Connecting structure for exteriorly connecting a battery cell and a load circuit by using two connecting graphite blocks
09673439 ยท 2017-06-06
Assignee
Inventors
Cpc classification
H01R13/03
ELECTRICITY
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
International classification
Abstract
A connecting structure for exteriorly connecting a battery cell and a load circuit by using two graphite connecting graphite blocks, wherein the positive and negative electrode terminals of the battery cell are made of nickel, the battery cell is connected to the load circuit by the two connecting graphite blocks, respectively. The graphite is inexpensive and resistant to oxidation; whereas, the connecting graphite blocks and the nickel-plated metal made electrode terminals of the battery cell will dissolve in each other to form a carbon-nickel alloy after being brought into contact with one another, thus ensuring a smooth large-current discharge because of the reduction in resistance of external connection.
Claims
1. A connecting structure for exteriorly connecting a battery cell and a load circuit by using two connecting graphite blocks comprising: a battery cell being exteriorly provided with a positive electrode terminal and a negative electrode terminal which are made of nickel-plated metal and served as power output terminals of the battery cell; the two connecting graphite blocks being a first connecting graphite block and a second connecting graphite block; the first connecting graphite block being separated from the battery cell and electrically connected to a load circuit; and the second connecting graphite block being located outside the battery cell and electrically connected to the load circuit; wherein the first and the second connecting graphite blocks are not a part of the battery cell and are made of graphite alloy; the first connecting graphite block is brought into contact with the positive electrode terminal of the battery cell, and the second connecting graphite block is brought into contact with the negative electrode terminal of the battery cell.
2. The connecting structure for exteriorly connecting a battery cell and a load circuit by using the two connecting graphite blocks as claimed in claim 1, wherein the graphite alloy is a silver-carbon alloy.
3. The connecting structure for exteriorly connecting a battery cell and a load circuit by using the two connecting graphite blocks as claimed in claim 1, wherein the graphite alloy is a copper-carbon alloy.
4. The connecting structure for exteriorly connecting a battery cell and a load circuit by using the two connecting graphite blocks as claimed in claim 1, wherein the first and the second connecting graphite blocks each are interiorly provided with a wire serving as a power output wire of the battery cell.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(7) The present invention will be easily comprehended from the following description when viewed together with the accompanying drawings, which show, for purpose of illustrations only, the preferred embodiment in accordance with the present invention.
(8) Referring to
(9) The battery cell 20 is a cylindrical battery cell and exteriorly provided on both ends thereof with the positive electrode terminal 21 and the negative electrode terminal 22 which are made of nickel-plated metal and served as power output terminals of the battery cell 20.
(10) The first connecting graphite block 40 is made of a material selected from the group consisting of pure graphite, graphite alloy and conductive carbon. The graphite alloy can be a silver graphite (silver-carbon alloy), a copper graphite (copper-carbon alloy), and etc. The first connecting graphite block 40 is electrically connected to the positive electrode terminal 21 of the first battery cell 20 in a close contact manner.
(11) The second connecting graphite block 50 is made of a material selected from the group consisting of pure graphite, graphite alloy and conductive carbon. The second connecting graphite block 50 is electrically connected to the positive electrode terminal 21 of the first battery cell 20 in a close contact manner. The battery cell 20 and the load circuit 30 are then electrically connected through the first and the second connecting graphite blocks 40, 50.
(12) The first and the second connecting graphite blocks 40, 50 each are interiorly provided with a wire 60 serving as a power output wire of the battery cell 20, so that the first and the second connecting graphite blocks 40, 50 can be connected to the load circuit 30 through the wires 60.
(13) The aforementioned is the summary of the positional and structural relationship of the respective components of the preferred embodiment in accordance with the present invention.
(14) For a better understanding of the present invention, its operation and function, reference should be made to the following description:
(15) The positive and the negative electrode terminals 21, 22 of the battery cell 20 are both made of the nickel-plated metal, as shown in
(16) It is to be noted that the first and second connecting graphite blocks 40, 50 of the present invention are independent (separated) from and not necessary parts of the battery cell 20, the load circuit 30 is also independent from and not a necessary part of the battery cell 20, and the first and second connecting graphite blocks 40, 50 are located outside the battery cell 20 and used as an external connecting structure for connecting the battery cell 20 to the load circuit 30.
(17) Furthermore, the dissolving in each other phenomenon will occur when and only when graphite material is brought into contact with nickel material. With that in mind, the author of the present invention came up with the idea of providing a high conductivity connecting structure which exteriorly connects a battery cell 20 with nickel terminals to a load circuit 30 by using two connecting graphite blocks 40, 50. When the connecting graphite alloy blocks 40, 50 are brought into contact with the nickel-made electrode terminals 21, 22 of the battery cell 20, it will start the process of dissolving in each other. The process of dissolving in each other can remove oxidation or foreign matters from the electrode terminal 21, 22 of the battery cell 20 and will consequently improve the external contact conductivity of the battery cell 20. So far, no prior art was found teaching or suggesting the improvement of external contact conductivity of a battery cell 20 by bringing graphite alloy blocks 40, 50 (which are independent from and not necessary parts of the battery cell) into contact with nickel terminals 21, 22 of the single battery cell 20.
(18) In addition to the cylindrical battery cell with metal jacket, as shown in
(19) While we have shown and described various embodiments in accordance with the present invention, it is comprehensive to those skilled in the art that further embodiments may be made without departing from the scope of the present invention.