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Measurements on the fly-Introducing mobile micro-sensors for biotechnological applications

机译:用于生物技术应用的鸟类移动微传感器的测量

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The application of standard sensor electrodes is often limited to stirred tank reactors due to their wired nature and their large space requirement. For other cultivation systems, sensors require a great technical effort to be implemented. Here we propose a new concept of sensors: miniaturized, mobile, wireless, and self-contained spherical sensors with diameters of only 7.9 mm. The micro-probes send their data wirelessly at a frequency band of about 433 MHz to a base station during the process run and are easily deployable for many biotechnological applications and reactor types, without any need to modify the cultivation system, as the probes are nearly non-invasive due to their small size. The system consists of a platform that can accommodate various sensor types, e.g., temperature as shown in this work. The sensor spheres are reusable and can be charged by induction before being deployed in a biotechnological application. Furthermore, redundancy can easily be realized by adding several sensors into a single reactor, since each base station can coordinate up to 24 spheres. From computational fluid dynamics (CFD) simulations we could infer the maximum allowable density of spheres that would still enable them to be homogeneously distributed within a reactor as 1.1 g/cm(3). We could demonstrate the practical applicability of our concept by deploying the spheres in shaking flasks, lab-scale stirred tank reactors, and tube reactors in typical lab environments. In all cases, the spheres showed reliable data transmission despite the potentially shielding technical environment. (C) 2019 Elsevier B.V. All rights reserved.
机译:标准传感器电极的应用通常限于搅拌罐式反应器,由于其有线性质及其大的空间要求。对于其他栽培系统,传感器需要实现巨大的技术努力。在这里,我们提出了一种新的传感器概念:小型化,移动,无线和独立的球形传感器,直径仅为7.9毫米。微探针在过程运行期间将其数据无线发送到大约433 MHz的频带到基站,并且很容易为许多生物技术应用和反应堆类型部署,而无需修改培养系统,因为探头几乎由于它们的尺寸小,无侵入性。该系统由一个平台组成,该平台可以容纳各种传感器类型,例如,温度,如本工作所示。传感器球体可重复使用,并且可以通过诱导在生物技术应用之前通过诱导充电。此外,通过将若干传感器添加到单个反应器中可以容易地实现冗余,因为每个基站可以协调高达24个球体。从计算流体动力学(CFD)模拟中,我们可以推断仍然能够将它们均匀地分布在反应器内的最大允许的球体密度为1.1g / cm(3)。我们可以通过在典型的实验室环境中部署振动烧瓶中的球体,在典型的实验室环境中展示我们的概念的实际适用性。在所有情况下,尽管有可能屏蔽技术环境,球体表现出可靠的数据传输。 (c)2019 Elsevier B.v.保留所有权利。

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