摘要

Research efforts on the CuCl(aq)/HCl(aq) electrolyzer would greatly benefit from the ability to quantify the dissipative processes that undesirably increase the cell's applied potential, E-cell, which decreases its efficiency. To date, little is known about what impact further improvements to active surface area, extent of CuCI(aq) conversion and ohmic resistance would exactly have on the electrolyzer performance. To better understand how this electrolyzer can be improved, a model was developed to quantify and separate the effects of electrochemical kinetics, membrane transport and open circuit potential, E-OCP, on E-cell for a given current density. By employing data obtained from previous studies with electrochemical cells into the developed model, it was possible to calculate E-cell values that agreed with data collected from a lab scale electrolyzer using just one adjustable parameter, the Nernst diffusion layer at limiting current. The model was then used to identify the predicted E-cell contributions as a function of CuCI(aq) conversion, active electrode area and ohmic resistance. It was found that the extent of CuCI(aq) conversion can dramatically impact the electrolyzer electrode kinetics and E-OCP, More importantly, as CuCI(aq) conversion increased, the E-cell values needed consistently increased to keep the same current density. Overall, E-cell could be most readily reduced by improving R-ohm, whereas improvements to electrode kinetics have limited impacts.

  • 出版日期2016-2-1