Sintering device and dismounting method
The problem of low disassembly efficiency of the sintering device is solved by the hinged structure of the support and movable parts and the design of the heat dissipation parts, and the effects of rapid disassembly and simplified installation are achieved.
Patent Information
- Application Number
- CN202510851904.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2025-09-19
AI Technical Summary
The existing sintering device is inefficient during the disassembly process, and the sintering processing mechanism needs to be disassembled into multiple parts, which is cumbersome and inefficient.
The support member and the movable member are hinged in a structure, and the movable member can be rotated through the detachable connection between the support member and the support frame, thereby simplifying the disassembly process and rapidly dissipating heat from the accommodating cavity and the conveyor belt through the heat dissipation member.
The disassembly and installation efficiency of the sintering processing mechanism are improved, the disassembly steps are simplified, and the maintenance convenience of the equipment is enhanced.
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Figure CN120667912A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of sintering, and in particular to a sintering device and a disassembly method. Background Art
[0002] During the production and processing of photovoltaic panels, a sintering device uses sintering lamps to bake the panels at low temperatures and then sinter them at high temperatures. This dries the slurry on the panels and burns off the organic components within the slurry, thereby forming a good ohmic contact electrode on the panels. Different panels require different sintering mechanisms. Currently, when sintering different panels or when the sintering mechanism needs to be moved, the sintering mechanism must be disassembled into multiple parts to separate it from the conveyor mechanism. This disassembly process is cumbersome and results in low efficiency. Summary of the Invention
[0003] Therefore, the technical problem to be solved by the present invention is to provide a sintering device and a disassembly method, which can improve the disassembly efficiency of the sintering processing mechanism in the sintering device.
[0004] In order to solve the above technical problems, the present invention provides a sintering device, including: a support assembly, including a support member; a movable assembly, including a movable member and a sintering member, the movable member is hinged to the support member, the sintering member is connected to the movable member, and an accommodating cavity is formed between the movable member and the support member, a feeding channel is provided in the accommodating cavity, and the working side of the sintering member faces the feeding channel; a conveying assembly, including a conveyor belt, the conveyor belt is movable, and the conveying path of the conveyor belt passes through the feeding channel.
[0005] In one embodiment of the present invention, the support assembly further includes a first heat dissipation member, the support member is provided with a first heat dissipation cavity, the first heat dissipation cavity is located in the accommodating cavity, and the first heat dissipation member is located in the first heat dissipation cavity.
[0006] In one embodiment of the present invention, the first heat dissipation member is provided with a heat dissipation opening facing the feeding channel, the heat dissipation opening passes through the first heat dissipation member, and a side wall of the heat dissipation opening is provided with a groove.
[0007] In one embodiment of the present invention, a connector is provided on the side wall of the support member, the connector is communicated with the first heat dissipation cavity, and the connector is used to introduce inert gas into the first heat dissipation cavity.
[0008] In one embodiment of the present invention, the support assembly further includes a connecting rod, which is provided with a thread. The connecting rod passes through the side wall of the support member, and the end of the connecting rod is connected to the first heat dissipation member. A locking member is threadedly connected to the connecting rod, and the locking member can be abutted against the support member.
[0009] In one embodiment of the present invention, a cooling component is further included. The cooling component includes a second heat sink. The output end of the second heat sink faces the conveyor belt. There is a gap between the second heat sink and the conveyor belt.
[0010] In one embodiment of the present invention, the cooling assembly further includes a connecting frame, the connecting frame includes at least two connecting columns, a second heat dissipation cavity is formed between two adjacent connecting columns, and the conveyor belt is located between the second heat dissipation element and the second heat dissipation cavity.
[0011] In one embodiment of the present invention, the conveying assembly further includes at least two tensioning rollers and at least two driven rollers, the tensioning roller is in contact with the conveyor belt, the driven roller is located in the space surrounded by the conveyor belt, and the second heat dissipation element is located between the two driven rollers.
[0012] In one embodiment of the present invention, the conveying assembly also includes a driving member and at least two mounting frames, the mounting frame is rotatably connected to a rotating roller, the output end of the driving member is connected to one of the rotating rollers, the conveyor belt is sleeved on the rotating roller, and the support member and the movable member are located between the two mounting frames.
[0013] In one embodiment of the present invention, a plurality of positioning members are provided on the conveyor belt along the conveying path. The positioning members include symmetrically arranged positioning rods, and the angle between the center line of the positioning rod and the plane where the conveyor belt is located is an acute angle.
[0014] In one embodiment of the present invention, the side walls on opposite sides of the support member are provided with a first opening, and the side walls on opposite sides of the movable member are provided with a second opening, and the first opening and the second opening constitute the input end and the output end of the feeding channel.
[0015] In one embodiment of the present invention, a hinge block is connected between the support member and the movable member, a quick lock member is connected to the side of the support member away from the hinge block, and a lock hook is connected to the side of the movable member away from the hinge block, and the locking end of the quick lock member can be engaged with the lock hook.
[0016] The present invention also provides a disassembly method for a sintering device, which is performed using the above-mentioned sintering device, including: S1: disconnecting the electrical connection of the sintered part; S2: rotating the movable part to move the sintered part away from the conveyor belt; S3: disassembling the support part, pulling the conveyor belt out of the accommodating cavity, and simultaneously removing the support part and the movable part.
[0017] The above technical solution of the present invention has the following advantages over the prior art:
[0018] The sintering device and disassembly method described in the present invention enable the movable part to rotate by articulating the support member and the movable part, and by detachably connecting the support member and the support frame. This facilitates the disassembly of the support member, and thus the disassembly of the sintering processing mechanism, eliminating the need to disassemble the sintering processing mechanism into multiple parts. This improves disassembly efficiency and also improves the installation efficiency of the sintering processing mechanism. The first heat sink and the heat dissipation port on the first heat sink enable the first heat sink to quickly dissipate heat from the accommodating cavity. The second heat sink is configured so that the second heat sink can dissipate heat from the conveyor belt. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] In order to make the contents of the present invention more clearly understood, the present invention is further described in detail below based on specific embodiments of the present invention in conjunction with the accompanying drawings.
[0020] Figure 1 It is a structural schematic diagram of a sintering device of the present invention;
[0021] Figure 2 yes Figure 1 Schematic diagram of part of the structure;
[0022] Figure 3 It is a structural diagram of the sintering processing mechanism;
[0023] Figure 4 It is a structural diagram of the support assembly;
[0024] Figure 5 It is a top view of the sintering process mechanism;
[0025] Figure 6 yes Figure 5 Cross-sectional view at the AA position;
[0026] Figure 7 It is a structural diagram of the conveying component and the cooling component.
[0027] Explanation of the reference numerals in the accompanying drawings in the specification: 1. Support frame; 2. Movable part; 3. Support member; 4. Conveying assembly; 5. Second heat dissipation member; 6. Product to be processed; 21. Mounting member; 22. First ventilation pipe; 23. Sintered part; 24. Fan; 25. Second ventilation pipe; 26. Insulating glass plate; 27. Filter glass plate; 28. Locking hook; 29. Third heat dissipation member; 31. Hinge block; 32. Quick lock member; 33. Connecting head; 34. First heat dissipation member; 35. Connecting rod; 36. Heat dissipation port; 37. Groove; 41. Conveyor belt; 42. Positioning member; 43. Mounting frame; 44. Driving member; 45. Tensioning roller; 46. Driven roller; 47. Second connecting plate; 51. Connecting frame; 52. First connecting plate; 53. Connecting column; 201. Heating tube. DETAILED DESCRIPTION
[0028] The present invention will be further described below with reference to the accompanying drawings and specific embodiments so that those skilled in the art can better understand the present invention and implement it. However, the embodiments are not intended to limit the present invention.
[0029] Example 1
[0030] Reference Figure 1 and Figure 2 As shown, a sintering device of the present invention includes: a supporting assembly including a supporting member 3; a movable assembly including a movable member 2 and a sintering member 23, wherein the movable member 2 is hinged to the supporting member 3, and the sintering member 23 is connected to the movable member 2, and an accommodating cavity is formed between the movable member 2 and the supporting member 3, and a feeding channel is provided in the accommodating cavity, and the working side of the sintering member 23 faces the feeding channel; a conveying assembly 4 including a conveyor belt 41, wherein the conveyor belt 41 is movable, and the conveying path of the conveyor belt 41 passes through the feeding channel.
[0031] In a sintering device of this embodiment, a conveyor belt 41 drives the product to be processed 6 to move to the feeding channel until the product to be processed 6 moves to the corresponding position of the sintered part 23, so that the sintered part 23 can process the product to be processed 6. When the sintering processing mechanism needs to be disassembled, the electrical connection of the sintered part 23 is disconnected, the movable part 2 is rotated, and the movable part 2 is flipped, so that the sintered part 23 is away from the conveyor belt 41. Finally, the support part 3 is disassembled, the conveyor belt 41 is pulled out of the accommodating cavity, and the support part 3 and the movable part 2 are removed at the same time, thereby completing the disassembly of the sintering processing mechanism. By hingedly connecting the support part 3 and the movable part 2, the movable part 2 can be rotated, thereby facilitating the disassembly of the sintering processing mechanism, and there is no need to disassemble the sintering processing mechanism into multiple parts, thereby improving the disassembly efficiency.
[0032] The supporting assembly and the movable assembly together constitute a sintering processing mechanism, which is used to perform sintering processing on the product 6 to be processed.
[0033] The sintering device further comprises a support frame 1 , to which the support assembly, the movable assembly, the conveying assembly 4 and the cooling assembly are all connected.
[0034] Reference Figure 3As shown, the support assembly includes a support member 3, which is detachably connected to the support frame 1 by bolts, and the movable assembly includes a movable member 2 and a sintered member 23. The movable member 2 is hinged to the support member 3. Specifically, a hinge block 31 is connected between the support member 3 and the movable member 2. The hinge block 31 can be regarded as a hinge. Two quick lock members 32 are connected to the side of the support member 3 away from the hinge block 31. The quick lock members 32 can be regarded as quick lock fasteners. Two locking hooks 28 are connected to the side of the movable member 2 away from the hinge block 31. The locking hooks 28 correspond to the positions of the quick lock members 32. The locking end of the quick lock member 32 is provided with a movable ring. The ring can be sleeved on the locking hook 28 through the movement of the ring, so that the locking end of the quick lock member 32 can be engaged with the locking hook 28, thereby fixing the position of the support member 3 and the movable member 2, and at the same time enabling the support member 3 and the movable member 2 to maintain abutment. When the sintering mechanism is in operation, the locking hook 28 and the quick-locking member 32 are locked, the bottom side of the movable member 2 abuts the top side of the support member 3, and the movable member 2 and the support member 3 are in a closed state. When the sintering mechanism is in a detachable state, the locking hook 28 and the quick-locking member 32 are unlocked, and the movable member 2 is able to rotate. When the sintered part 23 is removed from the accommodating cavity, the movable member 2 and the support member 3 are in an open state.
[0035] The movable member 2 and the supporting member 3 define a receiving chamber, within which a feed channel is provided for the passage of the product 6 to be processed. The sintered member 23 can be considered a lamp used for the sintering process. The sintering apparatus also includes a controller, to which the sintered member 23 is electrically connected. The working side of the sintered member 23 faces the feed channel, thereby processing the product 6 located within the feed channel. The working side of the sintered member 23 is the light-emitting side of the sintered member 23.
[0036] The movable member 2 has an opening on one side near the support member 3. The movable member 2 includes a third heat dissipation cavity, which is located within the accommodating cavity. A first vent pipe 22 is provided on the movable member 2, communicating with the third heat dissipation cavity. The first vent pipe 22 is connected to an external exhaust member. The exhaust member can exhaust gas from the accommodating cavity to the outside through the first vent pipe 22, thereby dissipating heat from the product 6 to be processed and the conveyor belt 41 located within the accommodating cavity.
[0037] The movable assembly also includes a mounting member 21, which is detachably connected to the movable member 2 and located within the third heat dissipation cavity. A fourth heat dissipation cavity is defined within the mounting member 21, and an opening is provided at one end of the mounting member 21 proximal to the support member 3. A sintered component 23 is connected to the mounting member 21, with both ends of the sintered component 23 located outside the fourth heat dissipation cavity. In other words, the sintered component 23 passes through the mounting member 21 and is electrically connected to the controller at both ends. The sintered component 23 operates within the fourth heat dissipation cavity. The detachable arrangement of the mounting member 21 and the movable member 2 allows movement of the mounting member 23, which in turn drives the sintered component 23 with it, facilitating replacement and maintenance of the sintered component 23. A fan 24 and a second ventilation pipe 25 are also connected to the top of the mounting member 21. The second ventilation pipe 25 is connected to the fourth heat dissipation chamber. The fan 24 can blow external air toward the sintered member 23, thereby cooling the sintered member 23. After the air exchanges heat with the sintered member 23, it is discharged to the outside through the second ventilation pipe 25, thereby allowing the sintered member 23 to continuously dissipate heat and cool down. The open end of the mounting member 21 is also connected to an insulating glass plate 26. The insulating glass plate 26 is transparent, and the working side of the sintered member 23 faces the insulating glass plate 26, so that light emitted from the sintered member 23 can pass through the insulating glass plate 26 to process the product 6 to be processed. The insulating glass plate 26 is sealed to the edge of the open end of the mounting member 21, thereby preventing hot air from the fourth heat dissipation chamber from overflowing into the accommodating chamber. The third heat dissipation chamber is also equipped with a filter glass plate 27, which is removably connected to the side wall of the mounting member 21. The filter glass plate 27 corresponds to the insulating glass plate 26 and is capable of filtering a portion of the wavelength band of light emitted by the sintered member 23. Because the filter glass plate 27 is removably connected to the mounting member 21, a different filter glass plate 27 can be replaced based on the processing requirements of the product 6 to be processed. A heating tube 201 is also provided within the third heat dissipation chamber. The heating tube 201 is connected to the side wall of the mounting member 21 and extends toward the feed channel. When the temperature of the receiving chamber is too low, the heating tube 201 heats the chamber, raising its temperature and maintaining it within a specified temperature range.
[0038] Reference Figures 4 to 6As shown, the support assembly also includes a first heat sink 34. A first heat sink cavity is provided within the support member 3. The first heat sink cavity is located within the accommodating cavity. The feed channel is located between the first heat sink cavity and the third heat sink cavity. The first heat sink 34 is located within the first heat sink cavity. Specifically, the first heat sink 34 can be considered a liquid-cooled heat sink. The first heat sink 34 is connected to two liquid flow pipes, both of which are connected to an external refrigeration unit. The two liquid flow pipes are respectively used for cooling liquid input and cooling liquid output from the first heat sink 34. The refrigeration unit can cool the cooling liquid, thereby allowing the first heat sink 34 to dissipate heat from the accommodating cavity, and further dissipate heat from the conveyor belt 41 and the products to be processed 6 located on the conveyor belt 41. Preferably, the first heat sink 34 is provided with a heat dissipation port 36 facing the feed channel. The heat dissipation port 36 vertically penetrates the first heat sink 34, resulting in a rectangular ring-shaped cross-section of the first heat sink 34. The sidewalls of the heat dissipation port 36 are provided with a groove 37. The provision of the heat dissipation port 36 allows coolant to flow rapidly through the first heat sink 34, thereby enabling the first heat sink 34 to quickly dissipate heat from the accommodating cavity, thereby improving the heat dissipation efficiency of the first heat sink 34. In this embodiment, two first heat sinks 34 are provided in the first heat dissipation cavity. A different number of first heat sinks 34 may be provided depending on the volume of the accommodating cavity and the heat dissipation efficiency.
[0039] The support assembly also includes a connecting rod 35, which is provided with a thread. The connecting rod 35 extends through the bottom side wall of the support member 3. The end of the connecting rod 35 is connected to the first heat sink 34. A locking member is threadedly connected to the connecting rod 35. The locking member can be regarded as a nut. By rotating the locking member, the locking member can be abutted against the support member 3, thereby fixing the position of the first heat sink 34. By rotating the locking member away from the support member 3, the position of the first heat sink 34 can be adjusted. Preferably, a third heat sink 29 is provided in the fourth accommodating cavity. The third heat sink 29 is connected to the mounting member 21. The structure of the third heat sink 29 is the same as that of the first heat sink 34, and the connection method of the third heat sink 29 to the mounting member 21 is the same as the connection method of the first heat sink 34 to the support member 3. The description will not be repeated here. Through the provision of the third heat sink 29, when the fan 24 drives air to flow to the sintered member 23, the air flow can pass through the third heat sink 29, and the third heat sink 29 can cool the air, thereby further improving the heat dissipation efficiency of the sintered member 23.
[0040] The side wall of the support member 3 is also provided with two connectors 33, which are connected to the first heat dissipation cavity, and the connector 33 is connected to an external air supply device. The air supply device can pass an inert gas into the first heat dissipation cavity through the connector 33, and the inert gas can diffuse to the rest of the accommodating cavity. Preferably, the inert gas is nitrogen. By setting the inert gas into the accommodating cavity, the rapid oxidation of the product 6 to be processed can be avoided. Preferably, the bottom of the support member 3 is also connected to a vent hole, which is connected to the accommodating cavity, and the vent hole is connected to an external oxygen detection device. The oxygen detection device can detect the oxygen content in the accommodating cavity. When the oxygen content is too much, the ventilation flow of the air supply device to the first heat dissipation cavity is increased.
[0041] A first opening is provided on the sidewall opposite the support member 3, and a second opening is provided on the sidewall opposite the movable member 2. Both the first opening and the second opening are connected to the accommodating chamber. When the support member 3 and the movable member 2 are in a closed state, the first opening and the second opening constitute the input and output ends of the feeding channel. Specifically, the feeding channel is arranged horizontally, with the conveyor belt 41 located within the first opening, and the second opening is used to allow the product 6 to be processed on the conveyor belt 41 to pass through the accommodating chamber. The provision of the first and second openings allows the conveyor belt 41 and the product 6 to be processed to pass through the accommodating chamber while preventing the inert gas in the accommodating chamber from leaking out quickly, thereby reducing the leakage rate of the inert gas.
[0042] Reference Figure 7 As shown, the conveying assembly 4 includes a conveyor belt 41, a driving member 44, and at least two mounting brackets 43. The mounting bracket 43 is connected to the support frame 1. A rotating roller is rotatably connected to the opposite side of the mounting bracket 43. The driving member 44 can be regarded as a motor and is connected to the support frame 1. The output end of the driving member 44 is connected to the end of one of the rotating rollers, and the driving member 44 can drive the rotating roller to rotate. In this embodiment, there are two rotating rollers. The conveyor belt 41 is generally annular. The rotating roller is located within the range surrounded by the conveyor belt 41. The conveyor belt 41 is sleeved on the rotating roller and is tensioned and in contact with the rotating roller. The driving member 44 drives the rotating roller to rotate, thereby driving the conveyor belt 41 to move. The conveying path of the conveyor belt 41 passes through the feeding channel. Specifically, the feeding channel is located entirely on the conveying path of the conveyor belt 41, so that the conveyor belt 41 can drive the product 6 to be processed to move into the accommodating chamber. The sintered component 23 processes the product 6 to be processed located on the conveyor belt 41.
[0043] A plurality of positioning members 42 are provided along the conveying path of the conveyor belt 41. The positioning members 42 include symmetrically arranged positioning rods and support rods. The bottom ends of the support rods are connected to the conveyor belt 41, and the support rods are arranged perpendicular to the conveyor belt 41. One end of the positioning rod is connected to the top end of the support rod, and the other end of the positioning rod is connected to the conveyor belt 41. The centerline of the positioning rod forms an acute angle with the plane of the conveyor belt 41, resulting in the positioning rod being inclined. The product to be processed 6 is placed on the positioning rod. Since the positioning rod is inclined and symmetrically arranged, the product to be processed 6 can be engaged with the positioning part 42. The positioning part 42 can position the product to be processed 6 while preventing the product to be processed 6 from shaking during movement. At the same time, the product to be processed 6 is placed on the positioning part 42, so that there is a gap between the product to be processed 6 and the conveyor belt 41, so that the product to be processed 6 can be heated evenly, and the gap between the product to be processed 6 and the conveyor belt 41 can dissipate heat for the product to be processed 6 and the conveyor belt 41, preventing the temperature on the bonding side of the product to be processed 6 and the conveyor belt 41 from being too high after the product to be processed 6 and the conveyor belt 41 are bonded. This will cause damage to the product to be processed 6 and the conveyor belt 41.
[0044] The sintering apparatus also includes a cooling assembly, comprising a second heat sink 5. The output end of the second heat sink 5 faces the bottom side of the conveyor belt 41, which is located on top of the conveyor belt 41 for conveying the product 6 to be processed. The second heat sink 5 can be considered an air-cooled heat sink. A gap exists between the second heat sink 5 and the conveyor belt 41 to prevent friction between the two. The second heat sink 5 cools and dissipates heat from the conveyor belt 41 without interfering with the sintering mechanism.
[0045] The cooling assembly also includes a connecting frame 51, which is connected to the support frame 1. The connecting frame 51 includes at least two connecting posts 53. A second heat dissipation cavity is formed between two adjacent connecting posts 53. The conveyor belt 41 is located between the second heat dissipation element 5 and the second heat dissipation cavity. The provision of the second heat dissipation cavity can dissipate heat from the conveyor belt 41 and prevent the positioning element 42 from colliding with the support frame 1 during movement.
[0046] The conveyor assembly 4 also includes at least two tensioning rollers 45 and at least two driven rollers 46. The two tensioning rollers 45 are arranged opposite each other and in contact with the outer sidewall of the conveyor belt 41. The driven rollers 46 are located within the space enclosed by the conveyor belt 41 and in contact with the inner sidewall of the conveyor belt 41. The second heat sink 5 is located between the two driven rollers 46 and within the space enclosed by the conveyor belt 41. Preferably, the tensioning rollers 45 are provided with a receiving groove corresponding to the position of the positioning member 42. The positioning member 42 can pass through the receiving groove during movement, thereby preventing the positioning member 42 from colliding with the tensioning rollers 45 during movement. The provision of the tensioning rollers 45 maintains the conveyor belt 41 in a tensioned state. The provision of the driven rollers 46 increases the distance between the top and bottom sides of the conveyor belt 41, thereby improving the heat dissipation effect of the conveyor belt 41. By locating the second heat sink 5 within the space enclosed by the conveyor belt 41, the second heat sink 5 is prevented from being disposed externally and occupying additional volume, thereby reducing the overall volume of the sintering apparatus.
[0047] The second heat sink 5 is connected to the support frame 1 via a first connecting plate 52, and the driven roller 46 is connected to the support frame 1 via a second connecting plate 47. Specifically, the first connecting plate 52 is L-shaped, and the side where the first connecting plate 52 is connected to the second heat sink 5 is provided with multiple horizontally arranged connecting holes. The connecting holes are waist-shaped holes, and the multiple connecting holes are arranged in the vertical direction. The multiple connecting holes allow the position of the second heat sink 5 to be adjusted within the range of the connecting holes. By connecting the second heat sink 5 to different connecting holes, the height of the second heat sink 5 can be adjusted. The second connecting plate 47 has the same structure as the first connecting plate 52 and will not be repeated. This allows the position of the driven roller 46 to be adjusted to accommodate conveyor belts 41 of different sizes. The connection method of the tensioning roller 45 to the support frame 1 is the same as the connection method of the second heat sink 5 to the support frame 1 and will not be repeated. This allows the position of the tensioning roller 45 to be adjusted, thereby adjusting the tension of the conveyor belt 41.
[0048] During use, the product to be processed 6 is placed on the positioning part 42 of the conveyor belt 41, and the conveyor belt 41 drives the product to be processed 6 to move to the feeding channel until the product to be processed 6 moves to the corresponding position of the sintered part 23, so that the sintered part 23 can process the product to be processed 6; at the same time, the fan 24 blows external air to the sintered part 23 to cool the sintered part 23. After the air exchanges heat with the sintered part 23, it is discharged to the outside through the second ventilation pipe 25. The exhaust part discharges the gas in the accommodating cavity to the outside through the first ventilation pipe 22, thereby dissipating the heat of the accommodating cavity, the conveyor belt 41 and the product to be processed 6. The first heat dissipation part 34 dissipates heat for the accommodating cavity, the conveyor belt 41 and the product to be processed 6. The air supply device introduces inert gas into the first heat dissipation cavity through the connector 33, and the third heat dissipation part 29 dissipates heat for the conveyor belt 41.
[0049] Example 2
[0050] The present invention also provides a method for disassembling a sintering device, which utilizes the sintering device of Example 1 for disassembly, comprising the following steps: S1: disconnecting the electrical connection of the sintered component 23; S2: rotating the movable component 2 to move the sintered component 23 away from the conveyor belt 41; and S3: removing the support component 3, withdrawing the conveyor belt 41 from the accommodating chamber, and simultaneously removing the support component 3 and the movable component 2. Between steps S1 and S2, an unlocking step is included, which includes releasing the locking state between the locking hook 28 and the quick-locking component 32, allowing the movable component 2 to rotate. Step S3 also includes removing the support component 3 from the support frame 1, withdrawing the support component 3 from between the mounting frames 43, and removing the conveyor belt 41 from the first opening.
[0051] The sintering device and disassembly method of the present invention enable the movable part 2 to rotate by articulating the support member 3 with the movable part 2, and by detachably connecting the support member 3 with the support frame 1. This facilitates the disassembly of the support member 3, thereby facilitating the disassembly of the sintering processing mechanism. This eliminates the need to disassemble the sintering processing mechanism into multiple parts, thereby improving disassembly efficiency. This also simplifies the installation and maintenance steps of the sintering processing mechanism, thereby improving the installation and maintenance efficiency of the sintering processing mechanism. The first heat sink 34 and the heat dissipation port 36 on the first heat sink 34 enable the first heat sink 34 to quickly dissipate heat from the accommodating cavity. The second heat sink 5 is configured so that the second heat sink 5 can dissipate heat from the conveyor belt 41.
[0052] Obviously, the above embodiments are merely examples for clarity of explanation and are not intended to limit the implementation methods. Those skilled in the art will appreciate that other variations or modifications can be made based on the above description. It is not necessary and impossible to enumerate all implementation methods here. Obvious variations or modifications arising therefrom remain within the scope of protection of the present invention.
Claims
1. A sintering device, characterized in that: include: A support assembly including a support member; A movable assembly includes a movable part and a sintered part, wherein the movable part is hinged to the support part, and the sintered part is connected to the movable part. An accommodating cavity is formed between the movable part and the support part, and a feeding channel is provided in the accommodating cavity. The working side of the sintered part faces the feeding channel. The conveying assembly includes a conveying belt, which is movable and has a conveying path passing through the feeding channel.
2. The sintering device according to claim 1, characterized in that: The support assembly further includes a first heat dissipation member. The support member is provided with a first heat dissipation cavity. The first heat dissipation cavity is located in the accommodating cavity. The first heat dissipation member is located in the first heat dissipation cavity.
3. The sintering device according to claim 2, characterized in that: The first heat dissipation member is provided with a heat dissipation opening facing the feeding channel, the heat dissipation opening passes through the first heat dissipation member, and a groove is provided on a side wall of the heat dissipation opening.
4. The sintering device according to claim 2, characterized in that: A connector is provided on the side wall of the support member, the connector is communicated with the first heat dissipation cavity, and the connector is used to introduce inert gas into the first heat dissipation cavity.
5. The sintering device according to claim 2, characterized in that: The support assembly also includes a connecting rod, which is provided with a thread. The connecting rod passes through the side wall of the support member. The end of the connecting rod is connected to the first heat dissipation member. A locking member is threadedly connected to the connecting rod, and the locking member can be abutted against the support member.
6. The sintering device according to claim 1, characterized in that: It also includes a cooling component, which includes a second heat sink. The output end of the second heat sink faces the conveyor belt, and there is a gap between the second heat sink and the conveyor belt.
7. The sintering device according to claim 6, characterized in that: The cooling assembly further includes a connecting frame, which includes at least two connecting columns. A second heat dissipation cavity is formed between two adjacent connecting columns, and the conveyor belt is located between the second heat dissipation element and the second heat dissipation cavity.
8. The sintering device according to claim 6, characterized in that: The conveying assembly further includes at least two tensioning rollers and at least two driven rollers, the tensioning roller is in contact with the conveying belt, the driven roller is located in a space surrounded by the conveying belt, and the second heat dissipation member is located between the two driven rollers.
9. The sintering device according to claim 1, characterized in that: The conveying assembly also includes a driving member and at least two mounting frames, the mounting frames are rotatably connected to rotating rollers, the output end of the driving member is connected to one of the rotating rollers, the conveyor belt is sleeved on the rotating roller, and the supporting member and the movable member are located between the two mounting frames.
10. The sintering device according to claim 1, characterized in that: A plurality of positioning members are provided on the conveyor belt along the conveying path. The positioning members include symmetrically arranged positioning rods. The angle between the center line of the positioning rod and the plane where the conveyor belt is located is an acute angle.
11. The sintering device according to claim 1, characterized in that: The side walls on the opposite sides of the support member are provided with a first opening, and the side walls on the opposite sides of the movable member are provided with a second opening. The first opening and the second opening constitute the input end and the output end of the feeding channel.
12. The sintering device according to claim 1, characterized in that: A hinge block is connected between the support member and the movable member, a quick lock member is connected to the side of the support member away from the hinge block, a lock hook is connected to the side of the movable member away from the hinge block, and the locking end of the quick lock member can be engaged with the lock hook.
13. A method for disassembling a sintering device, characterized in that: The sintering device according to any one of claims 1 to 12 is used for disassembly, comprising: S1: Disconnect the electrical connection of the sintered part; S2: Rotate the movable parts to keep the sintered parts away from the conveyor belt; S3: Remove the support member, pull the conveyor belt out of the accommodating cavity, and simultaneously remove the support member and the movable member.