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Bioprocess intensification : a study of rotating packed bed porous mesh impellers for enhancement of aerobic fermentation processes

机译:生物过程强化:旋转填充床多孔网状叶轮的研究,用于增强有氧发酵过程

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摘要

Oxygen transfer can be a rate limiting factor in aerobic fermentation systems. If oxygen concentration becomes insufficient productivity will decrease and the culture will ultimately die. Novel reactor technology such as the Rotating Packed Bed Reactor (RPB) may overcome this traditional limitation. The exploitation of high centripetal forces and highly porous packing material in the RPB in gas-liquid processes is proposed to enhance oxygen transfer by production of fine bubbles. The aim of the enhancement is to ensure that the Dissolved Oxygen (DO) concentration exceeds the demand of the microbial culture utilised. The purpose of the thesis is the development and characterisation of a new HiGEE Bioreactor (HBR) for application to fermentation systems. The work was undertaken in three stages. Initial experiments focused on the mass transfer characterisation of several porous packings intended for use in the HBR. The performance of the packings was evaluated by measuring their oxygen transfer capability, power input and air bubble size produced when employed as impellers in a conventional gas-liquid stirred tank reactor (STR). It was observed that the 11 cm stainless steel Knitted Wire mesh impeller (at a fixed airflow rate of 1.0 vvm, and agitation rate of 400 rpm) produced a KLa value of 0.0312 s-1 compared to KLa of 0.0334 s-1 for the double Rushton turbine at an agitation rate of 1000 rpm and aeration rate of 1.0 vvm but with a significant decrease of about 7000 W m-3 in power. Similarly in the bubble experiments performed, the 11 cm knitted wire impeller could produce bubble diameters as low as 0.15 cm compared to 0.28 cm for the Rushton impeller. Two fermentation systems studied (oxygen transfer optimisation with Escherichia coli K12, and product optimisation with Pseudomonas putida KT2442) further demonstrated that the knitted wire mesh packing could produce a higher biomass concentration due to the enhanced oxygen transfer rate. In the final set of experiments a new HBR was designed and commissioned. A set of hydrodynamic experiments focused on the flooding conditions and bubble sizes produced within the reactor. For both experiments the packing had a profound influence on the results, producing a very fine bubble diameter of 0.361 mm at 1200 rpm with packing compared to 2.50 mm at 1200 rpm without packing whilst also allowing higher throughputs of liquid and gas before flooding occurred. A series of transfer studies also illustrated the effect of packing, with a KLa value of 0.0025 s-1 (no packing) and 0.0030 s-1 (with packing) achieved for an experiment at 1200 rpm. The RPB was then tested to be utilised as a bioreactor by studying the fermentation of P.putida KT2442 to produce polyhydroxyalkonates (PHA).
机译:氧气转移可能是有氧发酵系统中的限速因素。如果氧气浓度不足,生产率将下降,培养物最终死亡。诸如旋转填充床反应器(RPB)之类的新型反应器技术可以克服这一传统限制。提出在气液过程中利用RPB中的高向心力和高度多孔的填充材料以通过产生细小气泡来增强氧的传递。增强的目的是确保溶解氧(DO)的浓度超过所利用的微生物培养的需求。本文的目的是开发和表征新型HiGEE生物反应器(HBR),并将其应用于发酵系统。这项工作分三个阶段进行。最初的实验集中于打算用于HBR的几种多孔填料的传质表征。填料的性能通过测量其氧气传递能力,功率输入和在常规气液搅拌釜反应器(STR)中用作叶轮时产生的气泡尺寸进行评估。观察到,11厘米的不锈钢编织金属丝网叶轮(在固定气流速度为1.0 vvm,搅拌速度为400 rpm时)产生的KLa值为0.0312 s-1,而双倍的KLa为0.0334 s-1 Rushton涡轮机的搅拌速度为1000 rpm,充气速度为1.0 vvm,但功率明显降低了7000 W m-3。同样,在进行的气泡实验中,11厘米的编织线叶轮产生的气泡直径可低至0.15厘米,而拉什顿叶轮的气泡直径为0.28厘米。所研究的两个发酵系统(用大肠杆菌K12进行氧气转移优化和使用恶臭假单胞菌KT2442进行产品优化)进一步证明,由于提高了氧气的转移速率,编织丝网包装可以产生更高的生物质浓度。在最后一组实验中,设计并调试了新的HBR。一组流体动力学实验集中在反应器内产生的溢流条件和气泡大小。对于这两个实验,填料对结果都有深远的影响,使用填料时在1200 rpm时产生的气泡直径非常细,为0.361 mm,而没有填料时在1200 rpm时产生2.50 mm的气泡直径,同时还允许更高的液体和气体通过量。一系列的传递研究也说明了填充的效果,在1200 rpm的实验中,KLa值分别为0.0025 s-1(无填充)和0.0030 s-1(有填充)。然后通过研究恶臭假单胞菌KT2442的发酵以生产多羟基链烷酸酯(PHA),测试RPB用作生物反应器。

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    Cartwright Craig David;

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  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 English
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