首页> 外文期刊>CERAMICS INTERNATIONAL >Waste recycling of coal fly ash: A novel approach to prepare hierarchically porous coal fly ash/Al2O3 ceramic composite with high porosity and high strength templated by emulsion-assisted self-assembly
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Waste recycling of coal fly ash: A novel approach to prepare hierarchically porous coal fly ash/Al2O3 ceramic composite with high porosity and high strength templated by emulsion-assisted self-assembly

机译:粉煤灰废料回收利用:乳液辅助自组装制备高孔隙高强度多层多孔煤灰/Al2O3陶瓷复合材料的新方法

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摘要

? 2022The coal fly ash (CFA) produced from coal-fired power generation is classified as a common solid waste; thus, improving the recovery and utilization rate of CFA is highly desirable. In this study, a novel strategy using CFA and Al2O3 as raw materials, to prepare hierarchically porous ceramic composites that serve as potential candidates for future building materials is developed. In this process, the well-developed self-assembly method in which an anionic modifier is used to prepare hydrophobic powders that form an attractive oil/water network via electrostatic interactions, thereby yielding honeycomb-like structures. In order to explore the mechanism of preparation, five samples with different mixture ratios of alumina and CFA were prepared according to 1: 0, 2: 1, 1: 1, 1: 2, and 0: 1 (Alumina: CFA). Compared with the sample prepared with pure CFA, the as-prepared CFA/Al2O3 composite exhibited both superior porosity and high mechanical property. When the porosity is as high as 73 ± 0.17, the compressive strength is as high as 80.9 ± 3.4mpa (alumina: CFA = 1:1). As the porosity decreases to 49.3 ± 0.7, the compressive strength reaches 159.33 ± 36.89mpa (alumina: CFA = 1:2). Moreover, this work obtains the highest compressive strength-porosity related B-value in comparison to previously reported CFA-based composites and provides a new insight into the effective recycling of CFA and offers a novel approach to prepare CFA/Al2O3 composite with excellent overall mechanical properties.
机译:?2022年燃煤发电产生的粉煤灰(CFA)被列为普通固体废物;因此,提高CFA的回收率和利用率是非常可取的。本研究提出了一种以CFA和Al2O3为原料制备多级多孔陶瓷复合材料的新策略,作为未来建筑材料的潜在候选材料。在这个过程中,成熟的自组装方法,其中阴离子改性剂用于制备疏水性粉末,通过静电相互作用形成有吸引力的油/水网络,从而产生蜂窝状结构。为了探究其制备机理,分别按1:0、2:1、1:1、1:2和0:1制备了5个不同氧化铝和CFA混合比例的样品(氧化铝:CFA)。与纯CFA制备的样品相比,制备的CFA/Al2O3复合材料具有优异的孔隙率和较高的力学性能。当孔隙率高达73±0.17%时,抗压强度高达80.9±3.4MPa(氧化铝:CFA=1:1)。当孔隙率降低到49.3±0.7%时,抗压强度达到159.33±36.89mpa(氧化铝:CFA=1:2)。此外,与先前报道的CFA基复合材料相比,该工作获得了最高的抗压强度-孔隙率相关B值,为CFA的有效回收提供了新的见解,并为制备具有优异整体力学性能的CFA/Al2O3复合材料提供了一种新的方法。

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