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使用光伏面板废碎玻璃作为细集料对碱激发材料进行膨胀控制。

Expansion Control of Alkali-Activated Materials Using Waste Glass Cullet from Photovoltaic Panels as Fine Aggregates.

作者信息

Yamanouchi Ryo, Yasui Kentaro, Yamada Hiroshi, Fukunaga Takayuki, Harada Hideki

机构信息

Advanced Civil Engineering, National Institute of Technology, Kagoshima College, 1460-1 Shinko, Hayato-cho, Kirishima 899-5193, Japan.

Department of Urban Environmental Design and Engineering, National Institute of Technology, Kagoshima College, 1460-1 Shinko, Hayato-cho, Kirishima 899-5193, Japan.

出版信息

Materials (Basel). 2024 Oct 6;17(19):4902. doi: 10.3390/ma17194902.

Abstract

Glass cullet (GC) generated from the disposal of photovoltaic (PV) panels are typically landfilled, and effective GC utilization methods must be established for PV generation. In this study, alkali-activated material (AAM) mortars were prepared from the paste of fine blast-furnace slag powder, fly ash, and sodium orthosilicate (SO) and mixed with crushed sand and GC to investigate the potential use of GC as a fine aggregate in AAM. The replacement of crushed sand with GC did not considerably affect the flowability of the mortar, whereas the compressive strength decreased with the increasing GC replacement rates. Although expansion due to the alkali-silica reaction (ASR) was observed in mortars wherein GC replaced crushed sand, the expansion can be controlled by reducing the amount of mixed SO, autoclaving the GC, performing preleaching to remove the Si that causes the ASR, and replacing the blast-furnace slag with fly ash. By enforcing measures against the expansion, the possibility of using GC as fine aggregate is enhanced considerably, thus increasing the feasibility of continuous PV production.

摘要

光伏(PV)板处置产生的碎玻璃(GC)通常被填埋,因此必须为光伏发电建立有效的GC利用方法。在本研究中,碱激活材料(AAM)砂浆由细高炉矿渣粉、粉煤灰和硅酸钠(SO)的浆体制备而成,并与碎砂和GC混合,以研究GC作为AAM细集料的潜在用途。用GC替代碎砂对砂浆的流动性影响不大,而抗压强度随着GC替代率的增加而降低。尽管在GC替代碎砂的砂浆中观察到了碱-硅反应(ASR)导致的膨胀,但可以通过减少SO的混合量、对GC进行蒸压、进行预浸出以去除引起ASR的硅以及用粉煤灰替代高炉矿渣来控制膨胀。通过采取防止膨胀的措施,大大提高了将GC用作细集料的可能性,从而增加了持续光伏发电的可行性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5f70/11477538/6b509c82f05a/materials-17-04902-g001.jpg

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