Optimization of concrete containing wind-turbine wastes following mechanical, environmental and economic indicators

Nerea Hurtado-Alonso , Javier Manso-Morato , Víctor Revilla-Cuesta , Vanesa Ortega-López , Marta Skaf
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Abstract

The decommissioning of wind farms produces two primary waste materials: Recycled Concrete Aggregate (RCA) derived from the foundation concrete, and Raw-Crushed Wind-Turbine Blade (RCWTB) obtained through the crushing and sieving of the blades. Incorporating these materials into concrete enhances sustainability and, in some cases, improves mechanical properties while reducing the final environmental impact and cost compared to conventional concrete. A comprehensive characterization of the mechanical properties of concrete mixtures with varying RCA (0–100%) and RCWTB (0–10%) contents was conducted, these mixes being designed with increased water and admixture contents to compensate for the expected loss of workability caused by the addition of these waste materials. A Life-Cycle Assessment (LCA) and cost evaluation were also performed. The optimization of these mixtures was addressed using the Response Surface Method (RSM). The optimization process revealed that intermediate combinations of RCA (50%) and RCWTB (5%) yielded maximum flexural-tensile properties. However, achieving optimal performance proved more challenging when simultaneous optimization included compressive strength and deformability properties, such as modulus of elasticity and Poisson’s coefficient. For these properties, the optimal mix incorporated 88% RCA and 0% RCWTB. The RSM analysis demonstrated the feasibility of incorporating both RCA and RCWTB into concrete mixtures, mainly intended to work under bending stresses, but it also highlighted the complexities of achieving optimal performance when all mechanical properties were simultaneously considered. This research underscores the potential for these recycled materials to contribute to more sustainable concrete production while addressing the trade-offs in mechanical performance optimization.

Abstract Image

根据机械、环境和经济指标对含有风力涡轮机废料的混凝土进行优化
风电场的退役产生两种主要废物:从基础混凝土中提取的再生混凝土骨料(RCA)和通过叶片破碎和筛分获得的原始破碎风力涡轮机叶片(RCWTB)。与传统混凝土相比,将这些材料加入混凝土中可以增强可持续性,在某些情况下,可以改善机械性能,同时减少最终的环境影响和成本。对不同RCA(0-100%)和RCWTB(0-10%)含量的混凝土混合料的力学性能进行了全面表征,这些混合料在设计时增加了水和外加剂的含量,以补偿由于添加这些废物而造成的可加工性的预期损失。生命周期评估(LCA)和成本评估也进行了。利用响应面法(RSM)对这些混合物进行了优化。优化过程表明,RCA(50%)和RCWTB(5%)的中间组合获得了最大的弯曲拉伸性能。然而,当同时优化抗压强度和变形性能(如弹性模量和泊松系数)时,实现最佳性能更具挑战性。对于这些性能,最佳的混合物中含有88%的RCA和0%的RCWTB。RSM分析证明了将RCA和RCWTB同时加入混凝土混合物的可行性,主要用于在弯曲应力下工作,但它也强调了在同时考虑所有机械性能时实现最佳性能的复杂性。这项研究强调了这些回收材料的潜力,有助于更可持续的混凝土生产,同时解决了机械性能优化方面的权衡。
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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CiteScore
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