A filter assembly device
By using a combination of cutting blades and adsorption holes in the filter assembly device, direct cutting and transfer of filter sheets are achieved, solving the problem of low assembly efficiency in the prior art and improving the assembly efficiency of filter sheets.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JINXIN PRECISION COMPONENTS KUNSHAN CO LTD
- Filing Date
- 2025-07-31
- Publication Date
- 2026-07-31
AI Technical Summary
The existing filter assembly process is inefficient, requiring three steps: cutting, conveying, and transferring, resulting in low assembly efficiency.
A filter sheet assembly device was designed. By setting the cutting edge and the first adsorption hole on the cutting part, the cutting part can directly adsorb the filter sheet after cutting the filter membrane, and the filter sheet can be directly transferred without conveying after cutting, which simplifies the assembly process.
This improved the assembly efficiency of the filter elements, reduced the number of steps, and increased production efficiency.
Smart Images

Figure CN224574792U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of assembly device technology, and in particular to a filter sheet assembly device. Background Technology
[0002] In medical devices, such as respiratory anesthesia tubing and ventilator tubing, medical filters are connected. These filters are primarily used to filter out pathogens, prevent cross-infection, and reduce the likelihood of lung infections. A medical filter consists of a top cover, a bottom cover, and filter elements located between the top and bottom covers. Currently, the assembly process involves first cutting the filter membrane into multiple filter elements using a cutting device, then conveying the filter elements to a transfer mechanism. This transfer mechanism uses a vision system to locate and move the filter elements into the bottom cover. This assembly process requires three steps: cutting, conveying, and transfer, resulting in low assembly efficiency. Utility Model Content
[0003] Therefore, the technical problem to be solved by this utility model is to provide a filter sheet assembly device that can improve the assembly efficiency of filter sheets.
[0004] To solve the above-mentioned technical problems, this utility model provides a filter assembly device, comprising: a transfer assembly including a first driving member and a rotating plate, the rotating plate being connected to the output end of the first driving member; a first feeding assembly, the feeding end of the first feeding assembly being movable toward the rotating plate; an assembly assembly including a connecting frame, a movable plate, a support plate, a cutting member, a second driving member, and a third driving member, the second driving member being connected to the movable plate, the movable plate being slidably connected to the connecting frame, the output end of the third driving member being connected to the movable plate, the cutting member being connected to the output end of the second driving member, the end of the cutting member being provided with a cutting blade, the end of the cutting member also being provided with a first adsorption hole, the cutting member being movable toward the support plate, and the cutting member being movable toward the rotating plate; and a feeding assembly, the feeding path of the feeding assembly passing through the support plate near the side of the cutting member.
[0005] In one embodiment of the present invention, the cutting member is located on the connecting block, the output end of the second driving member is connected to the connecting block, the cutting blade protrudes from the end face of the cutting member, and the cutting blade surrounds the edge of the end of the cutting member.
[0006] In one embodiment of this utility model, the movable plate is slidably connected to a guide rod, and one end of the guide rod is connected to the connecting block.
[0007] In one embodiment of this utility model, the support plate is connected to the connecting frame, and the support plate is provided with a material passage groove, through which the material feeding path of the feeding component passes.
[0008] In one embodiment of the present invention, a plurality of carriers are connected to the rotating plate, the plurality of carriers are arranged at equal intervals along the edge of the rotating plate, and the carriers are provided with a first slot.
[0009] In one embodiment of the present invention, the side wall of the first slot is provided with at least two openings, and the two openings are arranged opposite to each other.
[0010] In one embodiment of the present invention, the first feeding component includes a first driving module and an adsorption element. The output end of the first driving module is connected to the adsorption element, the adsorption end of the adsorption element is the feeding end of the first feeding component, and the adsorption end of the adsorption element is provided with a second adsorption hole.
[0011] In one embodiment of the present invention, a second feeding component is further included. The first feeding component and the second feeding component are arranged opposite to each other. The second feeding component includes a second driving module, a fourth driving member and clamping members. The output end of the second driving module is connected to the fourth driving member, and the two clamping members are connected to the output end of the fourth driving member.
[0012] In one embodiment of the present invention, a first feeding component and a second feeding component are further included. The feeding end of the first feeding component can move toward the output end of the first feeding component, and the clamping member can move toward the output end of the second feeding component.
[0013] In one embodiment of the present invention, the first feeding component includes a feeding channel and a baffle block, the baffle block being provided with a second slot, the second slot being connected to the feeding channel.
[0014] The above-mentioned technical solution of this utility model has the following advantages compared with the prior art:
[0015] The filter assembly device of this utility model, through the setting of the cutting blade and the first adsorption hole on the cutting part, enables the second driving part to drive the cutting part to complete the cutting of the filter membrane. At the same time, the first adsorption hole can adsorb the cut filter, so that there is no need to transport the filter after the cutting is completed. After the filter is adsorbed by the first adsorption hole, the filter can be transferred and no positioning is required before the transfer, thereby improving the assembly efficiency of the filter. Attached Figure Description
[0016] To make the content of this utility model easier to understand, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings.
[0017] Figure 1This is a schematic diagram of the structure of a filter assembly device according to the present invention;
[0018] Figure 2 This is a schematic diagram of the assembly structure of the feeding component and the assembly component;
[0019] Figure 3 This is a structural diagram of the assembly components;
[0020] Figure 4 yes Figure 3 Partial structural diagram;
[0021] Figure 5 This is a schematic diagram of the transfer component;
[0022] Figure 6 This is a structural schematic diagram of the load-bearing component;
[0023] Figure 7 This is a schematic diagram of the exploded structure of the filter;
[0024] Figure 8 This is a schematic diagram of the assembly structure of the filter and the carrier;
[0025] Figure 9 This is a structural schematic diagram of the first feeding component;
[0026] Figure 10 This is a schematic diagram of the structure of the second feeding component;
[0027] Figure 11 This is a partial structural diagram of the first feeding component;
[0028] Figure 12 yes Figure 2 A partial structural diagram.
[0029] Explanation of reference numerals in the accompanying drawings: 1. Base; 2. First feeding assembly; 3. First loading assembly; 4. Assembly assembly; 5. Feeding assembly; 6. Second feeding assembly; 7. Second loading assembly; 8. Unloading assembly; 9. Transfer assembly; 21. Stop block; 22. Second slot; 23. Second receiving hole; 24. Feeding channel; 31. First bracket; 32. First drive module; 33. Adsorption component; 41. Connecting frame; 42. Support plate; 43. Movable plate; 44. Second drive component; 45. Guide rod; 46. Third drive component; 47. Connecting block; 48. Cutting component; 51. Feeding roller; 52. Receiving roller; 53. Through Filter membrane; 54, support base; 55, first tension roller; 56, sixth drive component; 57, electrostatic precipitator; 58, guide block; 59, connecting hole; 71, second bracket; 72, second drive module; 73, fourth drive component; 74, clamping component; 91, first drive component; 92, rotating plate; 93, bearing component; 94, filter; 95, first slot; 96, opening; 97, first receiving hole; 421, material passage groove; 481, cutting blade; 482, first adsorption hole; 561, moving plate; 941, bottom cover; 942, first connecting part; 943, filter sheet; 944, top cover; 945, second connecting part. Detailed Implementation
[0030] 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 and implement the present invention. However, the embodiments are not intended to limit the present invention.
[0031] Reference Figures 1 to 5 As shown, a filter assembly device of this utility model includes: a transfer assembly 9, including a first driving member 91 and a rotating plate 92, the rotating plate 92 being connected to the output end of the first driving member 91; a first feeding assembly 3, the feeding end of the first feeding assembly 3 being movable toward the rotating plate 92; and an assembly assembly 4, including a connecting frame 41, a movable plate 43, a support plate 42, a cutting member 48, a second driving member 44, and a third driving member 46, the second driving member 44 being connected to the movable plate 43, and the movable plate 43 being connected to the connecting frame 41. The receiving frame 41 is slidably connected. The output end of the third driving member 46 is connected to the movable plate 43. The cutting member 48 is connected to the output end of the second driving member 44. The end of the cutting member 48 is provided with a cutting blade 481 and a first suction hole 482. The cutting member 48 can move towards the support plate 42 and can also move towards the rotating plate 92. The feeding assembly 5 has a feeding path that passes through the support plate 42 and is close to the side of the cutting member 48.
[0032] In this embodiment of a filter assembly device, the feeding assembly 5 feeds the filter membrane 53 onto the support plate 42. The first feeding assembly 3 places the bottom cover 941 of the filter 94 onto the rotating plate 92. Then, the first driving member 91 drives the rotating plate 92 to rotate, moving the bottom cover 941 to the assembly position. Then, the second driving member 44 drives the cutting member 48 to move towards the support plate 42 until the cutting edge 481 of the cutting member 48 abuts against the filter membrane 53. At this time, the cutting edge 481 completes the cutting of the filter membrane 53, and the cut on the filter membrane 53... Part of the filter element 943 is a filter sheet. After cutting, the first adsorption hole 482 generates negative pressure, causing the filter membrane 53 to be adsorbed onto the end of the cut part 48. Further, the third driving member 46 drives the movable plate 43 to move, so that the cut part 48 corresponds to the bottom cover 941 on the rotating plate 92. The second driving member 44 drives the cut part 48 to move, so that the end of the cut part 48 moves to a position close to the bottom cover 941. Finally, the first adsorption hole 482 stops generating negative pressure, and the filter element 943 moves onto the bottom cover 941, completing the assembly of the filter element 943. By setting the cutting blade 481 and the first adsorption hole 482 on the cutting component 48, the second driving component 44 can drive the cutting component 48 to complete the cutting of the filter membrane 53. At the same time, the first adsorption hole 482 can adsorb the cut filter sheet 943, so that the filter sheet 943 does not need to be transported after the cutting is completed. After the filter sheet 943 is adsorbed by the first adsorption hole 482, the filter sheet 943 can be transferred. And no positioning is required before the transfer, thereby improving the assembly efficiency of the filter sheet 943.
[0033] Reference Figure 5 and Figure 6 As shown, the transfer assembly 9 includes a first driving member 91 and a rotating plate 92, with the rotating plate 92 connected to the output end of the first driving member 91. Specifically, the first driving member 91 is a rotary driving member, and its output end is connected to a rotating shaft. The middle position of the rotating plate 92 is connected to the rotating shaft, thereby causing the first driving member 91 to drive the rotating plate 92 to rotate. The end face of the rotating plate 92 is circular, and multiple support members 93 are connected to the rotating plate 92. The multiple support members 93 are arranged equidistantly along the edge of the rotating plate 92, and each support member 93 is provided with a first slot 95, the bottom of which is provided with a first receiving hole 97.
[0034] Reference Figures 6 to 8As shown, the filter 94 consists of a top cover 944, a bottom cover 941, and a filter sheet 943 located between the top cover 944 and the bottom cover 941. The bottom of the bottom cover 941 has a first connecting portion 942, and the top of the top cover 944 has a second connecting portion 945. A first slot 95 is used to engage with the bottom cover 941, and a first receiving hole 97 is used to receive the first connecting portion 942. The side wall of the first slot 95 has at least two openings 96, which are arranged opposite to each other. When the bottom cover 941 is located within the first slot 95, the side wall of the bottom cover 941 can pass through the second opening 96, thereby facilitating the clamping mechanism to clamp the bottom cover 941 and detach it from the carrier member 93. Preferably, the carrier member 93 has multiple first slots 95 and first receiving holes 97, so that the carrier member 93 can support multiple filters 94. In this embodiment, the carrier member 93 has four first slots 95 and first receiving holes 97.
[0035] Reference Figure 9 As shown, the first feeding assembly 3 is used to transfer the bottom cover 941, and the feeding end of the first feeding assembly 3 can move towards the rotating plate 92. Specifically, the first feeding assembly 3 includes a first driving module 32 and an adsorption member 33. The first driving module 32 can be regarded as a dual-axis transfer mechanism. The output end of the first driving module 32 is connected to the adsorption member 33. The first driving module 32 can drive the adsorption member 33 to move towards or away from the rotating plate 92. The adsorption end of the adsorption member 33 is the feeding end of the first feeding assembly 3. The adsorption end of the adsorption member 33 is located at the bottom of the adsorption member 33. The adsorption end of the adsorption member 33 is provided with a second adsorption hole (not shown in the figure). The second adsorption hole is connected to a vacuum source. The adsorption member 33 can adsorb the bottom cover 941 through the second adsorption hole. The number of adsorption members 33 is the same as the number of first slots 95 on the carrier member 93.
[0036] Reference Figure 10 As shown, the filter assembly device also includes a second feeding assembly 7, which is used to transfer the top cover 944. The first feeding assembly 3 is arranged opposite to the second feeding assembly 7. The second feeding assembly 7 includes a second drive module 72, a fourth drive member 73, and clamping members 74. The second drive module 72 can be regarded as a dual-axis transfer mechanism. The output end of the second drive module 72 is connected to the fourth drive member 73. The second drive module 72 can drive the fourth drive member 73 to move towards or away from the rotating plate 92. The fourth drive member 73 is a clamping drive member. Two clamping members 74 are connected to the output end of the fourth drive member 73. The clamping members 74 can be regarded as mechanical grippers. The fourth drive member 73 can drive the two clamping members 74 to move towards or away from each other. That is, the fourth drive member 73 can drive the grippers to complete the clamping and opening action. The clamping members 74 can clamp the second connecting part 945 of the top cover 944, thereby driving the top cover 944 to move. The number of fourth drive members 73 is the same as the number of first slots 95 on the carrier member 93.
[0037] Reference Figure 1 and Figure 11 As shown, the filter assembly device also includes a first feeding assembly 2 and a second feeding assembly 6. Both the first feeding assembly 2 and the second feeding assembly 6 can be considered as vibratory feeder automatic feeding devices. The first feeding assembly 2 is used to convey the bottom cover 941, and the second feeding assembly 6 is used to convey the top cover 944. The feeding end of the first feeding assembly 3 can move towards the output end of the first feeding assembly 2, that is, the first drive module 32 can drive the adsorption member 33 to move closer to the output end of the first feeding assembly 2, so that the adsorption member 33 can drive the bottom cover 941 from the first feeding assembly 3 to the first slot 95 of the carrier 93. The clamping member 74 can move towards the output end of the second feeding assembly 6, that is, the second drive module 72 can drive the fourth drive member 73 to move, so that the clamping member 74 clamps the top cover 944, and the clamping member 74 can drive the top cover 944 from the second feeding assembly 6 to the bottom cover 941 located on the carrier 93.
[0038] The first feeding assembly 2 includes a feeding channel 24 and a stop block 21. The feeding channel 24 is used for the movement of the bottom cover 941. The stop block 21 is provided with a second slot 22, and the bottom of the second slot 22 is provided with a second receiving hole 23. The second slot 22 is used to engage with the bottom cover 941, and the second receiving hole 23 is used to receive the first connecting part 942. The second slot 22 communicates with the feeding channel 24, so that the top cover 944 located in the feeding channel 24 can move into the second slot 22. In another embodiment, the first drive module 32 is no longer connected to the adsorption member 33, but is connected to the fifth drive member. The assembly structure of the fifth drive member is the same as that of the fourth drive member 73, so that the first feeding component 3 can clamp and drive the bottom cover 941 to move. The baffle block 21 is connected to the output end of the lifting component, so that the baffle block 21 can rise. The side wall of the second slot 22 has an opening. After the baffle block 21 rises, the first feeding component 3 can clamp and drive the bottom cover 941 to move into the first slot 95 of the carrier member 93. The number of second slots 22 on the baffle block 21 is the same as the number of first slots 95 on the carrier member 93.
[0039] The second feeding assembly 6 works in the same way as the first feeding assembly 2. The only difference in structure is the structure of the stop block 21. The stop block 21 no longer has the second receiving hole 23. The top cover 944 is engaged with the second slot 22. The second connecting part 945 faces away from the stop block 21, so that the clamping member 74 can clamp the second connecting part 945. The rest of the structure is the same and will not be described in detail.
[0040] In another embodiment, the first feeding component 2 and the second feeding component 6 can also be fed by a conveyor belt mechanism, with the stop block 21 located at the feeding end of the conveyor belt mechanism.
[0041] Reference Figure 3 and Figure 4 As shown, assembly component 4 includes a connecting frame 41, a movable plate 43, a support plate 42, a cutting component 48, a second driving component 44, and a third driving component 46. The second driving component 44 is connected to the movable plate 43, and the movable plate 43 is slidably connected to the connecting frame 41. The output end of the third driving component 46 is connected to the movable plate 43. The cutting component 48 is connected to the output end of the second driving component 44. The end of the cutting component 48 is provided with a cutting blade 481 and a first suction hole 482. The cutting component 48 can move towards the support plate 42 and can also move towards the rotating plate 92. Specifically, both the second driving component 44 and the third driving component 46 are linear driving components. The second driving component 44 is vertically connected to the movable plate 43, and the movable plate 43 is slidably connected to the top of the connecting frame 41 via a slide rail. The output end of the second driving component 44 passes through the movable plate 43. The third driving component 46 is connected to the outside. The second driving component 44 can drive the cutting component 48 to rise and fall. The third driving component 46 can drive the movable plate 43 to move, causing the cutting component 48 to move towards or away from the rotating plate 92. Multiple cutting components 48 are located on the connecting block 47, and the number of cutting components 48 is the same as the number of first slots 95 on the carrier 93. The output end of the second driving component 44 is connected to the connecting block 47. The cutting component 48 is cylindrical in shape. The cutting blade 481 is located at one end of the cutting component 48 near the support plate 42, and the cutting blade 481 protrudes from the end face of the cutting component 48. The cutting blade 481 surrounds the edge of the end of the cutting component 48, making the cutting blade 481 ring-shaped. After the cutting blade 481 cuts the filter membrane 53, it can form a circular filter sheet 943. The first adsorption hole 482 is located at the middle position of the end of the cutting component 48 and is connected to the vacuum source. A guide rod 45 is slidably connected to the movable plate 43. The guide rod 45 is perpendicular to the movable plate 43, and one end of the guide rod 45 is connected to the connecting block 47. During the lifting and lowering of the connecting block 47, the guide rod 45 can guide the movement and prevent the connecting block 47 from shaking. The support plate 42 is connected to the connecting frame 41. The support plate 42 is located below the second driving member 44 and is located on the moving path of the cutting member 48. The support plate 42 is provided with a material passage groove 421.
[0042] Reference Figure 2As shown, the feeding assembly 5 can be considered as a film feeding mechanism. The feeding assembly 5 includes a feeding roller 51, a take-up roller 52, and multiple tension rollers. A feeding roll is fitted onto the feeding roller 51, and a filter membrane 53 is wound around the feeding roll. A take-up roll is fitted onto the take-up roller 52, and the end of the filter membrane 53 is wound around the take-up roll. The filter membrane 53 is in contact with the multiple tension rollers. After passing the support plate 42 away from the feeding roll, the filter membrane 53 extends towards the take-up roll. The take-up roller 52 is connected to the output end of a motor. The motor drives the take-up roller 52 to rotate, thereby moving the filter membrane 53. The movement path of the filter membrane 53 is the feeding path of the feeding assembly 5. The feeding path passes through the support plate 42 near the cutting piece 48. Specifically, the feeding path passes through the feed chute 421, which guides the movement of the filter membrane 53. The feeding assembly 5 includes a first tensioning roller 55 among multiple tensioning rollers. The feeding assembly 5 also includes a sixth drive member 56, which is a linear drive member. The output end of the sixth drive member 56 is connected to a moving plate 561. The first tensioning roller 55 is connected to the moving plate 561. The sixth drive member 56 drives the moving plate 561 to move, thereby adjusting the tension of the filter membrane 53 and facilitating the replacement of the feed roll and take-up roll. The feeding assembly 5 also includes an electrostatic precipitator 57, which is connected to the outside. The dust removal end of the electrostatic precipitator 57 faces the movement path of the filter membrane 53 and is located between the connecting frame 41 and the feed roll, thus preventing dust from accumulating on the filter sheet 943.
[0043] Reference Figure 12 As shown, in another embodiment, the support plate 42 connected to the connecting frame 41 is no longer provided. The moving plate 561 is connected to the support base 54. The feeding path of the feeding assembly 5 is located on the support base 54 and extends from the side of the support base 54 away from the feeding roll to the take-up roll. The sixth driving member 56 drives the moving plate 561 to move, so that the support base 54 is located on the moving path of the cutting member 48, thereby enabling the cutting member 48 to cut the filter membrane 53. By moving the support base 54, the tension of the filter membrane 53 can be further adjusted, and it can be adapted to the cutting member 48 installed in different positions to cut the filter membrane 53. Two guide blocks 58 are connected to the support base 54, and the filter membrane 53 is located between the two guide blocks 58. The guide blocks 58 can guide the movement of the filter membrane 53, and the support base 54 is provided with an elongated connecting hole 59 perpendicular to the moving path of the filter membrane 53, thereby enabling the guide blocks 58 to move and guide filter membranes 53 of different widths.
[0044] Reference Figure 1As shown, the filter assembly device also includes a feeding assembly 8, which has the same structure as the second feeding assembly 7 and will not be described again. The feeding assembly 8 is arranged opposite to the assembly assembly 4, and the transfer assembly 9 is located between the first feeding assembly 3 and the second feeding assembly 7, and the transfer assembly 9 is also located between the assembly assembly 4 and the feeding assembly 8. The feeding assembly 8 can clamp the bottom cover 941 in the first slot 95 on the carrier 93, thereby detaching the assembled filter 94 from the carrier 93 and moving the filter 94 to the outside.
[0045] Reference Figure 1 , Figure 9 and Figure 10 As shown, the filter assembly device also includes a base 1, a first driving component 91 connected to the base 1, a rotating plate 92 slidably connected to the base 1, a connecting frame 41 and a feeding assembly 5 both connected to the base 1, a first driving module 32 connected to the base 1 through a first bracket 31, and a second driving module 72 connected to the base 1 through a second bracket 71.
[0046] In use, the feeding assembly 5 delivers the filter membrane 53 onto the support plate 42. The adsorption member 33 in the first feeding assembly 3 moves towards the output end of the first feeding assembly 2 until the adsorption member 33 adsorbs the bottom cover 941. Then, the adsorption member 33 drives the bottom cover 941 from the first feeding assembly 3 to the first slot 95 of the carrier member 93. Further, the rotating plate 92 moves, and the carrier member 93 carrying the bottom cover 941 moves to the assembly position. The second driving member 44 drives the cutting member 48 to move towards the support plate 42 until the cutting edge 481 of the cutting member 48 abuts against the filter membrane 53. At this time, the cutting edge 481 completes the cutting of the filter membrane 53. The cut part on the filter membrane 53 is the filter sheet 943. After the cutting is completed, the first adsorption hole 482 generates negative pressure, causing the filter membrane 53 to be adsorbed onto the end of the cutting member 48. Further, the third driving member 46 drives the movable plate 43 to move. The cutting component 48 is aligned with the bottom cover 941 on the rotating plate 92. The second driving component 44 drives the cutting component 48 to move, so that the end of the cutting component 48 moves close to the bottom cover 941. At this time, the first adsorption hole 482 stops generating negative pressure, and the filter sheet 943 moves onto the bottom cover 941. Further, the rotating plate 92 moves, and the carrier 93 carrying the bottom cover 941 and the filter sheet 943 moves to the top cover 944 assembly position. The clamping component 74 in the second feeding component 7 clamps the top cover 944 at the output end of the second feeding component 6. The clamping component 74 drives the top cover 944 from the second feeding component 6 to the bottom cover 941 located on the carrier 93. At this time, the assembly of the filter 94 is completed. Finally, the rotating plate 92 moves, and the unloading component 8 clamps the bottom cover 941 in the first slot 95 on the carrier 93, so that the assembled filter 94 is detached from the carrier 93.
[0047] The present invention discloses a filter assembly device. By setting the cutting blade 481 and the first adsorption hole 482 on the cutting member 48, the second driving member 44 can drive the cutting member 48 to complete the cutting of the filter membrane 53. At the same time, the first adsorption hole 482 can adsorb the cut filter 943. Thus, after the cutting is completed, there is no need to transport the filter 943. After the filter 943 is adsorbed by the first adsorption hole 482, the transfer of the filter 943 can begin. Moreover, there is no need to position it before the transfer, thereby improving the assembly efficiency of the filter 943.
[0048] Obviously, the above embodiments are merely illustrative examples for clear explanation and are not intended to limit the implementation. Those skilled in the art will recognize that other variations or modifications can be made based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. A filter element assembly apparatus, characterized by, include: The transfer assembly includes a first driving member and a rotating plate, wherein the rotating plate is connected to the output end of the first driving member; A first feeding assembly, wherein the feeding end of the first feeding assembly is movable toward the rotating plate; The assembly includes a connecting frame, a movable plate, a support plate, a cutting component, a second driving component, and a third driving component. The second driving component is connected to the movable plate, and the movable plate is slidably connected to the connecting frame. The output end of the third driving component is connected to the movable plate. The cutting component is connected to the output end of the second driving component. The end of the cutting component is provided with a cutting blade and a first suction hole. The cutting component can move towards the support plate and also towards the rotating plate. A feeding assembly, wherein the feeding path of the feeding assembly passes through the support plate and approaches one side of the cutting piece.
2. The filter insert assembly apparatus of claim 1, wherein: The cutting element is located on the connecting block, the output end of the second driving element is connected to the connecting block, the cutting blade protrudes from the end face of the cutting element, and the cutting blade surrounds the edge of the end of the cutting element.
3. The filter insert assembly apparatus of claim 2, wherein: The movable plate is slidably connected to a guide rod, one end of which is connected to the connecting block.
4. The filter insert assembly apparatus of claim 1, wherein: The support plate is connected to the connecting frame, and the support plate is provided with a material passage groove, through which the material feeding path of the feeding component passes.
5. The filter assembly device according to claim 1, characterized in that: The rotating plate is connected to a plurality of support members, which are arranged at equal intervals along the edge of the rotating plate, and each support member is provided with a first slot.
6. The filter insert assembly of claim 5, wherein: The side wall of the first slot has at least two openings, which are arranged opposite to each other.
7. The filter insert assembly apparatus of claim 1, wherein: The first feeding component includes a first driving module and an adsorption element. The output end of the first driving module is connected to the adsorption element. The adsorption end of the adsorption element is the feeding end of the first feeding component. The adsorption end of the adsorption element is provided with a second adsorption hole.
8. The filter insert assembly apparatus of claim 1, wherein: It also includes a second feeding component. The first feeding component and the second feeding component are arranged opposite to each other. The second feeding component includes a second driving module, a fourth driving component and clamping components. The output end of the second driving module is connected to the fourth driving component, and the two clamping components are connected to the output end of the fourth driving component.
9. The filter insert assembly of claim 8, wherein: It also includes a first feeding component and a second feeding component, wherein the feeding end of the first feeding component can move toward the output end of the first feeding component, and the clamping member can move toward the output end of the second feeding component.
10. The filter leaf assembly of claim 9, wherein: The first feeding component includes a feeding channel and a stop block. The stop block is provided with a second slot, which is connected to the feeding channel.