Method for operating an SOEC-type stack reactor for producing methane in the absence of available electricity
US-10145018-B2 · Dec 4, 2018 · US
US2018320274A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2018320274-A1 |
| Application number | US-201815971319-A |
| Country | US |
| Kind code | A1 |
| Filing date | May 4, 2018 |
| Priority date | May 4, 2017 |
| Publication date | Nov 8, 2018 |
| Grant date | — |
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The present invention provides a gas generator and comprises an electrolytic device, a condensing filter device, and a cooling device. The electrolytic device is configured for electrolyzing electrolyzed water to generate hydrogen. The condensing filter device is coupled to the electrolytic device for receiving and filtering the hydrogen generated by the electrolytic device. The cooling device comprises a cooling sheet and a cooling fan, wherein the cooling sheet is configured on the condensing filter device, and the cooling fan is configured for driving air to flow through the cooling sheet to cool the condensing filter device. The present invention uses the condensing filter device and the cooling device for cooling the generated gas and the component that gas passes through, so that a stable operating temperature is maintaining. Therefore, the possibility of the component damage by high temperature and humidity is reduced.
Opening claim text (preview).
What is claimed is: 1 . A gas generator, comprising: an electrolytic device accommodating an electrolyzed water; wherein the electrolytic device is configured for electrolyzing the electrolyzed water to generate hydrogen; a condensing filter device further comprising a gas pathway, a filter material, and a spacer; wherein the gas pathway is configured for receiving the hydrogen, and the filter material is configured within the gas pathway to filter the hydrogen, and the spacer is configured within the condensing filter device for limiting the movement of the filter material within the gas pathway; and a cooling device comprising a cooling sheet and a cooling fan; wherein the cooling sheet is coupled to the condensing filter device and the cooling fan drives air to flow through the cooling device. 2 . The gas generator of claim 1 , further comprising an atomizing device coupled to the condensing filter device; wherein the atomizing device is configured for receiving the filtered hydrogen, and the atomizing device generates atomized gas to be mixed with the filtered hydrogen, and the cooling device has an accommodating space for accommodating part of the atomizing device. 3 . The gas generator of claim 1 , wherein the cooling device has a cooling pathway formed within the cooling device, and the air flows through the cooling pathway. 4 . The gas generator of claim 3 , wherein the cooling device comprises a cooling pathway component coupled to the cooling sheet, and the cooling pathway is formed between the cooling pathway component and the cooling sheet. 5 . The gas generator of claim 3 , wherein the cooling fan is a blast fan accommodated within the cooling pathway. 6 . The gas generator of claim 1 , further comprising a gas filter device coupled to the condensing filter device, wherein the gas filter device is configured for further filtering the hydrogen. 7 . The gas generator of claim 6 , further comprising a check valve coupled to the gas filter device. 8 . The gas generator of claim 7 , wherein the gas filter device has an outer wall and an inner wall, and inside the inner wall is filled with activated carbon, and the outer wall is located outside the inner wall, and the hydrogen received by the gas filter device flows into the inner wall via the interspace between the outer wall and the inner wall, and then the hydrogen is exhausted outside the gas filter device. 9 . The gas generator of claim 8 , wherein the gas filter device comprises a removable cover, and the activated carbon is accommodated within a space formed by the inner wall and the cover, and the gas filter device and the check valve can be simultaneously withdrawn from the gas generator. 10 . The gas generator of claim 1 , wherein the filter material is composed of a plurality of filter pieces, and the spacer prevents the filter pieces from connecting to each other directly. 11 . A gas generator, comprising: an electrolytic device accommodating an electrolyzed water; wherein the electrolytic device is configured for electrolyzing the electrolyzed water to generate hydrogen; a condensing filter device coupled to the electrolytic device for receiving and filtering the hydrogen; and a cooling device, having a cooling pathway and a plurality of openings; wherein the openings are located at the cooling pathway respectively, and the cooling device further comprises a cooling sheet, a cooling pathway component, and a cooling fan, and the cooling sheet is coupled to the condensing filter device, and the cooling pathway component is coupled to the cooling sheet, and the cooling pathway is formed between the cooling pathway component and the cooling sheet, and the cooling fan drives air to flow through the cooling pathway via the openings. 12 . The gas generator of claim 11 , further comprising an atomizing device coupled to the condensing filter device, wherein the atomizing device is configured for receiving the filtered hydrogen, and the atomizing device generates atomized gas to be mixed with the filtered hydrogen, and the cooling device has an accommodating space for accommodating part of the atomizing device. 13 . The gas generator of claim 11 , wherein the cooling fan is a blast fan accommodated within the cooling pathway. 14 . The gas generator of claim 11 , further comprising a gas filter device coupled to the condensing filter device, wherein the gas filter device is configured for further filtering the hydrogen. 15 . The gas generator of claim 14 , further comprising a check valve coupled to the gas filter device. 16 . The gas generator of claim 15 , wherein the check valve is a flameproof device. 17 . The gas generator of claim 15 , wherein the check valve receives the hydrogen exhausted by the gas filter device. 18 . The gas generator of claim 15 , wherein the gas filter device has an outer wall and an inner wall, and inside the inner wall is filled with activated carbon, and the outer wall is located outside the inner wall, and the hydrogen received by the gas filter device flows into the inner wall via the interspace between the outer wall and the inner wall, and then the hydrogen is exhausted outside the gas filter device. 19 . The gas generator of claim 18 , wherein the gas filter device comprises a removable cover, and the activated carbon is accommodated within a space formed by the inner wall and the cover, and the gas filter device and the check valve can be simultaneously withdrawn from the gas generator. 20 . The gas generator of claim 18 , wherein the gas filter device has a top and a bottom, and the hydrogen received by the gas filter device flows into the interspace between the outer wall and the inner wall via the top, and then the hydrogen flows into the inner wall via the bottom and is exhausted outside the gas filter device via the top.
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