This invention relates to a power battery field, especially to a soft package lithium ion power battery with high capacity (more than 30 Ah).
A lithium ion power battery with high capacity (more than 30 Ah) produced at present is generally packaged with hard shell (metal or thick-wall plastic), which has advantages like having electrode posts (or electrode tabs) leaded from a battery core through which high current can pass, and a safety valve easy for position; and disadvantages like low safety coefficient of the safety valve, which is liable to cause safety accident such as explosion, once the battery is internal short-circuited, over charged or has accidental collision and extrusion. Moreover, the battery packaged with such materials has a heavy shell and is of low energy-weight ratio, it also needs a complicated process and great investment in equipment. In order to avoid the above disadvantages of the battery with hard shell package, people have tried to package lithium ion batteries with aluminum-plastic complex film, which has been widely applied in low capacity batteries. However, if the following processes adopted by low capacity batteries are still used in high capacity (more than 30 Ah) lithium ion batteries, for example, winding a battery core for a single sheet and single electrode tab, or punching pole plates and separators and laminating them layer by layer to form a battery core, it is difficult to satisfy the requirements of low battery internal resistance and high current charging-discharging.
The object of this invention is to provide a simple method for manufacturing a soft package lithium ion battery with high capacity, low internal resistance, good safety, and being suitable to use in high current charging-discharging.
In order to realize the above object, this invention provides a soft package lithium ion battery with high capacity, comprising a battery core, a soft package shell for packaging said battery core, an electrolyte accommodated in said shell, and electrode tabs connected to said battery core and leaded to external of said shell.
Said battery core comprises a plurality of positive pole plates and a plurality of negative pole plates, and said positive pole plates and negative pole plates are long type metal sheets with substantially identical shape, and are divided into coating regions and non-coating regions along their length direction respectively, and both faces of said coating regions of said positive pole plates are coated with positive pole active material, and both faces of said coating regions of said negative pole plates are coated with negative pole active material; the size of said coating regions of said positive pole plates is substantially the same as that of said coating regions of said negative pole plates, and said coating regions extend substantially straightly and flatly, with the extension length of said coating regions being substantially consistent with the width of the battery core required.
Said coating regions of said plurality of positive pole plates and said coating regions of said plurality of negative pole plates are aligned substantially regularly and laminated alternatively to form a lamination structure, wherein a separator is arranged between said coating regions of said positive pole plate and said coating region of said negative pole plate.
Said uncoated regions of said plurality of positive pole plates extend from one side of said lamination structure, and turn over to extend to a top surface of said lamination structure; Said uncoated regions of said plurality of negative pole plates extend from the other opposite side of said lamination structure, and likewise turn over to extend to the top surface of said lamination structure.
Two electrode tabs made of metal sheets are provided on said top surface of said lamination structure, and said two electrode tabs are connected to said uncoated regions of said plurality of positive pole plates and said uncoated regions of said plurality of negative pole plates respectively.
This invention further provides a method for manufacturing a soft package lithium ion battery with high capacity, comprising steps of:
a) providing a plurality of straight and flat positive pole plates and a plurality of straight and flat negative pole plates, said positive pole plates and negative pole plates are long type metal sheets with substantially identical shape, and are divided into coating regions and non-coating regions along their length direction respectively, and both faces of said coating regions of said positive pole plates are coated with positive pole active material, and both faces of said coating regions of said negative pole plates are coated with negative pole active material; the size of said coating regions of said positive pole plates is substantially the same as that of said coating regions of said negative pole plates, and the extension length of said coating regions is substantially consistent with the width of the battery core required;
b) wrapping said coating regions of said plurality of positive pole plates or said coating regions of said plurality of negative pole plates with separators; said separators are U-shaped with a transverse opening, and wrap the upper surface, lower surface and an end of said coating region;
c) aligning said coating regions of said plurality of positive pole plates and said coating regions of said plurality of negative pole plates substantially regularly and laminating alternatively to form a lamination structure; wherein all said uncoated regions of said plurality of positive pole plates extend from one side of said lamination structure, and all said uncoated regions of said plurality of negative pole plates extend from the other opposite side of said lamination structure;
d) connecting the uncoated regions of two sides of said lamination structure to the electrode tabs respectively;
e) turning over said uncoated regions of two sides of said lamination structure along with said electrode tabs connected thereto to a top surface of said lamination structure so as to form a battery core;
f) packaging said ready-made battery core with soft package shell; said packaging process including injecting electrolyte into said shell.
For the soft package lithium ion battery with high capacity of this invention, the capacity of said battery can be determined by the size and number of pole plates provided that the densities of the positive and negative pole plates are predetermined. In this invention, the length of the coating regions is selected to be substantially consistent with the width of the battery core required, so it is no need to wind the coating regions, which makes manufacture simple. Moreover, the aluminum thin sheets used in the soft package lithium ion battery with high capacity of this invention are large in area, and the positive and negative electrode tabs are sufficiently contacted with the positive and negative electrode current collectors in large area, thus the cost is decreased, the packaging process is simplified, the internal resistance of the battery is reduced as well, and it is allowed for high current to be charged-discharged as compared with the commonly used nickel electrode tabs. Further, the method for manufacturing the soft package lithium ion battery with high capacity of this invention is simple in fabrication, low in cost and internal resistance of battery, and the resultant battery has a good safety and electrical performance.
Referring to
The coating regions 1 of said plurality of positive pole plates and the coating regions 2 of said plurality of negative pole plates are aligned substantially regularly and laminated alternatively to form a lamination structure, wherein a separator 3 is arranged between the coating regions 1 of the positive pole plates and the coating regions 2 of the negative pole plates. The separator 3, being U-shaped with a transverse opening in a ready-made battery core, wraps the upper surface, the lower surface and one end of the coating region 1 of the positive pole plate or of the coating region 2 of the negative pole plate.
The uncoated region 1′ of said positive pole plate extends from one side of said lamination structure, and turns over to extend to a top surface of said lamination structure; the uncoated region 2′ of said negative pole plate extends from the other opposite side of said lamination structure, and likewise turns over to extend to the top surface of said lamination structure. The uncoated regions 1′ and 2′ turned over to the top surface of the lamination structure are connected to two electrode tabs 4 respectively, i.e., positive electrode tab and negative electrode tab.
When the separators 3 wrap the coating regions 1 of the positive pole plates, the number of the positive pole plates may be one more than that of the negative pole plates, thus, the outermost pole plates of the lamination structure are positive pole plates, so that the exposed separators 3 are in the uppermost and lowermost of the lamination structure. When the separators 3 wrap coating regions 2 of the negative pole plates, the number of the negative pole plates may be one more than that of the positive pole plates, thus, the outermost pole plates of the lamination structure are negative pole plates, so that the exposed separators 3 are in the uppermost and lowermost of the lamination structure.
A few applicable embodiments of the soft package lithium ion battery with high capacity of this invention will be described as follows.
As shown in
As shown in
20 positive pole plates, 21 negative pole plates and 21 separators 3 are adopted, with the length, width, thickness thereof, as well as the fabricating method and steps thereof being the same as those described in the embodiment 1.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN06/00424 | 3/20/2006 | WO | 00 | 9/19/2008 |