Inactivation automobile filter core production and processing are with the adhesive removing device
Patent Information
- Application Number
- CN202511048777.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-29
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2045-07-29
AI Technical Summary
[0004]本发明的目的在于提供一种灭活汽车滤芯生产加工用去胶装置,解决了背景技术中刮胶、干燥、残胶分离需在不同设备间转运,不仅效率低下且转运过程易导致半成品污染,常规刮刀缺乏加热功能,对硬化胶层剥离能力不足的问题
1、本发明将刮胶机构、干燥机构、去胶座及振动机构呈水平状沿滤芯主体加工方向顺次排列,构成一体式去胶加工流线,避免了在传统工艺中刮胶、干燥、残胶分离需在不同设备间转运的问题,大大提高了生产效率,滤芯主体可在装置内连续完成去胶、干燥和胶粒分离等工序,减少了转运时间和中间环节,实现了高效连续的生产加工,由于取消了不同设备间的转运过程,有效降低了半成品在转运过程中被污染的可能性,解决了在传统工艺中,多次转运使得滤芯主体暴露在外界环境中,容易沾染灰尘、杂质等污染物的问题,本发明的一体化设计使得滤芯主体在相对封闭和稳定的环境中完成加工,保证了产品的质量和清洁度;
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Figure CN120587159B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of air conditioning filter manufacturing and processing technology, specifically to a degumming device for the manufacturing and processing of inactivated automotive filters. Background Technology
[0002] In today's booming automotive industry, the number of cars on the road is growing rapidly. All kinds of cars are constantly flowing through the streets and alleys of cities and on highways. As people's awareness of quality of life and health continues to improve, they are paying more and more attention to the interior environment of cars.
[0003] In the continuous innovation and upgrading of the automotive industry, the manufacturing processes of automotive parts are also constantly being optimized. As a key component ensuring stable engine operation and clean air inside the vehicle, the production and processing of inactivated automotive filters has attracted much attention. In the production of inactivated automotive filters, the assembly of the filter element usually requires the use of adhesives to firmly connect the filter material to the supporting structure, housing, and other components. At the same time, during the production process, residual adhesive on the surface of the filter element after inactivation treatment must be thoroughly removed to ensure its filtration efficiency and service life. However, traditional adhesive removal processes mainly rely on manual scraping or single mechanical adhesive scraping equipment, which has the following drawbacks: Scraping, drying, and residual adhesive separation require transfer between different equipment, which is not only inefficient but also prone to contamination of semi-finished products. Conventional scrapers lack heating functions and are insufficient in their ability to peel off hardened adhesive layers, requiring secondary rework of residual adhesive. Vibrating screening is often set up independently, and adhesive particles are easily affected by electrostatic adsorption or humidity, thereby reducing scraping efficiency and increasing rework steps. Summary of the Invention
[0004] The purpose of this invention is to provide a degumming device for the production and processing of inactivated automotive filter elements, which solves the problems in the prior art where scraping, drying, and residual glue separation require transfer between different equipment, which is not only inefficient but also prone to contamination of semi-finished products during the transfer process. Conventional scrapers also lack heating functions and have insufficient ability to peel off hardened glue layers.
[0005] To solve the above-mentioned technical problems, the present invention provides the following technical solution: A degumming device for the production and processing of inactivated automotive filter elements, comprising: A glue remover base, the top of which is provided with a filter element body; A drying mechanism, located on one side of the degumming seat, is used to dry the filter element body after preliminary degumming. A vibration mechanism, located on one side of the drying mechanism, is used to separate the colloid particles scraped off the filter element body; The adhesive scraping mechanism, located at the top of the adhesive removal seat, is used to remove adhesive from the processed filter element body. The mechanism includes heating grooves on both sides inside the adhesive removal seat. Heating seats are installed at the bottom of each heating groove, and adhesive scraper blades one and two are fixedly installed at their upper and lower ends, respectively. The adhesive scraper blades one and two correspond to each other. A pushing assembly for pushing the filter element body is provided at the top of the adhesive removal seat. The adhesive scraping mechanism, drying mechanism, adhesive removal seat, and vibration mechanism are arranged horizontally along the processing direction of the filter element body, forming an integrated adhesive removal process flow. The filter element body is placed on top of the adhesive removal seat, where the adhesive scraping mechanism performs initial adhesive removal. Then, the filter element enters the drying mechanism for drying, and finally, it enters the vibration mechanism for particle separation. Each mechanism works in sequence to complete the adhesive removal process. Preferably, the pushing assembly includes two support seats fixedly installed on the top of the glue-removing seat, with a threaded rod rotatably installed between the two support seats. The two support seats are divided into two groups and symmetrically distributed on both sides of the top of the glue-removing seat. A threaded block is screwed onto the outer wall of the threaded rod, and a linkage plate is fixedly installed at the bottom of the threaded block. An extension plate is fixedly installed on both sides of the linkage plate, and the two extension plates correspond to the two heating slots respectively. A drive motor is fixedly installed on one side of one of the support seats, and the output end of the drive motor is fixedly connected to the threaded rod. The drive motor drives the threaded rod to rotate. Since the threaded block is screwed onto the threaded rod, the threaded block will move linearly along the threaded rod, thereby pushing the filter element body to move on the glue-removing seat through the linkage plate and the extension plate, so that the glue-scraping mechanism can perform the glue-scraping operation.
[0006] Preferably, the top of the adhesive removal seat is provided with a groove that matches the shape of the filter element body to ensure that the filter element is fixed in the adhesive scraping position. The groove matches the heating tank, and the filter element body is placed in the groove. The shape design of the groove can restrict the position of the filter element and keep it stable during the adhesive scraping process, and complete the adhesive scraping work in conjunction with the adhesive scraping knife.
[0007] Preferably, the drying mechanism includes a dehumidifying chamber installed on one side of the glue removal seat. The dehumidifying chamber has a communicating cavity that communicates with the groove. A wind-driving component is provided at the top of the communicating cavity, and multiple evenly distributed fixing grooves are provided at the bottom of the communicating cavity. Each of the multiple fixing grooves has a moving roller installed inside. The top of the multiple moving rollers is flush with the bottom of the communicating cavity. Multiple evenly distributed trays are fixedly installed on the bottom of one side of the dehumidifying chamber. The multiple trays match the bottom of the glue removal seat. The filter element body that has been scraped by the glue enters the communicating cavity of the dehumidifying chamber. The wind-driving component generates airflow to dry the filter element. The moving rollers can reduce the friction when the filter element moves, allowing the filter element to pass smoothly through the drying mechanism.
[0008] Preferably, the air-driving assembly includes a servo motor fixedly installed on the top of the dehumidification box, and a movable cavity is opened at the top of the communicating cavity. The output end of the servo motor extends into the interior of the movable cavity and is fixedly installed with a drive shaft. Multiple evenly distributed fan blades are fixedly installed on the outer wall at the bottom of the drive shaft. The servo motor drives the drive shaft to rotate, and the fan blades on the drive shaft rotate accordingly, thereby generating airflow to dry the filter element.
[0009] Preferably, the drive shaft is divided into two, and a synchronous pulley is fixedly installed on the outer wall of each of the two drive shafts. The two synchronous pulleys are connected by a synchronous belt. The bottom of the movable cavity has multiple through slots that penetrate the connecting cavity. Exhaust holes are opened through both sides of the connecting cavity. The two drive shafts rotate synchronously through the synchronous pulleys and the synchronous belt to ensure uniform air distribution. The slots introduce air into the connecting cavity, and the exhaust holes discharge moisture, thereby achieving effective drying of the filter element.
[0010] Preferably, the vibration mechanism includes a vibration seat installed on one side of the dehumidification box, the vibration seat having a vibration chamber inside, a sieve plate being movably installed inside the vibration chamber, the sieve plate having multiple evenly distributed perforations inside, and a drive assembly for driving the sieve plate to vibrate inside the vibration chamber. The dried filter element enters the vibration chamber of the vibration seat, and the drive assembly drives the sieve plate to vibrate, causing the scraped-off colloid particles to separate from the filter element through the perforations on the sieve plate.
[0011] Preferably, the driving assembly includes a support plate installed at the bottom of the vibrating seat. The support plate has multiple evenly distributed discharge holes inside, each corresponding to a leakage hole. A vibrator is fixedly installed on the top of the support plate, and the output end of the vibrator is fixedly connected to a screen plate. Multiple evenly distributed mounting plates are fixedly installed on the outer wall of the support plate. The top of the vibrating seat has multiple mounting slots for mounting the mounting plates. Bolts are screwed between the mounting plates and the mounting slots. A support assembly is provided between the support plate and the screen plate to support the screen plate. Multiple support assemblies are rectangularly distributed between the support plate and the screen plate. The vibrator is mounted on the support plate, and its output end drives the screen plate to vibrate. The mounting plates and bolts facilitate disassembly and maintenance of the device, and the support assembly provides support and cushioning for the screen plate.
[0012] Preferably, the support assembly includes a damping rod fixedly installed on the top of the support plate, a damping spring connected between the support plate and the screen plate, the damping spring being sleeved on the outer wall of the damping rod, and a dust cover being sleeved on the outer walls of the damping rod and the damping spring. The damping rod and the damping spring work together to reduce the impact of vibration on the device, and the dust cover prevents dust and other impurities from entering the interior of the support assembly, ensuring the normal operation of the support assembly.
[0013] Preferably, the bottom of the glue removal seat, support seat, dehumidification box, and vibration seat are all fixedly installed with support legs. The support legs are rectangularly distributed and fixed at the four corners of the bottom of the glue removal seat, support seat, dehumidification box, and vibration seat to form an anti-vibration support structure. The support legs are distributed at the four corners of the bottom of each component, which plays the role of supporting the entire device, reducing vibration and shaking during operation, and ensuring the normal operation of the device.
[0014] Compared with the prior art, the beneficial effects achieved by the present invention are: 1. This invention arranges the scraping mechanism, drying mechanism, de-adhesion seat, and vibration mechanism in a horizontal manner along the processing direction of the filter element body, forming an integrated de-adhesion processing flow line. This avoids the problem of transferring the scraping, drying, and residual adhesive separation processes between different devices in traditional processes, greatly improving production efficiency. The filter element body can continuously complete the de-adhesion, drying, and adhesive particle separation processes within the device, reducing transfer time and intermediate links, and achieving efficient and continuous production processing. Since the transfer process between different devices is eliminated, the possibility of semi-finished products being contaminated during transfer is effectively reduced. This solves the problem that in traditional processes, multiple transfers expose the filter element body to the external environment, making it easy to be contaminated with dust, impurities, and other pollutants. The integrated design of this invention allows the filter element body to complete processing in a relatively closed and stable environment, ensuring product quality and cleanliness. 2. The heating tank of the scraping mechanism is equipped with a heating seat at the bottom. During the scraping process, the heating seat can heat the glue on the filter element body to soften it. This overcomes the problems of conventional scrapers lacking heating function and insufficient ability to peel off hardened glue layers. The softened glue is easier to scrape off by scraper blade one and scraper blade two, which can more thoroughly remove the glue on the surface of the filter element body, reduce residual glue, avoid the need for rework due to residual glue, and improve the efficiency and quality of glue removal. 3. The vibration mechanism effectively solves the problem of reduced scraping efficiency of colloid particles due to electrostatic adsorption or humidity in the traditional vibrating screening process. After the drying mechanism dries the filter element body, the humidity of the colloid particles is reduced, thus reducing adsorption problems caused by humidity. At the same time, the screen plate of the vibration mechanism vibrates under the action of the drive component, which can effectively separate the scraped colloid particles, reduce the impact of electrostatic adsorption on colloid separation, and improve the efficiency and effect of colloid separation. The vibration mechanism, drying mechanism and scraping mechanism work closely together to form a complete descraping process. The effective separation of colloid particles avoids the impact of colloid residue on subsequent processes, ensures the smoothness of the entire production process, reduces rework steps, and further improves production efficiency. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the adhesive scraping mechanism of the present invention; Figure 3 This is a structural diagram of the adhesive scraping mechanism of the present invention during disassembly; Figure 4 This is a schematic diagram of the drying mechanism of the present invention; Figure 5 This is a cross-sectional view of the dehumidification box of the present invention; Figure 6 This is a partial cross-sectional view of the dehumidification box of the present invention; Figure 7 This is a schematic diagram of the vibration mechanism of the present invention; Figure 8 This is a structural diagram of the vibration mechanism of the present invention during disassembly.
[0016] The components include: 1. Adhesive removal seat; 2. Adhesive scraping mechanism; 3. Drying mechanism; 4. Vibration mechanism; 5. Filter element body; 6. Support legs; 21. Glue scraper one; 22. Glue scraper two; 23. Support base; 24. Threaded rod; 25. Drive motor; 26. Threaded block; 27. Linkage plate; 28. Extension plate; 29. Heating base; 31. Dehumidification box; 32. Tray; 33. Connecting cavity; 34. Exhaust vent; 35. Servo motor; 36. Moving roller; 37. Fan blade; 38. Synchronous belt; 39. Synchronous pulley; 41. Vibrating seat; 42. Disassembly plate; 43. Bolt; 44. Screen plate; 45. Leakage hole; 46. Support plate; 47. Damping rod; 48. Vibrator; 49. Damping spring; 410. Dust cover. Detailed Implementation
[0017] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0018] refer to Figure 1 A degumming device for the production and processing of inactivated automotive filter elements, comprising: The glue removal seat 1 has a filter element body 5 on its top. The bottom of the glue removal seat 1, support seat 23, dehumidification box 31 and vibration seat 41 are all fixedly installed with support legs 6. The support legs 6 are rectangularly distributed and fixed at the four corners of the bottom of the glue removal seat 1, support seat 23, dehumidification box 31 and vibration seat 41 to form an anti-vibration support structure. refer to Figure 2 and Figure 3The adhesive scraping mechanism 2 is located on top of the adhesive removal seat 1 and is used to remove adhesive from the processed filter element body 5. The adhesive scraping mechanism 2 includes heating grooves on both sides inside the adhesive removal seat 1. Heating seats 29 are installed at the bottom of the two heating grooves, and adhesive scraper blade 1 21 and adhesive scraper blade 22 are fixedly installed at the upper and lower ends of the two heating grooves, respectively. The adhesive scraper blade 1 21 and adhesive scraper blade 22 correspond to each other. A pushing component is provided on the top of the adhesive removal seat 1 to push the filter element body 5. The adhesive scraping mechanism 2, drying mechanism 3, adhesive removal seat 1 and vibration mechanism 4 are arranged horizontally in sequence along the processing direction of the filter element body 5, forming a complete system. The integrated glue removal process flow includes two support seats 23 fixedly installed on the top of the glue removal seat 1. A threaded rod 24 is rotatably installed between the two support seats 23. The two support seats 23 are divided into two groups and symmetrically distributed on both sides of the top of the glue removal seat 1. A threaded block 26 is screwed to the outer wall of the threaded rod 24. A linkage plate 27 is fixedly installed at the bottom of the threaded block 26. An extension plate 28 is fixedly installed on both sides of the linkage plate 27. The two extension plates 28 correspond to two heating tanks respectively. A drive motor 25 is fixedly installed on one side of one of the support seats 23. The output end of the drive motor 25 is fixedly connected to the threaded rod 24. Furthermore, the top of the glue removal seat 1 is provided with a groove that matches the shape of the filter element body 5 to ensure that the filter element is fixed in the glue scraping position, and the groove matches the heating tank; refer to Figure 4 , Figure 5 and Figure 6 The drying mechanism 3 includes a dehumidifying box 31 installed on one side of the glue removal seat 1. The dehumidifying box 31 has a communicating cavity 33 that communicates with the groove. The top of the communicating cavity 33 is provided with a wind-driving component, and the bottom of the communicating cavity 33 has a plurality of evenly distributed fixed grooves. The interior of each of the plurality of fixed grooves is equipped with a moving roller 36. The top of the plurality of moving rollers 36 is flush with the bottom of the communicating cavity 33. A plurality of evenly distributed trays 32 are fixedly installed on the bottom of one side of the dehumidifying box 31. The plurality of trays 32 match the bottom of one side of the glue removal seat 1. The wind-driving component includes a servo motor 35 fixedly installed on the top of the dehumidifying box 31. The top of the communicating cavity 33 has a movable cavity. The output end of the servo motor 35 extends into the interior of the movable cavity and is fixedly installed with a drive shaft. A plurality of evenly distributed fan blades 37 are fixedly installed on the outer wall of the bottom of the drive shaft. Furthermore, the drive shaft is divided into two, and synchronous pulleys 39 are fixedly installed on the outer walls of the two drive shafts. The two synchronous pulleys 39 are connected by a synchronous belt 38. Multiple through slots are provided at the bottom of the movable cavity to penetrate the connecting cavity 33, and exhaust holes 34 are provided on both sides of the connecting cavity 33. For further reference Figure 7 and Figure 8The vibration mechanism 4 includes a vibration seat 41 installed on one side of the dehumidification box 31. The vibration seat 41 has a vibration chamber inside. A sieve plate 44 is movably installed inside the vibration chamber. The sieve plate 44 has multiple evenly distributed perforations 45 inside. A drive assembly for driving the sieve plate 44 to vibrate is installed inside the vibration chamber. The drive assembly includes a support plate 46 installed at the bottom of the vibration seat 41. The support plate 46 has multiple evenly distributed discharge holes inside. The multiple discharge holes correspond to the multiple perforations 45. A vibrator 48 is fixedly installed on the top of the support plate 46. The output end of the vibrator 48 is fixedly connected to the sieve plate 44. Multiple evenly distributed detachable plates 42 are fixedly installed on the outer wall of the support plate 46. The top of the vibration seat 41 has multiple mounting slots for mounting the detachable plates 42. Bolts 43 are screwed between the multiple detachable plates 42 and the multiple mounting slots. A support assembly for supporting the sieve plate 44 is provided between the support plate 46 and the sieve plate 44. The support assembly is divided into multiple and is distributed in a rectangular shape between the support plate 46 and the sieve plate 44. Furthermore, the support assembly includes a damping rod 47 fixedly installed on the top of the support plate 46, a damping spring 49 connected between the support plate 46 and the screen plate 44, the damping spring 49 being sleeved on the outer wall of the damping rod 47, and a dust cover 410 being sleeved on the outer walls of the damping rod 47 and the damping spring 49. The overall working principle of this invention is as follows: First, the filter element body 5 is placed in the groove on the top of the glue removal seat 1, which matches the shape of the filter element body 5. This groove matches the heating groove, ensuring that the filter element is installed in the glue scraping position. The drive motor 25 is started, and the output end of the drive motor 25 drives the threaded rod 24 to rotate. Since the threaded rod 24 is screwed to the threaded block 26, the threaded block 26 will move linearly along the threaded rod 24 under the rotation of the threaded rod 24. The bottom of the threaded block 26 is fixedly installed with a linkage plate 27. The extension plates 28 on both sides of the linkage plate 27 correspond to the two heating grooves respectively. As the threaded block 26 moves, the linkage plate 27 and the extension plates 28 will push the filter element body 5 to move in the heating groove. The heating seat 29 at the bottom of the heating groove heats the glue on the filter element body 5 to soften it. During the movement of the filter element body 5, the glue scraper blade 1 21 and glue scraper blade 22 at the top and bottom ends will scrape off the softened glue, initially removing the glue from the surface of the filter element body 5. After the adhesive coating process, the filter element body 5 is pushed into the dehumidification chamber 31 of the drying mechanism 3 by the pushing assembly. The servo motor 35 is then activated, and its output drives the drive shaft to rotate. Multiple fan blades 37 on the outer wall of the bottom of the drive shaft rotate accordingly, generating airflow. Synchronous pulleys 39 on the outer walls of the two drive shafts are connected by a synchronous belt 38, ensuring synchronized rotation of the two drive shafts and more even airflow distribution. An opening slot at the bottom of the movable chamber introduces airflow into the connecting chamber 33 for drying the filter element body 5. Exhaust holes 34 on both sides of the connecting chamber 33 are used to expel moisture. Simultaneously, the moving roller 36 in the fixed groove at the bottom of the connecting chamber 33 reduces friction during the movement of the filter element body 5, allowing it to pass more smoothly through the drying mechanism 4. However, after drying, the filter element body 5 enters the vibrating seat 41 of the vibrating mechanism 4. The sieve plate 44 inside the vibrating seat 41 is used to place the filter element body 5. The vibrator 48 is started, and the output end of the vibrator 48 drives the sieve plate 44 to vibrate. Multiple holes 45 inside the sieve plate 44 allow the scraped-off colloid particles to fall through the holes 45 and the discharge holes on the support plate 46, thus separating the colloid particles from the filter element body 5. The support assembly between the support plate 46 and the sieve plate 44 can play a supporting and buffering role. The damping rod 47 and the damping spring 49 Together, they reduce the impact of vibration on the device. At the same time, the dust cover 410 can prevent dust and other impurities from entering the support assembly. The support plate 46 is connected to the vibration seat 41 through the disassembly plate 42 and bolts 43, which facilitates the disassembly and maintenance of the device. The bottom of the glue removal seat 1, support seat 23, dehumidification box 31 and vibration seat 41 are all fixedly installed with support legs 6 distributed in a rectangular pattern, forming an anti-vibration support structure, which can improve the stability of the entire device, reduce vibration and shaking during operation, and ensure the normal operation of the glue removal work.
[0019] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A degumming device for the production and processing of inactivated automotive filter elements, characterized in that, include: A glue removal seat (1) is provided with a filter element body (5) on its top. Drying mechanism (3), which is located on one side of the degumming seat (1) and is used to dry the filter element body (5) after preliminary degumming; Vibration mechanism (4), which is located on one side of the drying mechanism (3) and is used to separate the colloid particles scraped off the filter body (5); The scraping mechanism (2) is located at the top of the de-adhesion seat (1) and is used to remove the glue from the filter element body (5) after production and processing. The scraping mechanism (2) includes heating grooves on both sides inside the de-adhesion seat (1). Heating seats (29) are installed at the bottom of the two heating grooves. The upper and lower ends of the two heating grooves are respectively fixedly installed with scraping blade one (21) and scraping blade two (22). The scraping blade one (21) and scraping blade two (22) correspond to each other. The top of the de-adhesion seat (1) is provided with a pushing component to push the filter element body (5). The scraping mechanism (2), drying mechanism (3) and vibration mechanism (4) are arranged in a horizontal manner along the processing direction of the filter element body (5) to form an integrated de-adhesion processing flow line. The pushing assembly includes two support seats (23) fixedly installed on the top of the glue removal seat (1). A threaded rod (24) is rotatably installed between the two support seats (23). The two support seats (23) are divided into two groups and symmetrically distributed on both sides of the top of the glue removal seat (1). Threaded blocks (26) are screwed onto the outer walls of the two threaded rods (24). A linkage plate (27) is fixedly installed at the bottom of the two threaded blocks (26). An extension plate (28) is fixedly installed on both sides of the linkage plate (27). The two extension plates (28) correspond to the two heating slots respectively. A drive motor (25) is fixedly installed on one side of one of the support seats (23). The output end of the drive motor (25) is fixedly connected to the threaded rod (24).
2. The degumming device for the production and processing of inactivated automotive filter elements according to claim 1, characterized in that: The top of the glue removal seat (1) is provided with a groove that matches the shape of the filter element body (5) to ensure that the filter element is fixed in the glue scraping position. The groove matches the heating groove.
3. The degumming device for the production and processing of inactivated automotive filter elements according to claim 2, characterized in that: The drying mechanism (3) includes a dehumidifying box (31) installed on one side of the glue removal seat (1). The dehumidifying box (31) has a communicating cavity (33) that communicates with the groove. The top of the communicating cavity (33) is provided with a wind-driving component, and the bottom of the communicating cavity (33) has a plurality of evenly distributed fixed grooves. Each of the plurality of fixed grooves is equipped with a moving roller (36). The top of the plurality of moving rollers (36) is flush with the bottom of the communicating cavity (33). A plurality of evenly distributed trays (32) are fixedly installed on the bottom of one side of the dehumidifying box (31), and the plurality of trays (32) match the bottom of one side of the glue removal seat (1).
4. The degumming device for the production and processing of inactivated automotive filter elements according to claim 3, characterized in that: The air-driving assembly includes a servo motor (35) fixedly installed on the top of the dehumidification box (31). The top of the connecting cavity (33) has an active cavity. The output end of the servo motor (35) extends into the interior of the active cavity and is fixedly installed with a drive shaft. Multiple evenly distributed fan blades (37) are fixedly installed on the outer wall at the bottom of the drive shaft.
5. The degumming device for the production and processing of inactivated automotive filter elements according to claim 4, characterized in that: The drive shaft is divided into two, and a synchronous pulley (39) is fixedly installed on the outer wall of each of the two drive shafts. The two synchronous pulleys (39) are connected by a synchronous belt (38). The bottom of the movable cavity is provided with multiple through slots that pass through the connecting cavity (33). The two sides of the connecting cavity (33) are provided with exhaust holes (34).
6. The degumming device for the production and processing of inactivated automotive filter elements according to claim 3, characterized in that: The vibration mechanism (4) includes a vibration seat (41) installed on one side of the dehumidification box (31). The vibration seat (41) has a vibration chamber inside. A sieve plate (44) is movably installed inside the vibration chamber. The sieve plate (44) has multiple evenly distributed holes (45) inside. A drive assembly for driving the sieve plate (44) to vibrate is installed inside the vibration chamber.
7. The degumming device for the production and processing of inactivated automotive filter elements according to claim 6, characterized in that: The driving assembly includes a support plate (46) installed at the bottom of the vibrating seat (41). The support plate (46) has multiple evenly distributed discharge holes inside, which correspond to multiple leakage holes (45). A vibrator (48) is fixedly installed on the top of the support plate (46). The output end of the vibrator (48) is fixedly connected to the screen plate (44). Multiple evenly distributed disassembly plates (42) are fixedly installed on the outer wall of the support plate (46). The top of the vibrating seat (41) has multiple mounting slots for installing the disassembly plates (42). Bolts (43) are screwed between the multiple disassembly plates (42) and the multiple mounting slots. A support assembly is provided between the support plate (46) and the screen plate (44) to support the screen plate (44). The support assembly is divided into multiple and is rectangularly distributed between the support plate (46) and the screen plate (44).
8. The degumming device for the production and processing of inactivated automotive filter elements according to claim 7, characterized in that: The support assembly includes a damping rod (47) fixedly installed on the top of the support plate (46), and a damping spring (49) is connected between the support plate (46) and the sieve plate (44). The damping spring (49) is sleeved on the outer wall of the damping rod (47), and the outer walls of the damping rod (47) and the damping spring (49) are together covered with a dust cover (410).
9. The degumming device for the production and processing of inactivated automotive filter elements according to claim 1, characterized in that: The bottom of the glue removal seat (1), the dehumidification box (31) and the vibration seat (41) are all fixedly equipped with support legs (6). The support legs (6) are rectangularly distributed and fixed at the four corners of the bottom of the glue removal seat (1), the dehumidification box (31) and the vibration seat (41) to form an anti-vibration support structure.
Citation Information
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