Remote control dust collector with anti-blocking effect
By introducing a filter and a crushing component into the vacuum cleaner, combined with a remote control device, the problem of vacuum cleaner clogging is solved, the vacuuming efficiency is improved, and efficient filtration and cleaning of impurities are achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-11
- Publication Date
- 2026-04-07
AI Technical Summary
Existing vacuum cleaners are prone to pipe blockage when dust and impurities enter the machine, affecting suction efficiency and making cleaning difficult.
It combines a filtration component and a crushing component. The filtration component separates dust and impurities through a filter cartridge and filter holes, while the crushing component crushes the impurities through a blade assembly. Combined with a remote control device, the vacuum cleaner's power can be adjusted in real time.
It improves vacuuming efficiency, reduces the possibility of clogging, and adapts to different cleaning conditions through a remote control device, achieving efficient filtration and cleaning of impurities.
Smart Images

Figure CN224085227U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of vacuum cleaners, and in particular to a remote-controlled vacuum cleaner with anti-clogging effect. Background Technology
[0002] A vacuum cleaner is a household appliance used for indoor cleaning, removing dust and debris from floors, carpets, walls, furniture, clothing, and various crevices. Vacuum cleaners can be categorized by structure as upright, canister, and portable. A vacuum cleaner uses an electric motor to drive blades to rotate at high speed, creating negative air pressure within a sealed casing to suck up dust and debris.
[0003] Currently, during the vacuuming process, dust and impurities enter the machine together. When there are too many impurities, they can clog the pipes, making it difficult for users to clean them, and also affecting the vacuum cleaner's suction efficiency. Utility Model Content
[0004] In order to improve vacuuming efficiency and reduce the possibility of vacuum cleaner clogging, this application provides a remote-controlled vacuum cleaner with anti-clogging effect.
[0005] The remote-controlled vacuum cleaner with anti-clogging effect provided in this application adopts the following technical solution:
[0006] A remote-controlled vacuum cleaner with anti-clogging effect includes a vacuum cleaner body, which includes a device shell, a vacuum module, a vacuum hose, and a dust collection cylinder. The vacuum module is disposed at one end of the device shell, and the vacuum hose and the dust collection cylinder are disposed in the device shell. The two ends of the vacuum hose are respectively connected to the dust collection cylinder and the vacuum module. The vacuum cleaner also includes a filter assembly, which includes a filter cylinder and a connecting ring plate. The filter cylinder is coaxially disposed in the vacuum hose, and the diameter of the filter cylinder is smaller than the inner diameter of the vacuum hose. The filter cylinder has a plurality of filter holes on its annular wall and the side wall away from the vacuum module. The connecting ring plate is connected to the outer annular wall of the filter cylinder near the vacuum module, and the outer annular wall of the connecting ring plate abuts against the inner annular wall of the vacuum hose. The filter cylinder has an air inlet on the side near the vacuum module.
[0007] By adopting the above technical solution, dust and impurities enter the filter cartridge together, with dust passing through the filter holes into the integrated cartridge. Impurities are temporarily stored in the filter cartridge. Through the cooperation of the vacuum cleaner body and the filter assembly, impurities are filtered, improving vacuuming efficiency and reducing the possibility of clogging.
[0008] Optionally, the filter cartridge is provided with a crushing assembly, which includes a first cutter head, a second cutter head, a rotating rod, and a rotating sleeve rod. The rotating rod is rotatably mounted on the inner wall of the filter cartridge away from the dust collection module, along the central axis of the filter cartridge. The first cutter head is mounted on the rotating rod, and the rotating sleeve rod is rotatably mounted on the rotating rod. One end of the rotating sleeve rod is rotatably connected to the inner wall of the filter cartridge away from the dust collection module. The length of the rotating sleeve rod is less than the length of the rotating rod. The second cutter head is mounted on the rotating sleeve rod. The filter cartridge is provided with a driving component for driving the rotating rod and the rotating sleeve rod to rotate.
[0009] By adopting the above technical solution, when impurities are too large and clog the filter holes, the driving component drives the rotating rod and the rotating sleeve rod to rotate, and the first cutter head and the second cutter head crush the impurities, reducing the possibility of impurities being too large and clogging the filter holes.
[0010] Optionally, the driving component includes a first bevel gear, a second bevel gear, and a driving bevel gear. One end of the rotating rod extends out of the filter cylinder and is connected to the first bevel gear. One end of the rotating sleeve extends out of the filter cylinder and is connected to the second bevel gear. The driving bevel gear is disposed between the first bevel gear and the second bevel gear and meshes with both of them. The filter cylinder is provided with a driving source for driving the driving bevel gear to rotate.
[0011] By adopting the above technical solution, the bevel gear is driven to rotate, causing the first and second bevel gears to rotate in opposite directions. This reverses the rotation of the first and second cutter heads, reducing the possibility of impurities simultaneously becoming entangled on both cutter heads and rotating with them.
[0012] Optionally, the filter cartridge is provided with a cleaning rod assembly, which includes a first cleaning rod and a second cleaning rod. The second cleaning rod is vertically connected to both ends of the first cleaning rod. The first cleaning rod is fitted to the inner wall of the filter cartridge away from the dust collection module. The second cleaning rod is fitted to the inner ring wall of the filter cartridge. The first cleaning rod is connected to the rotating sleeve rod.
[0013] By adopting the above technical solution, while the impurities are being crushed, the first cleaning rod and the second cleaning rod simultaneously clean the inner wall of the filter cylinder, reducing the possibility of impurities clogging the filter holes.
[0014] Optionally, the dust collection pipe is equipped with a slag collection assembly, which includes a slag collection connecting pipe, a slag collection box, and a vacuum slag collection pump. One end of the slag collection connecting pipe is connected to the filter cartridge, and the other end is connected to the slag collection box. The vacuum slag collection pump is connected to the slag collection box. A barometer is connected to the dust collection pipe, and the position of the barometer corresponds to the position of the filter cartridge.
[0015] By adopting the above technical solution, the vacuum slag collection pump is started for the crushed impurities, and the impurities in the filter cylinder enter the slag collection box for temporary storage through the slag collection connection pipe.
[0016] Optionally, the filter cartridge is provided with a connecting pipe that communicates with the air inlet, and the end of the connecting pipe away from the filter cartridge is connected to a collection guide bucket, the outer peripheral wall of the collection guide bucket being fitted to the inner ring wall of the dust suction pipe.
[0017] By adopting the above technical solution, the guide bucket guides the impurities, making it easier for them to flow into the filter cartridge more quickly.
[0018] Optionally, a plurality of connecting rods are provided on the outer ring wall of the end of the filter cartridge away from the dust collection module, and the ends of the plurality of connecting rods away from the filter cartridge are connected to a support ring. A connecting magnetic ring is provided on the inner ring wall of the dust collection tube, and the connecting magnetic ring is adsorbed and connected to the support ring.
[0019] By adopting the above technical solution, the filter assembly is connected to the suction pipe through the connecting magnetic ring and the support ring, which facilitates the operator to install, remove and clean the device.
[0020] Optionally, the vacuum cleaner body is provided with a remote control device, which includes a remote controller and a receiver module. The receiver module is disposed on the outer shell of the device, and the remote controller is electrically connected to the receiver module.
[0021] By adopting the above technical solution, the remote control device can adjust the power of the vacuum cleaner in real time, making it suitable for different cleaning situations.
[0022] In summary, this application includes at least one of the following beneficial technical effects:
[0023] 1. Through the cooperation of the vacuum cleaner body and the filter components, impurities are filtered out, which improves vacuuming efficiency and reduces the possibility of vacuum cleaner clogging.
[0024] 2. The inclusion of a crushing component reduces the likelihood of excessively large impurities clogging the filter pores;
[0025] 3. The remote control device adjusts the power of the vacuum cleaner in real time to suit different cleaning situations. Attached Figure Description
[0026] Figure 1 This is a schematic diagram illustrating the structure of a remote-controlled vacuum cleaner with anti-clogging effect, as described in this application embodiment.
[0027] Figure 2 This is a partial cross-sectional view used in the embodiments of this application to illustrate the internal structure of the device housing.
[0028] Figure 3 yes Figure 2 Enlarged view of part A in the middle.
[0029] Figure 4 yes Figure 2 Enlarged view of section B in the middle.
[0030] Explanation of reference numerals in the attached drawings: 1. Vacuum cleaner body; 101. Vacuuming module; 102. Device housing; 103. Vacuuming pipe; 104. Dust collection cylinder; 2. Filter assembly; 21. Filter cylinder; 211. Air inlet; 212. Filter hole; 22. Connecting ring plate; 23. Connecting pipe; 24. Collection guide hopper; 25. Connecting rod; 26. Support ring; 3. Crushing assembly; 31. First cutter head; 32. Second cutter head; 33. Rotating rod; 34. 1. Rotating sleeve rod; 35. First bevel gear; 36. Second bevel gear; 37. Drive bevel gear; 38. Crushing motor; 4. Cleaning rubber strip; 5. Slag collection assembly; 51. Slag collection connecting pipe; 52. Slag collection box; 53. Enclosed rotating plate; 54. Connecting hinge; 55. Enclosed torsion spring; 56. Vacuum slag collection pump; 57. Barometer; 6. Receiving module; 7. Sealing ring; 8. Connecting magnetic ring; 9. First cleaning rod; 10. Second cleaning rod. Detailed Implementation
[0031] The following is in conjunction with the appendix Figure 1-4 This application will be further described in detail below. Embodiments of this application provide a remote-controlled vacuum cleaner with anti-clogging properties, which improves vacuuming efficiency and reduces the likelihood of clogging.
[0032] Reference Figure 1 and Figure 2A remote-controlled vacuum cleaner with anti-clogging effect includes a vacuum cleaner body 1, a filter assembly 2, a crushing assembly 3, a cleaning rod assembly, and a dust collection assembly 5. The vacuum cleaner body 1 includes a suction module 101, a device housing 102, a suction pipe 103, and a dust collection cylinder 104. The suction module 101 is disposed at one end of the device housing 102, and both the suction pipe 103 and the dust collection cylinder 104 are disposed within the device housing 102. The two ends of the suction pipe 103 are respectively connected to the dust collection cylinder 104 and the suction module 101. The vacuum cleaner body 1 also has a remote control device for controlling its power. The remote control device includes a remote controller (not shown in the attached drawings) and a receiver module 6. The receiver module 6 is disposed on the device housing 102 and is electrically connected to the remote controller. The power of the vacuum cleaner body 1 can be controlled and adjusted through the remote control device.
[0033] Reference Figure 3 and Figure 2 The filter assembly 2 is disposed in the suction pipe 103. The filter assembly 2 includes a filter cylinder 21, a connecting ring plate 22, a connecting pipe 23, a collection guide hopper 24, a connecting rod 25, and a support ring 26. The filter cylinder 21 is coaxially disposed in the suction pipe 103, and an air inlet 211 is provided on the side of the filter cylinder 21 near the suction module 101. The connecting pipe 23 is disposed on the filter cylinder 21 and communicates with the air inlet 211. The end of the connecting pipe 23 away from the air inlet 211 is connected to the end of the collection guide hopper 24. A sealing ring 7 is provided on the outer ring wall of the collection guide hopper 24, and the sealing ring 7 abuts against the inner ring wall of the suction pipe 103. The connecting ring plate 22 is disposed on the outer ring wall of the filter cylinder 21 near the end of the collection guide hopper 24, and the outer peripheral wall of the connecting ring plate 22 abuts against the inner ring wall of the suction pipe 103. Several connecting rods 25 are connected to the outer ring wall of the filter cylinder 21 at the end away from the collection guide hopper 24. The ends of the connecting rods 25 away from the filter cylinder 21 are all connected to the support ring 26, which is made of magnetic metal. A connecting magnetic ring 8 is provided on the inner ring wall of the suction pipe 103. The connecting magnetic ring 8 is located on the side of the support ring 26 near the dust collection cylinder 104, and the connecting magnetic ring 8 is magnetically attracted to the support ring 26. Several filter holes 212 are provided on the ring wall of the filter cylinder 21 and the side wall away from the suction module 101.
[0034] Reference Figure 3 and Figure 2The filter cylinder 21 is equipped with a crushing assembly 3, which includes a first cutter head 31, a second cutter head 32, a rotating rod 33, a rotating sleeve rod 34, a first bevel gear 35, a second bevel gear 36, a drive bevel gear 37, and a crushing motor 38. The rotating sleeve rod 34 and the rotating rod 33 are disposed within the filter cylinder 21, with the rotating sleeve rod 34 sleeved over the rotating rod 33. The length of the rotating sleeve rod 34 is less than the length of the rotating rod 33. One end of both the rotating rod 33 and the rotating sleeve rod 34 is rotatably connected to the end of the filter cylinder 21 furthest from the collecting guide hopper 24. The first cutter head 31 is connected to the rotating rod 33, and the second cutter head 32 is connected to the rotating sleeve rod 34. One end of the rotating rod 33 extends out of the filter cylinder 21 and is connected to the first bevel gear 35, and one end of the rotating sleeve rod 34 extends out of the filter cylinder 21 and is connected to the second bevel gear 36. The crushing motor 38 is located outside the filter cylinder 21. The output shaft of the crushing motor 38 is connected to the drive bevel gear 37. The drive bevel gear 37 is located between the first bevel gear 35 and the second bevel gear 36 and meshes with both of them.
[0035] Reference Figure 3 and Figure 2 A cleaning rod assembly is provided on the rotating sleeve 34. The cleaning rod assembly includes a first cleaning rod 9 and a second cleaning rod 10. One second cleaning rod 10 is vertically arranged at each end of the first cleaning rod 9. The first cleaning rod 9 is connected to the rotating sleeve 34 and fits against the inner wall of the filter cylinder 21 away from the collection guide hopper 24. The second cleaning rod 10 is fitted against the inner ring wall of the filter cylinder 21. Cleaning rubber strips 4 are provided on the side of the first cleaning rod 9 and the second cleaning rod 10 near the inner wall of the filter cylinder 21.
[0036] Reference Figure 2-4 The slag collection assembly 5 includes a slag collection connecting pipe 51, a slag collection box 52, a closed rotating plate 53, a connecting hinge 54, a closed torsion spring 55, a vacuum slag collection pump 56, and a barometer 57. One end of the slag collection connecting pipe 51 is connected to the filter cylinder 21 via a threaded connection, and the other end is connected to the slag collection box 52. The vacuum slag collection pump 56 is connected to the slag collection box 52. The closed rotating plate 53 is rotatably mounted in the slag collection box 52 via the connecting hinge 54 and is correspondingly positioned to the slag collection connecting pipe 51. The closed torsion spring 55 is mounted on the connecting hinge 54, and the closed rotating plate 53, under the action of the closed torsion spring 55, seals the end of the slag collection connecting pipe 51. The barometer 57 is connected to the dust suction pipe 103, and its position corresponds to the position of the filter cylinder 21.
[0037] Reference Figure 2 and Figure 3During vacuuming, external dust and impurities enter the suction pipe 103, and then pass through the collection guide hopper 24 and connecting pipe 23 into the filter cartridge 21 for filtration. Smaller dust particles pass through the filter cartridge 21 into the dust collection cylinder 104 for collection, while impurities remain in the filter cartridge 21. The barometer 57 monitors the air pressure in the suction pipe 103 in real time. When excessive impurities in the filter cartridge 21 clog the filter holes 212, the air pressure rises. At this time, the crushing motor 38 starts, driving the drive bevel gear 37 to rotate. The first bevel gear 35 and the second bevel gear 36 rotate in opposite directions under the drive of the drive bevel gear 37, causing the rotating rod 33 and the rotating sleeve rod 34 to rotate in opposite directions. The first cutter head 31 and the second cutter head 32 rotate in opposite directions within the filter cartridge 21, crushing the impurities into small pieces. Because the first cutter head 31 and the second cutter head 32 rotate in opposite directions, the possibility of impurities simultaneously entangled on both sides is reduced. At the same time, the first cleaning rod 9 and the second cleaning rod 10 clean the inner wall of the filter cylinder 21, reducing the possibility of impurities clogging the filter holes 212.
[0038] Reference Figure 2-4 The vacuum slag pump 56 starts, creating negative pressure in the slag collection box 52. The closed rotating plate 53 opens, and the crushed impurities in the filter cartridge 21 enter the slag collection box 52 for temporary storage through the slag collection connecting pipe 51. When the collection of impurities stops, the closed rotating plate 53, under the action of the closed torsion spring 55, re-seals the slag collection connecting pipe 51, reducing the possibility of impurities flowing back into the filter cartridge 21. The connecting magnetic ring 8 enables a quick and detachable connection between the filter assembly 2 and the suction pipe 103.
[0039] The implementation principle of a remote-controlled vacuum cleaner with anti-clogging effect in this embodiment is as follows: During vacuuming, smaller dust particles enter the dust collection cylinder 104 through the filter cylinder 21 for collection, while impurities remain in the filter cylinder 21. When too many impurities in the filter cylinder 21 block the filter holes 212, the first cutter head 31 and the second cutter head 32 rotate in opposite directions within the filter cylinder 21, breaking the impurities into smaller pieces. Simultaneously, the first cleaning rod 9 and the second cleaning rod 10 clean the inner wall of the filter cylinder 21, reducing the possibility of impurities clogging the filter holes 212. The vacuum slag collection pump 56 starts, and the broken impurities in the filter cylinder 21 enter the slag collection box 52 through the slag collection connecting pipe 51 for temporary storage.
[0040] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A remote-controlled vacuum cleaner with anti-clogging effect, comprising a vacuum cleaner body (1), the vacuum cleaner body (1) comprising a device housing (102), a vacuum module (101), a vacuum hose (103), and a dust collection cylinder (104), the vacuum module (101) being disposed at one end of the device housing (102), the vacuum hose (103) and the dust collection cylinder (104) being disposed within the device housing (102), the two ends of the vacuum hose (103) being respectively connected to the dust collection cylinder (104) and the vacuum module (101), characterized in that: It also includes a filter assembly (2), which includes a filter cylinder (21) and a connecting ring plate (22). The filter cylinder (21) is coaxially disposed in the suction pipe (103). The diameter of the filter cylinder (21) is smaller than the inner diameter of the suction pipe (103). The filter cylinder (21) has several filter holes (212) on its annular wall and the side wall away from the suction module (101). The connecting ring plate (22) is connected to the outer annular wall of the filter cylinder (21) near the suction module (101). The outer annular wall of the connecting ring plate (22) abuts against the inner annular wall of the suction pipe (103). The filter cylinder (21) has an air inlet (211) on the side near the suction module (101).
2. A remote-controlled vacuum cleaner with anti-clogging effect according to claim 1, characterized in that: The filter cylinder (21) is provided with a crushing component (3), which includes a first cutter head (31), a second cutter head (32), a rotating rod (33), and a rotating sleeve (34). The rotating rod is rotatably mounted on the inner wall of the filter cylinder (21) away from the dust collection module (101) along the central axis of the filter cylinder (21). The first cutter head (31) is mounted on the rotating rod (33), and the rotating sleeve (34) is rotatably mounted on the rotating rod (33). One end of the rotating sleeve (34) is rotatably connected to the inner wall of the filter cylinder (21) away from the dust collection module (101). The length of the rotating sleeve (34) is less than the length of the rotating rod (33). The second cutter head (32) is mounted on the rotating sleeve (34). The filter cylinder (21) is provided with a driving component for driving the rotating rod (33) and the rotating sleeve (34) to rotate.
3. A remote-controlled vacuum cleaner with anti-clogging effect according to claim 2, characterized in that: The driving component includes a first bevel gear (35), a second bevel gear (36), and a driving bevel gear (37). One end of the rotating rod (33) extends out of the filter cylinder (21) and is connected to the first bevel gear (35). One end of the rotating sleeve rod (34) extends out of the filter cylinder (21) and is connected to the second bevel gear (36). The driving bevel gear (37) is disposed between the first bevel gear (35) and the second bevel gear (36) and meshes with both of them. The filter cylinder (21) is provided with a driving source for driving the driving bevel gear (37) to rotate.
4. A remote-controlled vacuum cleaner with anti-clogging effect according to claim 2, characterized in that: The filter cylinder (21) is provided with a cleaning rod assembly, which includes a first cleaning rod (9) and a second cleaning rod (10). The second cleaning rod (10) is vertically connected to both ends of the first cleaning rod (9). The first cleaning rod (9) is attached to the inner wall of the filter cylinder (21) away from the dust collection module (101). The second cleaning rod (10) is attached to the inner ring wall of the filter cylinder (21). The first cleaning rod (9) is connected to the rotating sleeve rod (34).
5. A remote-controlled vacuum cleaner with anti-clogging effect according to claim 4, characterized in that: The dust suction pipe (103) is equipped with a slag collection assembly (5), which includes a slag collection connecting pipe (51), a slag collection box (52), and a vacuum slag collection pump (56). One end of the slag collection connecting pipe (51) is connected to the filter cylinder (21), and the other end is connected to the slag collection box (52). The vacuum slag collection pump (56) is connected to the slag collection box (52). A barometer (57) is connected to the dust suction pipe (103), and the position of the barometer (57) corresponds to the position of the filter cylinder (21).
6. A remote-controlled vacuum cleaner with anti-clogging effect according to claim 1, characterized in that: The filter cartridge (21) is provided with a connecting pipe (23) that communicates with the air inlet (211). The end of the connecting pipe (23) away from the filter cartridge (21) is connected to a collection guide bucket (24). The outer peripheral wall of the collection guide bucket (24) is fitted to the inner ring wall of the dust suction pipe (103).
7. A remote-controlled vacuum cleaner with anti-clogging effect according to claim 1, characterized in that: A plurality of connecting rods (25) are provided on the outer ring wall of the end of the filter cylinder (21) away from the dust collection module (101). The ends of the plurality of connecting rods (25) away from the filter cylinder (21) are connected to a support ring (26). A connecting magnetic ring (8) is provided on the inner ring wall of the dust collection pipe (103). The connecting magnetic ring (8) is adsorbed and connected to the support ring (26).
8. A remote-controlled vacuum cleaner with anti-clogging effect according to claim 1, characterized in that: The vacuum cleaner body (1) is provided with a remote control device, which includes a remote controller and a receiving module (6). The receiving module (6) is disposed on the outer shell (102) of the device, and the remote controller is electrically connected to the receiving module (6).