LITHIUM ION BATTERY SYSTEM HAVING TEMPERATURE CONTROL FUNCTION
20180241028 ยท 2018-08-23
Inventors
Cpc classification
H01M50/24
ELECTRICITY
H01M50/28
ELECTRICITY
H01M10/659
ELECTRICITY
H01M10/653
ELECTRICITY
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M2220/20
ELECTRICITY
H01M10/0525
ELECTRICITY
International classification
H01M10/0525
ELECTRICITY
Abstract
A lithium ion battery system having a temperature control function includes a shell, a battery core, and a phase change material. The battery core is packaged in the shell, the shell is filled with the phase change material which is in contact with a surface of the battery core, and the phase change material includes sodium nitrate with crystal water, paraffin wax, white carbon black, polyacrylamide gel, and trimethylolpropane.
Claims
1. A lithium ion battery system having a temperature control function, the lithium ion battery system comprising: a shell; a battery core; a phase change material; wherein the battery core is packaged in the shell, the shell is filled with the phase change material which is in contact with a surface of the battery core; the phase change material comprises sodium nitrate with crystal water, paraffin wax, white carbon black, polyacrylamide gel and trimethylolpropane; and wherein sodium nitrate with crystal water accounts for approximately 20% of the weight of the phase change material, paraffin wax accounts for approximately 30% of the weight of the phase change material, white carbon black accounts for approximately 10% of the weight of the phase change material, polyacrylamide gel accounts for approximately 5% of the weight of the phase change material and trimethylol propane accounts for approximately 35% of the weight of the phase change material.
2. The lithium ion battery system having a temperature control function according to claim 1, wherein the shell comprises a metal box with an opening on one end and an upper cover, the upper cover comprises a buckle, the metal box is provided with a boss, and the upper cover and the metal box are connected by means of the buckle and the boss.
3. The lithium ion battery system having a temperature control function according to claim 2, wherein the upper cover further comprises an anti-explosion valve.
4. The lithium ion battery system having a temperature control function according to claim 2, wherein the metal box is an aluminum alloy metal box.
5. The lithium ion battery system having a temperature control function according to claim 2, wherein the upper cover comprises a pole lug through hole for an electrode terminal of the battery core to pass through.
6. The lithium ion battery system having a temperature control function according to claim 2, wherein the upper cover is made of a plastic, wherein the plastic comprises polypropylene, ABS plastic, and carbon fiber.
7. The lithium ion battery system having a temperature control function according to claim 1, wherein the battery core comprises a lithium ion battery cell or a lithium ion battery parallel core.
8. The lithium ion battery system having a temperature control function according to claim 7, wherein the lithium ion battery parallel core comprises: at least two lithium ion battery cells; a heat conducting silica gel; wherein the lithium ion battery cells are connected to each other in parallel and are adhered to each other by using the heat conducting silica gel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0029] The lithium ion battery system is described below in detail with reference to drawings and specific embodiments. The embodiments are implemented by taking a technical solution of the lithium ion battery system described herein. Although detailed implementation manners and specific operation processes are provided, the protection scope of the lithium ion battery system described herein is not limited to the embodiments below.
[0030] As shown in
[0031] Referring to
[0032] Referring to
[0033] The upper cover is further provided with an anti-explosion valve 30. The metal box 20 may be an aluminum alloy metal box. The upper cover 24 is further provided pole lug through holes 32A and 32B for terminals of the battery core 14 to pass through. The upper cover 24 may be made of plastic, and the plastic includes polypropylene, ABS plastic, and carbon fiber.
[0034] Referring to
[0035] As best shown in
[0036] The schematic diagrams of respective parts of the battery system 10 are as shown in
[0037] The phase change material 16 is heated into a temperature above a phase change temperature to present a half-flowing state. The phase change material 16 is filled into the metal box 20 and is in close contact with a surface of the battery core 14. Finally, the upper cover 24 is covered on the opening 22 of the metal box 20, the pole lugs pass 32A and 32B through the pole lug through holes 32A and 32B in the upper cover 24. The upper cover 24 is connected to the metal box 20 by means of the snap 28, and then the battery system 10 is completely assembled.
[0038] The lithium ion battery system 10 having a temperature control function is manufactured according to the foregoing method, and comparative tests are performed on the lithium ion battery system having a temperature control function and a similar lithium ion battery system without being filled with a phase change material, so as to detect performance of the lithium ion battery system 10 having a temperature control function. A specific process includes the following: first, placing temperature probes at central positions in the middle of battery cores and outside metal boxes of battery modules; then, charging and discharging the two systems (charging at 1 C and discharging at 3 C), and recording temperature changes in a pending state after the discharging and the discharging is ended, where results are as shown in the following table and
TABLE-US-00001 TABLE 1 Impacts of having a phase change material or having no phase change material on stability of a battery system: Battery core interior Shell surface Temperature Temperature Temperature rise rate Highest Temperature rise rate Highest rise ( C.) ( C./s) temperature rise ( C.) ( C./s) temperature Having 20.26 0.017 48.89 18 0.015 46.1 a phase change material Having 15.54 0.012 43.62 6 0.005 32.5 no phase change material
[0039] From Table 1 and
[0040] As a person skilled in the art will readily appreciate, the above description is meant as an illustration of the principles of this invention. This description is not intended to limit the scope or application of this invention in that the invention is susceptible to modification, variation and change, without departing from spirit of this invention, as defined in the following claims.