IP Library Patent Application 18363662
Patent Application
App. No. 18/363,662

AUGMENTATION NODES AND ASSOCIATED SYSTEMS AND METHODS

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Patent No.
US None
App. No.
18/363,662
Abstract

A method for augmenting one or more batteries in an energy storage system includes exchanging energy between one or more first batteries of the energy storage system and a source/load via a plurality of battery power buses. Each of the one or more first batteries is electrically coupled to the plurality of battery power buses without use of a power converter electrically coupled between the first battery and the plurality of battery power buses. The method further includes (a) augmenting the one or more first batteries via one or more augmentation batteries of an augmentation node, where the one or more augmentation batteries are electrically coupled to the plurality of battery power buses via at least one augmentation power converter, and (b) controlling operation of the at least one augmentation power converter at least partially based on state of health of the one or more first batteries.

Claims (32)

1 . A method for augmenting one or more batteries in an energy storage system, the method comprising:

exchanging energy between one or more first batteries of the energy storage system and a source/load via a plurality of battery power buses, each of the one or more first batteries being electrically coupled to the plurality of battery power buses without use of a power converter electrically coupled between the first battery and the plurality of battery power buses;

augmenting the one or more first batteries via one or more augmentation batteries of an augmentation node, the one or more augmentation batteries being electrically coupled to the plurality of battery power buses via at least one augmentation power converter; and

controlling operation of the at least one augmentation power converter at least partially based on state of health of the one or more first batteries.

2 . The method of claim 1 , wherein the source/load is capable of both providing electric power to the energy storage system and receiving electric power from the energy storage system.

3 . The method of claim 1 , further comprising electrically interfacing the one or more first batteries with the source/load via a power converter electrically coupled between the plurality of battery power buses and the source/load.

4 . The method of claim 1 , wherein controlling operation of the at least one augmentation power converter at least partially based on the state of health of the one or more first batteries comprises controlling the at least one augmentation power converter to regulate magnitude of current flowing between the at least one augmentation power converter and the plurality of battery power buses, at least partially based on the state of health of the one or more first batteries.

5 . The method of claim 1 , wherein the state of health of the one or more first batteries comprises a relationship between present capacity of the one or more first batteries and original capacity of the one or more first batteries.

6 . The method of claim 1 , wherein controlling operation of the at least one augmentation power converter at least partially based on the state of health of the one or more first batteries comprises controlling the at least one augmentation power converter to regulate magnitude of power flowing between the at least one augmentation power converter and the plurality of battery power buses, at least partially based on the state of health of the one or more first batteries.

7 . The method of claim 1 , wherein controlling operation of the at least one augmentation power converter at least partially based on the state of health of the one or more first batteries comprises controlling the at least one augmentation power converter to regulate impedance of the augmentation node, as seen from a perspective of the one or more first batteries, at least partially based on the state of health of the one or more first batteries.

8 . The method of claim 1 , further comprising controlling the at least one augmentation power converter based at least partially on state of charge of the one or more first batteries.

9 . The method of claim 1 , further comprising controlling the at least one augmentation power converter to decrease a difference between (a) state of charge of the one or more first batteries and (b) state of charge of the one or more augmentation batteries.

10 . The method of claim 9 , wherein the state of charge of the one or more first batteries comprises one of an average state of charge of the one or more first batteries and a median state of charge of the one or more first batteries.

11 . The method of claim 9 , wherein the state of charge of the one or more augmentation batteries comprises one of an average state of charge of the one or more augmentation batteries and a median state of charge of the one or more augmentation batteries.

12 . The method of claim 1 , further comprising iteratively controlling the at least one augmentation power converter to decrease a difference between (a) state of charge of the one or more first batteries and (b) state of charge of the one or more augmentation batteries.

13 . An augmented energy storage system, comprising:

a first battery power bus;

a second battery power bus;

one or more first batteries, each first battery being electrically coupled between the first battery power bus and the second battery power bus without use of a power converter;

a plurality of augmentation nodes electrically coupled between the first battery power bus and the second battery power bus, each augmentation node including a respective augmentation battery and respective augmentation power converter; and

a controller configured to control operation of the respective augmentation power converter of each augmentation node at least partially based on state of health of the one or more first batteries.

14 . The augmented energy storage system of claim 13 , wherein the plurality of augmentation nodes are electrically coupled in series between the first battery power bus and the second battery power bus.

15 . The augmented energy storage system of claim 13 , wherein the plurality of augmentation nodes are electrically coupled in parallel between the first battery power bus and the second battery power bus.

16 . The augmented energy storage system of claim 13 , wherein in each augmentation node, the augmentation power converter of the augmentation node is configured to buffer the augmentation battery of the augmentation node from the respective augmentation battery of each other augmentation node.

17 . The augmented energy storage system of claim 13 , wherein the controller is further configured to control the respective augmentation power converter of each augmentation node at least partially based on the state of health of the one or more first batteries to regulate magnitude of current flowing through the plurality of augmentation nodes.

18 . The augmented energy storage system of claim 13 , wherein the controller is further configured to control the respective augmentation power converter of each augmentation node at least partially based on the state of health of the one or more first batteries to regulate magnitude of power flowing between the plurality of augmentation nodes and the first and second battery power buses.

19 . The augmented energy storage system of claim 13 , wherein the controller is further configured to control the respective augmentation power converter of each augmentation node at least partially based on the state of health of the one or more first batteries to regulate collective impedance of the plurality of augmentation nodes, as seen from a perspective of the one or more first batteries.

20 . A method for augmenting one or more batteries in an energy storage system, the method comprising:

exchanging energy between one or more first batteries of the energy storage system and a source/load;

augmenting the one or more first batteries of the energy storage system via one or more augmentation batteries of an augmentation node;

electrically buffering the one or more augmentation batteries from the one or more first batteries via one or more augmentation power converters electrically coupled between the one or more augmentation batteries and the one or more first batteries; and

controlling operation of the one or more augmentation power converters to regulate at least one of (a) magnitude of current flowing between the augmentation node and the source/load, (b) magnitude of power flowing between the augmentation node and the source/load, and (c) impedance of the augmentation node from a perspective of the one or more first batteries, at least partially based on state of health of the one or more first batteries.

Assignments (2)
SECURITY INTEREST Recorded Apr 3, 2025
From: ELEMENT ENERGY, INC.
To: KEYFRAME CAPITAL PARTNERS, L.P.
Reel/Frame 070731/0176 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 2, 2023
From: KAHN, SETH MARSHALL; CAMMI, CORRADO
To: ELEMENT ENERGY, INC.
Reel/Frame 064463/0682 →