This non-provisional application claims priority claim under 35 U.S.C. ยง 119 (a) on China Patent Application No. 201711138278.5 filed Nov. 16, 2017, the entire contents of which are incorporated herein by reference.
The present invention relates to a battery device, particularly to a battery device having anti-fire spreading structure.
The battery cell is used for storing electrical energy. A plurality of battery cells are connected in series or in parallel to form a battery device, which can be used as a power source for a machine, for example, the battery device is as the power source for the electric vehicle.
Since the output energy of the battery device is a momentary high current, the battery cells are easy to generate high temperature, such that the service life of the battery cell is greatly shortened. Besides, when the battery cell is impacted by an external force, it may also cause an ejection of high-heat flame that will be spread to other battery cells, resulting in the explosion of the battery device.
In order to prevent that the burning of the battery cell is spreaded, the inner frame and the outer housing of the convention battery device are often made of a material with a higher hardness or a filling gel, so that the strength of packaging of the battery device can be increased to reduce the probability of the spread burning of the battery cells. However, the higher hardness material or the filling gel will increase the manufacturing cost and weight of the battery device, it is very unfavorable for the product price and the using of the battery device.
For the above reason, the present invention provides an innovative battery device, the inner of which is provided with one or more anti-fire spreading structures, in such a way that can not only reduce the probability of the spread burning of the battery cell, but also increase the safety of the use of the battery device, as well as without increasing the production cost, so that the product price of the battery device can be relatively low, it will be the objective of this invention.
It is one objective of the present invention to provide a battery device, which comprises a multi-layer housing frame and a plurality of battery cells. Each of battery cells is connected together in serial or parallel, and arranged in each layer of the housing frame, respectively. The housing frame is provided with at least one anti-fire passage therein. The battery cells in each layer of the housing frame can be isolated from each other by the anti-fire passage. When one of battery cells damages and therefore burns, the smoke, the heat or the flame formed by the damaged battery cell can be isolated by the anti-fire passage, avoided to conduct to the front and rear battery cells, and guided to the outside of the housing frame so as to decrease the probability of spread burning.
It is another objective of the present invention to provide a battery device, in which each of battery cells is placed in a anti-fire casing tube and covered by the anti-fire casing tube, each of battery cells is isolated from the adjacent battery cell by the anti-fire casing tube. When the battery cell damages and therefore burns, the smoke, the heat, or the flame formed by the damaged battery cell can be isolated and heat dissipated by the anti-fire casing tube, and avoided to conduct to the adjacent battery cell to prevent the probability of spread burning.
It is another objective of the present invention to provide a battery device, which comprises a conductive metal surface and a plurality of fuses, the connection between the conductive metal surface, the fuse, and an electrode terminal of the battery cell is designed in the form of a gap; when the fuse is blown, even if the short-circuit battery cell occurs the shaking of the left and right displacement, the electrode terminal of the short-circuit battery cell also will not contact with the incompletely blown fuse, so as to avoid that the current path between the short-circuit battery cell and the conductive metal surface is re-conducted.
To achieve the above objective, the present invention provides a battery device having anti-fire spreading structure, comprising: a plurality of battery cells; a multi-layer housing frame, wherein each of battery cells is connected together in serial or parallel, and arranged in each layer of the housing frame, respectively; and at least one anti-fire passage, separated by a plurality of insulation sheets, and arranged in each layer of the housing frame, respectively, wherein the battery cells in each layer of the housing frame can be isolated from each other by the anti-fire passage.
In one embodiment of the present invention, each of the battery cells is placed in a anti-fire casing tube, respectively.
In one embodiment of the present invention, the battery device further comprises a conductive metal surface and a plurality of fuses, the conductive metal surface is disposed on the housing frame, each of the fuses is connected at an end thereof to the conductive metal surface, and connected at other end thereof to an electrode terminal of the corresponding battery cell.
In one embodiment of the present invention, a height difference is existed between a plane of the conductive metal surface and a plane of the electrode terminal of each of the battery cells, the electrode terminal of each of the battery cells is connected to the conductive metal surface via the fuse of upward bending.
The present invention further provides a battery device having anti-fire spreading structure, comprising: a plurality of battery cells; and a multi-layer housing frame, wherein each of battery cells is connected together in serial or parallel, and arranged in each layer of the housing frame, respectively; wherein each of the battery cells is placed in a anti-fire casing tube, respectively.
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In the present invention, each of battery cells 20 has its own fuse 17, respectively. If any battery cell 20 generates an abnormal current due to a short-circuit, the fuse 17 electrically connected to the short-circuit battery cell 20 will be blown by the high temperature so that an open circuit is generated between the electrode terminal 21 of the short-circuit battery cell 20 and the conductive metal surface 11 to avoid that the other battery cells 20 in normal operation are affected.
Sequentially, the short-circuit battery cell 20 will generate a left-right displacement in the housing frame 10 after the fuse 17 is blown. If the connection between the conductive metal surface 11, the fuse 17 and the electrode terminal 21 of the battery cell 20 is designed in a way of planar, the short-circuit battery cell 20 will be re-connected to the incompletely blown fuse 17 due to the left and right displacement, such that the current path between the short-circuit battery cell 20 and the conductive metal surface 11 will be re-conducted, which will cause the risk of other normal battery cells 20 to be damaged.
In order to avoid the short-circuit battery cell 20 to be re-connected to the incompletely blown fuse 17, the connection between the conductive metal surface 11, the fuse 17, and the electrode terminal 21 of the battery cell 20 is designed in the form of a gap, such that a height difference (d) is existed between a plane of the conductive metal surface 11 and a plane of the electrode terminal 21 of each of battery cells 20, for example, the plane of the conductive metal surface 11 is higher than the plane of the electrode terminal 21 of each of battery cells 20. The electrode terminal 21 of the battery cell 20 is connected to the conductive metal surface 11 via the fuse 17 of upward bending. When the fuse 17 is blown, the blown location will occur at a turning point between the fuse 17 and the battery cell 20. Thus, even if the short-circuit battery cell 20 occurs the shaking of the left and right displacement, the electrode terminal 21 of the battery cell 20 also will not contact with the incompletely blown fuse 17, so as to avoid that the current path between the short-circuit battery cell 20 and the conductive metal surface 11 is re-conducted.
Summing up, when the damaged battery cell 20 generates to burn, the smoke, the heat or the flame formed by the damaged battery cell 20 will be isolated by the anti-fire passage 15 and the anti-fire casing tube 23, and not be conducted to the surrounding normal battery cell 20, so as to avoid the chance of spread burning or delay the flash fire time. Besides, the connection between the conductive metal surface 11, the fuse 17, and the electrode terminal 21 of the battery cell 20 is implemented in the form of the gap; thus, even if the short-circuit battery cell 20 occurs the shaking of the left and right displacement, the electrode terminal 21 of the battery cell 20 also will not contact with the incompletely blown fuse 17, so as to avoid that the current path between the short-circuit battery cell 20 and the conductive metal surface 11 is re-conducted, and therefore the safety of the battery device in using can be increased.
The above disclosure is only the preferred embodiment of the present invention, and not used for limiting the scope of the present invention. All equivalent variations and modifications on the basis of shapes, structures, features and spirits described in the claims of the present invention should be included in the claims of the present invention.
Number | Date | Country | Kind |
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201711138278.5 | Nov 2017 | CN | national |