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Uncertainty in bulk-liquid hydrodynamics and biofilm dynamics creates uncertainties in biofilm reactor design

机译:本体-液体流体动力学和生物膜动力学的不确定性为生物膜反应器设计带来不确定性

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While biofilm reactors may be classified as one of seven different types, the design of each is unified by fundamental biofilm principles. It follows that state-of-the art design of each biofilm reactor type is subject to the same uncertainties (although the degree of uncertainty may vary). This paper describes unifying biofilm principles and uncertainties of importance in biofilm reactor design. This approach to biofilm reactor design represents a shift from the historical approach which was based on empirical criteria and design formulations. The use of such design criteria was largely due to inherent uncertainty over reactor-scale hydrodynamics and biofilm dynamics, which correlate with biofilm thickness, structure and function. An understanding of two fundamental concepts is required to rationally design biofilm reactors: bioreactor hydrodynamics and biofilm dynamics (with particular emphasis on mass transfer resistances). Bulk-liquid hydrodynamics influences biofilm thickness control, surface area, and development. Biofilm dynamics influences biofilm thickness, structure and function. While the complex hydrodynamics of some biofilm reactors such as trickling filters and biological filters have prevented the widespread use of fundamental biofilm principles and mechanistic models in practice, reactors utilizing integrated fixed-film activated sludge or moving bed technology provide a bulk-liquid hydrodynamic environment allowing for their application. From a substrate transformation perspective, mass transfer in biofilm reactors defines the primary difference between suspended growth and biofilm systems: suspended growth systems are kinetically (i.e., biomass) limited and biofilm reactors are primarily diffusion (i.e., biofilm growth surface area) limited.
机译:虽然生物膜反应器可以归类为七种不同类型之一,但每种生物反应器的设计均通过基本的生物膜原理统一。因此,每种生物膜反应器类型的最新设计都具有相同的不确定性(尽管不确定性的程度可能有所不同)。本文介绍了统一的生物膜原理和在生物膜反应器设计中重要性的不确定性。这种生物膜反应器设计方法代表了从基于经验标准和设计公式的历史方法的转变。使用这种设计标准主要是由于反应器规模的流体动力学和生物膜动力学的内在不确定性,这与生物膜的厚度,结构和功能有关。合理设计生物膜反应器需要两个基本概念的理解:生物反应器的流体动力学和生物膜动力学(特别着重于传质阻力)。体液流体动力学影响生物膜厚度控制,表面积和发育。生物膜动力学影响生物膜的厚度,结构和功能。虽然某些生物膜反应器(例如滴滤池和生物滤池)的复杂流体力学已在实践中阻止了生物膜基本原理和机理模型的广泛使用,但利用集成的固定膜活性污泥或移动床技术的反应器提供了大体积的流体动力学环境,为他们的应用。从基质转化的角度来看,生物膜反应器中的传质定义了悬浮生长和生物膜系统之间的主要区别:悬浮生长系统受到动力学(即生物量)的限制,而生物膜反应器则主要受扩散(即生物膜生长的表面积)限制。

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