Energy storage battery and manufacturing method
The cylindrical winding battery design with integrated contact elements and direct housing connections addresses issues of energy density, current distribution, and heat dissipation, enhancing performance and manufacturability.
Patent Information
- Application Number
- JP2023509641
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-08-11
- Filing Date
- 2021-08-11
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2041-08-11
AI Technical Summary
Existing energy storage batteries face challenges in achieving high energy density, uniform current distribution, low internal resistance, effective passive heat dissipation, and manufacturability, particularly in cylindrical round batteries with winding assemblies.
The battery design features a cylindrical winding electrode-separator assembly with ribbon-shaped anode and cathode current collectors, a tubular housing with integrated contact elements, and a direct connection of longitudinal edges to the housing parts, eliminating the need for separate conductors and enhancing heat dissipation.
This design achieves improved energy density, uniform current distribution, reduced internal resistance, and enhanced manufacturability, while ensuring safe and efficient operation under high current loads.
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Abstract
Description
[Technical Field]
[0001] The invention described below relates to an energy storage cell that includes an electrode-separator assembly. [Background technology]
[0002] Electrochemical cells can convert stored chemical energy into electrical energy through oxidation-reduction reactions. They generally contain a positive and negative electrode separated by a separator. During discharge, electrons are released at the negative electrode as a result of an oxidation process. This results in an electron flow that can be extracted by an external electricity consumer; in this case, the electrochemical cell functions as an energy supplier. At the same time, an ionic current corresponding to the electrode reaction is generated within the battery. This ionic current passes through the separator and is guaranteed by the ion-conducting electrolyte.
[0003] If the discharge is reversible, i.e., the conversion of chemical energy into electrical energy that occurs during discharge can be reversed, and the battery can therefore be recharged, it is described as a secondary battery. The designation of the negative electrode as the anode and the positive electrode as the cathode, commonly used in the case of secondary batteries, refers to the discharge function of the electrochemical cell.
[0004] Currently, secondary lithium-ion batteries are used in many applications because they are capable of providing large currents and are characterized by higher energy densities. They are based on the use of lithium, which can be transported in the form of ions between the electrodes of the battery. The negative and positive electrodes of lithium-ion batteries are generally formed by so-called composite electrodes, which contain electrochemically active and inactive components.
[0005] In principle, any material capable of absorbing and releasing lithium ions can be used as the electrochemically active component (active material) for secondary lithium-ion batteries. Carbon-based particles, such as graphitic carbon, are often used for the negative electrode. Other non-graphitic carbon materials suitable for lithium intercalation can also be used. Additionally, metallic and semi-metallic materials that can alloy with lithium can also be used. For example, elements such as tin, aluminum, antimony, and silicon can form intermetallic phases with lithium. For example, lithium cobalt oxide (LiCoO), lithium manganese oxide (LiMnO), lithium iron phosphate (LiFePO), or derivatives thereof can be used as the active material for the positive electrode. The electrochemically active material is generally contained in the electrode in the form of particles.
[0006] As an electrochemically inactive component, a composite electrode generally includes a flat and / or strip-shaped current collector, such as a metal foil, which serves as a carrier for the individual active materials. The current collector for the negative electrode (anode current collector) can be made of, for example, copper or nickel, and the current collector for the positive electrode (cathode current collector) can be made of, for example, aluminum. Furthermore, the electrode may include an electrode binder (e.g., polyvinylidene fluoride (PVDF) or another polymer, such as carboxymethyl cellulose), a conductivity-improving additive, and other additives as electrochemically inactive components. The electrode binder ensures the mechanical stability of the electrode and often ensures adhesion of the active materials to the current collector. As an electrolyte, a lithium-ion battery generally includes a solution of a lithium salt, such as lithium hexafluorophosphate (LiPF6), in an organic solvent (e.g., an ether and an ester of carbonic acid).
[0007] In the manufacture of lithium-ion batteries, composite electrodes are combined with one or more separators to form an assembly. In this process, the electrodes and separators are typically bonded together under pressure, optionally by lamination or bonding. The assembly can then be impregnated with an electrolyte to establish basic battery functionality.
[0008] In many embodiments, the assembly is formed as or into a winding. Typically, this involves a positive electrode / separator / negative electrode sequence. Often, the assemblies are fabricated as so-called bicells, with possible sequences of negative electrode / separator / positive electrode / separator / negative electrode or positive electrode / separator / negative electrode / separator / positive electrode.
[0009] For applications in the automotive sector, electric bicycles, or even other applications with high energy requirements, such as power tools, lithium-ion batteries with the highest possible energy density are required, which may be subjected to high currents simultaneously during charging and discharging. Batteries for the mentioned applications are often designed as cylindrical round batteries, for example with dimensions of 21 x 70 (diameter x height in mm). This type of battery always includes an assembly in the form of a winding. Modern lithium-ion batteries of this form factor can already achieve energy densities of up to 270 Wh / kg. However, this energy density is only considered an intermediate step. The market is already demanding batteries with even higher energy densities.
[0010] However, when developing improved electrochemical cells, there are other factors to consider besides energy density. The internal resistance of the battery is also a crucial parameter, which needs to be kept as low as possible to reduce power loss and electrode thermal connection during charging and discharging, which may be essential for temperature regulation of the battery. These parameters are also very important in the case of cylindrical round batteries that contain composite assemblies in the form of windings. During fast charging of the battery, heat accumulation due to power loss can occur within the battery, which can result in large amounts of thermomechanical stress and subsequent deformation and damage to the battery structure. This risk is amplified when the electrical connection of the current collectors is made via separate conductor tabs welded to the current collectors that protrude axially from the wound assembly, since heating can occur locally at these conductor tabs under heavy loads during charging or discharging.
[0011] WO 2017 / 215900 A1 describes an electrode-separator assembly and a battery in which its electrodes are ribbon-shaped and in the form of a winding. Each electrode has a current collector loaded with an electrode material. Opposite electrodes are arranged offset from one another within the electrode-separator assembly, with the longitudinal edge of the positive current collector projecting from the winding on one side and the longitudinal edge of the negative current collector projecting from the winding on the other side. For electrical contact of the current collectors, the battery has at least one contact element mounted on top of one of the longitudinal edges so that a line-shaped contact zone is formed. The contact element is connected to the longitudinal edge by welding along the line-shaped contact zone. This allows electrical contact to the current collector and further electrical contact to the associated electrode over its entire length. This significantly reduces the internal resistance within the described battery, which can then much better absorb large currents.
[0012] U.S. Pat. No. 6,432,574 B1 describes a cylindrically round battery in which the electrode-separator assembly, also in the form of a winding, is electrically contacted via contact sheet metal members welded to the end faces. Figure 2A shows a typical housing for containing such an electrode-separator assembly. It includes a cup-shaped housing portion within which the wound electrode-separator assembly is axially aligned. The housing is closed using a multi-part lid with an annular seal attached to its edge. To seal the housing, the terminal edge of the cup is folded radially inward over the edge of the lid, and the seal is applied thereto. To support this process, a deep circumferential groove directly below the lid is required. During the sealing process, a tool engages in this groove so that axial pressure can be applied to the lid edge and seal as the terminal edge is folded from above and below. As a result, the seal is compressed between the groove and the underside of the lid edge and between the folded edge of the cup and the top of the lid edge, resulting in an efficient seal. However, the required groove has disadvantages. For one, it must be inserted into the housing in a separate step after the electrode-separator assembly is inserted. For another, the groove imposes a dead volume that must be overcome by utilizing a current conductor to make electrical contact with the lid. In the case of the cell shown in FIG. 2A, for this purpose, an extra-long contact sheet metal member is welded onto the top end face, folded, and welded to the inside of the lid. Summary of the Invention [Problem to be solved by the invention]
[0013] It is an object of the present invention to provide an energy storage battery which is characterized by an improved energy density and a current distribution which is as uniform as possible over the entire area and length of its electrodes compared to the prior art, and which at the same time has excellent properties in relation to its internal resistance and its passive heat dissipation capacity. Furthermore, the battery should also be characterized by improved manufacturability and safety. This object is achieved by the energy storage battery described below, in particular by preferred embodiments of the energy storage battery described below having the features of claim 1, and by the method described below, in particular by the method having the features of claim 10. Preferred embodiments of the battery and the method will also be apparent from the dependent claims. [Means for solving the problem]
[0014] The energy storage battery according to the invention always exhibits the following characteristics a. to j.: a. the battery includes an electrode-separator assembly having an anode / separator / cathode sequence; b. the electrode-separator assembly is in the form of a cylindrical winding having two terminal end faces and a winding shell therebetween; c. the battery includes a housing including a metallic tubular housing portion having a terminal circular opening; d. Within the housing, the electrode-separator assembly, formed as a winding, is axially aligned so that the winding shell abuts the inside of the tubular housing portion; e. the anode is ribbon-shaped and includes a ribbon-shaped anode current collector having a first longitudinal edge and a second longitudinal edge and two end portions; f. the anode current collector includes a strip-shaped main region loaded with a layer of negative electrode material and a free end strip extending along the first longitudinal edge that is not loaded with electrode material; g. the cathode is ribbon-shaped and includes a ribbon-shaped cathode current collector having a first longitudinal edge and a second longitudinal edge and two end portions; h. the cathode current collector includes a strip-shaped main region loaded with a layer of positive electrode material and a free end strip extending along a first longitudinal edge that is not loaded with electrode material; i. the anode and cathode are disposed within the electrode separator assembly such that a first longitudinal edge of the anode current collector projects from one of the terminal ends and a first longitudinal edge of the cathode current collector projects from the other terminal end; j. the battery includes an at least partially metallic contact element in direct contact with one of the first longitudinal edges and connected to said longitudinal edge, preferably by welding; It has.
[0015] Preferred Embodiments of the Electrochemical System In principle, the present invention includes energy storage batteries, regardless of their electrochemical implementation. However, in a particularly preferred embodiment, the energy storage battery according to the invention is a lithium-ion battery, in particular a secondary lithium-ion battery. In principle, therefore, all electrode materials known for secondary lithium-ion batteries can be used for the anode and cathode of the energy storage battery.
[0016] Preferably, carbon-based particles, such as graphitic carbon or non-graphitic carbon materials, capable of intercalating lithium, again in particulate form, may be used as the active material in the negative electrode of an energy storage battery according to the invention in the form of a lithium-ion battery. Alternatively or additionally, lithium titanate (Li4Ti5O 12) or a derivative thereof, preferably in particulate form, may be included in the negative electrode. Furthermore, the negative electrode may also contain, as an active material, at least one material selected from the group comprising silicon, aluminum, tin, antimony, or compounds or alloys of these materials, such as silicon oxide, that can reversibly incorporate and remove lithium, optionally in combination with a carbon-based active material. Tin, aluminum, antimony, and silicon can form intermetallic phases with lithium. The lithium absorption capacity, particularly in the case of silicon, exceeds that of graphite or comparable materials by several times. Furthermore, thin anodes made of metallic lithium are also possible.
[0017] For the positive electrode of an energy storage battery in the form of a lithium-ion battery according to the invention, lithium metal oxide compounds and lithium metal phosphate compounds such as LiCoO2 and LiFePO4 are suitable active materials. x Mn y Co z Lithium nickel manganese cobalt oxide (NMC) with the formula LiMnO (where x + y + z is usually 1), lithium manganese spinel (LMO) with the formula LiMnO or LiNi x Co y Al z Lithium nickel cobalt aluminum (NCA) with O2 (where x + y + z is usually 1) is particularly well suited. For example, 1.11 (Ni 0.40 Mn 0.39 Co 0.16 Al 0.05 ) 0.89 Lithium Nickel Manganese Cobalt Alumina (NMCA) or Li with O 1+x MO compounds and / or derivatives thereof, such as mixtures of said materials, can also be used.The cathode active material is also preferably used in particulate form.
[0018] In addition, the electrodes of the energy storage battery according to the invention, designed as a lithium-ion battery, preferably contain an electrode binder and / or additives to improve electrical conductivity. The active material is preferably embedded in the matrix of the electrode binder, with adjacent particles in the matrix being in direct contact with each other. The conductive agent serves to increase the electrical conductivity of the electrode. Typical electrode binders are, for example, based on polyvinylidene fluoride (PVDF), polyacrylate, or carboxymethyl cellulose. Typical conductive agents are carbon black or metal powder.
[0019] The energy storage battery according to the invention preferably comprises an electrolyte, in the case of a lithium-ion battery in particular an electrolyte based on at least one lithium salt, such as lithium hexafluorophosphate (LiPF), which is present in dissolved form in an organic solvent (for example a mixture of organic carbonates or cyclic ethers or nitriles, such as THF). Other lithium salts that may be used include lithium tetrafluoroborate (LiBF), lithium bis(trifluoromethanesulfonyl)imide (LiTFSI), lithium bis(fluorosulfenyl)imide (LiFSI) and lithium bis(oxalato)borate (LiBOB).
[0020] Preferred embodiments of the separator The electrode-separator assembly preferably includes at least one ribbon-shaped separator, more preferably two ribbon-shaped separators, each having first and second longitudinal edges and two end portions. Preferably, the separator is formed from an electrically insulating plastic thin film. It is preferable that the separator be permeable by the electrolyte. For this purpose, the plastic thin film used may have, for example, micropores. Foils may be made of, for example, polyolefins or polyetherketones. Nonwovens and woven fabrics made from plastic materials or other electrically insulating sheet structures may also be used as separators. Separators having a thickness in the range of 5 μm to 50 μm are also preferably used. In some embodiments, one or more separators in the assembly may also be one or more layers of solid electrolyte.
[0021] Preferred Structure of Electrode-Separator Assembly Formed as a Wire Wound The ribbon-shaped anode, ribbon-shaped cathode, and one or more ribbon-shaped separators are preferably spirally wound within the electrode-separator assembly in the form of a winding. To produce the electrode-separator assembly, the ribbon-shaped electrode together with the ribbon-shaped separator is fed to a winding device, within which they are preferably spirally wound around a winding axis. In some embodiments, the electrode and separator are wound for this purpose onto a cylindrical or hollow cylindrical winding core, which is seated on a winding mandrel and remains within the winding after winding. The winding shell can be formed, for example, from a plastic film or adhesive tape. The winding shell can be formed by one or more windings of the separator.
[0022] Preferred embodiments of the current collector The current collector of the energy storage battery has the function of electrically contacting the electrochemically active material contained in the individual electrode materials over as large an area as possible. Preferably, the current collector is made of metal or is metallized at least on the surface. In the case of the energy storage battery according to the present invention designed as a lithium-ion battery, suitable materials for the anode current collector are, for example, copper or nickel or other conductive materials, in particular copper and nickel alloys or metals coated with nickel. Stainless steel is also generally one possibility. In the case of the energy storage battery according to the present invention designed as a lithium-ion battery, other conductive materials, including aluminum or aluminum alloys, are particularly suitable as metals for the cathode current collector.
[0023] Preferably, the anode current collector and / or the cathode current collector are each a metal foil having a thickness in the range of 4 μm to 30 μm, in particular a ribbon-shaped metal foil having a thickness in the range of 4 μm to 30 μm. However, in addition to foils, other ribbon-shaped substrates such as metallic or metallized nonwoven fabrics or open-pore metal foams or expanded metals can also be used as current collectors. The current collectors are preferably loaded on both sides with the respective electrode materials. The longitudinal edges of the separator preferably form the end faces of the electrode-separator assembly formed as a winding.
[0024] It is further preferred that the longitudinal edges of the anode and / or cathode current collectors protrude beyond the end faces of the windings by no more than 5000 μm, preferably no more than 3500 μm. Particularly preferred, the edges or longitudinal edges of the anode current collectors protrude beyond the end faces of the windings by no more than 2500 μm, particularly preferably no more than 1500 μm. Particularly preferred, the edges or longitudinal edges of the cathode current collectors protrude beyond the end faces of the windings by no more than 3500 μm, particularly preferably no more than 2500 μm.
[0025] The solution according to the present invention Specifically, the battery has the following two characteristics: k. the contact element includes a circular edge; l. The contact element closes the distal circular opening of the tubular housing portion. It is characterized by:
[0026] According to the present invention, it is proposed to use a contact element having a circular edge and to close the end circular opening of the tubular housing part by the contact element. Thus, the contact element not only functions to make electrical contact with the electrode, but also functions as a housing part. This has a great advantage because a separate electrical connection between the contact element and the housing part is no longer necessary. This creates space within the housing and simplifies the battery assembly. In addition, the direct connection of the housing part to the battery's current collector also provides excellent heat dissipation properties.
[0027] Preferred embodiments of electrical connection of contact elements to electrode-separator assemblies formed as contact elements / windings In a first preferred embodiment of the present invention, the energy storage battery has the following four characteristics a. to d: a. the contact element is or includes a metal disk, the edge of which corresponds to or forms a portion of the circular edge of the contact element; b. the metal disc is positioned within the tubular housing portion such that an edge of the metal disc abuts the inside of the tubular housing portion along a circumferential contact zone; c. the edges of the metal disc are connected to the tubular housing portion by circumferential weld seams; d. One of the first longitudinal edges is connected to the metal disk by welding. Particularly preferably, all four of the preceding features a. to d. are realized in combination with one another.
[0028] In the simplest embodiment, the metal disc is a flat sheet metal section with a circular periphery extending in only one plane. However, in many cases, more elaborate designs may be preferred. For example, the metal disc may be shaped, e.g., have one or more circular recesses and protrusions, preferably concentrically arranged at its center, which may result in, for example, a wave-like cross section. It is also possible for its inner surface to have one or more ridges. Furthermore, the disc may have edges that are folded radially inward, e.g., to have a double-layered edge region with a U-shaped cross section.
[0029] The contact element may consist of several individual parts, including a metal disk, not necessarily all made of metal. In a particularly preferred embodiment, the contact element may comprise, for example, a shaped metal pole cup, which may be welded onto the metal disk so that the edge of the metal disk and the edge of the pole cap together form the edge of the contact element, and which has a circular periphery with approximately or exactly the same diameter as the metal disk. In a further embodiment, the edge of the pole may be surrounded by the above-mentioned radially inwardly folded edge of the metal disk. In a preferred embodiment, there may optionally be a clamp connection between the two individual parts.
[0030] To allow the edge of the metal disk to abut against the inside of the tubular housing part along the circumferential contact zone, the tubular housing part preferably has a circular cross section, at least in the section where the edge of the metal disk abuts. The section is advantageously hollow cylindrical for this purpose. The inner diameter of the tubular housing part in this section is adapted in a corresponding manner to the outer diameter of the edge of the contact element and in particular to the outer diameter of the metal disk. The welding of the edge of the metal disk to the tubular housing part can be carried out, in particular, using a laser. However, it is also possible to fasten the metal disk by soldering or bonding instead.
[0031] No separate sealing element is required for the circumferential weld seam. The metal disc and the tubular housing portion are hermetically connected via the weld seam. In addition, the welded joint also ensures a nearly zero-resistance electrical connection between the metal disc and the tubular housing portion.
[0032] In a second preferred embodiment of the present invention, the energy storage battery has the following five characteristics: a. the contact element is or includes a metal disk, the edge of which corresponds to or forms a portion of the circular edge of the contact element; b. the metal disc is positioned within the tubular housing portion such that an edge of the metal disc abuts the inside of the tubular housing portion along a circumferential contact zone; c. the edges of the metal disc are connected to the tubular housing portion by circumferential weld seams; d. the contact element comprises a metallic contact sheet metal member having two faces, one of which faces towards the metal disc and is connected to the metal disc, preferably by welding; e. one of the first longitudinal edges directly abuts the other surface of the contacting sheet metal member and is joined thereto, preferably by welding; Particularly preferably, all five immediately preceding features a. to e. are realized in combination with one another.
[0033] With respect to some features, the second preferred embodiment of the present invention does not differ from the first one, for example, within the scope of features a. to c. Therefore, there is no longer any need to separately describe these features. With respect to the preferred embodiments of these features, reference is made to the above description in connection with the first preferred embodiment of the present invention. Here, again in this case, the edge of the metal disk can be welded to the tubular housing part, in particular by means of a laser. However, it is also possible to fix the metal disk by soldering or bonding instead.
[0034] However, in contrast to the first preferred embodiment of the present invention, the contact element comprises, in addition to the metal disc, as a further component a contact sheet metal member according to feature d., whereby one of the first longitudinal edges does not abut directly against the metal disc, but instead directly against the contact sheet metal member, which serves to close the housing, while the contact sheet metal member contacts the longitudinal edge of the current collector.
[0035] In a simple embodiment, the contact sheet metal member is a flat sheet metal portion extending in only one plane, in other embodiments it can also be a shaped sheet metal portion, in particular it can have one or more ridges or elongated recesses on the face that contacts the longitudinal edge.
[0036] The contact sheet metal members may have a circular perimeter in some preferred embodiments, although this is by no means required. In some cases, the contact sheet metal members may be, for example, metal strips or may have multiple strip-shaped segments, such as in a star-shaped configuration.
[0037] In some embodiments, contacting sheet metal members may be used that include at least one slot and / or at least one perforation, which may serve to compensate for deformation of the contacting sheet metal members during formation of the weld bond to the first longitudinal edge.
[0038] The surface of the contact sheet metal element facing the metal disk is preferably designed so that in the case of direct contact of the contact sheet metal element with the metal disk, a two-dimensional contact surface exists, i.e., the contact sheet metal element and the metal disk lie flat on each other in at least some areas. Preferably, the contact sheet metal element and the metal disk are in rigid contact with each other, more preferably in rigid direct contact. In this case, they are particularly preferably fixed to each other by welding or soldering. In a particularly preferred embodiment, the contact sheet metal element is designed like the contact plate described in WO 2017 / 215900 A1.
[0039] In a third preferred embodiment of the present invention, the energy storage battery has the following characteristics a. to g: a. the contact element is or includes a metal disk, the edge of which corresponds to or forms a portion of the circular edge of the contact element; b. the metal disc is positioned within the tubular housing portion such that an edge of the metal disc abuts the inside of the tubular housing portion along a circumferential contact zone; c. the edges of the metal disc are connected to the tubular housing portion by circumferential weld seams; d. the contact element includes a metallic contact sheet metal member having two faces, one of which faces the metal disk; e. the contact element includes a pole pin (108) secured to the contact sheet metal member and extending out of the cell housing through an aperture in the metal disk; f. the contact element includes at least one insulating means for electrically insulating the pole pin (108) and / or the contact sheet metal member from the metal disk; g. One of the first longitudinal edges directly abuts the other surface of the contacting sheet metal member and is joined thereto, preferably by welding. Particularly preferably, all of the preceding features a. to g. are realized in combination with one another.
[0040] With respect to some features, the third preferred embodiment of the present invention does not differ from the first and second preferred embodiments, for example, within the scope of features a. to d. Therefore, these features do not need to be described in detail separately. With respect to the preferred embodiments of features a. to c., reference is made to the above explanation in relation to the first preferred embodiment of the present invention. With respect to the preferred embodiment of feature d., reference is made to the above explanation in relation to the second preferred embodiment of the present invention, in particular with regard to possible embodiments of the contact sheet metal members. Here, again in this case, the edge of the metal disk can be welded to the tubular housing part, in particular by means of a laser. However, it is also possible to fix the metal disk by soldering or bonding instead.
[0041] However, in contrast to the second preferred embodiment of the present invention, the contact element in the third embodiment comprises as a further component a pole pin, which is preferably fixed to the contact sheet metal member by welding or soldering, which is electrically insulated from the metal disk by means of an insulating material, which preferably also has a sealing function.
[0042] The insulating material may preferably be a conventional plastic seal, which should be chemically resistant to the electrolyte used in each case. Suitable seal materials are known to those skilled in the art of primary and secondary energy storage elements. In alternative preferred embodiments, glass as well as ceramic and glass-ceramic masses can also be used as insulating materials.
[0043] Possible preferred embodiments for welding of the longitudinal edges of the contact elements to the contact sheet metal members or metal disks In both the first and the second or third preferred invention variants, the longitudinal edges of the current collector are preferably connected to the contact element by welding, in some cases directly to the metal disk of the contact element, in other cases to the contact sheet metal member. In the following, several contact variants are presented according to which the connection of the longitudinal edges to the contact sheet metal member or metal disk can be designed.
[0044] The concept of welding the edge of a current collector to a contact element is known from WO 2017 / 215900 A1 or JP 2004-119330 A1. This technique allows for a particularly high current carrying capacity and a low internal resistance. Reference is made in detail to WO 2017 / 215900 A1 and JP 2004-119330 A1 in connection with methods for electrically connecting contact elements, in particular disk-shaped contact elements in this case, to the edge of a current collector.
[0045] Particularly preferably, one of the first longitudinal edges directly abuts the metal disk or, in some cases, the contact sheet metal element along its length. In the case of a spirally wound electrode, this results in a linear contact zone having a spiral shape. The longitudinal edge is preferably connected to the metal disk or contact sheet metal element along this linear, preferably spiral, contact zone as uniformly as possible using a suitable welded joint. Particularly preferably, this connection can be designed as follows: Contact variant 1: The longitudinal edge of the current collector which directly abuts the metal disc or the contact sheet metal element is continuously connected to the metal disc or the contact sheet metal element over its entire length by a welded seam. Contact variant 2: The longitudinal edge of the current collector that directly abuts the metal disc or the contact sheet metal element comprises one or more sections, each of which is continuously connected to the metal disc or the contact sheet metal element over its entire length by a welded seam. Particularly preferably, these sections have a minimum length of 5 mm, preferably 10 mm, particularly preferably 20 mm. Contact variant 3: The longitudinal edge of the current collector that rests directly on the metal disk or on the contact sheet metal element is connected to the metal disk or on the contact sheet metal element via a multiplicity of point-shaped welded connections (so-called multi-pin connections). Of course, the second and third of these three contact variants can also be combined.
[0046] In a possible further development of the second contact variant, the section or sections continuously connected over their entire length to the metal disc or contact sheet metal element extend over at least 25%, preferably at least 50%, particularly preferably at least 75% of the total length of the individual longitudinal edges.
[0047] The metal disc and / or the contact sheet metal member have the following characteristics a. and b.: a. the metal disc and / or contact sheet metal member preferably has a thickness in the range of 50 μm to 600 μm, preferably in the range of 150 μm to 350 μm; b. The metal discs and / or contact sheet metal members are made of alloyed or unalloyed aluminum, alloyed or unalloyed titanium, alloyed or unalloyed nickel, or alloyed or unalloyed copper, but also, if necessary, stainless steel (e.g., type 1.4303 or 1.4404) or nickel-plated steel. It is particularly preferred that the invention is characterized by at least one of the following: It is particularly preferred that the immediately preceding features a. and b. are realized in combination.
[0048] If the longitudinal edge of the anode current collector abuts directly on the metal disc or optionally on the contact sheet metal element, in particular welded thereto, the anode current collector and the metal disc or the anode current collector and the contact sheet metal element preferably both consist of the same material or at least chemically related materials, for example copper and copper alloys. In the case of an energy storage battery according to the invention designed as a lithium-ion battery, the material is preferably selected from the group comprising copper, nickel, titanium, alloys of these three elements, nickel-plated steel and stainless steel. However, in the case of a lithium titanate anode, the anode current collector and the metal disc or the anode current collector and the contact sheet metal element may consist of aluminum.
[0049] If the longitudinal edge of the cathode current collector abuts directly on the metal disc or in some cases directly on the contact sheet metal element, in particular welded thereto, then the cathode current collector and the metal disc or the cathode current collector and the contact sheet metal element preferably both consist of the same material or at least of chemically related materials, for example aluminium and aluminium alloys, which are particularly preferably selected from the group comprising alloyed or unalloyed aluminium, titanium, titanium alloys and stainless steel (for example of type 1.4404).
[0050] If the contact element comprises both a metal disk and a contact sheet metal member, the contact sheet metal member and the metal disk are also preferably made of the same material, or at least a chemically related material. As before, this is preferably made of the same material as, or a chemically related material, the current collector it abuts on top of. When combined with the contact sheet metal member, in some preferred embodiments, this is made of stainless steel, for example of type 1.4303 or 1.4404.
[0051] Particularly preferably, the energy storage battery in the described embodiments, in particular of the first to third preferred variants of the invention, has two additional following characteristics a. and b: a. the tubular housing portion includes, in an axial direction, a central section against which the winding shell abuts, and contact sections against which the edges of the metal disk abut; b. the tubular housing portion includes a circular edge that is folded radially inward over the edge of the contact element; It has at least one of the following.
[0052] In accordance with the above explanations regarding the preferred embodiments of the tubular housing part in the region of the contact zone, the contact section is preferably cylindrical or, more preferably, hollow cylindrical. The same applies with regard to the design of the central section.
[0053] Housing Variant with Housing Cup In a particularly preferred embodiment of the invention, the energy storage battery always has the following additional characteristics a. and b: a. the tubular housing portion (101) is part of a housing cup that includes a circular bottom; b. The other of the first longitudinal edges directly abuts the bottom and is preferably joined to the bottom by welding. Particularly preferably, the immediately preceding features a. and b. are realized in combination.
[0054] The use of housing cups in the construction of battery housings has been known for many years, for example from the aforementioned WO 2017 / 215900 A1. However, the proposed direct connection of the longitudinal edge of the current collector to the bottom of the housing cup is not known. This measure also makes it possible to omit the separate conductor currently located on the bottom surface and to use an axially extending wound electrode-separator assembly, thereby helping to increase the energy density of the battery according to the present invention and improve its heat dissipation properties.
[0055] According to the invention, it is therefore possible and preferred to bond the current collector edges of the positive and negative electrodes, which protrude from the opposite end faces of the electrode-separator assembly formed as a winding, directly to the housing parts, i.e., to the bottom and contact elements of the above-mentioned cups, which in each case function as closure elements, so that the use of the available internal volume of the battery housing for the active components approaches its theoretical optimum.
[0056] The housing cup, particularly in the region of its bottom, preferably has a thickness similar to that of the metal disk and / or contact sheet metal material of the contact elements, i.e., specifically in the range of 50 μm to 600 μm, preferably 150 μm to 350 μm. Specifically, if the battery according to the invention is designed as a lithium-ion battery, the choice of material from which the housing cup, or at least its bottom, is made depends on whether an anode or cathode current collector is connected to the bottom. Suitable materials are essentially the same materials from which the current collector itself is made. Thus, the housing cup or the bottom of the housing cup can consist of the following materials:
[0057] The housing may be made of alloyed or unalloyed aluminum, alloyed or unalloyed titanium, alloyed or unalloyed nickel, alloyed or unalloyed copper, stainless steel (for example of type 1.4303 or 1.4404), nickel-plated steel. Furthermore, the housing may also consist of a multilayer material (clad material) comprising, for example, a steel layer and an aluminum or copper layer. In these cases, the aluminum layer or the copper layer preferably forms the inside or bottom of the housing cup, respectively.
[0058] Also, in principle, as in the case of the contact element, there can only be an indirect connection between the other longitudinal edge of the first longitudinal edge and the bottom of the cup via a contact sheet metal member. In this case, there is preferably a welded connection between the longitudinal edge and the contact sheet metal member by one of the three contact variants described above, while the contact sheet metal member is preferably connected to the bottom by a direct weld. The contact sheet metal member is preferably designed like its counterpart in the case of the contact element described above.
[0059] The connection of the other first longitudinal edge to the bottom or contact sheet metal element essentially follows the same design principles as the connection of the other first longitudinal edge to the contact element. Here, too, the longitudinal edge preferably abuts directly against the bottom along its length, so that in the case of a spirally wound electrode, a linear contact zone having a spiral shape is obtained. It is also preferred that the longitudinal edge is connected to the bottom or contact sheet metal element as uniformly as possible along this linear, preferably spiral, contact zone by means of a suitable welded connection. This connection is preferably designed according to one of the three contact variants described above or a combination of these contact variants, for example as a multi-pin connection.
[0060] Variant of the housing with two lids In another particularly preferred embodiment of the invention, the energy storage battery always exhibits the following three additional characteristics a. to c: a. the tubular housing portion has a further terminal circular opening; b. the battery includes a closure element having a circular edge closing the further end opening; c. The closure element for the further end opening is or includes a metal disk, the edge of which corresponds to or forms part of the circular edge of the metal closure element. It is particularly preferred that the immediately preceding features a to c are realized in combination.
[0061] In this embodiment, the tubular housing part, together with the closure element, replaces the housing cup. The housing therefore consists of three housing parts, one of which is tubular, and the other two (contact element and closure element) serve as lids to close the ends of the tubular part. From a manufacturing technology point of view, this offers advantages because, unlike the housing cup, no deep-drawing tools are required for the manufacture of the tubular housing part. In addition, the direct connection of the other of the first longitudinal edges to the closure element offers essentially the same advantages as the connection to the bottom of the housing cup described above.
[0062] In this embodiment, the tubular housing portion is preferably cylindrical or hollow cylindrical. Similar to the contact element described above, the closure element is, in the simplest embodiment, a metal disk with a circular periphery extending in only one plane, or alternatively, a shaped metal disk with one or more circular recesses and / or protrusions around its center, preferably in a concentric arrangement, which may result in, for example, a wave-like cross-section. Likewise preferably, the inner surface of the closure element, in particular the metal disk, may have one or more ridges. Furthermore, the closure element, in particular the metal disk, may also have edges that are folded radially inward, for example, to have a double-layered edge region with a U-shaped cross-section.
[0063] In a further embodiment, the closure element, in particular the metal disc, also has edges that are bent by 90° so as to have an L-shaped cross section. Likewise, with regard to the material and preferred thickness options of the closure element, in particular the metal disc, reference may be made to the above explanations regarding the metal disc of the contact element. The preferred features mentioned in this section also apply to the closure element.
[0064] In a further development of this particularly preferred embodiment, the energy storage battery always has the following characteristics a. to c: a. the metal disc is positioned within the tubular housing portion such that an edge of the metal disc abuts the inside of the tubular housing portion along a circumferential contact zone; b. the edges of the metal disc are connected to the tubular housing portion by circumferential weld seams; c. The tubular housing portion includes a circular edge that is folded radially inward over the edge of the closure element, in particular the edge of the metal disc. Particularly preferably, the immediately preceding features a. and b. and also optionally the immediately preceding features a. to c. are realized in combination.
[0065] According to this further development, it is therefore preferred to fix the closure element in the further end opening by welding, whereby a separate sealing element is not required due to the circumferential weld seam. Radial folding of the edges of the closure element is an optional measure that is not required to fix the closure element, but may be advantageous.
[0066] In a further development, the energy storage battery according to a further particularly preferred embodiment of the invention has the following characteristics a. to c: a. the other of the first longitudinal edges directly abuts the metal disc and is joined to the metal disc, preferably by welding; b. The other of the first longitudinal edges is welded to a contact sheet metal member that directly abuts the metal disc. It has one of the following.
[0067] Furthermore, in principle, as in the case of contact elements, there can only be an indirect connection between the other longitudinal edge of the first longitudinal edge and the metal disc or closure element via a contact sheet metal member. In this case, there is preferably a direct welded connection between the contact sheet metal member and the closure element, in particular the metal disc of the closure element. The contact sheet metal member is preferably designed like its counterpart in the case of the contact elements described above. In particular, the surface of the contact sheet metal member facing the metal disc of the closure element is in direct contact with the metal disc so that a two-dimensional contact surface is present, i.e., the contact sheet metal member and the metal disc of the closure element lie flat above each other in at least some areas.
[0068] Here, reference may also be made to the above description of the contact sheet metal members of the contact element with regard to the choice of material and preferred thickness of the contact sheet metal members, the preferred features mentioned in this section also applying to the contact sheet metal members of the closure element.
[0069] The connection of the other first longitudinal edge to the metal disk or contact sheet metal element of the closure element essentially follows the same design principles as the connection of the other first longitudinal edge to the contact element. Here, too, the longitudinal edge preferably abuts directly along its length against the metal disk or contact sheet metal element, thereby resulting in a linear contact zone having a helical shape in the case of a spirally wound electrode. Furthermore, it is also preferable that there is as uniform a connection as possible of the longitudinal edge to the metal disk or contact sheet metal element of the closure element along this linear, preferably helical, contact zone by means of suitable welded connections. This connection is preferably designed according to one of the three contact variants described above or a combination of these contact variants, for example as a multi-pin connection.
[0070] Preferred embodiments of the electrodes Within the free end strip, the metal of the individual current collectors is preferably free of the individual electrode material. In some preferred embodiments, the metal of the individual current collectors is exposed there so as to be available for electrical contact, for example, by welding. However, in some further embodiments, the metal of the individual current collectors within the free end strip may be coated, at least in some areas, with a support material that has a greater thermal resistance than the coated current collectors and that is different from the electrode material disposed on the individual current collectors.
[0071] In this context, "having greater thermal resistance" is intended to mean that the support material maintains its solid state at temperatures at which the metal of the current collector melts, and therefore either has a higher melting point than the metal, or only sublimes or decomposes at temperatures at which the metal is already molten.
[0072] The support materials that can be used within the scope of the present invention can in principle be metals or metal alloys, provided that the surface coated with the support material has a higher melting point than the metal of which it is composed. However, in many embodiments, the energy storage battery according to the present invention preferably has the following additional characteristics a. to d.: a. The support material is a non-metallic material; b. the support material is an electrically insulating material; c. The non-metallic material is a ceramic material, a glass-ceramic material, or a glass; d. The ceramic material is aluminum oxide (Al2O3), titanium oxide (TiO2), titanium nitride (TiN), titanium aluminum nitride (TiAlN), silicon oxide, especially silicon dioxide (SiO2), or titanium carbonitride (TiCN). It has at least one of the following.
[0073] According to the present invention, the support material is particularly preferably formed according to the immediately preceding feature b. and particularly preferably according to the immediately preceding feature d. The term non-metallic material includes in particular plastic, glass, and ceramic materials. The term "electrically insulating material" is to be understood broadly in this context. In principle, it also includes any electrically insulating material, in particular the aforementioned plastics. The term ceramic material is to be understood broadly in this context. In particular, it includes carbides, nitrides, oxides, silicates, or mixtures and derivatives of these compounds. The term "glass-ceramic material" refers in particular to a material containing crystalline particles embedded in an amorphous glass phase. The term "glass" basically refers to any inorganic glass that meets the thermal stability criteria defined above and is chemically stable with any electrolyte that may be present in the battery.
[0074] Particularly preferably, the anode current collector consists of copper or a copper alloy, while the cathode current collector consists of aluminum or an aluminum alloy, and the support material is aluminum oxide or titanium oxide. It may further be preferred that the free end strips of the anode and / or cathode current collectors are covered with a strip of support material. The main areas of the anode and cathode current collectors, particularly the strip-shaped main areas, preferably extend parallel to the individual edges or longitudinal edges of the current collectors. Preferably, the strip-shaped main areas extend over at least 90%, particularly preferably at least 95%, of the area of the anode and cathode current collectors.
[0075] In some preferred embodiments, the support material is applied in the form of strips or lines, preferably immediately adjacent to the main areas of the strip shape, but does not completely cover the free areas in the process, so that the metal of the individual current collectors is exposed directly along the longitudinal edges.
[0076] Another preferred embodiment of the energy storage battery. The energy storage battery according to the invention may be a button cell. The button cell is cylindrical in shape and has a height less than its diameter. Preferably, the height is in the range of 4 mm to 15 mm. More preferably, the button cell has a diameter in the range of 5 mm to 25 mm. Button cells are suitable for supplying electrical energy to small electronic devices, such as watches, hearing aids, and wireless headphones. The nominal capacity of button cells in the form of lithium batteries according to the invention is generally at most 1500 mAh. Preferably, the nominal capacity is in the range of 100 mAh to 1000 mAh, particularly preferably in the range of 100 to 800 mAh.
[0077] However, particularly preferably, the energy storage battery according to the invention is a cylindrical round battery, which has a height greater than its diameter, and is particularly suitable for the applications mentioned at the beginning, which have high energy requirements, for example in the automotive sector or in the case of power-assisted bicycles or power tools.
[0078] Preferably, the height of the energy storage battery designed as a round battery is in the range of 15 mm to 150 mm. The diameter of the cylindrical round battery is preferably in the range of 10 mm to 60 mm. In these regions, form factors of, for example, 18 x 65 (diameter * height in mm) or 21 x 70 (diameter * height in mm) are particularly suitable. Cylindrical round batteries with these form factors are particularly suitable for powering electric drives in automobiles.
[0079] The nominal capacity of the cylindrical round battery according to the present invention, designed as a lithium-ion battery, is preferably up to 90,000 mAh. In the case of a 21x70 form factor, the battery in one embodiment as a lithium-ion battery preferably has a nominal capacity in the range of 1,500 mAh to 7,000 mAh, particularly preferably 3,000 to 5,500 mAh. In the case of an 18x65 form factor, the battery in one embodiment as a lithium-ion battery preferably has a nominal capacity in the range of 1,000 mAh to 5,000 mAh, particularly preferably 2,000 to 4,000 mAh.
[0080] In the European Union, manufacturers are strictly regulated in providing information about the nominal capacity of secondary batteries. For example, information about the nominal capacity of secondary nickel-cadmium batteries must be based on measurements according to the IEC / EN61951-1 and IEC / EN60622 standards, information about the nominal capacity of secondary nickel-metal hydride batteries must be based on measurements according to the IEC / EN61951-2 standard, information about the nominal capacity of secondary lithium batteries must be based on measurements according to the IEC / EN61960 standard, and information about the nominal capacity of secondary lead-acid batteries must be based on measurements according to the IEC / EN61056-1 standard. Any information about nominal capacity in this application is preferably based on these standards.
[0081] The anode current collector, cathode current collector and separator are preferably arranged such that the battery according to the invention is a cylindrical round battery and preferably has the following dimensions: - Length ranging from 0.5m to 25m, - Width range from 30mm to 145mm In these embodiments, the free end strip extending along the first longitudinal edge, which is not loaded with electrode material, preferably has a width of 5000 μm or less.
[0082] For cylindrical round batteries with a form factor of 18x65, the current collectors are preferably - a width of 56 mm to 62 mm, preferably 60 mm, and - Length not exceeding 2m, preferably not exceeding 1.5m It has.
[0083] For cylindrical round batteries with a form factor of 21x70, the current collectors are preferably - a width of 56 mm to 68 mm, preferably 65 mm, and - Length not exceeding 3m, preferably not exceeding 2.5m It has.
[0084] Particularly preferred embodiments of the battery according to the invention: In the following, a particularly preferred embodiment of the battery according to the invention is described, in which the battery has the following characteristics: a. the battery includes an electrode-separator assembly having an anode / separator / cathode sequence; and b. the electrode-separator assembly is in the form of a cylindrical winding having two terminal end faces and a winding shell therebetween; and c. the battery includes a housing including a metallic tubular housing portion fabricated from aluminum or an aluminum alloy having a terminal circular opening; and d. Within the housing, the electrode-separator assembly formed as a winding is axially aligned so that the winding shell abuts the inside of the tubular housing portion; and e. the anode is ribbon-shaped and includes a ribbon-shaped anode current collector made of nickel or copper or a nickel or copper alloy, the anode current collector having a first longitudinal edge and a second longitudinal edge and two end portions; and f. the anode current collector includes a strip-shaped main region loaded with a layer of negative electrode material and a free end strip extending along a first longitudinal edge that is not loaded with electrode material; and g. the cathode is ribbon-shaped and includes a ribbon-shaped cathode current collector made of aluminum or an aluminum alloy, the cathode current collector having a first longitudinal edge and a second longitudinal edge and two end portions; and h. the cathode current collector includes a strip-shaped main region loaded with a layer of positive electrode material and a free end strip extending along a first longitudinal edge that is not loaded with electrode material; and i. the anode and cathode are positioned within the electrode-separator assembly such that a first longitudinal edge of the anode current collector projects from one of the terminal ends and a first longitudinal edge of the cathode current collector projects from the other terminal end; and j. the battery includes contact elements closing the terminal circular openings of the tubular housing portion and including a metal disk, a contact sheet metal member, a metal pole pin, and an insulating means; and k. The metal disk is made of aluminum or an aluminum alloy, has a circular edge, and is disposed within the tube housing portion so that the edge abuts the tubular housing portion inwardly along a circumferential contact zone, and the edge of the metal disk is connected to the tubular housing portion by a circumferential weld seam; and l. the contact sheet metal member is made of nickel or copper or a nickel or copper alloy, and the contact sheet metal member has two faces, one of which faces the metal disk and the other of which is in direct contact with one of the first longitudinal edges and is connected to this longitudinal edge by welding; and m. the pole pin is fixed to the contact sheet metal member and leads out of the battery housing through an aperture in the metal disk; and n. The insulating means electrically insulates the pole pin and the contact sheet metal member from the metal disk. It is characterized by the combination of
[0085] The electrode-separator assembly, including all its components and many others of the mentioned components, such as those of the insulating means and contact elements, has already been described in more detail above, so please refer to the corresponding description.
[0086] The metal disk of the contact element is an integral part of the housing of the battery according to the invention in addition to the tubular housing part, which closes the circular opening mentioned. All integral parts of the battery housing, the metal tubular housing part and the metal disk, consist of aluminum or an aluminum alloy. Therefore, the described particularly preferred embodiment of the battery according to the invention is preferably a battery with an aluminum housing.
[0087] In preferred further developments, particularly preferred embodiments of the battery according to the invention have the following characteristics a. to d.: a. The pole pin is secured to the contact sheet metal member by welding; b. The pole pin is tubular in shape; c. The pole pins are made of nickel or copper or nickel or copper alloy; d. Pole pins shall be made of the same material as the contact sheet metal members. The features a to d can be implemented independently of one another. Preferably, features a and b, particularly preferably features a to c, and even more preferably features a to d are implemented in combination with one another.
[0088] The tubular design of the pole pins has the great advantage of allowing welding through the pole pins. This is particularly advantageous in the contact plate designs described herein, where contact sheet metal members are used for edge-to-edge contact of the current collector edges. This allows the contact sheet metal members to be welded to the end faces of the wound electrode-separator assembly first. Even if the windings with the contact sheet metal members are already inserted into the housing, the pole pins can be welded to the contact sheet metal members in a later step. This will be discussed further below.
[0089] In preferred further developments, particularly preferred embodiments of the battery according to the invention have the following characteristics a. to e.: a. the pole pin is tubular and secured to the contacting sheet metal member by welding; b. The pole pin has an end segment made of nickel or copper or a nickel or copper alloy, or having a sheath coated with nickel or copper or a nickel or copper alloy, especially nickel or copper or a nickel or copper alloy; c. The end segments are made of nickel or copper or a nickel or copper alloy, or have a sheath of nickel or copper or a nickel or copper alloy, and are welded to the contacting sheet metal members; d. The pole pin has an end segment having a sheath made of aluminum or an aluminum alloy or coated with aluminum or an aluminum alloy, in particular aluminum or an aluminum alloy; e. The terminal segments are made of aluminum or aluminum alloy or have aluminum or aluminum alloy sheaths to form terminal contacts that can be tapped from outside the housing. It is characterized by at least one of the following:
[0090] In principle, features a-c, on the one hand, and features d-e, on the other hand, can be implemented independently of one another. Therefore, preferably, features a-c and d-e are implemented in combination with one another. Particularly preferably, all features a-e are implemented in combination with one another. This embodiment offers the advantage that welding of the terminal pin to the contact sheet metal element is facilitated, since identical or similar materials can be welded together. For example, if the terminal segment is made of copper, it can be particularly well welded to a contact sheet metal element made of copper. Segments made of aluminum also ensure that contact, especially welding, to the aluminum arrester is easily possible outside the battery. Several poles of a battery according to the present invention can be interconnected via such an aluminum arrester. If necessary, the housing of a battery according to the present invention can be filled with electrolyte through the tubular pole pin.
[0091] In preferred further developments, particularly preferred embodiments of the battery according to the invention have the following characteristics a. to c.: a. The tubular pole pin includes a closed bottom at one of its ends; b. The closed bottom is part of an end segment made of nickel or copper or a nickel or copper alloy, or having a sheath of nickel or copper or a nickel or copper alloy, and is made of nickel or copper or a nickel or copper alloy, or having a sheath of nickel or copper or a nickel or copper alloy; c. The bottom is welded to the contact sheet metal member. The features a to c can be implemented independently of each other. Preferably, the features a to c are implemented in combination with each other.
[0092] In this embodiment, the pole pin is cup-shaped and thus includes the bottom and peripheral side walls. In this embodiment, welding to the contacting sheet metal member can occur over a larger area, for example, via multiple welding spots distributed on the bottom. On the other hand, when using a tubular pole pin with an open end, welding can occur only where the opening of the pole pin abuts the contacting sheet metal member.
[0093] Particularly preferably, the tubular peel pin has the following dimensions: - a height ranging from 1 mm to 8 mm, preferably from 2 mm to 4 mm, - an outer diameter ranging from 2 mm to 2 mm, preferably from 3 mm to 8 mm, - an internal diameter ranging from 1 mm to 10 mm, preferably from 2 mm to 6 mm, - Wall thickness in the range of 0.3mm to 2.5mm, preferably 0.3mm to 1.5mm If the pole pin has a diameter greater than its height, the pole pin is in the form of a cup in embodiments with a base. In these cases, it may also be referred to as a pole cup or pole ball.
[0094] In a preferred further development, a particularly preferred embodiment of the battery according to the invention has the following characteristics a. and b.: a. the tubular housing portion is part of an aluminum or aluminum alloy housing cup that includes a circular bottom; b. The other of the first longitudinal edges directly abuts the bottom and is preferably joined to the bottom by welding. Preferably, features a. and b. are implemented in combination with each other.
[0095] Particularly preferably, therefore, the aluminum housing of a particularly preferred embodiment of the battery according to the invention consists of two integral parts: a housing cup made of aluminum or an aluminum alloy and a metal disk made of aluminum or an aluminum alloy, in which case the bottom of the housing cup also serves for direct contact of one longitudinal edge of the electrode, as well as a contact sheet metal element welded to the pole pin.
[0096] In further preferred developments, particularly preferred embodiments of the battery according to the invention have the following characteristics a. to c.: a. the tubular housing portion has a further terminal circular opening; b. the battery includes a closure element made of aluminum or an aluminum alloy having a circular edge closing the further end opening and forming the bottom of the housing; c. The closure element for the further end opening is or includes a metal disk made of aluminum or an aluminum alloy, the edge of which corresponds to or forms part of the circular edge of the metal closure element. The features a to c can be implemented independently of each other. Preferably, the features a to c are implemented in combination with each other.
[0097] Particularly preferably, the aluminum housing of the particularly preferred embodiment of the battery according to the invention can also consist of three essential parts: a tubular housing part made of aluminum or an aluminum alloy, a metal disc made of aluminum or an aluminum alloy through which the pole pin is guided, and a closure element comprising a further metal disc made of aluminum.
[0098] For clarity, when reference is made in the context of this application to an aluminium alloy, this means an alloy which in a preferred embodiment contains more than 75% by weight, preferably more than 85% by weight, particularly preferably more than 95% by weight and especially preferred more than 98% by weight of aluminium.
[0099] In a preferred embodiment, when reference is made in the context of this application to a copper alloy, this means an alloy which contains more than 75% by weight, preferably more than 85% by weight, particularly preferably more than 95% by weight, and particularly preferably more than 98% by weight of copper.
[0100] In the context of this application, when reference is made to a nickel alloy, this means an alloy which comprises more than 75% by weight, preferably more than 85% by weight, in particular more than 95% by weight, particularly preferably more than 98% by weight of nickel. Preferred developments of particularly preferred embodiments of the battery according to the invention described herein are defined in claims 5, 8 and 9.
[0101] Manufacturing Process A variant of the method for manufacturing an energy storage battery according to the invention having the characteristics described comprises: a. providing an electrode-separator assembly having an anode / separator / cathode sequence in the form of a cylindrical winding having two terminal end faces and a winding shell therebetween, each electrode having a current collector coated with an electrode material and having first and second longitudinal edges and two end faces, one of the longitudinal edges protruding from one of the terminal end faces; b. providing a tubular housing portion having a terminal circular opening; c. providing an at least partially metallic contact element having a circular edge; d. welding one longitudinal edge projecting from the end face to the contact element or to a metallic component of the contact element; e. inserting the electrode-separator assembly together with the contact element into the tubular housing portion through the circular opening so that the winding shell abuts the inside of the tubular housing portion and the edges of the contact element abut the inside of the tubular housing portion along a circumferential contact zone; f. securing an edge of the contact element to the inside of the tubular housing portion; The listed steps do not necessarily have to be performed in the order specified. For example, the sequence of steps d and e can be reversed.
[0102] With regard to preferred embodiments of the electrode-separator assembly, the tubular housing parts and the contact elements and the welding of the longitudinal edges projecting from the end faces, reference is made to the above description in connection with the energy storage battery according to the invention.
[0103] In a preferred embodiment, the method additionally comprises the steps of: a. the fastening is carried out by means of welding, soldering or bonding; b. After fixing, the opening edge of the terminal circular opening is bent radially inward over the edge of the contact element. It is characterized by at least one of the following:
[0104] In accordance with the above explanations for the energy storage battery according to the invention, fixing by welding is particularly preferred. Folding over the edges is generally not necessary for sealing or closing, but this may be required, for example, to calibrate the height of the energy storage battery.
[0105] Furthermore, in a preferred embodiment, the method according to the invention always comprises the following characteristics a. and b: a. the electrode-separator assembly is impregnated with an electrolyte, which is filled through apertures provided for that purpose in the contact elements or other housing parts; b. After filling with electrolyte, the aperture is closed, for example by bonding or welding; c. Closure is performed using an overpressure safety device Particularly preferably, at least the immediately preceding steps a. and b., and in some embodiments optionally the immediately preceding steps a. to c., are realized in combination.
[0106] To implement feature c., the closure of the aperture can be achieved, for example, by welding on a sheet of metal containing a burst diaphragm, burst fabric or similar predetermined burst point that can burst upon a defined overpressure within the battery to prevent the battery from exploding.
[0107] Particularly preferred variants of the method according to the invention A preferred variant of the method of manufacture according to the invention, which is particularly suitable for producing the above-mentioned particularly preferred embodiment of the battery according to the invention having an aluminum housing, is a. providing an electrode-separator assembly having an anode / separator / cathode sequence in the form of a cylindrical winding having two terminal ends and a winding shell therebetween, each electrode having a current collector coated with an electrode material and having first and second longitudinal edges and two end faces, one of the longitudinal edges protruding from one of the terminal ends; b. providing a tubular housing section fabricated from aluminum or an aluminum alloy having an inner surface and a terminal circular opening; c. Providing a metal disk made from aluminum or an aluminum alloy, a contact sheet metal member made from nickel or copper or a nickel or copper alloy, a metallic pole pin and insulating means, wherein the metal disk, metallic pole pin and insulating means are provided in the form of a pre-assembled lid assembly, with the pole pin passing through an aperture in the metal disk and being electrically insulated from the metal disk by the insulating means, and the contact sheet metal member being provided separately; d. welding one of the longitudinal edges to a contacting sheet metal member; e. inserting the electrode-separator assembly, with the welded contact sheet metal members, into the tubular housing portion through the circular opening so that the winding shell abuts the inside of the tubular housing portion; f. placing the pre-assembled lid assembly within the tubular housing section so that the edge of the metal disc abuts the inside of the tubular housing section along a circumferential contact zone and one end of the pole pin contacts the contacting sheet metal member; g. securing the edges of the metal disk to the inside of the tubular housing portion by circumferential welding; h. welding the pole pin to the contact sheet metal member; It is characterized by the combination of
[0108] In some embodiments of the method, the electrode-separator assembly is filled with electrolyte before the edges of the metal disk are secured by welding. However, this can also be done later in the method, for example, through holes in the metal disk that are subsequently sealed. A circumferential weld secures the edges of the metal disk to the inside of the tubular housing section along its entire length. The goal is to achieve a liquid-tight connection between the two housing sections.
[0109] Here, again, reference is made to the fact that the electrode-separator assembly, including all its components and many other components of the battery mentioned, such as the insulating means and the metal disk or contact sheet metal members, has already been described in more detail above. Reference is also made to the corresponding description. In a further development of a particularly preferred variant of the method according to the invention, the method comprises the following additional steps a. to c.: a. the electrode-separator assembly is impregnated with an electrolyte, which is filled through an aperture provided for that purpose in a metal disc or other housing part; b. After filling with electrolyte, the aperture (114) is closed, for example by bonding, welding or soldering; c. Closure is performed using the overpressure safety device (120) It is characterized by at least one of the following:
[0110] As already mentioned above, the electrolyte can also be filled via a pole pin if necessary. The overpressure protection can also be, as already mentioned, for example, a burst diaphragm or a burst fabric. A development of the method described herein is defined in claim 11.
[0111] Further features and advantages of the invention will become apparent from the following description of preferred examples of embodiments of the invention, together with the claims and the drawings. The individual features can be realized either separately or in combination with one another. [Brief explanation of the drawings]
[0112] [Figure 1] 1A-1D show various embodiments of contact elements of an energy storage battery according to the invention (cross-sectional views); [Figure 2] 1 shows a partial view of an energy storage battery according to the invention (cross-section) according to a variant of the first preferred invention described above; [Figure 3] 1 shows a partial view of an energy storage battery according to the invention according to a variant of the second preferred invention described above; [Figure 4] 1 shows a partial view of an energy storage battery according to the invention (cross-section) according to the third preferred invention variant described above. [Figure 5] 3 shows a further partial view of an energy storage battery according to the invention (cross-section) according to the third preferred invention variant described above. [Figure 6] 1 shows a diagram of a welded joint for connecting the longitudinal edges of a current collector to a contact sheet metal element of an energy storage battery according to the invention (plan view from above). [Figure 7] 1 shows a further preferred embodiment of an energy storage battery according to the invention according to a variant of the third preferred invention described above (cross-section). [Figure 8] 8 shows an embodiment of a pre-assembled lid assembly and contact elements that can be used to close the housing of the battery according to FIGS. 4, 5 and 7. [Figure 9] 1 shows one embodiment of a pole pin that is preferably used within the scope of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0113] 1 provides cross-sectional views of various embodiments A-H of contact elements 110 suitable for sealing an energy storage battery 100 according to the present invention. In particular: A: Here we see the simplest embodiment of a contact element 110 according to the invention, namely a flat metal disc with a circular periphery extending in only one plane. The metal disc can be made of aluminium, for example. B: The contact element 110 shown here includes a metal disk 111 and a metal pole cap 112. The metal disk 111 and the pole cap 112 each have a circular perimeter and the same diameter. The metal disk 111 extends only in one plane, while the pole cap 112 has a central ridge. The two parts 111 and 112 of the contact element 110 are preferably joined together by welding (not shown). C: The contact element 110 shown here comprises a metal disc 111 and a metal pole cap 112. The pole cap 112 is designed similarly to the pole cap in B. However, the edge 111a of the metal disc 111 is in this case bent radially inward so that the metal disc 111 has a U-shaped cross section in the edge region. The bent edge 111a surrounds the edge 112a of the pole lid 112 and thus fixes the pole lid 112 to the metal disc 111. Nevertheless, the metal disc 111 and the pole lid 112 are preferably additionally welded together. D: The contact element 110 shown here comprises a metal disc 111 and a contact sheet metal member 113. The contact sheet metal member 113 abuts flat against the metal disc 111 and is preferably welded thereto. The metal disc 111 may be made of, for example, stainless steel, and the contact sheet metal member 113 may be made of, for example, an aluminum alloy. E: The contact element 110 shown here comprises only a metal disc. In contrast to the metal disc in A, this has a circular recess 111b on its upper surface and a corresponding protrusion on its lower surface, i.e. it is shaped. F: The contact element 110 shown here comprises only a metal disc. In contrast to the metal disc shown in A, it has a radially inward folded edge 111a and a resulting bilayered edge region. G: The contact element 110 shown here comprises a metal disc 111 and a metal pole cap 112, which has a central curvature. The edge 111a of the metal disc 111 is bent radially inward so that the metal disc 111 has a U-shaped cross section in the edge region. The bent edge 111a surrounds the edge 112a of the pole cap 112 and thus fixes the pole cap 112 to the metal disc 111. Preferably, the edges 111a and 112a of the metal disc 111 and the pole cap 112 are additionally connected to each other by welding (not shown). A hole 114 is found in the center of the metal disc 111, through which the cavity 116 enclosed by the metal disc 111 and the pole lid 112 is accessible. An overpressure protection device 120 is integrated into the pole lid 112, which can be triggered in case of overpressure in the cavity 116. In the simplest case, the overpressure protection 120 can be a predetermined crack point. H: The contact element shown here comprises a single metal disc 111, which has an edge 111a with an L-shaped cross section bent by 90°. The closure elements according to the invention, which can be used within the scope of the above-mentioned two-lid housing variants, can also be preferably designed according to embodiments AH.
[0114] The energy storage battery 100 shown in Fig. 2 is an example of the first preferred embodiment of the present invention described above. It includes a contact element 110 shown in Fig. 1B, whose edge 110a is formed by the edges 111a and 112a of a metal disk 111 and a metal pole cap 112. Together with a hollow cylindrical metallic housing part 101, the contact element 110 forms the housing of the energy storage battery 100 and closes the end opening of the housing part 101. The edge 110a of the contact element abuts the inside 101b of the tubular housing part 101 along a circumferential contact zone and is connected to the tubular housing part 101 by a circumferential weld seam. The edge 101a of the housing part 101 is folded radially inward over the edge 110a of the contact element 110. Inside the housing, the spirally wound electrode-separator assembly 104 is axially aligned with its winding shell 104a abutting the inside of the tubular housing portion 101. The longitudinal edge 115a of the anode current collector protrudes from the upper end face 104b of the electrode-separator assembly formed as a winding, which is welded directly to the backside of the metal disk 111, for example, via a multi-pin connection.
[0115] The energy storage battery 100 shown in Fig. 3 is an example of the second preferred embodiment of the present invention described above. It includes a contact element 110 shown in Fig. 1B, whose edge 110a is formed by the edges 111a and 112a of a metal disk 111 and a pole cap 112. Together with a hollow cylindrical metallic housing part 101, the contact element 110 forms the housing of the energy storage battery 100 and closes the end opening of the housing part 101. The edge 110a of the contact element abuts the inside 101b of the tubular housing part 101 along a circumferential contact zone and is connected to the tubular housing part 101 by a circumferential weld seam. The edge 101a of the housing part 101 is folded radially inward over the edge 110a of the contact element 110. The contact element 110 further includes a contact sheet metal member 113 having two faces, one of which faces the metal disk 111, optionally abuts flat against it, and is connected to the metal disk 111 by welding. Within the housing, the spirally wound electrode-separator assembly 104 is axially aligned so that its winding shell 104a abuts the inside of the tubular metal housing part 101. A longitudinal edge 115a of the anode current collector protrudes from the upper end face 104b of the electrode-separator assembly plate formed as a winding. It abuts directly against the back surface of the contact sheet metal member 113 and is welded to the back surface of the contact sheet metal member 113, for example via a multi-pin connection.
[0116] The energy storage battery 100 shown in FIG. 4 is an example of the third preferred embodiment of the present invention described above. It includes an electrode-separator assembly 104 axially inserted into the hollow cylindrical housing portion 101 so that its winding shell 104a abuts the inner surface 101b of the tubular housing portion 101. The electrode-separator assembly 104 includes a spirally wound ribbon-shaped anode and a ribbon-shaped cathode. The anode includes a ribbon-shaped anode current collector and a ribbon-shaped cathode current collector. The anode current collector is loaded with a layer of negative electrode material. The cathode current collector is loaded with a layer of positive electrode material. A longitudinal edge 115a of the anode current collector protrudes from an upper end surface 104b of the electrode-separator assembly 104 formed as a winding. A longitudinal edge 125a of the cathode current collector protrudes from a lower end surface 104c of the electrode-separator assembly 104 formed as a winding. The energy storage battery 100 comprises a tubular, hollow-cylindrical metal housing part 101 having two end openings. The upper opening is closed by a metal disk 111, which is arranged in the tubular housing part 101 so that its edge 111a abuts the inside 101b of the tubular housing part 101 along a circumferential contact zone. The edge 111a of the metal disk 111 is connected to the tubular housing part 101 by a circumferential weld seam.
[0117] The metal disk 111 is part of the contact element 110, which in addition to the metal disk 111 includes a contact sheet metal member 113 and a pole pin 108. The contact sheet metal member 113 includes two faces, one of which, in the figure, is the upper face, facing the metal disk 111. A longitudinal edge 115a directly abuts the other face of the contact sheet metal member 113, in this case the lower face. The longitudinal edge 115a is connected to the contact sheet metal member 113 by welding. The pole pin 108 is welded to the contact sheet metal member 113 and extends out of the housing of the battery 100 through a central aperture in the metal disk 111. The contact element 110 further includes insulating means 103, which electrically isolates the pole pin 108, and thus the contact sheet metal member 113 welded to the pole pin, from the metal disk 111. The bottom opening of the housing part 101 is closed by a closure element 145. The closure element 145 is a metal disk whose edge 145a abuts the inside 101b of the tubular housing part 101 along a circumferential contact zone. The edge 145a of the closure element 145 is connected to the tubular housing part 101 by a circumferential weld seam. The longitudinal edge 125a of the cathode current collector abuts directly against the (upper) inside of the contact sheet metal member 113. The longitudinal edge 125a is connected to the contact sheet metal member 113 by welding. The welding can be achieved, for example, by using a laser through the metal disk of the closure element 145.
[0118] The energy storage battery 100 shown in FIG. 5 is another example of the third preferred embodiment of the present invention described above. It includes an electrode-separator assembly 104 axially inserted into the hollow cylindrical housing portion 101 so that its winding shell 104a abuts the inner surface 101b of the tubular housing portion 101. The electrode-separator assembly 104 includes a spirally wound ribbon-shaped anode and a ribbon-shaped cathode. The anode includes a ribbon-shaped anode current collector and a ribbon-shaped cathode current collector. The anode current collector is loaded with a layer of negative electrode material. The cathode current collector is loaded with a layer of positive electrode material. A longitudinal edge 115a of the anode current collector protrudes from the upper end surface 104b of the electrode-separator assembly 104, which is formed as a winding. The longitudinal edge 125a of the cathode current collector protrudes from the lower end face 104c of the electrode-separator assembly 104 in the form of a winding. The energy storage battery 100 includes a tubular, hollow-cylindrical metal housing part 101. The tubular housing part 101 is part of a metal housing cup 107 that includes a circular bottom 107a. The upper opening of the housing cup 107 is closed by a metal disk 111, which is positioned within the tubular housing part 101 so that its edge 111a abuts the inner surface 101b of the tubular housing part 101 along a circumferential contact zone. The edge 111a of the metal disk 111 is connected to the tubular housing part 101 by a circumferential weld seam.
[0119] The metal disk 111 is part of the contact element 110, which in addition to the metal disk 111 includes a contact sheet metal member 113 and a pole pin 108. The contact sheet metal member 113 includes two faces, one of which, in the figure, is the upper face, facing the metal disk 111. A longitudinal edge 115a directly abuts the other face of the contact sheet metal member 113, in this case the lower face. The longitudinal edge 115a is connected to the contact sheet metal member 113 by welding. The pole pin 108 is welded to the contact sheet metal member 113 and extends out of the housing of the battery 100 through a central aperture in the metal disk 111. The contact element 110 further includes insulating means 103, which electrically insulates the pole pin 108 and therefore also electrically insulates the contact sheet metal member 113, which is welded to the pole pin, from the metal disk 111. The lower end of the housing cup 107 terminates in a circular bottom 107a. The longitudinal edge 125a of the cathode current collector directly abuts the inside of the bottom 107a. The longitudinal edge 125a is joined to the bottom 107a by welding. The welding can be achieved, for example, by welding through the bottom 107a using a laser.
[0120] The example shown in Figure 6 shows a contact variant for connecting the longitudinal edge of a current collector having a spiral structure to a contact sheet metal member. A: Here, the longitudinal edges of the current collector abut directly against the contact sheet metal element and are connected to it via a number of point-shaped welded connections (so-called multi-pin connection). B: Here, the longitudinal edge of the current collector directly abutting the contact sheet metal member is fixed to the contact sheet metal member by a plurality of sections, each of which is continuously connected to the contact sheet metal member over its entire length by a weld seam.
[0121] The energy storage battery 100 shown in FIG. 7 includes a hollow cylindrical housing part 101, which is part of a housing cup 107, including a circular bottom 107a and a circular opening (defined by an edge 101a). The housing cup 107 is a deep-drawn part. The housing cup 107 encloses an interior space 137 in which an electrode-separator assembly 104 formed as a winding is axially aligned, together with a contact element 110 including a flat metal disk 111 having a circular edge 111a. The metal disk 111 is disposed within the tubular housing part 101 such that its edge 111a abuts the inner surface 101b of the tubular housing part 101 along a circumferential contact zone. Its edge 111a corresponds to the edge of the contact element and is connected to the tubular housing part 101 by a circumferential weld seam. The edge 101a of the tubular housing portion 101 is folded radially inward (here by approximately 90°) over the edge 110a of the contact element 110. The electrode-separator assembly 104 is in the form of a cylindrical winding having two terminal end faces between which a circumferential winding shell extends, thereby abutting the inside of the hollow cylindrical housing portion 101. It is formed from positive and negative electrodes and separators 118 and 119, each of which is ribbon-shaped and spirally wound. The two end faces of the electrode-separator assembly 104 are formed by the longitudinal edges of the separators 118 and 119. Current collectors 115 and 125 protrude from these end faces. The corresponding protrusions are labeled d1 and d2.
[0122] The anode current collector 115 protrudes from the upper end face of the electrode-separator assembly 104, and the cathode current collector 125 protrudes from the lower end face. The anode current collector 115 is loaded with a layer 155 of negative electrode material within its ribbon-shaped main region. The cathode current collector 125 is loaded with a layer 123 of positive electrode material within its strip-shaped main region. The anode current collector 115 has an edge strip 117 extending along its longitudinal edge 115a, which is not loaded with electrode material 155. Instead, a coating 165 of ceramic support material is applied here to stabilize the current collector within this region. The cathode current collector 125 has an edge strip 121 extending along its longitudinal edge 125a, which is not loaded with electrode material 123. Instead, a coating 165 of ceramic support material is also applied here. In addition to the metal disk 111, the contact element 110 further comprises a contact sheet metal member 113 and a pole pin 108. The contact sheet metal member 113 comprises two faces, one of which, in the figure, is the upper face, facing the metal disk 111. On the other face of the contact sheet metal member 113, in this case the lower face, the longitudinal edge 115a is in direct contact with the contact sheet metal member 113 and thus the contact element 110 over its entire length, and is preferably connected by welding over at least some sections over its entire length. Alternatively, the above-mentioned multi-pin connection can be present here. The contact element 110 thus simultaneously serves as both an anode electrical contact and a housing part.
[0123] The pole pin 108 is welded to the contact sheet metal member 113 and extends out of the housing of the battery 100 through a central aperture in the metal disk 111. The contact element 110 further includes an insulating means 103, which electrically insulates the pole pin 108, and thus the contact sheet metal member 113 welded to the pole pin, from the metal disk 111. Only the metal disk 111 is in direct contact with the housing cup 107 and therefore in electrical contact with it. The pole pin 108 and the contact sheet metal member 113 are insulated from the housing cup. The edge 125a of the cathode current collector 125 is in direct contact with the bottom 107a over its entire length and is preferably connected thereto by welding (especially with the aid of a laser) over at least some sections over its entire length. Alternatively, the multi-pin connection described above may be present. The bottom 107a therefore functions not only as part of the housing but also for the electrical contact of the cathode.
[0124] FIG. 8 shows a contact element 110 used to close the housing of the battery according to FIGS. 4, 5, and 7. The contact element includes a metal disk 111, a contact sheet metal member 113, a metal pole pin 108, and an insulating means 103. When assembling the battery according to FIGS. 4, 5, and 7, the separately provided contact sheet metal member 113 is preferably welded to its longitudinal edge 115a. After inserting the electrode-separator assembly 104 into the housing part 101 together with the welded contact sheet metal member 113, the pre-assembled lid assembly 122 is placed in the housing part 101 so that the edge of the metal disk 111 abuts the inside of the housing part 101 along the circumferential contact zone, and one end of the pole pin 108 contacts the contact sheet metal member 113. The edge of the metal disk 111 can then be welded to the inside of the housing part 101, and the pole pin 108 can be welded to the contact sheet metal member 113. Welding of the pole pin 108 is facilitated by the fact that it is tubular in shape, the pole pin 108 having a central aperture 108d for this purpose.
[0125] FIG. 9 shows a preferred embodiment of the pole pin 108. The pole pin 108 is tubular and has an end segment 108a made of nickel or copper or a nickel or copper alloy, or a sheath of nickel or copper or a nickel or copper alloy, for example, coated with nickel or copper or a nickel or copper alloy. Another end segment 108b of the pole pin 108 is made of aluminum or an aluminum alloy, or has an aluminum or aluminum alloy sheath, for example, coated with aluminum or an aluminum alloy. The segment 108a can be easily welded to the contact sheet metal member 113, especially if it is made of the same material as the segment 108a. In a fully assembled battery, the end segment 108b forms an end contact that can be tapped from outside the housing. In particular, the end segment 108b can be easily welded to an arrester made of aluminum or an aluminum alloy.
[0126] In contrast to the pole pin shown in Fig. 8, the pole pin 108 shown in Fig. 9 includes a closed bottom portion 108c, which is part of the end segment 108a and further comprises a sheath of nickel or copper or a nickel or copper alloy, or of nickel or copper or a nickel or copper alloy. The bottom portion 108c can be particularly easily welded to the contact sheet metal member 113.
Claims
1. A lithium ion battery (100) comprising: a. the battery includes an electrode-separator assembly (104) having an anode / separator / cathode sequence; b. the electrode-separator assembly (104) is in the form of a cylindrical winding having two terminal end faces (104b, 104c) and a winding shell (104a) disposed therebetween; c. the battery includes a housing including a metallic tubular housing portion (101) made from aluminum or an aluminum alloy having a terminal circular opening (101c); d. Within the housing, the electrode-separator assembly (104), formed as a winding, is axially aligned so that the winding shell (104a) abuts the inside (101b) of the tubular housing portion (101); e. the anode comprises a ribbon-shaped anode current collector (115) made of nickel or copper or a nickel or copper alloy, the anode current collector being ribbon-shaped and having a first longitudinal edge (115a) and a second longitudinal edge and two end portions; f. the anode current collector (115) includes a strip-shaped main area loaded with a layer of anode material (155) and a free end strip (117) extending along the first longitudinal edge (115a) that is not loaded with the anode material (155); g. the cathode comprises a ribbon-shaped cathode current collector (125) made of aluminum or an aluminum alloy, the cathode being ribbon-shaped and having a first longitudinal edge (125a) and a second longitudinal edge and two end portions; h) the cathode current collector (125) comprises a strip-shaped main area loaded with a layer of positive electrode material (123) and a free end strip (121) extending along the first longitudinal edge (125a) that is not loaded with the electrode material (123); i. the anode and the cathode are disposed within the electrode-separator assembly (104) such that the first longitudinal edge (115a) of the anode current collector (115) protrudes from one of the terminal end faces (104b, 104c) and the first longitudinal edge (125a) of the cathode current collector (125) protrudes from the other of the terminal end faces (104b, 104c); j) said battery includes a contact element (110) closing said terminal circular opening (101c) of said tubular housing portion (101) and including a metal disk (111), a contact sheet metal member (113), a metal pole pin (108) and an insulating means (113); k) the metal disc (111) is made of aluminum or an aluminum alloy, has a circular edge (111a) and is arranged in the tubular housing part (101) so that the edge (111a) abuts the inner side (101b) of the tubular housing part (101) along a circumferential contact zone, the edge (111a) of the metal disc (111) being connected to the tubular housing part (101) by a circumferential weld seam; l. the contact sheet metal member (113) is made of nickel or copper or a nickel or copper alloy, and the contact sheet metal member (113) has two faces, one of which faces towards the metal disc (111) and the other of which is in direct contact with one of the first longitudinal edges (115a, 125a) and is connected to the longitudinal edge by welding; m. The metal pole pin (108) is fixed to the contact sheet metal member (113) and leads out of the housing of the battery through an opening in the metal disk (111); n. The insulating means (103) electrically insulates the metal pole pin (108) and the contact sheet metal member (113) from the metal disc (111); and The metal pole pin (108) is tubular and is directly connected to the contact sheet metal member (113) by welding. A lithium ion battery (100) having:
2. Additional features include: c. The metal pole pin (108) is made of nickel or copper or a nickel or copper alloy; d. The metal pole pin (108) is made of the same material as the contact sheet metal member (113).
10. The battery of claim 1, comprising at least one of:
3. Additional features include: b. The metal pole pin (108) has a terminal segment (108a) made of nickel or copper or a nickel or copper alloy, or having a sheath of nickel or copper or a nickel or copper alloy; c. said end segment (108a) is welded to said contact sheet metal member (113); d. The metal pole pin (108) has a terminal segment (108b) made of aluminum or an aluminum alloy or having an aluminum or aluminum alloy sheath; e. The end segment (108b) forms a connection contact that can be tapped from outside the housing.
10. The battery of claim 1, wherein
4. Additional features include: a. said metal pole pin (108) includes a closed bottom (108c) at one of its ends; b. said closed bottom (108c) is part of said end segment (108a) and consists of or comprises said shell made of nickel or copper or a nickel or copper alloy; c. The bottom (108c) is welded to the contact sheet metal member (113). The battery according to claim 2 or 3, comprising at least one of the following:
5. Additional features include: a) the tubular housing portion (101) includes, in the axial direction, a central portion (130) where the winding shell (104a) abuts its inner side (101b) and a contact portion (135) where the edge (111a) of the metal disk (111) abuts its inner side (101b); b. said tubular housing portion (101) includes a circular edge (101a) that is folded radially inwardly over said edge (110a) of said contact element (110); The battery according to any one of claims 2 to 4, comprising any one of:
6. Additional features include: a. the tubular housing portion (101) is part of an aluminum or aluminum alloy housing cup (107) including a circular bottom (107a); b. The other of the first longitudinal edges (115a, 125a) directly abuts the bottom (107a) and is joined to the bottom (107a). The battery according to any one of claims 1 to 5, comprising at least one of the following:
7. Additional features include: a. said tubular housing portion (101) having a further terminal circular opening; b. the tubular housing portion (101) has a further end circular opening, and the battery (100) includes a closure element (145) made of aluminum or an aluminum alloy having a circular edge (145a) closing the further end opening and forming the bottom of the housing; c) the tubular housing portion (101) has a further end circular opening, the battery (100) includes a closure element (145) made of aluminum or an aluminum alloy having a circular edge (145a) closing the further end opening and forming the bottom of the housing, and the closure element (145) for the further end opening is or includes a metal disk made of aluminum or an aluminum alloy, the edge of which corresponds to or forms part of the circular edge (145a) of the closure element (145). The battery according to any one of claims 1 to 5, comprising at least one of the following:
8. Additional features include: a. said metal disc is placed within said tubular housing part (101) such that its edge abuts against the inner surface (101b) of said tubular housing part (101) along a circumferential contact zone; b) the metal disc is placed in the tubular housing part (101) such that its edge abuts against the inner surface (101b) of the tubular housing part (101) along a circumferential contact zone, and the edge of the metal disc is connected to the tubular housing part (101) by a circumferential weld seam; c) the metal disc is disposed within the tubular housing part (101) such that its edge abuts against the inner surface (101b) of the tubular housing part (101) along a circumferential contact zone, the edge of the metal disc being connected to the tubular housing part (101) by a circumferential weld seam, and the tubular housing part (101) includes a circular edge (101a) that is folded radially inward over the circular edge (145a) of the closure element (145); 8. The battery of claim 7, comprising at least one of:
9. Additional features include: a. the other of the first longitudinal edges (115a, 125a) directly abuts and is bonded to the metal disc; b. the other of said first longitudinal edges is welded to a contact sheet metal member (113) of aluminum or aluminum alloy that directly abuts said metal disc forming the bottom of said housing; 9. The battery of claim 8, wherein
10. A method for manufacturing a battery (100) according to any one of claims 1 to 9, comprising the steps of: a) providing an electrode-separator assembly (104) having an anode / separator / cathode sequence, said assembly being in the form of a cylindrical winding having two end faces (104b, 104c) and a winding shell (104a) therebetween, each said electrode including a current collector (115, 125) coated with an electrode material and having a first longitudinal edge (115a, 125a) and a second longitudinal edge and two ends, one of said longitudinal edges (115a, 125a) protruding from one of said end faces (104b, 104c); b. Providing a tubular housing portion (101) made of aluminum or an aluminum alloy having an inner surface (101b) and a terminal circular opening (101c); c) providing a metal disc (111) made of aluminum or an aluminum alloy, a contact sheet metal member (113) made of nickel or copper or a nickel or copper alloy, a metal pole pin (108) and an insulating means (103), wherein the metal disc (111), the metal pole pin (108) and the insulating means (103) are provided in the form of a pre-assembled lid assembly (122), the metal pole pin (108) is guided through an aperture in the metal disc (111) and is electrically insulated from the metal disc by the insulating means (103), and the contact sheet metal member (113) is provided separately; d. welding one of said longitudinal edges (115a, 125a) to said contact sheet metal member (113); e. Inserting the electrode-separator assembly (104) together with the welded contact sheet metal member (113) into the tubular housing portion (101) through the circular opening (101c) so that the winding shell (104a) abuts the inner side (101b) of the tubular housing portion (101); f) placing the pre-assembled lid assembly (122) into the tubular housing part (101) so that the edge (111a) of the metal disc (111) abuts the inner side (101b) of the tubular housing part (101) along a circumferential contact zone and one end of the metal pole pin (108) contacts the contact sheet metal member (113); g. Fixing the edge (111a) of the metal disc (111) to the inside (101b) of the tubular housing part (101) by welding in a circumferential manner; h. welding said metal pole pin (108) to said contact sheet metal member (113); A method comprising:
11. The following additional steps: a. The opening edge (101a) of said terminal circular opening (101c) is bent radially inward onto said edge (111a) of said metal disc (111). The method of claim 10, characterized by:
12. The following additional steps: a. the electrode-separator assembly (104) is impregnated with an electrolyte, the electrolyte being introduced through an aperture (114) provided for that purpose in the metal disc (111) or other housing part; b. After filling the electrolyte, the aperture (114) is closed; c. The closure is performed using an overpressure safety device (120).
12. The method according to claim 10 or 11, characterized by at least one of the following:
Citation Information
Patent Citations
battery
JP1998031996A