1. Field of the Invention
This present disclosure relates generally to a Lithium-Ion battery assembly, including without limitation, a monoblock battery assembly housing one or more Lithium-Ion electrode assemblies in a single sealed monoblock housing without individual metallic casings for each battery cell.
2. Background
The background description provided herein is for the purpose of generally presenting the context of the disclosure. Work of the presently named inventors, to the extent it is described in this background section, as well as aspects of the description that may not otherwise qualify as prior art at the time of filing, are neither expressly nor impliedly admitted as prior art against the present disclosure.
Some conventional battery assemblies, including Lithium-Ion battery assemblies, include a plurality of electrochemical cells or battery cells mechanically connected together (e.g. bolted together) in a housing. Each battery cell in the housing has an individual metallic casing, and a connector such as a bus bar or similar element electrically coupling one battery cell to one more other battery cells in the housing. The bus bar connects to an electric terminal on an outer surface of the battery cell via welding or another mechanical attachment (e.g. a bolt or a screw). The metallic casing in these conventional battery assemblies hermetically seals each battery cell to prevent moisture from entering into the cell and to prevent electrolyte from escaping the cell by a leak or evaporation, for example. Lithium-Ion batteries, in particular, as compared to some other conventional battery assemblies, are sensitive to moisture introduction in the battery cell. These conventional battery assemblies are costly as each battery cell has an individual metallic casing. Further, connection between the battery cells may be bulky and prone to breakage or leakage between the connections.
The present invention provides a monoblock battery assembly which houses one or more electrode assemblies together in a sealed monoblock battery assembly casing without the need for each electrode assembly to have an individual metallic casing. With the aspects of this present invention, the battery assembly housing provides an integrated casing such that each electrode assembly is provided in an individual seal-tight cavity of the battery assembly casing.
Through the multiple embodiments, the battery assembly of this invention reduces the costs of materials and cost of assembly, and improves stability, water-tightness, and electrolyte-tightness. Example embodiments of this application may address one or more of the above identified issues. However, an embodiment of this application need not solve, address, or otherwise improve on existing technologies.
A first exemplary aspect of the present disclosure includes a monoblock battery assembly having an electrode assembly with at least one positive electrode, at least one negative electrode, one or more insulative sheets between the at least one positive electrode and the at least one negative electrode, and an outermost insulative layer which substantially encases the at least one positive electrode, the at least one negative electrode, and the one or more insulative sheets; a housing having a cavity for receiving the electrode assembly; a cover sealingly attached to the housing; and a bussing electrically connected to the at least one positive electrode and the at least one negative electrode of the electrode assembly.
A second exemplary aspect of the present disclosure includes a method for making a monoblock battery assembly comprising the steps of: layering at least one positive electrode, at least one negative electrode, and one or more insulative sheets between the at least one positive electrode and the at least one negative electrode, wrapping an insulative layer around the at least one positive electrode, at least one negative electrode, and the one or more insulative sheets to form an outermost insulative layer which substantially encases the at least one positive electrode, the at least one negative electrode, and the one or more insulative sheets to form an electrode assembly; electrically connecting the bussing to the electrode assembly to form an electrode-bussing unit; simultaneously placing the electrode-bussing unit into the housing, such that the electrode assembly is placed in a cavity of the housing and attaching the cover to the housing; and sealing the cover to the housing.
In the following detailed description, reference will be made to the accompanying drawing(s), in which similar elements are designated with similar numerals. The aforementioned accompanying drawings show by way of illustration and not by way of limitation, specific example embodiments and implementations consistent with principles of an example embodiment. These implementations are described in sufficient detail to enable those skilled in the art to practice an example embodiment and it is to be understood that other implementations may be utilized and that structural changes and/or substitutions of various elements may be made without departing from the scope and spirit of an example embodiment. The following detailed description is, therefore, not to be construed in a limited sense.
Embodiments will be described below in more detail with reference to the accompanying drawings. The following detailed descriptions are provided to assist the reader in gaining a comprehensive understanding or the methods, appearances, and/or systems described herein and equivalent modifications thereof. Accordingly, various changes, modification, and equivalents of the methods, apparatuses, and/or systems described herein will be apparent to those of ordinary skill in the art. Moreover, descriptions of well-known functions and constructions may be omitted for increased clarity and conciseness.
The terms used in the description are intended to describe embodiments only, and shall by no means be restrictive. Unless clearly used otherwise, expressions in a singular form include a meaning of a plural form. In the present description, an expression such as “comprising” or “including” is intended to designate a characteristic, a number, a step, an operation, an element, a part or combinations thereof, and shall not be construed to preclude any presence or possibility of one or more other characteristics, numbers, steps, operations, elements, parts or combinations thereof.
As shown in
Monoblock battery assembly 1 has one or more electrode assemblies 2, and may include either a single assembly or multiple assemblies electrically connected in a series or parallel configuration. The structure and shape of electrode assembly 2 is not limiting and may for example, comprise a stacked or prismatic electrode assembly or a wound electrode assembly, commonly known as a jelly roll, as discussed below. As shown in
As shown in a non-limiting embodiment in
Each positive and negative electrode layer is substantially coated with an electrochemical active material leaving exposed edges of the positive and negative electrode layers. These exposed edges on the ends of the positive and negative electrode layers form positive electrode group 4 and negative electrode group 6 on opposite sides of electrode assembly 2 as shown in
For example, multiple positive electrode layers 3 or positive substrate foils and multiple negative electrode layers 5 or negative substrate foils may be stacked together and separated by insulative sheets 7. While each electrode layer is substantially coated with an electrochemical active material, the positive electrode layers 3 are left exposed on one end of the stack and the negative electrode sheets 5 are left exposed on another end of the stack. The exposed ends of the positive electrode layers 3 are grouped together to form a positive electrode group 4 and the exposed ends of the negative electrode layers 5 are grouped together to form a negative electrode group 6 on an opposite end as the positive electrode group 4.
As shown in
While electrode assembly 2 is shown as being provided as having a generally square shape, according to other exemplary embodiments, electrode assembly 2 may have a different configuration (e.g. an oval, circle, rectangular, or cylindrical cross-sectional shape).
In addition to each cavity 12 holding an electrode assembly 2 each cavity 12 also holds electrolyte 11 (shown in
Housing 10 is made from a polymer material. In a non-limiting embodiment, the polymer material has a low electrolyte and moisture permeation rate. That is, the material of housing 10 is resistant to electrolyte 11, such that electrolyte 11 does not pass in between cavities 12 and does not escape monoblock battery assembly 1. In addition, the material of housing 10 has a low moisture permeability such that once monoblock battery assembly 1 is sealed, moisture is restricted or limited from entering and/or leaving monoblock battery assembly 1. In addition, housing 10 may be made of a low-cost material of high mechanical strength which is weldable and injection moldable. Examples of materials include: polypropylene or polyphenylene sulfide.
Monoblock battery assembly 1 also includes a cover 14 with a bussing or bussings 16 integrally molded thereto as shown in
The exposed portions 22 of each bussing 16 extend from cover 14 a sufficient length to attach to and electrically connect to one or more of the electrode assemblies 2 as shown in
An exterior surface of cover 14 also includes at least one terminal 18 for electrical connection outside of monoblock battery assembly 1. In the embodiment shown in
As shown in
Features of monoblock battery assembly 1 such as providing bussing or bus sings 16 and terminal 18 molded into cover 14, sealing electrode-bussing unit 24 to the housing 10, and/or providing individual leak tight cavities for one or more electrode assemblies 2 reduces leaks of monoblock battery assembly 1. For example, leak path in between cavities and to the outside is reduced as compared to conventional battery assemblies with interconnections between cells each having individual metallic casings.
A method for making monoblock battery assembly 1 is described below. As discussed above, positive electrode layers 3, negative electrode layers 5, and insulative sheets 7 are stacked together in an alternating pattern. The one or more insulative sheets 7 are provided intermediate or between the positive and negative electrodes to electrically isolate the electrodes from each other. An outermost insulative layer 8 is wrapped around the positive electrode layers 3, negative electrode layers 5, and insulative sheets 7 to substantially encase the stack of positive electrode layers 3, negative electrode layers 5, and insulative sheets 7 and form electrode assembly 2. As shown in
After one or more electrode assemblies 2 of monoblock battery assembly 1 are connected to the bussing or bussings 16 and cover 14, forming electrode-bussing unit 24, electrode-bussing unit 24 is inserted into cavities 12 of housing 10 such that each electrode assembly 2 is simultaneously entered into housing 10. Cavities 12 may be filled with electrolyte 11 after insertion of the electrode assembly 2, but before cover 14 is sealed to housing 10. In a non-limiting embodiment, each cavity 12 of housing 10 is sized to receive a single electrode assembly 2. Electrode-bussing unit 24 is placed into housing 10 and cover 14 is attached and sealed to housing 10. Cover 14 and housing 10 may be attached and sealed by a variety of means including, laser welding, vibration welding, thermal welding or using a solvent bond. Monoblock battery assembly 1 is then electrically formed and charged. With cover 14 and housing 10 joined, a sealed container housing an electrode assembly 2 is created in each cavity 12 between walls of cavity 12 and cover 14 as shown in
While electrolyte 11 may be inserted into cavity 12 after insertion of the electrolyte assembly 2, it is also contemplated that electrolyte 11 is introduced into each cavity 12 through an opening (not shown) in housing 10 or cover 14 after cover 14 is sealed to housing 10. In this embodiment, the opening is sealed after filing of electrolyte. In addition, the electrolyte 11 may be inserted into cavity 12 prior to insertion of electrode-bussing unit 24.
As discussed above, in addition to a stacked electrode assembly shown in
While embodiments of this application refer to Lithium-Ion battery assemblies, the invention is not limited to Lithium-Ion batteries and could be used in other battery assemblies that would be obvious to one or ordinary skill in the art. Further, while embodiments of this application discuss the cover being placed over or on top of the housing, the orientation of the battery assembly is not limiting, and the battery assembly could take any orientation (such as having a removable cover on the bottom or the side of the housing) as obvious to one of ordinary skill in the art.
Although a few example embodiments have been shown and described, these example embodiments are provided to convey the subject matter described herein to people who are familiar with this field. It should be understood that the subject matter described herein may be embodied in various forms without being limited to the described example embodiments. The subject matter described herein can be practiced without those specifically defined or described matters or with other or different elements or matters not described. It will be appreciated by those familiar with this field that changes may be made in these example embodiments without departing from the subject matter described herein as defined in the appended claims and their equivalents. Further, any description of structural arrangement of components or relationship there between is merely for explanation purposes and should be used to limit an example embodiment.
Aspects related to the example embodiment have been set forth in part in the description above, and in part should be apparent from the description, or may be learned by practice of embodiments of the application. Aspects of the example embodiment may be realized and attained using the elements and combinations of various elements and aspects particularly pointed out in the foregoing detailed description and the appended claims. It is to be understood that both the foregoing descriptions are an example and are explanatory only and are not intended to be limiting.
This applications claims priority to U.S. Provisional Application No. 61/904722, filed Nov. 15, 2013 titled MONOBLOCK.
Number | Date | Country | |
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61904722 | Nov 2013 | US |