再生塑料废水处理圆柱形生物膜载体的数学模型开发和3D打印

Selamo Basile Nyuysoni, J. Mutua, P. Home
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引用次数: 1

摘要

废水管理和净化仍然是人类面临的最大问题之一。生物废水处理技术使用生物膜介质载体,微生物附着在其表面。这种生物过滤器通常由原生塑料颗粒制成,也可以由回收的废塑料制成,并用于废水处理。使用低成本载体介质处理水的需求导致寻找生物过滤器制造的替代材料来源。因此,这项工作的重点是回收废塑料制成长丝,然后通过参数重新设计用于3D打印高比表面积(SSA)较少堵塞的生物膜载体。在目前的研究中,聚丙烯材料被回收,制成直径2.85毫米的长丝,与Ultimaker S3兼容。此外,还建立了K3 Kaldnes和MB3介质的解析模型和控制方程。使用开发的模型确定了各自载体的经验表面积(SA),比表面积和体积。SolidWorks用于设计和评估相同的参数,然后将其与模型结果进行比较。对于K3 Kaldnes和MB3介质,该模型得到的SSA相对于SolidWorks结果的误差分别为0.34%和0.76%。因此,这种生物过滤器的部署将提高废水处理的效率,为更清洁的环境和人类的福祉。
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Mathematical Model Development and 3D Printing of Cylindrically Shaped Biofilm Carrier Media from Recycled Plastic Waste for Wastewater Treatment
Wastewater management and purification remain one of the greatest problems of mankind. The biological wastewater treatment technique uses a biofilm media carrier where microorganisms attach themselves to the surface. This biofilter is usually made from virgin plastic pellets and can also be produced from recycled waste plastic and used in wastewater treatment. The need to treat water using low-cost carrier media has led to finding alternative sources of materials for biofilter manufacturing. Therefore, this work is cen-tered on the recycling of waste plastic to make filaments which are then used for 3D printing of a high specific surface area (SSA) less clogging biofilm carrier through the parametric redesign. In the current study, the polypropylene material was recycled to make a 2.85 mm diameter filament compatible with the Ultimaker S3. Moreover, analytical models and governing equations were developed for the design of the K3 Kaldnes and MB3 media. Empirical surface area (SA), specific surface area, and volume of the respective carriers were determined using the model developed. SolidWorks was used to design and evaluate the same parameters which were then compared to model results. The errors in SSA obtained from the model with respect to the SolidWorks results for both the K3 Kaldnes and MB3 media were 0.34% and 0.76% respectively. Consequently, the deployment of such biofilters will enhance efficient wastewater treatment for a cleaner environment and the wellbeing of human race.
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