Hydrogen Generating Device
20210269928 · 2021-09-02
Inventors
Cpc classification
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
C25B15/08
CHEMISTRY; METALLURGY
International classification
Abstract
Example embodiments relate to a hydrogen-generating device. One embodiment includes a system. The system includes at least one device for reducing a fuel consumption of a vehicle. The device includes an enclosure. The device also includes an inlet for bringing a fluid into the device. Further, the device includes an outlet to release the fluid from the device. In addition, the device includes a plurality of conductive plates arranged in the enclosure so as to define compartments. Still further, the device includes alternating lower openings and upper openings arranged to allow a flow of a fluid between the inlet and the outlet. The lower openings are offset from the upper openings in a second direction perpendicular to the first direction so that, when the second direction is a vertical direction, when the fluid moves up in a compartment, the fluid moves down in the next compartment.
Claims
1-16. (canceled)
17. A system comprising: at least one device for reducing a fuel consumption of a vehicle, wherein the at least one device comprises: an enclosure; an inlet for bringing a fluid into the device; an outlet to release the fluid from the device; a plurality of conductive plates arranged in the enclosure so as to define compartments, wherein the plurality of conductive plates comprises, in a first direction: a first end plate; intermediate plates; and a second end plate, and wherein the plurality of conductive plates comprises, in this order: the first end plate forming a first anode; intermediate plates at a floating electric potential; an intermediate plate forming a first cathode; intermediate plates at a floating electric potential; an intermediate plate forming a second anode; intermediate plates at a floating electric potential; and the second end plate forming a second cathode; and alternating lower openings and upper openings arranged to allow a flow of a fluid between the inlet and the outlet, wherein a fluidic passage between two consecutive compartments is possible only through one or more lower openings or through one or more upper openings, and wherein the lower openings are offset from the upper openings in a second direction perpendicular to the first direction so that, when the second direction is a vertical direction, when the fluid moves up in a compartment, the fluid moves down in the next compartment; a pump arranged to circulate a fluid between the inlet and the outlet; an electricity supply device connected to the anodes and to the cathodes; a combustion device; and a fluidic communication means connecting the outlet to an inlet of the combustion device.
18. The system according to claim 17, wherein the lower openings and the upper openings comprise holes passing through the intermediate conductive plates.
19. The system according to claim 17, wherein the lower openings and the upper openings comprise a hole passing through the first end plate and a hole passing through the second end plate.
20. The system according to claim 17, wherein the lower openings and the upper openings are slits.
21. The system according to claim 20, wherein each of the conductive plates comprises a single slit only.
22. The system according to claim 20, wherein the slits are formed across between 70% and 95% of a width of a conductive plate.
23. The system according to claim 17, wherein two consecutive conductive plates are kept apart by a gasket or a spacer.
24. The system according to claim 17, wherein all of the conductive plates of the plurality of conductive plates are rectangular in shape and elongated in the second direction.
25. The system according to claim 17, wherein all of the conductive plates of the plurality of conductive plates are made of the same material.
26. The system according to claim 25, wherein the fluidic communication means comprises a filtration device.
27. The system according to claim 26, wherein the fluidic communication means comprises a backflow preventing device.
28. A vehicle comprising the system according to claim 17.
29. The vehicle comprising the system according to claim 17, wherein the second direction is vertical.
30. A method for generating hydrogen comprising: providing a system according to claim 17; supplying fluid to the inlet of the at least one device and circulating the fluid between the inlet and the outlet of the at least one device; and applying a potential difference between the first anode and the first cathode, and between the second anode and the second cathode.
31. The system according to claim 21, wherein the slits are formed across between 70% and 95% of a width of a plate.
32. A method for generating hydrogen comprising: providing a vehicle according to claim 28; supplying fluid to the inlet of the at least one device and circulating the fluid between the inlet and the outlet of the at least one device; and applying a potential difference between the first anode and the first cathode, and between the second anode and the second cathode.
33. The system according to claim 25, wherein all of the conductive plates of the plurality of conductive plates are made of metal.
34. The system according to claim 33, wherein all of the conductive plates of the plurality of conductive plates are made of stainless steel, platinum, or gold.
35. A device for reducing a fuel consumption of a vehicle, wherein the device comprises: an enclosure; an inlet for bringing a fluid into the device; an outlet to release the fluid from the device; a plurality of conductive plates arranged in the enclosure so as to define compartments, wherein the plurality of conductive plates comprises, in a first direction: a first end plate; intermediate plates; and a second end plate, and wherein the plurality of conductive plates comprises, in this order: the first end plate forming a first anode; intermediate plates at a floating electric potential; an intermediate plate forming a first cathode; intermediate plates at a floating electric potential; an intermediate plate forming a second anode; intermediate plates at a floating electric potential; and the second end plate forming a second cathode; and alternating lower openings and upper openings arranged to allow a flow of a fluid between the inlet and the outlet, wherein a fluidic passage between two consecutive compartments is possible only through one or more lower openings or through one or more upper openings, and wherein the lower openings are offset from the upper openings in a second direction perpendicular to the first direction so that, when the second direction is a vertical direction, when the fluid moves up in a compartment, the fluid moves down in the next compartment.
36. A system comprising: at least one device comprising: an enclosure; an inlet for bringing a fluid into the device; an outlet to release the fluid from the device; a plurality of conductive plates arranged in the enclosure so as to define compartments, wherein the plurality of conductive plates comprises, in a first direction: a first end plate; intermediate plates; and a second end plate, and wherein the plurality of conductive plates comprises, in this order: the first end plate forming a first anode; intermediate plates at a floating electric potential; an intermediate plate forming a first cathode; intermediate plates at a floating electric potential; an intermediate plate forming a second anode; intermediate plates at a floating electric potential; and the second end plate forming a second cathode; and alternating lower openings and upper openings arranged to allow a flow of a fluid between the inlet and the outlet, wherein a fluidic passage between two consecutive compartments is possible only through one or more lower openings or through one or more upper openings, and wherein the lower openings are offset from the upper openings in a second direction perpendicular to the first direction so that, when the second direction is a vertical direction, when the fluid moves up in a compartment, the fluid moves down in the next compartment; a pump arranged to circulate a fluid between the inlet and the outlet; and an electricity supply device connected to the anodes and to the cathodes.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0053] Other characters and advantages of the invention will appear from the reading of the detailed description which is provided in the following for the understanding of what will be stated in connection with the attached figures, among which:
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EMBODIMENTS OF THE INVENTION
[0062] The present invention is described with specific embodiments and references to the figures, but the invention is not limited to these. The diagrams or figures described are only schematic and are not limiting.
[0063] In the figures, identical or analogous elements may bear the same reference numbers.
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[0066] The device 1 comprises an enclosure 10, with an entry 11 making it possible to make fluid enter into the enclosure 10 and an exit making it possible to make the fluid exit from the enclosure 10. The device 1 is arranged in such a way as to conduct the fluid between the entry 11 and the exit 12.
[0067] The device 1 comprises plates 20 in the interior of the enclosure 10. They are preferably vertical. They are preferably fixed to the enclosure 10. The plates 20 are preferably perpendicular to the first direction 101 and are spaced in this direction. The plates 20 follow one another in the first direction 101 in the following order: [0068] A first end plate 21, [0069] A multiplicity of intermediate plates 25, and [0070] A second end plate 22.
[0071] The plates 20 divide at least a portion of the enclosure 10 into compartments 60. The compartments 60 are fluidically connected between themselves only by way of lower openings 51 and upper openings 52. The lower openings 51 and higher openings 52 make possible a flow of fluid 100 between the entry 11 and the exit 12.
[0072] The lower openings 51 are spatially shifted in the second direction 102 in relation to the higher openings 52. Thus, the higher openings 52 are higher than the lower openings 51.
[0073] The fluid being displaced in the device 1 passes from one compartment 60 to the other by alternately passing through at least one lower opening 51 and at least one higher opening 52. In other words, the flow of fluid 100 in the interior of the device 1 has a rising and a descending form, such as a sinusoidal form or a serpentine form. A passage of fluid between two successive compartments is possible only through one or several lower opening(s) or through one or several higher opening(s), but not through one or several lower opening(s) and through one or several higher opening(s) at the same time.
[0074] During its fluidic flow 100 in the device 1, the fluid undergoes an electrolysis reaction that is at least partially converted chemically and which at least partially changes phase. At the entry 11, the fluid is essentially an aqueous liquid solution. At the exit 12, the fluid comprises gaseous hydrogen and oxygen. Between the entry 11 and the exit 12, the fluid comprises a mixture of liquid and of gas.
[0075] The exit 12 could comprise a multiplicity of passages, such as a first passage arranged to allow the liquid portion of the fluid to exit and a second passage arranged to allow the gaseous portion of the fluid to exit.
[0076] The plates 20 are capable of conducting electricity. At least one of the plates is arranged to form an anode 31 and at least one of the plates is arranged to form a cathode 32. The anode 31 and the cathode 32 are arranged in order to be connected to an electrical power supply device 203 (
[0077] Preferably, the first end plate 21 or the second end plate 22 forms the anode and the other of these two plates forms the cathode. Preferably, at least some of the intermediate plates 25 are arranged to form a floating electrical potential. Thus, the electrical potential of the intermediate plates 25 is determined by the ambient conditions and, in particular, the potentials of the first end plate 21 and the second end plate 22.
[0078] Preferably, all the plates 20 are made from the same material. Specifically, two consecutive plates are preferably made from the same material. This material is preferentially a metal, such as of stainless steel.
[0079] Preferably, the plates 20 are separated from one another by joints or spacer units (not depicted) located close to the connections of the plates 20 to the enclosure 10.
[0080] A joint (not depicted) can also be present at the junction between each plate and the enclosure in order to ensure the tightening of this junction.
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[0084] As depicted in
[0085] It is possible, while still remaining within the framework of the invention, for the multiplicity of plates to be comprised in the following order: [0086] The first end plate 21, which forms a first anode 31, [0087] Intermediate plates 25 with a floating electrical potential, [0088] An intermediate plate 25, which forms a first cathode 32, [0089] Intermediate plates 25 with a floating electrical potential, [0090] An intermediate plate 25, which forms a second anode 31, [0091] Intermediate plates 25 with a floating electrical potential, [0092] Potentially other plates, and [0093] The second end plate 22, which forms an “n-th” cathode 32.
[0094] Within the framework of the present invention, the respective positions of the anode and of the cathode may be reversed.
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[0100] The system furthermore preferably comprises a combustion device 206, one entry of which is connected by means of fluidics flow to the exit 12 of the device 1 for generating hydrogen.
[0101] This means of fluidics flow preferably comprises one or several filtration device(s) 205 and/or one or several anti-return device(s) 205. The filtration makes it possible to remove the water remaining in the fluid. In order to carry out this filtration, it is possible for the fluid to return through the reservoir 201 in order for the water remaining in the fluid to be retained in the reservoir 201. The filtration device may comprise at least one bubbler device (or “bubbler” in English). The anti-return device prevents any movement of fluid backwards and/or any return of flames. It comprises a valve, for example.
[0102] The fluid, upon its entry into the combustion device 206, preferably comprises only hydrogen and/or oxygen. In order to enter into the combustion device 206, the fluid preferably passes through an injector, an air filter, or an entry collector by way of additional injectors.
[0103] Furthermore, the system may comprise ventilators (not depicted) that are arranged to cool the device 1.
[0104] Furthermore, the system may comprise a gauge for monitoring the level of fluid in the reservoir 201. Because of this, the dashboard, in the case of a vehicle, can display the level of fluid in the reservoir 201.
[0105] In other words, the invention relates to a device 1 for generating hydrogen by electrolysis that is usable without limitation, particularly in the automobile industry, the maritime industry, and the railroad industry. In the generator 1 in accordance with the invention, the fluid is forced to follow a route 100 with ascending and descending movements in order to prevent any separation between the liquid water and the hydrogen and the oxygen created by the electrolysis.
[0106] The present invention has been described in relation to specific embodiments, which have a purely illustrative value and must not be considered to be limiting. In a general way, the present invention is not limited to the examples depicted and/or described above. The use of the verbs “comprise”, “include”, “consist” or any other variant, as well as their conjugations, cannot in any way exclude the presence of elements other than those stated. The use of the French indefinite or definite articles used to introduce an element does not exclude the presence of a multiplicity of these elements. The reference numbers in the claims do not limit their scope.