Hydrogen water generator
10457575 ยท 2019-10-29
Assignee
Inventors
Cpc classification
C02F2201/46165
CHEMISTRY; METALLURGY
Y02E60/36
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
C02F2201/46105
CHEMISTRY; METALLURGY
C02F2001/4619
CHEMISTRY; METALLURGY
C02F1/4618
CHEMISTRY; METALLURGY
C02F2103/02
CHEMISTRY; METALLURGY
International classification
Abstract
The present invention provides a hydrogen water generator capable of efficiently generating hydrogen with a structure in which anode electrode(s) and cathode electrode(s) are arranged in a container in an approximately vertical direction. The electrode portion 4 which includes two or more of anode electrodes 4A or cathode electrodes 4B is supported by a generator body cover portion 2. The generator body cover portion 2 is held and the electrode portion 4 is immersed in drinking water in a beverage container 12 such as a cup. Then, electrolysis is caused owing to that a controller 11 applies voltage obtained by boosting supply voltage from a battery 8 to the electrode portion 4 for a predetermined time. At this time, since a plurality of energizing paths between the anode electrode(s) and the cathode electrode(s) are formed, hydrogen can be effectively generated in the drinking water.
Claims
1. A hydrogen water generator comprising: a beverage container for storing water; an electrode portion including five electrodes having anode and cathode electrodes and being arranged in parallel approximately vertically in the beverage container, wherein one of the electrodes is arranged at a center of four of the electrodes arranged to form a square shape as viewed in a horizontal plane while the electrodes having polarization different from the electrode at the center are arranged at two ends of one diagonal line passing through the electrode at the center, and the electrodes having polarization same as the electrode at the center are arranged at two ends of another diagonal line passing through the electrode at the center; a supporting portion that supports the electrode portion; a battery that is stored in the supporting portion; and a controller that controls voltage to be applied to the electrode portion for a predetermined time, the voltage being obtained by boosting battery voltage supplied from the battery, wherein the controller mutually switches the polarization of the electrodes at the two ends of the one diagonal line, to be different from the polarization at the center and at two ends of the another diagonal line.
2. The hydrogen water generator according to claim 1, wherein the controller controls energizing time to the electrode portion in accordance with a quantity of drinking water stored in the beverage container.
3. The hydrogen water generator according to claim 1, wherein the controller performs controlling to boost the voltage to 20 V and to supply constant current to the electrode portion.
4. The hydrogen water generator according to claim 3, wherein adjacent anode and cathode electrodes are arranged in a distance of 0.8 mm.
5. The hydrogen water generator according to claim 1, further comprising a cap portion detachably attached to the supporting portion, wherein the cap portion covers and protects the electrode portion as being joined to the supporting portion.
6. The hydrogen water generator according to claim 1, wherein each of the five electrodes is formed in a screw shape.
7. The hydrogen water generator according to claim 1, further comprising: a first generating switch arranged on the supporting portion and operated to apply the voltage to the electrode portion to cause electrolysis for a first energizing time, a second generating switch arranged on the supporting portion and operated to apply the voltage to the electrode portion to cause the electrolysis for a second energizing time less than the first energizing time, and a display arranged on the supporting portion and including first and second hydrogen water capacity displaying portions, wherein when the beverage container stores the water equal to or more than a predetermined quantity and the electrode portion is immersed into the water of the beverage container, the first generating switch is operated to apply the voltage for the first energizing time and the display portion displays the first hydrogen water capacity displaying portion, and when the beverage container stores the water less than the predetermined quantity and the electrode portion is immersed into the water of the beverage container, the second generating switch is operated to apply the voltage for the second energizing time and the display portion displays the second hydrogen water capacity displaying portion.
8. The hydrogen water generator according to claim 7, wherein the electrodes at the two ends of the one diagonal line are the cathode electrodes, and the electrodes at the two ends of the another diagonal line and the electrode at the center are the anode electrodes, and the controller switches the cathode electrodes at the two ends of the one diagonal line to the anode electrodes, and mutually switches the anode electrodes at the two ends of the another diagonal line and the anode electrode at the center to the cathode electrodes.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(10) In the following, a hydrogen water generator according to the present invention will be described with reference to the drawings.
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(12) A liquid crystal display portion 5 and a switch portion 6 which includes two types of generating switches 6A, 6B are arranged at a front face of the generator body cover portion 2. As illustrated in
(13) In
(14) The electrode portion 4 includes four electrodes being two anode electrodes and two cathode electrodes. The four electrodes are arranged in parallel having an equal distance. As illustrated in the plane view of
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(16) The controller 11 performs energizing control to the electrode portion 4 which is put into water to cause electrolysis when the generating switch 6A or 6B of the switch portion 6 is operated. At this time, the controller 11 varies energizing time in accordance with the operated generation switch 6A, 6B and controls the display of the hydrogen water capacity displaying portions 53, 54 of the display portion 5 corresponding to the operated switch.
(17) Further, during energizing the electrode portion 4, the controller 11 performs constant current control in which the constant current portion 12 constantly supplies constant current to the electrode portion 4 so that constant electrolysis is maintained without being influenced by the difference of water quality where the electrode portion 4 is put in, in particular, without being influenced by water containing much salt. At this time, the boosting portion 13 boosts the battery voltage from 3.7 V or 7.4 V to 20 V and applies the boosted voltage to the electrode portion 4. Accordingly, it is preferable that the generator body cover portion 2 is made of resin material having heat resistance of at least 100 degrees.
(18) In addition, the controller 11 has a function to display remaining quantity of the battery 8 in three levels on the battery remaining quantity displaying portion 51 through monitoring the remaining quantity of the battery 8, and a function to display a sign to urge electrode replacement on the electrode replacement displaying portion 52 when the number of times of energizing to the electrode portion 4 reaches a predetermined number such as 1000 times while counting the total number of times of energizing.
(19) When energizing to the electrode portion 4 is performed to cause electrolysis, there occurs a phenomenon that metal material is slightly eluted out from the anode electrode 4A to the cathode electrode 4B. Then, the lifetime of the anode electrode is gradually shortened. Here, the electrodes of the electrode portion 4 are structured to be capable of being switched to anode or cathode, respectively. The controller 11 controls the polarization switching portion 14 to switch the polarization of the electrodes on a regular basis or each time electrolysis is started. Thus, the lifetime of the electrodes is uniformed.
(20) Operation of the hydrogen water generator 1 with the above configuration will be described. To generate hydrogen water, it is required to detach the generator body cap portion 3, hold the generator body cover portion 2 supporting the electrode portion 4, and immerse the electrode portion 4 in drinking water in a beverage container 20 such as a cup, as illustrated in
(21) When voltage is applied to the electrode portion 4, electrolysis of the drinking water in the beverage container 20 is caused, so that the generated hydrogen ions are gathered to the cathode electrode 4B. The hydrogen ions gathered to the cathode electrode 4B receive electrons from the cathode electrode 4B, so that hydrogen atoms exist around the cathode electrode 4B. The hydrogen atoms bonded with each other become to hydrogen molecules and hydrogen water is generated.
(22) With four electrodes being two anode electrodes 4A and two cathode electrodes 4B arranged, energization occurs between one cathode electrode 4B and two anode electrodes 4A through electrolysis. Accordingly, compared to the configuration in which two electrodes being one anode electrode 4A and one cathode electrode 4B are arranged, quantity of hydrogen in the drinking water can be increased as shown as the actual measured value of hydrogen concentration in
(23) There are various configurations for forming a plurality of energizing paths between the anode electrode(s) and the cathode electrode(s) in the drinking water. As illustrated in
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(25) Hydrogen can be efficiently generated as well by arranging the electrodes of the electrode portion 4 to be shaped to have large contact area with the drinking water. Accordingly, it is preferable that the electrodes are shaped to have larger surface area than a rod shape. Further, both of surface area and length can be ensured by forming the electrodes in a screw shape, so that generating efficiency can be improved.
(26) Water such as tap water excepting distilled water is used as the drinking water in the beverage container 20 to cause electrolysis therethrough. It is preferable that mineral water containing mineral such as natrium, calcium, magnesium, and vanadium is used. Since mineral ions of the above are positive ions, the mineral ions are gathered to the cathode electrode 4B together with hydrogen ions when electrolysis is caused. As a result, hydrogen atoms and mineral atoms are bonded, so that vaporization of hydrogen can be prevented and hydrogen can be dissolved in the drinking water for a long term. In general, mineral water is commercially available in a plastic bottle. Here, long storage can be easily performed by closing a cap of the plastic bottle after causing electrolysis by inserting the electrode portion 4 through a mouth of the plastic bottle being the beverage container 20.
(27) The present invention is not limited to the embodiments described above, and various modifications can be applied to the embodiments based on the spirit of the present invention. Modified examples are not excluded from the technical scope of the present invention.
INDUSTRIAL APPLICABILITY
(28) The present invention relates to a hydrogen water generator capable of easily generating hydrogen water by generating hydrogen in water and is susceptible of industrial application.
REFERENCE SIGNS LIST
(29) 1 Hydrogen water generator
(30) 2 Generator body cover portion (supporting portion)
(31) 3 Generator body cap portion (cap portion)
(32) 4 Electrode portion
(33) 4A Anode electrode
(34) 4B Cathode electrode
(35) 8 Battery
(36) 11 Controller