Literature DB >> 11902783

Methods for preparing synthetic freshwaters.

E J Smith1, W Davison, J Hamilton-Taylor.   

Abstract

Synthetic solutions that emulate the major ion compositions of natural waters are useful in experiments aimed at understanding biogeochemical processes. Standard recipes exist for preparing synthetic analogues of seawater, with its relatively constant composition, but, due to the diversity of freshwaters, a range of compositions and recipes is required. Generic protocols are developed for preparing synthetic freshwaters of any desired composition. The major problems encountered in preparing hard and soft waters include dissolving sparingly soluble calcium carbonate, ensuring that the ionic components of each concentrated stock solution cannot form an insoluble salt and dealing with the supersaturation of calcium carbonate in many hard waters. For acidic waters the poor solubility of aluminium salts requires attention. These problems are overcome by preparing concentrated stock solutions according to carefully designed reaction paths that were tested using a combination of experiment and equilibrium modeling. These stock solutions must then be added in a prescribed order to prepare a final solution that is brought into equilibrium with the atmosphere. The example calculations for preparing hard, soft and acidic freshwater surrogates with major ion compositions the same as published analyses, are presented in a generalized fashion that should allow preparation of any synthetic freshwater according to its known analysis.

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Year:  2002        PMID: 11902783     DOI: 10.1016/s0043-1354(01)00341-4

Source DB:  PubMed          Journal:  Water Res        ISSN: 0043-1354            Impact factor:   11.236


  10 in total

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3.  Photooxidation and subsequent biodegradability of recalcitrant tri-alkyl phosphates TCEP and TBP in water.

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7.  Controls of H2S, Fe2 +, and Mn2 + on Microbial NO3 --Reducing Processes in Sediments of an Eutrophic Lake.

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9.  The in situ Production of Aquatic Fluorescent Organic Matter in a Simulated Freshwater Laboratory Model.

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10.  Experimental modeling and optimization for the reduction of hexavalent chromium in aqueous solutions using ascorbic acid.

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  10 in total

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