BATTERY MODULE, BATTERY RACK COMPRISING SAME BATTERY MODULE, AND POWER STORAGE DEVICE COMPRISING SAME BATTERY RACK
20220249891 · 2022-08-11
Assignee
Inventors
- Sang-Hyun JO (Daejeon, KR)
- Young-Seok LEE (Daejeon, KR)
- Kyung-Hyun BAE (Daejeon, KR)
- Jin-Kyu SHIN (Daejeon, KR)
- Jin-Kyu Lee (Daejeon, KR)
Cpc classification
H01M10/42
ELECTRICITY
H01M50/233
ELECTRICITY
A62C35/02
HUMAN NECESSITIES
H01M50/204
ELECTRICITY
H01M10/4207
ELECTRICITY
International classification
A62C35/02
HUMAN NECESSITIES
Abstract
A battery module includes a battery cell, a module case configured to accommodate the battery cell and a fire extinguishing unit mounted to penetrate into the module case and connected to a fire extinguishing tank unit containing a fire extinguishing agent to directly inject the fire extinguishing agent into the module case when a thermal runaway or fire occurs at the at least one battery cell.
Claims
1. A battery module, comprising: at least one battery cell; a module case configured to accommodate the at least one battery cell; and a fire extinguisher mounted to penetrate into the module case and connected to a fire extinguishing tank containing a fire extinguishing agent to directly inject the fire extinguishing agent into the module case when a thermal runaway or fire occurs at the at least one battery cell.
2. The battery module according to claim 1, wherein the fire extinguisher is configured to penetrate into the module case at one end of the module case to be elongated along a longitudinal direction of the module case.
3. The battery module according to claim 2, wherein the fire extinguisher is configured to penetrate into the module case at a rear surface of the module case.
4. The battery module according to claim 2, wherein the fire extinguisher includes: a body having an internal flow path and connected to the fire extinguishing tank unit, the body being configured to penetrate into the module case to be elongated along the longitudinal direction of the module case; and at least one injection nozzle provided to the body to inject the fire extinguishing agent toward the at least one battery cell inside the module case.
5. The battery module according to claim 4, wherein the at least one injection nozzle is a plurality of injection nozzles, and wherein the plurality of injection nozzles are arranged to be spaced apart from each other by a predetermined distance along the longitudinal direction of the module case.
6. The battery module according to claim 4, wherein the at least one injection nozzle includes: a nozzle body connected to the body and having an injection hole for injecting the fire extinguishing agent; and a glass bulb provided to the nozzle body and configured to cover the injection hole so that the internal flow path of the body is sealed, the glass bulb being at least partially broken to open the internal flow path and the injection hole when the inside of the module case is exposed to an internal gas over a predetermined temperature.
7. The battery module according to claim 4, wherein the at least one injection nozzle is provided perpendicular to the body and disposed to face the at least one battery cell.
8. The battery module according to claim 1, wherein the fire extinguishing agent is water.
9. A battery rack, comprising: at least one battery module as defined in claim 1; and a rack case configured to accommodate the at least one battery module.
10. An energy storage system, comprising: at least one battery rack as defined in claim 9.
Description
DESCRIPTION OF DRAWINGS
[0020] The accompanying drawings illustrate a preferred embodiment of the present disclosure and together with the foregoing disclosure, serve to provide further understanding of the technical features of the present disclosure, and thus, the present disclosure is not construed as being limited to the drawing.
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
BEST MODE
[0030] The present disclosure will become more apparent by describing in detail the embodiments of the present disclosure with reference to the accompanying drawings. It should be understood that the embodiments disclosed herein are illustrative only for better understanding of the present disclosure, and that the present disclosure may be modified in various ways. In addition, for ease understanding of the present disclosure, the accompanying drawings are not drawn to real scale, but the dimensions of some components may be exaggerated.
[0031]
[0032] Referring to
[0033] The battery cell 100 is a secondary battery, and may be provided as a pouch-type secondary battery, a rectangular secondary battery, or a cylindrical secondary battery. Hereinafter, in this embodiment, it will be described that the battery cell 100 is a pouch-type secondary battery.
[0034] At least one battery cell 100 or a plurality of battery cells 100 may be provided. Hereinafter, in this embodiment, it will be described that the battery cell 100 is provided in plural.
[0035] The module case 200 may accommodate the plurality of battery cells 100. To this end, an accommodation space for accommodating the plurality of battery cells 100 may be provided in the module case 200.
[0036] The module case 200 may has a connection hole 205.
[0037] The connection hole 205 is formed at a rear side of the module case 200, and may be provided as an opening of a predetermined size. The fire extinguishing unit 300, explained later, may pass through the connection hole 205.
[0038] The fire extinguishing unit 300 is mounted to penetrate into the module case 200 and is connected to a fire extinguishing tank unit T (see
[0039] The fire extinguishing unit 300 may be connected to the fire extinguishing tank unit T via a fire extinguishing agent supply pipe 70. The fire extinguishing unit 300 may be disposed to penetrate into the module case 200 at one side end of the module case 200 to be elongated in a longitudinal direction of the module case 200.
[0040] Specifically, the fire extinguishing unit 300 may be mounted to penetrate into the module case 200 through the connection hole 205 of the module case 200 at one side of a rear surface of the module case 200, and may be communicatively connected to the fire extinguishing agent supply pipe 70.
[0041] In the case of this embodiment, when fire occurs at the battery cells 100 inside the battery module 10, since the fire extinguishing unit 300 directly injects the fire extinguishing agent into the module case 200, it is possible to more quickly and effectively extinguish the fire at an early stage.
[0042] Hereinafter, the fire extinguishing unit 300 according to this embodiment will be described in more detail.
[0043]
[0044] Referring to
[0045] The unit body 310 may be provided in an approximately elongated pipe shape in a predetermined length. The unit body 310 has an internal flow path formed therein for storage and movement of the fire extinguishing agent, and is connected to the fire extinguishing tank unit T (see
[0046] A pipe fastening portion 315 may be provided at one end of the unit body 310.
[0047] The pipe fastening portion 315 is connected to the fire extinguishing agent supply pipe 70, and may be disposed to protrude at the rear of the module case 200, specifically out of the connection hole 205 of the module case 200, when the unit body 310 is mounted to the module case 200.
[0048] The injection nozzle 330 is for injecting the fire extinguishing agent toward the battery cells 100 inside the module case 200 (see
[0049] The injection nozzle 330 may be provided perpendicular to the unit body 310 and disposed to face the plurality of battery cells 100 inside the module case 200.
[0050] At least one injection nozzle 330 or a plurality of injection nozzles 330 may be provided. Hereinafter, in this embodiment, it will be described that the injection nozzle 330 is provided in plural.
[0051] The plurality of injection nozzles 330 may be disposed to be spaced apart from each other by a predetermined distance along the longitudinal direction of the module case 200. Hereinafter, the injection nozzle 330 will be described in more detail.
[0052]
[0053] Referring to
[0054] The nozzle body 331 may be mounted to the unit body 310 to communicate with the internal flow path of the unit body 310. The nozzle body 331 may be disposed to protrude perpendicular to the longitudinal direction of the unit body 310.
[0055] The nozzle body 331 may have an injection hole 332.
[0056] The injection hole 332 is for injecting the fire extinguishing agent, and may communicate with the internal flow path of the unit body 310. When the injection hole 332 is opened, the fire extinguishing agent may be injected to the outside.
[0057] The glass bulb 333 is provided to the nozzle body 331, and is configured to cover the injection hole 332 so that the internal flow path of the unit body 310 is sealed. Also, the glass bulb 333 may be configured to be at least partially broken to open the internal flow path and the injection hole 332 when the inside of the module case 200 is exposed to an internal gas over a predetermined temperature.
[0058] The glass bulb 333 is filled with a predetermined substance such as a predetermined liquid or gas. Such a predetermined material may have a property of increasing in volume as the temperature increases. Specifically, the glass bulb 333 may be broken, melted or separated from the nozzle body 331 due to volume expansion of the predetermined material at the predetermined temperature, for example 70° C. to 100° C. or above to open the injection hole 332.
[0059] The nozzle cap 335 is spaced apart from the nozzle body 331 by a predetermined distance, and may support the glass bulb 333 together with the nozzle body 331. By means of the nozzle cap 335, the glass bulb 333 may be more stably supported by the nozzle body 331.
[0060] The guide rib 337 is provided in plural, and the plurality of guide ribs 337 may be connected to the nozzle body 331 and the nozzle cap 335, respectively. The plurality of guide ribs 337 may be spaced apart from each other by a predetermined distance, and may also be spaced apart from the glass bulb 333 by a predetermined distance.
[0061] The guide rib 337 may guide the high-temperature gas to be moved toward the glass bulb 333 so that the glass bulb 333 may be more smoothly broken or separated when a high-temperature gas over a predetermined temperature is generated inside the module case 200.
[0062] Hereinafter, an injection nozzle according to another embodiment of the present disclosure will be described.
[0063]
[0064] Referring to
[0065] The nozzle body 331, the glass bulb 333 and the guide rib 337 are substantially identical or similar to those of the former embodiment and thus will be described in detail again.
[0066] The nozzle cap 338 may be provided in a shape and size that may cover the nozzle body 331. For example, the nozzle cap 338 may be provided in a disk shape having an area approximately larger than that of the nozzle body 331.
[0067] The dispersion portion 339 is provided to the nozzle cap 338, and may be provided in a substantially sawtooth shape along a circumferential direction of the nozzle cap 338. When the fire extinguishing agent is injected through the injection hole 332, the dispersion portion 339 may guide the fire extinguishing agent to be dispersed in a broader range.
[0068]
[0069] Referring to
[0070] The cooling air supply unit 400 is provided at a front side of the module case 200, and may supply a cooling air into the module case 200 of the battery module 10 in order to cool the battery cells 100.
[0071] The cooling air discharge unit 500 is provided at a rear side of the module case 200, and may be disposed diagonally with the cooling air supply unit 400. The cooling air discharge unit 500 may discharge the air, which has cooled the battery cells 100 inside the module case 200, to the outside of the module case 200.
[0072] Hereinafter, a detailed mechanism of the fire extinguishing unit 300 according to this embodiment when an abnormal situation such as a fire situation of the battery module 10 according to this embodiment occurs will be described in detail.
[0073]
[0074] Referring to
[0075] By means of the high-temperature gas G, the glass bulb 333 of the fire extinguishing unit 300 may be broken or melted, as shown in
[0076] Referring to
[0077] Accordingly, in this embodiment, when a fire situation or a thermal runaway situation occurs at the battery module 10, since the fire extinguishing agent is immediately and directly injected toward the battery cells 100 inside the module case 200 by means of the fire extinguishing unit 300, it is possible to more quickly and rapidly extinguish the fire or thermal runaway situation at an early stage.
[0078] Therefore, in this embodiment, by rapidly extinguishing the fire or thermal runaway situation at an early stage, it is possible to more effectively prevent a dangerous situation such as a secondary explosion from occurring due to the transfer of heat or flame to neighboring battery cells 100 in advance.
[0079]
[0080] Referring to
[0081] The fire extinguishing agent supply pipe 70 may communicate with the fire extinguishing unit 300 and the fire extinguishing tank unit T (see
[0082] Since the battery rack 1 of this embodiment includes the battery module 10 of the former embodiment, the battery rack 1 may have all advantages of the battery module 10 of the former embodiment.
[0083]
[0084] Referring to
[0085] The rack container C may include a fire extinguishing tank unit T for supplying a fire extinguishing agent to the plurality of battery racks 1. The fire extinguishing tank unit T is filled with the fire extinguishing agent, namely a fire extinguishing water prepared as water. The fire extinguishing tank unit T may be connected to the plurality of battery racks 1 through the fire extinguishing agent supply pipe 70 to supply the fire extinguishing water toward the plurality of battery racks 1.
[0086] Since the energy storage system E of this embodiment includes the battery rack 1 of the former embodiment, the energy storage system E may have all advantages of the battery rack 1 of the former embodiment.
[0087] According to various embodiments as above, it is possible to provide a battery module 10 capable of more rapidly extinguishing thermal runaway or fire at an early stage when thermal runaway occurs in the battery module 10 or fire occurs due to the thermal runaway or the like, a battery rack 1 including the battery module 10, and an energy storage system E including the battery rack 1.
[0088] While the embodiments of the present disclosure have been shown and described, it should be understood that the present disclosure is not limited to the specific embodiments described, and that various changes and modifications can be made within the scope of the present disclosure by those skilled in the art, and these modifications should not be understood individually from the technical ideas and views of the present disclosure.