HYDROGEN WATER GENERATOR, MICRO/NANO HYDROGEN BUBBLE WATER GENERATOR AND MICRO/NANO HYDROGEN BUBBLE PRODUCTION WATER METHOD
20200108359 · 2020-04-09
Inventors
Cpc classification
B01F23/2323
PERFORMING OPERATIONS; TRANSPORTING
B01F25/31242
PERFORMING OPERATIONS; TRANSPORTING
B01F2215/0431
PERFORMING OPERATIONS; TRANSPORTING
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
B01F2215/0422
PERFORMING OPERATIONS; TRANSPORTING
B01F23/2373
PERFORMING OPERATIONS; TRANSPORTING
C02F1/003
CHEMISTRY; METALLURGY
B01F23/232
PERFORMING OPERATIONS; TRANSPORTING
C02F2103/026
CHEMISTRY; METALLURGY
B01F25/53
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present disclosure illustrates a hydrogen water generator, a micro/nano hydrogen bubble water generator and a micro/nano hydrogen bubble water production method. The hydrogen water generator of the present disclosure receives water and hydrogen gas, and five sections are formed inside the main body of the hydrogen water generator, so as to mix the hydrogen gas and the water to produce hydrogen water, without using a compressor to pressure the hydrogen gas. The water flows to a pressuring section via a liquid input section, and is pressured by a pressuring section and the pressured water further flows to a draining and mixing section to be mixed with the hydrogen gas. The water mixed with hydrogen gas flows to a decompressing section to be decompressed, and then passes a hydrogen water output section to output hydrogen water with micro/nano hydrogen bubbles.
Claims
1. A hydrogen water generator, having a main body of a substantial T shape, a liquid input end and a hydrogen water output end are respectively disposed on two opposite ends of the main body, and a hydrogen gas input end is disposed between the liquid input end and the hydrogen water output end, wherein, beginning from the liquid input end to the hydrogen water output end, a liquid input section, a pressuring section, a draining and mixing section, a decompressing section and a hydrogen water output section are sequentially formed in the main body, a hydrogen gas input section is formed between the hydrogen gas input end and the draining and mixing section, and a portion which the hydrogen gas input section is connected to the draining and mixing section forms a hydrogen gas inlet; wherein a ratio of a diameter of the liquid input section over a diameter of the draining and mixing section is about 1.5 through 5, and a diameter of the hydrogen water output section is larger than a diameter of the draining and mixing section, a ratio of a length of the draining and mixing section over the diameter of the draining and mixing section is about 1.5 through 5, an inner wall tilting angel of the pressuring section is about 10 through 50 degrees, an inner wall tilting angel of the decompressing section is about 10 through 50 degrees, a ratio of the inner wall tilting angel of the pressuring section over the inner wall tilting angel of the decompressing section is about 1 through 5, wherein a ratio of the diameter of the liquid input section over a diameter of the hydrogen gas inlet is about 3.25 through 650.
2. The hydrogen water generator according to claim 1, wherein the ratio of the diameter of the liquid input section over the diameter of the draining and mixing section is about 2 through 4.
3. The hydrogen water generator according to claim 1, wherein the ratio of the length of the draining and mixing section over the diameter of the draining and mixing section is about 2 through 4.
4. The hydrogen water generator according to claim 1, wherein the inner wall tilting angel of the pressuring section is about 16 through 25 degrees.
5. The hydrogen water generator according to claim 1, wherein the inner wall tilting angel of the decompressing section is about 14 through 25 degrees.
6. The hydrogen water generator according to claim 1, wherein the ratio of the inner wall tilting angel of the pressuring section over the inner wall tilting angel of the decompressing section is about 1 through 1.5.
7. A micro/nano hydrogen bubble water generator, at least comprising a hydrogen gas production device, a water supply device and a hydrogen water generator, the hydrogen water generator comprises a main body, a liquid input end and a hydrogen water output end are respectively disposed on two opposite ends of the main body, and a hydrogen gas input end is disposed between the liquid input end and the hydrogen water output end, wherein, beginning from the liquid input end to the hydrogen water output end, a liquid input section, a pressuring section, a draining and mixing section, a decompressing section and a hydrogen water output section are sequentially formed in the main body, a hydrogen gas input section is formed between the hydrogen gas input end and the draining and mixing section, and a portion which the hydrogen gas input section is connected to the draining and mixing section forms a hydrogen gas inlet; wherein the liquid input end of the hydrogen water generator is connected to the water supply device, the hydrogen gas input end of the hydrogen water generator is connected to the hydrogen gas production device, after water provided by the water supply device flows to the pressuring section via the liquid input section, and is pressured by the pressuring section, the water further flows to the draining and mixing section to be mixed with hydrogen gas which passes the hydrogen gas input section, and after the water mixed with the hydrogen gas passes the decompressing section, and decompressed by the decompressing section, the water is output via the hydrogen water output section and the hydrogen water output end, so as to produce hydrogen water with micro/nano hydrogen bubbles.
8. The micro/nano hydrogen bubble water generator according to claim 7, wherein the water supply device comprises a housing, a water supply tank, a water pump and a water outlet device, the housing is provided to accommodate the hydrogen gas production device, the hydrogen water generator, the water supply tank and the water pump, a water inlet end of the water pump is connected to the water supply tank, a water outlet end of the water pump is connected to the liquid input end of the hydrogen water generator, and the hydrogen water output end of the hydrogen water generator is disposed corresponding to a hydrogen water tank in the housing, wherein the water outlet device is connected to the hydrogen water tank.
9. The micro/nano hydrogen bubble water generator according to claim 7, wherein the water supply device comprises a housing, a water supply tank, a water pump and a water outlet device, the housing is provided to accommodate the hydrogen gas production device, the hydrogen water generator, the water supply tank and the water pump, a water inlet end of the water pump is connected to the water supply tank, a water outlet end of the water pump is connected to the liquid input end of the hydrogen water generator and the water outlet device of the housing, and the hydrogen water output end of the hydrogen water generator is connected to the water supply tank.
10. The micro/nano hydrogen bubble water generator according to claim 7, wherein the hydrogen gas production device comprises a liquid/gas separation module, a proton exchange membrane based hydrogen production module, a power supply and control circuit module and a filter module, the proton exchange membrane based hydrogen production module and the liquid/gas separation module are connected to the filter module, and the liquid/gas separation module is connected to the hydrogen gas input end of the hydrogen water generator.
11. The micro/nano hydrogen bubble water generator according to claim 10, wherein the filter module further comprises a main filter body, a water inlet is disposed on a top portion of the main filter body, a water outlet is disposed on a bottom portion of the filter body, a plurality of nuclear-grade resin filter bodies are disposed in the main filter body, after the water being not filtered flows to the water inlet, and the nuclear-grade resin filter body absorbs impurity of the water and decreases conductivity of the water, the filtered water is supplied to the proton exchange membrane based hydrogen production module.
12. The micro/nano hydrogen bubble water generator according to claim 11, wherein the main filter body further comprises a water inlet cover connected to a water supply end, the water inlet cover further comprises the water inlet; the main filter body further comprises an outer ring body, an inner ring body and a spacing unit, the outer ring body further has an installation space which is provided to combine the inner ring body and the spacing unit, the water outlet is disposed on a bottom portion of the outer ring body, and the water inlet cover is connected to a top portion of the outer ring body; the inner ring body is disposed on the space unit and combined with interior of the installation space, and the spacing unit separates the inner ring body and the outer ring body with a distance; drip holes are disposed on a bottom portion of the inner ring body, the inner ring body is correspondingly combined with a filter fixing plate, a first water filtering space is formed between the filter fixing plate and the water inlet cover, the filter fixing plate and the bottom portion of the inner ring body have a distance therebetween and thus a second water filtering space is formed, the nuclear-grade resin filter bodies are disposed in the second water filtering space.
13. The micro/nano hydrogen bubble water generator according to claim 12, wherein a ratio of a diameter of the outer ring body over a height of the outer ring body is less than 0.9.
14. The micro/nano hydrogen bubble water generator according to claim 12, wherein a diameter of the drip hole of the inner ring body is about 0.8 through 1.5 millimeters.
15. The micro/nano hydrogen bubble water generator according to claim 11, wherein the main filter body further comprises a water inlet cover connected to a water supply end, the water inlet cover further comprises the water inlet, a connection tube is disposed under the water inlet; the main filter body further comprises an outer ring body and an inner ring body; the outer ring body further comprises an installation space which is provided to combine the inner ring body, the water outlet is disposed on a bottom portion of the outer ring body, and further, the water inlet cover is connected to a top portion of the outer ring body; wherein the inner ring body is a spiral inner ring, and the spiral inner ring has a spiral tube, and a top portion of the spiral inner ring is connected to the connection tube, and interior of the spiral inner ring has the nuclear-grade resin filter bodies, a bottom portion of the spiral inner ring is communicated with the water outlet of the outer ring body; wherein the connection tube has a taper section for guiding.
16. A micro/nano hydrogen bubble water production method, at least comprising: liquid inputting step S11: using a liquid input end of a hydrogen water generator to receive water supplied from a water supply device, such that the water flows to a liquid input section of the hydrogen water generator; pressuring step S12: when water flows to a pressuring section of the hydrogen water generator via the liquid input section, pressuring the water by using the pressuring section, and making the pressured water flow to a draining and mixing section of the hydrogen water generator; draining step S13: draining hydrogen gas supplied from a hydrogen gas production device via a hydrogen gas input end of the hydrogen water generator, such that the hydrogen gas passes a hydrogen gas input section of the hydrogen water generator and flows to a draining and mixing section of the hydrogen water generator, thus draining the hydrogen gas into the water for mixing; decompressing step S14: when the water mixed with the hydrogen gas flows to a decompressing section of the hydrogen water generator via the draining and mixing section, decompressing the water with the hydrogen gas, by using the decompressing section, so as to generate hydrogen water with micro/nano hydrogen bubbles; and outputting step S15: outputting the hydrogen water with the micro/nano hydrogen bubbles by sequentially passing the hydrogen water output section of the hydrogen water generator and the hydrogen water output end.
17. The micro/nano hydrogen bubble water production method according claim 16, wherein the ratio of the diameter of the liquid input section over the diameter of the draining and mixing section is about 2 through 4.
18. The micro/nano hydrogen bubble water production method according claim 16, wherein the ratio of the length of the draining and mixing section over the diameter of the draining and mixing section is about 2 through 4.
19. The micro/nano hydrogen bubble water production method according claim 16, wherein the inner wall tilting angel of the pressuring section is about 16 through 25 degrees; the inner wall tilting angel of the decompressing section is about 14 through 25 degrees.
20. The micro/nano hydrogen bubble water production method according claim 16, wherein the ratio of the inner wall tilting angel of the pressuring section over the inner wall tilting angel of the decompressing section is about 1 through 1.5.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0038] The accompanying drawings are included to provide a further understanding of the present disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments of the present disclosure and, together with the description, serve to explain the principles of the present disclosure.
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
DESCRIPTION OF THE EXEMPLARY EMBODIMENTS
[0049] To understand the technical features, content and advantages of the present disclosure and its efficacy, the present disclosure will be described in detail with reference to the accompanying drawings. The drawings are for illustrative and auxiliary purposes only and may not necessarily be the true scale and precise configuration of the present disclosure. Therefore, the scope of the present disclosure should not be limited to the scale and configuration of the attached drawings.
[0050] The hydrogen water generator of the present disclosure can drain hydrogen gas by a draining force which is generated since the liquid flows to a pipe with a smaller section area from a pipe with a larger section area, and hit the hydrogen gas molecule groups to divide into micro/nano bubbles by the liquid flowing speed, such that the hydrogen gas and the liquid can have a better liquid/gas mixing effect to prepare the hydrogen water. Referring to
[0051] When the hydrogen water generator 10 is used to prepare the hydrogen water HW, the liquid input end 111 receives the water W, and the water W flows to the liquid input section A. Then, while the water W flows to the pressuring section B via the liquid input section A, the pressuring section B pressures the water W, and then the water W further flows to the draining and mixing section C. Since the water W flows from a pipe with a larger section area to a pipe with a smaller section area, a draining force is thus induced to drain the hydrogen gas H flowing to the hydrogen gas inlet F1 of the hydrogen gas input section F into the water W. Meanwhile, the flowing speed of the water W can hit the gas molecule groups of the hydrogen gas H to divide into micro/nano hydrogen bubbles, and thus the hydrogen gas H can be mixed with the water in the draining and mixing section C. Next, the water W mixed with the hydrogen gas H passes the decompressing section D and decompressed by the decompressing section D, and then the hydrogen water HW with the micro/nano hydrogen bubbles can be output via the hydrogen water output section E and the hydrogen water output end 112.
[0052] The diameter D1 of the liquid input section A and the diameter D2 of the hydrogen water output section E are larger than the diameter D4 of the draining and mixing section C. A ratio of the diameter D1 of the liquid input section A over the diameter D4 of the draining and mixing section C is about 1.5 through 5, and preferably, 2 through 4. A ratio of the length L of the draining and mixing section C over the diameter D4 of the draining and mixing section C is about 1.5 through 5, and preferably, 2 through 4. The inner wall tilting angle 1 of the pressuring section B is about 10 through 50 degrees, and preferably, 16 through 25 degrees. The inner wall tilting angle 2 of the decompressing section D is about 10 through 50 degrees, and preferably, 14 through 25 degrees. A ratio of the inner wall tilting angle 1 of the pressuring section B over the inner wall tilting angle 2 of the decompressing section D is about 1 through 5, and preferably, 1 through 1.5. A ratio of the diameter D1 of the liquid input section A over the diameter D3 of the hydrogen gas inlet F1 is about 3.25 through 650. The diameter D3 of the hydrogen gas inlet F1 can be 0.1 through 2 millimeters, and preferably, 0.4 through 1.5 millimeters.
[0053] Moreover, referring to
[0054] Further, referring to
[0055] Further, referring to
[0056] Further, referring to
[0057] Referring to
[0058] Liquid inputting step S11: using a liquid input end 111 of a hydrogen water generator 10 to receive water W supplied from a water supply device, such that the water W flows to a liquid input section A of the hydrogen water generator 10.
[0059] Pressuring step S12: when water W flows to a pressuring section B of the hydrogen water generator 10 via the liquid input section A, pressuring the water W by using the pressuring section B, and making the pressured water W flow to a draining and mixing section C of the hydrogen water generator 10.
[0060] Draining step S13: draining hydrogen gas H supplied from a hydrogen gas production device 20 via a hydrogen gas input end 113 of the hydrogen water generator 10, such that the hydrogen gas H passes a hydrogen gas input section F of the hydrogen water generator 10 and flows to a draining and mixing section C of the hydrogen water generator 10, thus draining the hydrogen gas H into the pressured water W for mixing the hydrogen gas H and hitting the hydrogen gas molecule groups.
[0061] Decompressing step S14: when the water W mixed with the hydrogen gas H flows to a decompressing section D of the hydrogen water generator 10 via the draining and mixing section C, decompressing the water W with the hydrogen gas H, by using the decompressing section D, so as to generate hydrogen water HW with micro/nano hydrogen bubbles.
[0062] Outputting step S15: outputting the hydrogen water HW with the micro/nano hydrogen bubbles by sequentially passing the hydrogen water output section E of the hydrogen water generator 10 and the hydrogen water output end 112.
[0063] Specifically, in the present disclosure, by changing the section areas of the inner structure of the hydrogen water generator, the liquid is pressured, and the hydrogen gas is drained into the liquid. Meanwhile, the liquid flowing speed can hit the hydrogen gas molecule groups, and thus, without additional pressuring of the compressor, the amount of the micro/nano hydrogen bubble water is produce from the hydrogen gas, and quickly dissolved in the liquid. Since the micro/nano hydrogen bubble water has the better mass transfer and slower dissipation, the reservation time of the hydrogen gas in the hydrogen water can be increased.
[0064] Next, referring to
[0065] Referring to
[0066] As shown in
[0067] As shown in
[0068] Referring to
[0069] In the following table, after the water passes the above filter module, the measured data of the water is obtained as follows.
TABLE-US-00001 conductivity conductivity decre- initial before after 6 hours ment water conductivity placed decrement elapse ratio source (uS/cm) (uS/cm) ratio (%) (uS/cm) (%) tap 220.0 7.21 96.72 1.45 99.34 water
Therefore, from the columns of decrement ratios of the above table, it is obvious that the filter module can decrease the conductivity of the water, and the filtered water can be the same as the pure water.
[0070] The above-mentioned descriptions represent merely the exemplary embodiment of the present disclosure, without any intention to limit the scope of the present disclosure thereto. Various equivalent changes, alternations or modifications based on the claims of present disclosure are all consequently viewed as being embraced by the scope of the present disclosure.