Institute of Biochemical Engineering, Braunschweig University of Technology, Rebenring 56, 38106, Braunschweig, Germany.
Center of Pharmaceutical Engineering, Braunschweig University of Technology, Franz-Liszt-Str. 35a, 38106, Braunschweig, Germany.
Sci Rep. 2021 Mar 31;11(1):7276. doi: 10.1038/s41598-021-86654-9.
With the technological advances in 3D printing technology, which are associated with ever-increasing printing resolution, additive manufacturing is now increasingly being used for rapid manufacturing of complex devices including microsystems development for laboratory applications. Personalized experimental devices or entire bioreactors of high complexity can be manufactured within few hours from start to finish. This study presents a customized 3D-printed micro bubble column reactor (3D-µBCR), which can be used for the cultivation of microorganisms (e.g., Saccharomyces cerevisiae) and allows online-monitoring of process parameters through integrated microsensor technology. The modular 3D-µBCR achieves rapid homogenization in less than 1 s and high oxygen transfer with ka values up to 788 h and is able to monitor biomass, pH, and DOT in the fluid phase, as well as CO and O in the gas phase. By extensive comparison of different reactor designs, the influence of the geometry on the resulting hydrodynamics was investigated. In order to quantify local flow patterns in the fluid, a three-dimensional and transient multiphase Computational Fluid Dynamics model was successfully developed and applied. The presented 3D-µBCR shows enormous potential for experimental parallelization and enables a high level of flexibility in reactor design, which can support versatile process development.
随着 3D 打印技术的技术进步,其打印分辨率不断提高,增材制造现在越来越多地用于快速制造复杂设备,包括实验室应用的微系统开发。个人实验设备或整个高复杂度的生物反应器可以在几个小时内从开始到结束制造完成。本研究提出了一种定制的 3D 打印微泡柱式反应器(3D-µBCR),可用于微生物(如酿酒酵母)的培养,并通过集成微传感器技术实现过程参数的在线监测。模块化的 3D-µBCR 可在不到 1 秒的时间内实现快速均化,氧传递率高达 788 h,并且能够监测流体相中的生物量、pH 值和溶解氧(DOT),以及气相中的 CO 和 O。通过对不同反应器设计的广泛比较,研究了几何形状对所得流体动力学的影响。为了定量描述流体中的局部流动模式,成功开发并应用了一个三维瞬态多相计算流体动力学模型。所提出的 3D-µBCR 在实验并行化方面显示出巨大的潜力,并在反应器设计方面具有高度的灵活性,可支持多样化的工艺开发。