Sugama Toshifumi, Pyatina Tatiana
Brookhaven National Laboratory, Upton, NY 11973-5000, USA.
Materials (Basel). 2021 Nov 5;14(21):6679. doi: 10.3390/ma14216679.
This study assessed the possibility of using polymethylhydrosiloxane (PMHS)-treated fly ash cenospheres (FCS) for formulating a thermally insulating and thermal shock (TS)-resistant cementitious blend with calcium aluminate cement. To prevent FCS degradation in an alkaline cement environment at high temperatures, the cenospheres were pre-treated with sodium metasilicate to form silanol and aluminol groups on their surface. These groups participated in a dehydrogenation reaction with the functional ≡Si-H groups within PMHS with the formation of siloxane oxygen-linked M-FCS (M: Al or Si). At high hydrothermal temperatures of 175 and 250 °C, some Si-O-Si and SiCH bonds ruptured, causing depolymerization of the polymer at the FCS surface and hydroxylation of the raptured sites with the formation of silanol groups. Repolymerization through self-condensation between the silanol groups followed, resulting in the transformation of siloxane to low crosslinked silicon-like polymer as a repolymerization-induced product (RIP) without carbon. The RIP provided adequate protection of FCS from pozzolanic reactions (PR), which was confirmed by the decline in zeolites as the products of PR of FCS. Cements with PMHS-treated FCS withstood both hydrothermal and thermal temperature of 250 °C in TS tests, and they also showed improved compressive strength, toughness, and water repellency as well as decreased thermal conductivity. The lubricating properties of PMHS increased the fluidity of lightweight slurries.
本研究评估了使用聚甲基氢硅氧烷(PMHS)处理的粉煤灰漂珠(FCS)与铝酸钙水泥配制隔热且抗热震(TS)水泥基混合物的可能性。为防止FCS在高温碱性水泥环境中降解,对漂珠进行了偏硅酸钠预处理,使其表面形成硅醇基和铝醇基。这些基团与PMHS中的官能≡Si-H基团发生脱氢反应,形成硅氧烷氧连接的M-FCS(M:Al或Si)。在175和250°C的高水热温度下,一些Si-O-Si和SiCH键断裂,导致FCS表面的聚合物解聚,断裂位点羟基化并形成硅醇基。随后硅醇基之间通过自缩合进行再聚合,导致硅氧烷转化为无碳的低交联类硅聚合物,作为再聚合诱导产物(RIP)。RIP为FCS提供了足够的保护,使其免受火山灰反应(PR)的影响,这一点通过作为FCS火山灰反应产物的沸石减少得到证实。在热震试验中,含有PMHS处理过的FCS的水泥能够承受250°C的水热和热温度,并且它们还表现出抗压强度、韧性和疏水性的提高以及热导率的降低。PMHS的润滑性能提高了轻质浆料的流动性。