The present invention relates to a floor cleaner and, more particularly, to an automatic floor cleaner that can adjust its moving direction to continue the cleaning operation.
Dusts or particles are often existed on the floor in a house or a workplace. Generally, they are removed by a manual way, such as using broom or a vacuum cleaner. However, the manual way may increase the workload of the staff To reduce the workload, a mobile cleaning robot is disclosed in U.S. Pat. No. 6,938,298 B2, which employs a drive unit and a velcro system secured with a cleaning cloth to allow the robot to move across the floor in a random manner for removing dusts on the floor. Since the cloth is flexible, when the robot moves to a wall, the cloth can be moved a small distance up the wall, so that the dusts in the corner between the floor and the wall can be removed. Also, the robot can be provided with a fan to have it become a movable vacuum cleaner.
However, there are some drawbacks in the mobile cleaning robot as follows:
1. While cleaning the floor, the cloth may crease and thus the effect of removing dusts can be reduced.
2. It is difficult for the cloth to remove tiny dusts adhering to the floor.
3. Since the cleaning effect for the adjoining surface is determined by the amount of the cloth being moved up the surface, it is difficult for the adjoining surface to be cleaned evenly.
Therefore, an objective of the present invention is to provide an automatic floor cleaner to improve the aforementioned shortcoming and deficiency of the prior art. The automatic floor cleaner of the present invention can have a flat contact with a floor surface so that it can be cleaned more effectively.
To achieve this and other objectives, an automatic floor cleaner of the present invention includes a cover, a base plate, a motive assembly, a driving wheel assembly, and a flat bottom plate. The cover is provided with an electrical switch on its top surface. The base plate, being affixed to the cover, defines a first bottom space near its front side, two second bottom spaces near two lateral sides thereof, and a flat bottom recess between the first bottom space and the second bottom spaces. The base plate is provided thereon with at least one hollow column that defines a central hole communicating with the flat bottom recess. A through-hole is defined in the base plate over the first bottom space. A rear wheel assembly is. mounted in each of the second bottom spaces. A power supply is provided on the base plate. The motive assembly, being mounted on the base plate, includes a motor and a vertical output axle. The electrical switch, the power supply, and the motor are electrically connected. The driving wheel assembly, being mounted in the first bottom space, includes an upper frame, a lower frame, and a driving gear therebetween. The lower frame is mounted with a horizontal axle provided with two wheels at two ends thereof and a driven gear coaxially therewith between the two wheels. The driving gear defines a hole in its center to be engaged with the vertical output axle of the motive assembly inserted through the through-hole of the first bottom space. The driving gear is in mesh with the driven gear. The flat bottom plate is provided with at least one vertical post on its top surface and velcro fasteners at its bottom surface. The vertical post is slidably fitted into the central hole of the hollow column, so that the flat bottom plate can slide downward by its weight. A piece of dust removal sheet can be attached to the bottom surface of the flat bottom plate through the velcro fasteners. When the floor cleaner hits an object, the driving wheel assembly can rotate about the vertical output axle to cause the moving direction of the floor cleaner to be changed to a randomly new direction, so that the floor cleaner can escape the object to continue advancing and cleaning the floor surface. Furthermore, the floor cleaner can be mounted with a vacuum cleaning unit in a bottom-mounting, top-mounting, or side-mounting manner to improve the cleaning effect.
The automatic floor cleaner of the present invention has the following effects:
1. In use, the flat bottom plate can slide downward by its weight, so that the cleaning sheet can contact the floor surface more definitely.
2. In use, the dust removal sheet can be in flat contact with the floor surface, so that the sheet will not crease.
3. In one embodiment of the, present invention, the vacuum cleaning unit can be mounted from a position below the base plate, and this allows the molds required for the cover and the base plate to be simplified.
4. In another embodiment of the present invention, the vacuum cleaning unit can be mounted from a position above the cover plate, and this allows the vacuum cleaning unit to be mounted or unmounted more easily, so that the dusts being collected in the unit can be dumped more easily.
5. In a further embodiment of the present invention, the vacuum cleaning unit can be mounted from a side position, and this allows the unit to have a better ventilation performance, thereby increasing the cleaning efficiency.
The present invention will become clearer in light of the following detailed description of illustrative embodiments of this invention described in connection with the drawings.
The illustrative embodiments may best be described by reference to the accompanying drawings where:
Referring to
The cover 10, being generally rectangular in shape, is provided with an electrical switch 11 on its top surface for activating the floor cleaner to clean a floor surface. Other input devices can also be provided on the cover 10 for allowing a user to select the operation time. The base plate 40, being generally rectangular in shape, defines a first bottom space 41 near its front side. The first bottom space 41 is a recess for accommodating the driving wheel assembly 30. A through-hole 42 is defined in the base plate 40 over the first bottom space 41. There are two second bottom spaces 45 respectively defined near the right side and the left side of the base plate 40. The base plate 40 further defines a flat bottom recess 43 extending transversely in its bottom surface for accommodating the flat bottom plate 50. As shown, the flat bottom recess 43 is located between the first bottom space 41 and the two second bottom spaces 45. Also, there are four hollow columns 44 symmetrically provided on the base plate 40. Each hollow column 44 defines therein a central hole communicating with the flat bottom recess 43. A rear wheel assembly 46 can be mounted in each of the second bottom spaces 45. In this embodiment, each of the second bottom spaces 45 has a top open end. The rear wheel assembly 46 is mounted in the corresponding second bottom space 45 by a wheel cap 47 over the corresponding second bottom space 45. The wheel cap 47 is fixed to the rear wheel assembly 46 and the base plate 40 by screws. A power supply 48 is provided on the base plate 40 between the two wheel caps 47.
The motive assembly 20 is mounted on the base plate 40 at a location above the first bottom space 41. The motive assembly 20 includes a motor 21 and a vertical output axle 22. The electrical switch 11, the power supply 48, and the motor 21 are electrically connected.
The driving wheel assembly 30, which is mounted in the first bottom space 41, includes an upper frame 33, a lower frame 31, and a driving gear 32 therebetween. The upper frame 33 defines a through-hole 331. The upper frame 33 can be affixed to the lower frame 31 by using screws to form a housing that can accommodate the horizontal axle 311, the driven gear 312, and the driving gear 32. The lower frame 31 is mounted with the horizontal axle 311 provided with two wheels 313 at two ends thereof and the driven gear 312 coaxially therewith between the two wheels 313. The driving gear 32 defines a hole 321 in its center to be engaged with the vertical output axle 22 of the motive assembly 20 being inserted through the through-hole 42 of the first bottom space 41 and the through-hole 331 of the upper frame 33. The driving gear 32 is in mesh with the driven gear 312. As such, the motor 21 can drive the vertical output axle 22 together with the driving gear 32 to rotate, for example, by a gearset in the motive assembly 20, which can cause the driven gear 312 and the horizontal axle 311 and the wheels 313 to rotate together, so that the floor cleaner can advance along a floor surface. When the floor cleaner hits an object, such as a wall, a piece of furniture, etc., the driving wheel assembly 30 can rotate about the vertical output axle 22 within the first bottom space 41, and thus the moving direction of the floor cleaner can be changed to a randomly new direction to escape the object, and thus the floor cleaner can advance again.
The flat bottom plate 50, being rectangular in shape, is provided with four vertical posts 51, corresponding to the hollow columns 44, on its top surface and a plurality of velcro fasteners 52 at its bottom surface for attaching a dust removal sheet 60, such as a mopping paper or a mopping cloth. As shown, each vertical post 51 of the flat bottom plate 50 has a length greater than the height of the corresponding hollow column 44. Each vertical post 51 is slidably inserted into the central hole of the corresponding hollow column 44 and is provided with a stop 53 at its end, such as a screw, to prevent the flat bottom plate 50 from falling off the columns.
In operation, a dust removal sheet 60 can be attached to the flat bottom plate 50 through the velcro fasteners 52. Thereafter, the electrical switch 11 can be switched on. The operation time can also be set for the operation, so that the floor cleaner can be stopped automatically when the operation time elapses. Thereafter, the floor cleaner can be placed on a floor surface. Since the flat bottom plate 50 can slide downward by its weight, the dust removal sheet 60 can be in flat contact with the floor surface. As such, the dust removal sheet 60 can contact the floor surface more definitely without creases, so that the dusts on the floor can be removed more effectively. When the floor cleaner hits an object, the driving wheel assembly 30 can rotate about the vertical output axle 22 to cause the moving direction of the floor cleaner to be changed to a randomly new direction, thereby escaping the object. Thereafter, the floor cleaner can continue advancing and cleaning until the operation time elapses.
Thus since the invention disclosed herein may be embodied in other specific forms without departing from the spirit or general characteristics thereof, some of which forms have been indicated, the embodiments described herein are to be considered in all respects illustrative and not restrictive. The scope of the invention is to be indicated by the appended claims.
Number | Date | Country | Kind |
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2013 2 0351373 U | Jun 2013 | CN | national |
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