大孔和肺泡土工聚合物泡沫的制备方法:操作参数对孔隙特征的影响

S. Benkhirat , G. Plantard , E. Ribeiro , H. Glenat , Y. Gorand , K. Nouneh
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引用次数: 0

摘要

气泡蜂窝泡沫的应用范围非常广泛,从航空和过滤系统到化学和转化过程。它们的多孔特性使其成为反应、辐射传递和流动的主要候选材料。土工聚合物泡沫起源于土木工程,是一种在机械、热和隔音方面具有巨大潜力的材料。由于它们主要用于土木工程,目前开发的结构主要是闭孔基质。然而,如果要在光催化氧化过程、太阳能集热器或聚光太阳能发电厂领域实现逆转,则需要开发具有高交换表面积的支撑物。金属肺泡泡沫被认为是理想的支撑物,但成本非常高。地聚合物泡沫可以满足这些要求,但其表面积目前对于光反应器来说过于有限。本研究建议开发和优化土工聚合物泡沫合成的操作条件,以赋予其大孔特性和相互连接的泡孔结构。基于两种成熟的合成方法(直接发泡和复制),研究了发泡剂和表面活性剂含量、干燥和煅烧条件等操作条件。生产出的土工聚合物泡沫具有不同的大孔特征。我们的目标是确定生产具有微米级孔隙的互连大孔肺泡泡沫所需的合成条件。在土木工程中,这些材料具有易于设计、使用和根据应用塑造形状的优点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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A way to macroporous and alveolar geopolymer foams elaboration: Influence of operating parameters on porosity characteristics
Alveolar cellular foams are widely used in a wide range of applications, from aeronautics and filtration systems to chemical and transformation processes. Their porous characteristics make them a prime candidate for reactions, radiative transfer and flow. Geopolymeric foams, which have their origins in civil engineering, are materials with promising potential in terms of mechanical, thermal and acoustic resistance. As they are mainly used in civil engineering, the structures currently being developed are mainly closed-pore matrices. However, if they are to invert the field of photocatalytic oxidation processes, solar collectors or concentrated solar power plants, the supports need to develop a high exchange surface area. Metal alveolar foams have been identified as ideal but very costly supports. Geopolymeric foams could meet these requirements, but their surface areas are currently too limited for photoreactors. In this study, it is proposed to develop and optimize the operating conditions for geopolymer foam synthesis in order to impart macroporous properties and an interconnected alveolar structure. Based on two well-established synthesis methods (direct foaming and replication), operating conditions such as foaming agent and surfactant content, and drying and calcination conditions, are studied. Geopolymer foams are produced with different macroporous characteristics. We aim to define the synthesis conditions required to produce interconnected macroporous alveolar foams with milimetric pores. In civil engineering, these materials have the advantage of being easy to design, use and shape according to the application.
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