CLEANER HEAD FOR A VACUUM CLEANER
20220211232 · 2022-07-07
Assignee
Inventors
Cpc classification
A47L9/0666
HUMAN NECESSITIES
A47L9/0444
HUMAN NECESSITIES
A46B13/006
HUMAN NECESSITIES
International classification
Abstract
A cleaner head for a vacuum cleaner includes a suction cavity having an opening through which debris enters the cleaner head, and an air outlet, and an agitator mounted in the suction cavity in a cantilevered manner for rotation relative thereto. The agitator is conical in shape and has a first, free end and a second end which has a larger diameter than the first end. The air outlet is located adjacent the free end of the agitator.
Claims
1. A cleaner head for a vacuum cleaner, the cleaner head comprising: a suction cavity comprising an opening through which debris enters the cleaner head, and an air outlet; and an agitator mounted in the suction cavity in a cantilevered manner for rotation relative thereto, the agitator being conical in shape and having a first, free end and a second end which has a larger diameter than the first end; wherein the air outlet is located adjacent the free end of the agitator.
2. The cleaner head as claimed in claim 1, wherein the air outlet is located rearwardly of the agitator.
3. The cleaner head as claimed in claim 1, wherein the air outlet is positioned so that, in a direction extending along the longitudinal axis of the agitator, the air outlet is spaced from the free end of the agitator.
4. The cleaner head as claimed in claim 3, wherein the spacing of the air outlet from the agitator along said direction is less than 10 mm.
5. The cleaner head as claimed in claim 1, comprising a neck which is connectable to a vacuum cleaner, and wherein the neck comprises an outlet of the cleaner head.
6. The cleaner head as claimed in claim 5, wherein the cleaner head defines an airflow path extending downstream of the suction cavity from the air outlet towards the outlet of the cleaner head.
7. The cleaner head as claimed in claim 6, wherein the airflow path is defined, at least in part, by a duct for conveying air from the air outlet to an air inlet port formed in the neck.
8. The cleaner head as claimed in claim 7, wherein the suction cavity is defined by a housing of the cleaner head, and wherein the duct extends from the air outlet to the neck externally of the housing.
9. The cleaner head according to claim 8, wherein the housing is substantially conical in shape.
10. The cleaner head as claimed in claim 7, wherein the duct is curved.
11. The cleaner head as claimed in claim 10, wherein the duct curves through 90° between the second air outlet and the air inlet port.
12. The cleaner head as claimed in claim 7, wherein the duct is integral with at least part of the neck.
13. The cleaner head as claimed in claim 7, wherein the duct is integral with at least part of the housing.
14. The cleaner head as claimed in claim 1, wherein the suction cavity comprises an additional air outlet, and the cleaner head defines an additional airflow path extending downstream of the suction cavity from the additional air outlet towards an outlet of the cleaner head.
15. The cleaner head as claimed in claim 14, wherein the additional air outlet is located rearwardly of the agitator.
16. The cleaner head as claimed in claim 14, wherein the first air outlet is located midway between the free end and the second end of the agitator.
17. The cleaner head as claimed in claim 14, wherein the air outlets are aligned in a direction extending parallel to the longitudinal axis of the agitator.
18. The cleaner head as claimed in claim 14 when dependent from claim 6, wherein the airflow path extending from the second air outlet intersects the first airflow path upstream of the outlet of the cleaner head.
19. The cleaner head as claimed in claim 1, comprising a drive for driving rotation of the agitator, and wherein the agitator is connected to the drive at or towards the second end of the agitator.
20. The cleaner head as claimed in claim 19, wherein the drive comprises a motor located externally of the agitator, and a belt connecting the agitator to the motor.
21. The cleaner head as claimed in claim 1, wherein the agitator comprises a conical core having upstanding helical ridges, and a row of bristles located between the helical ridges.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0035] Preferred features of the invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE INVENTION
[0051]
[0052] With particular reference to
[0053] With reference also to
[0054] A pair of helical ridges 46, 48 are upstanding from the external surface 40 of the core 38, and extend helically along the external surface 40 of the core 38 from the second end 44 to the first end 42 thereof. The ridges 46, 48 extend substantially the entire length of the core 38, and extend about the external surface 40 by around 450°. The ridges 46, 48 are preferably integral with the core 38 so that the ridges 46, 48 do not deform excessively upon contact with a floor surface. The ridges 46, 48 define a helical channel 50 therebetween which receives a bristle strip 52 (not shown in
[0055] The length of the bristles 56 is selected so that the bristles 56 protrude outwardly beyond the tips of the ridges 46, 48. As measured in a direction perpendicular to the longitudinal axis of the core 38, the height of the upstanding ridges 46, 48 is preferably at least 50% of the height of the bristles 56.
[0056] The agitator 36 is mounted within the suction cavity 34 in a cantilevered manner so that the first end 42 of the core 38 is spaced from the side wall 32 of the front housing 12. The first end 42 may thus be referred to as a free end of the agitator 36. The spacing between the first end 42 of the core 38 and the side wall 32 is preferably in the range from 2 to 10 mm, more preferably in the range from 3 to 5 mm. The agitator 36 is mounted so that the longitudinal axis of the agitator is inclined at an acute angle to a plane containing the suction opening 22. This acute angle is preferably in the range from 5 to 15°, and in this embodiment is approximately 7°. As illustrated in
[0057] The rotation of the agitator 36 is driven by a motor (not shown) which is housed inside the rear housing 14. The motor is arranged to rotate the agitator 36 in such a direction that the bristles 56 sweep dirt and debris rearwardly, that is, over the rear working edge 26, into the suction cavity 34. The motor drives a belt 60 which extends between the front housing 12 and the rear housing 14 within a drive housing 62 which is closed by a cover 64. The belt 60 is arranged to drive rotation of a belt drive 66, which is mounted to a cantilever support defined by the drive housing 62. The cantilever support projects away from the belt drive 66 and provides a mount onto which the agitator 36 is rotatably mounted via bearings 68 and agitator fixings 70. A drive dog 72 is connected to the belt drive 66 so as to project through the cantilever support. The agitator 36 is connected to the drive dog 72 via an internal annular collar 74 of the core 38.
[0058] With reference to
[0059] The second air outlet 82 is located adjacent to the first end 42 of the core 38, and is preferably partially defined by the side wall 32 of the first housing 12. The second air outlet 82 conveys air into a duct 92 which extends externally between the first housing 12 and the neck 84. The duct 92 is preferably rigid and is preferably integral with at least part of the front housing 12 and/or at least part of the neck 84. The duct 92 conveys air from the second air outlet 82 to an air inlet port located within the neck 84, between the first air outlet 80 and the outlet 86 of the cleaner head 10.
[0060] With reference to
[0061] In use, an airflow is drawn through the cleaner head 10 by the motor and fan unit of a vacuum cleaner to which the cleaner head 10 is attached. The airflow enters the suction cavity 34 through the suction opening 22. A first part of the airflow leaves the suction cavity 34 through the first air outlet 80 and passes along a first airflow path extending within the neck 84 from the first air outlet 80 to the outlet 86 of the cleaner head 10. A second part of the airflow leaves the suction cavity 34 through the second air outlet 82, and passes along a second airflow path extending within the duct 92 from the second air outlet 82 to the air inlet port of the neck 84, and thus towards the first airflow path. These parts of the airflow thus merge within the neck 84 of the cleaner head 10 before being emitted from the cleaner head 10 through the outlet 86.
[0062] The agitator 36 is driven by the motor to rotate within the suction cavity 34. With the sole plate 22 pressed against a carpeted floor surface, the rotating bristles 56 of the agitator 36 contact, and so transfer energy to, dust particles and debris located on the floor surface, or between the fibres of the floor surface. As the agitator 36 is rotated within the suction cavity 34 so that the bristles 56 pass from the front working edge 24 to the rear working edge 26, the majority of the energised dust and debris is swept rearwardly through the suction opening 22. Whilst the majority of the dust and debris will become entrained within the airflow passing through the suction cavity 34 and pass through the first air outlet 80 or second air outlet 82, some debris, such as hairs, threads, fibres and the like, can become wrapped around the agitator 36. Such debris is encouraged by the conical shape of the agitator 36 to migrate along the length of the agitator 36 from the second end 44 towards the first end 42. Under the action of the engaging member 96, such debris is pressed around the agitator 36 until it falls from the first end 42 of the agitator 36, whereupon the released debris becomes entrained within the second part of the airflow and passes through the duct 92 and into the neck 84 of the cleaner head 10. The inclination of the bristles 56 relative to the external surface 40 of the core 38 encourages the wrapped debris to migrate along the agitator, and not become trapped between the bristles 56. The relative heights of the bristles 56 and the ridges 46, 48 of the core 38 means that any wrapped debris which begins to migrate between bristles 56 towards the bristle strip 54 will be blocked from doing so by its engagement with the tips of the ridges 46, 48, and so continue to migrate along the agitator 36 towards the first end 42.
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[0064] With reference also to
[0065] In this embodiment, tufts of bristles 156 are mounted on the core 138 of the agitator 136. The tufts of bristles 156 are arranged in a helical row which extends about the core 138 of the agitator 136. The tufts of bristles 156 may be individually connected to the core 138, for example using a stapling technique. Alternatively, the tufts of bristles 156 may be provided in the form of a bristle strip in which tufts of bristles 156 are mounted on a bristle base which is inserted into a helical channel extending about the core 138. The bristles 156 are formed from nylon, and have sufficient strength to agitate dust and debris located upon a surface to be cleaned in use, whilst still having sufficient flexibility to resiliently deform relative to the bristle base or the core 138 of the agitator 136. Similar to the first embodiment, the bristles 156 are arranged on the core 138 so that the bristles 156 are inclined towards the first end 142 of the core 138, but such that the direction of the taper of the bristles 156 extends helically about the core 138 from the second end 144 towards the first end 142 of the core 138.
[0066] As in the first embodiment, the agitator 136 is mounted within the suction cavity 134 in a cantilevered manner so that the first end 142 of the core 138 is spaced from the side wall 158 of the lower housing section 112. In this embodiment, the spacing between the first end 142 of the core 138 and the side wall 158 is preferably in the range from 10 to 20 mm. The agitator 136 is mounted so that the longitudinal axis of the agitator 136 is inclined at an acute angle to a plane containing the suction opening 122. This acute angle is preferably in the range from 5 to 15°, and in this embodiment is approximately 5°. As illustrated in
[0067] The rotation of the agitator 136 is driven by a motor 160, illustrated in
[0068] In this embodiment, the suction cavity 134 comprises a single air outlet 182. The air outlet 182 is located in a similar position to the air outlet 82 of the cleaner head 10; the air outlet 182 is located rearwardly of the agitator 136 and is located above the plane containing the suction opening 122. With particular reference to
[0069] With reference to
[0070] In use, an airflow is drawn through the cleaner head 110 by the motor and fan unit of a vacuum cleaner to which the cleaner head 110 is attached. The airflow enters the suction cavity 134 through the suction opening 122. The airflow leaves the suction cavity 134 through the air outlet 182, and passes along an airflow path extending within the duct 192 from the air outlet 182 to the air inlet port of the neck 184, and then from the air inlet port to the air outlet 186. The agitator 136 is driven by the motor 160 to rotate within the suction cavity 134. With the sole plate 122 pressed against a carpeted floor surface, the rotating bristles 156 of the agitator 136 contact, and so transfer energy to, dust particles and debris located on the floor surface, or between the fibres of the floor surface. As the agitator 136 is rotated within the suction cavity 134 so that the bristles 156 pass from the front working edge 124 to the rear working edge 126, the majority of the energised dust and debris is swept rearwardly through the suction opening 122. Whilst the majority of the energised dust and debris becomes entrained within the airflow passing through the suction cavity 134 and passes through the air outlet 182, some debris, such as hairs, threads, fibres and the like, can become wrapped around the agitator 136. Such debris is encouraged by the conical shape of the agitator 136 to migrate along the length of the agitator 136 from the second end 144 towards the first end 142. Under the action of the engaging member 196, such debris is pressed around the agitator 136 until it falls from the first end 412 of the agitator 136, whereupon the released debris becomes entrained within the airflow and passes through the duct 192 and into the neck 184 of the cleaner head 10. As in the first embodiment, the inclination of the bristles 156 relative to the external surface 140 of the core 138 encourages the wrapped debris to migrate along the agitator 136.