Power system and power system control method
US-2024113556-A1 · Apr 4, 2024 · US
US9478990B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9478990-B2 |
| Application number | US-201313837584-A |
| Country | US |
| Kind code | B2 |
| Filing date | Mar 15, 2013 |
| Priority date | Jun 25, 2012 |
| Publication date | Oct 25, 2016 |
| Grant date | Oct 25, 2016 |
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Energy storage devices, servers, and methods for controlling the same are disclosed. The energy storage device can include at least one battery pack, a network interface configured to exchange data with a server, and a connector that receives alternating current (AC) power from an internal power network or outputs AC power to the internal power network. Energy storage device can also include a power converter configured to convert the AC power from the internal power network into direct current (DC) power based on the information about the power to store when information about power to store is received from the server, or, convert DC power stored in the battery pack into AC power based on the information about the power to output when information about power to output to the internal power network is received from the server. Accordingly, energy may be more efficiently stored.
Opening claim text (preview).
What is claimed is: 1. An energy storage device comprising: at least one battery pack; a network interface to exchange data with a server; a connector to receive alternating current (AC) power from an internal power network or to output AC power to the internal power network; a power converter to convert the AC power from the internal power network into direct current (DC) power based on the information about the power to store when information about power to store is received from the server, or, convert DC power stored in the battery pack into AC power based on the information about the power to output when information about power to be output to the internal power network is received from the server; and a controller to control the power converter, wherein the network interface transmits a pairing request signal to the server when the energy storage device is powered on, and then receives a pairing response signal from the server, wherein each battery pack includes: a connector including a positive power terminal, a negative power terminal and a control signal terminal; a battery cell unit; a battery controller configured to control the battery cell unit, wherein the battery controller controls to transfer status information to the controller through the control signal terminal, the status information including a temperature and level of power stored in the battery cell unit. 2. The energy storage device according to claim 1 , wherein the controller controls the power converter to operate the energy storage device in a charge mode when the information about the power to store is received from the server, and, control the power converter to operate the energy storage device in a discharge mode when the information about the power to output to the internal power network is received from the server. 3. The energy storage device according to claim 2 , further comprising: a switching unit to perform a switching operation that charges the DC power converted by the power converter in the battery pack in the charge mode. 4. The energy storage device according to claim 1 , further comprising: a second connector to or from which the at least one battery pack is attached or detached; and wherein the controller performs a control operation to turn off an electrical connection between a first battery pack and a second battery pack for a predetermined period when the second battery pack is additionally attached to the second connector under a condition that the first battery pack is attached to the second connector. 5. The energy storage device according to claim 1 , wherein the network interface receives the information about the power to store and the information about the power to output to the internal power network over a radio channel different from that of arm another energy storage device. 6. A method for controlling an energy storage device, the method comprising: converting, by a power converter, alternating current (AC) power from an internal power network into direct current (DC) power based on information about power to store when the information about the power to store is received from a server; storing the converted DC power; converting the stored DC power into AC power based on information about power to output to the internal power network when the information about the power to output is received from the server; and outputting the converted AC power to the internal power network; transmitting a pairing request signal to the server when the energy storage device is powered on; and receiving a pairing response signal from the server, wherein energy storage device comprises at least one battery pack, and a controller to control the power converter, wherein each battery pack includes: a connector including a positive power terminal, a negative power terminal and a control signal terminal; a batter cell unit; a battery controller configured to control the battery cell unit, wherein the battery controller controls to transfer status information to the controller through the control signal terminal, the status information including a temperature and level of power stored in the battery cell unit. 7. The method according to claim 6 , wherein the information about the power to store and the information about the power to output to the internal power network are received over a radio channel different from that of an another energy storage device. 8. The energy storage device according to claim 4 , wherein the second connector includes positive power connection terminal, negative power connection terminal and control signal connection terminal, which are coupled with the positive power terminal, the negative power terminal and the control signal terminal of the attached battery pack, respectively. 9. The method according to claim 6 , wherein the energy storage device further comprises: a connector to receive alternating current (AC) power from the internal power network or to output AC power to the internal power network, a second connector to or from which the at least one battery pack is attached or detached, wherein the second connector includes positive power connection terminal, negative power connection terminal and control signal connection terminal, which are coupled with the positive power terminal, the negative power terminal and the control signal terminal of the attached battery pack, respectively.
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