Method and system for drying battery components

The battery manufacturing system addresses the challenge of controlling humidity and temperature during the drying process to enhance battery component quality by using a desiccant-controlled drying process, reducing defects and improving electrode structure.

JP7754954B2Active Publication Date: 2025-10-15LG ENERGY SOLUTION LTD
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Patent Information

Application Number
JP2023576208
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-05-19
Filing Date
2023-03-09
Publication Date
2025-10-15
Estimated Expiration
2043-03-09

AI Technical Summary

Technical Problem

The challenge in battery manufacturing is to appropriately adjust environmental variables such as humidity and temperature during the drying process to prevent defects like additive migration or cracking, while improving the quality of battery components.

Method used

A battery manufacturing system and method that includes a drying unit, mixing unit, and flow generator to control humidity and temperature of a desiccant, which is used to dry battery components, ensuring precise control of the drying process.

Benefits of technology

This approach reduces defects in battery components by effectively removing liquid components, enhancing the structural quality of electrodes, and improving the overall quality of battery products.

✦ Generated by Eureka AI based on patent content.

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Abstract

The battery manufacturing method includes providing battery components to a drying unit, providing a desiccant to a mixing unit, controlling the humidity and / or temperature of the desiccant by the mixing unit, and supplying the desiccant from the mixing unit to the drying unit.
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Description

[Technical Field]

[0001] The present invention relates to a battery manufacturing method and a battery manufacturing system. In particular, the present invention relates to a battery component drying process that is part of the battery manufacturing method and system. The battery may be or may include a secondary battery. [Background technology]

[0002] During the battery manufacturing process, it may be necessary or advantageous to dry certain semi-fabricated battery components, which may include applying a desiccant along the surface of the battery component so that the desiccant carries away moisture. Summary of the Invention [Problem to be solved by the invention]

[0003] From this perspective, a technical challenge may be to appropriately adjust the desiccant used to dry battery components, i.e., to control one or more environmental variables such as humidity and / or temperature. Another technical challenge may be to prevent defects such as additive migration or cracking in battery products to improve battery product quality. Another technical challenge may be to improve and optimize battery manufacturing methods and systems, particularly in terms of drying battery components. [Means for solving the problem]

[0004] At least one of the above technical problems is solved by the subject matter of the independent claims. Specific embodiments are provided by the features of the dependent claims.

[0005] A battery manufacturing method may be provided that may include providing battery components to a drying unit, providing a desiccant to a mixing unit, controlling the humidity and / or temperature of the desiccant by the mixing unit, and supplying the desiccant from the mixing unit to the drying unit.

[0006] A battery manufacturing system may additionally be provided. The battery manufacturing system may include a drying unit, a mixing unit, and a flow generator. The drying unit may be configured to receive the battery components. The mixing unit may be configured to condition the desiccant. The flow generator may be configured to move the desiccant from the mixing unit to the drying unit to dry the battery components.

[0007] The battery manufacturing method disclosed herein may be performed using the battery manufacturing system. The battery manufacturing system according to the present invention may be configured to perform the battery manufacturing method according to the present invention. Hereinafter, for simplicity of explanation, the battery manufacturing method and the battery manufacturing system will be described in combination. However, the battery manufacturing method and the battery manufacturing system are generally independent of each other. Implementing the battery manufacturing method using the battery manufacturing system may be an example. Also, a battery manufacturing system used to perform the battery manufacturing method may be exemplified. Features of the battery manufacturing method and features of the battery manufacturing system are not mutually restrictive.

[0008] Unless otherwise specified or technically inappropriate, a battery may generally include or refer to a primary battery, a secondary battery, or more generally, an electrochemical battery for energy storage. In particular, the term "battery" as used herein may refer to a secondary battery, i.e., a rechargeable battery. For example, a battery may be composed of one or more electrode layers and one or more separator layers stacked in a specific manner. The battery may be a coin-type, cylindrical, prismatic, or pouch-type battery. In particular, the battery may be configured to power an electric vehicle. Hereinafter, references to "a" battery will be made without limiting the subject matter to the manufacture of a specific battery.

[0009] Battery manufacturing may include drying of battery components. As used herein, a battery component may refer to any semi-processed battery component that may be used to manufacture a battery product. In a specific example, a battery component may refer to an electrode substrate and an active material disposed thereon. For example, the active material may be vapor-deposited and / or sprayed onto the electrode substrate. The electrode substrate may be a metal foil including a metallic material such as copper, nickel, or aluminum.

[0010] The active material of a battery can be provided as a viscous mixture that can be called a "slurry." The slurry containing the active material can be disposed on an electrode substrate to form a battery component. The battery component can be dried and optionally activated to obtain an electrode for a battery, particularly a secondary battery.

[0011] The slurry may contain a binder mixed with a solid active material. The binder may be a polymeric binder. Examples of active materials include 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 of the electrode may also include graphite, lithium, or silicon. The slurry may additionally contain solid components, particularly solid conductive particles such as carbon black or carbon nanotubes. The slurry may additionally contain a dispersant. The (polymeric) binder may include polyvinylidene fluoride (PVDF), polymethyl acrylate (PMMA), carboxymethyl cellulose (CMC), polyacrylate, xanthan gum, polyethylene glycol, or styrene butadiene. The slurry may further contain a liquid component. The liquid component may include water or an organic solvent such as tetrahydrofuran (THF) or N-methyl-2-pyrrolidone (NMP). A drying step may be performed to remove the liquid component from the battery components.

[0012] Therefore, a slurry can refer to a viscous mixture containing an active material. Also, a battery component can refer to a semi-finished product including an electrode substrate and the slurry disposed thereon. For simplicity, the terms active material, slurry, and battery component can be used interchangeably hereinafter unless otherwise specified or technically inappropriate.

[0013] The battery manufacturing method may include providing battery components to a drying unit. Providing the battery components may include preparing and arranging the battery components in the drying unit. Arranging may include, for example, moving or transporting the battery components to the drying unit.

[0014] Accordingly, the battery manufacturing system may include a drying unit, particularly the drying unit described above. The drying unit as disclosed herein may be configured to accommodate battery components. The drying unit may refer to a space in which the battery components are placed and dried. In particular, the drying unit may provide a space in which a desiccant is sprayed toward the battery components for drying. The drying may be performed using a desiccant, which may be conditioned and supplied as specified below. The drying unit may be configured and designed accordingly and may additionally include means for allowing the desiccant to flow along the battery components. The drying unit may include any one of the corresponding features described below, particularly in relation to the drawings.

[0015] The drying unit may include one or more heating means, which may include at least one of an oven, a hot air blower, a heat radiator, a heating plate, a heating coil, or other heating devices, or any combination of the foregoing. In particular, the battery manufacturing system may include multiple blowers and / or nozzles for blowing desiccant toward the battery components in the drying unit. The multiple blowers and / or nozzles may be configured to blow desiccant toward the battery components in the drying unit from multiple directions.

[0016] While the battery components are being dried, they can be moved through the drying unit. For example, the battery components can be moved in a stop-and-go process or continuously moved. The battery components can be moved or transported by, for example, a motorized stage, a conveyor unit, and / or a roll-to-roll process. Accordingly, the battery manufacturing system can include a transport device for transporting the battery components through the drying unit. The transport device can be configured to transport the battery components in the manner described above.

[0017] The battery manufacturing method may include providing a desiccant to a mixing unit. Correspondingly, the battery manufacturing system may include a mixing unit configured to condition the desiccant.

[0018] As disclosed herein, a desiccant can refer to a fluid, i.e., a gas that may contain a liquid, supplied to the drying unit and / or mixing unit. The desiccant can be or contain a fluid present in the mixing unit before and / or during the battery manufacturing process. Alternatively or additionally, the desiccant can be or contain a fluid received by the mixing unit before and / or during the battery manufacturing process. The desiccant can be used to transport (remove) vapor from the active material in the drying unit. Hereinafter, the term "vapor" is used in a simplified manner to collectively refer to vaporized liquid in a gaseous state and, if applicable, liquid droplets transported by the desiccant, unless otherwise specified or technically inappropriate. In particular, vapor can include the vapor phase of liquid components evaporating from battery components.

[0019] The desiccant may comprise a gas, such as air and / or any process gas (e.g., an inert gas or gaseous nitrogen of any purity, such as N2.0, N3.0, N4.0, N5.0, N6.0, N7.0, etc.). The air and / or process gas may be referred to as the carrier fluid of the desiccant. The desiccant may have a humidity greater than zero, i.e., may contain some water vapor. The humidity may originate from evaporated liquid (i.e., a gaseous state that can be referred to as vapor) and / or droplets (i.e., a liquid state mixed with the desiccant carrier gas, a liquid state that can be referred to as vapor). As noted above, such droplets are included herein as water vapor for simplicity, unless technically inappropriate.

[0020] In this specification, the humidity of the desiccant can be controlled to be between 5 g / kg and 90 g / kg, particularly between 10 g / kg and 80 g / kg, and more particularly between 20 g / kg and 60 g / kg, in terms of absolute humidity, where the unit g / kg can represent water vapor per mass of dry air. Absolute humidity can be measured using a conventional hygrometer, such as a capacitive humidity sensor, a resistive hygrometer, a thermal hygrometer, a gravimetric hygrometer, or an optical hygrometer. Absolute humidity can also be determined by first measuring the relative humidity value and then calculating the absolute humidity from the relative value according to the hygrometer's instructions.

[0021] Additionally or alternatively, the temperature of the desiccant may be controlled to be between 25° C. and 400° C., particularly between 50° C. and 300° C., or between 60° C. and 250° C., particularly between 80° C. and 200° C. As described herein, the temperature of the desiccant in the drying unit may be higher than the temperature in or at the mixing unit, resulting in a temperature difference of 1° C. to 200° C., or 5° C. to 100° C., or particularly 20° C. to 80° C.

[0022] The mixing unit may be configured (functionally and / or operably) to condition the desiccant. As used herein, the term conditioning may refer to providing and / or maintaining a specific environment in terms of environmental variables, which may include temperature and / or humidity. The mixing unit may be functionally configured to control the humidity and / or temperature of the desiccant. Here, the desiccant conditioned by the mixing unit may also be referred to as a conditioned drying unit. The mixing unit may include any one of the features, as described below, particularly in connection with the drawings.

[0023] The humidity and / or temperature of the desiccant may be controlled by and / or within the mixing unit. Thus, the mixing unit may provide a space in which the desiccant is conditioned. The mixing unit may provide a space for containing the desiccant and may operate to control the humidity of the desiccant. To this end, the mixing unit may include a chamber, which may also be referred to as a mixing chamber, in which the desiccant is conditioned by the mixing unit, particularly by controlling the humidity and / or temperature of the desiccant. The mixing chamber may be fluidly connected to the drying unit in a sealed manner. In particular, the mixing chamber may be fluidly connected to the drying chamber of the drying unit (as described above) in a sealed manner. The chamber may be configured to provide and maintain a specific environment in terms of environmental variables, including temperature and / or humidity. When a port system (described below) and a humidifier are present, the port system and the humidifier may be fluidly connected to the mixing chamber of the mixing unit. The mixing chamber may include any one of the features, as described below, particularly in conjunction with the drawings.

[0024] More generally, the mixing unit can be positioned in any suitable location within the battery manufacturing system to provide a space in which the desiccant is conditioned. In particular, the mixing unit can be configured to condition the desiccant in a drying conduit (described below) fluidly connected to the drying unit. In this manner, the mixing unit can be operated to control the humidity and / or temperature of the desiccant within the drying conduit. For example, the drying conduit can include a valve or damper so that an external gas can be admitted and mixed with the desiccant in a controlled manner to condition the desiccant. In these examples, the mixing chamber, as described above, can be optional and can be present or omitted.

[0025] The battery manufacturing method may include controlling the humidity and / or temperature of the desiccant by the mixing unit. Controlling may generally refer to changing an environmental variable within a target range and / or maintaining the environmental variable within or near the target range. The environmental variable may include the temperature and / or humidity of the desiccant. Alternatively or additionally, controlling may refer to changing and / or maintaining one or more variables that can affect the environmental variable. As noted above, controlling the humidity and / or temperature of the desiccant may fall under the same category of conditioning.

[0026] Humidity can generally be expressed as the amount of water vapor in a fluid, especially in a desiccant. Humidity is expressed as the mass per unit volume (g / m) of the carrier gas. 3 Alternatively or additionally, humidity may be determined as absolute humidity in terms of mass (g / kg) of water vapor per unit mass of the conveying gas (e.g., desiccant). Alternatively or additionally, humidity may be determined as relative humidity, defined as the ratio (expressed in %) of the actual water vapor mass of the conveying gas (e.g., desiccant) to the maximum possible mass. Alternatively or additionally, humidity may be determined as specific humidity in terms of mass (g / kg) of water vapor per unit mass of the conveying gas. Alternatively or additionally, humidity may be determined by weight ratio in terms of mass (g / kg) of water vapor per unit mass of dry gas (conveying gas without water vapor).

[0027] Humidity generally varies with temperature. For example, the ability of a desiccant, such as air, to carry water vapor may increase as temperature increases. However, numerical humidity values ​​may not be suitable for practicing the present invention. Instead, the present invention relates to a drying process that is part of the battery manufacturing process, in which the liquid components of the battery are evaporated and carried away by the desiccant. In particular, due to the material properties of the slurry as described above, the relative humidity near the slurry may be greater than 100°C at any processing temperature, particularly 25°C, or any temperature between 10°C and 100°C, and atmospheric pressure (1.013 x 10 5The humidity may be 80% or more, 90% or more, 95% or more, or any other value between 80% and 100% (at room temperature, RH). The present invention can be practiced as long as the desiccant has a humidity and temperature suitable for removing evaporated liquid components from the battery components.

[0028] Humidity generally refers to water vapor contained in the carrier gas. However, as described above, in addition to water vapor, one or more vaporized liquid components of the battery components may escape from the battery components undergoing the drying process. Therefore, in addition to water vapor, the desiccant may also transport an amount of liquid vaporized from the battery components in the drying unit. Such liquid components of the battery components may include, for example, vaporized organic solvents of the battery components, such as THF or NMP.

[0029] The mixing unit may be configured to increase and / or decrease the humidity of the desiccant to a target humidity range. The mixing unit may also be configured to maintain the humidity of the desiccant within the target humidity range. In particular, the mixing unit may be configured to control a variable that affects the humidity of the desiccant, for example, by increasing, decreasing, and / or maintaining the variable. The mixing unit may be configured to control the variable via a humidity control loop, as described in more detail below.

[0030] Similarly, the mixing unit may be configured to increase and / or decrease the temperature of the desiccant to a target temperature range. The mixing unit may also be configured to maintain the humidity of the desiccant within a target temperature range. In particular, the mixing unit may be configured to control a variable that affects the temperature of the desiccant, for example, by increasing, decreasing, and / or maintaining the temperature. The mixing unit may be configured to control the variable via a temperature control loop, as described in more detail below. In some examples, the humidity and the temperature of the desiccant may be controlled by the same variable.

[0031] The mixing unit may be configured to control one or more variables to condition the desiccant, particularly to adjust the humidity and / or temperature of the desiccant. The one or more variables may be or include, for example, an inflow of an external gas. The external gas may be, for example, air or a process gas as described above. Additionally or alternatively, a valve state controlling the inflow of the external gas may be considered as a variable. The one or more variables may be or include, for example, an inflow of water vapor added to the desiccant using a humidifier, as described above, to increase the humidity of the desiccant. The mixing unit may be configured to control the inflow of water vapor via a valve fluidly connected between the humidifier and the mixing unit. Additionally or alternatively, the one or more variables may be or include an operating state of the humidifier to generate water vapor. For example, the one or more variables may be the ultrasonic frequency of an ultrasonic humidifier.

[0032] Furthermore, the one or more variables may be or include an operating condition such as the heating capacity of a heater, or the cooling capacity of a cooling means.

[0033] The target humidity range may be specific to each battery component and may vary depending on the battery manufacturing method and system. In particular, the target humidity range may be determined by the slurry material, thickness, and temperature, the vapor pressure of the liquid components, and / or the binder material. In specific examples, the target humidity range may be in the range of 1 g / kg to 100 g / kg, 5 g / kg to 80 g / kg, or 10 g / kg to 60 g / kg.

[0034] The target temperature range may vary depending on the battery component and the battery manufacturing method and system. In particular, the target temperature range may be determined by the slurry material, thickness, and temperature, the vapor pressure of the liquid components, and / or the binder material. In specific examples, the target temperature range may be in the range of 5°C to 400°C, 10°C to 300°C, or 20°C to 200°C.

[0035] The battery manufacturing method may include supplying a desiccant from a mixing unit to a drying unit. Accordingly, the battery manufacturing system may include a flow generator configured to move the desiccant from the mixing unit to the drying unit to dry the battery components. Thus, the desiccant may be supplied from the mixing unit to the drying unit by the flow generator. Supplying may cause the desiccant to flow from the mixing unit to the drying unit. Supplying may also refer to moving the desiccant.

[0036] The flow generator may be configured to generate a pressure gradient to induce the flow of the desiccant. The flow generator may be fluidly coupled to the mixing unit and the drying unit. The battery manufacturing system may include conduits, channels, tubes, airlocks, etc. (commonly referred to herein as conduits for brevity) to provide fluid communication between the mixing unit, the drying unit, and the flow generator, and such conduits provide fluid communication between the mixing unit, the drying unit, and the flow generator. In particular, the battery manufacturing system may establish a closed cycle of the desiccant fluidly coupled to any one of the mixing unit, the drying unit, and the flow generator. The flow generator may include one or more ventilators, impellers, fans, blowers, pumps, etc., or any combination thereof.

[0037] The battery manufacturing method and system (and / or flow generator) disclosed herein may be used to 4 m 3 / h~1·10 5 m 3 / h, 2·10 4 m 3 / h~8·10 4 m 3 / h, or especially 3·10 4 m 3 / h~6·10 4 m 3 / h, which may vary depending on the desiccant flow cross-sectional area, desiccant material, and / or flow generator operating power of the desiccant in other areas of the battery manufacturing system.

[0038] In the battery manufacturing methods and systems disclosed herein, the mixing unit and drying unit, if applicable, may be fluidly connected to each other in a sealed manner to prevent the passage of fluids other than the desiccant and external gases introduced via the port systems described herein.

[0039] A desiccant may be used to dry battery components in a drying unit. As described above, the desiccant may be sprayed onto a battery pad in a drying device to dry it. The drying process of battery components may affect the quality of battery products. In particular, it may be advantageous to remove such liquid components from the active material through the drying process. The drying process of active material may improve the structural quality of the electrode and thereby improve the quality of the battery product. In particular, the drying process may affect the morphology of the resulting active material in the electrode, which may affect the performance of the electrode. For example, the drying process may increase or decrease the homogeneity of the active material, thereby affecting the performance of the battery electrode. The drying process may also affect the binder distribution or the occurrence of cracks in the active material. In consideration of these points, appropriately conditioning the desiccant used in the drying process of battery components may be advantageous for improving the quality of the battery product.

[0040] Battery components, particularly slurries, can have high humidity due to liquid components. However, if such battery components are dried using a desiccant with too low humidity, the battery or slurry may dry out too quickly, increasing the risk of cracks occurring in the battery components. In consideration of this, the battery manufacturing method and system disclosed herein enable precise control of the drying process of battery components. This reduces the occurrence of defects in battery components, such as cracks in the electrode active material of battery products, and improves the quality of battery products.

[0041] The battery manufacturing method can include introducing water vapor directly into the mixing unit. This process can be referred to as pre-humidifying the desiccant. The pre-humidified desiccant can be supplied from the mixing unit to the drying unit and carried by the desiccant. Pre-humidifying the desiccant by introducing water vapor directly into the mixing unit can be advantageous, especially when starting (or restarting after an interruption) operation of the battery manufacturing method and / or battery manufacturing system, because the desiccant present in the mixing unit or drying unit can be too dry for the battery components.

[0042] Accordingly, the battery manufacturing system may include the humidifier or pre-humidifier described above fluidly coupled to the mixing unit. The humidifier may be configured to introduce water vapor directly into the mixing unit, a process commonly referred to as humidifying the desiccant. The humidifier or pre-humidifier may be configured to generate water vapor, which may be carried by a carrier gas or by the desiccant present. The water vapor from the humidifier or pre-humidifier may be introduced directly into the mixing unit by a pressure gradient and / or diffusion.

[0043] The battery manufacturing method may include redirecting the desiccant from the drying unit to the mixing unit to establish desiccant circulation. That is, the desiccant may be moved in a cycle (or loop) that includes or passes through the mixing unit and the drying unit. In particular, the battery manufacturing system may include a drying conduit through which the desiccant flows from the mixing unit to the drying unit and a return conduit through which the desiccant flows from the drying unit back to the mixing unit. The drying conduit and the return conduit may be fluidly separated from each other in a direct or indirect manner. Here, indirect fluid connection may indicate that at least one other element, such as a mixing unit, is fluidly connected between the drying conduit and the return conduit. In particular, the drying conduit and the return conduit may not be directly connected to each other in an indirect manner such that the desiccant does not flow directly from the drying conduit to the return conduit without passing through at least one other element, such as at least the mixing unit.

[0044] The battery manufacturing system can be configured to control (e.g., activate, stop, increase, or decrease) the drying flow via a valve. For example, the system (or drying conduit) can include a valve (or a valve system including multiple valves), particularly a damper, to activate, stop, increase, or decrease the drying flow of desiccant from the mixing unit to the drying unit. For example, a valve or damper can be installed in the drying conduit and / or between the drying conduit and the drying unit to activate, stop, increase, and / or decrease the drying flow.

[0045] Additionally or alternatively, the battery manufacturing method may include controlling (e.g., activating, stopping, increasing, or decreasing) the return flow. A corresponding battery manufacturing system may be configured to control (e.g., activate, stop, increase, or decrease) the return flow, particularly via one or more valves. For example, the battery manufacturing method may include activating, stopping, increasing, and / or decreasing the return flow rate of the desiccant from the drying unit to the mixing unit using a valve (or multiple valves), particularly including a damper. A corresponding battery manufacturing system (or return conduit) may include a valve (or valve system), particularly a damper, for activating, stopping, increasing, or decreasing the return flow rate of the desiccant from the drying unit to the mixing unit. For example, a valve or damper may be installed in the return conduit and / or between the return conduit and the mixing unit to activate, stop, increase, and / or decrease the return flow. A valve or valve system controlling the return flow may also be referred to as a return port, as described below.

[0046] The battery manufacturing method may further include controlling a mixing ratio of the external gas and the return flow of desiccant. The battery manufacturing system may be configured to control the mixing ratio of the external gas and the return flow of desiccant. The mixing ratio may be used as a parameter or variable for conditioning the desiccant, i.e., as a variable for controlling the humidity and / or temperature of the desiccant. The mixing ratio may be controlled within and / or by the mixing unit. The mixing ratio may be controlled by controlling the return flow rate of the desiccant in the manner described above and / or by controlling the inflow of the external gas as described herein. In particular, some or all of the return flow of the desiccant and the inflow of the external gas may be controlled using respective valves (or respective valve systems including multiple valves). Control of the mixing ratio may be as described below.

[0047] The flow generator may be configured to generate either a flow rate of desiccant from the drying unit to the mixing unit (also referred to herein as a return flow rate) and a flow rate of desiccant from the mixing unit to the drying unit (also referred to herein as a drying flow rate).

[0048] In this regard, the drying unit may include a drying chamber. Alternatively or additionally, the mixing unit may include a mixing chamber. The mixing chamber may be fluidly connected to the drying chamber, particularly via a drying conduit and a return conduit, as described above. The mixing chamber and the drying chamber may be fluidly connected to each other, particularly connected to each other in a sealed manner, so that the desiccant can be transferred in a cycle (or loop). Accordingly, the flow generator may be configured to transfer the desiccant from the drying unit to the mixing unit in the desiccant cycle. The flow generator may be configured to set up a circulation of the desiccant through and between the drying chamber and the mixing chamber. Accordingly, the energy and cost efficiency of battery manufacturing methods and systems may be improved.

[0049] The battery manufacturing system may also include a heat exchanger configured to transfer heat between the desiccant flowing from the mixing unit to the drying unit and the desiccant flowing from the drying unit to the mixing unit. That is, the heat exchanger may be configured to transfer heat between the drying conduit and the return conduit. The heat exchanger may provide thermal coupling between the drying conduit and the return conduit. In this manner, the heat exchanger may be considered a heater configured to heat the desiccant flowing from the mixing unit to the drying unit.

[0050] The battery manufacturing method can include thermally coupling a desiccant flowing from the mixing unit to the drying unit (i.e., a dry stream) with a desiccant flowing from the drying unit to the mixing unit (i.e., a return stream). As described above, the dry stream and the return stream, or the drying conduit and the return conduit, can be fluidly separated from each other, for example, via the dry conduit and the return conduit.

[0051] In this manner, the temperature of the desiccant moving from the drying chamber to the mixing chamber (i.e., the return stream) can be used, for example, to preheat the desiccant moving from the mixing chamber to the drying chamber (i.e., the drying stream). Thus, heat formed in the desiccant return stream can be at least partially transferred to the drying stream. In this manner, the energy efficiency of battery manufacturing methods and systems can be improved.

[0052] The humidity and / or temperature of the desiccant may be controlled by adding an external gas to the desiccant in the mixing unit. External gas may refer to gas outside the battery manufacturing system or outside the mixing unit, drying unit, flow generator, and conduits fluidly connecting them. In particular, the external gas may be or include ambient air. The external gas or ambient air may be at atmospheric pressure (1.013×10 5 The external gas or ambient air may have a humidity and / or temperature defined by the local weather.

[0053] In certain instances, the mixing unit may be located outside the building so that ambient air can be easily added to the desiccant. The drying unit may be outside or inside the building.

[0054] The external gas may have a humidity that is different from the humidity of the desiccant. Adding external gas to the desiccant may increase or decrease the humidity of the desiccant. For example, if the humidity of the desiccant is too high above the target humidification range, external gas may be added to the desiccant to decrease the humidity of the desiccant. Similarly, if the humidity of the desiccant is too low below the target humidification range, external gas may be added to the desiccant to increase the humidity of the desiccant.

[0055] Additionally or alternatively, the external gas may have a temperature different from the temperature of the desiccant. Adding the external gas to the desiccant may increase or decrease the temperature of the desiccant. For example, if the temperature of the desiccant is too far above a target temperature range, external gas may be added to the desiccant to decrease the temperature of the desiccant. Similarly, if the temperature of the desiccant is too low below a target temperature range, external gas may be added to the desiccant to increase the temperature of the desiccant.

[0056] Also, the inflow of external gas into the mixing unit can be controlled. For example, the inflow of external gas can be controlled via a humidity control loop to control or regulate the humidity of the desiccant, more specifically, via a humidity control loop to control or regulate the humidity of the desiccant in a desiccant cycle or circulation loop. The inflow of external gas can be controlled by setting a valve state, for example, closed, open, or partially open (which can be changed incrementally or continuously). Additionally or alternatively, the inflow of external gas can be controlled by controlling the power of the flow generator.

[0057] Additionally or alternatively, the inflow of external gas may be controlled via a temperature control loop to control or regulate the temperature of the desiccant, and more specifically, to control the temperature of the desiccant in the desiccant cycle. Either the humidity control loop or the temperature control loop may include configurations and / or features as described below.

[0058] The desiccant return flow and / or the external gas inflow may be controlled via a humidity control loop and / or a temperature control loop to control the mixture ratio of the desiccant (from the return flow) and the external gas. For example, the mixture ratio of the desiccant (from the return flow) and the external gas may be referenced to or determined by the mass flow rate of the external gas inflow relative to the mass flow rate of the desiccant in the return flow, or vice versa. Additionally or alternatively, the mixture ratio may be determined by the operating state (i.e., flow cross-section) of the valve controlling the desiccant return flow in relation to the operating state (i.e., flow cross-section) of the valve controlling the external gas inflow.

[0059] By controlling the inflow of external gas, the humidity and / or temperature of the desiccant can be controlled in the mixing unit. By adding external gas and supplying the conditioned desiccant to the drying unit, the drying process of the battery components can be controlled in the drying unit, thereby improving the quality of the battery product.

[0060] A corresponding battery manufacturing system may include a port system configured to control the inflow of an external gas added to the desiccant, particularly to condition the desiccant. More specifically, the port system may be actuated by a mixing unit to condition the desiccant. The port system may include openings (and / or feedthroughs) and valves for activating, deactivating, and / or controlling the inflow of the external gas added to the desiccant.

[0061] The port system may include an opening, a feedthrough, and / or a conduit that allows external gas to flow into the mixing unit. The port system may include an inlet port for drawing in the external gas. The inlet port may include a valve, particularly a damper, operable in a selected one of different valve states. The different valve states may include a closed state, an open state, and one or more intermediate states between the closed and open states. The valve state may be selected to increase or decrease the inlet of the external gas. Additionally or alternatively, the inlet port may include a means for generating or facilitating a flow of the external gas into the mixing unit.

[0062] In particular, the port system may include a return conduit, e.g., a return port within the return conduit or between the return conduit and the mixing unit, which may be configured to control the return flow of desiccant. The return port may include a valve, particularly a damper, operable in a selected one of different valve states, which may include a fully open state, a closed state, and one or more continuous intermediate states. The return port, the inlet port, or both in combination may be operated to control the mixing ratio of the external gas and the desiccant. The return port may be operated to increase or decrease the return flow rate of the desiccant. Alternatively or additionally, the inlet port may be operated to increase or decrease the inlet of the external gas to the mixing unit. The mixing ratio of the desiccant and the external gas may be controlled in this manner.

[0063] The port system may also be configured to vent a portion of the desiccant, particularly in response to the addition of an external gas. A corresponding battery manufacturing method may include venting a portion of the desiccant in response to the addition of an external gas. This may prevent overpressure from building up in the battery manufacturing system or any one of the mixing unit, the drying unit, and the conduits fluidly connected thereto. Therefore, the port system may include a vent port for venting a portion of the desiccant. The venting of the removed pat of desiccant may be performed passively, particularly by pressure-activated venting, in response to the inflow of external gas. For example, the port system may include a pressure relief valve. Additionally or alternatively, the vent port may include an actively controlled valve to vent a portion of the desiccant or to vary the flow rate of the desiccant from the battery manufacturing system.

[0064] The battery manufacturing method may include desiccant evacuation, which may also be referred to as desiccant portion removal. In particular, a portion of the desiccant may be removed or withdrawn from the desiccant cycle or circulation loop (the desiccant flowing between the mixing unit and the drying unit). More specifically, a portion of the desiccant may be removed in the desiccant return flow from the drying unit to the mixing unit. The outflow of the (removed or exhausted) desiccant may be passively and / or actively controlled. More specifically, the outflow of the desiccant may be passively controlled by pressure-activated release, for example, via a pressure relief valve. Additionally or alternatively, the outflow of the desiccant may be actively controlled by active opening or closing of a valve or damper, particularly as a function of the humidity and / or temperature of the desiccant.

[0065] The battery manufacturing method may further include a step of determining, and in particular monitoring, the humidity of the desiccant. The humidity of the desiccant may be determined in the mixing unit, the desiccant drying flow (i.e., flowing from the mixing unit to the drying unit), the drying unit, and / or the desiccant return flow (i.e., flowing from the drying unit to the mixing unit). In particular, the humidity of the desiccant may be determined while the desiccant is moving from the mixing unit to the drying area. Here, the term "determining" may mean or include measuring and / or calculating, unless otherwise specified or technically inappropriate. The term "monitoring" may mean or include determining continuously or repeatedly over a certain period of time, unless otherwise specified or technically inappropriate. Monitoring may be performed in a time-dependent manner.

[0066] The battery manufacturing system may include a humidity sensor configured to determine the humidity of the desiccant. The humidity sensor may be disposed in the mixing unit, the drying unit, and / or any conduit fluidly connecting the mixing unit and the drying unit. In particular, the humidity sensor may be positioned to determine the humidity of the desiccant moving from the mixing unit to the drying unit. The humidity sensor may be configured to determine (or measure) relative humidity and / or absolute humidity. The humidity sensor may be a hygrometer. A dew point hygrometer or a thermohygrometer may be suitable examples.

[0067] Determining humidity may involve measurement and / or calculation. For example, the absolute humidity of a desiccant may be calculated by dividing the mass of water contained in the gas by the volume occupied by that amount of gas. Additionally or alternatively, relative humidity may be measured and converted to absolute humidity. For example, relative humidity may be measured by the potential difference generated by heating a humid gas inside a sensor. As noted above, humidity referred to herein may be or include any one of relative humidity and absolute humidity.

[0068] The determined humidity and / or the determined temperature (described below) may be used to control the humidity and / or temperature of the desiccant. In particular, the determined humidity may be used to control the addition of external gas to the desiccant in the mixing unit. In particular, the inflow of external gas may be varied as a function of the determined humidity. Additionally or alternatively, the humidifying power of a humidifier may be varied as a function of the determined humidity. Additionally or alternatively, the determined humidity may be used to control the power of a humidifier (which humidifies the desiccant) as a function of the determined humidity (e.g., by varying the frequency of an ultrasonic humidifier).

[0069] Additionally or alternatively, the battery manufacturing method may include determining, and particularly monitoring, the humidity of the external gas. The battery manufacturing system may include an additional humidity sensor configured to determine the humidity of the external gas. For example, the additional humidity sensor may be located outside the mixing unit and the drying unit. For example, the additional humidity sensor may be located in or within the port system, particularly in or at the inlet port. The determined humidity of the external gas may be taken into account to control the humidity (and / or temperature) of the desiccant, particularly by controlling the inflow of the external gas accordingly.

[0070] The determined humidity may be used to control the humidity of the desiccant via a humidity control loop. For example, in the humidity control loop, the inflow of external gas may be increased, decreased, or maintained as a function of the determined humidity of the desiccant. If the humidity of the desiccant falls outside a target humidity range, the external inflow may be decreased or increased depending on the humidity of the desiccant and / or the humidity of the external gas. Alternatively or additionally, the operating state of a humidifier that may humidify the desiccant may be controlled accordingly. In this manner, the mixing unit may be configured to automatically control the humidity of the desiccant via the humidity control loop.

[0071] The battery manufacturing method may further include determining, and in particular monitoring, the temperature of the desiccant. The temperature of the desiccant may be determined in the mixing unit, the desiccant drying flow (i.e., flowing from the mixing unit to the drying unit), the drying unit, and / or the desiccant return flow (i.e., flowing from the drying unit to the mixing unit). In particular, the temperature of the desiccant may be determined while the desiccant is moving from the mixing unit to the drying area. As noted above, unless otherwise specified or technically inappropriate, determining the temperature may mean or include measuring and / or calculating. The term monitoring may mean or include determining continuously or repeatedly over a period of time, unless otherwise specified or technically inappropriate. Monitoring may be performed in a time-dependent manner.

[0072] The battery manufacturing system may include a temperature sensor configured to determine the temperature of the desiccant. The temperature sensor may be disposed in the mixing unit, the drying unit, and / or any conduit fluidly connecting the mixing unit and the drying unit. In particular, the temperature sensor may be disposed to determine the temperature of the desiccant moving from the mixing unit to the drying zone. For example, the temperature sensor may be or may include a thermometer. For example, the temperature sensor may be or may include a resistance temperature detector (RTD), including a thermocouple or a Pt100.

[0073] The battery manufacturing system and / or the mixing unit may include a sensing device. The sensing device may be configured to determine the humidity and / or temperature of the desiccant. The sensing device may include a humidity sensor and / or a temperature sensor, as described above. Additionally or alternatively, the sensing device may include an additional humidity sensor and / or an additional temperature sensor, as described below. More specifically, the sensing device may include all of these sensors. Thus, the temperature sensor and the humidity sensor may be collectively referred to as a sensing device. In a specific example, the temperature sensor and the humidity sensor may be embodied as a single device, which may be referred to as a sensing device.

[0074] The determined humidity and / or the determined temperature (as described above) may be used to control the temperature of the desiccant. In particular, the determined temperature (and / or the determined humidity) may be used to control the addition of an external gas to the desiccant in the mixing unit. More specifically, the inflow of the external gas may be varied as a function of the determined temperature (and / or the determined humidity).

[0075] Additionally, the determined temperature (and / or determined humidity) of the desiccant may be used to control the operating state of a heater and / or cooler to increase, decrease, or maintain the temperature of the desiccant. In this manner, the temperature of the desiccant may be controlled as a function of the determined temperature (and / or determined humidity) of the desiccant.

[0076] Additionally or alternatively, the battery manufacturing method may include determining, and in particular monitoring, the temperature of the external gas. A corresponding battery manufacturing system may include an additional temperature sensor configured to determine the temperature of the external gas. For example, the additional temperature sensor may be located outside the mixing unit and the drying unit. For example, the additional temperature sensor may be located within the port system or the port system, in particular within the inlet port or the inlet port. The determined temperature of the external gas may be taken into account to control the temperature (and / or humidity) of the desiccant, in particular by controlling the inflow of the external gas accordingly.

[0077] The determined temperature (and / or determined humidity) of the desiccant may be used to control the operating state of a heater and / or cooler to increase, decrease, or maintain the temperature of the desiccant. In this manner, the temperature of the desiccant may be controlled as a function of the determined temperature (and / or determined humidity) of the desiccant.

[0078] Additionally, the determined temperature (and / or determined humidity) of the external gas may be used to control the operating state of a heater and / or cooler to increase, decrease or maintain the temperature of the desiccant.

[0079] The determined temperature may be used to control the temperature of the desiccant via a temperature control loop. For example, the flow of external gas in the temperature control loop may be increased, decreased, or maintained depending on the determined temperature of the desiccant. If the temperature of the desiccant falls outside a target temperature range, the external flow may be decreased or increased depending on the temperature of the desiccant and / or the temperature of the external gas.

[0080] Additionally, the operating state of the heater and / or cooler may be controlled as a function of the temperature of the desiccant and / or the temperature of the external gas. In this manner, the mixing unit may be configured to automatically control the temperature of the desiccant via a temperature control loop.

[0081] In another example of a battery manufacturing method, the humidity control of the desiccant may also take into account the temperature of the desiccant and / or the temperature of the external gas. The temperature control of the desiccant may also take into account the humidity of the desiccant and / or the humidity of the external gas. Thus, in the battery manufacturing method disclosed herein, the humidity and / or temperature control of the desiccant may be performed as a function of the determined humidity and / or the determined temperature.

[0082] The humidity and temperature of the desiccant may be controlled via a combined humidity and temperature control loop. More specifically, the inflow of external gas may be varied as a function of the determined humidity and / or temperature of the desiccant (and / or external gas). Additionally or alternatively, the humidifying power of the humidifier may be varied as a function of the determined humidity and / or the determined temperature (and / or external gas). Additionally or alternatively, the heating (or cooling) capacity of the heater (or cooler) may be varied as a function of the determined humidity and / or the determined temperature (and / or external gas).

[0083] The battery manufacturing system, particularly the mixing unit, may include a control unit configured to control the humidity of the desiccant via a humidity control loop and / or the temperature of the desiccant via a temperature control loop. The control unit may be configured to control the humidity and / or temperature of the desiccant in the mixing unit, particularly as a function of at least one of the determined temperature of the desiccant, the determined humidity of the desiccant, the determined temperature of the external gas, and / or the determined humidity of the external gas. This may allow precise control of environmental variables for drying the battery components. The control unit may be configured to control a port system.

[0084] The control unit may also be coupled to the sensing device and / or the port system, particularly to the inlet port of the port system, and may be configured to receive any one of the humidity of the desiccant, the temperature of the desiccant, the humidity of the external gas, and the temperature of the external gas from the sensing device.

[0085] The control unit may be configured to compare the environmental parameters of the desiccant with their respective target ranges, and if the control unit determines that any one of the environmental parameters of the desiccant falls outside its respective target range, the control unit may transmit a control signal to the port system, particularly the inlet port, to cause the port system to change the inlet of the external gas, particularly the inlet port of the port system to change the state of its valve (to a different open or closed level).

[0086] Alternatively or additionally, the control unit may be coupled to a humidifier, which may be configured to humidify the desiccant in the mixing unit as described herein. The humidifier may be configured to introduce water vapor into the desiccant, particularly in the mixing unit. If the control unit determines that the received humidity falls outside the target humidity range, the control unit may transmit a control signal to the humidifier to control the operating state of the humidifier.

[0087] Alternatively or additionally, the control unit may be coupled to a heater, which may be configured to heat the desiccant, as described in detail below. If the control unit determines that the received temperature falls outside a target temperature range, the control unit may transmit a control signal to the heater to control an operational state of the heater. Alternatively or additionally, the control unit may be coupled to a cooler, which may be configured to lower the temperature of the desiccant, as described below. If the control unit determines that the received temperature falls outside a target temperature range, the control unit may transmit a control signal to the cooler to control an operational state of the cooler.

[0088] Thus, the port system as described above may further be operatively operated to control the inflow of external gas added to the desiccant to condition the desiccant. More specifically, the port system may be operatively coupled to the mixing unit, particularly the control unit of the mixing unit, and may be operated by the mixing unit to control the inflow of external gas as a function of at least one of the determined temperature of the desiccant, the determined humidity of the desiccant, the determined temperature of the external gas, and the determined humidity of the external gas. Environmental variables including the determined temperature of the desiccant, the determined humidity of the desiccant, the determined temperature of the external gas, and the determined humidity of the external gas may be collectively referred to herein as determined environmental variables. In this manner, the port system may be operated to vary the inflow of external gas to the mixing unit as a function of some or all of the determined environmental variables. Additionally or alternatively, the port system may be operated to vary the mixing ratio of the desiccant and external gas as a function of some or all of the determined environmental parameters, as described herein.

[0089] The port system may be operably coupled to any of the humidity control loops, temperature control loops, and combined humidity and temperature control loops, as described above. Thus, the port system may be operated to control the inflow of external gas via any one of the humidity control loops, temperature control loops, and combined humidity and temperature control loops, as described above. In this manner, the port system may be operated to control the inflow of external gas as a function of any of the determined environmental parameters, as described above. Additionally or alternatively, the port system may be operated to control the mixture ratio of desiccant to external gas as a function of any of the determined environmental variables, as described herein.

[0090] In particular, the port system may be activated by the mixing unit to increase, decrease, or maintain the inflow of external gas depending on the humidity of the desiccant and / or external gas determined via the humidity control loop. For example, when the humidity of the desiccant is below a target humidity range and the humidity of the external gas is lower than the humidity of the desiccant, the port system may be activated to decrease the inflow of external gas. When the humidity of the desiccant is below a target humidity range and the humidity of the external gas is higher than the set humidity of the desiccant, the port system may be activated to increase the inflow of external gas. When the humidity of the desiccant is above a target humidity range and the humidity of the external gas is lower than the determined humidity of the desiccant, the port system may be activated to increase the inflow of external gas. When the humidity of the desiccant is above a target humidity range and the humidity of the external gas is higher than the determined humidity of the desiccant, the port system may be activated to decrease the inflow of external gas. When the humidity of the desiccant is within a target humidity range, the port system may be activated to maintain the inflow of external gas. If the humidity of the desiccant falls outside the target humidity range and the humidity of the desiccant and external gas are substantially the same or identical, the port system may be activated to maintain the inflow of external gas. Accordingly, the humidifier may be operated to change its operating state, particularly its humidifying power, depending on the determined humidity of the desiccant and / or external gas, as described below.

[0091] Additionally or alternatively, the port system may be operated to increase, decrease, or maintain the desiccant to external gas mixture ratio in the mixing unit as a function of the determined humidity of the desiccant and / or external gas via the humidity control loop. For example, if the humidity of the desiccant is below the target humidity range and the humidity of the external gas is higher than the determined humidity of the desiccant, the port system may be operated to decrease the desiccant to external gas mixture ratio (i.e., to allow more external gas to flow in). For example, if the humidity of the desiccant is above the target humidity range and the humidity of the external gas is lower than the determined humidity of the desiccant, the port system may be operated to decrease the desiccant to external gas mixture ratio (i.e., to allow more external gas to flow in). In other cases, depending on measured environmental parameters, the port system may be operated to increase or maintain the desiccant to external gas mixture ratio in the mixing unit. For example, if the humidity of the desiccant is within the target humidity range, the port system may be operated to maintain the desiccant to external gas mixture ratio in the mixing unit. Additionally, when the humidity of the desiccant falls outside the target humidity range and the humidity of the desiccant and external gas are substantially the same or identical, the port system can be operated to maintain the mixing ratio of desiccant to external gas within the mixing unit.

[0092] Additionally or alternatively, the port system may be operated to increase, decrease, or maintain the inflow of external gas as a function of the determined temperatures of the desiccant and external gas via a temperature control loop as follows: When the desiccant temperature is below the target temperature range and the external gas temperature is lower than the determined temperature of the desiccant, the port system may be operated to decrease the inflow of external gas; When the desiccant temperature is below the target temperature range and the external gas temperature is higher than the determined temperature of the desiccant, the port system may be operated to increase the inflow of external gas; When the desiccant temperature is above the target temperature range and the external gas temperature is lower than the determined temperature of the desiccant, the port system may be operated to increase the inflow of external gas; When the desiccant temperature is above the target temperature range and the external gas temperature is higher than the determined temperature of the desiccant, the port system may be operated to decrease the inflow of external gas; When the desiccant temperature is within the target temperature range, the port system may be operated to maintain the inflow of external gas; When the desiccant temperature is outside the target temperature range and the desiccant and external gas temperatures are substantially the same or identical, the port system may be operated to maintain the inflow of external gas. Thus, the heater and / or cooler may be operated to change operating states depending on the determined temperature of the desiccant and / or external gas, as described below.

[0093] Additionally or alternatively, the port system may be operated to increase, decrease, or maintain the desiccant to external gas mixture ratio in the mixing unit as a function of the determined temperatures of the desiccant and / or external gas via the temperature control loop. For example, if the desiccant temperature is below a target temperature range and the external gas temperature is higher than the determined temperature of the desiccant, the port system may operate to decrease the desiccant to external gas mixture ratio (i.e., to allow more external gas to flow in). For example, if the desiccant temperature is above a target temperature range and the external gas temperature is lower than the determined temperature of the desiccant, the port system may operate to decrease the desiccant to external gas mixture ratio (i.e., to allow more external gas to flow in). In other cases, depending on measured environmental parameters, the port system may operate to increase or maintain the desiccant to external gas mixture ratio in the mixing unit. If the desiccant temperature is within the target temperature range, the port system may operate to maintain the desiccant to external gas mixture ratio in the mixing unit. When the temperature of the desiccant falls outside the target temperature range and the temperatures of the desiccant and external gas are substantially the same or identical, the port system can be operated to maintain the mixing ratio of the desiccant and external gas in the mixing unit.

[0094] Additionally or alternatively, the port system may be operated to increase, decrease, or maintain the external gas inflow and / or the desiccant-external gas mixture ratio as a function of the determined humidity and / or temperature of the desiccant and external gas via the combined humidity and temperature control loop. More specifically, the port system may be operated to prioritize the humidity control loop over the temperature control loop to control the external gas inflow in the combined humidity and temperature control loop. For example, when the desiccant humidity is within a target humidity range and the desiccant temperature is (either) within or outside a target temperature range, the port system may operate to maintain the external gas inflow and / or the external gas-desiccant mixture ratio. Correspondingly, when the desiccant humidity is outside the target humidity range and the desiccant temperature is (either) within or outside the target temperature range, the port system may be operated to increase or decrease the external gas inflow or increase or decrease the desiccant-external gas mixture ratio depending on the determined humidity of the desiccant and / or external gas, as described above. Thus, the heater and / or cooler may be operated to maintain or change its operating state in response to the determined temperature of the desiccant and / or external gas, as described below. Alternatively, the port system may be operated to prioritize the temperature control loop over the humidity control loop to control the inflow of external gas in a combined humidity and temperature control loop. More specifically, the port system may be operated to increase, decrease, or maintain the inflow rate of external gas and / or the mixture ratio of desiccant to external gas as a function of the determined temperature of the desiccant and / or external gas, as described above. Accordingly, the humidifier may be operated to change its operating state, particularly its humidifying power for humidifying the desiccant, in response to the determined humidity of the desiccant and / or external gas, as described below.

[0095] Additionally or alternatively, the port system may be operated to control the inflow of external gas to the mixing unit, particularly to vary the inflow of external gas as a function of the humidity and / or temperature of the desiccant as determined by the sensing device. More specifically, the port system may be operated to vary the inflow of external gas to the mixing unit as a function of the humidity and / or temperature as determined (by the sensing device) in the humidity and / or temperature control loops described above.

[0096] Additionally or alternatively, the port system may be operated to vary the mixing ratio of the external gas and desiccant in the mixing unit, particularly as a function of the humidity and / or temperature of the desiccant as determined by the sensing device, to control the mixing ratio of the external gas and desiccant in the mixing unit. More specifically, the port system may be operated to vary the mixing ratio of the desiccant and external gas as a function of the humidity and / or temperature as determined (by the sensing device) in the humidity and / or temperature control loops described above.

[0097] For example, the port system may include an inlet port for external gas to supply the external gas to the mixing unit. The inlet port may include a valve, particularly a damper, that can be actuated to open or close. More specifically, the valve may be actuated to open or close (stepwise or continuously) to increase or decrease, respectively, the inflow of external gas to the mixing unit stepwise or continuously. The port system may also include a return port (as described above) in the return conduit to control the return flow of desiccant to the mixing unit. The return port may include a valve, particularly a damper, that can be actuated to open or close (stepwise or continuously). More specifically, the valve of the return port may be actuated to open or close (stepwise or continuously) to increase or decrease, respectively, the return flow rate of desiccant to the mixing unit stepwise or continuously.

[0098] The port system may be operated by opening (closing) the valve of the inlet port to a certain level to increase (decrease) the inflow of external gas into the mixing unit, particularly to increase (decrease) the inflow of external gas into the mixing unit. Additionally or alternatively, the port system may be operated by closing (opening) the valve of the return port to a certain level to decrease (increase) the return flow of desiccant to the mixing unit, particularly to decrease (increase) the desiccant return flow rate and, consequently, to increase (decrease) the mixing ratio of the desiccant and external gas in the mixing unit. The resulting changes in humidity and / or temperature of the desiccant may be determined by a sensing device, and more specifically, may be monitored or observed. If the changes in humidity and / or temperature of the desiccant determined (by the sensing device) leave a target range, the port system may be operated by closing (opening) the valve of the inlet port to a certain level to decrease (increase) the inflow of external gas into the mixing unit, particularly to decrease (increase) the inflow of external gas into the mixing unit. Additionally or alternatively, the port system may be operated to increase (decrease) the return flow rate of the desiccant to the mixing unit, particularly by opening (closing) the valve of the return port to a particular level to decrease (increase) the return flow rate of the desiccant and consequently decrease (increase) the mixing ratio of the desiccant to the external gas in the mixing unit. The port system may be operated to automatically control the humidity and / or temperature of the desiccant by the mixing unit in the humidity and / or temperature control loops described above.

[0099] Additionally or alternatively, the port system may be operable to modify the inflow of external gas to the mixing unit as a function of the humidity and / or temperature of the desiccant determined by the sensing device and the humidity and / or temperature of the external gas determined by the sensing device, as follows: if the humidity and / or temperature of the desiccant determined by the sensing device is too low, the port system is operable to close the inlet valve to a certain level to reduce the inflow of external gas to the mixing unit (if the determined humidity and / or temperature of the external gas is lower than the humidity and / or temperature of the desiccant), or to open the inlet valve to a certain level to increase the inflow of external gas to the mixing unit (if the determined humidity and / or temperature of the external gas is higher than the humidity and / or temperature of the desiccant).

[0100] Additionally or alternatively, the port system may be operable to open the valve of the return port to a certain level to increase the return flow of desiccant to the mixing unit (if the determined humidity and / or temperature of the desiccant is too low and / or the determined humidity and / or temperature of the external gas is lower than the determined humidity and / or temperature of the desiccant), and correspondingly, the port system may be operable to close the valve of the return port to a predetermined level to decrease the return flow of desiccant to the mixing unit (if the determined humidity and / or temperature of the desiccant is too low and / or the determined humidity and / or temperature of the external gas is higher than the determined humidity and / or temperature of the desiccant).

[0101] On the other hand, if the determined humidity and / or temperature of the desiccant is too high, the port system may operate to open the valve of the inlet port to a certain level to increase the inflow of external gas into the mixing unit (if the determined humidity and / or temperature of the external gas is lower than the humidity and / or temperature of the desiccant) or close the valve of the inlet port to a certain level to decrease the inflow of external gas into the mixing unit (if the determined humidity and / or temperature of the external gas is higher than the humidity and / or temperature of the desiccant). Additionally or alternatively, the port system may operate to close the valve of the return port to a certain level to decrease the return flow of desiccant to the mixing unit (if the determined humidity and / or temperature of the desiccant is too high and the determined humidity and / or temperature of the external gas is lower than the determined humidity and / or temperature of the desiccant). This allows the port system to be operated to open the valve of the return port to a certain level to increase the return flow rate of the desiccant to the mixing unit (if the determined humidity and / or temperature of the desiccant is too high and the determined humidity and / or temperature of the external gas is higher than the determined humidity and / or temperature of the desiccant).

[0102] The battery manufacturing method may further include heating the desiccant flowing from the mixing unit to the drying unit. The heating may be performed in a drying conduit. The battery manufacturing system may include a heater configured to heat the desiccant flowing from the mixing unit to the drying unit. The heater may be operably coupled to any of the humidity and temperature control loops coupled with the temperature control loop, as described above. More specifically, the heater may be operably coupled to the mixing unit, particularly the mixing unit's control unit, and may be activated by the mixing unit to control the temperature of the desiccant via any of the humidity and temperature control loops coupled with the temperature control loop, as described above. In this manner, the heater may be operated to maintain or change its operating state, particularly to increase or decrease its heating capacity, as a function of the determined temperature of the desiccant and / or the temperature of the external gas.

[0103] For example, when the desiccant temperature is within a target temperature range, the heater may be activated to maintain operation or heating capacity. When the desiccant temperature is lower or higher than the target temperature range, the heater may be activated to increase or decrease the heating capacity for heating the desiccant, respectively. More specifically, when the desiccant temperature is below the target temperature range and the temperature of the external gas (added to the desiccant) is lower than the temperature of the desiccant, the heater may be activated to increase the heating capacity for heating the desiccant. When the desiccant temperature is below the target temperature range and the temperature of the external gas is higher than the temperature of the desiccant, the heater may be activated to maintain or decrease the heating capacity. When the desiccant temperature is above the target temperature range and the temperature of the external gas is higher than the temperature of the desiccant, the heater may be activated to decrease the heating capacity. When the desiccant temperature is above the target temperature range and the temperature of the external gas is lower than the temperature of the desiccant, the heater may be activated to maintain or decrease the heating capacity.

[0104] The battery manufacturing method may further include cooling the desiccant flowing from the mixing unit to the drying unit. The cooling may occur in a drying conduit. The battery manufacturing system may include a cooler configured to cool the desiccant flowing from the mixing unit to the drying unit. The cooler may be operably coupled to any of the humidity and temperature control loops coupled with the temperature control loop, as described above. More specifically, the cooler may be operably coupled to the mixing unit, particularly the control unit of the mixing unit, and may be operated by the mixing unit to control the temperature of the desiccant via any one of the humidity and temperature control loops coupled with the temperature control loop, as described above. In this manner, the cooler may be operated to maintain or change its operating state, particularly to increase or decrease its cooling capacity, as a function of the determined desiccant temperature and / or the temperature of the external gas.

[0105] For example, if the temperature of the desiccant is within a target temperature range, the cooler may be operated to maintain its operating state or cooling capacity. If the temperature of the desiccant is below or above the target temperature range, the cooler may be operated to decrease or increase the cooling capacity for cooling the desiccant, respectively. More specifically, if the temperature of the desiccant is below the target temperature range and the temperature of the external gas (added to the desiccant) is lower than the temperature of the desiccant, the cooler may be operated to decrease the cooling capacity for cooling the desiccant. If the temperature of the desiccant is below the target temperature range and the temperature of the external gas is higher than the temperature of the desiccant, the cooler may be operated to maintain or decrease the cooling capacity. If the temperature of the desiccant is above the target temperature range and the temperature of the external gas is higher than the temperature of the desiccant, the cooler may be operated to increase the cooling capacity. If the temperature of the desiccant is above the target temperature range and the temperature of the external gas is lower than the temperature of the desiccant, the cooler may be operated to maintain or increase the cooling capacity.

[0106] The humidifier described herein may be operably coupled to any of the humidity and temperature control loops coupled with the humidity control loop, as described above. More specifically, the humidifier may be operably coupled to the mixing unit, particularly the control unit of the mixing unit, and may be operated by the mixing unit and controlled to control the humidity of the desiccant through any one of the humidity and temperature control loops coupled with the humidity control loop, as described above. In this manner, the humidifier may be operated to maintain or change its operating state, particularly increasing or decreasing the humidifying power for humidifying the desiccant, as a function of the determined humidity of the desiccant and / or the humidity of the external gas.

[0107] For example, when the humidity of the desiccant is within the target humidity range, the humidifier may be operated to maintain the operating state or the humidifying power of the desiccant humidifier. When the humidity of the desiccant is lower or higher than the target humidity range, the humidifier may be operated to increase or decrease the humidifying power, respectively. More specifically, when the humidity of the desiccant is below the target humidity range and the humidity of the external gas (added to the desiccant) is lower than the humidity of the desiccant, the humidifier may be operated to increase the humidifying power. When the humidity of the desiccant is below the target humidity range and the humidity of the external gas is higher than the humidity of the desiccant, the humidifier may be operated to maintain or decrease the humidifying power. When the humidity of the desiccant is above the target humidity range and the humidity of the external gas is higher than the humidity of the desiccant, the humidifier may be operated to decrease the humidifying power. When the humidity of the desiccant is above the target humidity range and the humidity of the external gas is lower than the humidity of the desiccant, the humidifier may be operated to maintain or decrease the humidifying power.

[0108] The method may further include at least one of humidifying the external gas, heating or cooling the external gas, and filtering the external gas before adding the external gas to the desiccant. Such steps may generally be referred to as preconditioning the external gas. Preconditioning of the external gas may be performed via means coupled to the port system, particularly the inlet port, and / or via means external to the battery manufacturing system.

[0109] The battery manufacturing method may further include preconditioning the external gas, particularly before it is added to the desiccant. Preconditioning the external gas may include at least one of adding water vapor to the external gas, heating the external gas, and cooling the external gas. Adding the preconditioned external gas to the desiccant may provide more precise control over environmental parameters of the desiccant, particularly the humidity and / or temperature of the desiccant.

[0110] The corresponding battery manufacturing system may include a preconditioner configured to precondition the external gas, particularly before the external gas is added to the desiccant. The preconditioner may be or include at least one of a preconditioning humidifier, a preconditioning heater, and a preconditioning cooler. The preconditioner may be thermally and / or fluidly coupled to the inlet port of the port system to precondition the external gas.

[0111] The battery manufacturing method may further include filtering the desiccant, particularly the desiccant flowing to the drying area. The battery manufacturing system may include a filter system configured to filter the desiccant before it reaches the drying area. Filtering may refer to removing impurities from the desiccant. The impurities may be or include airborne particles or dust. Filtering may be advantageous to prevent impurities from reaching the battery components.

[0112] The filter system may be disposed between the mixing unit and the drying unit. Additionally or alternatively, filters may be disposed at one or more additional locations in the battery manufacturing system to filter the desiccant. The filter system may include multiple filter units disposed at different locations along the drying conduit between the mixing unit and the drying unit.

[0113] The battery manufacturing method may further include filtering the external gas before adding it to the desiccant. The battery manufacturing system may include an external gas filter configured to filter the external gas before adding it to the desiccant. Filtering may refer to removing impurities from the external gas. The impurities may be or include airborne particles or dust. Filtering may be advantageous to prevent impurities from reaching the battery components.

[0114] The battery manufacturing method may further include heating the desiccant. The battery manufacturing system may include a heater configured to heat the desiccant. For example, the heater may be disposed along the drying conduit between the mixing unit and the drying unit to heat the desiccant before it reaches the drying unit. In some examples, the heater may be operated in different operating states to vary its heating capacity, particularly as a function of the temperature and / or humidity of the desiccant.

[0115] Additionally or alternatively, the battery manufacturing method may include cooling the desiccant. The battery manufacturing system may include a cooler configured to cool the desiccant. For example, the cooler may be disposed along the drying conduit between the mixing unit and the drying unit to cool the desiccant before it reaches the drying unit. In some examples, the cooler may be operated in different operating states to vary its cooling capacity, particularly as a function of the temperature and / or humidity of the desiccant.

[0116] The configuration of the mixing unit to condition the desiccant and the flow generator to supply the (conditioned) desiccant to the drying unit allows the battery manufacturing system to control the drying process of the battery components. In particular, the conditioning of the desiccant in and by the mixing unit can control drying variables such as the evaporation rate of the liquid components in the slurry, thereby improving the product quality of the battery. [Effects of the Invention]

[0117] The systems and methods defined in the claims advantageously allow for conditioning of the desiccant used to dry the battery components, i.e., controlling one or more environmental parameters such as humidity and / or temperature.

[0118] This can prevent defects such as migration of additives and cracks in battery products, thereby improving the product quality of the battery. [Brief explanation of the drawings]

[0119] Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. In the drawings and the following description, similar or identical features will be referred to using the same reference numerals. Repetitive descriptions of the above similar or identical features will be omitted for the sake of brevity and readability. [Figure 1] 1 is a diagram schematically illustrating a battery manufacturing system according to an embodiment. [Figure 2] 1 is a diagram schematically illustrating a battery manufacturing system according to an embodiment. [Figure 3] 1 is a diagram schematically illustrating a battery manufacturing system according to an embodiment. [Figure 4] 1 is a diagram schematically illustrating a battery manufacturing system according to an embodiment. [Figure 5] 1 is a diagram schematically illustrating a battery manufacturing system according to an embodiment. [Figure 6] 1 is a flowchart of a battery manufacturing method according to an embodiment. [Figure 7] 1 is a flowchart of a battery manufacturing method according to an embodiment. [Figure 8] 1 is a flowchart of a battery manufacturing method according to an embodiment. [Figure 9] 1 is a flowchart of a battery manufacturing method according to an embodiment. [Figure 10] 1 is a flowchart of a battery manufacturing method according to an embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0120] A battery manufacturing method may be provided that may include providing battery components to a drying unit, providing a desiccant to a mixing unit, controlling the humidity and / or temperature of the desiccant by the mixing unit, and supplying the desiccant from the mixing unit to the drying unit.

[0121] A battery manufacturing system may additionally be provided. The battery manufacturing system may include a drying unit, a mixing unit, and a flow generator. The drying unit may be configured to contain the battery components. The mixing unit may be configured to condition the desiccant. The flow generator may be configured to move the desiccant from the mixing unit to the drying unit to dry the battery components.

[0122] 1 to 5 are drawings that schematically illustrate an example of a battery manufacturing system. The battery manufacturing system may be configured to perform the battery manufacturing methods disclosed herein, particularly the embodiments of the battery manufacturing methods illustrated in FIGS. 6 to 10. The battery manufacturing system illustrated in any one of FIGS. 1 to 5 may be used to manufacture secondary batteries, particularly to dry battery components including an electrode substrate and a slurry disposed thereon, for manufacturing electrodes for the secondary batteries. In addition, the battery manufacturing system illustrated in FIGS. 1 to 5 may include any one of the features of the battery manufacturing systems described above.

[0123] The battery manufacturing system includes a drying unit 20, a mixing unit 10, and a flow generator 30. The drying unit 20 and the mixing unit 10 are fluidly connected to each other via, for example, one or more conduits, channels, tubes, airlocks, etc., or any combination thereof.

[0124] The flow generator 30 may be fluidly coupled to either one or both of the drying unit 20 and the mixing unit 10. In particular, the flow generator 30 may be fluidly coupled between the drying unit 20 and the mixing unit 10. Alternatively, the flow generator 30 may be operably coupled to the drying unit 20 and / or the mixing unit 10 without being fluidly coupled thereto.

[0125] The drying unit 20 is configured to accommodate a battery component P. The battery component P may be a semi-finished product of a secondary battery, in particular a slurry containing an active material deposited on an electrode substrate to form an electrode of the secondary battery.

[0126] The mixing unit 10 is configured to, among other things, control the humidity and / or temperature of the desiccant to condition it. The desiccant may be inherently present in the mixing unit 10 or may be introduced into the mixing unit 10. The mixing unit 10 is fluidly connected to the drying unit 20. For example, the mixing unit 10 may be indirectly connected to the drying unit 20 via a drying conduit, as described above. Alternatively, the mixing unit 10 may be directly connected to the drying unit 20 without any physical separation. Alternatively, the desiccant may be supplied to the drying unit 20 via a drying conduit, as described herein, and the mixing unit 10 may be provided (at least partially) within or at the drying conduit to condition the desiccant within the drying conduit. Alternatively, the mixing unit may include a mixing chamber (e.g., mixing chamber 12, described in connection with FIG. 2 below) in which the desiccant is conditioned.

[0127] The flow generator 30 is configured to move the desiccant from the mixing unit 10 to the drying unit 20. In particular, the flow generator 30 may create a pressure gradient and / or a fluid flow between the mixing unit 10 and the drying unit 20. For example, the flow generator 30 may include one or more exhaust fans, fans, blowers, pumps, etc., or combinations thereof, to move the desiccant.

[0128] The desiccant moving to (i.e., supplied to) the drying unit 20 is illustrated in the drawings as drying stream A. In the drying unit 20, the desiccant can be blown toward the battery components P to carry vapors from the battery components P and dry the battery components P. In the battery manufacturing methods and systems disclosed herein, the mixing unit and the drying unit can be fluidly connected to each other in a sealed manner to prevent the passage of fluids other than the desiccant and external gases flowing through the port systems disclosed herein (see FIGS. 2-5).

[0129] As described above, a battery manufacturing system may be configured to perform a battery manufacturing method as disclosed herein. FIGS. 6 to 10 each illustrate an example of a battery manufacturing method, particularly an example of manufacturing a secondary battery. In particular, the battery manufacturing method of FIGS. 6 to 10 may be configured to dry battery components as described above. Furthermore, the battery manufacturing method of FIGS. 6 to 10 may include any one of the features of the battery manufacturing method as described above.

[0130] Hereinafter, the battery manufacturing methods of FIGS. 6 to 10 will be described with reference to the battery manufacturing system shown in any one of FIGS. 1 to 5 unless otherwise specified or technically inappropriate.

[0131] In S110, a desiccant is provided to the mixing unit 10. The desiccant and the mixing unit may have any one of the respective characteristics as described above. The desiccant may be present in the mixing unit at the start of the battery manufacturing process. Additionally or alternatively, the desiccant may be introduced into the mixing unit at the start and / or during the battery manufacturing process. The desiccant may include or contain air and / or process gases, as described above.

[0132] In S120, a battery part P is provided in the drying unit 20. The battery part P may be provided as described above. In particular, the battery part P may include an electrode substrate including an active material and a slurry disposed thereon, as described above.

[0133] The drying unit 20 may include any one of the features of the drying units described above. In particular, the drying unit 20 may include a heating means (see, for example, FIG. 4 ) including an arrangement of fans configured to blow the desiccant towards the battery parts P from other directions. The desiccant may be adjusted by the mixing unit 10 to optimize the drying process of the battery parts P in the drying unit 20.

[0134] In S130, the humidity and / or temperature of the desiccant is controlled by the mixing unit 10. The control of the humidity and temperature of the desiccant may be performed as described above. The control or conditioning of the desiccant by the mixing unit 10 may vary depending on the type of drying unit 20, such as hot air, radiant, or convection. The control or conditioning of the desiccant by the mixing unit 10 may vary depending on the materials of the battery components P, particularly the materials of the slurry, such as the binder material, liquid components, solid components, and mixing ratio. The control or conditioning of the desiccant by the mixing unit 10 may depend on the loading of the battery components P, such as how much wet material, such as a slurry, is placed on a substrate, such as an electrode substrate. The control or conditioning of the desiccant by the mixing unit 10 may also vary depending on the temperature of the drying unit 20.

[0135] As mentioned above, the humidity of the desiccant can be controlled to be between 5 g / kg and 90 g / kg, particularly between 10 g / kg and 80 g / kg, and more specifically between 20 g / kg and 60 g / kg, where g / kg represents the amount of water vapor per mass of dry air. Absolute humidity can be measured using a conventional hygrometer, such as a capacitive humidity sensor, a resistive hygrometer, a thermal hygrometer, a gravimetric hygrometer, or an optical hygrometer. Absolute humidity can also be determined by first measuring the relative humidity and then calculating the absolute humidity from the relative humidity according to the hygrometer's instructions.

[0136] Additionally or alternatively, the temperature of the desiccant may be controlled to be between 25° C. and 400° C., particularly between 50° C. and 300° C., or between 60° C. and 250° C., more particularly between 80° C. and 200° C. As described herein, the temperature of the desiccant in the drying unit may be higher than the temperature in or at the mixing unit, resulting in a temperature difference of 1° C. to 200° C., 5° C. to 100° C., or particularly 20° C. to 80° C.

[0137] In S140, desiccant is supplied from the mixing unit 10 to the drying unit 20. In particular, in the battery manufacturing methods and systems disclosed herein, the mixing unit and the drying unit may be fluidly connected to each other in a sealed manner to prevent the passage of any fluid other than the desiccant and external gas introduced via the port system as described herein (see, e.g., FIGS. 2-5 ).

[0138] To provide the desiccant at an elevated temperature, the battery manufacturing system may additionally include a heater 50 (see, for example, FIGS. 2 to 5 ) separate from the mixing unit 10 and positioned between the mixing unit 10 and the drying unit 20. The heater 50 may be configured to elevate the temperature of the desiccant before it is supplied to the drying unit 20. The heater 50 may be any one of or may include a flow-type heater, an infrared heater, a convection heater, a fan heater, a heat storage heater, a heat pump, and a resistance heater.

[0139] 2 shows a schematic diagram of another example battery manufacturing system. The battery manufacturing system of FIG. 2 may include any of the features of a battery manufacturing system such as that described above and illustrated in FIG.

[0140] In FIG. 2 , the battery manufacturing system further includes a port system 40 configured to allow an external gas to be added to the desiccant to condition the desiccant. For such purpose, the port system 40 may include an inlet port 42 for allowing and controlling the inflow E of the external gas. The external gas may be ambient air and / or process gas. The external gas may be added to the desiccant within the mixing unit 10. The port system 40 may be configured to control the inflow E of the external gas via a humidity control loop, a temperature control loop, or a combined humidity and temperature control loop, as described above. The port system 40 may include any of the features of a port system as described above.

[0141] The port system 40 may additionally be configured to allow and control the exhaust of desiccant from the battery manufacturing system. To this end, the port system 40 may include an exhaust port 44 for allowing and controlling the exhaust (venting) D of the desiccant. In particular, the exhaust port 44 may be passively operated to allow relief of overpressure that may occur due to the influx of external gases and / or an increase in the temperature of the desiccant. Alternatively or additionally, the exhaust port 44 may be actively operated to open, closed, and intermediate states as needed. While the exhaust port 44 is illustrated as being located between the drying unit 20 and the mixing unit 10 in the return flow B of FIG. 2, the exhaust port 44 is not limited thereto and may be located in the mixing unit 10 (e.g., fluidly connected to the mixing chamber 12, described below).

[0142] 2, the flow generator 30 is additionally configured to redirect the desiccant from the drying unit 20 to the mixing unit 10, as shown by return flow B in FIG. 2. Although not explicitly shown in FIGS. 1-3, the battery manufacturing system is configured such that the drying flow A and the return flow B are fluidly separated from each other, i.e., not directly connected to each other, for example, by a drying conduit corresponding to reference character A and a return conduit corresponding to reference character B.

[0143] Thus, flow generator 30 is configured to establish a desiccant circulation by moving the desiccant in a cycle that includes and / or passes through drying unit 20 and mixing unit 10. To this end, mixing unit 10 and drying unit 20 are fluidly coupled to one another in a sealed manner to prevent the passage of fluids other than the desiccant and external gas flowing in via port system 40. Thus, mixing chamber 12, drying chamber 22, drying conduit A, and return conduit B are fluidly coupled to one another and may be coupled to one another in a sealed manner.

[0144] Generally, and as described above, mixing unit 10 can be positioned in any suitable location within a battery manufacturing system to provide a space in which the desiccant is conditioned, i.e., a space in which the humidity and / or temperature of the desiccant are controlled. In the example of FIG. 2 , mixing unit 10 includes mixing chamber 12 that can be fluidly connected to drying unit 20 via a drying conduit (illustrated by arrow A in FIG. 2 ) and a return conduit (illustrated by arrow B in FIG. 2 ). The conditioning of the desiccant, i.e., the humidity and temperature of the desiccant, is controlled by mixing unit 10 and mixing chamber 12. Alternatively, and not explicitly shown in FIG. 2 , a mixing unit can be positioned and / or configured to condition the desiccant within drying conduit A. In this case, mixing chamber 12 can additionally be present or omitted.

[0145] Additionally and optionally, the battery manufacturing method may further include controlling the mixing ratio of the external gas inflow E and the desiccant return flow B. A corresponding battery manufacturing system may be configured to control the mixing ratio of the external gas inflow E and the desiccant return flow B. The mixing ratio may be used as a parameter or variable for regulating the desiccant, i.e., for controlling the humidity and / or temperature of the desiccant in the manner described above. The mixing ratio may be controlled by controlling both the desiccant return flow B and the external gas inflow flow E. Part or all of the return flow B and the inflow flow E may be controlled by controlling their respective mass flow rates and / or their respective flow cross sections, each of which may be controlled by operating a respective valve or damper in the manner described above. The mixing ratio may be controlled in the mixing chamber 12, particularly within the drying conduit A, or at any other suitable location, including the drying conduit A.

[0146] 2, the drying unit 20 also includes a drying chamber 22 that can house the battery components P during the drying process. Although not shown, the drying chamber 22 encloses an array of fans configured to blow the desiccant received from the mixing unit 10 toward the battery components P.

[0147] The battery manufacturing system may include a humidifier 60 configured to pre-humidify the desiccant before it is supplied to the drying unit 20, as shown by the water vapor inlet H in FIG. 2. In particular, the humidifier 60 may be configured to supply water vapor H to the desiccant in the mixing unit 10. This may provide the mixing unit 10 with pre-humidified desiccant that may be supplied to the drying unit 20 as the desiccant. The humidifier 60 may include any one of the features of a humidifier as described above.

[0148] The battery manufacturing system optionally includes a heat exchanger 70 configured to transfer heat between a drying flow A of desiccant from the mixing unit 10 to the drying unit 20 and a return flow B of desiccant from the drying unit 20 to the mixing unit 10. The heat exchanger 70 may include any one of the features of the heat exchangers described above.

[0149] 3 illustrates a schematic diagram of another example battery manufacturing system. The battery manufacturing system of FIG. 3 may include any of the features of the battery manufacturing systems illustrated in FIG. 1 or FIG. 2 described above.

[0150] 3, the battery manufacturing system further includes a sensing device 80. In the example illustrated in FIG. 3, the sensing device 80 includes a humidity sensor 82, a temperature sensor 84, an additional humidity sensor 86, and an additional temperature sensor 88. However, this is merely exemplary. In other examples, the sensing device may include fewer or more sensors, which may be arranged differently than illustrated in FIG. 3.

[0151] Humidity sensor 82 is configured to determine the humidity of the desiccant in mixing chamber 12 and / or drying conduit A. Temperature sensor 84 is configured to determine the temperature of the desiccant in mixing chamber 12 and / or drying conduit A.

[0152] An additional humidity sensor 86 is configured to determine the humidity of the external gas at a location external to the mixing chamber 12, particularly near the inlet port 42. An additional temperature sensor 88 is configured to determine the temperature of the external gas at a location external to the mixing chamber 12, particularly near the inlet port 42.

[0153] The sensors 82-88 may be configured as described above. Any of the sensors 82-88 may be coupled to the control unit 14 of the mixing unit 10 to transmit respective measurement signals to the control unit 14 and / or receive respective control signals from the control unit 14.

[0154] The control unit 14 may further be coupled to the inlet port 42. The control unit 14 may include a processing unit, memory, and communication means for receiving measurement signals from the sensors 82-88 and calculating and / or storing at least one of the determined environmental parameters, including the determined temperature of the desiccant, the determined humidity of the desiccant, the determined temperature of the external gas, and the determined humidity of the external gas. The control unit 14 may also store control instructions that are executed as a function of the respective environmental variables, for example, by sending control signals. The control unit 14 may be configured to control the operating state of the inlet port 42 as a function of any of the environmental parameters received from the sensors 82-88.

[0155] 4 is a diagram illustrating a schematic diagram of another example of a battery manufacturing system. The battery manufacturing system of FIG. 4 may include any of the features of the battery manufacturing systems described above and illustrated in FIGS. 1 to 3.

[0156] 4, the battery manufacturing system may further include a filter system 90, which may include one or more filters. In the example illustrated in FIG. 4, the filter system 90 includes three filters positioned at different locations in the drying conduit A from the mixing unit 10 to the drying unit 20. In particular, the filters 90 may provide different levels of filtering and may include cartridge filters, medium filters, fine filters, etc. The filter system 90 may be configured as described above.

[0157] In FIG. 4, the flow generator 30 includes three fans for generating a flow of desiccant in a cycle to establish circulation. The desiccant cycle or circulation loop passes through and includes the mixing unit 10, drying conduit A, drying unit 20, and return conduit B. The desiccant cycle may also pass through a filter 90 and a heater 50. The fans of the flow generator 30 may be distributed and positioned at different locations in the drying conduit (A) and return conduit (B). For example, they may be positioned before and after the mixing unit 10 and before the drying unit 20 on the side of the desiccant circulation direction (as indicated by the arrows in FIG. 4).

[0158] 4, the drying unit 20 includes a storage unit 24 and a blower array 26. The storage unit 24 is configured to store the battery components P during the drying process. The storage unit 24 may be motorized to move the battery components P through the drying unit 20 while the battery components P are being dried.

[0159] The blowers 26 are arranged to blow the desiccant toward the battery components P contained in the containing units 24 in different ways. The blowers 26 may each be fluidly connected to the drying conduit A to deliver the desiccant from the mixing unit 10. The blowers 26 may include a nozzle array.

[0160] Optionally, a portion of the battery manufacturing system, particularly the battery manufacturing system including the mixing unit 10, may be located outdoors to shorten the inlet path of external gas, which may be ambient air. The remaining portion of the battery manufacturing system, particularly the battery manufacturing system including the drying unit 20, may be located indoors to better control environmental variables for the drying process of the battery components P. In Figure 4, an imaginary line S may indicate the separation between the outdoor portion of the battery manufacturing system (upper side in the orientation of Figure 4) and the indoor portion of the battery manufacturing system (lower side in the orientation of Figure 4).

[0161] Additionally or alternatively, the battery manufacturing system may include one or more dampers configured to vary and / or distribute the flow of desiccant in a cycle.

[0162] Figure 5 shows a schematic diagram of another example battery manufacturing system. The battery manufacturing system of Figure 5 may include any of the features of the battery manufacturing systems described above, such as those illustrated in Figures 1-4.

[0163] The flow conduits are shown in more detail in Figure 5. In particular, the drying conduit A and the return conduit B may be configured to traverse the interior of the heat exchanger 70 to allow heat transfer between them.

[0164] 5 , the sensor apparatus includes humidity and temperature sensors 82, 84 located in the mixing chamber 12 and drying conduit A, and additional humidity and temperature sensors 86, 88 located in the inlet port 42. Additionally and optionally, the sensing apparatus further includes an additional humidity and / or temperature sensor 83 located in the return conduit B located upstream of the mixing unit 10. The additional humidity and / or temperature sensor 83 may be located immediately upstream of or within the exhaust port 44, which is located immediately upstream of the mixing unit 10.

[0165] 5, the mixing unit 10 further includes a cycle damper 16 that can be in different operating states, including a fully open state, a closed state, and one or more continuous intermediate states. The cycle damper can be a butterfly valve. The mixing unit 10 can control the cycle damper 16 to control the flow rate of desiccant returning to the mixing unit 10 via return conduit B. Control of the cycle damper 16 can also be coupled to control of the exhaust port 44 and / or the inlet port 42.

[0166] 5, the mixing chamber 12 may include an inlet port 18 in fluid communication with a humidifier 60. Water vapor H from the humidifier may enter the mixing chamber 12 via the inlet port 18.

[0167] 5 operates to control the mixture ratio of the external gas inflow flow rate E and the desiccant return flow rate B by controlling the cycle damper 16, the inlet 42, and the outlet 44 in combination. Thus, the desiccant return flow rate B, the external gas inflow flow rate E, and the desiccant exhaust flow rate D can be controlled in combination. The mixture ratio can be used as a parameter or variable for adjusting the desiccant, i.e., as a parameter or variable for controlling the humidity and / or temperature of the desiccant in the manner described above.

[0168] As mentioned above, the mixing unit 10 optionally includes a mixing chamber 12, as illustrated in the example of Figure 5. Alternatively or additionally, the mixing unit 10 may be embodied in any other suitable location, particularly within or including drying conduit A. Accordingly, the desiccant may be conditioned and / or the mixing ratio may be controlled in any other suitable location, particularly within or including drying conduit A.

[0169] 7 to 10 each illustrate an example of a battery manufacturing method disclosed herein. As mentioned above, any of the examples illustrated in FIGS. 7 to 10 can be performed using the battery manufacturing system disclosed herein, particularly the example illustrated in FIGS. 1 to 5. Therefore, reference will be made hereinafter to FIGS. 1 to 5.

[0170] 7 is a diagram illustrating one embodiment of a battery manufacturing method. The battery manufacturing method may include the following steps: S210: Providing a desiccant to the mixing unit 10; S220: Pre-humidifying the desiccant and supplying the pre-humidified desiccant to the drying unit 20; S230: Providing a battery component P to the drying unit 20; S240: Controlling the humidity of the desiccant by the mixing unit 10; Alternatively or additionally, controlling the temperature of the desiccant by the mixing unit 10; and S250: Supplying the desiccant from the mixing unit 10 to the drying unit 20. The battery component P may be a part of a secondary battery, and in particular may be a slurry deposited on an electrode substrate.

[0171] FIG. 8 illustrates an example of a battery manufacturing method. The battery manufacturing method may include the following steps: S310: providing a desiccant to the mixing unit 10; S320: pre-humidifying the desiccant and supplying the pre-humidified desiccant to the drying unit 20; S330: providing a battery component P to the drying unit 20; S340: adding external gas to the desiccant in the mixing unit 10 to control the humidity of the desiccant; S350: supplying the desiccant from the mixing unit 10 to the drying unit 20; S360: discharging a portion of the desiccant (actively or passively); and S370: supplying the desiccant from the drying unit 20 to the mixing unit 10. In particular, the desiccant may be diverted or recirculated from the drying unit 20 to the mixing unit 10. More specifically, the desiccant may move between the mixing unit 10 and the drying unit 20 in a cycle or circulation loop. The battery component P may be part of a secondary battery, particularly a slurry coated on an electrode substrate.

[0172] FIG. 9 illustrates an example of a battery manufacturing method. The battery manufacturing method may include the following steps: S410: providing a desiccant to the mixing unit 10; S420: pre-humidifying the desiccant and supplying the pre-humidified desiccant to the drying unit 20; S430: providing a battery component P to the drying unit 20; S440: determining the humidity and / or temperature of the desiccant in the mixing unit 10. The humidity and / or temperature of the desiccant may also be determined in the drying unit 20; S450: adding an external gas to the desiccant in the mixing unit 10 to control the humidity of the desiccant, where the inflow amount E of the external gas is controlled as a function of the determined humidity and / or temperature of the desiccant; S460: supplying the desiccant from the mixing unit 10 to the drying unit 20; S470: discharging (actively or passively) a portion of the desiccant; and S480: supplying the desiccant from the drying unit 20 to the mixing unit 10. In particular, the desiccant may be diverted or recirculated from the drying unit 20 to the mixing unit 10. More specifically, the desiccant may travel between the mixing unit 10 and the drying unit 20 in a cycle or circulation loop. The return flow rate B of the desiccant from the drying unit 20 to the mixing unit 10 may be controlled. The battery component P may be part of a secondary battery, and in particular may be a slurry coated on an electrode substrate.

[0173] FIG. 10 shows an example of a battery manufacturing method. The battery manufacturing method may include the following steps: S510: Providing a desiccant to the mixing unit 10; S520: Pre-humidifying the desiccant and supplying the pre-humidified desiccant to the drying unit 20; S530: Providing a battery component P to the drying unit 20; S540: Preconditioning an external gas; S550: Determining the humidity and / or temperature of the desiccant in the mixing unit 10. The humidity and / or temperature of the desiccant may also be determined in the drying unit 20; S560: Adding (pre-conditioned) external gas to the desiccant in the mixing unit 10 to control the humidity of the desiccant, where the inflow amount E of the external gas is controlled as a function of the determined humidity and / or temperature; S570: Supplying a desiccant from the mixing unit 10 to the drying unit 20; S580: Discharging (actively or passively) a portion of the desiccant. and S590: supplying a desiccant from the drying unit 20 to the mixing unit 10. In particular, the desiccant may be diverted or recirculated from the drying unit 20 to the mixing unit 10. More specifically, the desiccant may move between the mixing unit 10 and the drying unit 20 in a cycle or circulation loop. A return flow rate B of the desiccant from the drying unit 20 to the mixing unit 10 may be controlled. The battery component P may be part of a secondary battery, and in particular may be a slurry coated on an electrode substrate. [Explanation of symbols]

[0174] 10 Mixing Unit 12 Mixing Chamber 14 Control Unit 16 Cycle Damper 18 injection port 20 Drying Unit 22 Drying chamber 24 Containment Unit 26 Blower 30 Flow Generator 40 port system 42 inlet port 44 Exhaust port 50 Heater 60 humidifier 70 Heat exchanger 80 Sensing device 82, 83, 84, 86, 88 sensors 90 Filter System

Claims

1. providing a battery component to a drying unit; providing a desiccant to the mixing unit; controlling the humidity and / or temperature of the desiccant by a mixing unit; and supplying a desiccant from the mixing unit to the drying unit; the humidity and / or temperature of the desiccant is controlled by adding an external gas to the desiccant in the mixing unit; The inflow of the external gas is controlled as a function of the temperature of the external gas, The battery manufacturing method further comprising determining the humidity and / or temperature of the external gas before adding the external gas to the desiccant in the mixing unit.

2. The battery manufacturing method of claim 1 , further comprising the step of introducing water vapor directly into the mixing unit.

3. 10. The battery manufacturing method of claim 1, further comprising diverting the desiccant from the drying unit to the mixing unit to establish a desiccant circulation.

4. The battery manufacturing method of claim 1 , further comprising determining the humidity and / or temperature of the desiccant.

5. The inflow of external gases is The humidity of the desiccant and The temperature of the desiccant, 10. The battery manufacturing method of claim 1, wherein the temperature is controlled as a function of at least one of the humidity of the external gas and the temperature of the external gas.

6. The battery manufacturing method of claim 1 , further comprising the step of heating the desiccant flowing from the mixing unit to the drying unit.

7. A battery manufacturing system configured to carry out the battery manufacturing method according to any one of claims 1 to 6, The battery manufacturing system includes: a drying unit configured to house the battery components; a mixing unit configured to condition the desiccant; a flow generator configured to move the desiccant from the mixing unit to the drying unit to dry the battery components.

8. The battery manufacturing system of claim 7 , further comprising a humidifier configured to introduce water vapor directly into the mixing unit.

9. The battery manufacturing system of claim 7 , wherein the flow generator is further configured to cyclically redirect the desiccant from the drying unit to a mixing unit.

10. The humidity of the desiccant and The temperature of the desiccant, Humidity of the external gas, The battery manufacturing system of claim 7 , further comprising a sensing device configured to determine at least one of a temperature of the external gas.

11. 10. The battery manufacturing system of claim 7, comprising a port system configured to control external gas added to the desiccant to condition the desiccant.

12. The port system comprises: The humidity of the desiccant and The temperature of the desiccant, 12. The battery manufacturing system of claim 11, operable by the mixing unit to control the inflow of external gas as a function of at least one of humidity of the external gas and temperature of the external gas.

13. The battery manufacturing system of claim 7 , further comprising a heater configured to heat the desiccant flowing from the mixing unit to the drying unit.

Citation Information

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