College of Water Sciences, Beijing Normal University, Beijing 100875, China.
Water Sci Technol. 2013;67(8):1873-9. doi: 10.2166/wst.2013.069.
A Pd/C gas-diffusion cathode which generated H2O2 through a two-electron reduction process of fed oxygen molecule was used to degrade 4-chlorophenol in an undivided electrolysis device. The kinetics of 4-chlorophenol degradation has been investigated by the electrochemical oxidation processes. By inspecting the relationship between the rate constants (k) and influencing factors, using first-order kinetics to describe the electrochemical oxidation process of 4-chlorophenol, a kinetic model of 4-chlorophenol degradation process was proposed to calculate the 4-chlorophenol effluent concentration: C = C0 exp( -3:76 × 10(-6) C(-0.5)0 J(2) M(-0.7) Q(0.17) Dt). It was found that the electrocatalytic degradation rate of 4-chlorophenol was affected by current density, electrode distance, air-feeding rate, electrolyte concentration and initial 4-chlorophenol concentration. The kinetics obtained from the experiments under corresponding electrochemical conditions could provide an accurate estimation of 4-chlorophenol effluent concentration and lead to better design of the electrochemical reactor.
使用通过 fed 氧分子的两电子还原过程产生 H2O2 的 Pd/C 气体扩散阴极,在非分隔电解设备中降解 4-氯苯酚。通过电化学氧化过程研究了 4-氯苯酚降解的动力学。通过检查速率常数(k)和影响因素之间的关系,使用一级动力学来描述 4-氯苯酚的电化学氧化过程,提出了 4-氯苯酚降解过程的动力学模型来计算 4-氯苯酚的流出浓度:C = C0 exp( -3:76 × 10(-6) C(-0.5)0 J(2) M(-0.7) Q(0.17) Dt)。结果表明,电流密度、电极距离、空气进料率、电解质浓度和初始 4-氯苯酚浓度都会影响 4-氯苯酚的电催化降解速率。在相应的电化学条件下进行实验获得的动力学数据可以对 4-氯苯酚流出浓度进行准确估计,并有助于更好地设计电化学反应器。