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    • 13. 发明公开
    • 연료전지를 이용한 보조동력장치
    • 使用燃料电池的辅助电力设备
    • KR1020130074618A
    • 2013-07-04
    • KR1020110142759
    • 2011-12-26
    • 포스코에너지 주식회사
    • 박인욱오은태황정태
    • B63H21/17H01M8/04H02J7/00H01M10/44
    • Y02P70/56Y02T70/5209Y02T90/38Y02T90/46B63J3/04B63J2003/002H01M8/04H01M2250/20Y02E60/50
    • PURPOSE: An auxiliary power device using a fuel cell is provided to be used as an auxiliary power source for supplying required power to a ship when a main power source is out of order. CONSTITUTION: An auxiliary power device (100) using a fuel cell comprises a fuel cell (110), an output stabilizing unit (130), and a control unit (120). The fuel cell comprises a fuel cell stack (112), a mechanical balance of plant (MBOP) (111), and an electrical balance of plant (EBOP) (113). The output stabilizing unit connected to the output end of the EBOP stabilizes the output of the fuel cell and stores a part of surplus power therein. The control unit connected to a power management system (PMS) (50) in a ship monitors necessary and required power and controls the operation of the fuel cell and the output stabilizing unit. [Reference numerals] (112) Fuel cell stack; (120) Control unit; (130) Output stabilizing unit
    • 目的:提供一种使用燃料电池的辅助动力装置,用作在主电源出现故障时向船舶供电所需的辅助电源。 构成:使用燃料电池的辅助动力装置(100)包括燃料电池(110),输出稳定单元(130)和控制单元(120)。 燃料电池包括燃料电池堆(112),设备的机械平衡(MBOP)(111)和设备的电气余量(EBOP)(113)。 连接到EBOP的输出端的输出稳定单元稳定燃料电池的输出并将一部分剩余电力存储在其中。 连接到船上的电力管理系统(PMS)(50)的控制单元监视所需和所需的电力并控制燃料电池和输出稳定单元的操作。 (112)燃料电池堆; (120)控制单元; (130)输出稳定单元
    • 15. 发明公开
    • 고체산화물 연료 전지용 간접 내부 개질기
    • 用于固体氧化物燃料电池的间接内部改造器
    • KR1020130048570A
    • 2013-05-10
    • KR1020110113490
    • 2011-11-02
    • 포스코에너지 주식회사
    • 김성진정자훈이상현차정은황정태
    • H01M8/12H01M8/06H01M8/04
    • PURPOSE: An indirect internal reformer for a solid oxide fuel cell is provided to prevent hot spot by uniformizing the distribution of fuel. CONSTITUTION: An indirect internal reformer for a solid oxide fuel cell comprises a modifier body(10); an inlet zone(20) and a return zone which are respectively located in the upper part and the lower part of a baffle(60) laterally installed in the modifier main body; a turn zone(40) in which the flow direction is turned in the inlet zone around the back end of the baffle; and an anti-stagnation zone(50) which is located in the lower part and the upper part and which prevents flow stagnation. The indirect internal reformer has distributed catalyst for modifying methane-vapor in the turn region, anti-stagnation region, and return region.
    • 目的:提供一种用于固体氧化物燃料电池的间接内部重整器,以通过使燃料分布均匀化来防止热点。 构成:固体氧化物燃料电池的间接内部重整器包括改性体(10); 入口区(20)和返回区,分别位于横向安装在改性剂主体中的挡板(60)的上部和下部中; 转向区域(40),其中所述流动方向在所述入口区域围绕所述挡板的后端转动; 以及位于下部和上部的防止滞留区(50),并且防止流动停滞。 间接内部重整器已经在转向区域,抗滞留区域和返回区域中分配了用于改变甲烷蒸气的催化剂。
    • 16. 发明公开
    • 연료전지 시뮬레이터
    • 燃料电池模拟器
    • KR1020130013644A
    • 2013-02-06
    • KR1020110075375
    • 2011-07-28
    • 포스코에너지 주식회사
    • 허규철차정은이증우조승환박인욱황정태
    • H01M8/04H01M8/06G01K7/02
    • Y02P70/56H01M8/04G01K7/02H01M8/06
    • PURPOSE: A fuel cell simulator is provided to provide an internal reformer a heating environment using the oxidation in a fuel electrode, thereby being capable of testing the performance of the internal reformer. CONSTITUTION: A fuel cell simulator comprises: a pair of plates(110,120) arranged in both sides of an internal reformer(210); and a heater providing specific heat into the internal reformer by being arranged adjacent to the internal reformer. The heater comprises a plurality of heating bodies each of which independently operates. The heater comprises a control part which controls each of the heating bodies to selectively provide heat to the internal reformer.
    • 目的:提供一种燃料电池模拟器,以向内部重整器提供使用燃料电极中的氧化的加热环境,从而能够测试内部重整器的性能。 构成:燃料电池模拟器包括:布置在内部重整器(210)两侧的一对板(110,120); 以及通过邻近内部重整器设置向内部重整器提供比热的加热器。 加热器包括各自独立地操作的多个加热体。 加热器包括控制部件,其控制每个加热体以选择性地向内部重整器提供热量。
    • 17. 发明授权
    • 쌍극 분리기 판을 구비한 고온형 연료전지
    • 具有双极隔离板的高温型燃料电池
    • KR101396683B1
    • 2014-05-16
    • KR1020120152764
    • 2012-12-26
    • 포스코에너지 주식회사
    • 황동찬차정은허규철황정태
    • H01M8/02H01M8/12H01M8/14
    • The present invention relates to a high temperature-type fuel cell having a bipolar separator plate, wherein the leakage of a gas through a boundary between a wet sealing area and an active area of the bipolar separator plate can be effectively controlled. The high temperature fuel cell according to a preferable embodiment of the present invention, a bipolar separator plate is prepared that serves as a gas wall that separates a cathode of one unit cell and an anode of the other unit cell adjacent to the unit cell for the cathode. The bipolar separator plate comprises: a plate member having a first surface and second surface that face each other; a side wall part that is extended from both ends of the plate member towards a direction away from the first surface or second surface; and a sealing wall part that is extended horizontally with respect to the first surface or second surface from the end of the side wall part towards the inner side. Collectors are accommodated in accommodating spatial parts that are divided by means of the plate member, side wall part, and sealing wall part. Electrodes, each of which comes in contact with each of the collectors are interposed between the ends of the sealing wall part that face each other. Sealing members are interposed between the inner surface of the sealing wall part and the ends of the collectors so as to prevent a reaction gas from leaking through a gap between the ends of the sealing wall and the electrodes. Each of the sealing members is a foaming body made of one or more metallic materials selected from the group consisting of nickel and aluminum.
    • 本发明涉及一种具有双极型隔板的高温型燃料电池,能够有效地控制气体通过湿式密封区域与双极性隔离板的有源区域之间的边界的泄漏。 制备根据本发明优选实施例的高温燃料电池,双极隔板用作将一个单电池的阴极和与该电池单元相邻的另一个电池单元的阳极分离的气体壁 阴极。 所述双极隔板包括:具有彼此面对的第一表面和第二表面的板构件; 侧壁部分,其从所述板构件的两端延伸到远离所述第一表面或第二表面的方向; 以及从所述侧壁部的端部向内侧相对于所述第一表面或第二表面水平延伸的密封壁部。 收集器容纳在通过板构件,侧壁部分和密封壁部分分隔的空间部分中。 每个与每个收集器接触的电极介于彼此面对的密封壁部分的端部之间。 密封构件插入在密封壁部分的内表面和集电体的端部之间,以防止反应气体通过密封壁的端部和电极之间的间隙泄漏。 每个密封构件是由选自镍和铝的一种或多种金属材料制成的发泡体。