI:10.1016/j.heliyon.2024.e25923
PMID:38390146
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10881326/
Abstract

In this technology era, sustainable construction practices have become quite imperative. The exploration of alternative materials to reduce the environmental footprint is of paramount importance. This research paper delves into an exhaustive investigation concerning the utilization of recycled coarse aggregates (RCA) and rubber particles (RP) in concrete. It contributes to the growing body of knowledge aimed at fostering sustainable development in the construction industry by reducing waste, promoting recycling, and mitigating the environmental footprint of building materials. The objective of the study is to evaluate the potential benefits and limitations associated with incorporating these materials, thereby providing a sustainable alternative to conventional concrete. In this research, construction and demolition waste were recycled and used as RCA as a fractional switch of natural coarse aggregate (NCA) from 0% to 100%, with an increment of 20% replacement of NCA in concrete. The RP received from discarded tires generated as automobile industry waste were used as a volumetric fractional substitution of sand in concrete from 0% to 20%, with a 5% increment. No pre-treatment for RCA and RP was carried out before their utilization in concrete. A total of 26 mixes, including control concrete without NCA and RP, with a design strength of 40 MPa, were prepared and tested. Concrete mixes were examined for workability, density, mechanical, and durability properties. It was found that the concrete with 60% RCA and 10% RP showed satisfactory results in evaluation with the strength parameters of control concrete, as the compressive strength obtained for this concrete mix is 40.18 MPa, similar to the control mix. The optimization for RCA and RP was conducted using Response Surface Methodology (RSM). The major concern observed was a rise in water absorption with an increase in the percentage replacement of NCA and natural sand by RCA and RP. Findings from the investigation illustrate a promising prospect for the use of RCA and RP in concrete applications, displaying competent mechanical properties and enhanced durability under certain conditions, offering a viable option for environmentally friendly construction practices. However, the research also sheds light on some constraints and challenges, such as the variability in the quality of RCA and the necessity for meticulous quality control to ensure the reliability and consistency of the end product. It is discerned that further refinement in processing techniques and quality assurance measures is pivotal for mainstream adoption of RCA and RP in concrete construction.

摘要

在这个技术时代,可持续的建筑实践变得至关重要。探索替代材料以减少环境足迹至关重要。本研究论文深入探讨了再生粗骨料(RCA)和橡胶颗粒(RP)在混凝土中的应用的详尽调查。它通过减少浪费、促进回收利用以及减轻建筑材料的环境足迹,为旨在推动建筑业可持续发展的知识体系增添了内容。该研究的目的是评估掺入这些材料的潜在益处和局限性,从而为传统混凝土提供一种可持续的替代方案。在本研究中,建筑和拆除废物被回收并用作RCA,作为天然粗骨料(NCA)的部分替代,替代比例从0%到100%,混凝土中NCA的替代增量为20%。从汽车工业废物产生的废弃轮胎中获得的RP用作混凝土中砂的体积分数替代,替代比例从0%到20%,增量为5%。在将RCA和RP用于混凝土之前,未对其进行预处理。总共制备并测试了26种混合料,包括不含NCA和RP的对照混凝土,设计强度为40MPa。对混凝土混合料的工作性、密度、力学性能和耐久性进行了检测。结果发现,含有60%RCA和10%RP的混凝土在与对照混凝土强度参数的评估中显示出令人满意的结果,因为该混凝土混合料获得的抗压强度为40.18MPa,与对照混合料相似。使用响应面方法(RSM)对RCA和RP进行了优化。观察到的主要问题是随着RCA和RP对NCA和天然砂替代百分比的增加,吸水率上升。调查结果表明,在混凝土应用中使用RCA和RP具有广阔前景,在某些条件下显示出良好的力学性能和增强的耐久性,为环保建筑实践提供了可行选择。然而,该研究也揭示了一些限制和挑战,如RCA质量的变异性以及确保最终产品可靠性和一致性所需的严格质量控制。可以看出,加工技术和质量保证措施的进一步完善对于RCA和RP在混凝土施工中的主流应用至关重要。

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