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MgCl2-NaCl-KCl-CaCl2熔鹽體系中鐵離子的電極過程研究

Electrode Processes of Iron Species in a Melt MgCl2-NaCl-KCl-CaCl2

  • 摘要: 本工作用化學平衡法研究了本熔鹽體系中鐵離子的存在價態。證明:在Pc12→O時,FeCl3幾乎全部分解。在Pc12=1atm時,Fe(Ⅲ)/Fe(Ⅱ)=1.36(700℃)。溫度升高,Fe(Ⅲ)/Fe(Ⅱ)減小。
    用循環伏安法研究了鐵離子在本熔鹽體系中的電極反應的動力學特點。實驗證明,陰極反應Fe(Ⅱ)+2e→Fe(O)受離子擴散控制,其表觀活化能為12.9±2.4KJ/mol,Fe(Ⅱ)的擴散系數為(4.31±0.79)×10-5cm2/s。陽極反應Fe(Ⅱ)-e→Fe(Ⅲ)也受離子擴散控制,且其產物Fe(Ⅲ)隨即迅速分解。因此,鐵離子的交價對電解除鐵的電效影響不大。電解除鐵的實驗室實驗證實了上述結果,并找出:鎂與鐵共同析出是降低除鐵電效的主要原因;電解除鐵的較好條件為:700℃,陰極電流密度為0.2A/cm2,陰極區氯分壓應盡可能低。在這些條件下,電效可達70%。

     

    Abstract: The equilibrium of reaction FeCl2+\frac12Cl2 \mathbin\lower.3ex\hbox\buildrel\textstyle\rightarrow\over \smash\leftarrow\vphantom_\vbox to.5ex\vss FeCl3 in the melt has been studied. It has been shown that FeCl3 decomposes almost fully at Pc12→O, and that Fe(Ⅲ)/Fe(Ⅱ)=1.36 at PC12=latm and t=700℃. The higher the temperature, the smaller the ratio Fe(Ⅲ)/Fe(Ⅱ).
    The electrode kinetics of iron species in the melt has been studied by cyclic voltammetry. It has been found that the cathodic reaction Fe (Ⅱ) +2e→Fe(0) is controlled by diffusion of Fe(Ⅱ) in the melt, and that the apparent activity energy of the cathodic reaction is 12.9±4 KJ/mol, and the diffusion coefficient of Fe(Ⅰ)is (4.31 ±0.79) ×10-5cm2/s. Anodic reaction Fe(Ⅱ) -e→Fe(Ⅲ)is also controlled by diffusion and followed by a rapid chemical reaction Fe(Ⅲ) +Cl-→Fe(Ⅱ) + \frac12l2. So, the current efficiency for removing iron by electrolysis should not be effected considerably by the changes of oxidation states of iron species between cathodic and anodic compartment. The above results have been shown to be correct by electrolysis in Lab. scale. Co-deposition of mag-nsium is the main reason of low current efficiency for removing iron by electrolysis. Current efficiency can increase to 70% under following conditions:700℃ cathodic c. d. 0.2A/cm2 and PC12→0 in the cathodic compartment.

     

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