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  2. Chloralkali process - Wikipedia

    en.wikipedia.org/wiki/Chloralkali_process

    At the cathode (C), water is reduced to hydroxide and hydrogen gas. The net process is the electrolysis of an aqueous solution of NaCl into industrially useful products sodium hydroxide (NaOH) and chlorine gas. Saturated brine is passed into the first chamber of the cell.

  3. Castner–Kellner process - Wikipedia

    en.wikipedia.org/wiki/Castner–Kellner_process

    The first type, shown on the right and left of the diagram, uses an electrolyte of sodium chloride solution, a graphite anode (A), and a mercury cathode (M). The other type of cell, shown in the center of the diagram, uses an electrolyte of sodium hydroxide solution, a mercury anode (M), and an iron cathode (D). The mercury electrode is common ...

  4. Electrolysed water - Wikipedia

    en.wikipedia.org/wiki/Electrolysed_water

    An AA battery in a glass of tap water with salt showing hydrogen produced at the negative terminal. Electrolysed water (also electrolyzed water, EOW, ECA, electrolyzed oxidizing water, electro-activated water, super-oxidized solution or electro-chemically activated water solution) is produced by the electrolysis of ordinary tap water containing dissolved sodium chloride. [1]

  5. Electrochlorination - Wikipedia

    en.wikipedia.org/wiki/Electrochlorination

    A low voltage DC current is applied, electrolysis happens producing sodium hypochlorite and hydrogen gas (H 2). The solution travels to a tank that separates the hydrogen gas based on its low density. [1] Only water and sodium chloride are used. The simplified chemical reaction is: NaCl + H 2 O + energy → NaOCl + H 2 [citation needed]

  6. Electrolytic cell - Wikipedia

    en.wikipedia.org/wiki/Electrolytic_cell

    Sodium chloride that has been dissolved in water can also be electrolyzed. The anode oxidizes the chloride ions (Cl −), and produces chlorine (Cl 2) gas. However, at the cathode, instead of sodium ions being reduced to sodium metal, water molecules are reduced to hydroxide ions (OH −) and hydrogen gas (H 2).

  7. Electrolyte - Wikipedia

    en.wikipedia.org/wiki/Electrolyte

    Molten salts can also be electrolytes as, for example, when sodium chloride is molten, the liquid conducts electricity. In particular, ionic liquids, which are molten salts with melting points below 100 °C, [ 15 ] are a type of highly conductive non-aqueous electrolytes and thus have found more and more applications in fuel cells and batteries.

  8. Overpotential - Wikipedia

    en.wikipedia.org/wiki/Overpotential

    An example is the electrolysis of an aqueous sodium chloride solution—although oxygen should be produced at the anode based on its potential, bubble overpotential causes chlorine to be produced instead, which allows the easy industrial production of chlorine and sodium hydroxide by electrolysis.

  9. Downs cell - Wikipedia

    en.wikipedia.org/wiki/Downs_cell

    The Downs cell uses a carbon anode and an iron cathode.The electrolyte is sodium chloride that has been heated to the liquid state. Although solid sodium chloride is a poor conductor of electricity, when molten the sodium and chloride ions are mobilized, which become charge carriers and allow conduction of electric current.