Battery manufacturing method and system
Real-time estimation of insulating material thickness in battery manufacturing addresses inefficiencies by optimizing coating application, enhancing productivity and reducing costs.
Patent Information
- Application Number
- JP2024543249
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-09-05
- Filing Date
- 2023-09-04
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2043-09-04
AI Technical Summary
Existing battery manufacturing methods struggle with precise control of insulating coating thickness and location, leading to inefficiencies in time, material, and energy consumption due to repeated inspections and adjustments.
A method and system for real-time estimation of insulating material thickness using a correlation between indicative wet thickness and the resulting dry thickness, allowing for precise control and adaptation of insulating coating application.
Enables efficient, cost-effective, and time-saving battery manufacturing by optimizing insulating coating application, reducing material and energy requirements while improving product quality.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to battery manufacturing methods and systems, and more particularly to methods that can be performed to form battery electrodes and systems operable to form battery electrodes. [Background technology]
[0002] A battery electrode generally includes an active material deposited on a (conductive) substrate, which may be an electrically conductive plate. In some manufacturing processes or systems, an insulating coating may be provided that covers a portion of the conductive substrate along the boundary (which may also be referred to as the edge, edge portion, periphery, or similar term) of the active material deposited on the substrate. Such an insulating coating may ensure sufficient electrical insulation of the conductive substrate, which may be used, for example, as a current collector for the battery electrode.
[0003] With this in mind, it may be advantageous to precisely control the application of the insulating coating with respect to the thickness of the insulating coating applied on the substrate, and with respect to the material present on the substrate, particularly the portion of the insulating coating that is applied to the active material of the battery electrodes. Thus, a technical challenge may relate to optimizing the thickness and location of the insulating coating applied on the substrate.
[0004] As used herein, the terms "system," "battery manufacturing system," and "system for manufacturing a battery" may be used interchangeably. Also, the terms "method," "battery manufacturing method," and "method for manufacturing a battery" may be used interchangeably. The methods disclosed herein may be performed in an automated manner. To such end, the method may be provided, for example, as a sequence of instructions on / in a machine-readable medium to be executed by a processor.
[0005] A battery manufacturing system as disclosed herein may be configured to perform a battery manufacturing method as disclosed herein, selectively including any of the features and method steps. Thus, when any feature of a battery manufacturing method is described, such feature may also apply to and / or be combined with a corresponding feature of the battery manufacturing system. Similarly, when one feature of a battery manufacturing system is described, such feature may also apply to and / or be combined with a corresponding feature of the battery manufacturing method. In particular, features of a battery manufacturing method and features of a battery manufacturing system are not mutually exclusive, unless expressly stated otherwise or technically inappropriate. In accordance with this understanding, a battery manufacturing method and a battery manufacturing system may be described in combination for simplicity of description.
[0006] A battery as referred to herein may be or include a general electrochemical cell for energy storage. More specifically, a battery as referred to herein may be or include a secondary battery and / or a primary battery. As used herein, a secondary battery may refer to or include a rechargeable battery. In particular, a battery may include one or more layers of electrodes and one or more layers of separators stacked (e.g., wound up) in a specific manner. A battery may be or include a coin-shaped, cylindrical, prismatic, or pouch-shaped battery. In certain examples, a battery may be configured to power machines or devices that are off the power grid, such as electric vehicles, mobile devices, or the like.
[0007] Furthermore, terms and expressions in parentheses are used in this specification to avoid repetition of explanations, and such terms and expressions in parentheses may indicate alternative terms or alternative expressions that can be used alternatively or additionally in the respective clauses.
[0008] Generally, battery manufacturing as referred to herein also contemplates the production of battery prototypes. Nevertheless, hereinafter, reference may be made to a "one" battery, which thus refers to the production of one of a plurality of identical batteries, without limiting the present subject matter generally to the production of any one particular, specific battery. In particular, the subject matter as claimed may envision automated (mass) production of batteries. Summary of the Invention [Problem to be solved by the invention]
[0009] The problem to be solved from the known prior art may be solved by the subject matter as defined in the independent claims. Particular embodiments are given by the features of the dependent claims. [Means for solving the problem]
[0010] A method for manufacturing a battery, particularly a secondary battery, is provided. The method may include the following steps, which may be performed in the following order, but are not bound to that particular order:
[0011] applying an active material onto the substrate; applying an insulating material onto the substrate and / or onto the active material so as to extend over an interface between the active material and the substrate, the insulating material including an insulating component and a liquid component; determining an indicative wet thickness of the insulating material at a location on the substrate offset from the boundary by a characteristic measurement distance; Adapting the step of applying the insulator material as a function of the index wet thickness.
[0012] After application of the insulating material, the liquid component of the insulating material evaporates during battery manufacturing, leaving the insulating component of the insulating material as applied. In some conventional methods and systems, the thickness and position of the remaining insulating component can be inspected after the liquid component of the insulating material evaporates. If the results are not satisfactory, the application of the insulating material can be modified (adapted), the entire preparation process including application and evaporation can be repeated, and the thickness and position of the remaining insulating component can be inspected again. Such procedures require a lot of time, energy, and materials.
[0013] In light of this, the battery manufacturing method and system disclosed herein enable the indicator wet thickness of an insulating material to be determined in real time. The claimed subject matter exploits the fact that there is a correlation between the thickness of the remaining insulating component of the insulating material and the indicator wet thickness of the insulating material. Thus, the thickness of the insulating component of the insulating material remaining on the substrate after evaporation of the liquid component of the insulating material can be estimated from the determined indicator wet thickness. In this manner, the battery manufacturing method and system disclosed herein enable real-time estimation of the thickness of a solid insulating coating on a substrate. This can also be applied to the interface between the active material and the substrate, as well as the application of a solid insulating coating on an active material applied to a substrate.
[0014] The battery manufacturing methods and systems disclosed herein also allow the application of insulator material to be adapted as a function of the determined index wet thickness, enabling precise real-time control of the application of a solid insulating coating on a substrate. This may also apply to the application of a solid insulating coating on an active material applied to a substrate, as well as to the interface between the active material and the substrate. As a result, the battery manufacturing methods and systems disclosed herein may enable precise control of the application of insulator material in a manner that saves material, cost, time, and energy.
[0015] As mentioned, a battery can include an electrode, which can be a positive electrode or a negative electrode. The electrode can include a substrate and an active material coated on the substrate. The active material can be specially prepared for each type of electrode. For example, the active material can include lithium for a positive electrode. Generally, the term "applying" as used herein refers to providing one material onto another material in any suitable manner, unless otherwise specifically indicated. For example, applying can be or include discharging a material from an emitter, such as by pressing through a die or extrusion using an extrusion setup. In other examples, applying can be or include spraying a material onto a target surface, whereby the emitter can be considered to include a nozzle or nozzle array. In particular, applying can refer to dispensing an active material onto a substrate and dispensing an insulator material onto the substrate (and, if applicable, onto the active material).
[0016] After application, the active material may occupy a partial area of the surface of the substrate onto which it is applied. Thus, the applied active material extends to the boundary. The boundary may refer to the material boundary between the active material and the surface when viewed from a plane on the substrate. The active material may be a flowable material mixture, and thus, the applied active material may spread to the boundary. The boundary may correspond to the edge of the active material applied to the substrate, and the terms "boundary" and "edge" may be used interchangeably herein unless otherwise specified or technically inappropriate. Additionally, herein, an edge portion may refer to a portion of the active material along and near a boundary or edge. As explained below, an edge portion may be defined by a sliding or sliding portion. Herein, the term "boundary" is used specifically to refer to the boundary between the substrate and the applied active material, unless otherwise specified.
[0017] Herein, the active material applied to the substrate may be referred to as the applied active material. The boundary between the applied active material and the substrate may be substantially linear along a particular direction, particularly along the process direction. However, the applied active material may be a flowable material mixture and therefore may not necessarily be perfectly linear, but may form a boundary that is substantially, generally, or on average aligned with a straight line, particularly parallel to the process direction. Herein, the process direction may be the direction in which the substrate is moved while the active material and / or the insulator material is being applied to the substrate.
[0018] The edge portion of the applied active material may exhibit a so-called sliding phenomenon, in which the thickness of the applied active material decreases smoothly outward, and / or may form a sliding portion. Furthermore, in response to the sliding phenomenon and / or in the sliding portion, the upper surface of the opposite side of the substrate may curve concavely (protrude upward). The sliding phenomenon or sliding portion may occur due to the properties of the active material, such as fluidity, viscosity, surface tension, and / or friction against the surface of the substrate.
[0019] The methods and systems disclosed herein may each be performed and operable to manufacture a battery, particularly a secondary battery, including an electrode. In this context, the substrate may serve as a current collector for the battery's electrode. The substrate may be an electrically conductive substrate. The substrate may be or include a conductive material, such as, for example, a conductive metal, such as aluminum, its alloys, copper, or its alloys, or a conductive metal alloy. The substrate may have the shape of a plate, sheet, foil, film, layer, or the like. The substrate may have a substantially flat upper surface onto which active material and / or insulating material is applied. For simplicity of explanation, terms such as upper surface, top side, upward, on, and the like are used to indicate the normal direction of the major surface of the substrate onto which active material and / or insulating material is applied.
[0020] The active material of the battery may be provided as a viscous mixture, which may also be referred to as a slurry. The active material coated on the electrode substrate is then dried and selectively activated to obtain an electrode for the battery. Hereinafter, the term "battery" may be or may include a secondary battery. For simplicity of explanation, the expression "active material" may also refer hereinafter to a slurry containing the active material and additional components in a viscous and / or flowable mixture, unless otherwise specified or technically inappropriate.
[0021] The active material may include, for example, lithium cobalt oxide (LCO), lithium nickel cobalt manganese oxide (NCM), lithium nickel cobalt aluminum oxide (NCA), lithium manganese oxide (LMO), lithium nickel manganese spinel (LNMO), and lithium iron phosphate (LFP). The active material may also include graphite, lithium, or silicon. The active material may additionally include solid components, particularly solid conductive particles, such as carbon black or carbon nanotubes. The active material may additionally include a dispersant.
[0022] The active material may include a binder with which the solid material is mixed. The binder may be a polymeric binder. The (polymeric) binder of the active material may include polyvinylidene fluoride (PVDF), polymethyl acrylate (PMMA), carboxymethylcellulose (CMC), polyacrylate, xanthan gum, polyethylene glycol, or styrene butadiene. The active material may further include a liquid component. The liquid component of the active material may include water or an organic solvent, such as tetrahydrofuran (THF) or N-methyl-2-pyrrolidon (NMP).
[0023] As noted above, the insulator material may include an insulator component and a liquid component. In particular, the insulator material may be or include a mixture of an insulator component and a liquid component, where the mixture is prepared as a flowable or viscous mixture of the liquid component and the insulator component. In certain instances, the insulator material may be prepared by mixing the insulator component with the liquid component.
[0024] The liquid component can be any suitable liquid material that can be mixed with the insulator component. In particular, the liquid component can be selected and / or prepared, for example, to provide a homogeneous (or heterogeneous) mixture with the insulator component. The liquid component of the insulator material can be or include water or an aqueous liquid, or an organic solvent, such as tetrahydrofuran (THF) or N-methyl-2-pyrrolidon (NMP).
[0025] The boiling point of the liquid component of the insulating material can be lower than the boiling point of the insulating component of the insulating material (at the same pressure and under the same other environmental conditions). Thus, the liquid component can evaporate when exposed to elevated temperatures, while the insulating component remains. The remaining insulating component can be further treated to obtain an insulating coating. Alternatively or additionally, treating the insulating component can include applying heat, (UV) radiation, or other forms of energy to the insulating material, during which the liquid component evaporates.
[0026] The process of forming an insulating coating from an applied insulator material, particularly from its insulator components, may be referred to herein as a curing process and / or a drying process, depending on the insulator material. The insulator components and the resulting insulating coatings may refer to substances and / or structures that provide electrical insulation, for example, by preventing current flow within a voltage range of interest (and / or within an electric field range of interest). For example, the insulator components may be 10 -8 S cm -1 Electrical conductivity below 10 8 It can have an electrical resistivity of Ω·cm or more.
[0027] The insulator component may be or include a binder, particularly a polymeric binder. A curing and / or drying process may be performed after application of the insulator material on the substrate, in which the (polymeric) binder may be cured (or polymerized) under exposure to heat, (infrared and / or ultraviolet (UV)) radiation, or any suitable form of energy input to form an insulating coating. The (polymeric) binder of the insulator material may be or include polyvinylidene fluoride (PVDF), polymethyl acrylate (PMMA), carboxymethylcellulose (CMC), polyacrylate, xanthan gum, polyethylene glycol, or styrene butadiene.
[0028] Alternatively or additionally, the insulator component can be or include a ceramic material. A curing and / or drying process can be performed after application of the insulator material on the substrate, in which the ceramic material can be calcined or sintered under exposure to heat, (UV) radiation, or any suitable form of energy input, or otherwise processed to form a solid insulating coating. Examples of ceramic materials can include oxide-based ceramics, such as aluminum oxide (alumina, Al2O3), zirconium dioxide (zirconia, ZrO2), titanium dioxide (TiO2), magnesium oxide (MgO), zinc oxide (ZnO), barium titanate (BTO), aluminum titanate (tialite, Al2TiO5), and beryllium oxide (beryllia, BeO). Additional examples of insulator components include silicate-based materials, kaolinite, boron carbide (B4C), silicon carbide (SiC), silicon nitride (SiN), tungsten carbide (WC), molybdenum disilicide (MoSi2), and aluminum nitride (AlN).
[0029] In certain non-exhaustive examples, the insulator component may include one or a combination of the following: PVDF, aluminum oxide hydroxide (AlO(OH), e.g., boehmite or diaspore), SBR-based ceramic material (styrene butadiene rubber), and alumina (Al2O3). The insulator component may also include solid additives, which may include one or a combination of the following: dyes, tannic acid, and dispersants. The component content percentages of the insulator component may be empirically determined and may undergo an ongoing development and optimization process.
[0030] Some specific, non-exhaustive examples may be as follows: In a specific example, 90% to 99.9% of the insulation component may be made of PVDF (e.g., KF9700). In another specific example, 40% to 70%, preferably 50% to 60%, or more preferably 55% to 60%, or 57.5%±1% of the insulation component may be made of aluminum oxide hydroxide, while 25% to 60%, preferably 30% to 50%, or more preferably 35% to 45%, or 40% of the insulation component may be made of SBR. In such a specific example, tannic acid may be added as an additive at a relative content of 0.5% to 5%, preferably 1% to 4%, more preferably 2% to 3%, or 2.5%±0.2% of the insulation component. In another example, 40% to 90%, preferably 50% to 80%, more preferably 60% to 70%, or 65%±0.5% of the insulator component may be made of alumina (e.g., AES11), while 20% to 45%, preferably 25% to 35%, more preferably 30% to 35%, or 32.5%±0.5% of the insulator component may be made of PVDF (e.g., KF9700). In this particular example, the dispersant may be added as an additive at a relative content of 1% to 6%, preferably 1.5% to 5.5%, more preferably 1.8% to 3.5%, or 2.5%±0.5% of the insulator component. In additional specific examples, 70% to 99%, preferably 75% to 95%, more preferably 80% to 90%, or 87%±2% of the insulator component may be made of aluminum oxide hydroxide, while 1% to 20%, preferably 5% to 15%, more preferably 7% to 13%, or 10%±1.5% of the insulator component may be made of PVDF (e.g., KF9700). In such specific examples, tannic acid may be added as an additive at a relative content of 1% to 6%, preferably 1.5% to 5%, more preferably 2.5% to 4.5%, or 3.5%±0.5% of the insulator component.
[0031] A battery manufacturing method may include applying an active material on a substrate. The active material may include any of the corresponding features described herein. The substrate may include any of the corresponding features described herein. As used herein, the applying process may be referred to as applying. Applying may be as defined above and may include any of the corresponding features described herein. In particular, applying the active material may be or may include ejecting the active material from an emitter, for example, by squeezing through a die, by extrusion, or by spraying the active material onto the substrate.
[0032] As mentioned, the active material can be applied to the substrate, for example, to occupy a partial area of the surface of the substrate. Thus, the applied active material can extend to the boundary in the width direction. The width direction is perpendicular to the process direction mentioned above and can be perpendicular to the thickness direction in which any thickness as referred to herein is measured. Both the width direction and the process direction can be parallel to the major surface, which can be referred to as the top surface of the substrate, on which the active material and insulator material are applied. Thus, the thickness direction can be perpendicular to the top surface of the substrate.
[0033] The boundary may include any of the corresponding features described herein. The boundary may be substantially linear and parallel to the process direction, as mentioned above. In particular, the boundary between the applied active material and the substrate may be formed by an edge surface of the applied active material toward the width direction. More specifically, the boundary between the applied active material and the substrate may be formed by not completely covering the substrate, i.e., by leaving a portion of the substrate uncovered. The material boundary between the uncovered portion of the substrate and the applied active material may be referred to as a boundary.
[0034] As mentioned, an edge of the applied active material may be formed along a boundary. As such, edge and boundary may be used interchangeably unless otherwise specified or technically inappropriate. However, an edge of the applied active material may refer to the largest physical extent of the active material, while a boundary is the material boundary between the applied active material and the substrate. Also, an edge portion of the active material may be as mentioned and may refer to the three-dimensional portion of the applied active material along and adjacent to the boundary or edge.
[0035] The boundary between the applied active material and the substrate may include any of the corresponding features described herein. The edge of the applied active material may include any of the corresponding features described herein. The edge portion of the applied active material may include any of the corresponding features described herein.
[0036] A battery manufacturing method may include, for example, applying an insulator material onto a substrate so as to extend over the interface between the active material and the substrate. The insulator material may include any of the corresponding features described herein. The interface may include any of the corresponding features described herein. The insulator component may include any of the corresponding features described herein. The liquid component may include any of the corresponding features described herein. Also, the application of the insulator material may be essentially the same as or similar to the application of the active material described herein. In particular, the application of the insulator material may be or may include ejecting the insulator material from an ejector, for example, by squeezing through a die, by extrusion, or by spraying onto the substrate.
[0037] For example, the insulator material may be applied to the substrate so as to extend over the interface between the applied active material and the substrate. Thus, the applied insulator material may also extend over the applied active material. In other words, the insulator material may be applied over both the substrate and the active material applied to the substrate. In other words, the applied insulator material may extend from the substrate through the interface onto the active material applied to the substrate.
[0038] As described above, the insulator material may include an insulator component and a liquid component. The insulator component may include any of the corresponding features described herein. The liquid component may include any of the corresponding features described herein. Thus, the insulating coating may be formed by processing the insulator material according to the configuration of the insulator component and liquid component of the insulator material.
[0039] The battery manufacturing method can include determining an index wetting thickness of the insulator material at a location on the substrate, and such location at which the index wetting location is determined can be offset from the interface between the substrate and the applied active material by a characteristic measurement distance.
[0040] Here, determining any thickness can refer to physically determining, rather than estimating, simulating, or calculating. In particular, determining any thickness can include measuring such thickness. Measuring the thickness can be performed using any known and suitable measurement method, for example, using an optical measurement setup, particularly using a reflectance spectrometer. Such a reflectance spectrometer can use a light source having a spectrum in the (near) infrared range and / or the visible range, or in the wavelength range of 400 nm to 1100 nm. The reflectance spectrometer can illuminate the measurement area with, for example, a spot size of 2 mm, particularly a spot size of 1 mm to 1.5 mm. For this purpose, the reflectance spectrometer can use a collimator to collimate the light from the light source. The reflectance spectrometer can also use a motorized shutter. In one example, a portion of the light from the light source is reflected at the incident surface of the target material (i.e., the applied insulator material, the remaining applied material, and / or the active material), while another portion of the light is reflected at the interface (also referred to herein) between the target material and the substrate. Thus, the phase shift between the different reflected portions of the light can be detected and the thickness can be derived therefrom.
[0041] Using a solid measurement probe that penetrates the applied insulating material and / or the applied active material would be another option, however, it is not preferred because it may cause structural damage to the insulating coating and / or active material. While the absolute value of the determined thickness may (or may not) vary depending on the measurement setup, the claimed subject matter is concerned with the characteristic measurement location at which the thickness of the applied insulating material is determined, not the absolute thickness value. In other words, as long as the same measurement setup is used to determine the thickness of the applied insulating material and the remaining insulating material, the claimed subject matter is not affected by the particular type of measurement setup used.
[0042] The index wet thickness can indicate the thickness of the insulating material at that location, where such location is defined by the characteristic measurement distance from the boundary between the substrate and the applied active material. Such a location can also be referred to as the characteristic measurement location. Thus, the characteristic measurement location can be determined / defined by the characteristic measurement distance from the boundary. The index wet thickness can be the thickness of the insulating material applied on the substrate at the characteristic measurement location. In this manner, the characteristic measurement distance, the characteristic measurement location, and the index wet thickness can be interconnected.
[0043] The inventors have discovered that there is a predictable and thereby reproducible relationship between the thickness of the insulating coating (which may be referred to herein as the dry thickness) obtained by applying and processing the insulating material in the manner referred to above, and the thickness of the insulating material applied to the substrate at a particular location (i.e., the indicative wet thickness). Such particular location may be or may correspond to the above-mentioned property measurement location offset from the boundary by the property measurement distance.
[0044] In particular, the content (e.g., percent, wt.%) of the insulator component can be determined by the weight (or volume) of the (total) insulator material, including the liquid component and the insulator component (and any other components, if present). As mentioned, the liquid component of the insulator material can evaporate during curing and / or drying processing (e.g., by curing, polymerization, UV radiation, sintering, calcination, or any other suitable measure of exposing the insulator material to energy input) to obtain an insulating coating. Therefore, the thickness (i.e., dry thickness) of the remaining insulator material (remaining insulator material, or insulating coating, as described herein) can substantially correspond to the content of the insulator component. Here, changes in the volume of the insulator component, e.g., compression or expansion, that may occur due to the curing and / or drying process can be taken into account or ignored.
[0045] Therefore, if the content of the insulator component is known, the dry thickness of the insulating coating can be derived from the indicative wet thickness of the insulating material. However, depending on the topology and material of the landing surface onto which the insulator material is applied, the formation of the insulating coating as a result of the curing and / or drying process may not be spatially uniform, i.e., the dry thickness of the insulating coating may vary locally. This may be due, for example, to the fact that the insulator material is a mixture of a liquid component and an insulator component, which may consequently be fluid and / or viscous before undergoing the curing and / or drying process. In addition, the substrate and the active material applied thereto may together provide a non-planar landing surface onto which the insulator material is applied. Therefore, the insulator component may migrate or flow to a certain extent after application and, therefore, may not be uniformly distributed over the applied active material and substrate. Therefore, in the prior art, it has been considered difficult to establish a reliable relationship between the thickness of the applied insulator material and the dry thickness of the insulating coating.
[0046] The inventors have discovered that there are specific locations where the thickness of the applied insulating material reliably correlates with the resulting dry thickness of the insulating coating. Such specific locations are referred to as the characterization locations, as described above in this specification. The thickness of the applied insulating material at the characterization locations is referred to as the indicative wet thickness, as described above in this specification. The characterization locations may vary (or may not vary) depending on at least one of the following parameters and properties, including: thickness of the applied active material, topology of the applied active material, shape of the edge portions of the applied active material, the insulating material applied on the substrate, and, if applicable, topology of the applied active material, amount of insulating material applied, and width (i.e., physical extent in the width direction) of the applied insulating material. Alternatively or additionally, the characterization locations may vary depending on at least one of the following: composition of the insulating material, composition of the active material, and composition of the substrate. Alternatively or additionally, the characteristic measurement distance may vary depending on at least one of the following parameters and characteristics: the composition of the insulator material, the content of the insulator components, the curing and / or drying process, and ambient parameters such as temperature, humidity, and pressure. For simplicity of explanation, any of the above-mentioned parameters and characteristics may be collectively referred to herein as "positioning factors."
[0047] The property measurement location is offset from the boundary (and edge of the coated active material) by the property measurement distance. Specifically, the property measurement location can be on the substrate and / or the property measurement location can be offset from the coated active material. Alternatively, the property measurement location can be on the coated active material on the substrate. This can depend on one or more of the location factors mentioned above.
[0048] Because the characteristic measurement distance and thus the characteristic measurement location may each depend on one or more of the location-determining factors, the characteristic measurement distance and the characteristic measurement location may first be determined empirically and then estimated (extrapolated). For example, the content and substance of the insulating components contained in a given insulating material may be determined or known from the preparation of the insulating material. The thickness of the applied insulating material on the substrate may then be determined at different locations relative to the boundary. Here, expressions such as "offset from the boundary" or "relative to the boundary" may indicate that the position or thickness is determined as a function of distance from the boundary, i.e., at different locations along the width direction. Optionally, the thickness of the applied insulating material may also be determined at different locations along the process direction. Thus, the thickness of the applied insulating material may be determined at an array of locations covering the edge portion of the applied active material, the boundary, and partial areas of the substrate covered by the insulating material. Thereafter, the dry thickness of the remaining insulating material, particularly after the curing and / or drying process and / or evaporation of the liquid components of the insulating material, may be determined at the same locations where the thickness of the applied insulating material was measured. The determined dry thickness of the remaining insulating material is correlated with (or compared to, or mapped to) the determined thickness of the applied insulating material at each of the different locations. Such an approach may reveal a particular range of measurement distances over which the correlation between the determined thickness of the applied insulating material and the dry thickness of the remaining insulating material is repeatable and predictable.
[0049] As noted above, the active material can be applied to the substrate to form, for example, an edge that is substantially parallel to the process direction. Thus, determining the thickness of the applied insulator material as a function of distance from the boundary can mean that the thickness is measured at different locations along a width direction perpendicular to the process direction (and the process direction and width direction can each be perpendicular to the thickness direction in which any thickness mentioned herein is determined). In particular, the substrate having the active material and insulator material applied thereto can be moved in the process direction during the step of determining the thickness of the applied insulator material.
[0050] In a particular example, a battery manufacturing method may (additionally or alternatively) include: measuring the thickness of the insulating material on the substrate at different locations distributed along the process direction and the width direction after applying the active material and insulating material and before evaporation of X% by weight (X is 0.1 to 10) of the liquid component of the insulating material. X may be 0.1 to 10, or 0.1 to 5, or 0.1 to 2. For simplicity, the state in which the liquid component has evaporated less than X% by weight (i.e., the state after X wt.% or less of the liquid component has evaporated) may be referred to herein as the wet state. Herein, the applied insulating material may refer to the insulating material applied on the substrate while evaporation of X wt.% or less of the insulating material has occurred, unless otherwise specified.
[0051] In certain examples, the battery manufacturing method may (additionally or alternatively) include: determining the thickness of the insulating material remaining at the different locations after evaporation of at least Y% by weight of the liquid component of the insulating material, where Y is 30-99%. Y may be 30-99, or 50-99, or 75-99, or 90-99. For simplicity, the state where evaporation of more than Y% by weight of the liquid component (i.e., the state after at least Y% by weight of the liquid component has evaporated) may be referred to herein as a dry state. The insulating material remaining after evaporation of Y% by weight of the insulating material may also be referred to as remaining insulating material or insulating coating, as described herein.
[0052] In certain examples, a battery manufacturing method may (additionally or alternatively) include: identifying (or detecting) a subset of distinct locations, with respect to distance from the boundary, at each distinct location individually, where the correlation between the thickness of the insulator material before evaporation of X% by weight of the liquid component and the dry thickness of the remaining insulator material is reproducible. Any location within the subset of distinct locations identified in the above manner may be referred to herein as a characteristic measurement location, and an individual distance from the boundary may be referred to herein as a characteristic measurement distance.
[0053] As used herein, the term "reproducible" can indicate that the variation can be less than 30%, or less than 25%, or less than 20%, or less than 15%, or less than 10%, or less than 5%, or less than 1%. Correlation can mean that there is a reproducible numerical relationship and / or a reproducible mathematical relationship between the thickness of the applied insulation material (i.e., before evaporation of at least X% by weight of the liquid component) and the dry thickness of the remaining insulation material (i.e., after evaporation of at least Y wt.% of the liquid component).
[0054] Such reproducible numerical relationships can be used to generate a table, such as a database, data array, or look-up table, organized into a table stored in a data store, in which values of thickness of applied insulating material and corresponding values of dry thickness of remaining insulating material (insulating coating) are correlated to one another. In this manner, a particular thickness of applied insulating material can be entered into such a table to obtain the corresponding dry thickness of remaining insulating material.
[0055] Optionally, fitting, such as extrapolation and / or interpolation of the reproducible numerical relationship, may be performed to extend the numerical relationship to a range of values that is not physically determined.
[0056] Alternatively or additionally, a regression analysis can be performed to find a continuous (and universal) mathematical relationship between the thickness of the applied insulating material and the thickness of the remaining insulating material. Thus, the mathematical relationship can include an analytical equation having the thickness of the applied insulating material as a variable and the dry thickness of the remaining insulating coating as a function of the variable. One such mathematical relationship can be a linear function. Alternatively or additionally, the mathematical relationship can be or include one or more mathematical functions, including logarithmic, exponential, polynomial, or trigonometric functions. Such a mathematical relationship can enable the automated calculation of the dry thickness of the (resulting) insulating coating in a reliable manner from the determined thickness of the applied insulating material.
[0057] In some instances, there may be a mathematical relationship between the index wet thickness of the applied insulator material and the dry thickness of the remaining insulating coating. The mathematical relationship may be given by a linear equation as follows:
[0058] t=S·d+C
[0059] In the above equation, t is the thickness of the insulating coating (i.e., in the dry state), S is the profile slope, d is the index wet thickness, and C is the offset. The parameters S and C may be determined empirically, as described above, from fitting and / or from regression analysis, or by a calibration process as described herein. As used herein, a calibration process may refer to a process of finding a profile measurement location by profile measurement distance from a boundary and, accordingly, a location for determining the index wet thickness of the applied insulating material.
[0060] The above equations may make it possible to estimate the thickness t of the remaining insulating coating by interpolation and / or extrapolation. The indicative wet thickness d and the dry thickness t may have the same units, for example μm or mm.
[0061] For example, the slope S may be 0.01 to 0.6, or 0.02 to 0.5, or 0.03 to 0.4, or 0.04 to 0.35. For example, the offset C may be -100 μm to +100 μm, or -90 μm to +50 μm, or -80 μm to +30 μm, or -50 μm to +10 μm. In certain examples, the slope S and / or the offset C may depend on the content (e.g., weight or volume percent) of the insulator component within the insulator material. Alternatively or additionally, the slope S and / or the offset C may be independent of the composition (chemical) of the insulator component within the insulator material.
[0062] The specific example as mentioned above can also be considered (referred to as) a calibration process for real-time determination of dry thickness of an insulating coating. For example, after calibration in the manner described above, the thickness of the applied insulating material can be monitored in real time.
[0063] Thus, the battery manufacturing methods and systems disclosed herein may enable reliable prediction of the dry thickness of the insulating coating from real-time determination of the indicative wet thickness of the applied insulator material. Thus, with respect to precise location and application of the insulating coating, the quality of the battery product may be increased. At the same time, material, cost, time, and energy requirements may be reduced.
[0064] The battery manufacturing method can include adapting the application of the insulator material as a function of the index wet thickness. As described above, the index wet thickness of the applied insulator material can be used to predict the resulting dry thickness of the insulating coating (remaining insulator material). Thus, the index wet thickness can be utilized to optimize and / or control the application of the insulator material.
[0065] For example, there may be a target dry thickness of the insulating coating for a given battery product. Such target thickness may correspond to a target range of the indicator wet thickness according to a numerical or mathematical relationship as described above. When determining the indicator wet thickness, the indicator wet thickness may be used to predict the dry thickness of the insulating coating in the manner described above. If the indicator wet thickness is outside the target range, the application of the insulating material may be adapted, for example, with respect to application position or application speed, to shift the indicator wet thickness toward the target range. As mentioned, an indicator wet thickness that is within the target range may result in a dry thickness of the insulating coating after evaporation and, if applicable, curing and / or drying processes, that is at or sufficiently close to the target dry thickness.
[0066] For example, the application position can be adapted by moving the above-mentioned emitter of the insulator material in any of the width, process, and thickness directions. Here, moving the emitter can be moving in one of the positive and negative directions in the width, process, and thickness directions. For simplicity, the movement direction in the width direction can be referred to as the left direction and the right direction (e.g., when viewed from a planar surface depending on the viewing direction), the movement direction in the process direction can be referred to as the forward direction and the backward direction (where the forward direction is the positive direction with respect to the process direction and the backward direction is the opposite direction), and the movement direction in the thickness direction can be referred to as the upward direction (closer to the substrate) and the downward direction (away from the substrate).
[0067] The insulating material may be a mixture of a flowable / viscous insulating component and a liquid component. Also, the landing surface onto which the insulating material is applied may be uneven. Therefore, the application of the insulating material, particularly the application of the insulating material via an emitter, may result in a spatially non-uniform distribution of the thickness of the applied insulating material. In particular, the thickness of the applied insulating material may exhibit local maxima. Therefore, the application, particularly the application location, may be adapted to account for such effects. For example, the applied insulating material may exhibit a local maxima at a location aligned with the center of the insulating material emitter. If the indicative wet thickness is below a target range, the application location, i.e., the emitter, may be moved so that the local maxima are closer to the characteristic measurement location. Similarly, if the indicative wet thickness is above a target range, the application location, i.e., the emitter, may be moved so that the local maxima are farther away from the characteristic measurement location.
[0068] To accommodate the application of the insulating material, the application speed can be increased or decreased. For example, if the index wet thickness is below a target range, the application speed can be increased. If the index wet thickness is above a target range, the application speed can be decreased.
[0069] Adapting the application, particularly the application speed and / or application location, may be done via a feedback loop that uses the index wet thickness as an input and outputs the application speed and / or application location of the dielectric material. Circuitry and algorithms that subsequently support such feedback loops may be known in the art.
[0070] In some examples, the insulator material can be configured such that when the insulator material is applied, the ratio of liquid component content to insulator component content is 1 to 100, particularly 2 to 50, and more particularly 4 to 25, or 5 to 20. A content ratio within one of these ranges can provide a balance between cost, energy consumption, and time requirements of the battery manufacturing method and system and sufficient insulation.
[0071] In some examples, the thickness of the insulator material (and / or its liquid component) applied onto the substrate can be 10 μm to 1000 μm, particularly 20 μm to 500 μm, and more particularly 50 μm to 250 μm. Optimized values that allow for reduced material, time, and energy requirements as well as increased throughput and efficiency of battery manufacturing methods and systems can be within one of these ranges.
[0072] In some examples, the battery manufacturing method may further include exposing the (applied) insulator material to an energy input, for example, to evaporate the liquid component of the insulator material. In particular, the energy input may be or include heat and / or radiation, particularly ultraviolet (UV) radiation. Additionally or alternatively, the exposing to an energy input may include exposing the insulator material to an environment (e.g., where temperature, pressure, and / or humidity are adapted to evaporate the liquid component) while the insulator component remains, for example, to evaporate the liquid component of the insulator material. Such method steps may be referred to as a curing and / or drying process as described above. During the curing and / or drying process, the content of the liquid component in the applied insulator material may be reduced by Y% by weight, where Y may be 30 to 99, or 50 to 99, or 75 to 99, or 90 to 99, as discussed above. As a result, an insulating coating may be obtained.
[0073] In some cases, after exposing the insulating material to the energy input, the thickness of the remaining insulating material (and / or insulating components) is between 0.1 μm and 40 μm, particularly between 1 μm and 20 μm, and more particularly between 2 μm and 10 μm. Such a thickness may be referred to as the dry thickness, as discussed above.
[0074] In some examples, the step of determining the thickness of the insulating material may be performed before X% of the liquid component of the insulating material has evaporated, based on the mass of the applied insulating material. X may be as described above. In particular, X may be 0.1 to 10, or 0.1 to 5, or 0.1 to 2. For each of these ranges, the lower limit for X may be 0.01, 0.05, 0.2, 0.5, or 1 instead of 0.1.
[0075] In some examples, applying the insulator material can be performed using an emitter positioned on the substrate. Adapting the applying of the insulator material as a function of the index wet thickness can include repositioning the emitter. The emitter can be as described above and can include any of the corresponding features described herein. For example, repositioning the emitter in at least one of the thickness direction, width direction, and process direction can be as described above.
[0076] In some examples, adapting the application of the insulator material as a function of the index wet thickness can include increasing and / or decreasing the application rate of the insulator material. The application rate can be controlled in a manner as described above. Adapting the application rate, particularly increasing and / or decreasing the application rate, can include any of the corresponding features described herein.
[0077] In some examples, after the step of applying the active material, the active material may form an edge portion on the substrate. The edge portion extends to the boundary and has a recessed upper surface on the opposite side of the substrate. After application, the active material may have a bulk portion having an upper surface substantially parallel to the upper surface of the substrate onto which the active material is applied. The active material may further have an edge portion formed by not completely covering (the upper surface of) the substrate, as described above. In this manner, the edge portion may be formed along (i.e., parallel to and near) the boundary, as described above. As mentioned, the edge portion may form a so-called sliding, in which the thickness of the active material decreases smoothly with a rounded upper surface rather than forming a sharp perpendicular surface relative to the substrate. The formation and shape of the edge portion of the active material may be due to the viscosity and / or flow properties of the active material. Additionally or alternatively, the formation and shape of the edge portion of the active material may be due to a separate application process.
[0078] In some cases, after applying the insulator material, the insulator material may cover at least a portion of the edge portion of the active material and extend beyond the edge portion onto the substrate. Thus, the insulator material may be applied, for example, to extend over at least a portion of the edge portion of the active material, the boundary, and a portion of the substrate at the boundary.
[0079] In some cases, the substrate, particularly the top surface of the substrate onto which the active material is applied, may be aligned in a plane perpendicular to the thickness direction. The active material may be applied such that boundaries are formed along the process direction perpendicular to the thickness direction, as described above.
[0080] In some cases, the insulating material can be applied on the boundary in a stripe shape, with the stripe shape being elongated along the process direction. The stripe shape can refer to a plan view parallel to the thickness direction (i.e., parallel to the upper surface of the substrate, parallel to the width direction and process direction). In particular, the stripe shape can be a shape extending in the process direction with a substantially constant width (width direction). In this way, the boundary can be covered in a uniform manner by the insulating coating.
[0081] In some examples, the characteristic measurement distance may be 0.1 mm to 10 mm, particularly 0.1 mm to 6 mm, and more particularly 0.5 mm to 3 mm. In additional examples, the characteristic measurement distance may be at least 0.1 mm and up to 2.5 mm, or up to 2 mm, or up to 1.8 mm, or up to 1.6 mm. The characteristic measurement distance may be determined in the manner described above. As mentioned, a location that is the characteristic measurement distance away from the boundary may be referred to as the characteristic measurement location. The thickness of the insulator material determined at the characteristic measurement location may be referred to as the indicative wet thickness. As mentioned, the characteristic measurement distance and characteristic measurement location may be determined once for a given insulator material.
[0082] In some instances, the property measurement locations may remain constant when different insulator materials are used, for example, by varying the content of components, particularly the content of insulator components, within the insulator material. Thus, the same property measurement locations may be used to determine the indicative wet thickness even when the content of components of the insulator material varies. Additionally, the same numerical and / or mathematical relationships as discussed above (e.g., by linear regression, by interpolation and / or extrapolation, etc.) may be used to estimate the dry thickness of the insulating coating.
[0083] Similarly, the characteristic measurement locations can remain constant when the composition of the insulating material, particularly the substances of the insulating components, is changed. Thus, the same characteristic measurement locations can be used to determine the indicative wet thickness when different materials are used as the insulating components. Also, the same numerical and / or mathematical relationships as discussed above (e.g., by linear regression, by interpolation and / or extrapolation, etc.) can be used to estimate the dry thickness of the insulating coating.
[0084] In some examples, the method steps of applying an active material, applying an insulator material, determining an index wet thickness, and adapting the applying insulator material can be performed in a continuous manner while the substrate is moved in a process direction. In this manner, the battery manufacturing method and system can be used in a production line. The throughput and efficiency of battery manufacturing can be increased in this manner.
[0085] The process direction and thickness direction may be as defined herein. In particular, the process direction, thickness direction, and width direction may be perpendicular to one another.
[0086] According to one aspect, a battery manufacturing system (i.e., a battery manufacturing system) is provided. As mentioned, the battery manufacturing system may be configured to manufacture batteries, particularly secondary batteries. The battery manufacturing system may include an active material application unit, an insulator material application unit, a measurement unit, and a control unit.
[0087] As noted above, the battery manufacturing systems and battery manufacturing methods disclosed herein may be combined. In particular, a battery manufacturing system may be configured to perform a battery manufacturing method as disclosed herein. Also, because the battery manufacturing system and the battery manufacturing method may be interdependent, a battery manufacturing system may be configured to perform any particular one or combination of features of the battery manufacturing method described herein.
[0088] The active material application unit may be configured to apply the active material. The active material application unit may include an emitter, as described above. The active material application unit may include multiple emitters, each configured to apply the same active material or at least two different active materials.
[0089] The insulator material application unit may be configured to apply the insulator material. The insulator material application unit may include an emitter as described above. The insulator material application unit may include a plurality of emitters, each configured to apply the insulator material. In particular, the insulator material application unit, or a portion thereof, may be movable (as described above), for example, to change the application position of the insulator material relative to the substrate or to the active material applied on the substrate. Additionally or alternatively, the insulator material application unit may be controllable (as described above), for example, to change the application speed of the insulator material. The process of changing the application position and / or application speed may correspond to adapting the step of applying the insulator material in the battery manufacturing method as described herein.
[0090] The measurement unit may be configured to determine an index wet thickness of the insulator material at the property measurement location. The measurement unit may be configured to perform the step of determining an index wet thickness as described herein for the battery manufacturing method. The index wet thickness may include any of the corresponding characteristics described herein.
[0091] In particular, the measurement unit can physically determine (i.e., measure) the index wet thickness. The measurement unit can include an optical measurement setup, in particular a reflectance spectrometer as described above. The reflectance spectrometer can use, for example, a light source having a spectrum in the (near) infrared range and / or the visible range, or in the wavelength range of 400 nm to 1100 nm. The reflectance spectrometer can illuminate the measurement area with, for example, a spot size of 2 mm, in particular a spot size of 1 mm to 1.5 mm. In one example, a portion of the light from the light source is reflected at the incident surface of the target material (i.e., the applied insulator material, the remaining applied material, and / or the active material), while another portion of the light is reflected at the interface between the target material and the substrate (also referred to herein). Thus, a phase shift between the different reflected portions of the light can be detected, from which the thickness, in particular the index wet thickness, can be derived.
[0092] The control unit may be configured to control the insulator material application unit as a function of the index wet thickness of the insulator material. The control unit may be configured to adapt the application of the insulator material as a function of the index wet thickness in the manner described above. The control unit may be provided as one physical unit. Additionally or alternatively, the control unit may be provided as a distributed system.
[0093] The control unit may include a processor for executing machine-readable instructions. The control unit may include a memory for (temporarily) storing instructions and data. In particular, steps, processes, parameters, and variables as disclosed herein may be provided as machine-readable instructions and data. The memory of the control unit may (temporarily) store at least a portion of such instructions and data. The processor of the control unit may be configured to process, execute, and / or generate such instructions and data.
[0094] The memory of the control unit may also be configured to store a specific relationship between the dry thickness and the indicative wet thickness of the insulating coating. In particular, the memory may be configured to store a numerical and / or mathematical relationship between the dry thickness and the indicative wet thickness of the insulating coating. The numerical and / or mathematical relationship may be as described above.
[0095] The control unit may be configured to receive the index wet thickness from the measurement unit. In certain examples, the control unit may be configured to generate a machine-readable data set including the index wet thickness as a function of time. For such purposes, the measurement unit and / or the control unit may provide a timestamp with each measurement of the index wet thickness. The control unit may be configured to execute instructions that store the index wet thickness in memory.
[0096] The control unit may be configured to adapt the application, particularly the application speed and / or application position, as a function of the index wet thickness in the manner described above. In particular, the control unit may be configured to maintain or change the application position of the insulator material as a function of the index wet thickness. Alternatively or additionally, the control unit may be configured to maintain, increase, or decrease the application speed of the insulator material. In this regard, a feedback loop may be used in the manner described above.
[0097] Additionally or alternatively, the control unit may be further configured to perform any of the method steps disclosed herein. The control unit may be further configured to implement any of the battery manufacturing method features disclosed herein.
[0098] According to additional aspects, a battery is provided. The battery may be manufactured by a battery manufacturing method as disclosed herein, which may include any of the corresponding features described herein. Additionally or alternatively, the battery may be manufactured by a battery manufacturing system as disclosed herein, which may include any of the corresponding features described herein. The battery may be or include a secondary battery. However, the claimed subject matter is not limited to secondary batteries, but may be or include a primary battery or any other type of energy storage unit. In particular examples, the battery is configured for use in a mobile device such as a smartphone or a mobile computer. In other particular examples, the battery may be configured to power an electric vehicle.
[0099] In some examples, the battery can include an insulating coating covering the substrate, the active material applied to the substrate, and the interface therebetween. The insulating coating can include any of the corresponding features described herein. In particular, the insulating coating can have a thickness of 0.1 μm to 40 μm, particularly 1 μm to 20 μm, and more particularly 2 μm to 10 μm.
[0100] Such batteries produced by the battery manufacturing methods and / or using the battery manufacturing systems disclosed herein may incorporate an insulating coating that is precisely formed at the interface between the substrate and the active material applied thereto. Therefore, battery safety may be increased. Also, the overall cost of manufacturing such batteries may be reduced because the energy, time, and material requirements may be reduced when producing batteries according to the battery manufacturing methods and / or using the battery manufacturing systems disclosed herein. [Effects of the Invention]
[0101] The battery manufacturing methods and systems disclosed herein enable the indicator wet thickness of an insulating material to be determined in real time. The claimed subject matter exploits the fact that there is a correlation between the thickness of the remaining insulating component of the insulating material and the indicator wet thickness of the insulating material. Thus, the thickness of the insulating component of the insulating material remaining on the substrate after evaporation of the liquid component of the insulating material can be estimated from the determined indicator wet thickness. In this manner, the battery manufacturing methods and systems disclosed herein enable real-time estimation of the thickness of a solid insulating coating on a substrate. This can also apply to the interface between the active material and the substrate, as well as the application of a solid insulating coating on an active material applied to a substrate.
[0102] The battery manufacturing method and system disclosed herein include a method for manufacturing a battery using an insulating material. The accompanying drawings illustrate some specific examples and are intended to aid in understanding the invention. In this specification and drawings, the same reference number or series of reference numbers may be used in different instances to indicate the same, similar, or similar elements. It should be noted that features shown in the drawings may not be to scale. In particular, some features may be illustrated in an enlarged or reduced size manner to emphasize the technical concepts and operating principles of the claimed subject matter, rather than to provide a layout or template for constructing a battery manufacturing system. [Brief explanation of the drawings]
[0103] [Figure 1] 1 shows a flowchart of a battery manufacturing method according to an example. [Figure 2] 1 shows a schematic diagram of a battery manufacturing system according to an example. [Figure 3] 1 shows a schematic plan view of a battery manufacturing process according to an example. [Figure 4] 1 shows a schematic plan view of a battery manufacturing system according to an example. [Figure 5] 1 illustrates a schematic cross-sectional view of a portion of a battery manufacturing system according to an example. [Figure 6] 1 illustrates a schematic exploded view of a battery manufacturing system according to an example. [Figure 7a] 1 shows a schematic side view of a measurement unit according to an example. [Figure 7b] 1 shows a schematic front view of a measurement unit according to an example. [Figure 8a] 1 shows a schematic plan view of a calibration process according to an example. [Figure 8b] 1 illustrates a schematic cross-sectional side view of a calibration process according to an example. [Figure 9] 1 illustrates a schematic cross-sectional view of a portion of a battery manufacturing system according to an example. DETAILED DESCRIPTION OF THE INVENTION
[0104] A method for manufacturing a battery, particularly a secondary battery, is provided. The method may include the following steps, which may be performed in the following order, but are not bound to that particular order:
[0105] applying an active material onto the substrate; applying an insulating material onto the substrate and / or onto the active material such that it extends over the interface between the active material and the substrate, the insulating material including an insulating component and a liquid component; determining an indicative wet thickness of the insulating material at a location on the substrate offset from the boundary by a characteristic measurement distance; Adapting the step of applying the insulator material as a function of the index wet thickness.
[0106] According to one aspect, a battery manufacturing system (i.e., a battery manufacturing system) is provided. As mentioned, the battery manufacturing system may be configured to manufacture batteries, particularly secondary batteries. The battery manufacturing system may include an active material application unit, an insulator material application unit, a measurement unit, and a control unit.
[0107] FIG. 1 shows a flowchart of a battery manufacturing method 10. The battery manufacturing method is also referred to herein as a method of manufacturing a battery, where the battery may be or include a secondary battery as mentioned. The battery manufacturing method 10 as shown in FIG. 1 may be used to manufacture a battery according to an independent product claim. Also, the battery manufacturing method 10 as shown in FIG. 1 may be performed by a battery manufacturing system described herein or examples thereof.
[0108] Battery manufacturing method 10 includes method steps 12, 14, 16, and 18, each represented by a block in FIG. 1 . Battery manufacturing method 10 includes, at block 12, applying an active material on a substrate. At block 14, method 10 includes applying an insulator material on the substrate, for example, to extend over an interface between the active material and the substrate, the insulator material including an insulator component and a liquid component. At block 16, battery manufacturing method 10 includes determining an index wet thickness of the insulator material at a location on the substrate offset from the interface by a characteristic measurement distance. At block 18, battery manufacturing method 10 includes adapting the applying of the insulator material as a function of the index wet thickness.
[0109] Thus, the battery manufacturing method 10 may be as described above. Also, the battery manufacturing method 10 as shown in FIG. 1 may additionally include any of the features of the battery manufacturing system as disclosed herein.
[0110] 2 schematically illustrates a battery manufacturing system 20 according to an example. The battery manufacturing system 20 includes an active material application unit 22, an insulator material application unit 24, a measurement unit 26, and a control unit 28. The battery manufacturing system 20 may include any of the corresponding features described herein. In particular, the battery manufacturing system 20 may be configured to perform the battery manufacturing method described herein, selectively including any one or a subset of the features of the battery manufacturing method described herein.
[0111] The active material application unit 22 may be configured to apply an active material onto a substrate. The active material application unit 22 may include any of the corresponding features described herein. In particular, the active material application unit 22 may be configured to implement any of the features related to application of an active material onto a substrate as disclosed herein. The active material may include any of the corresponding features described herein. In particular, the active material may be prepared to form an electrode, for example, a positive electrode of a secondary battery.
[0112] The insulator material application unit 24 may be configured to apply an insulator material onto the substrate and onto the active material applied on the substrate. The insulator material application unit 24 may include any of the corresponding features described herein. In particular, the insulator material application unit 24 may be configured to embody any of the features related to applying an insulator material onto a substrate as disclosed herein. The insulator material application unit 24 may be configured to apply an insulator material onto the substrate, onto the active material applied on the substrate, and onto the interface therebetween.
[0113] The insulator material may include any of the corresponding features described herein. In particular, the insulator material may include a liquid component and an insulator component. Generally, the insulator component may be as described above. In particular, the insulator component of the insulator material may be or include a polymer-based insulator component such as polyvinylidene fluoride (PVDF) and / or a ceramic-based insulator component such as alumina (Al2O3).
[0114] The measurement unit 26 may be configured to determine an indicative wet thickness of the insulator material applied to the substrate at a property measurement location. The measurement unit 26 may include any of the corresponding features described herein. The indicative wet thickness and property measurement location may be as described above.
[0115] The control unit 28 may be configured to control the insulator material application unit 24 as a function of the indicator wet thickness of the insulator material. The control unit 28 may include any of the corresponding features described herein. The application of the insulator material as a function of the indicator wet thickness may be performed as described above. In particular, the control unit 28 may be signal-coupled to the measurement unit 26 to receive the determined indicator wet thickness. The control unit 28 may additionally be signal-coupled to the insulator material application unit 24 to control the insulator material application unit 24 as a function of the indicator wet thickness, in particular by maintaining or varying the application position and / or application speed in the manner described above.
[0116] 3 shows a schematic plan view of a battery manufacturing process. The depiction shown in FIG. 3 may be an intermediate state during the execution of the battery manufacturing method disclosed herein and / or during the operation of the battery manufacturing system disclosed herein. Note that the depictions in the drawings are not to scale.
[0117] The substrate S is moved continuously or intermittently in the process direction P. The substrate may include any of the corresponding features described herein. In particular, the substrate may be or include aluminum metal to provide a current collector for the positive electrode of a secondary battery.
[0118] Active material A is applied onto substrate S at active material application position 22A. Active material A may include any of the corresponding features described herein. In particular, active material A may be an active material including, for example, lithium, for forming a positive electrode of a secondary battery. Active material A may include an insulator component and a liquid component, each of which may include any of the corresponding features described herein. As mentioned, the (main) surface of substrate S onto which active material A is applied may be referred to as the top surface of substrate S.
[0119] 3, the active material A is applied onto the substrate (upper surface of the substrate) to cover, for example, a partial width (partial area) of the substrate in a width direction W perpendicular to the process direction P. In other words, the active material A is applied, for example, so as not to extend across the entire width of the substrate S, leaving a portion of the substrate S uncovered. In FIG. 3, the right side portion of the substrate S is not covered with the active material A.
[0120] Thus, boundary B is formed along the edge of the applied active material A. In other words, the applied active material A extends to an edge in the width direction W, and such edge forms boundary B between the applied active material A and the substrate S. Boundary B may be provided as described above and may include any of the corresponding features described herein.
[0121] Insulator material N is applied onto substrate S (its upper surface) and onto boundary B at insulator material application position 24N downstream of active material application position 22A with respect to process direction P. Insulator material N is also applied onto a portion of active material A applied along boundary B. In other words, the applied insulator material N also extends onto the applied active material A. Insulator material N and its application may each include any of the corresponding features described herein.
[0122] The substrate S may be stopped in place during the application of the active material A and / or the insulating material N on the substrate S. Alternatively, the substrate S may be moved continuously in the process direction P, during which the application of the active material A and the insulating material N is also carried out in a continuous manner.
[0123] 3, width w1 indicates the dimension of the applied insulator material N (and thus the width w1 of the insulating coating) in the width direction W. For example, width w1 can be 1 mm to 20 mm, or 1.5 mm to 15 mm, or 1.8 mm to 10 mm, or 2 mm to 8 mm, or 2.5 mm to 7 mm, or more specifically, 3 mm to 6 mm.
[0124] 3, the width w2 indicates the dimension of the overlap region in the width direction W of the applied active material A and insulating material N (also referred to as an overlay when viewed from a plane perpendicular to the width direction W and the process direction P). For example, the width w2 may be 0.01 mm to 5 mm, or 0.02 to 4 mm, or 0.03 to 3 mm, or 0.04 to 2 mm, or more specifically, 0.05 to 1.5 mm.
[0125] 3, the width w3 indicates the dimension of the insulating material N that directly covers (i.e., has no active material applied therebetween) the substrate S. For example, the width w3 can be 0.5 mm to 20 mm, or 1.5 mm to 15 mm, or 1.8 mm to 10 mm, or 2 mm to 8 mm, or 2.2 mm to 7 mm, or more specifically, 2.5 mm to 6 mm.
[0126] 3, the thickness of the applied insulator material is determined at a characteristic measurement location CP, which is offset from boundary B by a characteristic measurement distance CD. Each of the characteristic measurement location CP and characteristic measurement distance CD may be determined as described above and may include any of the corresponding features described herein.
[0127] In particular, the thickness of the applied insulator material N at the characteristic measurement location CP may be referred to as the indicative wet thickness, as described above. From the determined indicative wet thickness, the resulting dry thickness of the insulating coating may be estimated in the manner described above. The indicative wet thickness may be provided as described above and may include any of the corresponding characteristics described herein.
[0128] FIG. 4 schematically illustrates a plan view of an example battery manufacturing system that may correspond to or be a part of the example illustrated in FIG. 2. The battery manufacturing system illustrated in FIG. 4 may include any of the features described herein for battery manufacturing systems. In particular, the battery manufacturing system of FIG. 4 may be configured to perform the battery manufacturing method described herein, selectively including any one or subset of the features of the battery manufacturing method described herein. Also, the battery manufacturing system of FIG. 4 may correspond to the battery manufacturing process illustrated in FIG. 3.
[0129] The battery manufacturing system of FIG. 4 includes an active material application unit 22 aligned at the above-described active material application position 22A. The battery manufacturing system of FIG. 4 also includes an insulator material application unit 24 aligned at the above-described insulator material application position 24N. Each of the active material application unit 22 and the insulator material application unit 24 may include any of the corresponding features described herein. In particular, the insulator material application unit 24 may be movable in the process direction (e.g., forward and backward, as described above) and / or widthwise (e.g., leftward and rightward from the orientation shown in FIG. 4). In this manner, the insulator application position may be varied as a function of the index wet thickness, as described above.
[0130] 4 further includes a measurement unit 26. The measurement unit 26 is aligned with the characteristic measurement position CP. The measurement unit 26 may include any of the corresponding features described herein. In particular, the measurement unit 26 may be adjustable in width, for example, for the calibration process as described above.
[0131] Figure 5 schematically illustrates a cross-sectional view of an example battery manufacturing system that may correspond to or be a portion of any of the examples illustrated in Figures 2 and 4. The battery manufacturing system illustrated in Figure 5 may include any of the features described herein for battery manufacturing systems. In particular, the battery manufacturing system of Figure 5 may be configured to perform the battery manufacturing method described herein, selectively including any one or a subset of the features of the battery manufacturing method described herein. Additionally, the battery manufacturing system of Figure 5 may correspond to the battery manufacturing process illustrated in Figure 3.
[0132] The battery manufacturing system of FIG. 5 includes a first coating unit 30, a first drying unit 32, a second coating unit 34, and a second drying unit 36. A substrate (not explicitly shown in FIG. 5) is supplied to the first coating unit 30. In the first coating unit 30, the active material and the insulator material are applied onto the substrate in that order in the manner described herein. The first coating unit 30 may include the above-described active material application unit, insulator material application unit, and measurement unit. The battery manufacturing system may include a control unit as described above for controlling the active material application unit, insulator material application unit, and measurement unit in the manner described above.
[0133] The substrate with the applied active material and the applied insulator material is then transported in process direction P through a first drying unit 32 and subjected to a curing and / or drying process as described above. In particular, the substrate with the applied active material and the applied insulator material may be subjected to an energy input in the first drying unit 32.
[0134] After passing through the first drying unit 32, the substrate may optionally be rotated (flipped) and fed to the second coating unit 34. In the second coating unit 34, the rear surface of the substrate may be coated with an insulating material different from the other active materials, in that order. The rear surface may be the surface of the substrate opposite the upper surface of the substrate. The other active materials may be the same as or different from the active materials described above, or may include the same. The other insulating material may be the same as or different from the insulating materials described above, or may include the same. The other active materials may be applied to the substrate (rear surface of the substrate) as described above and in a manner corresponding to the active materials. The other insulating material may be applied to the substrate (rear surface of the substrate) and the other applied active materials as described above and in a manner corresponding to the insulating materials.
[0135] The substrate, with both the top and rear surfaces coated, may then be transported through a second drying unit 36 where the other active materials and other insulator materials applied on the rear surface of the substrate are subjected to a curing and / or drying process as described above. In particular, a substrate having an insulator material different from the other active materials on its rear surface may be subjected to energy input in the manner described above.
[0136] In an alternative example of a battery manufacturing system not explicitly shown, the battery manufacturing system may include one coating unit, such as the first coating unit 30, and one drying unit, such as the drying unit 32.
[0137] FIG. 6 illustrates a schematic exploded view of a battery manufacturing system according to an example. In particular, the battery manufacturing system illustrated in FIG. 6 may correspond to or be a portion of any of the examples illustrated in FIGS. 2, 4, and 5. The battery manufacturing system illustrated in FIG. 6 may include any of the features described herein for battery manufacturing systems. In particular, the battery manufacturing system of FIG. 6 may be configured to perform the battery manufacturing method described herein, selectively including any one or a subset of the features of the battery manufacturing method described herein. Additionally, the battery manufacturing system of FIG. 6 may be embodied in one or both of the first coating unit 30 and the second coating unit 34 described above with reference to FIG. 5.
[0138] 6, the substrate S (which may have an applied active material A and an applied insulator material N) is moved in a process direction P using a set of conveyor rollers 38. As shown in FIG. 6, the measurement unit 26 is arranged immediately downstream of the insulator material application unit 24 with respect to the process direction P. Specifically, the measurement unit 26 is aligned with a characteristic measurement position CP in FIG. 6. The insulator material application unit 24 and the measurement unit 26 are also coupled to a control unit 28, for example, to enable signal transmission. Each of the insulator material application unit 24, the measurement unit 26, and the control unit 28 may include any of the corresponding features described herein.
[0139] 7a and 7b are schematic side and front views, respectively, of a measurement unit 26 according to an example. The measurement unit 26 shown in FIGS. 7a and 7b may be embodied in any of the battery manufacturing systems as disclosed herein, particularly the examples of the battery manufacturing systems described above with reference to FIGS. 2, 4, 5, and 6. The measurement unit shown in FIGS. 7a and 7b may also be used to perform (corresponding portions of) the battery manufacturing method disclosed herein. The measurement unit 26 shown in FIGS. 7a and 7b may include any of the corresponding features described herein.
[0140] The measurement unit 26 of Figures 7a and 7b includes a light projector 40, a height adjustment screw 42, a width position adjustment screw 44, and a fixing plate 46. The light projector 40 may include a light source (not shown) or may be coupled to it (via a waveguide or optical fiber). Optionally, the light projector 40 may include a collimator or lens system for focusing light from the light source onto a target plane. The measurement unit may function as a form of reflectance spectrometer as described above. Optionally, the measurement unit may further include an electrically driven shutter for the reflectance spectrometer.
[0141] The fixing plate 46 can be used to fix the measuring unit 26 in an immovable manner except for height and width adjustment via the respective screws 42, 44. In particular, the fixing plate 46 can fix the measuring unit 26 to an insulator material application unit of a battery manufacturing system. In this manner, the relative positions of the measuring unit 26 and the insulator material application unit can be fixed.
[0142] Height adjustment screw 42 can be manipulated to adjust the height, i.e., the position of light projector 40 in the thickness direction T. In particular, height adjustment screw 42 can be manipulated to adjust the distance between substrate S and light projector 40. In particular, height adjustment screw 42 can be used to focus light from light projector 40, in the manner described above, onto a suitable target plane, which can be at different height levels depending on the curvature of the applied active material and the applied insulator material.
[0143] The width adjustment screw 44 can be operated to adjust the position of the light projector 40 in the width direction W. Thus, the width adjustment screw can be used to adjust the application position of the insulator material relative to the boundary B as described above. In particular, the width adjustment screw 44 can be used for the calibration process described above.
[0144] 8a and 8b show a schematic plan view and a schematic cross-sectional side view, respectively, of a calibration process according to an example. The calibration process may be performed in the manner described above. The calibration process may include any of the corresponding features described herein.
[0145] As shown in Figures 8a and 8b, the thickness of the applied insulation material can be determined at different locations in the width direction W. In Figures 8a and 8b, the different locations are labeled with measurement points MP. For simplicity, only one of the measurement points MP is labeled with a reference number in Figures 8a and 8b.
[0146] The thickness measurements may be performed in a stop-and-go manner, in which the substrate S is intermittently moved in the process direction and stopped for measurements. Alternatively, the thickness measurements may be performed in a continuous manner by a series of measurements at each of the measurement locations MP along the width direction W, to obtain a thickness data set as a function of position in the width direction W. Thus, the depiction of the array of measurement locations MP in Figures 8a and 8b is intended to demonstrate that the thickness of the applied insulator material may be measured at any point within the applied area. Note that the thickness measurements at the measurement locations MP may be performed before at least X wt. % of the insulator material has evaporated, where X may be as described above.
[0147] As mentioned above, the characteristic measurement locations and distances, and thus the locations for determining the indicative wet thickness, may be derived from a calibration process in which the thickness of the applied insulating material is determined at different measurement points MP and tested for correlation with the resulting dry thickness of the insulating coating, from which a reproducible numerical and / or mathematical relationship between the indicative wet thickness and the dry thickness can be obtained, based on which the technical effects described above can be achieved.
[0148] FIG. 9 illustrates a schematic cross-sectional view of a portion of a battery manufacturing system according to an example. The battery manufacturing system illustrated in FIG. 9 may correspond to or be a portion of any of the examples illustrated in FIGS. 2, 4, and 5. The battery manufacturing system illustrated in FIG. 9 may include any of the features described herein for battery manufacturing systems. In particular, the battery manufacturing system of FIG. 9 may be configured to perform the battery manufacturing method described herein, selectively including any one or a subset of the features of the battery manufacturing method described herein. Additionally, the battery manufacturing system of FIG. 9 may be embodied in one or both of the first coating unit 30 and the second coating unit 34 described above with reference to FIG. 5.
[0149] 9 specifically illustrates the insulator material application unit 24 aligned at the insulator material application position 24N. The insulator material application unit 24 is additionally fluidly coupled to an insulator material supply 48. The insulator material application unit 24 may be movable in the width direction W as a function of the index wet thickness, thereby changing the application position 24N of the insulator material N on the substrate S. The insulator material application unit 24 may be repositioned by a control unit as described above.
[0150] The insulator material application unit 24 may additionally be movable in the thickness direction T. Changing the height of the insulator material application unit 24 may result in a different shape and / or a different spreading of the insulator material N on the substrate S and on the applied active material A. This may be used, for example, to adjust the application of the insulator material N by a control unit.
[0151] Also, the application speed of the insulator material N can be maintained, increased, or decreased by correspondingly operating the insulator material supply unit 48. The insulator material supply unit 48 can also be controlled by the control unit.
Claims
1. 1. A method of manufacturing a battery, comprising: applying an active material onto a substrate; applying an insulator material onto the substrate so as to extend over an interface between the active material and the substrate, the insulator material comprising an insulator component and a liquid component; measuring a wet thickness of the applied insulating material at a measurement location on the substrate offset by a measurement distance from the boundary before the applied insulating material dries; and adapting the step of applying the insulator material according to the wet thickness; the step of adapting the step of applying the insulating material according to the wet thickness includes a step of predicting a dry thickness of the insulating material from the wet thickness and a correlation between the wet thickness and a dry thickness of the insulating material in the step of applying the insulating material, and optimizing and / or controlling the application of the insulating material so that the predicted dry thickness is within a target range; the measurement distance is the distance between the boundary and the measurement position; The method, wherein the wet thickness is the thickness of the dielectric material applied to the substrate at the measurement location before the applied dielectric material dries.
2. The method according to claim 1, wherein the insulating material is configured so that the ratio of the content of the liquid component to the content of the insulating component is 1 to 100 when the insulating material is applied.
3. The method according to claim 1 or 2, wherein the thickness of the insulating material applied on the substrate is between 10 μm and 1000 μm.
4. 3. The method of claim 1 or 2, further comprising exposing the insulator material to energy to vaporize the liquid component.
5. 5. The method of claim 4, wherein the thickness of the insulating material remaining after the step of exposing the insulating material to energy is between 0.1 μm and 40 μm.
6. 3. The method of claim 1, wherein the step of determining the wet thickness of the insulating material occurs before X % of the liquid component of the insulating material has evaporated, based on the weight of the applied insulating material, where X is between 0.1 and 10.
7. applying the insulator material using an emitter positioned above the substrate; The method of claim 1 or 2, wherein adapting the applying of the insulator material depending on the wet thickness comprises repositioning the emitter.
8. 3. The method of claim 1 or 2, wherein adapting the step of applying the insulator material depending on the wet thickness comprises increasing and / or decreasing the application speed of the insulator material.
9. after the step of applying the active material, the active material forms an edge portion on the substrate, the edge portion extending to the boundary and having a recessed upper surface opposite the substrate; 3. The method of claim 1, wherein after the step of applying the insulator material, the insulator material at least partially covers the edge portion of the active material and extends beyond the edge portion onto the substrate.
10. The substrates are arranged in a plane perpendicular to the thickness direction, the active material is applied so that the boundary is formed along a process direction perpendicular to the thickness direction; The method of claim 1 or 2, wherein the insulator material is applied in stripes on the boundary, the stripes being elongated along the process direction.
11. The method according to claim 1 or 2, wherein the measurement distance is between 0.1 mm and 10 mm.
12. 3. The method of claim 1 or 2, wherein the steps of applying the active material, applying the insulator material, measuring the wet thickness, and adapting the applying the insulator material are performed in a continuous manner while the substrate is moved in a process direction perpendicular to the thickness direction.
13. 1. A battery manufacturing system, comprising: an active material application unit configured to apply an active material onto a substrate; an insulating material application unit configured to apply an insulating material onto the substrate and onto the active material applied onto the substrate; a measurement unit configured to measure a wet thickness of the insulating material applied to the substrate at a measurement location on the substrate offset by a measurement distance from an interface between the active material and the substrate before the applied insulating material dries; a control unit configured to control the insulating material application unit in response to a wet thickness of the insulating material; the control unit is further configured to predict a dry thickness of the insulating material from the wet thickness and a correlation between the wet thickness and a dry thickness of the insulating material, and to optimize and / or control application of the insulating material so that the predicted dry thickness is within a target range; the measurement distance is the distance between the boundary and the measurement position; The wet thickness is the thickness of the dielectric material applied to the substrate at the measurement location before the applied dielectric material dries.
14. 14. A manufacturing system according to claim 13, configured to carry out the method of claim 1 or 2.
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