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Synthesis and characterization of 3D-printable geopolymeric foams for thermally efficient building envelope materials

机译:用于热效高效建筑包络材料的3D可印刷地壤泡泡沫的合成与表征

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Synthesis and characterization of 3D-printable foamed fly ash-based geopolymer matrices for thermal insulation is the focus of this paper. A surfactant-based foaming process, multi-step mixing that ensures foam jamming transition and thus a dry foam, and microstructural packing to ensure adequate skeletal density are implemented to develop foamed suspensions amenable to 3D-printing. The foamed suspensions show lower yield stress with increasing surfactant contents, especially above the foam jamming transition. The mixtures demonstrate adequate extrudability, shape retention, and buildability. The geopolymeric foams show porosities ranging from 55 to 75% and bulk densities from 0.6 to 1.0 g/cm(3), and these properties are similar irrespective of whether the mixtures are extruded or conventionally cast. The thermal conductivities of the foamed matrices range from 0.15 to 0.25 W/m-K. It is shown that designed architectures that minimize heat transfer can be printed using foamed matrices to obtain sandwich wall panels with thermal insulation properties comparable to or better than those of currently available insulated concrete wall panels. This positions 3D-printing as a strategy to develop composite systems with previously unattainable thermal performance.
机译:用于保温的3D可印刷泡沫粉煤灰基地质聚合物基质的合成与表征是本文的焦点。基于表面活性剂的发泡过程,可以确保泡沫干扰过渡并因此确保干泡沫和微观结构包装以确保实施充分的骨骼密度,以开发允许3D印刷的发泡悬浮液。泡沫悬浮液显示出较低的屈服应力随着表面活性剂含量的增加,特别是在泡沫干扰转变之上。混合物表现出足够的耐挤出性,形状保留和可易性。聚合物泡沫显示孔隙率范围为55至75%,散装密度为0.6至1.0g / cm(3),而这些性质是相似的,而不管混合物是挤出还是常规浇铸。发泡基质的热导率范围为0.15至0.25W / m-k。结果表明,设计的设计架构可以使用发泡基质来印刷最小化传热,以获得具有与目前可用的绝缘混凝土墙板的绝热性能的夹层壁板,其具有与当前可用的绝缘混凝土墙板相当。该位置3D打印作为开发具有先前无法实现的热性能的复合系统的策略。

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