4.7 Article

Foam glass production from waste bottle glass using silicon cutting waste of loose abrasive slurry sawing as foaming agent

期刊

CONSTRUCTION AND BUILDING MATERIALS
卷 383, 期 -, 页码 -

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ELSEVIER SCI LTD
DOI: 10.1016/j.conbuildmat.2023.131344

关键词

Foam glass; Waste bottle glass; Silicon cutting waste; Silicon carbide; Powder sintering; Waste valorization

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This study created foam glass from waste bottle glass by using silicon cutting waste as the foaming agent, and investigated the influence of various parameters. The results showed that foam glass produced using silicon cutting waste had properties that meet the standards for thermal insulation materials.
This study created foam glass from waste bottle glass employing silicon cutting waste (SCW) of loose abrasive slurry sawing as the foaming agent. The influence of affecting parameters, namely sintering temperature, glass powder particle size, SCW dosage, heating rate, holding time, were investigated. The produced foam glass was characterized to examine its microstructure, bulk density, compressive strength, porosity, and thermal conductivity, and was compared with that produced using silicon carbide (SiC) reagent as the foaming agent. The results indicated that under the optimal conditions of sintering temperature of 775 degrees C, glass powder particle size of 0.15 mm, SCW dosage of 1 wt% (the D-50 of SiC in SCW was ca. 10 mu m), heating rate of 10 degrees C/min, and holding time of 30 min, the produced foam glass had a compressive strength of 4.1 MPa, bulk density of 0.56 g/cm(3), porosity of 78%, and thermal conductivity of 0.16 W/m center dot k; these properties meet with standards for thermal insulation materials. In contrast, using SiC reagent with a D-50 of ca. 22 mu m revealed 900. C as the optimal sintering temperature, which yielded foam glass having a compressive strength of 5.4 MPa, bulk density of 0.67 g/cm(3), porosity of 73%, and thermal conductivity of 0.2 W/m center dot k. By using SCW as the foaming agent, foam glass is able to be produced under comparatively low temperature and has favorable properties. In addition, the simultaneous waste valorization of waste bottle glass and SCW can be achieved.

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