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Titlebook: Electrochemical Cell Design; Ralph E. White Book 1984 Plenum Press, New York 1984 Chlor.chemical engineering.extraction.water

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楼主: 警察在苦笑
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Change in Overall Ohmic Resistance Due To Migration/Diffusion of Electrolytes, sulfosuccinate and zinc electrodes. If, now, both ions react at the electrodes, the potential difference should increase with time in most cases. When it decreases, the decrease is not pronounced. Moreover, then the potential difference decreases only up to a certain time after which it increases with time.
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Mathematical Model for Design of Battery Electrodes: Lead-Acid Cell Modelling,of cells where the discharge is limited by the positive electrode. The implication of the model is discussed with emphasis on the interactions between electrode design variations and cell performance.
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https://doi.org/10.1007/978-3-642-41981-2The gradual development of electrochemical chlor-alkali processes is described. The processes described are as follows: diaphragm, mercury and membrane. These processes are compared and various design and selection factors are given for a variety of membrane processes.
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Integrating Heterogenous ModelsA mathematical model describing a chloralkali-electrolysis in membrane cells including unusual flow pattern is presented. This paper discusses several influences like chemical reactions in the anolyte compartment, the behavior of a membrane during electrolysis and some other details which have to be taken into consideration.
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Design And Development Of Electrochemical Chlor-Alkali Cells,The gradual development of electrochemical chlor-alkali processes is described. The processes described are as follows: diaphragm, mercury and membrane. These processes are compared and various design and selection factors are given for a variety of membrane processes.
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https://doi.org/10.1007/978-1-4613-2795-0Chlor; chemical engineering; extraction; water
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Interpolation and Model Checking,bilities are based on occurrence of two strictly divided mass flows through the cell. Available designs include membrane gap and solid polymer electrolysis, in situ chemical conversions, use of gas diffusion electrodes, and processing cell cascades with co and countercurrent flows.(2,3,4).
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