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    • 12. 发明申请
    • METHOD FOR REAL-TIME CONTROL OF ENERGY STORAGE UNITS TO REDUCE ELECTRICITY COST
    • 实时控制能源储存单位降低电力成本的方法
    • US20140019188A1
    • 2014-01-16
    • US13858031
    • 2013-04-06
    • Babak AsghariRatnesh Sharma
    • Babak AsghariRatnesh Sharma
    • G06Q10/06
    • G06Q10/06315G06Q50/06H02J3/008Y04S50/10
    • A method for controlling an energy storage unit having a model which tracks each charging instances includes, for each charging event, capturing energy charged into the energy storage unit and an unit energy price of the charging source(s) at the time of charging; updating a unit price of total energy stored in the storage unit at each time-step; during a discharging event, updating the unit price of energy in the storage unit on a selected cost model; comparing the unit price of energy in the storage unit with other generation sources in the microgrid and a utility tariff; selecting a lowest cost combination from generation, storage, and grid and using the lowest cost combination to supply a load; and if a controller decides to use stored energy at any time, sending a discharge command to the energy storage unit.
    • 用于控制具有跟踪每个充电实例的模型的能量存储单元的方法包括:对于每个充电事件,捕获充电到能量存储单元中的能量和充电时的充电源的单位能量价格; 在每个时间步骤更新存储在存储单元中的总能量的单价; 在放电事件期间,以选定的成本模型更新存储单元中的能量的单价; 将存储单元中的能源单价与微电网中的其他发电源进行比较和公用事业电价; 从发电,存储和电网中选择最低成本的组合,并使用最低成本组合来提供负载; 并且如果控制器随时决定使用存储的能量,则向能量存储单元发送放电命令。
    • 20. 发明授权
    • Two-fluid spray cooling system
    • 双流体喷雾冷却系统
    • US07284389B2
    • 2007-10-23
    • US11040403
    • 2005-01-21
    • Ratnesh SharmaCullen E. BashChandrakant D. Patel
    • Ratnesh SharmaCullen E. BashChandrakant D. Patel
    • F25D3/00
    • H01L23/4735H01L2224/16H01L2224/73253H01L2924/00011H01L2924/00014H01L2224/0401
    • A cooling system including a housing forming a cooling chamber containing the component submerged in a pool of alcohol, oil or glycerine, a sprayer configured to spray water at the component through the oil or glycerine, and a heat exchanger configured to cool the oil or glycerine. A control system receives heat-generation information from temperature sensors on water-impingement regions of the component, and controls the spraying in response to this information. A pump pumps the oil or glycerine from a lower portion of the cooling chamber to the heat exchanger. A sprayer inlet draws water from an upper portion of the cooling chamber, or from a lower portion of a reservoir connected to the heat exchanger. Oil or glycerine is passed from a portion of the heat exchanger reservoir back to the cooling chamber, and water passes from an upper portion of the reservoir to the sprayer. Alternatively, the oil or glycerine could be replaced with helium.
    • 一种冷却系统,包括形成包含浸没在醇,油或甘油池中的组分的冷却室的壳体,被配置为通过油或甘油喷射组分的水的喷雾器和被配置为冷却油或甘油的热交换器 。 控制系统从部件的水冲击区域的温度传感器接收发热信息,并根据该信息控制喷射。 泵将油或甘油从冷却室的下部泵送到热交换器。 喷雾器入口从冷却室的上部或从连接到热交换器的储存器的下部抽出水。 油或甘油从热交换器储存器的一部分返回到冷却室,并且水从贮存器的上部通过喷雾器。 或者,油或甘油可以用氦代替。