da Silva Fernandes Fernando Antonio, de Oliveira Costa Dayriane do Socorro, Rossignolo João Adriano
Department of Biosystems Engineering, University of São Paulo, USP, Av. Duque de Caxias Norte, 225, Pirassununga 13635-900, SP, Brazil.
Department of Engineering, Federal University of Pará-Campus Salinópolis, Rua Raimundo Santana Cruz, S/N, Bairro São Tomé, Salinópolis 68721-000, PA, Brazil.
Materials (Basel). 2022 Sep 26;15(19):6669. doi: 10.3390/ma15196669.
This study investigates the technological, thermal, mechanical, and technological properties of glass foams produced with soda-lime glass residues and rice husk ash sintered at 850-950 °C. The results for apparent density (0.28-0.30 g/cm), porosity (82-87 ± 4%), compressive strength (1.18 ± 0.03-1.25 ± 0.03 MPa), and thermal conductivity (0.283-0.326 W/mK) are within the limits for commercial foams. The volumetric expansion potential and low thermal conductivity of the glass foams produced favor their use as thermal insulating materials in coat walls, thus improving thermal comfort in the construction sector. The results of X-ray fluorescence show that the foam glass is of the soda-lime type (SiO, NaO, and CaO), the rice husk ash is rich in SiO, CaO, NaO, AlO, KO and FeO, and the calcium carbonate is rich in CaO. The glass foams produced in this study are promising because they present more economical and efficient manufacturing, resulting in lightweight materials with thermal insulating properties that can be used in the construction sector. These glass foams also reduce the consumption of natural and synthetic raw materials, adding value to the waste used in this study by transforming them into co-products, thus favoring the economic circulation of the region.
本研究调查了由钠钙玻璃残渣和稻壳灰在850 - 950℃烧结而成的泡沫玻璃的工艺、热学、力学和工艺性能。表观密度(0.28 - 0.30 g/cm)、孔隙率(82 - 87 ± 4%)、抗压强度(1.18 ± 0.03 - 1.25 ± 0.03 MPa)和热导率(0.283 - 0.326 W/mK)的结果均在商用泡沫的范围内。所制备的泡沫玻璃的体积膨胀潜力和低热导率有利于其用作墙体的隔热材料,从而提高建筑领域的热舒适性。X射线荧光分析结果表明,泡沫玻璃为钠钙型(SiO、NaO和CaO),稻壳灰富含SiO、CaO、NaO、AlO、KO和FeO,碳酸钙富含CaO。本研究制备的泡沫玻璃具有前景,因为它们具有更经济高效的制造工艺,可生产出具有隔热性能的轻质材料,可用于建筑领域。这些泡沫玻璃还减少了天然和合成原材料的消耗,通过将本研究中使用的废物转化为副产品增加了其价值,从而有利于该地区的经济循环。