Environment friendly sustainable concrete produced from marble waste powder

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Abstract

Concrete is an indispensable construction material renowned for its versatility and durability, yet its traditional components pose significant environmental challenges. The cement industry is a major emitter of CO2, while the extensive extraction of natural aggregates depletes finite resources. In response, researchers have explored alternative materials like Marble Waste Powder (MWP) as sustainable substitutes in concrete production. This study investigates the feasibility of incorporating MWP as partial replacements for cement and fine aggregate, examining substitution fractions of 25% and 35%. Through experimental analysis, the mechanical properties and cost implications of these modified concrete blends are evaluated. The research findings reveal that integrating MWP into concrete formulations enables the production of high-strength concrete at a reduced cost, offering a promising solution to enhance the sustainability of construction practices. By partially replacing conventional materials with MWP, the environmental impact associated with concrete production can be mitigated, contributing to efforts aimed at reducing carbon emissions and conserving natural resources. Additionally, the study underscores the importance of eco-friendly innovations in construction materials, emphasizing the need for sustainable alternatives to meet the growing demand for infrastructure development while minimizing environmental harm. Overall, this research highlights the novel use of MWP as a sustainable alternative in concrete production, showcasing its potential to address environmental concerns and promote more eco-conscious construction practices. Through the exploration of mechanical performance and economic feasibility, the study provides valuable insights for advancing sustainability in the construction industry and achieving long-term environmental stewardship.
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用大理石废粉生产环保型可持续混凝土
混凝土是一种不可或缺的建筑材料,因其多功能性和耐久性而闻名于世,但其传统成分却给环境带来了巨大挑战。水泥工业是二氧化碳的主要排放源,而天然骨料的大量开采则耗尽了有限的资源。为此,研究人员探索了大理石废粉(MWP)等替代材料,作为混凝土生产中的可持续替代品。本研究探讨了用大理石废粉部分替代水泥和细骨料的可行性,研究了 25% 和 35% 的替代比例。通过实验分析,对这些改性混凝土混合物的力学性能和成本影响进行了评估。研究结果表明,在混凝土配方中掺入 MWP 能以更低的成本生产出高强度混凝土,这为提高建筑实践的可持续性提供了一个前景广阔的解决方案。通过用 MWP 部分替代传统材料,可以减轻与混凝土生产相关的环境影响,为减少碳排放和保护自然资源做出贡献。此外,这项研究还强调了在建筑材料方面进行生态友好型创新的重要性,强调需要可持续的替代品来满足日益增长的基础设施发展需求,同时最大限度地减少对环境的危害。总之,这项研究强调了在混凝土生产中使用 MWP 作为可持续替代材料的新颖性,展示了其在解决环境问题和促进更具生态意识的建筑实践方面的潜力。通过对机械性能和经济可行性的探索,该研究为推进建筑行业的可持续发展和实现长期环境管理提供了宝贵的见解。
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