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    • 51. 发明授权
    • Cogeneration unit and wind power joint heating system and scheduling method therefor
    • 热电联产单元及风力发电联合采暖系统及其调度方法
    • US09285789B2
    • 2016-03-15
    • US13976934
    • 2012-10-22
    • Hongyu LongKunyao XuJianjun HeXingzhe HouRuilin XuKai Wu
    • Hongyu LongKunyao XuJianjun HeXingzhe HouRuilin XuKai Wu
    • G05D11/00G05B15/02F03D9/00F02C6/00H02J3/46
    • G05B15/02F02C6/00F03D9/00F03D9/25F25B2600/07H02J3/46Y02E10/725Y02E10/763Y02E20/14Y02P80/15
    • A cogeneration unit and wind power joint heating system and a scheduling method therefor. The joint heating system comprises a coal-fired steam-extraction condensing-steam cogeneration unit (A), a wind turbine generator unit (B), an air conditioner heat pump (108) parallel-connected to the coal-fired steam-extraction condensing-steam cogeneration unit (A) and to the wind turbine generator unit (B) via a power cable network (113), and a hot water heating radiator (110) connected to the coal-fired steam-extraction condensing-steam cogeneration unit (A) via a heating pipe network (114). The joint heating system also comprises an integrated scheduling control device (115), a first remote centralized controller (1121), a second remote centralized controller (1122), and a third remote centralized controller (1123). Heating is provided to a user by the hot water heating radiator (110) and the air conditioner heat pump (108); while electricity is provided jointly by the coal-fired steam-extraction condensing-steam cogeneration unit (A) and the wind turbine generator unit (B). The scheduling method comprises: after detecting over a period of time the state of power supply and the state of power consumption of the user via the integrated scheduling control device (115), making a prediction for an upcoming period of time, and then scheduling on this basis. Under the premise of ensuring electricity supply and heat supply, the scheduling method reduces hot water flow outputted for heating, and compensates with electricity heating.
    • 一种热电联产机组和风力发电联合供热系统及其调度方法。 联合加热系统包括燃煤蒸汽冷凝 - 蒸汽热电联产机组(A),风力发电机组(B),空调热泵(108)并联连接到燃煤蒸汽提取冷凝 (A),经由电力电缆网(113)与风力发电机组(B)连接的热水加热散热器(110),与燃煤蒸汽冷凝 - 蒸汽热电联供单元 A)经由加热管网(114)。 联合加热系统还包括集成调度控制装置(115),第一远程集中控制器(1121),第二远程集中控制器(1122)和第三远程集中控制器(1123)。 通过热水加热散热器(110)和空调热泵(108)向使用者提供加热; 同时由燃煤蒸汽冷凝 - 蒸汽热电联产机组(A)和风力发电机组(B)联合提供电力。 调度方法包括:经过综合调度控制装置(115)检测一段时间的电源状态和用户的电力消耗状态,对下一个时间段进行预测,然后进行调度 这个基础。 在确保供电供热的前提下,调度方式减少供热输出的热水流量,并用电加热补偿。
    • 52. 发明申请
    • COGENERATION UNIT AND WIND POWER JOINT HEATING SYSTEM AND SCHEDULING METHOD THEREFOR
    • 加热单元和风力发电接点加热系统及其调度方法
    • US20140121848A1
    • 2014-05-01
    • US13976934
    • 2012-10-22
    • Hongyu LongKunyao XuJianjun HeXingzhe HouRuilin XuKai Wu
    • Hongyu LongKunyao XuJianjun HeXingzhe HouRuilin XuKai Wu
    • G05B15/02
    • G05B15/02F02C6/00F03D9/00F03D9/25F25B2600/07H02J3/46Y02E10/725Y02E10/763Y02E20/14Y02P80/15
    • A cogeneration unit and wind power joint heating system and a scheduling method therefor. The joint heating system comprises a coal-fired steam-extraction condensing-steam cogeneration unit (A), a wind turbine generator unit (B), an air conditioner heat pump (108) parallel-connected to the coal-fired steam-extraction condensing-steam cogeneration unit (A) and to the wind turbine generator unit (B) via a power cable network (113), and a hot water heating radiator (110) connected to the coal-fired steam-extraction condensing-steam cogeneration unit (A) via a heating pipe network (114). The joint heating system also comprises an integrated scheduling control device (115), a first remote centralized controller (1121), a second remote centralized controller (1122), and a third remote centralized controller (1123). Heating is provided to a user by the hot water heating radiator (110) and the air conditioner heat pump (108); while electricity is provided jointly by the coal-fired steam-extraction condensing-steam cogeneration unit (A) and the wind turbine generator unit (B). The scheduling method comprises: after detecting over a period of time the state of power supply and the state of power consumption of the user via the integrated scheduling control device (115), making a prediction for an upcoming period of time, and then scheduling on this basis. Under the premise of ensuring electricity supply and heat supply, the scheduling method reduces hot water flow outputted for heating, and compensates with electricity heating.
    • 一种热电联产机组和风力发电联合供热系统及其调度方法。 联合加热系统包括燃煤蒸汽冷凝 - 蒸汽热电联产机组(A),风力发电机组(B),空调热泵(108)并联连接到燃煤蒸汽提取冷凝 (A),经由电力电缆网(113)与风力发电机组(B)连接的热水加热散热器(110),与燃煤蒸汽冷凝 - 蒸汽热电联供单元 A)经由加热管网(114)。 联合加热系统还包括集成调度控制装置(115),第一远程集中控制器(1121),第二远程集中控制器(1122)和第三远程集中控制器(1123)。 通过热水加热散热器(110)和空调热泵(108)向使用者提供加热; 同时由燃煤蒸汽冷凝 - 蒸汽热电联产机组(A)和风力发电机组(B)联合提供电力。 调度方法包括:经过综合调度控制装置(115)检测一段时间的电源状态和用户的电力消耗状态,对下一个时间段进行预测,然后进行调度 这个基础。 在确保供电供热的前提下,调度方式减少供热输出的热水流量,并用电加热补偿。
    • 58. 发明申请
    • ELECTRODE GROUP FOR USE IN A LITHIUM ION BATTERY
    • 电极组用于锂离子电池
    • US20100173205A1
    • 2010-07-08
    • US12640722
    • 2009-12-17
    • Yu-qun ZengYue-li WangKun LiuJian TuKai Wu
    • Yu-qun ZengYue-li WangKun LiuJian TuKai Wu
    • H01M4/00H01M2/14
    • H01M4/13H01M2/08H01M10/0587
    • An electrode group is configured for use in a lithium ion battery. The electrode group includes an anode plate and a cathode plate wound with a separator interposed therebetween. At least one metal oxide layer is disposed between the anode plate and the cathode plate. The metal oxide layer is provided at two length edges of the anode plate and/or the cathode plate, corresponding to the cutting edge of the cathode current collector where the cut burr formed in cutting process. Even though the cut burrs can pierce through the separator, the cut burrs still cannot contact the anode film. Any internal circuit short, caused by contact between the aluminum foil and the anode film, may therefore be avoided and, therefore, the performance of the lithium ion battery is remarkably improved.
    • 电极组配置用于锂离子电池。 电极组包括阳极板和在其间缠绕有隔膜的阴极板。 至少一个金属氧化物层设置在阳极板和阴极板之间。 金属氧化物层设置在阳极板和/或阴极板的两个长度边缘处,对应于在切割过程中形成切割毛刺的阴极集电器的切割边缘。 即使切割毛刺可以穿透分离器,切割毛刺仍然不能接触阳极膜。 因此,可以避免由铝箔和阳极膜之间的接触引起的内部电路短路,因此显着提高了锂离子电池的性能。