전기화학적 플로우 셀 스택 구조 및 이를 포함하는 레독스 플로우 전지
    91.
    发明授权
    전기화학적 플로우 셀 스택 구조 및 이를 포함하는 레독스 플로우 전지 有权
    电化学流化床堆积结构和包括其的氧化还原电池

    公开(公告)号:KR101353961B1

    公开(公告)日:2014-01-23

    申请号:KR1020120124318

    申请日:2012-11-05

    CPC classification number: Y02E60/528 H01M8/18

    Abstract: The present invention relates to a stack structure of an electrochemical flow cell and a redox flow battery including the same and, more specifically, to a a stack structure of an electrochemical flow cell and a redox flow battery including a frame which includes an instrument for both connecting and disconnecting and a manifold complex built up with a plurality of manifold unit modules which includes a felt electrode ensconced on the frame. Since adjusting the surface area of voltage and current according to the number of manifold unit module is possible, a user is able to secure the power output desired for the specifications and individual split and merge is easy so that a simple modification or replacement of partial unit modules is possible.

    Abstract translation: 本发明涉及一种电化学流动池和包含该电池的氧化还原液流电池的堆叠结构,更具体地说,涉及一种电化学流动池和包括框架的氧化还原液流电池的堆叠结构,该框架包括用于两个连接 以及与多个歧管单元模块构成的歧管复合体,其包括被固定在框架上的毡电极。 由于可以根据歧管单元模块的数量调整电压和电流的表面积,所以用户能够确保规格所需的功率输出,并且易于分离和合并,从而简单地修改或更换部分单元 模块是可能的。

    레독스 흐름전지
    92.
    发明授权
    레독스 흐름전지 有权
    氧化还原流动池

    公开(公告)号:KR101335544B1

    公开(公告)日:2013-12-05

    申请号:KR1020110119983

    申请日:2011-11-17

    CPC classification number: Y02E60/528

    Abstract: 본 발명에 따른 레독스 흐름전지는 하나의 플레이트에 서로 다른 극을 갖는 반응부가 형성된 매니폴드를 포함하는 단위셀을 2층 이상 적층하여 형성된 구조를 갖는 것을 특징으로 한다.
    상기한 레독스 흐름 전지는 하나의 플레이트에 서로 다른 극을 갖는 반응부가 형성된 매니폴드를 포함하는 단위셀을 직렬로 연결함으로서 직렬과 병렬의 구조를 동시에 형성하여 종래와 동일한 수의 스택이 형성되는 경우에 비해 높은 전압을 형성하므로 전지의 출력을 극대화시킬 뿐만 아니라 출력의 증가함에도 불구하고 전지 부피의 감소시킬 수 있는 유용한 효과가 있다.

    Abstract translation: 根据本发明的氧化还原液流电池的特征在于具有由单元电池包括具有不同磁极彼此上的两个或更多层形成的层叠板的歧管加成反应形成的结构。

    션트전류 저감을 위한 레독스 흐름전지용 매니폴드 및 이를 포함하는 레독스 흐름전지
    93.
    发明授权
    션트전류 저감을 위한 레독스 흐름전지용 매니폴드 및 이를 포함하는 레독스 흐름전지 有权
    用于减少分流电流和减少流量的电池,包括它们

    公开(公告)号:KR101291753B1

    公开(公告)日:2013-07-31

    申请号:KR1020120094334

    申请日:2012-08-28

    Abstract: PURPOSE: A manifold for redox flow batteries is provided to prevent the flow of liquid electrolyte existing in a stack or pipe when the operation of a pump is stopped, thereby inhibiting the generation of shunt current. CONSTITUTION: A manifold for redox flow batteries comprises a first electrode electrolyte inlet (140) and a first electrode electrolyte outlet (141) for flowing in and out of the first electrode electrolyte; a first electrode electrolyte reaction part (120) formed inside; a supply path (160) for supplying the first electrode electrolyte injected from the first electrode electrolyte inlet to the first electrode electrolyte reaction part; an exhaust flow path (161) for transferring and discharging the first electrode electrolyte to the first electrode electrolyte outlet; and a second electrode electrolyte inlet (150) and a second electrode electrolyte outlet (151) for transferring a second electrode electrolyte.

    Abstract translation: 目的:提供氧化还原液流电池的歧管,以防止泵的运行停止时存在于堆叠或管道中的液体电解质的流动,从而抑制分流电流的产生。 构成:用于氧化还原液流电池的歧管包括用于流入和流出第一电极电解质的第一电极电解质入口(140)和第一电极电解质出口(141) 在内部形成的第一电极电解质反应部(120) 用于将从第一电极电解质入口注入的第一电极电解质供应到第一电极电解质反应部分的供给路径(160) 用于将第一电极电解质转移和排出到第一电极电解质出口的排气流路(161) 和用于转移第二电极电解质的第二电极电解质入口(150)和第二电极电解质出口(151)。

    커패시터용 전극 첨가 물질, 커패시터용 전극의 제조 방법 및 상기 전극을 갖는 리튬 이온 커패시터
    95.
    发明公开
    커패시터용 전극 첨가 물질, 커패시터용 전극의 제조 방법 및 상기 전극을 갖는 리튬 이온 커패시터 有权
    用于电容器用电极的添加剂材料,用于制备具有该电极的电容器和电容器用电极的方法

    公开(公告)号:KR1020120133898A

    公开(公告)日:2012-12-11

    申请号:KR1020110052811

    申请日:2011-06-01

    Abstract: PURPOSE: Additive materials for an electrode for a capacitor, a method for manufacturing the electrode for the capacitor and a lithium ion capacitor including the electrode are provided to control an amount of anodic oxide by accurately controlling an amount of lithium inserted into cathodlic carbon. CONSTITUTION: An electrode for a capacitor is made of additive materials. The electrode for the capacitor is made by mixing active carbon for the capacitor. Anodic lithium mixed with the active carbon for the capacitor is electrochemically inserted into a cathode. An operation voltage in an insertion process is higher than the operation voltage after the insertion process. The lithium is inserted into the cathode at 40 to 100 degrees centigrade in an initial insertion process.

    Abstract translation: 目的:提供电容器用电极用添加剂,电容器用电极的制造方法以及包含电极的锂离子电容器,通过精确地控制插入阴极碳中的锂的量来控制阳极氧化物的量。 构成:用于电容器的电极由添加剂材料制成。 用于电容器的电极是通过混合电容器的活性炭制成的。 与电容器的活性炭混合的阳极锂电化学插入阴极。 插入过程中的操作电压高于插入处理后的操作电压。 在初始插入过程中,锂在40至100摄氏度下插入阴极。

    커패시터용 전극 첨가 물질 및 이를 이용하여 제조된 커패시터
    96.
    发明授权
    커패시터용 전극 첨가 물질 및 이를 이용하여 제조된 커패시터 有权
    用于电容器的电极的添加材料和使用其制备的电容器

    公开(公告)号:KR101157620B1

    公开(公告)日:2012-06-18

    申请号:KR1020110044568

    申请日:2011-05-12

    CPC classification number: Y02E60/13 H01G11/08 C01B32/30 H01G11/32

    Abstract: PURPOSE: Electrode additives and a capacitor manufactured by using the same are provided to control insertion quantity of lithium by inserting the lithium which exists in an anodic oxide into a cathode. CONSTITUTION: Electrode additives for a capacitor are obtained by mixing a lithium system compound, a manganese system compound, and an iron system compound and firstly heat-treating a mixture at 400degrees for 72hours. The mixture is secondly heat-treated at 700 to 1,100degrees for 1 to 30hours. An electrode for the capacitor is provided by mixing the electrode additives for the capacitor with activated carbon.

    Abstract translation: 目的:提供电极添加剂和使用该电极的电容器,通过将存在于阳极氧化物中的锂插入阴极来控制锂的插入量。 构成:通过混合锂系化合物,锰系化合物和铁系化合物得到电容器用电极添加剂,首先以400℃热处理混合物72小时。 将混合物第二次在700至1100度热处理1至30小时。 通过将电容器的电极添加剂与活性炭混合来提供电容器的电极。

    리튬 이온 커패시터
    97.
    发明授权
    리튬 이온 커패시터 有权
    硬币型锂离子电容器

    公开(公告)号:KR101139426B1

    公开(公告)日:2012-04-27

    申请号:KR1020100093721

    申请日:2010-09-28

    Abstract: Disclosed is a coin type lithium ion capacitor which includes a positive electrode made of an activated carbon based positive active material and a negative electrode opposite to the positive electrode with a first separator interposed therebetween. The negative electrode includes a graphite electrode including a first current collector and a graphite based negative active material coated onto the first current collector; and a lithium metal member opposite to the graphite electrode with a second separator interposed therebetween and including a second current collector and lithium metal coated on the second current collector, in which lithium ions of the lithium metal move from the lithium metal to the positive electrode through the graphite electrode during discharge and are carried in the graphite electrode from the positive electrode during charge.

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