Battery system
The battery system addresses installation and scalability challenges by integrating power lines and control cabinets in pre-assembled battery containers, enhancing ease of use, safety, and energy density through a DC link system and fire protection.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-01-19
- Publication Date
- 2026-04-14
AI Technical Summary
Conventional battery containers in energy storage systems face challenges in transportation, installation, and expansion due to their large size and weight, requiring complex and time-consuming processes with high costs, and lack ease of operation, scalability, and safety features.
A battery system comprising multiple battery containers with integrated power lines and a control cabinet, allowing for easy installation, scalability, and enhanced safety through a DC link system and fire extinguishing capabilities, with components pre-assembled for efficient transportation and on-site assembly.
The system reduces construction time and costs, improves scalability and safety, and enhances energy density by enabling easy transportation and on-site installation of pre-assembled components, while maintaining efficient power transmission and fire protection.
Smart Images

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Abstract
Description
Technical Field
[0001] This application claims priority based on Korean Patent Application No. 10-2022-0008059 filed on January 19, 2022, and all the contents disclosed in the specification and drawings of the said application are incorporated into this application.
[0002] The present invention relates to a battery, and more particularly, to a battery system including a plurality of battery containers connected to each other.
Background Art
[0003] In recent years, with issues such as power shortages and environmentally friendly energy being raised, energy storage systems (ESSs) for storing the generated power have received more attention.
[0004] For example, as one of the solutions for adjusting the power supply and demand, a smart grid system has been proposed. The amount of power consumed by consumers is not always constant and can vary at any time. Typically, by using such an ESS, it is easier to construct a power management system such as a smart grid system, and it is possible to easily adjust the power supply and demand in a specific area or city. Also, as the commercialization of electric vehicles becomes full-scale, such an ESS can also be applied to electric charging stations for charging electric vehicles.
[0005] ESSs can be configured in various forms, but typically, they can be configured in a form including one or more battery containers. A container is a configuration provided to be able to accommodate articles inside, and generally often refers to a ship container that can be transported not only on land but also at sea. In particular, ship containers can have a large size such as a 20-foot container or a 40-foot container. Since the battery containers included in ESSs are large in size like such ship containers, it can be said that the term "container" is used.
[0006] A battery container may include multiple battery modules connected to each other in series and / or parallel. Here, the multiple battery modules are stacked via rack frames or other fixed structures to form a battery rack, and one or more battery racks may be housed inside the container housing.
[0007] In the case of ESS (Energy Storage Systems) used in smart grid systems, multiple battery containers can typically be connected to each other to increase charging and discharging capacity. However, conventional battery containers present problems in terms of transportation and installation. Furthermore, because battery containers are large and very heavy, they are difficult to move once they are in position. Therefore, connecting multiple battery containers on-site requires not only meticulous process design and a high level of skill from the workers, but also potentially a significant amount of time and cost.
[0008] Furthermore, with conventional ESS systems, connecting additional battery containers is not easy. For example, after installing an ESS with multiple battery containers connected, the process of connecting and installing even more battery containers becomes extremely difficult. Therefore, there is a problem that the process of adjusting or expanding the ESS value chain by connecting multiple containers on-site is extremely complicated and not easy. For example, when installing an existing ESS, ground work is required to connect the battery containers directly to the power conversion system (PCS: Power Conversion System or Power Conditioning System) using a DC method. Also, when using battery containers, there is a constraint that the longer the distance between the battery container and the PCS, the longer the DC line that must be applied. Therefore, with conventional technology, the installation process is complex, the installation time is very long, and the preparation of each material requires a great deal of cost and effort.
[0009] Furthermore, ESS (Energy Storage Systems) are required to possess not only these qualities such as ease of operation, assembly, and expandability, but also diverse performance characteristics such as high energy density and fire safety. [Overview of the project] [Problems that the invention aims to solve]
[0010] The present invention was devised to solve the above-mentioned problems, and aims to provide a battery system that is excellent in terms of ease of installation, expandability, safety, etc., and an energy storage system including said battery system.
[0011] The technical problems that this invention aims to solve are not limited to those described above, and other problems will be clearly understood by those skilled in the art from the following description of the invention. [Means for solving the problem]
[0012] To achieve the above objective, a battery system according to one aspect of the present invention includes a plurality of battery containers, each comprising a battery rack, a container housing that houses the battery rack in an internal space, and a first power line configured to transmit charging power and discharging power, wherein the first power lines are connected to each other; and a control cabinet comprising a control module configured to control the plurality of battery containers, a cabinet housing that houses the control module in an internal space, and a second power line configured to be connected to the first power line of one of the plurality of battery containers.
[0013] Here, the first power line and the second power line may be configured to transmit DC power.
[0014] The system may further include a PCS (Power Conditioning System) connected to the second power line of the control cabinet and configured to perform AC-DC conversion of charging and discharging power to the battery container.
[0015] Furthermore, multiple battery containers may be configured to transmit power to other battery containers.
[0016] Furthermore, the first power line may include a plurality of main connectors and a main busbar that extends continuously between the plurality of main connectors.
[0017] Furthermore, the multiple battery containers are spaced apart by a predetermined distance in the horizontal direction, and a battery system according to one aspect of the present invention may further include a link busbar that connects the main connectors of opposing battery containers.
[0018] Furthermore, multiple main connectors may be located on the upper side of the container housing.
[0019] Furthermore, the battery racks may be included in multiple locations inside the container housing and connected in parallel to the first power line.
[0020] Furthermore, multiple battery containers and AC lines can be connected to the control cabinet.
[0021] Furthermore, two or more of the aforementioned control cabinets may be included and connected to a single PCS, and multiple battery containers may be connected to each control cabinet.
[0022] Furthermore, a battery system according to one aspect of the present invention may further include a fire cabinet configured to supply fire extinguishing fluid to one of the plurality of battery containers.
[0023] Furthermore, multiple battery containers may be configured to supply the fire extinguishing liquid to each other.
[0024] Furthermore, an energy storage system according to another aspect of the present invention includes a battery system according to one aspect of the present invention.
Advantages of the Invention
[0025] According to one aspect of the present invention, it is possible to provide a battery system that is excellent in workability or assembly and can reduce the cost and time during construction.
[0026] In particular, in the case of one aspect of the present invention, it is possible to provide a battery container that is excellent in scalability and can easily cope with changes in the ESS value chain.
[0027] Further, according to one aspect of the present invention, it is possible to provide an all-in-one outdoor housing product at the system level that is easy to install on-site and inexpensive, rather than a conventional indoor rack level product.
[0028] Furthermore, according to one aspect of the present invention, in each battery container constituting the battery system, transportation and installation can be performed in a state where a battery module and various accessories are all mounted inside one housing. Therefore, transportation to the ESS construction area is easy, on-site installation can be minimized, and expansion convenience can also be improved.
[0029] Therefore, according to one aspect of the present invention, it is possible to provide a turnkey solution rather than a component supplier.
[0030] Also, according to one aspect of the present invention, it is possible to provide an energy storage system with a high energy density.
[0031] Also, according to one aspect of the present invention, it is possible to provide a battery container with improved safety in the event of a fire or the like.
[0032] Furthermore, according to one aspect of the present invention, when constructing an energy storage system using a plurality of battery containers, the construction convenience of the fire protection system can be improved.
[0033] Furthermore, a variety of other additional effects can be achieved through many embodiments of the present invention. These various effects of the present invention will be described in detail in each embodiment, although effects that are easily understood by those skilled in the art will not be described.
[0034] The following drawings accompanying this specification illustrate preferred embodiments of the invention and, together with the detailed description of the invention, serve to further illustrate the technical idea of the invention; therefore, the invention should not be construed as being limited solely to what is shown in the drawings. [Brief explanation of the drawing]
[0035] [Figure 1] This is a schematic perspective view showing a portion of the battery system according to one embodiment of the present invention. [Figure 2] This diagram schematically shows the electrical connection configuration of a battery system according to one embodiment of the present invention. [Figure 3] This is a schematic perspective view showing a configuration in which a portion of a battery container included in a battery system according to one embodiment of the present invention has been separated or moved. [Figure 4] This is a schematic top view showing a partial configuration of a battery system according to one embodiment of the present invention. [Figure 5] Figure 4 is a front view of the configuration. [Figure 6] In the embodiment shown in Figure 4, the connecting portion between battery containers is shown in an enlarged view. [Figure 7] This is an exploded perspective view schematically showing a portion of the battery container included in a battery system according to another embodiment of the present invention. [Figure 8] Figure 7 is a combined perspective view of the configuration. [Figure 9] This figure schematically shows a partial configuration of a battery container included in a battery system according to yet another embodiment of the present invention. [Figure 10]This figure schematically shows a partial configuration of a battery container included in a battery system according to yet another embodiment of the present invention. [Figure 11] This figure schematically shows the connection configuration of battery containers included in a battery system according to yet another embodiment of the present invention. [Figure 12] This figure schematically shows the connection configuration of battery containers included in a battery system according to yet another embodiment of the present invention. [Figure 13] This figure schematically shows a partial configuration of a battery container included in a battery system according to yet another embodiment of the present invention. [Figure 14] Figure 13 is a schematic diagram showing a partial connection configuration of the battery system, including the battery container. [Figure 15] This is an exploded perspective view schematically showing some components of a battery system according to yet another embodiment of the present invention. [Figure 16] A perspective view showing a partial configuration of a battery system to which the embodiment of Figure 15 is applied. [Figure 17] This figure schematically shows the configuration of a battery system according to yet another embodiment of the present invention. [Figure 18] This figure schematically shows the configuration of a battery system according to yet another embodiment of the present invention. [Figure 19] This is a schematic perspective view showing the configuration of a battery container included in a battery system according to yet another embodiment of the present invention. [Figure 20] This is an exploded perspective view of a part of the structure shown in Figure 19. [Figure 21] This is a schematic perspective view showing the configuration of a battery container included in a battery system according to yet another embodiment of the present invention. [Figure 22] This figure schematically shows a partial configuration of a battery system according to yet another embodiment of the present invention. [Figure 23] This figure shows an enlarged view of a portion of a battery container according to yet another embodiment of the present invention. [Figure 24] This diagram schematically shows the connection configuration of fire-fighting modules between two battery containers in a battery system according to one embodiment of the present invention. [Modes for carrying out the invention]
[0036] Preferred embodiments of the present invention will be described in detail below with reference to the attached drawings. Prior to this, terms and words used in this specification and in the claims shall not be interpreted in their usual and dictionary sense, but rather in a sense and concept corresponding to the technical idea of the present invention, in accordance with the principle that the inventor himself may appropriately define the concepts of terms in order to best describe the invention.
[0037] Therefore, it should be understood that the embodiments described herein and the configurations shown in the drawings represent only one of the most preferred embodiments of the present invention and do not represent the entire technical concept of the invention, and that there are various equivalents and modifications that can be substituted therein at the time of filing this application.
[0038] On the other hand, while terms such as up, down, left, right, front, and back are used in this specification to represent directions, these terms are used for convenience of explanation and it will be obvious to those skilled in the art that they can change depending on the position of the object being examined, the position of the observer, etc. In particular, in the drawings, unless otherwise specified, the X-axis direction refers to the left-right direction, the Y-axis direction refers to the front-back direction, and the Z-axis direction refers to the up-down direction.
[0039] In this specification, the terms "inside" and "outside" may be used with respect to each component, but unless otherwise specified, "inside" means the direction toward the central part of each component, and "outside" means the opposite direction.
[0040] Furthermore, this specification includes a variety of embodiments, and in each embodiment, detailed descriptions will be omitted if the descriptions of other embodiments are identical or similarly applicable, and the differences will be described primarily.
[0041] Figure 1 is a schematic perspective view showing a partial configuration of a battery system according to one embodiment of the present invention, and Figure 2 is a schematic diagram showing the electrical connection configuration of a battery system according to one embodiment of the present invention.
[0042] Referring to Figures 1 and 2, a battery system according to one embodiment of the present invention includes a battery container 100 and a control cabinet 200.
[0043] The battery container 100 may include a battery rack 110, a container housing 120, and a first power line 130.
[0044] The battery rack 110 may comprise a plurality of battery modules 111. Here, each battery module 111 may be configured in a form in which a plurality of battery cells (secondary batteries) are housed in a module case. The battery modules 111 can be stacked in one direction, for example, vertically, to form the battery rack 110. In particular, the battery rack 110 may be provided with a rack case to facilitate the stacking of the battery modules 111. In this case, the plurality of battery modules 111 can be housed in their respective storage spaces provided in the rack case to form a module stack. One module stack may constitute one battery rack 110, or two or more module stacks may constitute one battery rack 110.
[0045] Each battery module 111 included in the battery rack 110 may further include a control unit, such as a Battery Management System (BMS), either individually or in groups. For example, each battery module 111 may have a separate pack BMS. In this case, each battery module 111 may also be referred to as a battery pack. That is, the battery rack 110 can be said to include multiple battery packs. In the following description, the battery module 111 may be replaced by a battery pack.
[0046] The battery rack 110 may be included in one or more battery containers 100. In particular, there may be multiple battery racks 110 in the battery container 100. Such multiple battery racks 110 may be arranged in at least one direction, for example, horizontally. For example, the battery container 100 may contain eight battery racks 110, which may be arranged in the left-right direction (X-axis direction) inside the battery container 100. If multiple battery racks 110 are included, each battery rack 110 may be equipped with a separate control unit, such as a rack BMS. In this case, the rack BMS is connected to multiple pack BMSs included in the battery rack 110, and can send and receive data with and control the multiple pack BMSs. On the other hand, if the battery container 100 contains one or more rack BMSs, the rack BMS may be connected to a separate control device, such as a control cabinet 200, located outside the battery container 100. Alternatively, if the battery container 100 includes multiple rack BMSs, the battery container 100 may further include a separate integrated control unit, such as a battery processing unit (BPU), which communicates with and / or controls the multiple rack BMSs.
[0047] An open space can be formed inside the container housing 120. The container housing 120 can accommodate the battery rack 110 in this internal space. More specifically, the container housing 120 can be formed in a substantially rectangular parallelepiped shape, as shown in Figure 1 and other figures. In this case, the container housing 120 may comprise an upper housing, a lower housing, a front housing, a rear housing, a left housing, and a right housing, with the internal space at the center. The container housing 120 can accommodate the battery rack 110 in the internal space defined by these six unit housings.
[0048] The container housing 120 may be made of a material that ensures a certain level of rigidity and can stably protect its internal components from external physical and chemical factors. For example, the container housing 120 may be made of or contain a metal material such as steel. Furthermore, the container housing 120 may contain the same materials as those used in shipping containers.
[0049] Furthermore, the container housing 120 may have the same or similar dimensions as a shipping container. In addition, the container housing 120 may conform to predetermined shipping container standards such as ISO standards. For example, the container housing 120 may be designed to have the same or similar dimensions as a 20-foot or 40-foot container. However, the size of such a container housing 120 may be designed to have an appropriate size, pattern, and material depending on the circumstances. In particular, the size and shape of the container housing 120 may be set in various ways depending on the system to which the battery container 100 is applied, such as the scale and form of the energy storage system, the terrain, etc. The present invention is not limited to such a specific size, shape, material, etc. of the container housing 120.
[0050] The container housing 120 may be equipped with one or more doors E to facilitate the installation and maintenance of internal components such as the battery rack 110. For example, the container housing 120 may be equipped with multiple doors E on the front housing and / or rear housing.
[0051] The container housing 120 may be configured to be placed on the ground. Furthermore, if the battery system includes multiple battery containers 100, each container housing 120 may be placed on the ground. In this case, the multiple battery containers 100 may be arranged side by side horizontally on the ground. Alternatively, the multiple battery containers 100 may be arranged on the ground at a predetermined distance apart horizontally. For example, referring to the embodiment in Figure 2, the multiple battery containers 100 may be arranged side by side in the left-right direction at a predetermined distance apart.
[0052] The first power line 130 may be configured to transmit charging power and discharging power. That is, the first power line 130 may transmit charging power supplied to the battery container 100 and / or discharging power released from the battery container 100. In particular, the first power line 130 may transmit charging power supplied to the battery rack 110 included in the battery container 100 and discharging power released from the battery rack 110.
[0053] The first power line 130 may include an electrically conductive material, particularly a metallic material, for power transmission. For example, the first power line 130 may be configured in the form of a copper plate conductor or wire covered with an insulator. The first power line 130 may also include two first unit lines for power transmission, as shown in Figure 2, namely a first positive electrode line indicated by 130+ and a first negative electrode line indicated by 130-.
[0054] In a battery system according to one embodiment of the present invention, the battery container 100 may include multiple containers. For example, as shown in Figure 2, one battery system may include three containers, namely the first container B-LINK#1, the second container B-LINK#2, and the third container B-LINK#3. Of course, the number of such battery containers 100 can be varied in various ways.
[0055] With multiple battery containers 100 included in the battery system in this manner, the first power lines 130 of the multiple battery containers 100 can be connected to each other. For example, in the embodiment shown in Figure 2, the first power line 130 of the first container B-LINK#1 and the first power line 130 of the second container B-LINK#2 can be directly connected to each other. Also, in the embodiment shown in Figure 2, the first power line 130 of the second container B-LINK#2 and the first power line 130 of the third container B-LINK#3 can be directly connected to each other.
[0056] In particular, multiple battery containers 100 can be connected to each other via their first power lines 130 if they are physically close to each other. For example, since the first container B-LINK#1 is physically closer to the second container B-LINK#2 than to the third container B-LINK#3, the first container B-LINK#1 and the second container B-LINK#2 can be connected via their first power lines 130. Similarly, since the third container B-LINK#3 is closer to the second container B-LINK#2 than to the first container B-LINK#1, the third container B-LINK#3 and the second container B-LINK#2 can be connected via their first power lines 130. On the other hand, the first power line 130 of the third container B-LINK#3 is not directly connected to the first power line 130 of the first container B-LINK#1, but can be indirectly connected to the first power line 130 of the first container B-LINK#1 through the first power line 130 of the second container B-LINK#2.
[0057] In this embodiment, the first power lines 130 provided in multiple battery containers 100 can be said to be connected in series with each other. For example, in the embodiment shown in Figure 2, the first power lines 130 provided in three battery containers 100 can be connected in a line with each other. In particular, each first power line 130 may include a first positive electrode line 130+ and a first negative electrode line 130-. Therefore, it can be said that the first positive electrode lines 130+ and the first positive electrode lines 130+ are connected in a line with each other, and the first negative electrode lines 130- are connected in a line with each other.
[0058] The control cabinet 200 may include a control module 210, a cabinet housing 220, and a second power line 230.
[0059] The control module 210 can be configured to control the battery containers 100 included in the battery system. In particular, if the battery system includes multiple battery containers 100, the control module 210 can control each of the multiple battery containers 100. Furthermore, the control module 210 can monitor the various states of the multiple battery containers 100 and control them in an integrated manner.
[0060] The control module 210 can communicate with control units, such as rack BMSs, included in multiple battery containers 100 to send and receive data. For example, the control module 210 can receive information such as voltage, current, and charge status of the battery racks 110 included in the battery containers 100 from the rack BMS. Based on this information, it can control the charging and discharging operations of the battery racks 110. Alternatively, the control module 210 can receive sensing information from sensors included in the battery containers 100 and perform various other control operations based on the received sensing information.
[0061] The control module 210 provided in the control cabinet 200 and the BMS included in the battery container 100 can be implemented as products with various names and forms, such as processors, microprocessor units (MCUs), ASICs (Application-Specific Integrated Circuits), and CPUs (Central Processing Units).
[0062] The cabinet housing 220 has an internal space in which the control module 210 can be housed. In particular, the cabinet housing 220 may be made of a metal material such as steel to ensure rigidity. For this reason, the control cabinet 200 may also be called a control container, using the term "container" as in the battery container 100. However, since the cabinet housing 220 does not include a battery rack 110 for storing the charging and discharging power of the battery system, it may be made smaller than the container housing 120.
[0063] The control cabinet 200 may be a component that is physically separated from the battery container 100. That is, the cabinet housing 220 that forms the exterior of the control cabinet 200 may be located outside the container housing 120 that forms the exterior of the battery container 100. In particular, the control cabinet 200 may be located at a predetermined distance from the container housing 120. Also, the control cabinet 200 may be configured to be placed on the ground, just like the battery container 100. In particular, the control cabinet 200 may be arranged in a parallel configuration on the ground together with a plurality of battery containers 100.
[0064] The second power line 230 may be configured to transmit charging power and discharging power, similar to the first power line 130. In particular, the second power line 230 may be configured to be connected to the first power line 130.
[0065] Furthermore, the battery system according to one embodiment of the present invention may further include a link line 710, as shown in Figure 2. Here, the link line 710 may be connected between the control cabinet 200 and the battery container 100 and configured to transmit charge and discharge power between the control cabinet 200 and the battery container 100. Also, since the link line 710 is configured to transmit power between the first power line 130 and the second power line 230, it may also include a positive electrode line and a negative electrode line, similar to the first power line 130 and the second power line 230. That is, the second power line 230 may include two second unit lines for power transmission, namely a second positive electrode line indicated as 230+ and a second negative electrode line indicated as 230-, as shown in Figure 2.
[0066] Furthermore, if the battery system is equipped with multiple battery containers 100, a first power line 130 contained in one of the battery containers 100 can be connected to a second power line 230. For example, in the embodiment shown in Figure 2, three battery containers 100 are included together with a control cabinet 200, and the second power line 230 of the control cabinet 200 can be directly connected to the first power line 130 of the first container B-LINK#1. Here, the other battery containers 100 that are not directly connected to the second power line 230, namely the first power line 130 of the second container B-LINK#2 and the first power line 130 of the third container B-LINK#3, can be said to be indirectly connected to the second power line 230 through the first power line 130 of the first container B-LINK#1.
[0067] Furthermore, the second power line 230 may be connected in series with the first power line 130. In particular, the second positive electrode line 230+ may be connected in a line with the first positive electrode line 130+, and the second negative electrode line 230- may be connected in a line with the first negative electrode line 130-.
[0068] The second power line 230, like the first power line 130, may comprise an electrically conductive material such as a metal. For example, the second power line 230 may be configured in a form in which a copper conductor is covered and encased in an insulator.
[0069] One end of the second power line 230, for example the right end of the second power line 230 in Figure 2, can be connected to the battery container 100, and the other end of the second power line 230, for example the left end of the second power line 230 in Figure 2, can be connected to the power grid. Therefore, the control cabinet 200 can transmit charging power and discharging power between the power grid and the multiple battery containers 100 through the second power line 230. On the other hand, in this specification, the term "power grid" can be a concept that includes not only power plants and substations or transmission and distribution lines connected thereto, but also loads such as homes and factories. In other words, the power grid can broadly mean an object that is connected to a battery system according to one embodiment of the present invention and transmits and receives charging power or discharging power to and from the battery system.
[0070] According to this embodiment of the present invention, an easy-to-install battery system can be provided. In particular, according to this embodiment, a group of battery containers 100 and a control cabinet 200 provided separately from the battery containers 100 can be included in the battery system. In this case, each battery container 100 and control cabinet 200 can be said to have its components built into the housing in an all-in-one configuration. Therefore, in the process of constructing a battery system including multiple battery containers 100 and control cabinets 200, transportation and on-site installation are extremely easy.
[0071] Furthermore, according to this embodiment, if the control cabinet 200 and one battery container 100 are connected during the construction of the battery system, other battery containers 100 do not need to be directly connected to the control cabinet 200 on the power transmission path. Therefore, in the case of a battery container 100 that is far away from the control cabinet 200, it is sufficient for the power transmission path to be connected only to the adjacent battery container 100, and it is not necessary for the power transmission path to be directly connected to the control cabinet 200. In this case, the ease of installation is improved, while costs and time associated with installation are reduced.
[0072] Furthermore, according to this embodiment, it becomes easy to add other battery containers 100 after the battery system has been constructed. Therefore, the expandability of the battery system and energy storage system is improved, and the scale can be easily adjusted.
[0073] Furthermore, according to this embodiment, a control cabinet 200 is included separately from the battery container 100. Therefore, each battery container 100 can be controlled or monitored for various operations by the control cabinet 200. In this case, it is not necessary, or the need is reduced, to provide a separate control unit for each battery container 100. Therefore, each battery container 100 can reduce the space required to house a separate control unit, which is advantageous for improving energy density. In addition, in this case, the manufacturing costs of the battery container 100 that would otherwise require a control unit can be reduced.
[0074] As described above, a battery system according to one embodiment of the present invention may include a plurality of battery containers 100 and at least one control cabinet 200. In this case, the plurality of battery containers 100 and the control cabinet 200 can be said to have interconnected charging and discharging power transmission paths. Furthermore, the plurality of battery containers 100 and the control cabinet 200 can be said to be interconnected to form a link system. From this perspective, the battery containers 100 may be called B-LINK and the control cabinet 200 may be called E-LINK. The battery system according to one embodiment of the present invention may also be called a link system.
[0075] In a battery system according to one embodiment of the present invention, multiple battery containers 100 can be configured identically. For example, in the embodiment shown in Figure 2, three battery containers 100 are configured in the same form, and the battery system according to one embodiment of the present invention can be maintained even if their relative positions change. For example, in the embodiment shown in Figure 2, the second container B-LINK#2 may be placed in the position of the first container B-LINK#1, and the first container B-LINK#1 may be placed in the position of the second container B-LINK#2. In other words, in a battery system according to one embodiment of the present invention, each battery container 100 can be manufactured in the same form, and there is no need to pre-distribute and manufacture them separately according to the position they occupy in the battery system or the form of the battery system. Therefore, the construction of the battery system is easier, and it is advantageous in terms of saving costs and time.
[0076] The first power line 130 and the second power line 230 may be configured to transmit DC power. That is, the power transmitted via the first power line 130 and the second power line 230 may be DC power.
[0077] For example, in the embodiment shown in Figure 2, the first power lines 130 of the first container B-LINK#1, the second container B-LINK#2, and the third container B-LINK#3 are connected to the second power line 230 of the control cabinet 200. In this case, power can be transmitted between the first power line 130 and the second power line 230 in DC form, rather than AC. Therefore, both the first power line 130 and the second power line 230 can be referred to as DC lines.
[0078] Here, each battery container 100 and control cabinet 200 only needs to transmit power in DC form through the first power line 130 and the second power line 230, so there is no need to include an AC / DC conversion module inside. In particular, during the discharge process of the battery racks 110 contained in each battery container 100, the power supplied from the battery racks 110 may be in DC form. Also, the power used to charge each battery rack 110 may be in DC form. Therefore, the battery container 100 does not need to include a separate conversion unit to convert such charge and discharge power between AC and DC.
[0079] In this embodiment, each battery container 100 and the control cabinet 200 are connected to each other via a DC connection through the first power line 130 and the second power line 230. The battery system according to this embodiment of the present invention can be described as a DC link system. In the case of the DC link system according to this embodiment of the present invention, the DC link system can be easily constructed even if only the main power line of one battery container 100 is directly connected to the control cabinet 200, and the main power lines of the other battery containers 100 are not directly connected to the control cabinet 200.
[0080] A battery system according to one embodiment of the present invention may further include the PCS400.
[0081] The PCS400 may be referred to as a Power Conversion System or a Power Conditioning System. The PCS400 may be located outside the control cabinet 200 and the battery container 100. The PCS400 may be connected to the second power line 230 of the control cabinet 200.
[0082] The PCS400 may be configured to perform AC-DC conversion (alternating current-to-direct current conversion) of charging and discharging power between the power system and the battery container 100. For example, the PCS400 may convert AC power supplied from the power system into DC form and supply it to the control cabinet 200 and the battery container 100. Alternatively, the PCS400 may convert DC power supplied from the battery container 100 via the control cabinet 200 into AC form and transmit it to the power system.
[0083] In this embodiment, since the power transmitted between the battery container 100 and the PCS 400 is in DC form, the battery container 100 and the control cabinet 200 do not need to be equipped with AC / DC conversion modules or the like separately. Therefore, the form and structure of the battery container 100 and the control cabinet 200 can be simplified.
[0084] A plurality of battery containers 100 included in one embodiment of the present invention may be configured to transmit power between different battery containers 100. For example, each of the plurality of battery containers 100 may be configured to transmit charging power supplied from a control cabinet 200 or another battery container 100 to yet another battery container 100. Alternatively, each of the plurality of battery containers 100 may be configured to transmit discharge power supplied from another battery container 100 to the control cabinet 200 or yet another battery container 100.
[0085] As a more specific example, referring to the embodiment in Figure 2, the first container B-LINK#1 can transmit the discharge power of the second container B-LINK#2 and the third container B-LINK#3 to the control cabinet 200. Furthermore, the first container B-LINK#1 can transmit the charging power supplied from the control cabinet 200 to the second container B-LINK#2 and the third container B-LINK#3.
[0086] Furthermore, the second container B-LINK#2 can transmit the discharge power of the third container B-LINK#3 to the first container B-LINK#1 between the first container B-LINK#1 and the third container B-LINK#3. Also, the second container B-LINK#2 can transmit the charging power of the third container B-LINK#3 from the first container B-LINK#1 to the third container B-LINK#3.
[0087] On the other hand, since the first container B-LINK#1, the second container B-LINK#2, and the third container B-LINK#3 are all configured in the same form, they can be configured in a way that their positions are reversed. For example, in the embodiment shown in Figure 2, the positions of the second container B-LINK#2 and the first container B-LINK#1 may be reversed. That is, if the second container B-LINK#2 is placed in the position of the first container B-LINK#1, the second container B-LINK#2 can transmit power supplied from the control cabinet 200 to the first container B-LINK#1.
[0088] Furthermore, each battery container 100 may be configured so that it does not pass through the battery rack 110 contained within it when transmitting power to other battery containers 100 or to the control cabinet 200.
[0089] For example, in the embodiment shown in Figure 2, when the first container B-LINK#1 transmits charging power from the control cabinet 200 to the second container B-LINK#2, the charging power can be transmitted directly without passing through the battery rack 110 of the first container B-LINK#1. Also, when the first container B-LINK#1 transmits the discharge power of the second container B-LINK#2 to the control cabinet 200, the discharge power of the second container B-LINK#2 can be configured not to be supplied to the battery rack 110 included in the first container B-LINK#1.
[0090] In this case, the charging and discharging power of each battery container 100 is transmitted stably without being affected by the state of other battery containers 100, particularly the state of the battery racks 110 contained in the other battery containers 100 through which it passes.
[0091] Figure 3 is a schematic perspective view showing a configuration in which a portion of a battery container 100 included in a battery system according to one embodiment of the present invention has been separated or moved.
[0092] Referring to Figures 1 to 3, the first power line 130 may include a main connector 131 and a main busbar 132.
[0093] The main connector 131 may be provided on the battery container 100 so as to be electrically connectable to the outside. That is, the main connector 131 may be configured to connect to other external components of the battery container 100, such as the first power line 130 of another battery container 100 or the second power line 230 of the control cabinet 200.
[0094] The main connector 131 may be located on at least one side of the container housing 120. For example, the main connector 131 may be located on the left or right side of the container housing 120. Furthermore, the battery container 100 may contain multiple main connectors 131. For example, as shown in Figure 3, the battery container 100 may have two main connectors 131, namely a first connector as indicated by MC1 and a second connector as indicated by MC2.
[0095] Multiple main connectors 131 may be located on different sides of the container housing 120. Furthermore, multiple main connectors 131 may be located on mutually opposing sides of the container housing 120. For example, referring to embodiments in Figures 1 to 3, the first connector MC1 and the second connector MC2 may be provided on the left and right sides of the container housing 120, respectively.
[0096] The main busbar 132 may be configured to extend continuously between a plurality of main connectors 131. For example, the main busbar 132 may be a power line that extends long in one direction, for example, in the left-right direction. In this case, both ends of the main busbar 132 may be connected to different main connectors 131, for example, a first connector MC1 and a second connector MC2. The main busbar 132 may then serve as a path for transmitting power between different main connectors 131, for example, between the first connector MC1 and the second connector MC2.
[0097] Therefore, the main busbar 132 can transmit discharge power supplied from other components connected to the second connector MC2, such as the second container B-LINK#2, to the first connector MC1. Furthermore, the main busbar 132 can transmit charge power supplied from other components connected to the first connector MC1, such as the control cabinet 200, to the second connector MC2.
[0098] Furthermore, the main busbar 132 can serve as a transmission path for charging and discharging power to the battery rack 110 contained within the battery container 100. Therefore, the main busbar 132 can be electrically connected to each terminal of the battery module 111 provided on the battery rack 110. Consequently, the main busbar 132 can serve as a transmission path for charging power from the main connector 131 to the battery module 111. In addition, the main busbar 132 can serve as a transmission path for discharging power from the battery module 111 to the main connector 131.
[0099] The main busbar 132 functions as a power transmission path and may therefore comprise two unit busbars, namely a positive busbar 132+ and a negative busbar 132-. The positive busbar 132+ may be connected to the positive terminal of the battery rack 110 or the positive terminal of the battery module 111 contained therein. The negative busbar 132- may be connected to the negative terminal of the battery rack 110 or the negative terminal of the battery module 111 contained therein.
[0100] Furthermore, a main connector 131 may be provided separately at each end of the positive busbar 132+ and the negative busbar 132-. For example, a first connector MC1 and a second connector MC2 may be provided at the left and right ends of the positive busbar 132+, respectively. The first connector MC1 and the second connector MC2 provided at both ends of the positive busbar 132+ can be positive connectors 131+. Similarly, a first connector MC1 and a second connector MC2 may be provided at the left and right ends of the negative busbar 132-, respectively. The two connectors provided at both ends of the negative busbar 132-, namely the first connector MC1 and the second connector MC2, can both be negative connectors 131-.
[0101] According to such an embodiment, a battery system including multiple battery containers 100 can be constructed more easily.
[0102] In particular, in a battery system according to one embodiment of the present invention, a plurality of battery containers 100 may be arranged at a predetermined distance apart in the horizontal direction. Furthermore, the battery system according to one embodiment of the present invention may further include a link busbar that connects the charge and discharge power paths between the plurality of battery containers 100.
[0103] This will be explained in more detail with further reference to Figures 4 to 6.
[0104] Figure 4 is a schematic top view showing a partial configuration of a battery system according to one embodiment of the present invention, Figure 5 is a front view of the configuration in Figure 4, and Figure 6 is an enlarged view showing the connecting portion between battery containers 100 in the embodiment of Figure 4.
[0105] Referring to Figures 4 to 6, two battery containers 100 having the same configuration, namely the first container B-LINK#1 and the second container B-LINK#2, are shown. In particular, the first container B-LINK#1 and the second container B-LINK#2 can be arranged side by side in the longitudinal direction, that is, in the left-right direction.
[0106] The two battery containers 100 can be connected to each other through the main connector 131. Therefore, the two battery containers 100 can be arranged so that the sides on which the main connector 131 is provided face each other. For example, in the embodiments shown in Figures 4 to 6, since the two battery containers 100 have main connectors 131 on their left and right sides, they can be arranged side by side in the left-right direction so that the sides on which the main connector 131 is provided face each other. In particular, in the case of two battery containers 100 arranged in the left-right direction, the two battery containers 100 can be connected to each other through the main connector 131 on the right side of the first container B-LINK#1 located on the left, and the main connector 131 on the left side of the second container B-LINK#2 located on the right.
[0107] In this case, the two battery containers 100 can be arranged so as to be separated by a predetermined distance from each other, taking into consideration many factors such as tolerances, ease of installation, prevention of physical damage, and heat insulation. For example, the first container B-LINK#1 and the second container B-LINK#2 can be arranged in the left-right direction with a separation distance of 10 cm to 20 cm.
[0108] The link busbar 500 may be configured to connect main connectors 131 facing each other in different battery containers 100. For example, in the embodiments shown in Figures 4 to 6, the link busbar 500 has both ends connected between a main connector 131 located on the right side of the first container B-LINK#1 and a main connector 131 located on the left side of the second container B-LINK#2 facing it, and can transmit power between them.
[0109] Furthermore, since the main connector 131 includes a positive terminal connector 131+ and a negative terminal connector 131-, the link busbar 500 may also include two link busbars 500, namely a link busbar for the positive terminal and a link busbar for the negative terminal, as shown in Figures 4 and 6.
[0110] In particular, since the main connector 131 of each battery container 100 is connected to the main busbar 132, the link busbar 500 can be said to be configured to connect the main busbars 132 of different containers. In particular, since the main busbar 132 can be configured to transmit charge and discharge power to the battery containers 100, the link busbar 500 can be said to be configured to transmit charge and discharge power between different battery containers 100. For example, in the embodiments shown in Figures 4 to 6, the link busbar 500 can transmit charge and discharge power between the first container B-LINK#1 and the second container B-LINK#2. More specifically, the power to charge the battery rack 110 contained in the second container B-LINK#2 can be transmitted through the link busbar 500 from the first power line 130 of the first container B-LINK#1 to the first power line 130 of the second container B-LINK#2. Furthermore, the discharge power from the battery rack 110 of the second container B-LINK#2 can be transmitted from the first power line 130 of the second container B-LINK#2 to the first power line 130 of the first container B-LINK#1 via the link bus bar 500.
[0111] According to this embodiment, a power connection configuration can be easily achieved between two battery containers 100 that are arranged adjacent to each other with their main connectors 131 facing each other, simply by connecting both ends of the link busbar 500 to the main connectors 131 of the two battery containers 100. In particular, in the system according to the embodiment of the present invention, each battery container 100 can provide a power transmission path for charging and discharging to the other battery container 100. Therefore, it is not necessary to separately provide a power path for connecting to an external power system for each battery container 100. For example, in this embodiment, if the first container B-LINK#1 is connected to a power system, it is sufficient for the second container B-LINK#2 to be connected only to the first container B-LINK#1, and it is not necessary for the second container B-LINK#2 to be separately connected to a power system. Therefore, it is not necessary to provide a long power path for the second container B-LINK#2. Furthermore, according to this embodiment, the length of the link busbar 500 only needs to be about the distance between the two adjacent battery containers 100. Therefore, when constructing a battery system using multiple battery containers 100, ease of installation and assembly are improved, and costs and working time can also be reduced.
[0112] Furthermore, according to one embodiment of the present invention, the battery system can be expanded more easily. For example, in the embodiment shown in Figures 4 and 5, another battery container 100, such as a third container B-LINK#3, can be easily connected to the second container B-LINK#2 using a link bus bar 500. In this case, the third container B-LINK#3 can be any battery container 100 having the same configuration as the first container B-LINK#1 and the second container B-LINK#2, and does not need to be configured in a different form from the first container B-LINK#1 and the second container B-LINK#2 for system expansion. In this case, expansion of the battery system's capacity and output can be easily achieved.
[0113] The main busbar 132 may be located in the internal space of the container housing 120. That is, the main busbar 132 is embedded in the container housing 120 and not exposed to the outside. For example, as shown in Figure 3, the main busbar 132 may be located at the bottom of the upper housing, particularly above the battery rack 110. In other words, the main busbar 132 can be said to be built into the space between the battery rack 110 and the upper housing within the container housing 120.
[0114] According to this embodiment of the present invention, since the main busbar 132 is configured to be embedded inside the battery container 100, the transportation and installation of the main busbar 132 can be carried out together with the transportation and installation of the battery container 100. Furthermore, according to this embodiment, the external exposure of the power transmission path, namely the main busbar 132, can be eliminated or minimized, thereby reducing the risk of damage to the power transmission path and the possibility of electrical leakage. Therefore, the safety of the battery container 100, the battery system including it, or the energy storage system can be improved.
[0115] Furthermore, in this embodiment, the main busbar 132 is positioned above the battery rack 110, which makes it possible to avoid or minimize interference between the battery rack 110 and the main busbar 132 within the internal space of the container housing 120. Therefore, the ease of manufacturing the battery container 100 is improved, and the length of the main busbar 132 can also be minimized. In particular, in this embodiment, the main busbar 132 is configured to extend in a long straight line, eliminating the need to provide a separate curved section.
[0116] Multiple main connectors 131 may be configured to be exposed to the outside of the container housing 120. For example, referring to the embodiments in Figures 3 and 4, two main connectors 131 may be exposed to the outside of the container housing 120. In particular, such multiple main connectors 131 may be located on the outer surface of the container housing 120. That is, the main connectors 131 may be provided on the outer wall rather than in the internal space of the container housing 120.
[0117] In this case, the connection work to the main connector 131 can be easily performed from outside the container housing 120 without the worker having to enter the container housing 120. Therefore, the connection work between battery containers 100 becomes easier. Consequently, the ease of installation or expansion of the battery containers 100 is further improved.
[0118] Furthermore, the main connector 131 may be located on the upper side of the container housing 120. For example, as shown in Figures 3 to 6, the main connector 131 may be provided on the upper left and upper right sides of the container housing 120, respectively. In this case, connecting the main connectors 131 together becomes easier.
[0119] For example, referring to Figure 6, the second connector MC2 may be provided as the main connector 131 on the right side of the first container B-LINK#1, and the first connector MC1 may be provided as the main connector 131 on the left side of the second container B-LINK#2. In this case, the second connector MC2 and the first connector MC1 may be located above the first container B-LINK#1 and the second container B-LINK#2, respectively. Furthermore, such second connector MC2 and first connector MC1 may be exposed to the outside.
[0120] In this embodiment, a worker can move to the upper side of the first container B-LINK#1 and the second container B-LINK#2 and easily connect the link busbar 500 between the second connector MC2 and the first connector MC1, which are exposed to the outside. Furthermore, since the worker does not need to enter the space between the battery containers 100 to connect the two battery containers 100, not only is work efficiency improved, but the space between the two battery containers 100 can be minimized. Therefore, it can contribute to improving the energy density of the energy storage system or reducing the installation space.
[0121] Furthermore, according to this embodiment, since the high-voltage connector is positioned high above the ground, the risk of flooding and electrical leakage can be reduced. Also, if the size of the battery container 100 is above a certain level, such as in a ship's container, the possibility of workers coming into contact with the main connector 131 when moving around is reduced, thus preventing electric shock accidents in advance.
[0122] On the other hand, if the main connector 131 is located on the upper side of the container housing 120, it is preferable that the main busbar 132 connected between the main connectors 131 within a single battery container 100 is also located on the upper side of the internal space of the container housing 120. In particular, as in the embodiment described above, the main busbar 132 may be located on the upper side of the battery rack 110. In this case, the length of the main busbar 132 can be reduced, minimizing interference with the battery rack 110, which is advantageous for cost reduction and productivity improvement during the manufacturing of the battery container 100.
[0123] The container housing 120 may have connector housings formed in the portion indicated by R in Figures 3 and 6. In particular, if the battery container 100 contains multiple main connectors 131, multiple connector housings R may also be formed. For example, as shown in the configuration in Figure 3, if two main connectors 131 are located on the left and right sides of the battery container 100, the connector housing R may include a first housing R1 formed on the left side of the container housing 120 and a second housing R2 formed on the right side of the container housing 120.
[0124] Such a connector housing R may be formed in a form that is recessed inward from at least one side of the container housing 120. The main connector 131 may be located in the connector housing R of the container housing 120. In particular, although the connector housing R is a part formed inwardly recessed from the container housing 120, it can also be said to be part of the outer wall of the container housing 120. Therefore, the main connector 131 is provided on the outer wall of the container housing 120, and the outer wall of the container housing 120 itself is formed inwardly recessed. Therefore, the main connector 131 can be said to be located in the inwardly recessed part of the outer wall of the container housing 120.
[0125] According to this embodiment of the present invention, the main connector 131 can be exposed to the outside while allowing connecting members, including the link bus bar 500, to be easily connected to the main connector 131, while minimizing the exposure of the main connector 131. Therefore, it is advantageous for protecting the main connector 131 and the link bus bar 500 connected thereto, while improving workability and ease of installation when connecting other connecting members to the main connector 131. In other words, since the main connector 131 is located in a recessed portion of the connector housing R in the container housing 120, the exposure of the main connector 131 to the outside can be reduced, improving the protective performance of the main connector 131 and the connecting portion of the link bus bar 500 connected thereto. In this case, the main connector 131 can be easily protected by separately covering only the open portion of the recessed area.
[0126] In particular, the connector housing R may be located at the upper edge of the container housing 120. For example, in the embodiment shown in Figure 6, the second housing R2 of the first container B-LINK#1 may be located at the upper right edge of the container housing 120. Also, in the embodiment shown in Figure 6, the first housing R1 of the second container B-LINK#2 may be located at the upper left edge of the container housing 120.
[0127] Furthermore, the connector housing R may be formed so that the main connector 131 is open upward and to the side. Here, the side may be the direction in which the adjacent battery container 100 is located. For example, in the embodiment of Figure 6, the second housing R2 of the first container B-LINK#1 may be configured to be open upward and to the side. Therefore, the main connector 131 of the first container B-LINK#1 may be exposed upward and to the side. The first housing R1 of the second container B-LINK#2 may be configured to be open upward and to the left. Therefore, the main connector 131 of the second container B-LINK#2 may be exposed upward and to the left. In this case, it can be said that the second housing R2 of the first container B-LINK#1 and the first housing R1 of the second container B-LINK#2 are formed to be open in opposing directions. Therefore, the two main connectors 131 housed in the connector housing R may be arranged to face each other. In this case, the link busbar 500 can be connected in a straight line between the two main connectors 131.
[0128] According to this embodiment of the present invention, the battery system can be constructed more easily. For example, as shown in Figure 6, when two battery containers 100 are arranged adjacent to each other in the left-right direction, the main connectors 131 can be exposed above and to the sides of the adjacent portions. Therefore, workers can more easily install and replace the link busbars 500 on the main connectors 131 in this way.
[0129] Figure 7 is an exploded perspective view schematically showing a part of the configuration of a battery container 100 included in a battery system according to another embodiment of the present invention. In particular, Figure 7 is an enlarged view of the left portion of the battery container 100 according to an embodiment of the present invention. And Figure 8 is a combined perspective view of the configuration in Figure 7.
[0130] Referring to Figures 7 and 8, the battery container 100 according to an embodiment of the present invention may further include a connector cover 140. The connector cover 140 may cover the outside of the connector housing R. That is, the connector housing R may be provided in a form in which the outer wall of the container housing 120 is recessed inward, and the connector cover 140 may be configured to cover the outside of this recessed portion. In particular, the connector cover 140 may be configured to cover the main connector 131 housed in the connector housing R.
[0131] Furthermore, the connector cover 140 may be configured to be openable and closable so as to expose the connector housing R to the outside or prevent exposure. For example, the connector cover 140 may completely close the connector housing R so that the main connector 131 is not exposed to the outside. Alternatively, the connector cover 140 may open at least a portion of the connector housing R so that the main connector 131 is exposed to the outside. In this case, if the main connector 131 is exposed to the outside, a link bus bar 500, a link line 710, etc., can be connected to the main connector 131 through the exposed portion.
[0132] The connector cover 140 may comprise at least one of a top cover 141 and a side cover 142. The top cover 141 may be configured to close or open the upper side of the connector housing R. That is, the top cover 141 may be configured to cover the top open portion of the first housing R1 indicated by OT. The side cover 142 may be configured to close the side open portion of the connector housing R indicated by OS. For example, as shown in Figures 7 and 8, the side cover 142 may be configured to cover the left open portion of the first housing R1.
[0133] Furthermore, the connector cover 140 may be configured to be at least partially detachable from the connector housing R of the container housing 120. For example, as shown in Figure 7, the top cover 141 and the side cover 142 may be configured to be completely separable from the connector housing R.
[0134] According to this embodiment of the present invention, the external exposure of the main connector 131 located on the outside of the container housing 120 can be appropriately adjusted depending on the situation. Therefore, protection performance for the main connector 131 and the connecting members connected to it can be ensured. For example, during the transport of the battery container 100, as shown in Figure 8, the top cover 141 and the side cover 142 close the open portion of the connector housing R, thereby preventing damage to the main connector 131 inside and preventing electric shock accidents. When installing the battery container 100, as shown in Figure 7, the top cover 141 and the side cover 142 can be separated from the connector housing R, opening the connector housing R. Therefore, workers can easily connect connecting members such as link bus bars 500 to the main connector 131 through the open portion.
[0135] Alternatively, by connecting only a portion of the connector cover 140 to the connector housing R, a portion of the connector housing R may be left open while the other portion remains closed. For example, after the battery container 100 connection is complete, the top of the connector housing R, indicated by OT, can be closed by reconnecting the top cover 141 to the connector housing R. In this case, the sides of the connector housing R, indicated by OS, remain open, providing a passage for the link busbar 500 to pass through, while the top is closed to block rain, dust, and other foreign matter from entering from above. Therefore, after the battery container 100 connection is complete, this contributes to protection of the main connector 131 and the link busbar 500 and prevents electric shock accidents.
[0136] Figure 9 is a schematic diagram showing a part of the configuration of a battery container 100 included in a battery system according to yet another embodiment of the present invention.
[0137] Referring to Figure 9, the connector cover 140 may be configured to slide freely relative to the container housing 120.
[0138] More specifically, the top cover 141 is attached to the top surface of the container housing 120 and can be configured to slide horizontally (left-right) as shown by arrow B1 in Figure 9. The top cover 141 can be configured to open and close the top opening OT of the connector housing R by this sliding motion. For example, in the process of connecting the link bus bar 500 to the main connector 131, the top cover 141 can be slid in the -X axis direction to open the top of the connector housing R, thereby improving the ease of installation of the link bus bar 500 by the worker. Once such connection work is completed, the top cover 141 can be slid in the +X axis direction to close the connector housing R.
[0139] Furthermore, the side cover 142 is attached to the side of the container housing 120 and can be configured to slide vertically (up and down) as shown by arrow B2 in Figure 9. The side cover 142 can be configured to open and close the side opening OS of the connector housing R through this sliding motion. For example, during the transportation of the battery container 100, the side cover 142 can be kept in an upward sliding position to close the side of the connector housing R. After the transportation of the battery container 100 is completed, the side cover 142 can be slid downward to expose the side of the connector housing R, and a connecting member such as a link bus bar 500 can be connected.
[0140] On the other hand, the container housing 120 may further include a joint reinforcement portion, as shown by F in Figure 9. The joint reinforcement portion F may be located in the connector housing portion R of the container housing 120. In particular, the joint reinforcement portion F may be formed in a form that extends long along the edge of the container housing 120. Furthermore, the joint reinforcement portion F may be located in the edge portion where the connector housing portion R is formed, dividing the open portion of the connector housing portion R into an upper and a lateral portion.
[0141] Components included in the battery container 100 of the present invention, or components necessary when constructing an energy storage system using the battery container 100, can be fastened and fixed to such a joint reinforcement part F. For example, the connector cover 140 shown in Figures 7 and 8 can be fastened and fixed to the joint reinforcement part F. More specifically, the joint reinforcement part F may be provided with fastening holes, protrusions, hook configurations, etc., for fastening and fixing the top cover 141 and the side cover 142.
[0142] Figure 10 is a schematic diagram showing a part of the configuration of a battery container 100 included in a battery system according to yet another embodiment of the present invention.
[0143] Referring to Figure 10, the connector cover 140 may be configured to be hinge-rotatable relative to the container housing 120.
[0144] More specifically, the top cover 141 may be hinged at one end to the top surface of the container housing 120, as indicated by HT, and may be rotatable as indicated by arrows B3 and B3'. The top cover 141 may be configured to open and close the top opening OT of the connector housing R by such rotational movement. For example, during transport of the battery container 100, the top cover 141 can be rotated as indicated by B3 to keep the top opening OT of the connector housing R closed. Then, once the battery container 100 is placed in a specific position to construct an energy storage system, the top cover 141 can be rotated as indicated by B3' to open the top opening OT of the connector housing R. In this case, a worker can easily connect a connecting member such as a link busbar 500 to the main connector 131 through the top opening of the connector housing R. Once the connection work to the main connector 131 is complete, the top cover 141 can be rotated as shown in B3 to close the top opening OT of the connector housing R again.
[0145] Furthermore, the side cover 142 may be hinged at one end to the side of the container housing 120, as shown in HS, and may be rotatable as shown by arrows B4 and B4'. The side cover 142 may be configured to open and close the side opening OS of the connector housing R through such rotational movement. For example, during the transport of the battery container 100, the side cover 142 can be rotated as shown in B4 to keep the side opening OS of the connector housing R closed. Then, once the battery container 100 is placed in a specific position to construct an energy storage system, the side cover 142 can be rotated as shown in B4' to open the side opening OS of the connector housing R. In this case, a worker can easily connect connecting members such as a link bus bar 500 to the main connector 131 through the side opening OS of the connector housing R. On the other hand, even after the connection work to the main connector 131 is completed, the side cover 142 remains open because the link bus bar 500 and other components must pass through the open side OS of the connector housing R.
[0146] According to this embodiment of the present invention, not only can the opening and closing configuration of the connector cover 140 be easily realized, but the connector cover 140 can also be maintained coupled to the container housing 120 regardless of the opening and closing operation. Therefore, the connector cover 140 can be opened and closed more easily, and the risk of losing the connector cover 140 is eliminated.
[0147] In this embodiment, the side cover 142 may have its hinge joint HS located at its upper end. In this case, the lower end of the side cover 142 can rotate upward to open the side opening OS of the connector housing R. In such an embodiment, the side cover 142 may be configured to protect the outside of the connecting member connected to the main connector 131. This will be described in more detail with reference to Figures 11 and 12.
[0148] Figures 11 and 12 schematically show the connection configuration of a battery container 100 included in a battery system according to yet another embodiment of the present invention.
[0149] Figures 11 and 12 show the right side of the first container B-LINK#1 and the left side of the second container B-LINK#2. In this case, the left side of the first container B-LINK#1, which is not shown, may be constructed in the same manner as the left side of the second container B-LINK#2 shown in the drawings. And the right side of the second container B-LINK#2, which is not shown, may be constructed in the same manner as the right side of the first container B-LINK#1 shown in the drawings. In other words, the first container B-LINK#1 and the second container B-LINK#2 are battery containers 100 according to one embodiment of the present invention and may be constructed in the same manner.
[0150] First, referring to Figure 11, the main connector 131 located on the right side of the first container B-LINK#1 and the main connector 131 located on the left side of the second container B-LINK#2 can be connected to each other via the link bus bar 500. In this case, in the case of the connector housing R located on the left side of the second container B-LINK#2, i.e., the first housing R1, the top cover 141 and the side cover 142 can be configured to rotate on a hinge, as described above with reference to Figure 10. Therefore, with the top cover 141 and the side cover 142 open, the worker can connect the link bus bar 500 to the main connector 131 of the first container B-LINK#1 and the main connector 131 of the second container B-LINK#2.
[0151] Once this connection process is complete, as shown in Figure 12, the tops of the connector housing R of each container can be closed by closing the top covers 141 provided on the first container B-LINK#1 and the second container B-LINK#2.
[0152] Therefore, after the battery container 100 is installed, it is possible to prevent foreign objects from entering through the open top portion OT of the connector housing R, and to suppress the external exposure of electrical connection parts such as the main connector 131, thereby reliably preventing electric shock accidents.
[0153] Furthermore, as shown in Figures 11 and 12, the hinge connection portion HS of the side cover 142 of the second container B-LINK#2 may be located on the upper side of the connecting reinforcement portion F. In this case, with the side cover 142 of the second container B-LINK#2 resting on the connecting reinforcement portion F of the first container B-LINK#1, the side cover 142 can be held horizontally, approximately parallel to the ground. Therefore, it is possible to prevent rain or other liquids from flowing towards the main connector 131 located on the left or right side.
[0154] Furthermore, in such embodiments, at least one connector cover 140 of the two interconnected battery containers 100 may be configured to protrude outward in the horizontal direction.
[0155] For example, the side cover 142 of the second container B-LINK#2 may be configured to rotate as indicated by arrow B5 after the link bus bar 500 connection is completed, and to protrude horizontally toward the first container B-LINK#1. In this case, the side cover 142 of the second container B-LINK#2 may be configured to cover the space between the second container B-LINK#2 and the first container B-LINK#1. Furthermore, the side cover 142 of the second container B-LINK#2 may be configured to cover the space between the second container B-LINK#2 and the first container B-LINK#1 from above.
[0156] According to this embodiment, the upper side of the link busbar 500, which is positioned between the second container B-LINK#2 and the first container B-LINK#1, is covered. Therefore, the link busbar 500 and the main connector 131 can be protected. For example, it is possible to prevent snow, rain, dust, or other foreign objects from flowing from the upper side of the link busbar 500 into the link busbar 500 or the main connector 131.
[0157] In this embodiment, the connector cover 140, which is configured to protrude outward in the horizontal direction, can be configured to be placed on another battery container 100. For example, as shown in Figure 12, the side cover 142 of the second container B-LINK#2 can be hinged at one end to the second reinforcement part F2, which is the connecting reinforcement part F of the second container B-LINK#2, and the other end can be placed on the first reinforcement part F1, which is the connecting reinforcement part F of the first container B-LINK#1.
[0158] At this time, the first reinforcement portion F1 of the first container B-LINK#1 may have a mounting portion formed thereon, as shown by D in Figure 11, on which the side cover 142 of the second container B-LINK#2 is mounted. In particular, the mounting portion D may be formed in the shape of a groove that is recessed downward in the connecting reinforcement portion F. When the link bus bar 500 is connected between the main connectors 131 of the two battery containers 100, the end of the side cover 142 can be mounted on the mounting portion D. In addition, the mounting portion D may be configured to have various other fastening forms such as protrusions or hooks.
[0159] According to this embodiment of the present invention, the side cover 142 is stably coupled to other containers, and the assembly position is guided. Therefore, the ease of assembly between battery containers 100 is improved. In this case, the side cover 142 can more reliably protect the link bus bar 500, the main connector 131, and the like.
[0160] Furthermore, the side cover 142 may be equipped with a sealing member on the end side that is placed on the mounting section D, as shown by part C in Figure 11. Such a sealing member C may be made of an elastic material such as rubber, silicone, or polyurethane. In this case, when the side cover 142 is placed on the mounting section D, it is possible to prevent impact from being applied to the side cover 142 or the connecting reinforcement part F of the container housing 120. Therefore, damage or breakage of the side cover 142 or the connecting reinforcement part F is prevented. In addition, in this case, the sealing force between the side cover 142 and the connecting reinforcement part F is improved, and the effect of preventing the intrusion of foreign matter such as water and dust is further enhanced.
[0161] On the other hand, the embodiment in Figure 10 shows a configuration in which the lower end of the side cover 142 rotates upward to open the side opening OS of the connector housing R. However, the side cover 142 may also be configured to have a hinged connection at its lower end, allowing its upper end to rotate downward to open the side opening OS of the connector housing R. For example, in the embodiments of Figures 11 and 12, the side cover 142 provided on the connector housing R formed on the right side of the first container B-LINK#1 has a hinged connection at its lower end, allowing its upper end to rotate downward to open the side opening of the connector housing R. In this case, the two opposing side covers 142, namely the side cover 142 of the first container B-LINK#1 and the side cover 142 of the second container B-LINK#2, may be configured to open in opposite directions.
[0162] According to this embodiment, interference between the side covers 142 can be avoided when the side opening of the connector housing R is open. For example, the side cover 142 covering the left side of the first housing R1 of the second container B-LINK#2 can be opened in a manner that is located above the link bus bar 500, as shown in Figures 11 and 12. The side cover 142 covering the right side of the second housing R2 of the first container B-LINK#1 can rotate downward and come into close contact with the right outer wall of the first container B-LINK#1, thereby opening the right side of the second housing R2.
[0163] According to this embodiment, when the battery container 100 is being transported or after installation is complete, it is possible to prevent foreign objects from entering the electrical connection configuration, such as the main connector 131 and the link bus bar 500, thereby preventing electric shock accidents. Furthermore, during the installation of the battery container 100, the connection work between the main connector 131 and the link bus bar 500 can be made easier.
[0164] Figure 13 is a schematic diagram showing a partial configuration of a battery container 100 included in a battery system according to yet another embodiment of the present invention. Figure 14 is a schematic diagram showing a partial connected configuration of a battery system including the battery container 100 of Figure 13.
[0165] First, referring to Figure 13, the container housing 120 is provided with a side cover 142 that is hinged to the side opening OS, and the side cover 142 may comprise a main body portion as shown by SB and a wing portion as shown by W. The wing portion W may be rotatably coupled to the plate-shaped main body portion SB that covers the side opening OS. In particular, the wing portion W may be hinged to the end of the main body portion SB as shown by the portion indicated by HW. For example, the wing portion W may rotate on a hinge as shown by the arrow B6 in Figure 13.
[0166] The wing portions W may be located at both ends of the side cover 142. For example, the wing portions W may be located at the front and rear ends of the main body portion SB, respectively. Furthermore, if the main body portion SB is located above the link bus bar 500 in the space between the two battery containers 100, the wing portions W may be located on the front and / or rear sides of the link bus bar 500. More specifically, referring to Figure 14, if the main body portion SB of the side cover 142 included in the second container B-LINK#2 is placed on the upper surface of the container housing 120 of the first container B-LINK#1 and coupled, the wing portions W of the side cover 142 may be located on the front and rear sides of the link bus bar 500.
[0167] According to this embodiment of the present invention, the protective effect of the side cover 142 on the link bus bar 500 is further improved. In particular, in this embodiment, the link bus bar 500 is protected on the upper side by the main body portion SB of the side cover 142, and the front and rear sides can be covered by the wing portion W of the side cover 142.
[0168] In particular, as shown in Figure 13, when the side cover 142 is closed, the wing portion W may be located inside the main body portion SB. In this case, when the side cover 142 is opened as indicated by arrow B4', gravity causes the wing portion W to rotate automatically away from the main body portion SB as indicated by arrow B6. Therefore, no additional work or driving force is required to extend the wing portion W away from the main body portion SB, making it possible to construct a faster, easier, and more economical battery system.
[0169] Figure 15 is an exploded perspective view schematically showing a partial configuration of a battery system according to yet another embodiment of the present invention. Figure 16 is a perspective view showing a partial configuration of a battery system to which the embodiment of Figure 15 is applied.
[0170] Referring to Figures 15 and 16, the battery system according to one embodiment of the present invention may further include a link cover 600.
[0171] The link cover 600 may be configured to be coupled to the outer wall of the container housing 120, particularly to the side of the connector housing R. For example, as shown in Figure 15, the link cover 600 may be coupled to the connector housing R formed on the left side of the battery container 100. Furthermore, an open space, or hollow, may be formed in the center of the link cover 600, as shown by the portion V. The link cover 600 may then be attached to the container housing 120 such that this hollow V communicates with the side opening OS of the connector housing R.
[0172] The link cover 600 may be configured to be detachably attached to the outer wall of the container housing 120. In particular, during storage or transport of the battery container 100, a side cover 142 may be attached to the side opening OS of the connector housing R. For connecting the battery container 100 with other battery containers 100, the link cover 600 may be coupled to the side wall of the container housing 120 such that the side cover 142 opens the side opening OS and the hollow V of the link cover 600 communicates with the side opening OS.
[0173] The link cover 600 may be configured so that both ends are connected to the container housing 120 of the battery container 100. For example, in the embodiment shown in Figure 15, the link cover 600 may be connected at both ends to the right wall of the container housing 120 of the first container B-LINK#1 and to the left wall of the container housing 120 of the second container B-LINK#2. Here, the ends of the link cover 600 may be connected to the container housing 120 by various fastening methods such as bolt connections and hook connections.
[0174] Furthermore, the link cover 600 can be connected to the container housing 120 in a manner that surrounds the periphery of the connector housing R, particularly the side opening OS of the connector housing R. For example, the link cover 600 has a substantially square ring-shaped end and can be connected to the upper, lower, front, and rear parts of the side opening OS of the connector housing R, respectively.
[0175] Furthermore, the link cover 600 may be configured to surround the link bus bar 500 connected to the main connector 131 while coupled to the side of the connector housing R. For example, as shown in Figure 15, with the right end of the link cover 600 coupled to the side opening OS of the left connector housing R of the second container B-LINK#2, the left end of the link cover 600 may be coupled to the side opening of the right connector housing R of the first container B-LINK#1, as shown in Figure 16. In this case, the link bus bar 500 may be connected between the main connector 131 located in the left connector housing R of the second container B-LINK#2 and the main connector 131 located in the right connector housing R of the first container B-LINK#1. In particular, the link bus bar 500 may be inserted into the hollow V of the link cover 600.
[0176] The link cover 600 may be configured to cover the link bus bar 500 in the vertical direction of its extension. For example, the link bus bar 500 may extend laterally between two battery containers 100 arranged in the left-right direction, and the link cover 600 may be configured to surround the upper, lower, front, and rear portions of the link bus bar 500 with both ends connected to the two battery containers 100.
[0177] The link cover 600 may be made of a flexible material or form. In particular, as shown in Figures 15 and 16, the link cover 600 may include two mounting members 610 that are attached to adjacent container housings 120, and a cover member 620 provided between these two mounting members 610.
[0178] Here, the mounting member 610 may be formed in a substantially ring shape and configured to be attached while surrounding the periphery of the side opening of the connector housing R. The cover member 620 may be made of a flexible material and configured to cover the upper, lower, front and rear sides of the link bus bar 500. In particular, the cover member 620 may be configured to have flexibility in the horizontal and vertical directions. The cover member 620 may also be configured to form a hollow by folding and winding a single sheet. The ends of the folded sheet may be brought into contact and joined together. That is, a pipe-shaped cover member 620 can be formed by folding a flexible sheet member and joining the separated ends together. Here, the joined portion of the sheet member, especially the overlapping portion, may be located at the bottom of the cover member 620. Furthermore, the cover member 620 may be made in a woven form. That is, the cover member 620 may be in the form of a sheet woven using fibers.
[0179] According to this embodiment of the present invention, the link busbar 500 and the main connector 131 can be more reliably prevented from being exposed to the outside in the space between the two battery containers 100. Therefore, the electrical connection configuration between the battery containers 100 can be protected more stably. In particular, in the case of systems such as ESS, which are often installed outdoors, this embodiment allows for the safe protection of the electrical connection configuration of the battery containers 100 from various external factors. For example, the link busbar 500 according to this embodiment of the present invention is safely protected from many external climatic and animal factors such as water, wind, heat, dust, insects, and birds. Furthermore, this embodiment allows for more reliable suppression of inflow of substances not only from above towards the link busbar 500, but also from substances approaching from the sides and below.
[0180] Furthermore, according to this embodiment, tolerances in the size of the space between the two battery containers 100 can be accommodated. That is, although the link cover 600 is attached between the two battery containers 100, the space between the two battery containers 100 can have various sizes. Moreover, even if the mounting position of each battery container 100 is determined during the process of constructing the battery system, the position of the battery containers 100 may be changed depending on the circumstances during the installation process. In this case, the size of the space between the battery containers 100 may change, but according to this embodiment, since the link cover 600 is flexible, the link cover 600 can be deformed into an appropriate shape and attached to the battery container 100. Therefore, the attachment of the link bus bar 500 is easy, and the protective function can be stably performed. Furthermore, according to this embodiment, the link cover 600 that protects the link bus bar 500 can be easily manufactured.
[0181] On the other hand, the battery rack 110 may be included in multiple locations inside the container housing 120. That is, the battery container 100 may comprise multiple battery racks 110. In a single battery container 100, multiple battery racks 110 may be connected in parallel to the first power line 130. For example, in the embodiment shown in Figure 2, each of the multiple battery racks 110 included in the first container B-LINK#1 may have its positive terminal connected to the first positive line 130+ and its negative terminal connected to the first negative line 130-.
[0182] Furthermore, while a battery system according to one embodiment of the present invention may include multiple battery containers 100, even in the case of battery racks 110 included in multiple battery containers 100, they can be said to be connected in parallel to one another. For example, referring to the embodiment in Figure 2, multiple battery racks 110 included in the first container B-LINK#1 to the third container B-LINK#3 can be connected in parallel to their respective first power lines 130 that extend in a straight line.
[0183] In this configuration, even if a problem occurs with the condition or connection of a specific battery rack 110 contained in some of the multiple battery containers 100, the other battery racks 110 can be operated normally. Therefore, it is possible to prevent the interruption of the use of the entire battery system due to a problem with some battery racks 110.
[0184] As shown in Figure 2, the control cabinet 200 can be connected to a plurality of battery containers 100 and an AC line 720. That is, the battery system according to one embodiment of the present invention may further include an AC line 720 in addition to the DC line. Here, the DC line may be the link line 710 described above in the embodiment of Figure 2. That is, the link line 710 may be provided between the control cabinet 200 and the battery container 100 so that charging and discharging power flows in DC form. The AC line 720 may be provided separately from such a link line 710, connected between the battery container 100 and the control cabinet 200 so that AC power flows.
[0185] Furthermore, unlike the link line 710, the AC line 720 can be connected to each of the multiple battery containers 100. For example, referring to the embodiment in Figure 2, in a battery system including one control cabinet 200 and three battery containers 100, the link line 710 may be configured to connect only the control cabinet 200 and one of the battery containers 100. More specifically, in the embodiment of Figure 2, the link line 710 is connected between the control cabinet 200 and the first container B-LINK#1, and no other link line 710 is connected between the control cabinet 200 and the second container B-LINK#2, or between the control cabinet 200 and the third container B-LINK#3. On the other hand, the AC line 720 can be connected to all of the control cabinet 200 and each of the three battery containers 100. In other words, AC lines 720 can be directly connected between the control cabinet 200 and the first container B-LINK#1, between the control cabinet 200 and the second container B-LINK#2, and between the control cabinet 200 and the third container B-LINK#3.
[0186] In this embodiment, the control cabinet 200 is individually connected to multiple battery containers 100, and AC power is supplied to each of them individually. In particular, the control cabinet 200 is supplied with a separate three-phase AC power supply, and AC power can be supplied from this supplied power to three battery containers 100. The AC power supplied from the control cabinet 200 can be supplied to various components contained in the battery containers 100, such as fans for cooling or air conditioning, HVAC (Heating, Ventilation, and Air Conditioning), CAN (Controller Area Network) repeaters, or various sensors.
[0187] Furthermore, the control cabinet 200 can supply communication signals through the AC line 720. For example, the control cabinet 200 can send and receive control signals, sensing signals, etc., to and from each of the multiple battery containers 100 through the AC line 720. In addition, the control cabinet 200 and / or the battery containers 100 can send and receive signals via PLC (Power Line Communication). Therefore, in such an embodiment, PLC control of the battery system can be easily implemented.
[0188] The control cabinet 200 may include a UPS (Uninterruptible Power Supply). The control cabinet 200 can then supply component operating power and other power to each battery container 100 using such a UPS. In particular, the control cabinet 200 may have both a UPS line and a non-UPS line as AC lines 720 connected to each battery container 100. For example, in the embodiment shown in Figure 2, two AC lines 720 are connected between the control cabinet 200 and each battery container 100, one of which may be a UPS line and the other a non-UPS line.
[0189] Furthermore, the battery container 100 may be configured to supply operating power from the first power line 130 to various components located inside, such as control units like BMS and cooling units like fans. In this case, the voltage of the battery container 100 may be reduced through a voltage regulator or the like before being supplied to those components.
[0190] Figures 17 and 18 schematically illustrate the configuration of a battery system according to yet another embodiment of the present invention.
[0191] Referring to Figures 17 and 18, a battery system according to one embodiment of the present invention may include two or more control cabinets 200. These two or more control cabinets 200 may be connected to a single PCS 400. Multiple battery containers 100 may be connected to each control cabinet 200.
[0192] More specifically, in the embodiments shown in Figures 17 and 18, the battery system may include six battery containers 100 (B-LINK #1 to 6), two control cabinets 200 (E-LINK #1 to 2), and one PCS 400. Here, three battery containers 100 and one control cabinet 200 may constitute one link group. Two such link groups may be included in the battery system and connected in common to one PCS 400. In each link group, the three battery containers 100 may be connected to each other via their respective main connectors 131 located at both the left and right ends, with charge and discharge power paths, particularly DC paths. Link busbars 500 may be connected between the battery containers 100, as shown in the section indicated by A1, to realize DC links between the battery containers 100, as described above. For the connection of such link busbars 500, in the section indicated by A1, a side cover 142 opens the side opening OS of the connector housing R, and a link cover 600 or the like may be attached.
[0193] On the other hand, in each of the two link groups, in the portion of the battery container 100 located on the outer casing that is not connected to other containers, the side cover 142 may be configured to close the side opening OS of the connector housing R. For example, in the embodiment shown in Figure 18, as indicated by A2, the connector housing R on the right side of the battery container 100 located on the far right may be configured in such a way that the side opening OS is closed by the side cover 142.
[0194] In a battery system according to one embodiment of the present invention, the battery container 100 may be connected to a control cabinet 200 via a link line 710. The link line 710 connected to the control cabinet 200 may be connected to the main connector 131 of the battery container 100. In this case, the battery container 100 may further include additional components for connection with such a link line 710. These will be described in more detail with further reference to Figures 19 and 20.
[0195] Figure 19 is a schematic perspective view showing the configuration of a battery container 100 included in a battery system according to yet another embodiment of the present invention. Figure 20 is an exploded perspective view of a part of the configuration in Figure 19.
[0196] For example, the battery container 100 shown in Figure 19 represents the leftmost battery container 100 in each link group that is directly connected to the control cabinet 200, similar to the portion indicated as A3 among the multiple battery containers 100 shown in Figure 18.
[0197] Referring to Figures 19 and 20, the battery container 100 may include terminal busbars TB, insulating panels IP, and / or terminal covers TC.
[0198] The terminal busbar TB can be connected to the main connector 131 side, which is directly connected to the control cabinet 200. For example, in the embodiments shown in Figures 19 and 20, the terminal busbar TB can be connected to the main connector 131 on the left side of the battery container 100 located on the far left in each link group. The other end of the terminal busbar TB can be connected to the link line 710.
[0199] The terminal busbar TB may be made of an electrically conductive material. Furthermore, the terminal busbar TB may be in the form of a plate. For example, the terminal busbar TB may be formed from a metal plate. In this case, the terminal busbar TB can be stably attached to the outer wall of the container housing 120. Also, the terminal busbar TB may comprise two terminal busbars with different polarities, namely a positive terminal busbar and a negative terminal busbar, for transmitting power.
[0200] Furthermore, the terminal busbar TB may be configured to extend from the main connector 131 located inside the connector housing R to the outside of the connector housing R, and then bent along the outer wall of the container housing 120. In particular, when the main connector 131 is located on the upper side of the container housing 120, the terminal busbar TB may have a configuration in which it extends horizontally to the left from the main connector 131 and then bent downwards. In this case, it is possible to prevent the terminal busbar TB from protruding outwards and to make the connection work between the terminal busbar TB and the link line 710 easier. Also, in this case, since the end of the terminal busbar TB faces downwards, it is easier to realize an underground configuration for the link line 710 connected to it.
[0201] The insulating panel IP can electrically insulate the terminal busbar TB from the container housing 120. Therefore, the insulating panel IP may include an electrically insulating material such as rubber, silicone, or plastic. Furthermore, the insulating panel IP can be interposed between the terminal busbar TB and the outer surface of the container housing 120 to separate the terminal busbar TB from the outer surface of the container housing 120 by a predetermined distance. In addition, the insulating panel IP is made of an elastic material to prevent the transmission of shocks and vibrations between the terminal busbar TB and the container housing 120.
[0202] The terminal cover TC may be configured to protect the terminal busbar TB. Therefore, the terminal cover TC may be configured to surround the outside of the terminal busbar TB. For example, the terminal cover TC may comprise a shroud panel as shown in TC1 and a shroud cover as shown in TC2. Here, the shroud panel TC1 may be formed in a substantially rectangular ring shape and configured to surround the sides of the terminal busbar TB, for example, the top, bottom, front and rear. The shroud cover TC2 may be formed in a substantially plate shape and configured to cover the open side of the shroud panel TC1. Therefore, the shroud cover TC2 may cover the left side of the terminal busbar.
[0203] According to this embodiment, the terminal busbar can be reliably protected from external physical and chemical factors. In this embodiment, the shroud cover TC2 is separable from the shroud panel TC1. In this case, the separation of the shroud cover TC2 facilitates the connection and disconnection of the terminal busbar TB, as well as maintenance work.
[0204] Furthermore, the battery container 100 according to the present invention may include a cable cover CC. The cable cover CC may be configured to enclose the cables connected to the battery container 100. For example, multiple power cables can be connected to the terminal bus bar TB to transmit power. Here, the power cables connected to the terminal bus bar TB may be the link line 710 described above, or they may be separate cables connected to the link line 710. The cable cover CC may be located at one end of the terminal cover TC, for example, the lower end, to protect the multiple power cables connected to the terminal bus bar TB. Alternatively, data cables may be connected to the battery container 100 for sending and receiving various data with other external components, such as a control cabinet 200. In this case, the cable cover CC may be configured to protect the data cables and the like connected to the battery container 100 from the outside.
[0205] In particular, the cable cover CC may comprise a cable tray CC1 and a tray cover CC2. The cable tray CC1 may comprise a main body attached to the outer wall of the container housing 120, and side wall portions projecting outward from the periphery of the main body. For example, the side wall portions may be formed to project to the left from the front and rear side ends of the main body. The tray cover CC2 may be coupled to the end of the side wall portion projecting from the main body of the cable tray CC1, and together with the main body and side wall portions, form an internally open space. In particular, such an open space may be formed in a hollow manner. Therefore, cables may extend outward from the battery container 100 through such an open space in the cable cover CC. The cables extending outward may then be connected to other external components, such as a control cabinet 200 or other battery container 100 side.
[0206] According to this embodiment, the exposure of cables extending outward from the battery container 100 is minimized, thereby protecting the cables and preventing damage or breakage. Furthermore, the cable cover CC is configured to form a hollow space downward from the side of the container housing 120, allowing the cables housed inside to be exposed outward toward the bottom, which is advantageous for cable installation, management, and undergrounding.
[0207] Figure 21 is a schematic perspective view showing the configuration of a battery container 100 included in a battery system according to yet another embodiment of the present invention.
[0208] Referring to Figure 21, the battery container 100 may have three or more connector housings R. More specifically, the connector housings R are formed on the upper side of the container housing 120, and may be formed not only on the left and right sides, but also on the front and rear sides. Each of these four connector housings R1 to R4 may be provided with a main connector 131. These main connectors 131 may be connected to each other through a main busbar 132, and configured to allow power, particularly DC power, to flow. Each of the connector housings R1 to R4 may also be provided with an openable and closable connector cover 140 to expose or cover the main connector 131.
[0209] According to such embodiments, various types of battery systems can be easily constructed. For example, two battery containers 100 can be arranged side by side in the left-right longitudinal direction (X-axis direction) as shown in Figures 4 and 5, and connected to each other in a DC link configuration. Alternatively, two battery containers 100 can be arranged side by side in the front-to-back width direction (Y-axis direction) and connected to each other in a DC link configuration. When the two battery containers 100 are arranged side by side in the left-right longitudinal direction, the main connectors 131 of the connector housings R1 and R2 located at both the left and right ends can be used. Alternatively, when the two battery containers 100 are arranged side by side in the front-to-back width direction, the main connectors 131 of the connector housings R3 and R4 located at both the front and rear ends can be used. Therefore, the degree of freedom in the overall design of the battery system and the placement of each component can be increased.
[0210] On the other hand, in this embodiment, the connector housing R where the main connector 131, which is not used depending on the arrangement of the battery container 100, is located can be covered on both its top and side surfaces by the connector cover 140.
[0211] In a battery system according to one embodiment of the present invention, the battery container 100 may further include an air conditioning module 160 and / or a ventilation module 170.
[0212] For example, referring to the embodiment in Figure 3, one or more HVAC units may be installed as air conditioning modules 160 in the container housing 120 of the battery container 100, for example, in the door E. The HVAC can circulate the air inside the container housing 120. The air conditioning module 160 may be configured so that the internal air and the external air do not come into direct contact. That is, the air conditioning module 160 may be configured to prevent the internal air from being discharged to the outside and to prevent the external air from flowing into the inside. Therefore, even if the temperature inside the container housing 120 rises, the air conditioning module 160 can absorb only the heat from the internal air and discharge it to the outside without directly discharging the internal air to the outside. According to such an embodiment, even if a fire or toxic gas occurs inside the battery container 100, it is possible to prevent it from being discharged to the outside and causing damage to other devices such as other battery containers 100 in the vicinity, or to external workers.
[0213] Furthermore, the ventilation module 170 may be configured to discharge gas from inside the container housing 120 to the outside. The ventilation module 170 may also introduce outside air into the container housing 120. Therefore, the ventilation module 170 can function as a ventilation device. In other words, the ventilation module 170 can exchange or circulate gas between the inside and outside of the container housing 120.
[0214] In particular, the ventilation module 170 may be configured to activate in the event of an abnormal situation, such as when venting gas or a fire occurs in a specific battery module 111. Furthermore, the ventilation module 170 may be configured to discharge gases to the outside if gases are generated inside the container housing 120 due to thermal runaway of the battery rack 110 or the like. Moreover, the ventilation module 170 may be configured to exist in a closed state under normal conditions and switch to an open state in the event of an abnormal situation such as thermal runaway. In this case, since the ventilation module 170 performs active ventilation, the ventilation module 170 may be referred to as an AVS (Active Ventilation System) or may include such a system.
[0215] In this case, it is possible to prevent more serious problems such as explosions from occurring due to an increase in the internal pressure of the battery container 100. Also, in this case, by quickly venting the flammable gas inside the container housing 120 to the outside, the possibility of a fire occurring in the battery container 100 can be reduced or the occurrence of a fire can be delayed, and the scale of the fire can be reduced.
[0216] On the other hand, in an embodiment in which both a ventilation module 170 and an air conditioning module 160 are included in each battery container 100, the ventilation module 170 does not operate under normal conditions, while the air conditioning module 160 may operate. In this case, it is possible to prevent foreign matter and moisture from flowing into the container housing 120 through the ventilation module 170 during the cooling process.
[0217] According to this embodiment, since the battery container 100 is equipped with an air conditioning module 160 and a ventilation module 170, the transportation and installation of these air conditioning modules 160 and ventilation modules 170 can be completed at the same time as the transportation and installation of the battery container 100. Therefore, on-site installation work for installing the energy storage system is minimized, and the connecting structure and other components can be simplified.
[0218] In this embodiment, the air conditioning module 160 and / or the ventilation module 170 may operate under the control of the control cabinet 200. Alternatively, the air conditioning module 160 and / or the ventilation module 170 may be controlled by a control unit contained within the battery container 100, such as a rack BMS.
[0219] A battery system according to one embodiment of the present invention may further include a fire cabinet 300, as shown in Figure 1 and other figures.
[0220] The fire cabinet 300 may be configured to supply fire extinguishing fluid to one of the multiple battery containers 100. This will be explained in more detail with reference to Figures 22 to 24.
[0221] Figure 22 is a schematic diagram showing a partial configuration of a battery system according to yet another embodiment of the present invention. Figure 23 is an enlarged view showing a portion of a battery container 100 according to yet another embodiment of the present invention. In particular, Figure 23 is an enlarged view of the lower right end of the battery container 100. Figure 24 is a schematic diagram showing the connection configuration of the fire-fighting module 150 between two battery containers 100 in a battery system according to one embodiment of the present invention.
[0222] Referring to Figures 22 to 24, the fire cabinet 300 may be configured to supply fire extinguishing fluid to the battery container 100. Here, the fire extinguishing fluid may be water. In this sense, the fire cabinet 300 may be referred to as a WIU (Water Injection Unit) or WIS (Water Injection System). In particular, the fire cabinet 300 is located outside the battery container 100 and may have a separate housing of its own. In this case, the housing of the fire cabinet 300 may be made of or contain steel. The fire cabinet 300 may hold fire extinguishing fluid internally or be configured to be supplied with fire extinguishing fluid from a separate external source. For example, the fire cabinet 300 may have a fire extinguishing fluid storage tank or may be connected to a separate fire faucet to supply fire extinguishing fluid to the battery container 100.
[0223] The battery container 100 may include a fire-fighting module 150 for receiving fire-fighting fluid (water) supplied from the fire cabinet 300. First, the fire-fighting module 150 may be configured to supply the fire-fighting fluid supplied from the fire cabinet 300 to the battery rack 110 inside the battery container 100. In particular, if a fire occurs inside the battery container 100, the fire-fighting module 150 can supply fire-fighting fluid, such as water, to prevent or suppress the fire.
[0224] Furthermore, the fire-fighting module 150 may include a fire connector 151, a fire pipe 152, and / or a spray nozzle 153.
[0225] The fire connector 151 may be provided in a form exposed on the outer wall of the container housing 120, as shown in parts A4 of Figure 22 and A5 of Figure 23. The battery system according to one embodiment of the present invention may further include a supply pipe P1. The supply pipe P1 may be connected to the fire connector 151 of the battery container 100. Thus, the fire extinguishing fluid supplied from the fire cabinet 300 can be supplied to the inside of the container housing 120 via the supply pipe P1 and through the fire connector 151. The fire connector 151 may be located at the bottom of the container housing 120. In this case, interference with the main connector 131 and the like, located at the top of the container housing 120, can be avoided or minimized.
[0226] The fire pipe 152 may be provided at least partially within the internal space of the container housing 120, with one end connected to a fire connector 151. This allows for the transfer of fire extinguishing liquid supplied from the fire cabinet 300 through the fire connector 151 to a specific space within the container housing 120. In particular, the fire pipe 152 may be embedded at least partially within the beams constituting the container housing 120, or attached and fixed to the inner wall of the container housing 120.
[0227] The fire pipe 152 may include a main pipe 152M and a branch pipe 152B.
[0228] The main pipe 152M is connected at one end to a fire connector 151 and can supply fire extinguishing fluid from the fire cabinet 300 to the branch pipe 152B. Furthermore, the main pipe 152M may have a configuration that extends horizontally, for example, in the left-right direction, along the longitudinal direction of the battery container 100.
[0229] The branch pipe 152B may be configured in a form in which multiple pipes branch off from a single main pipe 152M. In particular, the branch pipe 152B may be provided to correspond to each of the multiple module stacks (formed by stacking multiple battery modules 111) arranged horizontally inside the battery container 100. In this case, one or more module stacks may constitute a battery rack 110.
[0230] For example, if ten module stacks are contained within the container housing 120 in a horizontal direction, ten branch pipes 152B may be provided in the fire pipe 152. Each branch pipe 152B can then supply fire extinguishing fluid to a battery module 111 contained within each module stack. Furthermore, the branch pipes 152B may have a form that extends vertically to correspond to the stacking configuration of the battery modules 111.
[0231] The main pipe 152M may be located at the bottom of the container housing 120, particularly on the bottom surface, as shown in Figure 22. The branch pipes 152B may have a configuration that extends upward from the main pipe 152M located at the bottom. In this case, the fire extinguishing liquid can be supplied from the bottom upward through each branch pipe 152B. According to this embodiment, the internal space of the branch pipes 152B that extend vertically can be completely filled with fire extinguishing liquid, so that there are no empty spaces. Therefore, it is possible to adequately supply fire extinguishing liquid to any of the battery modules 111 that are stacked vertically.
[0232] In particular, even under normal conditions, the main pipe 152M and / or branch pipe 152B can be kept filled with fire extinguishing fluid. In this case, a rapid supply of fire extinguishing fluid is possible when a fire occurs.
[0233] The spray nozzle 153 may be located in the branch pipe 152B and configured to spray fire extinguishing liquid toward the battery module 111. The spray nozzle 153 may be equipped with or consist of a glass valve. In this case, when a fire occurs, the glass valve may break, causing the fire extinguishing liquid inside the branch pipe 152B to be ejected to the outside.
[0234] Multiple injection nozzles 153 may be arranged along the vertical direction, which is the extending direction of the branch pipe 152B. Furthermore, the injection nozzles 153 may be provided in a one-to-one correspondence with each battery module 111. In addition, the injection nozzles 153, particularly the glass valves, may be configured to be inserted into the interior of the battery module 111.
[0235] Therefore, when a fire occurs in a specific battery module 111, fire extinguishing fluid can be quickly supplied to that battery module 111. Furthermore, in this case, fire extinguishing fluid is not supplied to other normal battery modules 111, and the fire extinguishing fluid can be concentrated on the problematic battery module 111. Thus, damage to the normal battery modules 111 contained in the battery container 100 is minimized, while also enabling normal or emergency operation of the battery container 100.
[0236] On the other hand, the fire cabinet 300 may be configured to supply fire extinguishing fluid to the battery container 100 and to recover the supplied fire extinguishing fluid in normal or abnormal conditions. In this case, the battery system according to one embodiment of the present invention may include a recovery pipe as shown by P1' in Figure 22. For example, in the embodiment of Figure 22, the fire cabinet 300 may recover fire extinguishing fluid from the battery container 100 through the recovery pipe P1'. Therefore, the battery container 100 may be equipped with a separate fire connector 151 in the part shown by A4' or the like. In this case, the part shown by A4 may function as an inlet in the battery container 100, and the part shown by A4' may function as an outlet in the battery container 100.
[0237] Furthermore, multiple battery containers 100 can be configured to supply fire extinguishing fluid to each other. For example, in the embodiment shown in Figure 2, three containers, namely the first container B-LINK#1, the second container B-LINK#2, and the third container B-LINK#3, can supply fire extinguishing fluid to each other. More specifically, the fire cabinet 300 can supply fire extinguishing fluid to the first container B-LINK#1. Then, the first container B-LINK#1 may use the fire extinguishing fluid supplied from the fire cabinet 300 to suppress its own fire, or it may supply it to the second container B-LINK#2. Similarly, the second container B-LINK#2 may use the fire extinguishing fluid supplied from the first container B-LINK#1 to suppress its own fire, or it may supply it to the third container B-LINK#3. In particular, multiple battery containers 100 can be configured to sequentially supply fire extinguishing fluid to adjacent containers.
[0238] In particular, the fire-fighting module 150 provided in each battery container 100 may be configured to supply fire-fighting fluid supplied from the outside to other battery containers 100. For example, a battery container 100 may have a fire-fighting connector 151 on its left side, as shown in part A4 in Figure 22. Alternatively, a battery container 100 may also have a fire-fighting connector 151 on its right side, as shown in part A5 in Figure 23. That is, a battery container 100 may have fire-fighting connectors 151 on at least different sides, for example, opposite sides. Within one battery container 100, a main pipe 152M and / or branch pipes 152B may be connected between the fire-fighting connectors 151 formed on these different sides.
[0239] Furthermore, a battery system according to one embodiment of the present invention may further include a connecting pipe, as shown as P2 in Figure 24. The connecting pipe P2 is connected between fire connectors 151 provided on two battery containers 100 to transfer fire extinguishing fluid, such as water. In particular, the connecting pipe P2 may be connected to fire connectors 151 on two opposing battery containers 100. For improved processability or ease of assembly, the connecting pipe P2 may be made of a flexible material or form.
[0240] As a more specific example, the container on the left in Figure 24 is the first container B-LINK#1, representing the right portion of the container shown in Figure 22. Similarly, the right portion of the battery container 100 in Figure 23 may be the same configuration applied to the right portion of the first container B-LINK#1 in Figure 24. For example, the portion A5 in Figure 23, where the fire connector 151 is provided, may be the same configuration applied to the portion indicated as A5 in Figure 24. The container on the right in Figure 24 is the second container B-LINK#2, which may have the same fire module 150 configuration as the first container B-LINK#1 in Figure 22. For example, the portion indicated as A6 in the second container B-LINK#2 in Figure 24 may be equipped with a fire connector 151 of the same or similar form as the portion indicated as A4 in Figure 22. Thus, the two battery containers 100 shown in Figure 24 are containers included in a battery system according to one embodiment of the present invention, and can be configured in the same form without needing to be manufactured separately. Therefore, a battery system can be efficiently constructed using only battery containers of the same type 100. Furthermore, the battery container 100 is interchangeable at any position.
[0241] In the embodiment shown in Figure 24, the second container B-LINK#2 can receive fire extinguishing fluid from the first container B-LINK#1 through the connecting pipe P2. More specifically, fire extinguishing fluid supplied from the fire cabinet 300 through the main pipe 152M of the first container B-LINK#1 can be transmitted to the main pipe 152M of the second container B-LINK#2 via the connecting pipe P2 and the fire connector 151 of the second container B-LINK#2. The fire extinguishing fluid transmitted to the main pipe 152M of the second container B-LINK#2 can then supply fire extinguishing fluid to the branch pipe 152B of the second container B-LINK#2. Although not shown, if another battery container 100, such as the third container B-LINK#3, is located to the right of the second container B-LINK#2, fire extinguishing fluid can be transmitted between the second container B-LINK#2 and the third container B-LINK#3 through the connecting pipe P2, similar to the configuration shown in Figure 24.
[0242] According to this embodiment of the present invention, in a battery system including a plurality of battery containers 100, a configuration in which fire extinguishing liquid is supplied to each battery container 100 can be easily achieved. In particular, according to this embodiment, there is no need to individually provide a configuration for storing and supplying a large amount of fire extinguishing liquid, such as water, to each battery container 100. Furthermore, according to this embodiment, there is no need to provide long supply pipes P1 from each battery container 100 to the fire cabinet 300 in order to receive the fire extinguishing liquid from the fire cabinet 300. Therefore, when constructing a battery system or energy storage system, the fire equipment structure or installation work can be made simpler. In particular, according to this embodiment, it is sufficient to connect the supply pipe P1 only to the battery container 100 closest to the fire cabinet 300, and there is no need to individually connect the supply pipe P1 to the fire cabinet 300 for each of the other battery containers 100. Therefore, the length of the supply pipe P1 for supplying fire extinguishing liquid from the fire cabinet 300 to the battery containers 100 can be shortened.
[0243] Therefore, according to this embodiment, not only is the safety against fire of the battery system or the energy storage system including the battery system improved, but the ease of installation and processability for realizing such a safety-enhanced structure can also be improved. In addition, the cost and time required to install fire-fighting equipment can be reduced. Furthermore, in this embodiment, when adding a battery container 100 to the energy storage system, the fire-fighting module 150 already built into the battery container 100 can be utilized. Therefore, when expanding the scale of the energy storage system, fire safety facilities can be installed quickly and conveniently.
[0244] On the other hand, referring to the embodiments in Figures 2 and 17, one fire cabinet 300 is responsible for three battery containers 100 and is configured to supply fire extinguishing fluid directly or indirectly to these battery containers. For example, in the embodiment of Figure 17, in the case of a first link group including the first container B-LINK#1 to the third container B-LINK#3, one fire cabinet 300 (WIU1) can supply fire extinguishing fluid to the first container B-LINK#1 to the third container B-LINK#3. Also, in the case of a second link group including the fourth container B-LINK#4 to the sixth container B-LINK#6, another fire cabinet 300 (WIU2) can supply fire extinguishing fluid to the fourth container B-LINK#4 to the sixth container B-LINK#6. However, the present invention is not necessarily limited to such a number of containers. For example, one fire cabinet 300 may be configured to supply fire extinguishing fluid to four or more battery containers 100.
[0245] The fire cabinet 300 may be equipped with a control unit separate from the battery container 100 and the control cabinet 200. Such a control unit may be configured to detect emergency situations such as fires through its own sensors or sensors provided in the battery container 100, and to supply fire extinguishing fluid. Alternatively, the control unit of the fire cabinet 300 may receive a control signal ordering the supply of fire extinguishing fluid from the control module 210 of the control cabinet 200 or the BMS of the battery container 100, and execute the operation to supply fire extinguishing fluid.
[0246] The fire cabinet 300 can communicate with the battery container 100 and / or the control cabinet 200 in order to perform firefighting operations to ensure the safety of the battery system. For example, the fire cabinet 300 can send and receive signals directly to the control cabinet 200 through a separate communication line. Alternatively, the fire cabinet 300 can send and receive signals to at least one battery container 100 through a separate communication line. In this case, the fire cabinet 300 can communicate with one of the multiple battery containers 100. The battery container 100 that has communicated directly with the fire cabinet 300 can then transmit signals to the other battery containers 100. For example, in the embodiment shown in Figure 2, the fire cabinet 300 can directly transmit signals only to the first container B-LINK#1. The signal transmitted from the fire cabinet 300 in this manner can then be transmitted by the first container B-LINK#1 to the second container B-LINK#2. The second container B-LINK#2, upon receiving such a signal, can also transmit the signal to the third container B-LINK#3. Furthermore, when signals are transmitted from multiple battery containers 100 to the fire cabinet 300, a similar method can be used to ensure that only one battery container 100 directly transmits a signal to the fire cabinet 300. The signals from the other battery containers 100 can then be transmitted to the fire cabinet 300 via battery containers 100 connected to the fire cabinet 300.
[0247] According to this embodiment, the length or number of communication lines between the fire cabinet 300 and the multiple battery containers 100 can be reduced. Therefore, the construction of the battery system and energy storage system becomes easier, and installation convenience can be improved.
[0248] Furthermore, as shown in the embodiment of Figure 17, if a battery system according to one embodiment of the present invention includes a plurality of control cabinets 200, some of the control cabinets 200 can operate as the main control cabinet 200. For example, if a first control cabinet E-Link1 and a second control cabinet E-Link2 are included, the first control cabinet E-Link1 can function as the main control cabinet 200. In this case, the first control cabinet E-Link1 can communicate directly with the PCS400. The second control cabinet E-Link2 can communicate with the first control cabinet E-Link1 and communicate indirectly with the PCS400.
[0249] Here, the first control cabinet E-Link1 can communicate with the battery containers 100 (B-LINK#1, B-LINK#2, B-LINK#3) belonging to the first link group, and can send and receive control information and sensing information to them. Similarly, the second control cabinet E-Link2 can communicate with the battery containers 100 (B-LINK#4, B-LINK#5, B-LINK#6) belonging to the second link group, and can send and receive control information and sensing information to them.
[0250] Furthermore, although the embodiment in Figure 17 shows that two link groups are included, three or more link groups may also be included in the battery system according to one embodiment of the present invention. In addition, the battery system according to one embodiment of the present invention can also have new link groups added to an already constructed configuration. Moreover, the battery system according to one embodiment of the present invention may be configured to allow easy addition or removal of battery containers 100 from a single link group.
[0251] On the other hand, in a battery system according to one embodiment of the present invention, each battery container 100 may be equipped with its own fire extinguishing system, separate from the fire extinguishing module 150 described above using Figures 22 to 24. For example, the battery container 100 may be equipped with a built-in fire extinguishing module configured to spray a fire extinguishing substance such as Novec-1230 or an aerosol after detecting an abnormal situation such as a fire through a temperature sensor or smoke sensor. In this case, it is possible to respond appropriately to different types of fires and to enhance fire suppression performance by deploying multiple fire extinguishing agents.
[0252] Furthermore, a battery system according to one embodiment of the present invention may further include a display module for indicating information regarding the status of the battery container 100. Such a display module may be located on the side of the battery container 100, the control cabinet 200, or the fire cabinet 300. For example, the battery container 100 according to the present invention may include a warning sound generator, a display device, etc., as a display module for indicating a steady state or abnormal states such as failure, overheating, fire, overcharging, or over-discharging.
[0253] An energy storage system according to one embodiment of the present invention includes the battery system according to the present embodiment described above. In particular, an energy storage system according to one embodiment of the present invention may include multiple battery systems according to one embodiment of the present invention. Furthermore, an energy storage system according to one embodiment of the present invention may employ various energy storage system components known at the time of filing of the present invention, in addition to the battery system according to one embodiment of the present invention. For example, an energy storage system according to one embodiment of the present invention may further include, in addition to the battery system according to one embodiment of the present invention, power transmission lines and other control devices for transmitting power, power generation devices such as solar power devices, and so on.
[0254] Although the present invention has been described above with reference to limited embodiments and drawings, it goes without saying that the present invention is not limited thereto, and that various modifications and variations can be made by persons with ordinary skill in the art to which the present invention pertains, within the equivalent scope of the technical concept and claims of the present invention. [Explanation of Symbols]
[0255] 100: Battery container 110: Battery Rack 111: Battery module 120: Container Housing 130: First powerline 130+: First positive electrode line, 130-: First negative electrode line 131: Main connector 131+: Positive connector, 131-: Negative connector MC1: First connector, MC2: Second connector 132: Main bus bar 140: Connector cover 141: Top cover, 142: Side cover 150: Firefighting Module 151: Fire connector 152: Fire pipe 152M: Main pipe, 152B: Branch pipe 153: Spray nozzle 160: Air conditioning module 170: Ventilation module 200: Control Cabinet 210: Control Module 220: Cabinet Housing 230: Second powerline 230+: Second positive electrode line, 230-: Second negative electrode line 300: Fire Cabinet 400:PCS 500: Link bus bar 600: Link Cover 610: Mounting member, 620: Cover member 710: Linkline 720: AC Line R, R1, R2, R3, R4: Connector housing F: Connection reinforcement part C: Sealing material SB: Main body, W: Wing TB: Terminal busbar, TC: Terminal cover TC1: Shroud panel, TC2: Shroud cover E: Door P1: Supply pipe, P1': Recovery pipe P2: Connecting pipe
Claims
1. A plurality of battery containers each comprising a battery rack, a container housing that houses the battery rack in an internal space, and a first power line configured to transmit charging power and discharging power, wherein the plurality of battery containers are connected to each other by the first power lines, A control cabinet comprising a control module configured to control a plurality of the battery containers, a cabinet housing that houses the control module in its internal space, and a second power line configured to be connected to a first power line of one of the plurality of battery containers, In a battery system including, The battery system further includes a fire cabinet configured to supply fire extinguishing fluid to one of the battery containers among a plurality of battery containers, A battery system in which multiple battery containers are configured to supply the fire extinguishing fluid to one another.
2. The battery system according to claim 1, wherein the first power line and the second power line are configured to transmit DC power.
3. The battery system according to claim 2, further comprising a PCS configured to be connected to a second power line of the control cabinet and to perform AC-DC conversion of charging power and discharging power to the battery container.
4. The battery system according to claim 1, wherein each of the multiple battery containers is configured to transmit power from other battery containers.
5. The battery system according to claim 1, wherein the first power line comprises a plurality of main connectors and a main busbar configured to extend continuously between the plurality of main connectors.
6. Multiple battery containers are spaced apart by a predetermined distance in the horizontal direction. The battery system according to claim 5, further comprising a link busbar connecting the main connectors of opposing battery containers.
7. The battery system according to claim 5, wherein the plurality of main connectors are located on the upper side of the container housing.
8. The battery system according to claim 1, wherein a plurality of the battery racks are included inside the container housing and are connected in parallel to the first power line.
9. The battery system according to claim 1, wherein a plurality of the battery containers and AC lines are connected to the control cabinet.
10. Two or more of the control cabinets are included in the battery container and connected to one PCS, The battery system according to claim 1, wherein a plurality of the battery containers are connected to each control cabinet.
11. An energy storage system comprising the battery system according to any one of claims 1 to 10.
Citation Information
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