1. Field of Invention
The present invention relates to cleaning apparatus, and more particularly to a glass surface cleaning machine which is adapted for cleaning a glass surface wherein the residual cleaning water along the wiper blade is sucked into a fluid receiving chamber of the cleaning machine to prevent water stain to be remained on the glass surface.
2. Description of Related Arts
Conventionally, a wiper is commonly used to clean a glass surface. Generally, a detergent, such as soap water, is first applied on the glass surface for removing dirt thereon. Sometimes, clean water is further used to wash off the soap water on the glass surface. Then, the wiper is used to wipe off the residual cleaning water on the glass surface so as to prevent water stained on the cleaned glass surface.
However, the wiper has a relative small size with respect to the glass surface such that water will stain on the glass surface along two ends of the wiper while wiping the glass surface. So, a cleaner must dry or clean the wiper every time after each wiping and keep repeatedly wiping the glass surface until all water is removed from the glass surface. If any water is not removed on the glass surface and/or the wiper, watermarks will remain on the glass surface. Practically, it is more difficult to clean the watermarks later. Thus, it not only is a hassle for drying the water on the wiper but also takes more time to clean the glass surface.
Especially, when the cleaner needs to clean the glass surfaces of a tower building, he or she must be hung over the tower for a period of time. When the glass wall surfaces are very dirty, the cleaner must take time to mop up the dirt on the glass wall surfaces. It is a dangerous task for the cleaner to stay over the tower for a long period of time.
A main object of the present invention is to provide a glass surface cleaning machine which can clean a glass surface efficiently by removing the residual cleaning water along the wiper blade.
Another object of the present invention is to provide a glass surface cleaning machine, which can be used for sucking the water along the wiper blade so as to prevent watermark stained on the glass surface.
Another object of the present invention is to provide a glass surface cleaning machine which merely requires one simple single slide-down action to operate rubbing, wiping and water drying on the glass surface simultaneously.
Another object of the present invention is to provide a glass surface cleaning machine which comprises a mop roller adapted for automatically cleaning the glass surface while wiping the glass surface at the same time.
Accordingly, in order to accomplish the above objects, the present invention provides a glass surface cleaning machine for cleaning a glass surface, comprising:
a supporting frame having a fluid receiving chamber provided therein and comprising a supporting arm frontwardly extended therefrom;
a wiper blade transversely mounted on a front edge of the supporting arm of the supporting frame for removing fluid on the glass surface;
a vacuum device, supported by the supporting frame, comprising:
at least a fluid suction nozzle supporting underneath the wiper blade and being in communication with the fluid receiving chamber; and
an impeller supported by the supporting frame for creating a low pressure within the fluid receiving chamber with respect to an atmosphere pressure, so as to create a sucking effect at the fluid suction nozzle for sucking the fluid along the wiper blade into the fluid receiving chamber through the fluid suction nozzle; and
a mop device comprising a mop roller which is rotatably supported underneath the supporting frame and powered by the impeller for mopping up the glass surface.
These and other objectives, features, and advantages of the present invention will become apparent from the following detailed description, the accompanying drawings, and the appended claims.
Referring to
As shown in
As shown in
The supporting arm 11 is integrally extended from a front portion of the supporting frame 10, wherein the supporting arm 11 is constructed to form a hollow body to define the fluid suction nozzle 31 therein. The fluid suction nozzle 31 has a front end extended frontwardly to form a suction opening 311 positioned adjacent to a rear side of the wiper blade 20 and a rear end extended rearwardly to communicate with the fluid receiving chamber 101.
The wiper blade 20, which is made of rubber, is firmly attached to the front edge of the supporting arm 11 of the supporting frame 10 wherein the wiper blade 20, such as a standard wiper, has a front tip edge 21 adapted for removing fluid on the glass surface S in a scraping manner. It is worth to mention that since the wiper blade 20 is made of rubber, the fluid stays along the wiper blade 20 by means of surface tension of the fluid when the wiper blade 20 wipes on the glass surface S. Therefore, the fluid along the wiper blade 20, especially at two ends of the wiper blade 20, is sucked into the fluid receiving chamber 101 through the fluid suction nozzle 31.
According to the preferred embodiment, the fluid along the wiper blade 20 is sucked into the fluid receiving chamber 101 through the suction opening 311, the fluid may stay around the air filter 323 by means of the sucking effect. However, the air filter 323 blocks the fluid from entering into the impeller housing 33. Therefore, once a predetermined volume of the fluid accumulates within the fluid receiving chamber 101 around the air filter 323, the fluid will drop down to the bottom portion of the fluid receiving chamber 101 by gravity, as shown in
As shown in
The mop roller 41, according to the preferred embodiment, comprises an elongated central axle 411 rotatably supported underneath the supporting arm 11 and a mopping element 412 encircling the central axle 411 adapted for adsorbing detergent fluid such as soap water and rolling and rubbing against the glass surface S to clean the glass surface S.
The mopping element 412, which is a sponge sleeve having a predetermined thickness, is used for cleaning the glass surface S and/or absorbing fluid on the glass surface S. In other words, the mop roller 41 is capable of not only cleaning the glass surface S individually but also absorbing fluid on the glass surface S before wiping by the wiper blade 20, so as to prevent extra fluid remaining on the wiper blade 20 and stain on the glass surface S.
According to the present invention, as shown in
The rotary gear unit 80 comprises a first gear 81 coaxially attached to the output axle 322 of the power source 32, a transmission shaft 82, having a second gear 821, transversely supported by the supporting frame 10 wherein the second gear 821 is driven to rotate by the first gear 81 via a transmitting belt 811, a third gear 83 coaxially attached to an end portion of the rotary shaft 82, and a fourth gear 84 coaxially attached to the central axle 411 and arranged to engage with the third gear 83. Therefore, the transmission shaft 82 is driven to rotate by the output axle 322 of the power source 32 through the first and second gears 81, 821, so as to drive the central axle 411 to rotate through the third and fourth gears 83, 84.
The mop device 40 further comprises means 42 for retaining the rotary gear unit 80 in a rotatably engaging manner. A shown in
As shown in
According to the present invention, the resilient element 423 is a compression spring coaxially mounted on the retaining arm 424 and having two ends biasing against the first and second members 421, 422 respectively to push the mop roller 41 away from the supporting arm 11. It is worth to mention that when the mop roller 41 presses on the glass surface S, the fourth gear 84 may be moved at an offset position that the fourth gear 84 is disengaged with the third gear 83. However, the resilient element 423 is capable of applying the urging pressure to push the second member 422 to its original position that the fourth gear 84 is engaged with the third gear 83 so as to ensure that engagement between the third and fourth gears 83, 84. In other words, the mop roller 41 is capable of self-adjustably pressing against the glass surface S to enhance a full contact between the mopping element 412 and the glass surface S.
The glass cleaning machine further comprises a fluid spray device 50 comprises at least a fluid detergent supply bin 51 supported by the supporting frame 10, at least a spray head 52 mounted on the supporting arm 11 and operatively communicating with the fluid detergent supply bin 51 via a conduit 521, and an operation trigger 53 arranged to be operated for ejecting the fluid detergent in the fluid detergent supply bin 51 on the glass surface S through the spray head 52, as shown in
For heavy duty work, such as cleaning a tower building which has hundreds of glass surface S, the glass cleaning machine preferably comprises an operation device 60 which includes an extension frame 61 and a control means 62 for controlling the vacuum device 30, as shown in
The extension frame 61 is detachably attached to a rear portion of the supporting frame 10 for extending a handle portion of the supporting frame 10 so as to enhance the cleaning area of the glass surface S via the extension frame 61.
The control means 62 comprises a rechargeable power supply 621 disposed in the extension frame 61 and electrically connected to the power source 32 of the vacuum device 30 via connecting wires 622, and a control switch 623 for selectively controlling the power source 32 in an on and off manner. So, the user can effectively clean up the glass surfaces S of the tower and reduce the cleaning time.
For home usage, the user may be a housewife who may not need a powered cleaning machine such that the glass surface cleaning machine preferably comprises a handle frame 70 rearwardly extended from the rear portion of the supporting frame 10. It is worth to mention that the glass surface cleaning machine can be simply constructed without the power source 32 for household usage so as to reduce the overall weight of the glass surface cleaning machine such that the cleaner can easily operate the present invention manually, as shown in
Accordingly, the user may press the mopping element 412 of the mop roller 41 against the glass surface S and rub the mop roller 41 up and down to clean the glass surface S. The resilient elements 423 of the retaining means 42 will provide a resistant force to ensure the mop roller 41 pressing against the glass surface. In order to achieve better cleaning effect, the user may also operate the fluid spray device 50 to supply fluid detergent from the fluid detergent supply bin 51 onto the glass surface S through the spray head 52 by controlling the operation trigger 53.
One skilled in the art will understand that the embodiment of the present invention as shown in the drawings and described above is exemplary only and not intended to be limiting.
It will thus be seen that the objects of the present invention have been fully and effectively accomplished. It embodiments have been shown and described for the purposes of illustrating the functional and structural principles of the present invention and is subject to change without departure form such principles. Therefore, this invention includes all modifications encompassed within the spirit and scope of the following claims.
This is a Continuation-In-Part application of a non-provisional application, application Ser. No. 09/905,602, filed Jul. 13, 2001, which is now abandoned.
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2292435 | Crites | Aug 1942 | A |
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3550181 | Burgoon et al. | Dec 1970 | A |
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4817233 | Waldhauser | Apr 1989 | A |
5386612 | Sham | Feb 1995 | A |
5392490 | Monson | Feb 1995 | A |
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Number | Date | Country | |
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20030208873 A1 | Nov 2003 | US |
Number | Date | Country | |
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Parent | 09905602 | Jul 2001 | US |
Child | 10464943 | US |