High-temperature reduction device for waste battery recycling

By employing a monitoring and control system within the high-temperature reduction device for waste batteries, the device achieves stable internal temperatures and effective exhaust gas treatment, enhancing the recovery of valuable metals.

WO2025135704A1PCT designated stage expired Publication Date: 2025-06-26POSCO HLDG INC
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Patent Information

Application Number
PCT/KR2024/020429
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-18
Filing Date
2024-12-16
Publication Date
2025-06-26

AI Technical Summary

Technical Problem

The high-temperature reduction device for recycling waste batteries faces challenges in maintaining a stable internal temperature and effectively treating exhaust gases due to variations in raw material levels within the furnace.

Method used

The device incorporates a monitoring unit with measuring units for raw material level and temperature, along with an integrated control unit that adjusts raw material input and heating unit temperature to maintain a consistent internal temperature and optimize exhaust gas treatment.

Benefits of technology

This solution minimizes internal temperature deviations and stabilizes exhaust gas treatment, leading to a higher recovery rate of valuable metals and preventing pipe clogging in the environmental treatment unit.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a high-temperature reduction device for waste battery recycling, the device comprising: a charging unit for inputting raw materials; a heating unit for heating the raw materials inputted from the charging unit; a cooling unit for cooling a heat-treated product; a discharge unit for discharging a reactant cooled from the cooling unit; and a monitoring unit including a first measurement unit for measuring the level of the raw materials inputted by the charging unit for inputting the raw materials in a furnace and a second measurement unit for measuring the level of the raw materials inputted by the raw material charging unit in the heating unit.
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Description

High-temperature reduction device for recycling waste batteries

[0001] It relates to waste batteries and a high-temperature reduction device for recycling waste batteries.

[0002] As global demand for electric vehicles grows, the disposal of waste batteries generated from these vehicles is emerging as a social issue. Lithium secondary batteries, the primary raw material for these waste batteries, contain organic solvents, explosive materials, and heavy metals such as nickel, cobalt, manganese, and iron. However, nickel, cobalt, manganese, and lithium are valuable metals with high scarcity value. Therefore, the recovery and recycling processes for discarded lithium secondary batteries are emerging as a key research area.

[0003] For the typical recycling of the above-mentioned waste batteries, the waste batteries that have reached the end of their lifespan are subjected to a process of crushing, pulverizing, gravity sorting, and magnetic sorting to extract a black powder containing a mixture of positive and negative electrode materials. The black powder contains, for example, oxides of positive electrode materials such as nickel, cobalt, manganese, lithium, aluminum, and oxygen, and some impurities such as graphite and mixtures thereof, aluminum, and copper, which are negative electrode materials. Wet and dry processes are broadly utilized as methods for recovering valuable metals from the black powder.

[0004] The above wet process produces NiSO4, CoSO4, MnSO4, and Li2CO3 through leaching, solvent extraction, and lithium production. When the black powder is processed using a wet process, there is a problem that the graphite, which is the negative electrode material contained in the black powder, does not dissolve in a strong acid atmosphere, so the leaching process takes too long, and there is a problem that the yield is reduced because the black powder is separated together with the graphite.

[0005] Thus, high-temperature reduction equipment is a key component in the dry recycling process for spent batteries. Using this equipment, spent batteries are converted into desired reactants, which are then fed into downstream processes. To ensure high recovery rates of valuable metals, it is crucial to easily control the input temperature to the target.

[0006] However, due to the characteristics of the raw materials in the high-temperature reduction device, there is a problem in that the internal temperature change and the variability of the exhaust gas coming from the raw materials increase depending on the raw material level in the furnace.

[0007] The technical problem to be solved by the present invention is to provide a method for operating a high-temperature reduction device for recycling waste batteries, which minimizes the variability of internal temperature deviation according to the raw material level in the furnace and stably performs treatment of exhaust gas from the raw material.

[0008] According to one embodiment of the present invention, a high-temperature reduction device for recycling waste batteries may include a charging unit for charging raw materials, a heating unit for heating the raw materials charged from the charging unit, a cooling unit for cooling a heat-treated product, a discharge unit for discharging a reactant cooled from the cooling unit, and a monitoring unit including a first measuring unit for measuring a level of the raw materials charged by the charging unit within the furnace and a second measuring unit for measuring a temperature of the raw materials charged by the charging unit within the heating unit. In one embodiment, the device may include an environmental treatment unit for treating exhaust gas generated by a reaction of the raw materials within the heating unit.

[0009] In one embodiment, the monitoring unit may include a third measuring unit for measuring the temperature of the exhaust gas. In one embodiment, the environmental treatment unit for processing the exhaust gas may include a pipe section through which the exhaust gas generated from the heating unit passes.

[0010] In one embodiment, the integrated control unit may detect a signal from the monitoring unit and control the amount of raw material input into the charging unit or the temperature of the heating unit. In one embodiment, the integrated control unit may control additional input of the raw material into the charging unit when the temperature of the exhaust gas is measured to be 120°C or lower from the third measuring unit.

[0011] In one embodiment, the integrated control unit may control to additionally add the raw material to the charging unit when the first measuring unit measures that the charging level of the raw material is 70 to 80% or less based on 100% of the total height of the heating unit. In one embodiment, the integrated control unit may control the temperature of the heating unit so that a reactant in the shape of a flake of 3,000 ㎛ or more is not generated and discharged through the discharge unit.

[0012] In one embodiment, the first measuring unit can measure the level of the raw material according to at least one of ultrasound, lidar, and radar. In one embodiment, the apparatus includes a preheating unit for preheating the raw material fed from the charging unit, and a high-temperature heat treatment unit for heating the raw material to a temperature higher than that of the preheat treatment unit, and the high-temperature heat treatment unit can include a heat treatment unit in which heat treatment of the raw material is performed at a temperature range of 1,150 to 1,400°C.

[0013] In one embodiment, the high-temperature heat treatment section may include two or more heat treatment sections in a vertical or horizontal direction. In one embodiment, at least a portion of the preheat treatment section may include a space where the raw material is not filled.

[0014] In one embodiment, the raw material may be introduced into the charging section at a rate of 15 to 35 mm / min. In one embodiment, the integrated control unit may control the monitoring unit to adjust the temperature of the heating section to be controlled in a range of 800 to 1,400°C. In one embodiment, the second measuring unit may include a plurality of units, and may measure the temperatures of the preheat treatment section and the high-temperature heat treatment section, respectively.

[0015] According to one embodiment of the present invention, a high-temperature reduction device for recycling waste batteries includes a measuring unit for measuring a raw material loading level and a temperature inside the furnace and a control unit, thereby minimizing variability in internal temperature deviation according to the raw material level inside the furnace and stably performing treatment of exhaust gas coming from the raw material.

[0016] According to another embodiment of the present invention, a battery processing method for recycling a waste battery provides a waste battery processing method having the advantages described above.

[0017] FIG. 1a illustrates a high-temperature reduction device for recycling waste batteries according to one embodiment of the present invention, and FIG. 1b illustrates a high-temperature reduction device according to another embodiment of the present invention.

[0018] Figure 2 is a graph showing the change in raw material loading height and temperature over time in a high-temperature reduction device according to one embodiment of the present invention.

[0019] Figure 3 shows the change in raw material loading height and temperature over time in a high-temperature reduction device according to a comparative example of the present invention.

[0020] FIG. 4 is a graph showing the change in raw material loading height and temperature over time in a high-temperature reduction device according to one embodiment of the present invention.

[0021] FIGS. 5A and 5B are photographs of recovered reactants according to one embodiment of the present invention.

[0022] The terms first, second, and third, etc., are used to describe, but are not limited to, various parts, components, regions, layers, and / or sections. These terms are used only to distinguish one part, component, region, layer, or section from another part, component, region, layer, or section. Accordingly, a first part, component, region, layer, or section described below may be referred to as a second part, component, region, layer, or section without departing from the scope of the present invention.

[0023] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the present invention. As used herein, the singular forms "singular" and "comprising" include plural forms as well, unless the context clearly dictates otherwise. The word "comprising" as used herein specifies a particular feature, region, integer, step, operation, element, and / or component, but does not exclude the presence or addition of other features, regions, integers, steps, operations, elements, and / or components.

[0024] When a part is referred to as being "on" or "over" another part, it can be directly on or over the other part, or there may be other parts intervening. Conversely, when a part is referred to as being "directly on" another part, there are no other parts intervening.

[0025] Although not defined otherwise, all terms, including technical and scientific terms, used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which the present invention pertains. Terms defined in commonly used dictionaries are further interpreted to have meanings consistent with the relevant technical literature and the present disclosure, and are not to be construed as ideal or overly formal unless otherwise defined.

[0026] Hereinafter, embodiments of the present invention will be described in detail. However, these are presented as examples and the present invention is not limited thereto, and the present invention is defined solely by the scope of the claims set forth below.

[0027] FIG. 1a and FIG. 1b are a schematic diagram and a cross-sectional view of a high-temperature reduction device for recycling waste batteries according to one embodiment of the present invention.

[0028] Referring to FIGS. 1A and 1B, a high-temperature reduction device (10) for recycling waste batteries according to an embodiment of the present invention includes a charging unit (100) for charging raw materials, a heating unit (110) for heating the raw materials charged from the charging unit (100), a cooling unit (120) for cooling the heat-treated product, a discharge unit (130) for discharging the cooled reactant from the cooling unit (120), and a monitoring unit. The high-temperature reduction device (10) of the present invention refers to a heating furnace utilized in a step of charging battery shreds into a heating furnace capable of raising the temperature of the battery shreds to a temperature higher than the melting point, and relates to uniformly maintaining a temperature deviation within the heating furnace through the monitoring unit.

[0029] A high-temperature reduction device (10) may crush waste batteries, and, if necessary, subject waste battery crushed materials to gravity sorting, magnetic sorting, or classification sorting, and reduce them at high temperatures to produce a reactant containing oxides of nickel, cobalt, manganese, lithium aluminum, or oxygen as positive electrode materials and graphite and mixtures thereof as negative electrode materials, and some impurities such as aluminum and copper.

[0030] The charging unit (100) is a component for feeding raw materials, and the raw materials may be the previously described waste battery shreds. The waste battery shreds refer to materials that serve as the parent material for the battery shreds, or the material itself that has been completely shredded. The parent material for the battery shreds may include batteries that have reached the end of their useful life, waste batteries, and waste materials generated during the manufacturing process of lithium ion batteries.

[0031] Specifically, the waste battery may include positive electrode materials such as scrap, jelly rolls, and slurry that constitute the waste battery, defective products generated during the manufacturing process, residues within the manufacturing process, and generated debris. The parent material of the battery shredded material may then be manufactured into battery shredded material through a shredding process. The shredded material itself may be the shredded product itself, such as a black powder. In this way, recycling waste batteries to manufacture battery shredded material provides environmentally friendly and economical advantages.

[0032] In one embodiment, the raw material may be fed into the charging unit (110) at a rate of 15 to 35 mm / min. Specifically, the raw material may be fed at a rate of 20 to 25 mm / min. As the raw material is fed while satisfying the aforementioned range, the raw material can easily react in the heating unit and form a target reactant. If the raw material is fed faster than the aforementioned range, there is a problem that the reaction time is low and the speed is low. If the raw material is fed slower than the aforementioned range, there is a problem that the reaction time is excessively high and an excessive reaction product is discharged.

[0033] In one embodiment, the weight ratio of C / Ni in the raw material may be 20 or more. The weight ratio of C / Ni specifically means a value obtained by dividing the weight % of carbon by the weight % of nickel. In one embodiment, when the weight ratio of C / Ni in the raw material satisfies the above-mentioned range, the size of the powder particles is reduced, so that a spherical reactant having a particle size range of 500 to 3,000 μm, which is an optimal particle size ratio for acid treatment in a post-process, can be formed. When the weight ratio of C / Ni in the raw material is out of the above-mentioned range, it is difficult to form a spherical crushed product, and since the reactant is formed in a lumpy state, there is a problem that reduction by carbon is not completely achieved.

[0034] In one embodiment, the loading unit (100) may further include a pusher or a screw. The pusher may be configured to facilitate the injection of raw materials loaded through the loading unit (100).

[0035] The heating unit (110) is a component that heats the raw material fed from the charging unit (100). The heating unit (110) can feed raw materials such as waste battery shreds into a furnace capable of raising the temperature to a temperature higher than the melting point of the waste battery shreds. In this way, through the heating unit (110), a Ni-Co-Mn alloy and Li oxide containing valuable metals are generated, so that the valuable metals can be recovered in a subsequent process.

[0036] In one embodiment, the heating unit (110) may be characterized by heating the raw material introduced from the charging unit (100) at a heating rate of 1 to 10 °C / min. Specifically, the heating rate may be performed in a range of 2.0 to 5.0 °C / min.

[0037] In one embodiment, the heating unit (110) can be operated at a temperature range of 800 to 1,400° C. By performing heating at the above heating rate and in the above temperature range, a Ni-based alloy is formed with spherical particles of 100 to 3,000 μm, thereby increasing the recovery rate of valuable metals and Li.

[0038] Specifically, the heating unit (110) may include at least one induction coil. Specifically, the heating unit (110) may include one induction coil, and may use more than one induction coil. In FIG. 1A, one induction coil is used in the preheat treatment unit (111), and additional induction coils are used in the heat absorption unit (112) and the melting unit (113).

[0039] In one embodiment, the heating unit (110) may include a preheat treatment unit (111) for preheating the introduced raw material and a high-temperature heat treatment unit (not shown) for heating to a higher temperature than the preheat treatment unit (111). The high-temperature heat treatment unit may be a high-temperature reduction unit that is a member for reducing the raw material by heating to a higher temperature than the preheat treatment unit (111). In one embodiment, the high-temperature heat treatment unit may include two or more heat treatment units in a vertical or horizontal direction.

[0040] In one embodiment, the high-temperature heating unit may include a heat absorbing unit (112) and a melting unit (113) that heats at a temperature range higher than that of the heat absorbing unit (112) to form at least a portion of the melting layer. The heating unit (110) has the advantage of including sections with different temperatures, thereby increasing the recovery rate of valuable metals.

[0041] The preheat treatment unit (111) can be heated in a temperature range of 800°C or less. Specifically, the preheat treatment unit (111) can be heated in a temperature range of 700°C or less. The preheat treatment unit (111) has the main purpose of removing the electrolyte and separator from the waste battery shreds by preheating the raw material, the waste battery shreds, in the aforementioned range.

[0042] The heat absorbing unit (112) can be heated at a higher temperature range than the preheat treatment unit (111). Specifically, an endothermic reaction can occur in a range of 700 to 1200°C, more specifically, 700 to 900°C, and even more specifically, 800 to 900°C. Specifically, the heat absorbing unit (112) can cause an endothermic reaction in the aforementioned temperature range by a Boudouard reaction that converts CO2 gas into 2CO gas. By including the heat absorbing unit (112), the high-temperature reduction device (10) can have an environmentally friendly advantage by reducing carbon dioxide.

[0043] The melting section (113) can be heated at a higher temperature range than the heat absorbing section (112). Specifically, it can be heated at a temperature range of 1400°C or lower, more specifically, at a temperature range of 1150 to 1400°C or lower. In the melting section (113), any one metal material among nickel, cobalt, manganese, and copper can be melted and arranged in a spherical shape. The melting section (113) is a member in which heat treatment is performed at the above temperature range so that a Ni-Co-Mn alloy including a valuable metal and a Li oxide can be generated in the highest high-temperature reaction zone within the heating section (110).

[0044] Specifically, the melting section (113) is a section where, as heat treatment is performed in the aforementioned temperature range, the crushed material in which the anode, cathode, or separator is reduced into a laminated form is reduced into spherical grains (droplets) that are suitable for reacting in a post-process for extracting valuable metals, for example, a wet process.

[0045] The melting unit (113) can satisfy the Li recovery rate of 40 to 70%, specifically, 55 to 60%, as it is heated in the above-mentioned temperature range, and the Ni-Co-Mn alloy can satisfy the range of 55 to 95%, specifically, 85 to 95%, and more specifically, 85 to 90%. When the melting unit (113) exceeds the upper limit of the above-mentioned range, there is a problem that the Li recovery rate becomes excessively low, and when it exceeds the lower limit of the above-mentioned range, there is a problem that the recovery rate of the Ni-Co-Mn alloy becomes excessively low. In this way, the melting unit (113) has the advantage of increasing the recovery rate of the Ni-Co-Mn alloy and at the same time increasing the recovery rate of Li, as it is performed in the above-mentioned temperature range.

[0046] In one embodiment, the heating unit (110) includes a heating furnace (110_F) and a heating unit (110_H). The heating furnace (110_F) refers to a passage through which the introduced raw material passes through the heating unit (110). The heating unit (110_H) refers to a member that applies thermal energy to the heating furnace (110_F).

[0047] In the cross-section of the heating furnace (110_F), when the temperature is measured at any position in the short and long axes of the cross-section with respect to the center, the temperature difference between the center and the arbitrary position may be 250°C or less. The cross-section of the heating furnace (110_F) means that it is cut in a direction that is different from the direction in which the raw material progresses, for example, in a direction intersecting or perpendicular to it.

[0048] Specifically, the temperature difference may be the difference between the maximum temperature and the minimum temperature. If the temperature difference between the center and the arbitrary location is outside the temperature range, uniform heat transfer to the heating furnace (110_F) is not easy, which causes a problem in that the recovery rate of valuable metals is reduced.

[0049] In one embodiment, the heating element (110_H) includes at least one or more heating elements within the heating element (110), and the heating element (110_H) may apply heat energy by a method such as induction heating, gas heating, or resistance heating. In one embodiment, the heating element (110_H) may have a coil shape as a means for supplying the heat energy. In one embodiment, the wire of the coil may have a cross-section of any one of a circle, a square, a rectangle, an oval, a triangle, a trapezoid, a diamond, and a star, as non-limiting examples.

[0050] In one embodiment, the coil of the heating element (110_H) may have a pitch distance between the coils that becomes narrower as the distance from the center region of the coil increases. The center region of the coil refers to a region that includes a median value when the coil is wound in the longitudinal direction. The pitch of the coil refers to the distance between two effective coil edges when the coil is wound.

[0051] In induction heating, coil inductance is proportional to the number of coil turns. Specifically, coil inductance is proportional to the number of turns in the coil. Specifically, when the coil has more turns, the applied heat energy increases, while when the coil has fewer turns, the applied heat energy decreases.

[0052] By utilizing this principle, the coil of the heating unit (110_H) of the present invention implemented has an advantage in that the distance between the pitches of the coils becomes narrower as the distance from the central region of the coil increases, thereby dispersing the heat in the central region where the heat energy was previously concentrated. In one embodiment, the heating unit (110_H) is arranged in the preheat treatment unit (111), the heat absorption unit (112), and the melting unit (113), respectively, to control the temperature of the heating unit (110).

[0053] The heating unit (110) may be heated in a gas atmosphere containing oxygen, and the oxygen may be contained in a volume fraction of 5 vol% or less. In one embodiment, the heating unit (110) may be performed in an atmosphere having an oxygen partial pressure of 0.1 atm or less. As heating is performed in a gas atmosphere containing some oxygen in the aforementioned range, lithium oxide for lithium recovery can be easily formed, thereby improving the recovery rate of valuable metals.

[0054] In one embodiment, the preheat treatment section (111) within the heating section (110) may be performed at a power of 12.0 kW or more. Specifically, the preheat treatment section (111) may be performed at a power of 12.0 to 15.0 kW. Specifically, the power may be performed at a power of 12.0 to 14 kW.

[0055] In one embodiment, the melting portion (113) within the heating portion (110) may be operated at a power of 16.0 kW or more. Specifically, the power may be operated at a power of 16.0 to 19.0 kW. Specifically, the power may be operated at a power of 17.5 to 18.5 kW.

[0056] The power applied in the above preheat treatment section (111) and melting section (113) may mean the minimum energy required to heat the reactant, and by satisfying the above range, the power can perform heat treatment in the target temperature range.

[0057] In one embodiment, the residence time of the reactant within the heating unit (110) may be 5 to 7 hours. The residence time may mean a value obtained by dividing the entire length of the heating unit (110) by the movement distance of the reactant per hour. For example, in a heating unit (110) that produces reactant at 65 kg / hr, if the length of the heating unit (110) is 285 cm, the reactant moves at about 44 cm per hour and passes after remaining within the heating unit (110) for about 6.5 hours.

[0058] When performed within the above-described residence time of the heating unit (110), there is an advantage of improving the recovery rate of valuable metals such as Li and Ni, Co, and Mn in the heating unit (110). If the above-described residence time is outside the above-described range, not only is Li lost, but the particle size of the reduced valuable metal increases, which causes a problem of a longer post-process leaching time.

[0059] In one embodiment, the target temperature of the preheat treatment section (111) in the heating section (110) can satisfy the following equation 1.

[0060] <Formula 1>

[0061] T 111 ≥ 0.813(x / (Cp×m) + 25)

[0062] (In the above equation 1, x is the input energy [W], Cp is the specific heat [J / Kg-℃], and m is the material transport amount [Kg / s])

[0063] In one embodiment, the target temperature of the melting portion (113) in the heating portion (110) can satisfy the following equation 2.

[0064] <Formula 2>

[0065] T 113 ≥ 0.4(x / (Cp×m) + 700)

[0066] (In the above equation 2, x is the input energy [W], Cp is the specific heat [J / Kg-℃], and m is the material transport amount [Kg / s])

[0067] The above equations 1 and 2 specifically represent the target temperatures of the preheat treatment section (111) and the melting section (113) within the heating section (110) and the minimum value of the supply energy of the reactants to be introduced. By introducing the minimum energy of equations 1 and 2, the target temperatures of the preheat treatment section (111) and the melting section (113) can be reached. In one embodiment, x in equation 1 may be 12,000 W or more. In one embodiment, x in equation 2 may be 16,000 W or more.

[0068] By controlling the target temperature according to the supply energy of the reactants as in Equations 1 and 2 above, there is an advantage in that the recovery rate of valuable metals such as Li, Ni, Co, and Mn can be improved. If heating is performed in a temperature range outside the range of Equations 1 and 2 above, there is a problem in that the recovery rate of valuable metals decreases.

[0069] The cooling unit (120) includes a step of cooling the reactant generated through the heating unit (110) to 100°C or lower. The reactant may be a reduction reaction material generated through the heating unit (110). The cooling unit (120) can stabilize the reactant heated in the heating unit (110) as cooling proceeds within the aforementioned range.

[0070] The discharge unit (130) is a member through which a reactant containing a valuable metal cooled by the cooling unit (120) is discharged. The reactant containing the valuable metal may be composed of a Ni-Co-based alloy, a lithium compound, carbon, and other residual impurities. The impurities may include, for example, impurities such as Al, Cu, P, Na, Mg, and F.

[0071] In one embodiment, the high-temperature reduction device (10) may recover reactants from the raw material at a rate of 60% or more based on the total raw material. Specifically, the weight of the waste battery shreds before being fed into the furnace may have a recovery rate of 60 to 65% or more of the reactants after heat treatment. In one embodiment, the Ni-Co content of the reactants after heat treatment may be 40% or more of the total weight.

[0072] The high-temperature reduction device (10) may include a magnetic separation unit for magnetically separating the recovered alloy after cooling. The magnetic separation unit may be positioned within the discharge unit (130) or may be positioned separately from the discharge unit (130).

[0073] In one embodiment, the magnetic separator can magnetically separate a Ni-Co-based alloy using a magnetic field strength of 100 Gauss or greater. By performing magnetic separation at a magnetic field strength of 100 Gauss or greater, the recovery rate of valuable metal alloys can be increased by separating the Co-based alloy having magnetic properties.

[0074] In one embodiment, the discharge unit (130) may further include a stepper. The stepper may be, for example, a member having elasticity, and may be a means for more precisely and easily discharging the amount of reactant discharged from the discharge unit (130).

[0075] In one embodiment, the high-temperature reduction device (10) may further include at least one suction port. The suction port may be a member for controlling and ventilating the gas concentration and heat within the heating furnace. The suction port may be arranged, for example, in the section of the input port, which is a front-end member of the heating unit (110), or the cooling unit (120), which is a rear-end member of the heating unit (110).

[0076] The monitoring unit may include a first measuring unit that measures the level of raw material fed into the furnace by the feeding unit (100) that feeds the raw material, and a second measuring unit that measures the temperature of the raw material fed into the heating unit by the feeding unit (100). Specifically, the monitoring unit may check the temperature of the heating unit within the high-temperature reduction device or the level of the raw material fed into the heating unit.

[0077] In one embodiment, the first measuring unit can measure the level of the raw material based on at least one of ultrasound, lidar, and radar. Specifically, the first measuring unit can determine characteristics of the shredded battery material, such as the tap density, loaded from the loading unit (100) into the heating unit (110).

[0078] In one embodiment, the first measuring unit can measure the shrinkage characteristics of the raw material loaded from the loading unit (100). In one embodiment, the first measuring unit can measure the loading level of the raw material, and when the loading level is 70 to 80% or less of the total height of the furnace, the raw material can be controlled to be further loaded into the loading unit (110). Specifically, the first measuring unit can further load the raw material when the loading level of the raw material is 70 to 80% or less of the total height of the heating unit (110).

[0079] In one embodiment, at least a portion of the preheat treatment unit (111) may include a space where the raw material is not filled. Specifically, the charging level of the raw material may be controlled so that the raw material does not fill 100% of the space of the preheat treatment unit (111) and heat escapes to the outside through the environmental treatment unit. By maintaining the charging level within the aforementioned range, the heat emitted onto the raw material can be maintained evenly, and problems such as exhaust gas heading to the environmental treatment unit accumulating and clogging a pipe connected to the environmental treatment unit can be prevented.

[0080] In one embodiment, the second measuring unit may include a temperature measuring sensing unit, such as a thermometer. The second measuring unit is intended to measure the temperature of a heating element within the heating element (110), and may be, for example, positioned outside the heating element (110) to measure the temperature of the heating element.

[0081] In one embodiment, an environmental treatment unit for treating exhaust gas generated by the reaction of the raw material within the heating unit (110) may be included. The environmental treatment unit may be a member that captures byproducts generated during the heating process of the raw material within the heating unit (110), such as gases containing carbon dioxide or fluorine. However, the byproducts may accumulate and clog the pipes through cooling in the pipes where gases or dust are discharged during the high-temperature reduction process of the battery shredder, thereby increasing the pressure within the furnace and preventing gas discharge, thereby impeding the function of the environmental treatment unit. To solve this problem, it is important to maintain an appropriate temperature in the pipes.

[0082] In one embodiment, the piping connected to the environmental treatment unit can be controlled to a temperature of 100°C or higher. Specifically, the temperature can be controlled to a temperature of 120°C or higher. If the temperature is maintained below the aforementioned range, there is a problem in which gas or dust accumulates in the piping unit due to cooling. The aforementioned problem can be solved by monitoring the temperature of the exhaust gas through the first to third measuring units, and if the exhaust gas temperature is low, increasing the raw material loading level to increase the temperature of the exhaust gas.

[0083] In one embodiment, the monitoring unit may include a third measuring unit that measures the temperature of the exhaust gas. In one embodiment, the third measuring unit may measure the temperature of the exhaust gas when it is discharged into the environmental treatment unit. The third measuring unit functions to maintain an appropriate temperature of the exhaust gas so that the exhaust gas can smoothly escape into the environmental treatment unit while preventing clogging of the piping section, and may also prevent the temperature within the heating unit (110) from becoming excessively high.

[0084] In one embodiment, the integrated control unit can detect a signal from the monitoring unit and control the input amount of the raw material of the charging unit (100) or the temperature of the heating unit (110). The integrated control unit can control the monitoring unit including the first measuring unit, the second measuring unit, and the third measuring unit, the charging unit (100), and the heating unit (110). Specifically, the integrated control unit can detect signals received from the first measuring unit, the second measuring unit, and the third measuring unit and control the charging unit (100) and the heating unit (110).

[0085] When it is measured through the first, second, and third measuring units that the temperature of the heating unit (110) is lowered or the loading level of the raw material is excessively low, the temperature of the heating unit (110) can be increased to prevent the battery shreds from being reduced to a reactant at low temperatures. In addition, by measuring the temperature inside the heating unit (110) and the temperature of the exhaust gas emitted from the battery shreds, the phenomenon of the exhaust gas accumulating and clogging the pipe can be prevented in advance.

[0086] In one embodiment, the integrated control unit can control the monitoring unit to adjust the temperature of the heating unit to be controlled within a range of 800 to 1,400°C. Specifically, the integrated control unit can adjust the temperature of the heating unit (110) to be controlled within a range of 1,200 to 1,400°C based on a signal detected from the monitoring unit.

[0087] The temperature of the heating unit (110) can be controlled by measuring the temperature of the exhaust gas and the temperature of the heating furnace by the third measuring unit and the second measuring unit. At this time, the temperature of the heating unit (110) can be maintained at a uniform temperature, and clogging of the pipe due to cooling of dust in the pipe can be prevented, thereby enabling normal operation.

[0088] In another embodiment, the high temperature reduction device (10) may be implemented in a horizontal form rather than a vertical form, and may be appropriately changed according to changes in the design of the process.

[0089] Hereinafter, preferred embodiments and comparative examples of the present invention are described. However, the following examples are only preferred embodiments of the present invention, and the present invention is not limited to the following examples.

[0090]

[0091] <Experimental Example 1>: Reduction rate of raw material loading level according to temperature

[0092] Figure 2 shows the reduction rate of the height of the raw material according to temperature.

[0093] Referring to Figure 2, the height of the raw material was measured by the first measuring section while the furnace was heated to the target temperature of 1,310℃ after the furnace was 100% filled with raw material. This measurement allows for the identification of changes in the characteristics of the raw material depending on the temperature of the charged material. Specifically, a certain amount of time is required for the raw material to maintain the target temperature and for sufficient heat to be transferred to the furnace interior to become a reactant.

[0094]

[0095] <Experimental Example 2>: Control of clogging of pipes in the environmental treatment unit according to raw material loading level control.

[0096] Figures 3a and 3b are photographs of piping connected to an environmental treatment unit.

[0097] Fig. 3a is a photograph of the inside of the pipe before the raw material loading height is controlled to an appropriate level, and Fig. 3b is a photograph of the inside of the pipe after the raw material loading height is controlled to be continuously maintained at an appropriate level, specifically, about 70 to 80% of the entire heating section (110) based on 100%. Referring to Fig. 3a, it can be confirmed that dust accumulations such as tar have accumulated inside the pipe. Referring to Fig. 3b, it can be confirmed that exhaust gas is easily discharged without dust accumulations such as tar inside the pipe. Through this, it was confirmed that clogging of the pipe can be prevented by controlling the raw material loading level.

[0098]

[0099] <Experimental Example 3>: Status of reactant recovery according to raw material loading level control

[0100] FIG. 4 is a graph showing the change in raw material loading height and temperature over time in a high-temperature reduction device according to one embodiment of the present invention.

[0101] Referring to Figure 4, in the case of battery shredders for which preprocessing conditions are easily achieved, it can be confirmed that the raw material fed into the charging section is uniformly fed at a speed of 30 mm / min. Then, after reaching the target temperature of 1,320°C, the heating section is reached and temperature control begins.

[0102] The temperatures of the first and second measuring sections are controlled by the integrated control unit to maintain the temperature, and the level of the charged raw material fluctuates depending on the shrinkage characteristics of the charged raw material. Here, it is very important to control the charging level at the 70 to 80% point. If the raw material charging level falls below the 70 to 80% range, the heat of the preheating section rapidly loses upward, and accordingly, the temperature fluctuation range of the preheating section increases. This may cause problems in the reaction of the raw material. Therefore, if the charging height of the raw material rapidly changes at the time of discharge of the reactants, the temperature fluctuation range of the preheating section increases again.

[0103] Thus, to address the temperature control deviations within the furnace that occur depending on the height of the raw material, the charging level conditions must be carefully controlled, taking into account both the shrinkage characteristics of the raw material and the temperature control discharge conditions, so that the height of the charging section can be controlled according to each condition. Consequently, the variability of the reactants generated within the furnace also increases, and this affects the form of the reactants fed into the downstream process, leading to a problem of reduced recovery rates.

[0104] Charge control 3000 ㎛ or more Flake form 3000 ㎛ or less Droplet Environmental treatment Pipe blockage 80% or more Occurrence rate reduction O 70 ~ 80% Control No occurrence Good X 70% or less Occurrence rate reduction X

[0105] Table 1 below shows the form of reactants that affect the recovery rate depending on whether or not the raw material charging level is controlled. When the raw material charging level is controlled to 70 to 80% based on 100% of the entire heating section, flakes that affect the recovery rate are hardly generated, and when the level is 80% or more or 70% or less, the temperature fluctuation range of the preheating section increases, causing a temperature change inside the furnace, which can be confirmed to cause the generation of reactants in the form of flakes. Figures 5a and 5b are photographs of recovered reactants according to one embodiment of the present invention.

[0106] Figure 5a shows the shape of the recovered reactant in the form of flakes when the charging level is low, and Figure 5b shows the shape of the recovered reactant when the charging level is maintained within the range of the present invention. Referring to Figures 5a and 5b, it was confirmed that the shape of the recovered reactant was easily controlled by maintaining the charging level at an appropriate level.

[0107]

[0108] Although the preferred embodiments have been described in detail above, the scope of the present invention is not limited thereto, and various modifications and improvements made by those skilled in the art using the basic concepts defined in the following claims also fall within the scope of the present invention.

[0109] [Explanation of symbols]

[0110] 10: High temperature reduction device 100: Charging section

[0111] 110: Heating section 120: Cooling section

[0112] 130: Exhaust section 111: Preheat treatment section

[0113] 112: Heat absorbing part 113: Melting part

[0114] 110_F: Heating furnace 110_H: Heating unit

Claims

1. Charging section for charging raw materials; A heating unit for heating the raw material fed from the charging unit; A cooling unit for cooling the heat-treated product; A discharge unit for discharging the cooled reactant from the above cooling unit; and A high-temperature reduction device for recycling waste batteries, comprising a monitoring unit including a first measuring unit for measuring the level of raw materials fed by the feeding unit, and a second measuring unit for measuring the temperature of the raw materials fed by the feeding unit within the heating unit.

2. In paragraph 1, A high-temperature reduction device for recycling waste batteries, comprising an environmental treatment unit that treats exhaust gas generated by the reaction of the raw material in the heating unit.

3. In paragraph 2, The environmental treatment unit for processing the above exhaust gas is a high-temperature reduction device for recycling waste batteries, which includes a pipe section through which the exhaust gas generated from the heating section passes.

4. In paragraph 2, A high-temperature reduction device for recycling waste batteries, wherein the monitoring unit includes a third measuring unit that measures the temperature of the exhaust gas.

5. In paragraph 4, A high-temperature reduction device for recycling waste batteries, comprising an integrated control unit that detects a signal from the monitoring unit and controls the amount of raw material input into the charging unit or the temperature of the heating unit.

6. In paragraph 5, When the above integrated control unit measures from the third measuring unit that the temperature of the exhaust gas is 120°C or lower, A high-temperature reduction device for recycling waste batteries, which controls additional input of the raw material into the charging section.

7. In paragraph 5, The above integrated control unit, when the first measuring unit measures that the loading level of the raw material is 70 to 80% or less based on 100% of the total height of the heating unit, A high-temperature reduction device for recycling waste batteries, which controls additional input of the raw material into the charging section.

8. In paragraph 7, The above integrated control unit is a high-temperature reduction device for recycling waste batteries that controls the temperature of the heating unit so that a flake-shaped reactant of 3,000 ㎛ or more is not generated through the discharge unit.

9. In paragraph 1, A high-temperature reduction device for recycling waste batteries, wherein the first measuring unit measures the level of the raw material according to at least one of ultrasound, lidar, and radar.

10. In paragraph 1, A preheat treatment section for preheating the raw material fed from the above charging section; Includes a high temperature heat treatment section that heats to a higher temperature than the above preheat treatment section, A high-temperature reduction device for recycling waste batteries, wherein the high-temperature heat treatment unit includes a heat treatment unit in which heat treatment of the raw material is performed at a temperature range of 1,150 to 1,400°C.

11. In paragraph 1, The above high temperature heat treatment unit is a high temperature reduction device for recycling waste batteries, which includes two or more heat treatment units in a vertical or horizontal direction.

12. In paragraph 10, A high-temperature reduction device for recycling waste batteries, comprising a space in at least a portion of the above preheat treatment section in which the raw material is not filled.

13. In paragraph 1, A high-temperature reduction device for recycling waste batteries, wherein the above raw materials are fed into the charging section at a speed of 15 to 35 mm / min.

14. In paragraph 1, A high-temperature reduction device for recycling waste batteries, wherein the integrated control unit controls the monitoring unit to control the temperature of the heating unit to be within a range of 800 to 1,400°C.

15. In paragraph 10, The above second measuring unit comprises a plurality of: A high-temperature reduction device for recycling waste batteries, which measures the temperatures of the above-mentioned preheat treatment section and the above-mentioned high-temperature heat treatment section, respectively.

Citation Information

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