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A Novel Bio-carrier Fabricated Using 3D Printing Technique for Wastewater Treatment

机译:使用3D打印技术制造的新型生物载体用于废水处理

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摘要

The structure of bio-carriers is one of the key operational characteristics of a biofilm reactor. The goal of this study is to develop a series of novel fullerene-type bio-carriers using the three-dimensional printing (3DP) technique. 3DP can fabricate bio-carriers with more specialized structures compared with traditional fabrication processes. In this research, three types of fullerene-type bio-carriers were fabricated using the 3DP technique and then compared with bio-carrier K3 (from AnoxKaldnes) in the areas of physicochemical properties and biofilm growth. Images acquired by 3D profiling and SEM indicated that the surface roughness of the 3DP bio-carrier was greater than that of K3. Furthermore, contact angle data indicated that the 3DP bio-carriers were more hydrophilic than K3. The biofilm on the 3DP bio-carriers exhibited higher microbial activity and stronger adhesion ability. These findings were attributed to excellent mass transfer of the substrate (and oxygen) between the vapour-liquid-solid tri-phase system and to the surface characteristics. It is concluded that the novel 3DP fullerene-type bio-carriers are ideal carriers for biofilm adherence and growth.
机译:生物载体的结构是生物膜反应器的关键操作特征之一。这项研究的目的是使用三维打印(3DP)技术开发一系列新颖的富勒烯型生物载体。与传统的制造工艺相比,3DP可以制造具有更专业结构的生物载体。在这项研究中,使用3DP技术制造了三种类型的富勒烯型生物载体,然后在理化性质和生物膜生长方面与生物载体K3(来自AnoxKaldnes)进行了比较。通过3D轮廓和SEM获得的图像表明3DP生物载体的表面粗糙度大于K3。此外,接触角数据表明3DP生物载体比K3更亲水。 3DP生物载体上的生物膜表现出更高的微生物活性和更强的粘附能力。这些发现归因于蒸气-液-固三相系统之间底物(和氧气)的出色传质以及表面特性。结论是新型3DP富勒烯型生物载体是生物膜粘附和生长的理想载体。

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