Anode and/or cathode pan assemblies in an electrochemical cell, and methods to use and manufacture thereof
US-2024055636-A1 · Feb 15, 2024 · US
US9774052B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9774052-B2 |
| Application number | US-201314391176-A |
| Country | US |
| Kind code | B2 |
| Filing date | Dec 24, 2013 |
| Priority date | Feb 21, 2013 |
| Publication date | Sep 26, 2017 |
| Grant date | Sep 26, 2017 |
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In a hydrogen producing device, an electrolyte flow path between a plurality of hydrogen producing cells is disposed in a hydrogen production side and in an oxygen production side, separately. Further, an electrolyte flow path is formed through which the electrolyte flows downward from the top between the plurality of hydrogen producing cells, and on the other hand the electrolyte flows upward from the bottom within each hydrogen producing cell. Moreover, a contact point with a produced gas or an atmosphere is provided in a pathway of the electrolyte flow path.
Opening claim text (preview).
The invention claimed is: 1. A hydrogen producing device comprising: a plurality of hydrogen producing cells connected to one another, each of the plurality of hydrogen producing cells includes: a housing including a surface having a light-transmitting property, a separator separating a space within the housing into a hydrogen-side space and an oxygen-side space, a counter electrode arranged in the hydrogen-side space, an optical semiconductor electrode arranged in the oxygen-side space and formed on a conductive substrate, an electrical connection part electrically connecting the optical semiconductor electrode with the counter electrode, an electrolyte containing water in the hydrogen-side space and in the oxygen-side space, a hydrogen-side electrolyte supply hole penetrating the housing at a first position of the hydrogen-side space and supplying the electrolyte into the hydrogen-side space, an oxygen-side electrolyte supply hole penetrating the housing at a second position of the oxygen-side space and supplying the electrolyte into the oxygen-side space, a hydrogen-side gas-liquid branch pipe penetrating the housing in contact with the hydrogen-side space at a gas-liquid introduction port of the hydrogen-side gas-liquid branch pipe and arranged at a position higher than a hydrogen producing region of the counter electrode and higher than the first position, and an oxygen-side gas-liquid branch pipe penetrating the housing in contact with the oxygen-side space at a gas-liquid introduction port of the oxygen-side gas-liquid branch pipe and arranged at a position higher than an oxygen producing region of the optical semiconductor electrode and higher than the second position, the hydrogen producing device having: an electrolyte storage unit for sending the electrolyte out to the plurality of hydrogen producing cells and recovering the electrolyte from the plurality of hydrogen producing cells, a hydrogen-side electrolyte supply pipe extending from the electrolyte storage unit and being connected to the hydrogen-side electrolyte supply hole of a hydrogen producing cell arranged at a highest position out of the plurality of hydrogen producing cells connected to one another, an oxygen-side electrolyte supply pipe extending from the electrolyte storage unit and being connected to the oxygen-side electrolyte supply hole of the hydrogen producing cell arranged at the highest position out of the plurality of hydrogen producing cells connected to one another, a hydrogen-side electrolyte circulation pipe extending from a liquid discharge port of the hydrogen-side gas-liquid branch pipe of each of the plurality of hydrogen producing cells excluding a hydrogen producing cell arranged at a lowest position out of the plurality of hydrogen producing cells connected to one another, the hydrogen-side electrolyte circulation pipe connecting the liquid discharge port of the hydrogen-side gas-liquid branch pipe of a given hydrogen producing cell of the plurality of hydrogen producing cells to the hydrogen-side electrolyte supply hole of another hydrogen producing cell of the plurality of hydrogen producing cells arranged beneath the given hydrogen producing cell, an oxygen-side electrolyte circulation pipe extending from a liquid discharge port of the oxygen-side gas-liquid branch pipe of each of the plurality of hydrogen producing cells excluding the hydrogen producing cell arranged at the lowest position out of the plurality of hydrogen producing cells connected to one another, the oxygen-side electrolyte circulation pipe connecting the liquid discharge port of the oxygen-side gas-liquid branch pipe of the given hydrogen producing cell to the oxygen-side electrolyte supply hole of the another hydrogen producing cell arranged beneath the given hydrogen producing cell, a hydrogen-side electrolyte recovery pipe extending from the liquid discharge port of the hydrogen-side gas-liquid branch pipe of the hydrogen producing cell arranged at the lowest position out of the plurality of hydrogen producing cells connected to one another and being connected to the electrolyte storage unit, and an oxygen-side electrolyte recovery pipe extending from the liquid discharge port of the oxygen-side gas-liquid branch pipe of the hydrogen producing cell arranged at the lowest position out of the plurality of hydrogen producing cells connected to one another and being connected to the electrolyte storage unit. 2. A hydrogen producing device comprising: a plurality of hydrogen producing cells connected to one another each of the plurality of hydrogen producing cells includes: a housing including a surface having a light-transmitting property, a separator separating a space within the housing into a hydrogen-side space and an oxygen-side space, an optical semiconductor electrode arranged in the hydrogen-side space and formed on a conductive substrate, a counter electrode arranged in the oxygen-side space, an electrical connection part electrically connecting the optical semiconductor electrode with the counter electrode, an electrolyte containing water in the hydrogen-side space and in the oxygen-side space, a hydrogen-side electrolyte supply hole penetrating the housing at a first position of the hydrogen-side space and supplying the electrolyte into the hydrogen-side space, an oxygen-side electrolyte supply hole penetrating the housing at a second position of the oxygen-side space and supplying the electrolyte into the oxygen-side space, a hydrogen-side gas-liquid branch pipe penetrating the housing in contact with the hydrogen-side space at a gas-liquid introduction port of the hydrogen-side gas-liquid branch pipe and arranged at a position higher than a hydrogen producing region of the optical semiconductor electrode and higher than the first position, and an oxygen-side gas-liquid branch pipe penetrating the housing in contact with the oxygen-side space at a gas-liquid introduction port of the oxygen-side gas-liquid branch pipe and arranged at a position higher than an oxygen producing region of the counter electrode and higher than the second position, the hydrogen producing device having: an electrolyte storage unit for sending the electrolyte out to the plurality of hydrogen producing cells and recovering the electrolyte from the plurality of hydrogen producing cells, a hydrogen-side electrolyte supply pipe extending from the electrolyte storage unit and being connected to the hydrogen-side electrolyte supply hole of a hydrogen producing cell arranged at a highest position out of the plurality of hydrogen producing cells connected to one another, an oxygen-side electrolyte supply pipe extending from the electrolyte storage unit and being connected to the oxygen-side electrolyte supply hole of the hydrogen producing cell arranged at the highest position out of the plurality of hydrogen producing cells connected to one another, a hydrogen-side electrolyte circulation pipe extending from a liquid discharge port of the hydrogen-side gas-liquid branch pipe of each of the plurality of hydrogen producing cells excluding a hydrogen producing cell arranged at a lowest position out of the plurality of hydrogen producing cells connected to one another, the hydrogen-side electrolyte circulation pipe connecting the liquid discharge port of the hydrogen-side gas-liquid branch pipe of a given hydrogen producing cell of the plurality of hydrogen producing cells to the hydrogen-side electrolyte supply hole of another hydrogen producing cell of the plurality of hydrogen producing cells arranged beneath the given hydrogen producing cell, an oxygen-side electrolyte circulation pipe extending from a liquid discharge port of the oxygen-side gas-liquid branch pipe of each of the plurality of hydrogen producing cells excluding the hydrogen producing cell arranged at the lowest position out of the
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