Process for preducing mixed electrolyzed water

a technology of electrolyzed water and process, which is applied in the direction of water/sewage treatment by electrochemical methods, instruments, water treatment water, etc., can solve the problems of deteriorating reducing power, too low dissociation ratio, and inability to use ascorbic acid as electrolytic aid, etc., to achieve effective mixing, and improve the ability to dismutate superoxide radical

Inactive Publication Date: 2006-03-30
MIKUNI CORP +1
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Benefits of technology

[0015] We have intensely attempted to solve the above problem, and have finally found that when mixing an anodic electrolyzed water with a cathodic electrolyzed water, oxygen generated in an anode side and hydrogen generated in a cathode side quickly react to form water so that oxidation of ascorbic acid actually fails to occur. Furthermore, it has been found that these electrolyzed waters can be effectively mixed by selecting a inter-electrode distance not more than a certain value; that thus a mixed electrolyzed water having improved ability of dismutating superoxide radical can be effectively prepared; and further that there is no need to discharge a cathodic electrolyzed water as waste.
[0016] Based on the above findings, this invention has been achieved. An objective of this invention is to provide a process for preparing a mixed electrolyzed water having improved ability to dismutate superoxide radical.
[0017] Since a raw electrolysis water comprising an organic electrolyte as an electrolysis aid is electrolyzed and resulting an anodic and a cathodic electrolyzed waters are mixed in this invention, the mixed electrolyzed water thus obtained has a lower DO and improved ability to dismutate superoxide radical. The mixed electrolyzed water can be, therefore, conveniently used in a variety of applications such as sterilization, disinfection, granulation, health maintenance and cosmetic applications. Furthermore, since an anodic and a cathodic electrolyzed waters are prepared as a mixture in this preparation process, it requires a simpler manufacturing apparatus in comparison with a conventional process where an electrolyzed water in one electrode side is taken out. Additionally, since as an organic electrolyte, this invention employs a vitamin, ascorbic acid whose safety to a human body has been established, the cathodic electrolyzed water prepared using the vitamin as an electrolysis aid is also quite safe.

Problems solved by technology

In an alkaline range, although the OH at 2-position is dissociated into —O− and H+, its dissociation ratio is too low to allow ascorbic acid to be used as an electrolytic aid.
It is, however, well-known that ascorbic acid undergoes autoxidation in an aqueous solution, leading to deteriorated reducing power.

Method used

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  • Process for preducing mixed electrolyzed water
  • Process for preducing mixed electrolyzed water
  • Process for preducing mixed electrolyzed water

Examples

Experimental program
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Effect test

example 1

[0069] A raw electrolysis water containing ascorbic acid (AsA) was electrolyzed using an electrolysis apparatus shown in FIG. 2.

[0070] In an electrolytic bath was placed a pair of electrodes which are a 10×10 cm titanium plate coated with platinum. An inter-electrode distance was 2 mm. The electrolytic bath was a rectangular solid with a size of 11 cm (length)×5 cm (width)×12 cm (height). A 30 mM aqueous solution of AsA was prepared and 600 mL of the solution was charged in the electrolytic bath. While stirring the aqueous AsA solution, a current of 0.25 A was applied to the electrodes to conduct electrolysis. Electrolysis was conducted while alternating polarity at an interval of 30 sec after the initiation of electrolysis. Table 1 shows pH, a oxidation-reduction potential (ORP), a dissolved oxygen content (DO) and an electrical conductivity (EC) of the mixed electrolyzed water generated by electrolysis. Mixed electrolyzed water generated at various electrolysis times were netrali...

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Abstract

This invention discloses a process for preparing a mixed electrolyzed water consisting of a cathodic and an anodic electrolyzed waters comprising the step of electrolyzing an aqueous solution of an organic electrolyte containing a water-soluble inorganic salt in less than 0.1 mM and an organic electrolyte in 1 to 50 mM which is fed into a non-diaphragm electrolytic bath comprising at least a pair of inactive electrodes separated from each other by an inter-electrode distance of 2 mm or less, wherein the aqueous solution of an organic electrolyte with pH equal to that of the mixed electrolyzed water prepared by electrolysis is neutralized with a titration volume less than that for the raw aqueous solution in neutralization titration with an aqueous solution of sodium hydroxide or has a higher dismutation activity to superoxide radical per mole than the raw aqueous solution.

Description

TECHNICAL FIELD [0001] This invention relates to a process for preparing a mixed electrolyzed water consisting of an anodic and a cathodic electrolyzed waters, which is capable of dismutating superoxide radical. In particular, this invention relates to a process for preparing a mixed electrolyzed water capable of dismutating superoxide radical, comprising electrolyzing an aqueous organic electrolyte solution containing virtually only an organic water-soluble electrolyte such a ascorbic acid as an electrolyte. BACKGROUND OF THE INVENTION [0002] It has been well-known that using an electrolytic bath within which inactive electrodes made of platinum or a platinum alloy are placed via a diaphragm, aqueous dilute electrolyte solution of an alkali-metal chloride is electrolyzed, followed by removing an anodic electrolyzed water (acidic water) with a lower pH generated in the anodic side, which can be utilized for sterilization or disinfection. Examples of a diaphragm used include a charge...

Claims

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Application Information

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Patent Type & Authority Applications(United States)
IPC IPC(8): C25C1/02C02F1/46C02F1/461C02F1/467
CPCC02F1/46109C02F1/4672C02F2103/026C02F2201/4618C02F2303/04C02F2209/05C02F2209/06C02F2209/22C02F2209/04C02F1/461C02F1/467
Inventor HANAOKA, KOKICHI
Owner MIKUNI CORP
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