The present disclosure relates to the field of energy storage.
Electrical energy storage systems may use storage elements such as batteries, flywheels, fuel cells, thermal storage materials, electrochemical storage materials, flow battery, and kinetic storage materials. Battery electrical storage systems (BESSs) include, for example, large-scale systems for utilities as well as small-scale systems such as mobile chargers. The storage systems may charge from an energy source, such as the grid, a solar power generation system, a wind turbine, a mobile solar panel, a generator, and/or a turbine. The storage system may discharge the energy for consumption by electrical loads when the alternative sources of the loads are, for example, more expensive and/or not available.
The following is a short summary of some of the inventive concepts for illustrative purposes only and is not an extensive overview, and is not intended to identify key or critical elements or to limit or constrain the inventions and examples in the detailed description. One skilled in the art will recognize other novel combinations and features from the detailed description.
An electrical energy storage system may include multiple energy storage modules connected to a power converter (such as an inverter, power supply, DC/DC converter, or a bidirectional inverter), where each module may be connected with an independent physical and electrical connection. The inverter may include separate protection circuit boards for each storage module connection terminal set. Multiple protection circuits may be included in the inverter. Each protection circuit may include multiple sensors for detecting failure of the storage module, or a communication circuit for receiving a notification of a failure. The electrical configurations between the inverter and modules may use a bus configuration.
These and other features, aspects, and advantages of the present disclosure will become better understood with regard to the following description, claims, and drawings. The present disclosure is illustrated by way of example, and not limited by, the accompanying figures. In the drawings, like numerals reference similar elements.
The accompanying drawings, which form a part hereof, show examples of the disclosure. It is to be understood that the examples shown in the drawings and/or discussed herein are non-exclusive and that there are other examples of how the disclosure may be practiced. As used herein, the term “or” means non-exclusive or (and/or) and may include any combination of the listed items.
Disclosed herein are methods, devices, and systems for modular and portable electrical energy storage with independent electrical and mechanical connections for each energy storage module. Multiple energy storage modules may share a common power device in a stackable configuration, increasing portability. Each energy storage module may be electrically and mechanically connected to the power device with a separate electrical and mechanical connection, such as a star configuration. Electrical energy storage modules may use storage elements, such as batteries, flywheels, fuel cells, flow battery, thermal storage materials, electrochemical storage materials, and kinetic storage materials. For example, in a battery energy storage system (BESS) each battery module may have a separate cable connecting it to the power device. For example, separate electrical conductors may be incorporated into support feet and transect the device, such as the power device or the battery module. For example, the circuit board of the power device may electrical connect to 4 support feet, one at each corner of the device, and each battery module may be electrically connected to one of the support feet. In this example, 4 battery modules may be connected to the power device. Other example systems may include 5, 6, 8, or 10 feet, and therefore allow up to 10 energy storage modules. The system may incorporate between 2 and 20 support feet, each combined with a conductor. BESSs may be used as a primary example in this disclosure, but may be understood that alternative electrical energy storage systems may be used instead of BESSs.
The inverter may include separate protection circuit boards for each storage module connection terminal set (“terminal set”), such as a positive terminal and negative terminal in a terminal set. Multiple protection circuits may be included in the inverter, such as within a terminal set, between terminal sets, between the terminal set and the power converter circuit, and within the power converter circuit. As used herein, a terminal means a set of conductors for transferring electrical power. Each protection circuit may include multiple sensors for detecting failure of the storage module, or a communication circuit for receiving a notification of a failure. The electrical configuration between the inverter and modules may include a star configuration or a bus configuration for power delivery. A star configuration may have separate electrical conductors between the inverter and each module. A bus configuration may have common electrical conductors between the inverter and each module. Hybrid configurations (combining star and bus features) may be used for BESSs
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A charger 109 may be connected to the same power source 101 or a different power source. Charger 109 may be connected to energy storage modules 104A-104n independently from connections 103A-103n, and charger 109 may be configured to charge one or more of energy storage modules 104A-104n independently from power device 102. For example, when power device 102 is charging one set of energy storage modules, charger 109 may charge a second set. For example, when power device is rated for 50 amperes (A), and charging a set of energy storage modules at full charge rate requires 80 A, charger 109 may be used to provide an additional 30 A of charging current.
Reference is now made to
Power device 200B may include DC power source terminals 205B configured to connect to an DC power source 201B, such as power source 101 of
Power device 200C may include AC+DC power source terminals 205C configured to connect to AC power source 201A and DC power source 201B, such as power source 101 of
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Specific dimensions, specific materials, specific ranges, specific resistivities, specific voltages, specific shapes, and/or other specific properties and values disclosed herein are example in nature and do not limit the scope of the present disclosure. The disclosure herein of particular values and particular ranges of values for given parameters are not exclusive of other values and ranges of values that may be useful in one or more of the examples disclosed herein. Moreover, it is envisioned that any two particular values for a specific parameter stated herein may define the endpoints of a range of values that may be suitable for the given parameter. For example, the disclosure of a first value and a second value for a given parameter can be interpreted as disclosing that any value between the first and second values could also be employed for the given parameter. For example, if parameter X is exemplified herein to have value A and exemplified to have value Z, it is envisioned that parameter X may have a range of values from about A to about Z. Similarly, it is envisioned that disclosure of two or more ranges of values for a parameter (whether such ranges are nested, overlapping or distinct) subsume all possible combination of ranges for the value that might be claimed using endpoints of the disclosed ranges. For example, if parameter X is exemplified herein to have values in the range of 1-10, or 2-9, or 3-8, it is also envisioned that Parameter X may have other ranges of values including 1-9, 1-8, 1-3, 1-2, 2-10, 2-8, 2-3, 3-10, and 3-9.
In the description of various illustrative features, reference is made to the accompanying drawings, which form a part hereof, and in which is shown, by way of illustration, various features in which aspects of the disclosure may be practiced. It is to be understood that other features may be utilized and structural and functional modifications may be made, without departing from the scope of the present disclosure.
Terms such as “multiple” as used in this disclosure indicate the property of having or involving several parts, elements, or members.
It may be noted that various connections are set forth between elements herein. These connections are described in general and, unless specified otherwise, may be direct or indirect; this specification is not intended to be limiting in this respect, and both direct and indirect connections are envisioned. Further, elements of one feature in any of the embodiments may be combined with elements from other features in any of the embodiments, in any combinations or sub-combinations.
All described features, and modifications of the described features, are usable in all aspects of the inventions taught herein. Furthermore, all of the features, and all of the modifications of the features, of all of the embodiments described herein, are combinable and interchangeable with one another.
Clause 1. An apparatus, comprising:
Clause 2. The apparatus of Clause 1, wherein the power converter comprises an AC/DC or a DC/AC converter.
Clause 3. The apparatus of any one of Clause 1 or 2, wherein the power converter comprises a DC/DC converter.
Clause 4. The apparatus of any one of Clauses 1 to 3, wherein each of the plurality of protection circuits comprises at least one sensor configured for detecting the failure.
Clause 5. The apparatus of any one of Clauses 1 to 4, wherein each of the plurality of protection circuits comprises a communication circuit for receiving a notification of failure from the respective one of the plurality of electrical energy storage devices.
Clause 6. The apparatus of any one of Clauses 1 to 5, wherein the electrical energy storage devices comprise at least one storage element selected from the group consisting of batteries, thermal storage materials, kinetic storage materials, fuel cell, flow batteries, and electrochemical storage materials.
Clause 7. A system comprising:
Clause 8. The system of Clause 7, wherein the power device comprises an AC/DC or a DC/AC converter.
Clause 9. The system of any one of Clauses 7 or 8, wherein the power device comprises a DC/DC converter.
Clause 10. The system of any one of Clauses 7 to 9, wherein each of the plurality of protection circuits comprises at least one sensor configured for detecting the failure.
Clause 11. The system of any one of Clauses 7 to 10, wherein each of the plurality of protection circuits comprises a communication circuit for receiving a notification of failure from the respective one of the plurality of electrical energy storage modules.
Clause 12. The system of any one of Clauses 7 to 11, wherein the electrical energy storage modules comprise at least one storage element selected from the group consisting of batteries, thermal storage materials, kinetic storage materials, fuel cell, flow batteries, and electrochemical storage materials.
Clause 13. A method, comprising:
Clause 14. The method of Clause 13, wherein the power converter comprises an AC/DC or a DC/AC converter.
Clause 15. The method of any one of Clauses 13 or 14, wherein the power converter comprises a DC/DC converter.
Clause 16. The method of any one of Clauses 13 to 15, wherein each of the plurality of protection circuits comprises at least one sensor configured for detecting the failure.
Clause 17. The method of any one of Clauses 13 to 16, wherein each of the plurality of protection circuits comprises a communication circuit for receiving a notification of failure from the respective one of the plurality of electrical energy storage devices.
Clause 18. The method of any one of Clauses 13 to 17, wherein the electrical energy storage devices comprise at least one storage element selected from the group consisting of batteries, thermal storage materials, kinetic storage materials, fuel cell, flow batteries, and electrochemical storage materials.
Clause 19. An apparatus, comprising:
Clause 20. The apparatus of Clause 19, wherein the conductor is electrically connected to the power converter.
Clause 21. The apparatus of any one of Clause 19 or 20, wherein the power converter comprises an AC/DC converter, a DC/DC converter, or a DC/AC converter.
Clause 22. The apparatus of any one of Clauses 19 to 21, further comprising a protection circuit, wherein the protection circuit is electrically connected between the conductor and the power converter, wherein the protection circuit is configured to disconnect the power converter from the conductor following a failure of a device connected to the electrical socket or the electrical plug.
Clause 23. The apparatus of Clause 22, wherein the protection circuit comprises at least one sensor configured for detecting the failure.
Clause 23. The apparatus of any one of Clauses 22 to 23, wherein the protection circuit comprises a communication circuit for receiving a notification of failure from an electrical energy storage devices.
Clause 24. An apparatus, comprising:
Clause 25. The apparatus of Clause 24, wherein the conductor is electrically connected to the electrical energy storage device.
Clause 26. The apparatus of any one of Clause 24 or 25, wherein the electrical energy storage devices comprise at least one storage element selected from the group consisting of batteries, thermal storage materials, kinetic storage materials, fuel cell, flow batteries, and electrochemical storage materials.
Clause 27. The apparatus of any one of Clauses 24 to 26, further comprising a communication circuit for sending a notification of failure of the electrical energy storage device to another device.
Clause 28. The apparatus of any one of Clauses 24 to 27, further comprising a protection circuit, wherein the protection circuit is electrically connected between the conductor and the electrical energy storage devices, wherein the protection circuit is configured to disconnect the electrical energy storage devices from the conductor following a failure of a device connected to the electrical socket or the electrical plug.
Clause 29. The apparatus of Clause 28, wherein the protection circuit comprises at least one sensor configured for detecting the failure.
Clause 30. The apparatus of any one of Clauses 1 to 6, further comprising:
Clause 31. The apparatus of Clause 30, wherein the terminal is electrically connected to the power converter.
This application is a continuation of U.S. application Ser. No. 18/157,148 filed Jan. 20, 2023, which is a continuation of U.S. application Ser. No. 17/133,202 filed Dec. 23, 2020 (now U.S. Pat. No. 11,611,212), which claims priority to U.S. Provisional Application No. 62/955,498 filed Dec. 31, 2019, hereby incorporated by reference in their entireties.
Number | Date | Country | |
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62955498 | Dec 2019 | US |
Number | Date | Country | |
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Parent | 18157148 | Jan 2023 | US |
Child | 18648748 | US | |
Parent | 17133202 | Dec 2020 | US |
Child | 18157148 | US |