Horizontal rotating filter core cooling and shaping device
By using a horizontal rotating clamping mechanism and a rotary cooling method, the problems of a large number of molds and large footprint in the cooling and shaping of air conditioning filter elements have been solved, achieving efficient and low-cost filter element production.
Patent Information
- Application Number
- CN202520944517.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-13
- Publication Date
- 2026-07-14
- Estimated Expiration
- 2035-05-13
AI Technical Summary
Existing methods for cooling and shaping air conditioning filters require a large number of molds or large equipment footprints, resulting in high costs and low efficiency.
A horizontal rotating clamping mechanism is used to clamp and rotate the filter element. The clamping mechanism can be adjusted to fit filter elements of different widths. The filter element is then rotated to the next station for cooling, avoiding reliance on molds and large cooling areas.
The number of molds was reduced, the speed of model changeover was increased, costs were reduced, and the space required for cooling was reduced, thus improving production efficiency.
Smart Images

Figure CN224489761U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of air conditioning filter manufacturing technology, specifically relating to a horizontally rotating filter cooling and shaping device. Background Technology
[0002] An air conditioning filter element includes a filter element body, a long side, and a short side disposed on the outer periphery of the filter element body. In the prior art, after applying hot melt adhesive to the outer periphery of the filter element body, the corresponding long and short sides are attached using an edge-fitting device that works with the filter element mounted on a mold. Some filter elements have flanges on the long or short sides that are attached to the upper end face of the filter element body. Due to the nature of hot melt adhesive, it is in a fluid state when it is hot-melted, but in a solid state when cooled to room temperature. Thus, the air conditioning filter element achieves the effect of fixing the long and short sides to the outside of the filter element body by applying hot melt adhesive and then cooling it. However, in the prior art, after the long and short sides of the air conditioning filter element are attached, there are two cooling methods: one is cooling and shaping on a mold, and the other is cooling and shaping on a conveyor belt. The above-mentioned cooling methods have certain drawbacks. Cooling and shaping on the mold increases the number of molds, reduces the speed of changing models, and increases costs. Cooling and shaping on the conveyor belt increases the length of the equipment and requires a large area. To solve at least one of the above technical problems, it is necessary to develop a horizontal rotating filter element cooling and shaping device. Utility Model Content
[0003] The purpose of this invention is to provide a horizontally rotating filter element cooling and shaping device to solve the above-mentioned technical problems. By setting a clamping mechanism to clamp the filter element, the clamping mechanism can adjust different internal spacings to adapt to filter elements of different widths, avoiding long-term occupation of molds. When it is necessary to change different models of filter elements, since the operation of the clamping mechanism does not depend on the mold, no mold is needed after the edge is finished. The number of molds required is small, which improves the speed of model change and reduces costs. At the same time, through the rotating clamping mechanism, when the clamping mechanism clamps one filter element, the first driving device rotates it to the next station, and the corresponding other clamping mechanism clamps another filter element. Through the circumferential rotation, which has a certain stroke, the filter element is cooled during the transmission process, thereby avoiding the need for a large space for cooling operations.
[0004] To achieve the above-mentioned objectives, the technical solution adopted by this utility model is as follows:
[0005] A horizontally rotating filter element cooling and shaping device includes a clamping mechanism for gripping filter elements and a first driving device for rotating the clamping mechanism. By using the clamping mechanism to grip the filter elements, the internal spacing can be adjusted to accommodate filter elements of different widths, avoiding prolonged use of molds. When changing to different filter element models, since the clamping mechanism's operation does not rely on molds, no mold is needed after edge bonding, reducing the number of required molds, increasing the speed of model changes, and lowering costs. Simultaneously, through the rotating clamping mechanism, while one filter element is being gripped, the first driving device rotates it to the next station, and the corresponding clamping mechanism grips another filter element. This circumferential rotation, with a certain stroke, allows the filter element to be cooled during transport, thus avoiding the need for a large space for cooling operations.
[0006] Preferably, one or more clamping mechanisms are provided. The clamping mechanisms rotate on the same horizontal plane; the first driving device causes the clamping mechanisms to rotate circumferentially, thereby transferring the filter element during the clamping process. It does not rely on molds for cooling and requires less space.
[0007] Preferably, four clamping mechanisms are evenly spaced circumferentially. These four rotatable clamping mechanisms initially correspond to stations 1, 2, 3, and 4 respectively. For example, initially, station 1 faces the filter element transport direction, and station 3 faces the position where the cooled filter element is transported to the next process, such as the trimming process. After the filter element is clamped by the clamping mechanism at station 1, the first driving device causes the four clamping mechanisms to rotate synchronously. At this time, the clamping mechanism initially at station 1 rotates 90 degrees to station 2; while the clamping mechanism initially at station 4... The device rotates to the position of station 1. After the filter element is clamped at station 1, it rotates 90 degrees under the drive of the first drive device. The clamping mechanism, which was initially at station 3, rotates to the position facing the filter element transmission direction, i.e., station 1. At this time, the clamping mechanism, which was initially at station 1, rotates to station 3. The clamped filter element has rotated a certain distance to complete the cooling process and can then be output from station 3 to the next process. This circumferential rotation is repeated. It does not rely on molds for cooling and requires less space.
[0008] Preferably, the clamping mechanism includes a first clamping plate, a second clamping plate, and a second driving device for moving the first and second clamping plates to clamp the filter element. Specifically, the second driving device drives the first and second clamping plates to move towards each other or away from each other to adjust the relative distance between the first and second clamping plates, completing the distance adjustment operation before clamping, the clamping operation during clamping, and the releasing operation after clamping.
[0009] Preferably, the lower end of the first clamping plate is provided with a first support strip, and the lower end of the second clamping plate is provided with a second support strip. One end of the first support strip extends along the center direction of the line connecting the first and second clamping plates; one end of the second support strip extends along the center direction of the line connecting the first and second clamping plates; the first support strip extends along the lower end face of the first clamping plate, and the second support strip extends along the lower end face of the second clamping plate; the length of the first support strip is equal to the length of the first clamping plate; the length of the second support strip is equal to the length of the second clamping plate; the first and second support strips are provided to support the filter element being clamped, preventing it from falling off during the clamping process of the first and second clamping plates.
[0010] Preferably, the lengths of the first and second clamping plates are ab, and the length of the end face of the filter element being clamped is cd, satisfying ab≥cd. This ensures that the lengths of the first and second clamping plates are greater than or equal to the length of the end face of the filter element being clamped, thus providing clamping force between the filter element body and the adhered edge, improving the adhesion stability of the long or short side during the cooling process of the hot melt adhesive.
[0011] Preferably, the clamping mechanism further includes a pressing mechanism disposed above the first clamping plate and / or the second clamping plate. By using a flange on the upper part of the filter element body for pressing, the problem of the upper surface not effectively adhering to the filter element body during the clamping process is prevented.
[0012] Preferably, the clamping mechanism includes a lifting cylinder and a pressure bar connected to the movable end of the lifting cylinder.
[0013] The pressure strip is disposed on the side of the first clamping plate facing the second clamping plate, and / or the pressure strip is disposed on the side of the second clamping plate facing the first clamping plate. One end of the lifting cylinder is correspondingly disposed on the side of the first clamping plate and / or the side of the second clamping plate. The lifting motor is symmetrically designed on the opposite side of the first clamping plate and / or the second clamping plate relative to the pressure strip. The vertical projection of the pressure strip intersects with the first or second support bar; the pressure strip has a certain length, and under the action of the lifting cylinder, the pressure strip performs a downward pressing operation. Both the first and second clamping plates are provided with grooves for the lifting cylinder and the pressure strip to move through when they connect.
[0014] Preferably, the second driving device includes a driving mechanism, a driving screw that is pulsatorically connected to the driving mechanism, and a threaded block that is threaded to the driving screw. The driving mechanism is a starter or electric driving device, specifically a motor; wherein the driving mechanism and the threaded block are respectively disposed on the first clamping plate or the second clamping plate, or vice versa, so that the first clamping plate and the second clamping plate can move toward each other or backwards to adjust the distance between them.
[0015] Preferably, the first driving device includes a rotary table and a connecting part that is kinetically connected to the rotary table, the connecting part being connected to the clamping mechanism. The rotary table drives the connecting part, thereby causing the clamping mechanism to rotate.
[0016] Preferably, a rotating frame is connected above the movable end of the rotating platform, and the rotating frame is coaxially arranged with the rotating platform. The lower part of the rotating frame is connected to a connecting part. The movable end of the rotating platform faces upward. The rotating platform drives the rotating frame, which in turn drives the connecting part, thereby causing the clamping mechanism to rotate. Since the rotating frame is located above, the clamping mechanism can be connected from above, allowing the clamping mechanism to rotate while maintaining a certain height.
[0017] Preferably, a first lifting cylinder is provided between the rotating frame and the connecting part. The movable end of the rotating table faces upward; in the working state where the rotating table can drive the clamping mechanism to rotate, the first lifting cylinder allows the corresponding clamping mechanism to adjust its relative height as needed to adapt to the production process. For example, if the clamping mechanism at station 1 is in the open state and lowers to a position convenient for clamping the filter element, the clamping operation is performed. After clamping, the first lifting cylinder drives the clamping device to return to its original height and rotate to the next station. This facilitates adaptation to clamping mechanisms at different heights and the conveying position of the filter element in the cooling state, while reducing the area used and allowing control of the lifting of a single clamping mechanism, resulting in high flexibility.
[0018] Preferably, a second lifting cylinder is provided above the movable end of the rotary table, and the movable end of the second lifting cylinder is connected to the rotating frame. The rotary table, the second lifting cylinder, and the rotating frame are coaxially arranged. The movable end of the rotary table faces upward. In the working state where the rotary table can drive the clamping mechanism to rotate, the second lifting cylinder allows the corresponding multiple clamping mechanisms to be adjusted synchronously according to their relative height as needed to adapt to the production process. For example, the clamping mechanism at station 1 is in the open state and lowers to a position that is convenient for clamping the filter element, thereby performing the clamping operation. After clamping, the second lifting cylinder drives the clamping mechanism to return to its original height and rotate to the next station, which is convenient for adapting to clamping mechanisms at different heights and the conveying position of the filter element in the cooling state, while reducing the area used in the work area.
[0019] Preferably, the rotary table is connected to the support frame, with the movable end of the rotary table facing downwards. A rotating frame is connected below the movable end of the rotary table, and a first lifting cylinder is installed between the rotating frame and the connecting part. The rotating frame and the rotary table are coaxially arranged. In the operating state where the rotary table can drive the clamping mechanism to rotate, the first lifting cylinder allows the corresponding clamping mechanism to adjust its relative height as needed to adapt to the production process. For example, the clamping mechanism at station 1 is in the open state and lowers to a position convenient for clamping the filter element, thus performing the clamping operation. After clamping, the first lifting cylinder drives the clamping mechanism to return to its original height, rotate to the next station, and leave the area below the clamping mechanism suspended. This facilitates adaptation to clamping devices at different heights and the conveying position of the filter element awaiting cooling, while reducing the usable floor space and allowing control over the lifting of individual clamping devices, resulting in high flexibility.
[0020] Preferably, the rotary table is connected to the support frame, with the movable end of the rotary table facing downwards. A second lifting cylinder is located below the movable end of the rotary table, and the movable end of the second lifting cylinder is connected to the rotating frame. The rotary table, the second lifting cylinder, and the rotating frame are coaxially arranged, and the lower part of the rotating frame is connected to the connecting part. In the operating state where the rotary table can drive the clamping mechanism to rotate, the second lifting cylinder allows multiple corresponding clamping mechanisms to be simultaneously adjusted to their relative heights as needed to adapt to the production process. For example, the clamping mechanism at station 1 is in the open state and lowered to a position convenient for clamping the filter element, thus performing the clamping operation. After clamping, the second lifting cylinder drives the clamping mechanism to return to its original height and rotate to the next station, leaving the area below the clamping device suspended. This facilitates adaptation to clamping mechanisms at different heights and the conveying position of the filter element in a cooling state, while also reducing the usable floor space.
[0021] This application has achieved beneficial technical effects:
[0022] This invention uses a clamping mechanism to grip the filter element. The clamping mechanism can adjust the internal spacing to accommodate filter elements of different widths, avoiding prolonged use of molds. When it is necessary to replace different models of filter elements, since the operation of the clamping mechanism does not rely on molds, no mold is needed after the edge is attached. This reduces the number of molds required, increases the speed of model replacement, and reduces costs. At the same time, through the rotary clamping mechanism, when one filter element is gripped, the first drive device rotates it to the next station, and the corresponding other clamping mechanism grips the other filter element. Through circumferential rotation with a certain stroke, the filter element is cooled during the transfer process, thus avoiding the need for a large space for cooling operations. Attached Figure Description
[0023] Figure 1The image shown is one of the schematic diagrams of the device structure of this utility model;
[0024] Figure 2 The second schematic diagram of the device structure of this utility model is shown.
[0025] Figure 3 The third schematic diagram of the device structure of this utility model is shown;
[0026] Figure 4 The fourth schematic diagram of the device structure of this utility model is shown.
[0027] Figure 5 The fifth schematic diagram of the device structure of this utility model is shown.
[0028] Figure Labels
[0029] 31-Clamping mechanism; 32-First driving device; 311-First clamping plate; 312-Second clamping plate; 313-Second driving device; 314-First support bar; 315-Second support bar; 3161-Lifting cylinder; 3162-Pressure bar; 3131-Drive mechanism; 3132-Drive screw; 3133-Threaded block; 321-Rotating table; 322-Connecting part; 323-Rotating frame. Detailed Implementation
[0030] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the specific implementation methods of this utility model will be described below with reference to the accompanying drawings. Obviously, the drawings described below are merely some embodiments of this utility model. For those skilled in the art, other drawings and other implementation methods can be obtained based on these drawings without any creative effort.
[0031] The technical solution of this utility model will be described in detail below with specific embodiments.
[0032] Example 1
[0033] Reference Figure 1As shown, a horizontally rotating filter element cooling and shaping device includes a clamping mechanism 31 for clamping filter elements and a first driving device 32 for rotating the clamping mechanism 31. The clamping mechanism 31 clamps the filter elements, and its internal spacing can be adjusted to accommodate filter elements of different widths, avoiding prolonged use of molds. When changing to different filter element models, since the operation of the clamping mechanism 31 does not rely on molds, no mold is needed after edge bonding, reducing the number of molds required, increasing the speed of model changes, and reducing costs. Simultaneously, through the rotating clamping mechanism 31, when one filter element is clamped, the first driving device 32 rotates it to the next station, and the corresponding other clamping mechanism 31 clamps another filter element. This circumferential rotation, with a certain stroke, allows the filter element to be cooled during transport, thus avoiding the need for a large space for cooling operations.
[0034] One or more clamping mechanisms 31 are provided. The clamping mechanisms rotate on the same horizontal plane; the first driving device 32 causes the clamping mechanism 31 to rotate circumferentially, thereby transmitting the filter element during the clamping process. It does not rely on the mold for cooling and requires less space.
[0035] Four clamping mechanisms 31 are evenly spaced circumferentially. These four rotatable clamping mechanisms 31 initially correspond to stations 1, 2, 3, and 4 respectively. For example, initially, station 1 faces the filter element transport direction, and station 3 faces the position where the cooled filter element is transported to the next process, such as the trimming process. After the filter element is clamped by the clamping mechanism at station 1, the first driving device 32 causes the four clamping mechanisms 31 to rotate synchronously. At this time, the clamping mechanism initially at station 1 rotates 90 degrees to station 2; while the clamping mechanism initially at station 4... The device rotates to the position of station 1. After the filter element is clamped at station 1, it rotates 90 degrees under the drive of the first drive device 32. The clamping mechanism 31, which was initially at station 3, rotates to the position facing the filter element transmission direction, i.e., station 1. At this time, the clamping mechanism 31, which was initially at station 1, rotates to station 3. The clamped filter element has rotated a certain distance to complete the cooling process and can then be output from station 3 to the next process. This circumferential rotation is repeated. It does not rely on the mold for cooling and requires less space.
[0036] The clamping mechanism 31 includes a first clamping plate 311, a second clamping plate 312, and a second driving device 313 that drives the first clamping plate 311 and the second clamping plate 312 to move and clamp the filter element. Specifically, the second driving device drives the first clamping plate 311 and the second clamping plate 312 to move towards each other or away from each other to adjust the relative distance between the first clamping plate 311 and the second clamping plate 312, thereby completing the distance adjustment operation before clamping, the clamping operation during clamping, and the releasing operation after clamping.
[0037] The first clamping plate 311 has a first support bar 314 at its lower end, and the second clamping plate 312 has a second support bar 315 at its lower end. One end of the first support bar 314 extends along the center direction of the line connecting the first clamping plate 311 and the second clamping plate 312; one end of the second support bar 315 extends along the center direction of the line connecting the first clamping plate 311 and the second clamping plate 312; the first support bar 314 extends along the lower end face of the first clamping plate 311, and the second support bar 315 extends along the lower end face of the second clamping plate 312; the length of the first support bar 314 is equal to the length of the first clamping plate 311; the length of the second support bar 315 is equal to the length of the second clamping plate 312; the first support bar 314 and the second support bar 315 are provided to support the filter element being clamped, preventing it from falling off during the clamping process of the first clamping plate 311 and the second clamping plate 312.
[0038] The lengths of the first clamping plate 311 and the second clamping plate 312 are ab, and the length of the end face of the filter element being clamped is cd, satisfying ab≥cd. This ensures that the lengths of the first clamping plate 311 and the second clamping plate 312 are greater than or equal to the length of the end face of the filter element being clamped, thus providing clamping force to both the filter element body and the adhered edge, improving the adhesion stability of the long or short side during the cooling process of the hot melt adhesive.
[0039] The clamping mechanism 31 further includes a pressing mechanism disposed above the first clamping plate 311 and / or the second clamping plate 312. By setting the flange above the filter element body of the pressing mechanism for pressing, the problem of the upper end face not being able to effectively fit with the filter element body during the clamping process of the clamping mechanism 31 is prevented.
[0040] The clamping mechanism includes a lifting cylinder 3161 and a pressure bar 3162 connected to the movable end of the lifting cylinder 3161.
[0041] The pressure strip 3162 is disposed on the side of the first clamping plate 311 facing the second clamping plate 312, and / or the pressure strip 3162 is disposed on the side of the second clamping plate 312 facing the first clamping plate 311. One end of the lifting cylinder 3161 is correspondingly disposed on the side of the first clamping plate 311 and / or the side of the second clamping plate 312. The lifting motor 3161 is symmetrically designed on the opposite side of the first clamping plate 311 and / or the second clamping plate 312 relative to the pressure strip 3162. The vertical projection of the pressure strip 3162 intersects with the first support bar 314 or the second support bar 315; the pressure strip 3162 has a certain length, and under the drive of the lifting cylinder 3161, the pressure strip 3162 performs a downward pressing operation. Both the first clamping plate 311 and the second clamping plate 312 are provided with grooves 3163 for the lifting cylinder 3161 and the pressure strip 3162 to pass through when moving.
[0042] The second driving device 313 includes a driving mechanism 3131, a driving screw 3132 that is driveably connected to the driving mechanism 3131, and a threaded connection block 3133 that is threaded to the driving screw 3132. The driving mechanism 3131 is a starting or electric driving device, specifically a motor; wherein the driving mechanism 3131 and the threaded connection block 3133 are respectively disposed on the first clamping plate 311 or the second clamping plate 312, or vice versa, so that the first clamping plate 311 and the second clamping plate 312 can move towards each other or away from each other to adjust the distance between them.
[0043] The first driving device 32 includes a rotary table 321 and a connecting part 322 that is pulverically connected to the rotary table 321. The connecting part 322 is connected to the clamping mechanism 31. The rotary table 321 drives the connecting part 322 to rotate the clamping mechanism 31. The rotary table is specifically an electric or pneumatic rotary table.
[0044] The rotating platform 321 is connected to a rotating frame 323 above its movable end. The rotating frame 323 is coaxially arranged with the rotating platform 321, and the lower part of the rotating frame 323 is connected to a connecting part 322. The movable end of the rotating platform 321 faces upward. The rotating platform 321 transmits power to the rotating frame 323, which in turn drives the connecting part 322, thereby causing the clamping mechanism 31 to rotate. Since the rotating frame 323 is located above, the clamping mechanism 31 can be connected from above, allowing the clamping mechanism 31 to rotate while maintaining a certain height for movement.
[0045] The connecting part 322 includes a connecting block with its two ends respectively disposed on the first clamping plate and the second clamping plate, and a connecting rod horizontally disposed and movably connected to the connecting block. The middle part of the connecting rod is directly connected to the rotating frame, or the middle part of the connecting rod is connected to the first lifting cylinder.
[0046] This technical solution is particularly suitable for the cooling and shaping of air conditioning filter elements.
[0047] Example 2
[0048] Reference Figure 2 As shown, this embodiment only describes the differences from Embodiment 1 above; other technical features are the same. In this embodiment, a first lifting cylinder 324 is provided between the rotating frame 323 and the connecting part 322. The movable end of the rotating table 321 faces upward. In the working state where the rotating table 321 can drive the clamping mechanism 31 to rotate, the first lifting cylinder 324 allows the corresponding clamping mechanism 31 to adjust its relative height as needed to adapt to the production process. For example, if the clamping mechanism at station 1 is in the open state and lowers to a position that facilitates clamping the filter element, the clamping operation is performed. After clamping, the first lifting cylinder 324 drives the clamping device 31 to return to its original height and rotate to the next station. This facilitates adaptation to clamping mechanisms 31 at different heights and the conveying position of the filter element in the cooling state, while reducing the area used and allowing control of the lifting of a single clamping mechanism 31, resulting in high flexibility.
[0049] Example 3
[0050] Reference Figure 3 As shown, this embodiment only describes the differences from Embodiment 1 above; other technical features are the same. In this embodiment, a second lifting cylinder 325 is provided above the movable end of the rotary table 321. The movable end of the second lifting cylinder 325 is connected to the rotating frame 323. The rotary table 321, the second lifting cylinder 325, and the rotating frame 323 are coaxially arranged. The movable end of the rotary table 321 faces upward. In the working state where the rotary table 321 can drive the clamping mechanism 31 to rotate, the second lifting cylinder 325 simultaneously allows the corresponding multiple clamping mechanisms 31 to adjust their relative heights as needed to adapt to the production process. For example, if the clamping mechanism at station 1 is in the open state and descends to a position convenient for clamping the filter element, the clamping operation is performed. After clamping, the second lifting cylinder 325 drives the clamping mechanism 31 to return to its original height and rotate to the next station, which is convenient for adapting to the clamping mechanisms 31 at different heights and the filter element waiting to be cooled, while reducing the area used in the work area.
[0051] Example 4
[0052] Reference Figure 4As shown, this embodiment only describes the differences from the above embodiments; other technical features are the same. In this embodiment, the rotary table 321 is connected to the support frame 320, and the movable end of the rotary table 321 is arranged facing downwards. A rotating frame 323 is connected below the movable end of the rotary table 321. A first lifting cylinder 324 is provided between the rotating frame 323 and the connecting part 322. The rotating frame 323 and the rotary table 321 are coaxially arranged. In the operating state where the rotary table 321 can drive the clamping mechanism 31 to rotate, the first lifting cylinder 324 allows the corresponding clamping mechanism 31 to adjust its relative height as needed to adapt to the production process. If the clamping mechanism 31 at station 1 is in the open state and lowers to a position that is convenient for clamping the filter element, the clamping operation is performed. After the clamping is completed, the first lifting cylinder 324 drives the clamping mechanism 31 to return to its original height and rotate to the next station. The clamping mechanism 31 is suspended in the air, which is convenient for adapting to clamping mechanisms 31 at different heights and filter elements in the cooling state. At the same time, it reduces the area used in the site and can control the lifting of a single clamping device, making it highly flexible in use.
[0053] Example 5
[0054] Reference Figure 5 As shown, this embodiment only describes the differences from the above embodiments; other technical features are the same. In this embodiment, the rotary table 321 is connected to the support frame 320. The movable end of the rotary table 321 faces downwards. A second lifting cylinder 325 is disposed below the movable end of the rotary table 321. The movable end of the second lifting cylinder 325 is connected to the rotating frame 323. The rotary table 321, the second lifting cylinder 325, and the rotating frame 323 are coaxially arranged. The lower part of the rotating frame 323 is connected to the connecting part 322. In the operating state where the rotary table 321 can drive the clamping mechanism 31 to rotate, the second lifting cylinder 325 simultaneously allows the corresponding multiple clamping mechanisms 31 to adjust their relative heights as needed to adapt to the production process. If the clamping mechanism 31 at station 1 is in the open state and lowers to a position that is convenient for clamping the filter element, the clamping operation is performed. After the clamping is completed, the second lifting cylinder 325 drives the clamping mechanism 31 to return to its original height and rotate to the next station. The area below the clamping mechanism 31 is suspended, which is convenient for adapting to clamping mechanisms at different heights and filter elements in the cooling state of the conveying position, while reducing the area used in the site.
[0055] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0056] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
[0057] The embodiments of the horizontally rotating filter element cooling and shaping device provided by this utility model have been described in detail above. Specific examples have been used to illustrate the principle and implementation of this utility model. The descriptions of the embodiments above are only for the purpose of helping to understand the core idea of this utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made to this utility model without departing from the principle of this utility model, and these improvements and modifications also fall within the protection scope of the claims of this utility model.
Claims
1. A horizontally rotating filter element cooling and shaping device, characterized in that, Includes a clamping mechanism (31) for clamping one or more filter elements and a first drive device (32) for rotating the clamping mechanism (31). The clamping mechanism (31) includes a first clamping plate (311), a second clamping plate (312), and a second driving device (313) for driving the first clamping plate (311) and the second clamping plate (312) to move in order to clamp the filter element. The first driving device (32) includes a rotary table (321) and a connecting part (322) that is connected to the rotary table (321) in a transmission manner. The connecting part (322) is connected to the clamping mechanism (31).
2. The horizontally rotating filter element cooling and shaping device according to claim 1, characterized in that, The first clamping plate (311) has a first support bar (314) at its lower end, and the second clamping plate (312) has a second support bar (315) at its lower end.
3. The horizontally rotating filter element cooling and shaping device according to claim 1, characterized in that, The clamping mechanism (31) further includes a pressing mechanism disposed above the first clamping plate (311) and / or the second clamping plate (312); The clamping mechanism includes a lifting cylinder (3161) and a pressure bar (3162) connected to the movable end of the lifting cylinder (3161). The pressure strip (3162) is disposed on the side of the first clamping plate (311) facing the second clamping plate (312), and / or the pressure strip (3162) is disposed on the side of the second clamping plate (312) facing the first clamping plate (311).
4. The horizontally rotating filter element cooling and shaping device according to claim 1, characterized in that, The rotating frame (323) is connected above the movable end of the rotating platform (321). The rotating frame (323) is coaxially arranged with the rotating platform (321), and the lower part of the rotating frame (323) is connected to the connecting part (322).
5. The horizontally rotating filter element cooling and shaping device according to claim 4, characterized in that, A first lifting cylinder (324) is provided between the rotating frame (323) and the connecting part (322).
6. The horizontally rotating filter element cooling and shaping device according to claim 4, characterized in that, A second lifting cylinder (325) is provided above the movable end of the rotating platform (321). The movable end of the second lifting cylinder (325) is connected to the rotating frame (323). The rotating platform (321), the second lifting cylinder (325), and the rotating frame (323) are coaxially arranged.
7. The horizontally rotating filter element cooling and shaping device according to claim 4, characterized in that, The rotating platform (321) is connected to the support frame (320). The movable end of the rotating platform (321) is set downward. The rotating frame (323) is connected below the movable end of the rotating platform (321). A first lifting cylinder (324) is set between the rotating frame (323) and the connecting part (322). The rotating frame (323) and the rotating platform (321) are coaxially arranged.
8. The horizontally rotating filter element cooling and shaping device according to claim 4, characterized in that, The rotating platform (321) is connected to the support frame (320). The movable end of the rotating platform (321) is set downward. A second lifting cylinder (325) is set below the movable end of the rotating platform (321). The movable end of the second lifting cylinder (325) is connected to the rotating frame (323). The rotating platform (321), the second lifting cylinder (325), and the rotating frame (323) are coaxially arranged. The lower part of the rotating frame (323) is connected to the connecting part (322).