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Effects of fly ash addition on physical properties of porous clay-fly ash composites via polymeric replica technique

机译:粉煤灰添加对聚合物复制技术对多孔粘土-粉煤灰复合材料物理性能的影响

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The porous composites of clay and fly ash have the potential to be used in many fields, such as catalyst support and gas adsorbents. In this study, various ratios of fly ash (1-2) with different percentage of suspension (50-70 wt%) were applied to produce porous clay-fly ash composites via polymeric replica technique. Fabrication process starts by mixing clay and fly ash in distilled water to form slurry. The process is followed by fully immersing polymer sponge in slurry. The excess slurry is then removed through squeezing. Finally, the sponge coated with slurry is sintered at 500 and 1250 degrees C for 1 h. It is found that the compressive strength of porous composites improves significantly (0.178-1.28 MPa) when the amount of clay-fly ash suspension mixture (50-70 wt%) increases. The compressive strength of porous composites is mainly attributed to the mullite, quartz and amorphous phase formations. These results are supported by X-ray diffraction analysis. On the other hand, increase in the amount of suspension reduces the apparent density (from 2.44 to 2.32 g/cm(3)) and porosity (from 97 to 85 %). The reduction in apparent density is believed to be caused by the presence of high fly ash content in porous composites. The melted fly ash cenospheres have closed the internal pores and increased density of samples. Higher suspension level not only reduces porosity, but also increases close pores of the porous composites. The results are justified through the observation from the structures of porous clay-fly ash composites.
机译:粘土和粉煤灰的多孔复合材料具有在许多领域中使用的潜力,例如催化剂载体和气体吸附剂。在这项研究中,采用不同比例的粉煤灰(1-2)和不同百分比的悬浮液(50-70 wt%)通过聚合物仿制技术生产了多孔粘土-粉煤灰复合材料。制造过程开始于将粘土和粉煤灰在蒸馏水中混合以形成浆料。该过程之后,将聚合物海绵完全浸入浆料中。然后通过挤压除去多余的浆料。最后,将涂有浆料的海绵在500和1250摄氏度下烧结1小时。发现当粘土-粉煤灰悬浮液混合物的量(50-70wt%)增加时,多孔复合材料的抗压强度显着提高(0.178-1.28MPa)。多孔复合材料的抗压强度主要归因于莫来石,石英和无定形相的形成。这些结果得到X射线衍射分析的支持。另一方面,增加悬浮液量会降低表观密度(从2.44到2.32 g / cm(3))和孔隙率(从97%到85%)。据信表观密度的降低是由于多孔复合物中存在高飞灰含量引起的。熔化的粉煤灰中空层封闭了内部孔隙,并增加了样品的密度。较高的悬浮液含量不仅会降低孔隙率,而且会增加多孔复合材料的紧密孔隙。通过对多孔粘土-粉煤灰复合材料的结构进行观察,结果是合理的。

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