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从智能废物管理角度探讨 COVID-19 健康个人防护材料在装饰景观路面和人造岩石用混凝土中的应用。

Smart waste management perspective of COVID-19 healthy personal protective materials in concrete for decorative landscape pavements and artificial rocks.

机构信息

Civil Engineering Department, Faculty of Engineering, Najran University, Najran, Kingdom of Saudi Arabia.

Advanced Materials and Nanotechnology Research Centre, Najran University, Najran, Kingdom of Saudi Arabia.

出版信息

Sci Rep. 2023 Feb 18;13(1):2904. doi: 10.1038/s41598-023-30104-1.

Abstract

This paper presents a new method for determining the effect of healthy personal protective material (HPPM) stripes, such as surgical masks, protective suits, and overhead and foot covers, on the durability and physicomechanical characteristics of concrete for use in architectural forms. Because of the current global epidemic caused by coronavirus (COVID-19), the use of HPPM, such as surgical masks, protective suits, and overhead and foot covers, has increased considerably. COVID-19's second and third waves are currently affecting various countries, necessitating the use of facemasks (FM). Consequently, millions of single FM have been discharged into the wild, washing up on beaches, floating beneath the seas, and ending up in hazardous locations. The effect of stripe fibers on the physicomechanical characteristics of concrete, such as the workability, Uniaxial Compressive Strength UCS, flexural strength, impact strength, spalling resistance, abrasion resistance, sorptivity, Water absorption Sw, porosity (ηe), water penetration, permeability, and economic and eco-friendly aspects, need to be determined. With a focus on HPPM, especially single-use facemasks, this study investigated an innovative way to incorporate pandemic waste into concrete structures. Scanning electron microscope and X-ray diffraction patterns were employed to analyze the microstructures and interfacial transition zones and to identify the elemental composition. The HPPM had a pore-blocking effect, which reduced the permeability and capillary porosity. Additionally, the best concentrations of HPPM, particularly of masks, were applied by volume at 0, 1, 1.5, 2.0, and 2.5%. The use of mixed fibers from different HPPMs increased the strength and overall performance of concrete samples. The tendency of growing strength began to disappear at approximately 2%. The results of this investigation showed that the stripe content had no effect on the compressive strength. However, the stripe is critical for determining the flexural strength of concrete. The UCS increased steadily between 1 and 1.5% before falling marginally at 2.5%, which indicates that incorporating HPPM into concrete had a significant impact on the UCS of the mixture. The addition of HPPM to the mixtures considerably modified the failure mode of concrete from brittle to ductile. Water absorption in hardened concrete is reduced when HPPM stripes and fibers were added separately in low-volume fractions to the concrete mixture. The concrete containing 2% HPPM fibers had the lowest water absorption and porosity percentage. The HPPM fibers were found to act as bridges across cracks, enhancing the transfer capability of the matrices. From a technological and environmental standpoint, this study found that using HPPM fibers in the production of concrete is viable.

摘要

本文提出了一种新方法,用于确定健康个人防护材料(HPPM)条纹(如手术口罩、防护服、头顶和脚罩)对建筑模板用混凝土耐久性和物理力学性能的影响。由于当前冠状病毒(COVID-19)引发的全球疫情,HPPM 的使用量(如手术口罩、防护服和头顶和脚罩)大幅增加。COVID-19 的第二波和第三波目前正在影响各国,需要使用口罩(FM)。因此,数以百万计的一次性 FM 被排放到野外,冲到海滩上,漂浮在海下,最终出现在危险地带。条纹纤维对混凝土物理力学性能(如工作性、单轴抗压强度 UCS、弯曲强度、冲击强度、剥落阻力、耐磨性、吸水性 Sw、孔隙率(ηe)、水渗透、渗透性以及经济和生态友好方面)的影响需要确定。本研究以 HPPM 为重点,特别是一次性口罩,探讨了将大流行病废物纳入混凝土结构的创新方法。采用扫描电子显微镜和 X 射线衍射图分析微观结构和界面过渡区,并确定元素组成。HPPM 具有堵塞孔隙的作用,降低了渗透性和毛细孔隙率。此外,HPPM 的最佳浓度(特别是口罩)按体积以 0、1、1.5、2.0 和 2.5%施加。使用不同 HPPM 的混合纤维增加了混凝土样品的强度和整体性能。强度增长的趋势在大约 2%左右开始消失。本研究结果表明,条纹含量对抗压强度没有影响。然而,条纹对混凝土的弯曲强度至关重要。UCS 在 1%至 1.5%之间稳定增加,然后在 2.5%时略有下降,这表明将 HPPM 掺入混凝土对混合物的 UCS 有重大影响。HPPM 混合物的加入极大地改变了混凝土的破坏模式,使其从脆性变为韧性。当 HPPM 条纹和纤维以低体积分数分别添加到混凝土混合物中时,硬化混凝土的吸水性会降低。含有 2% HPPM 纤维的混凝土具有最低的吸水率和孔隙率。发现 HPPM 纤维充当裂缝之间的桥梁,增强了基质的传递能力。从技术和环境角度来看,本研究发现,在混凝土生产中使用 HPPM 纤维是可行的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/34c9/9938896/8d262fbfdc24/41598_2023_30104_Fig1_HTML.jpg

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