Patents by Inventor BENJAMIN LUNT
BENJAMIN LUNT has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
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Patent number: 11552319Abstract: The present disclosure is directed towards the design of electrochemical cells for use in high pressure or high differential pressure operations. The electrochemical cells of the present disclosure have non-circular external pressure boundaries, i.e., the cells have non-circular profiles. In such cells, the internal fluid pressure during operation is balanced by the axial tensile forces developed in the bipolar plates, which prevent the external pressure boundaries of the cells from flexing or deforming. That is, the bipolar plates are configured to function as tension members during operation of the cells. To function as an effective tension member, the thickness of a particular bipolar plate is determined based on the yield strength of the material selected for fabricating the bipolar plate, the internal fluid pressure in the flow structure adjacent to the bipolar plate, and the thickness of the adjacent flow structure.Type: GrantFiled: August 16, 2013Date of Patent: January 10, 2023Assignee: Nuvera Fuel Cells, LLCInventors: Scott Blanchet, Benjamin Lunt, Ed Domit, Kevin Beverage, Roger Van Boeyen, Wonseok Yoon
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Publication number: 20220093944Abstract: This disclosure related to polymer electrolyte member fuel cells and components thereof, including fuel cell endplates.Type: ApplicationFiled: December 6, 2021Publication date: March 24, 2022Inventors: Scott C. Blanchet, Benjamin Lunt
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Patent number: 11196060Abstract: This disclosure related to polymer electrolyte member fuel cells and components thereof, including fuel cell endplates.Type: GrantFiled: August 14, 2018Date of Patent: December 7, 2021Assignee: NUVERA FUEL CELLS, LLCInventors: Scott C. Blanchet, Benjamin Lunt
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Patent number: 10468691Abstract: The present disclosure is directed towards the design of bipolar plates for use in conduction-cooled electrochemical cells. Heat generated during the operation of the cell is removed from the active area of the cell to the periphery of the cell via the one or more bipolar plates in the cell. The one or more bipolar plates are configured to function as heat sinks to collect heat from the active area of the cell and to conduct the heat to the periphery of the plate where the heat is removed by traditional heat transfer means. The boundary of the one or more bipolar plates can be provided with heat dissipation structures to facilitate removal of heat from the plates. To function as effective heat sinks, the thickness of the one or more bipolar plates can be determined based on the rate of heat generation in the cell during operation, the thermal conductivity (“k”) of the material selected to form the plate, and the desired temperature gradient in a direction orthogonal to the plate (“?T”).Type: GrantFiled: July 6, 2016Date of Patent: November 5, 2019Assignee: Nuvera Fuel Cells, LLCInventors: Scott Blanchet, Benjamin Lunt, Edward Domit, Roger Van Boeyen
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Publication number: 20190006684Abstract: This disclosure related to polymer electrolyte member fuel cells and components thereof, including fuel cell endplates.Type: ApplicationFiled: August 14, 2018Publication date: January 3, 2019Inventors: Scott C. Blanchet, Benjamin Lunt
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Patent number: 9809890Abstract: The present disclosure is directed towards flow structures in electrochemical cells for use in high differential pressure operations. The flow structure on the low pressure-side of the cell has a larger surface area than the flow structure on the high-pressure side of the cell at the flow structure—MEA interface. The boundary of the high pressure flow structure is entirely within the boundary of the low pressure flow structure. A seal around the high pressure flow structure is also contained within the boundary of the low pressure flow structure. In such an arrangement, high fluid pressures acting on the electrolyte membrane from the high-pressure side of the cell is fully and continuously balanced by the flow structure on the low pressure-side of the membrane. Use of the low pressure flow structure as a membrane support prevents the rupture or deformation of the membrane under high stresses.Type: GrantFiled: July 22, 2013Date of Patent: November 7, 2017Assignee: Nuvera Fuel Cells, LLC.Inventors: Scott Blanchet, Benjamin Lunt
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Patent number: 9803288Abstract: The present disclosure is directed towards flow structures in electrochemical cells for use in high differential pressure operations. The flow structure on the low pressure-side of the cell has a larger surface area than the flow structure on the high-pressure side of the cell at the flow structure—MEA interface. The boundary of the high pressure flow structure is entirely within the boundary of the low pressure flow structure. A seal around the high pressure flow structure is also contained within the boundary of the low pressure flow structure. In such an arrangement, high fluid pressures acting on the electrolyte membrane from the high-pressure side of the cell is fully and continuously balanced by the flow structure on the low pressure-side of the membrane. Use of the low pressure flow structure as a membrane support prevents the rupture or deformation of the membrane under high stresses.Type: GrantFiled: August 19, 2015Date of Patent: October 31, 2017Assignee: Nuvera Fuel Cells, LLCInventors: Scott Blanchet, Benjamin Lunt
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Publication number: 20160315333Abstract: The present disclosure is directed towards the design of bipolar plates for use in conduction-cooled electrochemical cells. Heat generated during the operation of the cell is removed from the active area of the cell to the periphery of the cell via the one or more bipolar plates in the cell. The one or more bipolar plates are configured to function as heat sinks to collect heat from the active area of the cell and to conduct the heat to the periphery of the plate where the heat is removed by traditional heat transfer means. The boundary of the one or more bipolar plates can be provided with heat dissipation structures to facilitate removal of heat from the plates. To function as effective heat sinks, the thickness of the one or more bipolar plates can be determined based on the rate of heat generation in the cell during operation, the thermal conductivity (“k”) of the material selected to form the plate, and the desired temperature gradient in a direction orthogonal to the plate (“?T”).Type: ApplicationFiled: July 6, 2016Publication date: October 27, 2016Inventors: Scott Blanchet, Benjamin Lunt, Edward Domit, Roger Van Boeyen
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Patent number: 9413016Abstract: The present disclosure is directed towards the design of bipolar plates for use in conduction-cooled electrochemical cells. Heat generated during the operation of the cell is removed from the active area of the cell to the periphery of the cell via the one or more bipolar plates in the cell. The one or more bipolar plates are configured to function as heat sinks to collect heat from the active area of the cell and to conduct the heat to the periphery of the plate where the heat is removed by traditional heat transfer means. The boundary of the one or more bipolar plates can be provided with heat dissipation structures to facilitate removal of heat from the plates. To function as effective heat sinks, the thickness of the one or more bipolar plates can be determined based on the rate of heat generation in the cell during operation, the thermal conductivity (“k”) of the material selected to form the plate, and the desired temperature gradient in a direction orthogonal to the plate (“?T”).Type: GrantFiled: September 30, 2013Date of Patent: August 9, 2016Assignee: Nuvera Fuel Cells, LLCInventors: Scott Blanchet, Benjamin Lunt, Edward Domit, Roger Van Boeyen
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Publication number: 20160126578Abstract: This disclosure related to polymer electrolyte member fuel cells and components thereof, including fuel cell electrodes.Type: ApplicationFiled: November 9, 2015Publication date: May 5, 2016Applicant: NUVERA FUEL CELLS, INC.Inventors: Scott Blanchet, James Cross, III, Ales Horky, Atul Sharma, Filippo Gambini, Gabriel Corbellini, Benjamin Lunt
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Publication number: 20150354069Abstract: The present disclosure is directed towards the design and arrangement of flow structures in electrochemical cells for use in high differential pressure operations. The flow structure on the low pressure-side of the cell has a larger surface area than the flow structure on the high-pressure side of the cell at the flow structure-MEA interface. The boundary of the high pressure flow structure is entirely within the boundary of the low pressure flow structure. A seal around the high pressure flow structure is also contained within the boundary of the low pressure flow structure. In such an arrangement, high fluid pressures acting on the electrolyte membrane from the high-pressure side of the cell is fully and continuously balanced by the flow structure on the low pressure-side of the membrane. Use of the low pressure flow structure as a membrane support prevents the rupture or deformation of the membrane under high stresses.Type: ApplicationFiled: August 19, 2015Publication date: December 10, 2015Applicant: NUVERA FUEL CELLS, INC.Inventors: Scott Blanchet, Benjamin Lunt
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Publication number: 20140099562Abstract: The present disclosure is directed towards the design of bipolar plates for use in conduction-cooled electrochemical cells. Heat generated during the operation of the cell is removed from the active area of the cell to the periphery of the cell via the one or more bipolar plates in the cell. The one or more bipolar plates are configured to function as heat sinks to collect heat from the active area of the cell and to conduct the heat to the periphery of the plate where the heat is removed by traditional heat transfer means. The boundary of the one or more bipolar plates can be provided with heat dissipation structures to facilitate removal of heat from the plates. To function as effective heat sinks, the thickness of the one or more bipolar plates can be determined based on the rate of heat generation in the cell during operation, the thermal conductivity (“k”) of the material selected to form the plate, and the desired temperature gradient in a direction orthogonal to the plate (“?T”).Type: ApplicationFiled: September 30, 2013Publication date: April 10, 2014Applicant: Nuvera Fuel Cells, Inc.Inventors: Scott Blanchet, Benjamin Lunt, Edward Domit
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Publication number: 20140051007Abstract: The present disclosure is directed towards the design of electrochemical cells for use in high pressure or high differential pressure operations. The electrochemical cells of the present disclosure have non-circular external pressure boundaries, i.e., the cells have non-circular profiles. In such cells, the internal fluid pressure during operation is balanced by the axial tensile forces developed in the bipolar plates, which prevent the external pressure boundaries of the cells from flexing or deforming. That is, the bipolar plates are configured to function as tension members during operation of the cells. To function as an effective tension member, the thickness of a particular bipolar plate is determined based on the yield strength of the material selected for fabricating the bipolar plate, the internal fluid pressure in the flow structure adjacent to the bipolar plate, and the thickness of the adjacent flow structure.Type: ApplicationFiled: August 16, 2013Publication date: February 20, 2014Applicant: Nuvera Fuel Cells, Inc.Inventors: Scott Blanchet, Benjamin Lunt, Ed Domit, Kevin Beverage, Roger Van Boeyen, Wonseok Yoon
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Publication number: 20140027272Abstract: The present disclosure is directed towards the design and arrangement of flow structures in electrochemical cells for use in high differential pressure operations. The flow structure on the low pressure-side of the cell has a larger surface area than the flow structure on the high-pressure side of the cell at the flow structure—MEA interface. The boundary of the high pressure flow structure is entirely within the boundary of the low pressure flow structure. A seal around the high pressure flow structure is also contained within the boundary of the low pressure flow structure. In such an arrangement, high fluid pressures acting on the electrolyte membrane from the high-pressure side of the cell is fully and continuously balanced by the flow structure on the low pressure-side of the membrane. Use of the low pressure flow structure as a membrane support prevents the rupture or deformation of the membrane under high stresses.Type: ApplicationFiled: July 22, 2013Publication date: January 30, 2014Applicant: Nuvera Fuel Cells, Inc.Inventors: Scott Blanchet, Benjamin Lunt
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Publication number: 20110250520Abstract: Described herein are embodiments directed to fixtures for mounting fuel cells, the fixtures comprising at least one internal frame member; a first endplate assembly comprising a first seal frame, and a first active area compression plate, and a second endplate assembly; wherein the internal frame member is located between the first endplate assembly and the second endplate assembly. Also described are methods of testing a fuel cell.Type: ApplicationFiled: March 31, 2011Publication date: October 13, 2011Inventors: Benjamin Lunt, Scott Blanchet
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Publication number: 20100009223Abstract: This disclosure related to polymer electrolyte member fuel cells and components thereof, including fuel cell endplates.Type: ApplicationFiled: June 22, 2009Publication date: January 14, 2010Inventors: SCOTT C. BLANCHET, BENJAMIN LUNT