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Optimizing and Characterizing Geopolymers from Ternary Blend of Philippine Coal Fly Ash, Coal Bottom Ash and Rice Hull Ash

机译:菲律宾粉煤灰,煤灰和稻壳灰三元掺混料的优化与表征

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Geopolymers are inorganic polymers formed from the alkaline activation of amorphous alumino-silicate materials resulting in a three-dimensional polymeric network. As a class of materials, it is seen to have the potential of replacing ordinary Portland cement (OPC), which for more than a hundred years has been the binder of choice for structural and building applications. Geopolymers have emerged as a sustainable option vis-à-vis OPC for three reasons: (1) their technical properties are comparable if not better; (2) they can be produced from industrial wastes; and (3) within reasonable constraints, their production requires less energy and emits significantly less CO 2 . In the Philippines, the use of coal ash, as the alumina- and silica- rich geopolymer precursor, is being considered as one of the options for sustainable management of coal ash generation from coal-fired power plants. However, most geopolymer mixes (and the prevalent blended OPC) use only coal fly ash. The coal bottom ash, having very few applications, remains relegated to dumpsites. Rice hull ash, from biomass-fired plants, is another silica-rich geopolymer precursor material from another significantly produced waste in the country with only minimal utilization. In this study, geopolymer samples were formed from the mixture of coal ash, using both coal fly ash (CFA) and coal bottom ash (CBA), and rice hull ash (RHA). The raw materials used for the geopolymerization process were characterized using X-ray fluorescence spectroscopy (XRF) for elemental and X-ray diffraction (XRD) for mineralogical composition. The raw materials’ thermal stability and loss on ignition (LOI) were determined using thermogravimetric analysis (TGA) and reactivity via dissolution tests and inductively-coupled plasma mass spectrometry (ICP) analysis. The mechanical, thermal and microstructural properties of the geopolymers formed were analyzed using compression tests, Fourier transform infra-red spectroscopy (FTIR), scanning electron microscopy (SEM) and thermogravimetric analysis (TGA). Using a Scheffé-based mixture design, targeting applications with low thermal conductivity, light weight and moderate strength and allowing for a maximum of five percent by mass of rice hull ash in consideration of the waste utilization of all three components, it has been determined that an 85-10-5 by weight ratio of CFA-CBA-RHA activated with 80-20 by mass ratio of 12 M NaOH and sodium silicate (55% H 2 O, modulus = 3) produced geopolymers with a compressive strength of 18.5 MPa, a volumetric weight of 1660 kg/m 3 and a thermal conductivity of 0.457 W/m-°C at 28-day curing when pre-cured at 80 °C for 24 h. For this study, the estimates of embodied energy and CO 2 were all below 1.7 MJ/kg and 0.12 kg CO 2 /kg, respectively.
机译:地聚合物是由无定形硅铝酸盐材料经碱活化形成的三维聚合物网络的无机聚合物。作为一类材料,可以替代普通的波特兰水泥(OPC)具有潜力,而普通的波特兰水泥(OPC)一百多年来一直是结构和建筑应用的首选粘合剂。相对于OPC,地聚合物已成为一种可持续的选择,其原因有以下三个:(1)其技术性能可比,甚至更好。 (二)可以由工业废物产生; (3)在合理的约束下,它们的生产需要更少的能量并且排放的CO 2明显更少。在菲律宾,使用煤灰作为富含氧化铝和二氧化硅的地聚合物的前体,被视为可持续管理燃煤电厂产生的煤灰的一种选择。但是,大多数地质聚合物混合物(和常见的混合OPC)仅使用粉煤灰。仅有极少应用的煤灰被保留在垃圾场。来自生物质燃料发电厂的稻壳灰是另一种富含二氧化硅的地聚合物前体材料,来自该国另一种产量极低的废物,利用率极低。在这项研究中,使用煤粉煤灰(CFA)和煤底灰(CBA)以及稻壳灰(RHA)由煤灰的混合物形成了地聚合物样品。使用元素元素的X射线荧光光谱(XRF)和矿物成分的X射线衍射(XRD)来表征用于地质聚合过程的原材料。使用热重分析(TGA)和溶解度测试和电感耦合等离子体质谱(ICP)分析来确定原料的热稳定性和灼烧损失(LOI)。使用压缩测试,傅立叶变换红外光谱(FTIR),扫描电子显微镜(SEM)和热重分析(TGA)分析了形成的地质聚合物的机械,热和微观结构性质。考虑到所有这三种成分的废物利用,使用基于Scheffé的混合物设计,针对低导热性,轻质和中等强度的应用,并允许最大占稻壳灰分质量的5%。用质量比为80-10-20的CFA-CBA-RHA的质量比为85-10-5的12 M NaOH和硅酸钠(55%H 2 O,模量= 3)活化后得到的抗压强度为18.5 MPa的地质聚合物当在80°C下预固化24小时时,在28天固化后的体积重量为1660 kg / m 3,导热系数为0.457 W / m-°C。对于本研究,所包含的能量和CO 2的估算值分别分别低于1.7 MJ / kg和0.12 kg CO 2 / kg。

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