Ksenia Sukhareva, Igor Burmistrov, Eldar Mamin, Alexander Maltsev, Svetlana Karpova, Peter O Offor
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Scanning electron microscopy and optical microscopy showed that the solution mixing method obtains composite materials characterized by uniform dispersion of filler without large particle aggregates and predominantly unbroken cenospheres. The tensile strength of the composite with 10% of both as-received and silver-coated fly ash remains at the level of the unfilled SBS sample. However, at higher filler concentrations (20% and 30%), a decrease in strength by 27% and 42% respectively is observed, possibly due to the agglomeration of FA, which leads to a poorer interface and dispersion at higher filler weights. Additionally, thermal analysis in an oxygen atmosphere showed that the introduction of both as-received and metallized cenospheres in the same quantity increased the thermal stability of the tested composition. The temperatures at 5% mass loss of SBS/FA composites were on average 70°C higher than those of the original SBS.","PeriodicalId":15613,"journal":{"name":"Journal of Elastomers & Plastics","volume":"10 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-07-31","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Effects of neat and silver coated fly ash cenospheres on the properties of styrene-butadiene-styrene block copolymer composites obtained by a solution mixing method\",\"authors\":\"Ksenia Sukhareva, Igor Burmistrov, Eldar Mamin, Alexander Maltsev, Svetlana Karpova, Peter O Offor\",\"doi\":\"10.1177/00952443241268637\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Utilization of industrial by-products to develop novel value-added materials while mitigating their environmental impact is a crucial issue. Fly ash (FA) microparticles are a common component of power plant waste. 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However, at higher filler concentrations (20% and 30%), a decrease in strength by 27% and 42% respectively is observed, possibly due to the agglomeration of FA, which leads to a poorer interface and dispersion at higher filler weights. Additionally, thermal analysis in an oxygen atmosphere showed that the introduction of both as-received and metallized cenospheres in the same quantity increased the thermal stability of the tested composition. 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引用次数: 0
摘要
利用工业副产品开发新型增值材料,同时减轻其对环境的影响是一个至关重要的问题。粉煤灰(FA)微粒是发电厂废弃物的常见成分。这项工作旨在研究不同浓度的纯粉煤灰/银涂层粉煤灰对苯乙烯-丁二烯-苯乙烯/粉煤灰复合材料的形态和热性能的影响。采用溶液混合法制备了基于苯乙烯-丁二烯-苯乙烯三嵌段共聚物(SBS)的复合材料,其中含有不同体积分数的原样和银涂层 FA。采用无电解电镀法制备了银涂层仙人球颗粒。扫描电子显微镜和光学显微镜显示,溶液混合法得到的复合材料填料分散均匀,没有大颗粒聚集,主要是未破裂的仙人球。含有 10% 原状粉煤灰和银涂层粉煤灰的复合材料的拉伸强度保持在未填充 SBS 样品的水平。然而,当填料浓度较高(20% 和 30%)时,强度分别降低了 27% 和 42%,这可能是由于粉煤灰的团聚导致了较高填料重量时界面和分散性较差。此外,氧气环境下的热分析表明,引入相同数量的原样和金属化仙人球可提高测试成分的热稳定性。SBS/FA 复合材料质量损失 5%时的温度比原始 SBS 平均高 70°C。
Effects of neat and silver coated fly ash cenospheres on the properties of styrene-butadiene-styrene block copolymer composites obtained by a solution mixing method
Utilization of industrial by-products to develop novel value-added materials while mitigating their environmental impact is a crucial issue. Fly ash (FA) microparticles are a common component of power plant waste. This work aims to investigate the impact of varying concentrations of neat/silver-coated FA on the morphology and thermal properties of styrene-butadiene-styrene/FA composites. Composite materials based on styrene-butadiene styrene triblock copolymer (SBS) with various volume fractions of as-received and silver-coated FA were prepared using a solution mixing method. Silver-coated cenosphere particles were prepared using an electroless plating method. Scanning electron microscopy and optical microscopy showed that the solution mixing method obtains composite materials characterized by uniform dispersion of filler without large particle aggregates and predominantly unbroken cenospheres. The tensile strength of the composite with 10% of both as-received and silver-coated fly ash remains at the level of the unfilled SBS sample. However, at higher filler concentrations (20% and 30%), a decrease in strength by 27% and 42% respectively is observed, possibly due to the agglomeration of FA, which leads to a poorer interface and dispersion at higher filler weights. Additionally, thermal analysis in an oxygen atmosphere showed that the introduction of both as-received and metallized cenospheres in the same quantity increased the thermal stability of the tested composition. The temperatures at 5% mass loss of SBS/FA composites were on average 70°C higher than those of the original SBS.