Abstract:
The present specification relates to a composition for a solid oxide fuel cell sealant including B2O3 in 50 mol % to 85 mol %, wherein an adhesion temperature at which viscosity becomes 104 dPa·s is in a range of 750° C. to 850° C., a sealant using the same and a method for manufacturing the same.
Abstract:
The present specification relates to a method for manufacturing an electrolyte membrane for a solid oxide fuel cell, an electrolyte membrane for a solid oxide fuel cell, a solid oxide fuel cell including the electrolyte membrane, and a fuel cell module including the solid oxide fuel cell.
Abstract:
The present specification relates to a method for manufacturing an electrode, an electrode manufactured by the same, an electrode structure including the electrode, a fuel cell or a metal-air secondary battery including the electrode, a battery module including the fuel cell or the metal-air secondary battery, and a composition for manufacturing an electrode.
Abstract:
According to the present disclosure, a pattern comprising protrusions and grooves is formed on all layers in a laminate laminating a composition layer for preparing an electrolyte; and at least one of a composition layer for preparing a fuel electrode and a composition layer for preparing an air electrode on the composition layer for preparing an electrolyte, which leads to advantages of saving time and costs in terms of process by carrying out sintering and pattern forming at once, while improving cell efficiency by increasing a surface area of the electrolyte layer.
Abstract:
The present specification relates to composite metal oxide particles manufactured by reacting two or more metal oxides and a method for manufacturing the same.
Abstract:
The present application relates to a method of manufacturing an anode supporter of a solid oxide fuel cell and an anode supporter of a solid oxide fuel cell, and may improve performance and durability of the fuel cell by improving an interfacial property between the anode supporter and an electrolyte.
Abstract:
The present invention relates to a firing cartridge, and more particularly, to a firing cartridge in which multiple slit grooves are formed in lateral portions positioned between an upper end portion and a lower end portion, and solid fuel cell electrodes are inserted into the slit grooves, such that the number of cells, which may be fired at the same time, is increased, and thus productivity of a solid fuel cell may be improved.
Abstract:
The present invention relates to an apparatus and a method of firing a unit cell for a solid oxide fuel cell, and more particularly, to an apparatus and a method of firing a unit cell for a solid oxide fuel cell, which are capable of performing pre-sintering and main sintering using a single apparatus by adjusting a height of a setter.
Abstract:
A fuel cell stack structure in which unit cells are stacked includes first window frames and second window frame. The second window frames each have an area larger than an area of a first window frame and are periodically disposed at a predetermined interval in a direction in which the unit cells are stacked. Heat movement is promoted, a temperature deviation in the fuel cell stack structure is mitigated, and a temperature distribution is uniformized.