首页> 外文期刊>Environmental Science & Technology >Metal Flux and Dynamic Speciation at (Bio)lnterfaces. Part Ⅲ: MHEDYN, a General Code for Metal Flux Computation; Application to Simple and Fulvic Complexants
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Metal Flux and Dynamic Speciation at (Bio)lnterfaces. Part Ⅲ: MHEDYN, a General Code for Metal Flux Computation; Application to Simple and Fulvic Complexants

机译:(生物)界面处的金属通量和动态形态。第三部分:MHEDYN,金属通量计算通用规范;适用于简单和复杂的复合物

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Metal flux at consuming interfaces (e.g., sensors or microorganisms) is simulated in environmental multiligand systems using a new numerical code, MHEDYN (Multispecies HEterogeneous DYNamics), based on the lattice Boltzmann method. The attention is focused on the computation of the maximum flux of Cu(Ⅱ), that is, theflux controlled by diffusion-reaction in solution, irrespective of processes occurring at the interface. In parts Ⅲ and Ⅳ of this series,three types of typical environmental complexants are studied: (a) simple ligands (OH~- and CO_3~(2-)), (b) fulvic or humic substances including many sites with broadly varying rate constants, and (c) aggregates including a broad range of sizes and diffusion coefficients. Part III focuses on computations in the presence of simple ligands and fulvic/ humic substances separately, and part Ⅳ discusses the case of aggregate complexes alone and the mixtures of all ligands in typical natural waters. These papers describe the dynamic contribution of the various types of sites for fulvic and aggregate Cu(Ⅱ) complexes for the first time. Whenever possible, the metal fluxes computed by MHEDYN are compared with those given by another code, FLUXY, based on a fully different mathematical approach, and very good agreement between these codes is obtained. In all cases, MHEDYN computes the concentration profile of each complex and its time evolution, as well as the steady-state flux and the corresponding contribution of each complex to the flux. The metal fluxes can be computed at a planar consuming surface such as an organism or a sensor surface, in presence of an unlimited number of complexation reactions of the metal M, and for any metal/ ligand concentration ratio, with values of the physicochemical parameters ranging over many orders of magnitude.
机译:消费界面(例如传感器或微生物)处的金属通量在环境多配体系统中使用新的数字代码MHEDYN(多物种异质动态)基于格子Boltzmann方法进行模拟。注意力集中在Cu(Ⅱ)的最大通量的计算上,即溶液中扩散反应控制的通量,与界面处发生的过程无关。在该系列的第三部分和第四部分中,研究了三种类型的典型环境络合剂:(a)简单的配体(OH〜-和CO_3〜(2-)),(b)黄腐或腐殖质物质,包括许多位置变化很大的位置常数,以及(c)包含各种尺寸和扩散系数的集合。第三部分着重于分别存在简单配体和黄腐/腐殖质的情况下的计算,第四部分讨论了在典型的天然水中单独存在聚集复合物和所有配体混合物的情况。这些论文首次描述了不同类型位点对黄腐和聚集Cu(Ⅱ)配合物的动态贡献。在完全可能的数学方法的基础上,将MHEDYN计算的金属通量与另一个代码FLUXY给出的金属通量进行比较,并在这些代码之间获得非常好的一致性。在所有情况下,MHEDYN都会计算出每种络合物的浓度分布及其时间演化,以及稳态通量以及每种络合物对通量的相应贡献。可以在不限数量的金属M络合反应存在的情况下,对于任何金属/配体浓度比,在平面消耗表面(例如生物体或传感器表面)上计算金属通量,其理化参数值范围为在多个数量级上。

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