Cyclonic surface cleaning apparatus

Information

  • Patent Grant
  • 9949601
  • Patent Number
    9,949,601
  • Date Filed
    Thursday, August 28, 2014
    10 years ago
  • Date Issued
    Tuesday, April 24, 2018
    6 years ago
Abstract
A surface cleaning apparatus, which in one embodiment is a hand held vacuum cleaner, comprises a cyclone and a suction motor wherein the cyclone air outlet and the suction motor inlet are positioned towards the same end of the surface cleaning apparatus whereby air exiting the cyclone travels laterally and then axially to the suction motor inlet. A surface cleaning apparatus comprises a cyclone and a suction motor wherein the suction motor is positioned rearward of the cyclone and the cyclone air outlet is positioned at a lower end of the cyclone whereby air exiting the cyclone travels laterally and then axially towards the suction motor inlet.
Description
FIELD

This application relates to surface cleaning apparatus, such as vacuum cleaners.


BACKGROUND

The use of a cyclone, or multiple cyclones connected in parallel or series, is known to be advantageous in the separation of particulate matter from a fluid stream. Currently, many vacuum cleaners, which are sold for residential applications, utilize at least one cyclone as part of the air filtration mechanism.


U.S. Pat. No. 4,826,515 (Dyson) discloses a cyclonic vacuum cleaner having two cyclonic stages, namely a first stage for separating larger particulate matter from an air stream and a second stage for separating finer particulate matter from the same air stream. Each cyclonic stage comprised a single cyclone wherein separated particulate matter was collected in the bottom of the cyclones. Vacuum cleaners, which use a cyclonic cleaning stage comprising a plurality of cyclones in parallel, are also known.


As the cyclonic stage or stages fill, a user should empty the cyclonic stage or stages. Accordingly, the cyclonic stage or stages, or the entire vacuum cleaner, may be transported to a position above a receptacle (e.g. a garbage bin or a drain) and opened so as to allow the dirt or fluid to pour into the receptacle.


In order to inhibit hair and other larger matter from traveling downstream from a cyclone, a shroud, screen or filter is typically placed in covering relationship to the cyclone air outlet. From time to time, the shroud, screen or filter may become clogged and require cleaning.


SUMMARY

In accordance with one aspect, a surface cleaning apparatus comprises:

    • (a) a dirty air inlet;
    • (b) a filtration apparatus comprising a cyclone downstream from the dirty air inlet, the cyclone having a cyclone air outlet;
    • (c) a cyclone dirt collection chamber;
    • (d) a pre-motor filter chamber comprising a pre-motor filter;
    • (e) a suction motor; and,
    • (f) a clean air outlet downstream from the suction motor,
    • wherein the cyclone dirt collection chamber and the pre-motor filter chamber are concurrently openable.


In any embodiment, the cyclone chamber may be openable.


In any embodiment, the cyclone chamber, the dirt collection chamber and the pre-motor filter chamber may be concurrently openable.


In any embodiment, the dirt collection chamber may be positioned around at least a portion of the cyclone.


In any embodiment, the dirt collection chamber may have a dirt collection surface that is moveable, the cyclone may have a cyclone wall that is moveable and is connected to the moveable dirt collection surface, whereby both the cyclone wall and the dirt collection surface are moveable concurrently such that the cyclone chamber, the dirt collection chamber and the pre-motor filter chamber are concurrently emptyable.


In any embodiment, the dirt collection surface and the cyclone wall may comprise a pivoting wall.


In any embodiment, the cyclone wall may include a vortex finder mounted thereto.


In any embodiment, the pivoting wall may be a lower surface of the cyclone chamber and the dirt collection chamber.


In any embodiment, the cyclone may be inverted.


In any embodiment, the pre-motor filter chamber may be positioned laterally from the cyclone.


In any embodiment, the pre-motor filter may comprise a headspace positioned below the pre-motor filter.


In any embodiment, the suction motor may be positioned adjacent the cyclone and the pre-motor filter.


In any embodiment, the surface cleaning apparatus may comprise a hand held vacuum cleaner.


In any embodiment, a headspace may be provided between the pre-motor filter and an openable door.


In any embodiment, the suction motor may be positioned axially aligned with the pre-motor filter.


In any embodiment, the pre-motor filter chamber may be positioned laterally from the cyclone.


In accordance with another aspect, a surface cleaning apparatus comprises:

    • (a) a dirty air inlet;
    • (b) a filtration apparatus comprising a cyclone downstream from the dirty
    • (c) air inlet, the cyclone having a cyclone air outlet;
    • (d) a cyclone dirt collection chamber;
    • (e) a pre-motor filter chamber comprising a pre-motor filter;
    • (f) a suction motor; and,
    • (g) a clean air outlet downstream from the suction motor;
    • wherein the cyclone and the pre-motor filter chamber are concurrently openable.


In any embodiment, the pre-motor filter chamber may be positioned laterally from the cyclone.


In any embodiment, the suction motor may be positioned adjacent the cyclone and the pre-motor filter.


In any embodiment, the surface cleaning apparatus may comprise a hand held vacuum cleaner.


In accordance with another aspect, a surface cleaning apparatus comprises a filtration apparatus having a cyclone. The cyclone has an air inlet and an air outlet. A screen, such as a mesh wire screen, is positioned exterior to the cyclone in a filtration chamber, e.g., adjacent the cyclone air outlet. Accordingly, after the air exits the cyclone, the air passes through the screen. The screen may be accessed for cleaning by an access door, which is provided exterior to the cyclone (e.g. a door on an outer casing of the filtration apparatus).


In accordance with the prior art, a shroud or a screen may be provided interior of a cyclone (i.e., in the cyclone chamber). During use of the surface cleaning apparatus, elongate member such as hair and fibres may become adhered to the outer surface of the shroud or screen. Accordingly, in order to maintain the optimal cleaning efficiency of the vacuum cleaner, the shroud or screen must be cleaned from time to time. Either access must be provided to the interior of the cyclone to clean the shroud or screen, or, alternately, the shroud or screen must be removable. In accordance with this embodiment, a screen or other filtration member is positioned exterior to the cyclone. Accordingly, it is not necessary to remove a screen or shroud positioned within a cyclone chamber or to access the interior of the cyclone chamber in order to clean the screen.


In a particularly preferred embodiment, a cyclone chamber has no interior screen, shroud or filter covering the cyclone air outlet. Accordingly, no member requiring cleaning is positioned inside the cyclone chamber or surrounding the cyclone outlet (e.g. surrounding the vortex finder) and accordingly the cyclone outlet, e.g., the inlet to a vortex finder, is unobstructed.


The screen may have a surface area that is 2 times, preferably at least about 5 times, more preferably at least about 10 times and, most preferably at least about 20 times, e.g. 20-50 times, the cross sectional area of the cyclone air outlet. It will be appreciated that the screen may be flat or may be curved, e.g., bowl shaped. The use of such a large screen enhances the time during which the vacuum surface cleaning apparatus may be used without having to clean or replace the screen. Further, by positioning the screen exterior to the cyclone chamber, a large screen may be provided without reducing the size of the cyclone chamber.


In accordance with another aspect, there is provided a surface cleaning apparatus comprising:

    • (a) a dirty air inlet;
    • (b) a filtration apparatus comprising a cyclone downstream from the dirty air inlet, the cyclone having a cyclone air outlet;
    • (c) a cyclone dirt collection chamber;
    • (d) a suction motor;
    • (e) a clean air outlet downstream from the suction motor; and,
    • (f) an openable filtration chamber comprising a screen, the filtration chamber is mounted to the surface cleaning apparatus and positioned downstream from the cyclone air outlet and upstream from the suction motor.


In any embodiment, the filtration chamber may be openable independently of the dirt collection chamber. Alternately, the cyclone and the dirt collection chamber are openable independently of the filtration chamber.


In any embodiment, the screen may be moveably mounted, preferably removably mounted, in the filtration chamber, such as by being moveably mounted or removably mounted to an access door provided for the filtration chamber.


In any embodiment, the cyclone air outlet may comprise a vortex finder, the vortex finder may have an inlet positioned inside the cyclone and the inlet may be unobstructed.


In any embodiment, the dirt collection chamber may be positioned around at least a portion of the cyclone, the cyclone may have a dirt collection area and the dirt collection chamber and the cyclone may be concurrently openable. For example, the dirt collection chamber may have a dirt collection surface that is moveable, the cyclone may have a cyclone wall that is moveable and is connected to the moveable dirt collection surface, whereby both the cyclone wall and the dirt collection surface may be moveable concurrently such that the dirt collection chamber and the cyclone are concurrently emptyable.


In such an embodiment, the dirt collection surface and the cyclone wall may comprise a pivoting wall of the filtration apparatus. Preferably, the cyclone wall includes a vortex finder mounted thereto. Preferably, the pivoting wall is a lower surface of the filtration apparatus. The filtration chamber may be mounted to the pivoting wall.


In any embodiment, at least a portion of the filtration chamber may be transparent. For example, the filtration chamber may have an access door that is at least partially transparent, and preferably all of the access door is transparent.


In any embodiment, the cyclone may be inverted. However, it will be appreciated that the positioning of the screen may be used with a cyclone of any configuration or orientation. Further, the positioning may be used if a cyclonic stage comprises a single cyclone or a plurality of cyclones, or even if a plurality of cyclonic stages are used in series. If a plurality of cyclonic stages are provided, then it is preferred that the screen is positioned downstream of the first cyclonic stage and upstream of the next cyclonic stage.


It will be appreciated that the filtration chamber may be removably mounted to the filtration apparatus. Accordingly, the filtration chamber may be removed and then emptied. For example, once the filtration chamber is removed from the filtration apparatus, the filtration chamber may then be opened, e.g., by pivoting, sliding or translating a wall, e.g., the lower surface, of the filtration chamber. Alternately, the filtration chamber may be opened as it is removed. For example, the top of the filtration chamber may be removably mounted to the filtration apparatus by means of a screw mount or a bayonet mount with the mating surface of the filtration apparatus comprising a wall, e.g., a top, of the filtration chamber. Thus, when the filtration chamber is removed, it is open for emptying.


Preferably, the filtration chamber is mounted to the cyclone. For example, it may be mounted to the cyclone casing that houses the cyclone or any of the cyclonic stages.


It will be appreciated that the cyclone may be emptied when mounted to the surface cleaning apparatus. Accordingly, the filtration chamber may be openable while mounted to the surface cleaning apparatus so that it may be emptied when still affixed to the surface cleaning apparatus. Alternately, if the filtration chamber is removably mounted to the filtration apparatus, it may be removed from the surface cleaning apparatus for emptying.


It will also be appreciated that the cyclone (e.g., the filtration apparatus) may be removed from the surface cleaning apparatus for emptying. In such a case, the filtration chamber is preferably removable with the filtration apparatus, i.e. mounted or removably mounted to the filtration apparatus. It will also be appreciated that the filtration chamber may remain on the surface cleaning apparatus when the cyclone is removed for emptying.


It will also be appreciated that in any embodiment, additional screens and/or filtration members may be used.


In accordance with another aspect, there is also provided a preferred embodiment comprising:

    • (a) a dirty air inlet;
    • (b) a filtration apparatus having a lower surface and comprising a cyclone downstream from the dirty air inlet, the cyclone having a dirt outlet and a cyclone floor;
    • (c) a dirt collection chamber in communication with the dirt outlet and having a dirt collection chamber floor;
    • (d) an access door is provided on the lower surface, a filtration chamber is positioned between the lower surface and the access door and a screen is provided in the filtration chamber adjacent the lower air outlet of the cyclone;
    • (e) a suction motor; and,
    • (f) a clean air outlet downstream from the suction motor.


In one such embodiment, the dirt collection chamber is positioned around at least a portion of the cyclone, the dirt collection chamber floor is moveable, the cyclone floor is moveable and is connected to the lower moveable dirt collection chamber floor and the lower surface comprises the cyclone floor and the dirt collection chamber floor, whereby both the cyclone floor and the dirt collection chamber floor are moveable concurrently such that the dirt collection chamber and the cyclone are concurrently emptied.


In another such embodiment the dirt collection chamber floor and the cyclone floor comprise a pivoting bottom of the filtration apparatus.


In another such embodiment the cyclone floor includes a vortex finder mounted thereto. The screen may be positioned beneath the vortex finder.


It will be appreciated by those skilled in the art that any of the embodiments may be used individually or in a single surface cleaning apparatus, as exemplified in a preferred embodiment described herein, or in any particular sub-combination. Accordingly, any two or more embodiments may be used in a single surface cleaning apparatus. In addition, any of the optional features described herein may be used in combination with any alternate embodiment or sub-combination or combination of alternate embodiments.





BRIEF DESCRIPTION OF THE DRAWINGS

These and other advantages will be more fully and completely understood in conjunction with the following description of the preferred embodiments in which:



FIG. 1 is a side elevational view of a preferred embodiment of a vacuum cleaner in accordance with this design wherein the outer casing surrounding the cyclone and forming an outer wall of a dirt collection chamber is optionally transparent;



FIG. 2 is a perspective view from the front and the right side of the vacuum cleaner of FIG. 1;



FIG. 3 is a cross-section along the line 3-3 in FIG. 2;



FIG. 4 is a schematic drawing of the vacuum cleaner of FIG. 1 showing the airflow passage therethrough;



FIG. 5 is a perspective view from the bottom of the vacuum cleaner of FIG. 1 wherein the bottom of the first and second housings is open; and,



FIG. 6 is a perspective view of the bottom of the vacuum cleaner of FIG. 1 wherein the first and second housings are closed but an access door is open.





DETAILED DESCRIPTION

As shown in FIGS. 1-6, a surface cleaning apparatus comprises a vacuum cleaner 10 having a filtration apparatus having at least one cyclone. The filtration apparatus may be of any design or configuration. As exemplified, surface cleaning apparatus 10 has a first housing 12 and a second housing 14. First housing 12 comprises at least one cyclone 16 and a dirt collection chamber 18 and second housing 14 houses the filtration members and the suction motor. In an alternate embodiment, it will be appreciated that surface cleaning apparatus 10 may have a first cyclonic cleaning stage comprising a single cyclone having a dirt collection chamber and a second cyclonic cleaning stage comprising a plurality of second stage cyclones in parallel. It will be appreciated that only a single filter may be provided and a side by side construction need not be used.


As exemplified in FIG. 3, suction motor 26 is positioned in second housing 14, preferably with a suction fan provided below the electric motor. Clean air outlet 60 is provided downstream from suction motor 26. An optional post-motor filter may be provided downstream from suction motor 26, such as in post-motor filter housing 62, which may be accessible via post motor filter housing door 64, which could be pivotally mounted to second housing 14.


As exemplified in FIGS. 1-6, vacuum cleaner 10 comprises a hand held vacuum cleaner. Accordingly, vacuum cleaner 10 may be provided with handle 54, which is affixed to lid 32 and lid 58 of second housing 14. Handle 54 may alternately be affixed to any other portion or portions of vacuum cleaner 10 as is known in the art. Optionally, as exemplified, on/off switch 56 may be provided on handle 54. On/off switch 56 may alternately be provided on any other portion of vacuum cleaner 10.


It will be appreciated that, surface cleaning apparatus may be a vacuum cleaner, a carpet extractor, a bare floor cleaner or the like. As exemplified, the surface cleaning apparatus is hand held. However the surface cleaning apparatus may be configured as an upright vacuum cleaner, a stick vacuum cleaner, a canister vacuum cleaner, a backpack or shoulder strap vacuum cleaner or other configuration known in the art. The surface cleaning apparatus may have a single cyclonic cleaning stage, which may be of any construction known in the art, or a plurality of cyclonic cleaning stages, each of which may be of any construction known in the art, e.g. they may comprise a single cyclone or a plurality of cyclones in parallel.


The following description is based on FIGS. 1-6, which exemplifies the use of an inverted cyclone. However, in an alternate embodiment, it will be appreciated that the cyclone 16 may be of any configuration and orientation and need not be inverted (e.g., cyclone 16 may be a horizontally mounted cyclone or a vertically mounted upright cyclone with an upper air inlet, an upper air out and a lower dirt outlet). Accordingly, the reference to “upper” and “lower” and “floor” are for convenience in the following discussion and relate to a preferred embodiment.


As exemplified in FIG. 3, cyclone 16 has a lower air inlet 34 and a lower air outlet 36. Air inlet 34 is positioned downstream from dirty air inlet 38 of surface cleaning nozzle 40. Surface cleaning nozzle 40 may be any surface cleaning nozzle known in the art. Air inlet 34 of cyclone 16 may be in airflow communication with surface cleaning nozzle 40 in any manner known in the art. The exact structure of surface cleaning nozzle 40 and the communication passage between surface cleaning nozzle 40 and air inlet 34 will vary depending if the surface cleaning apparatus is an upright vacuum cleaner, canister vacuum cleaner or, as exemplified, a portable hand held vacuum cleaner. In operation, air will enter cyclone 16 through inlet 34 and travel upwardly, as exemplified in FIG. 4. The air will then travel downwardly to exit cyclone 16 via outlet 34. As shown in FIG. 4 by the hatched arrows, dirt will exit upwardly through outlet 28 and deposit on dirt collection chamber floor 42. In addition, some of the heavier particulate matter may not be entrained in the air stream and may be deposited on cyclone floor 34.


In an alternate embodiment, it will be appreciated that cyclone 16 may be any cyclone casing having a separator plate to divide the cyclone casing into an upper cyclone chamber positioned above the separator plate and a lower dirt collection chamber positioned below the separator plate. Alternately, the cyclone may be provided with a dirt outlet 28 and may be provided with an impingement member 30 or members spaced a distance D from the dirt outlet and facing the dirt outlet. The cyclone may be an upright cyclone or a cyclone having a single direction of travel of the air.


As exemplified, cyclone 16 is a frustoconical cyclone having cylindrical portion 46 and frustoconical portion 48. Alternately, or in addition to the orientation of cyclone 16, it will be appreciated that cyclone 16 may be cylindrical, entirely frustoconical or any other shape known in the art.


As exemplified in FIG. 3, outlet 36 of cyclone 16 comprises a vortex finder that extends inwardly into the cyclone chamber defined by cyclone 16. Outlet 36 preferably comprises a generally cylindrical passage having an inlet 50 and an outlet 52. It will be appreciated that, in an alternate embodiment any outlet or vortex finder known in the art for cyclones may be utilized. While inlet 50 may be covered by a screen, shroud or filter as in known in the art, it is preferred that no screen, shroud or filter is provided. Accordingly, inlet 50 will not become clogged during use and will not require cleaning. Accordingly, it will be appreciated that bottom 44 need not be openable to permit a screen or a shroud or filter associated with inlet end 50 of outlet 36 to be cleaned. The material that would otherwise clog a screen or shroud that surrounds inlet 50 will be retained by screen 78 which may be easily accessed and with may be larger than a screen in a cyclone chamber.


While the use of impingement member 30 is exemplified in a surface cleaning apparatus having side-by-side housings 12, 14, it will be appreciated that this design may be used in any vacuum cleaner configuration. It will also be appreciated that an impingement surface need not be used.


In accordance with any embodiment, dirt collection chamber 18 may surround at least a portion of and, as exemplified, preferably all of cyclone 16. Accordingly, cyclone 16 may be positioned in dirt collection chamber 18 and, preferably, generally centrally therein.


In accordance with any embodiment, vacuum cleaner 10 may be configured such that the dirt collected on floor 44 of cyclone 16 is emptied at the same time as dirt collected on floor 42 of dirt collection chamber 18. The following description refers to the embodiment of FIGS. 1-6 wherein the openable end of the dirt collection camber is the dirt collection surface (floor 42). However, in an alternate embodiment, it will be appreciated that the openable portion need not be the dirt collection surface. For example, if cyclone 16 is mounted horizontally, then the openable portion may be the end of dirt collection chamber 18 facing dirt outlet 28 to which impingement member 30 is attached. In such a case, the dirt collection surface will be a sidewall of dirt collection chamber 18.


As exemplified, floor 42 and floor 44 are both movable and connected to each other whereby both floor 42 and 44 are concurrently movable such that dirt collection chamber 18 and cyclone 16 are concurrently emptied. In an alternate embodiment, dirt collection chamber 18 may be provided in the bottom of cyclone 16.


Referring to FIG. 5, floors 42 and 44 may comprise a pivoting bottom of first housing 12 and, alternately, of the filtration apparatus (e.g. housings 12 and 14 of this embodiment). Accordingly, as seen in FIG. 5, when floors 42 and 44 are opened, both cyclone 16 and dirt collection chamber 18 may be emptied by holding vacuum cleaner 10 in the upright position (as shown in FIG. 1). Accordingly, the dirt will fall out of collection chamber 16 and cyclone 16 and will fall downwardly off of floors 42 and 44.


As shown in FIG. 5, housings 12 and 14 have a pivoting bottom 66, which is secured to each of housings 12 and 14 by a pivot 68. In the closed position exemplified in FIGS. 1 and 4, pivoting bottom 66 is secured in position by latch 70. Latch 70 has a button 72 which, when pressed, causes arm 74 to move outwardly thereby disengaging a flange provided on the bottom end of arm 74 from flange 76 provided on pivoting bottom 66. A gasket or other sealing member may be provided at the interface of housings 12 and 14 and pivoting bottom 66 to provide an air tight or fluid tight seal. It will be appreciated that bottom 66 may be moveable in any other direction by any other means known in the art (e.g., slideable, translatable) and may optionally be removable from housings 12, 14 (e.g., by a snap fit, a screw mount, a bayonet mount or the like). Further, bottom 66 may be moveably secured in position by any other means known in the art and need not be connected to surface cleaning apparatus 10 for relative motion thereto.


As exemplified in FIG. 5, outlet 36 is provided as part of floor 42, and is preferably integrally molded therewith. In an alternate embodiment, it will be appreciated that outlet 36 need not be removable from cyclone 16 with floor 42.


In an alternate embodiment, it will be appreciated that only floors 42 and 44 may be pivotably mounted to housing 12. In such an embodiment, foam filter 20 may remain sealed when cyclone 16 and dirt collection chamber 18 are emptied. In an alternate embodiment, a side-by-side of housings 12, 14 design as exemplified in FIG. 1 need not be utilized. In such a case, floor 42 and floor 44 may comprise the entire floor of the filtration assembly.


If bottom 66 opens both housings 12 and 14, then it will be appreciated that dirt positioned on the upstream surface of filter 20 will be emptied when bottom 66 is opened.


As exemplified, screen 78 is provided in an openable filtration chamber 80. As exemplified, filtration chamber 80 is provided as part of the lower surface of cyclone 16. It will be appreciated that it is preferred that filtration chamber 80 is positioned adjacent air outlet 36 of cyclone 16, or downstream of the first cyclonic stage if a plurality of cyclonic stages are provided. If filtration chamber is positioned beside cyclone 16, e.g., it is located where foam filter 20 is provided, it will be appreciated that filtration chamber 80 and cyclone 16 may be concurrently opened, e.g., by a pivoting bottom 66. Alternately, or in addition, using a similar construction, filtration chamber 80 may be opened when dirt collection chamber 18 is opened.


As exemplified, filtration chamber 80 is openable independently of any other member, e.g., cyclone 16, dirt collection chamber 18 and the chamber housing foam filter 20. Also, as exemplified, the lower surface of filtration chamber 80 is openable. However, it will be appreciated that an alternate wall or portion of filtration chamber 80 may be openable and that filtration chamber 80 may be at alternate locations on a surface cleaning apparatus provided it is located downstream in the fluid flow path through the surface cleaning apparatus from the first cyclonic cleaning stage.


As exemplified, filtration chamber 80 is provided adjacent outlet 36 and, preferably, screen 78 is in sealing engagement with outlet 52. It will be appreciated that screen 78 is preferably mounted in filtration chamber 80 such that the air exiting cyclone 16 is forced to pass through screen 78 as the air travel downstream of filtration chamber 80 (e.g., to a second cyclonic cleaning stage or foam filter 80). Referring to FIG. 3, screen 78 is positioned on rear surface 84 of floor 44 and overlies outlet 52. Accordingly, air that exits outlet 36 travels through screen 78. The air then travels through filtration chamber 80 and travels laterally to outlet 86, which is in air flow communication with headspace 88 below filter 20.


Preferably, screen 78 comprises a screen, such as an open mesh screen, e.g., a wire mesh screen or, alternately, a plastic mesh screen. It may be flat or curved, e.g. bowl shaped, so as to increase the surface area of the screen.


In one embodiment, filtration chamber 80 has an openable portion. Accordingly, an access door 82 may be provided to permit access to screen 78 such that screen 78 may be cleaned. Access door 82 may be any door that is movably mounted in overlying relationship to filtration chamber 80. It will also be appreciated that if filtration chamber 80 is removably mounted to surface cleaning apparatus 10, it may be opened as it is removed from surface cleaning apparatus 10. For example, a wall of surface cleaning apparatus 10 to which filtration chamber 80 is attached may close the side of filtration chamber 80 that abuts surface cleaning apparatus 10. However, it is preferred that a lower surface of filtration chamber 80 is openable.


As exemplified in FIG. 6, access door 82 may be pivotally mounted by pivot 90 to pivoting bottom 66, and is secured in position by a latch 120. Latch 120, for example, may have a button 122 which, when pressed, causes arm 124 to move outwardly thereby disengaging a flange on the bottom end of arm 124 from flange 92 provided on the front end of access door 82. A sealing gasket or other sealing member known in the art may be utilized to provide an air tight or fluid tight seal for filtration chamber 80. Any other securing member known in the art may be used. Further door 82 may be removable and need not be connected to surface cleaning apparatus 10 for relative (e.g., sliding, translation) motion thereto.


Preferably, screen 78 is mounted and, more preferably, movably mounted and, most preferably, removably mounted to access door 82. As shown in FIG. 6, screen 78 is pivotally mounted to the inner surface of access door 82. Accordingly, when a user desires to clean screen 78, it may be pivoted in the direction shown by arrow A in FIG. 6 to an open or cleaning position. Alternately, screen 78 may be movably mounted and, preferably, removably mounted to another portion of filtration chamber 80.


It will be noticed that access door 82 may be opened independently of pivoting bottom 66. In an alternate embodiment, it will be appreciated that a pivoting bottom 66 need not be provided.


Preferably, at least a portion of and, more preferably, all of access door 82 is transparent. Accordingly, a user may lift the vacuum cleaner, invert the vacuum cleaner or tilt the vacuum cleaner on its side to view screen 78 and determine whether filtration 78 requires cleaning or, alternately, replacement. It will be appreciated that another part of filtration chamber 80, preferably all of filtration chamber 80, may be transparent.


As exemplified in FIG. 3, vortex finder 36 is not surrounded by a screen or any shroud or filter. In accordance with a preferred embodiment, vortex finder 36 has no cover member (e.g. shroud, screen or the like). Accordingly, no filtration or screen member interior of cyclone 16 requires cleaning. Accordingly, it will be appreciated that bottom 44 need not be openable to permit a screen or a shroud or filter associated with inlet end 50 of outlet 36 to be cleaned.


In accordance with any embodiment, a series of filtration members may be used in series downstream from screen 78. In accordance with this preferred embodiment, the filtration members may comprise two or more of a foam filter 20 downstream from screen 78, a felt filter 22 downstream from foam 20 and a HEPA filter 24 downstream from felt filter 22. Preferably, all of these filters are positioned upstream from suction motor 26. As shown, suction motor 26 has a suction motor inlet 27. Alternately, one or more of these filters may be positioned downstream from suction motor 26. In particular HEPA filter 24 may be downstream from suction motor 26. Accordingly, a plurality of screening and filtration members, each of which have a finer filtration capacity (e.g. smaller pores) are provided in series in the downstream direction. Optionally, a shroud (e.g. a perforated or apertured plastic cover) may be provided surrounding or overlying inlet 50 of outlet 36.


It will also be appreciated that any of the aforementioned embodiments may be used singly or in any particular combination or sub-combination of the remaining features listed above.


Although specific embodiments have been described, if is evident that many alternatives, modifications and variations will be apparent to those skilled in the art. Accordingly, it is intended to embrace all such alternatives, modifications and variations that fall within the spirit and broad scope of the appended claims. In addition, citation or identification of any reference in this application shall not be construed as an admission that such reference is available as prior art.

Claims
  • 1. A surface cleaning apparatus comprising: (a) a dirty air inlet;(b) a filtration apparatus comprising a cyclone downstream from the dirty air inlet, the cyclone having an upper end, a lower end, a cyclone axis, a dirt outlet, a cyclone air inlet and a cyclone air outlet, wherein the cyclone air outlet comprises a passage that is positioned at the lower end of the cyclone;(c) a cyclone dirt collection chamber exterior to the cyclone and having a lower openable a dirt collection surface;(d) a suction motor having a suction motor axis, an upper end, a lower end, a suction motor inlet positioned at the lower end of the suction motor;(e) an air flow passage extending from the cyclone air outlet to the suction motor inlet and comprising a transversely extending portion; and,(f) a clean air outlet downstream from the suction motor.
  • 2. The surface cleaning apparatus of claim 1 wherein air exiting the cyclone outlet travels transversely through the transversely extending portion of the air flow passage and upwardly to the suction motor inlet.
  • 3. The surface cleaning apparatus of claim 1 wherein the cyclone and the dirt collection chamber are concurrently openable.
  • 4. The surface cleaning apparatus of claim 1 wherein the dirt collection chamber is positioned around at least a portion of the cyclone.
  • 5. The surface cleaning apparatus of claim 1 wherein the cyclone is inverted.
  • 6. The surface cleaning apparatus of claim 1 wherein a pre-motor filter is positioned laterally from the cyclone and below the suction motor.
  • 7. The surface cleaning apparatus of claim 1 wherein the suction motor axis and the cyclone axis are parallel and the suction motor is laterally spaced from the cyclone.
  • 8. The surface cleaning apparatus of claim 1 wherein the surface cleaning apparatus comprises a hand held vacuum cleaner.
  • 9. A surface cleaning apparatus having a first end and a second spaced apart end, the surface cleaning apparatus comprising: (a) a dirty air inlet;(b) a filtration apparatus comprising a cyclone downstream from the dirty air inlet, the cyclone having a cyclone axis, a dirt outlet, a cyclone air inlet and a cyclone air outlet, wherein the cyclone air outlet comprises a passage that is positioned towards the second end;(c) a cyclone dirt collection chamber exterior to the cyclone and having an openable a dirt collection surface positioned towards the second end;(d) a suction motor having a suction motor axis, an inlet end, an outlet end, a suction motor inlet positioned towards the second end;(e) an air flow passage extending from the cyclone air outlet to the suction motor inlet and comprising a transversely extending portion; and,(f) a clean air outlet downstream from the suction motor.
  • 10. The surface cleaning apparatus of claim 9 wherein air exiting the cyclone outlet travels transversely through the transversely extending portion of the air flow passage and axially to the suction motor inlet.
  • 11. The surface cleaning apparatus of claim 9 wherein the cyclone and the dirt collection chamber are concurrently openable.
  • 12. The surface cleaning apparatus of claim 9 wherein a pre-motor filter is positioned laterally from the cyclone and upstream from the suction motor.
  • 13. The surface cleaning apparatus of claim 9 wherein the suction motor axis and the cyclone axis are parallel and the suction motor is laterally spaced from the cyclone.
  • 14. The surface cleaning apparatus of claim 9 wherein the surface cleaning apparatus comprises a hand held vacuum cleaner.
  • 15. A surface cleaning apparatus having a front end and a rear end, the surface cleaning apparatus comprising: (a) a dirty air inlet;(b) a filtration apparatus comprising a cyclone downstream from the dirty air inlet, the cyclone having an upper end, a lower end, a cyclone axis, a dirt outlet, a cyclone air inlet and a cyclone air outlet, wherein the cyclone air outlet comprises a passage that is positioned at the lower end of the cyclone;(c) a cyclone dirt collection chamber exterior to the cyclone and having a lower openable a dirt collection surface;(d) a suction motor having a suction motor axis, the suction motor is positioned rearward of the cyclone;(e) an air flow passage extending from the cyclone air outlet to the suction motor and comprising a transversely extending portion; and,(f) a clean air outlet downstream from the suction motorwherein air exiting the cyclone outlet travels transversely through the transversely extending portion of the air flow passage and upwardly towards the suction motor.
  • 16. The surface cleaning apparatus of claim 15 wherein the cyclone and the dirt collection chamber are concurrently openable.
  • 17. The surface cleaning apparatus of claim 15 wherein the cyclone is inverted.
  • 18. The surface cleaning apparatus of claim 15 wherein a pre-motor filter is positioned laterally from the cyclone and below the suction motor.
  • 19. The surface cleaning apparatus of claim 15 wherein the suction motor axis and the cyclone axis are parallel and the suction motor is laterally spaced from the cyclone.
  • 20. The surface cleaning apparatus of claim 15 wherein the surface cleaning apparatus comprises a hand held vacuum cleaner.
Priority Claims (1)
Number Date Country Kind
2599303 Aug 2007 CA national
CROSS-REFERENCE

This application is a continuation application of U.S. patent application Ser. No. 13/784,590 filed on Mar. 4, 2013, now allowed, which is a divisional application of U.S. patent application Ser. No. 12/675,611 filed on Feb. 26, 2010, which issued as U.S. Pat. No. 8,677,558 and which is a 371 of application PCT/CA2008/001534, which claimed priority from Canadian patent application number 2,599,303, which was filed on Aug. 29, 2007, the disclosure of each of which is incorporated herein by reference.

US Referenced Citations (270)
Number Name Date Kind
911258 Gotthilf et al. Feb 1909 A
1600762 Hawley et al. Sep 1926 A
1797812 Waring et al. Mar 1931 A
1898608 Alexander et al. Feb 1933 A
1937765 Leathers et al. Dec 1933 A
2015464 Saint-Jacques et al. Sep 1935 A
2152114 Tongeren Mar 1939 A
2542634 Davis et al. Feb 1951 A
2678110 Madsen et al. May 1954 A
2731102 James et al. Jan 1956 A
2811219 Wenzl et al. Oct 1957 A
2846024 Bremi et al. Aug 1958 A
2913111 Rogers et al. Nov 1959 A
2917131 Evans et al. Dec 1959 A
2937713 Stephenson et al. May 1960 A
2942691 Dillon et al. Jun 1960 A
2942692 August et al. Jun 1960 A
2946451 Culleton et al. Jul 1960 A
2952330 Winslow et al. Sep 1960 A
2981369 Yellott et al. Apr 1961 A
3032954 Racklyeft et al. May 1962 A
3085221 Francis et al. Apr 1963 A
3130157 Kelsall et al. Apr 1964 A
3200568 McNeil et al. Aug 1965 A
3204772 Ruxton et al. Sep 1965 A
3217469 Eckert et al. Nov 1965 A
3269097 German et al. Aug 1966 A
3320727 Farley May 1967 A
3372532 Campbell et al. Mar 1968 A
3426513 Bauer Feb 1969 A
3518815 Peterson et al. Jul 1970 A
3530649 Porsch et al. Sep 1970 A
3561824 Homan Feb 1971 A
3582616 Wrob Jun 1971 A
3675401 Cordes Jul 1972 A
3684093 Kono et al. Aug 1972 A
3822533 Oranje et al. Jul 1974 A
3898068 McNeil Aug 1975 A
3933450 Percevaut Jan 1976 A
3988132 Oranje Oct 1976 A
3988133 Schady Oct 1976 A
4097381 Ritzler et al. Jun 1978 A
4187088 Hodgson et al. Feb 1980 A
4218805 Brazier et al. Aug 1980 A
4236903 Malmsten Dec 1980 A
4307485 Dessig Dec 1981 A
4373228 Dyson et al. Feb 1983 A
4382804 Mellor et al. May 1983 A
4409008 Solymes Oct 1983 A
4486207 Baillie Dec 1984 A
4678588 Shortt Jul 1987 A
4744958 Pircon et al. May 1988 A
4778494 Patterson Oct 1988 A
4826515 Dyson et al. May 1989 A
4836515 Dyson May 1989 A
D303173 Miyamoto et al. Aug 1989 S
4853008 Dyson Aug 1989 A
4853011 Dyson et al. Aug 1989 A
4853111 MacArthur et al. Aug 1989 A
4905342 Ataka Mar 1990 A
4944780 Usmani Jul 1990 A
5078761 Dyson et al. Jan 1992 A
5080697 Finke et al. Jan 1992 A
5090976 Dyson et al. Feb 1992 A
5129125 Gamou et al. Jul 1992 A
5224238 Bartlett Jul 1993 A
5230722 Yonkers Jul 1993 A
5254019 Noschese Oct 1993 A
5267371 Soler et al. Dec 1993 A
5309601 Hampton et al. May 1994 A
5347679 Saunders et al. Sep 1994 A
5481780 Daneshvar Jan 1996 A
5599365 Alday et al. Feb 1997 A
D380033 Theiss et al. Jun 1997 S
5755096 Holleyman May 1998 A
5815878 Murakami et al. Oct 1998 A
5858038 Dyson et al. Jan 1999 A
5858043 Geise et al. Jan 1999 A
5893938 Dyson et al. Apr 1999 A
5935279 Kilstroem et al. Aug 1999 A
5950274 Kilstrom Sep 1999 A
6071095 Verkaart et al. Jun 2000 A
6071321 Trapp et al. Jun 2000 A
6080022 Shaberman et al. Jun 2000 A
6081961 Wang Jul 2000 A
6122796 Downham et al. Sep 2000 A
6221134 Conrad et al. Apr 2001 B1
6228260 Conrad et al. May 2001 B1
6231645 Conrad et al. May 2001 B1
6251296 Conrad et al. Jun 2001 B1
6260234 Wright et al. Jul 2001 B1
6345408 Nagai et al. Feb 2002 B1
6406505 Oh Jun 2002 B1
6434785 Vandenbelt et al. Aug 2002 B1
6440197 Conrad et al. Aug 2002 B1
6531066 Saunders et al. Mar 2003 B1
6553612 Dyson et al. Apr 2003 B1
6553613 Onishi et al. Apr 2003 B2
6560818 Hasko May 2003 B1
6581239 Dyson et al. Jun 2003 B1
6599338 Oh et al. Jul 2003 B2
6599350 Rockwell et al. Jul 2003 B1
6613316 Sun et al. Sep 2003 B2
6623539 Lee et al. Sep 2003 B2
6625845 Matsumoto et al. Sep 2003 B2
6648934 Choi et al. Nov 2003 B2
6712868 Murphy et al. Mar 2004 B2
6746500 Park et al. Jun 2004 B1
6782583 Oh Aug 2004 B2
6782585 Conrad et al. Aug 2004 B1
6818036 Seaman Nov 2004 B1
6833015 Oh et al. Dec 2004 B2
6868578 Kasper et al. Mar 2005 B1
6874197 Conrad et al. Apr 2005 B1
6896719 Coates et al. May 2005 B2
6929516 Brochu et al. Aug 2005 B2
6968596 Oh et al. Nov 2005 B2
6976885 Lord Dec 2005 B2
7160346 Park Jan 2007 B2
7162770 Davidshofer Jan 2007 B2
7175682 Nakai et al. Feb 2007 B2
7198656 Takemoto et al. Apr 2007 B2
7222393 Kaffenberger et al. May 2007 B2
7272872 Choi Sep 2007 B2
7278181 Harris et al. Oct 2007 B2
7341611 Greene et al. Mar 2008 B2
7354468 Arnold et al. Apr 2008 B2
7370387 Walker et al. May 2008 B2
7377007 Best May 2008 B2
7377953 Oh May 2008 B2
7386915 Blocker et al. Jun 2008 B2
7395579 Oh Jul 2008 B2
7448363 Rasmussen et al. Nov 2008 B1
7449040 Conrad et al. Nov 2008 B2
7488362 Jeong et al. Feb 2009 B2
7488363 Jeong et al. Feb 2009 B2
7547337 Oh et al. Jun 2009 B2
7547338 Kim et al. Jun 2009 B2
7588616 Conrad et al. Sep 2009 B2
7597730 Yoo et al. Oct 2009 B2
7628831 Gomiciaga-Pereda et al. Dec 2009 B2
7645309 Jeong et al. Jan 2010 B2
7740676 Burnham et al. Jun 2010 B2
7770256 Fester Aug 2010 B1
7776120 Conrad Aug 2010 B2
7779506 Kang et al. Aug 2010 B2
7803207 Conrad Sep 2010 B2
7805804 Loebig Oct 2010 B2
7811349 Nguyen Oct 2010 B2
7867308 Conrad Jan 2011 B2
7922794 Morphey Apr 2011 B2
7931716 Oakham Apr 2011 B2
7938871 Lloyd May 2011 B2
7979959 Courtney Jul 2011 B2
8021453 Howes Sep 2011 B2
8062398 Luo et al. Nov 2011 B2
8100999 Ashbee et al. Jan 2012 B2
8117712 Dyson et al. Feb 2012 B2
8152877 Greene Apr 2012 B2
8156609 Milne et al. Apr 2012 B2
8161599 Griffith et al. Apr 2012 B2
8225456 Hkan et al. Jul 2012 B2
8484799 Conrad Jul 2013 B2
20020011050 Hansen et al. Jan 2002 A1
20020062531 Oh May 2002 A1
20020011053 Oh Jun 2002 A1
20020112315 Conrad Aug 2002 A1
20020134059 Oh Sep 2002 A1
20020088208 Lukac et al. Nov 2002 A1
20020178535 Oh et al. Dec 2002 A1
20020178698 Oh et al. Dec 2002 A1
20020178699 Oh Dec 2002 A1
20030159238 Oh Aug 2003 A1
20030159411 Hansen et al. Aug 2003 A1
20030046910 Lee et al. Sep 2003 A1
20030200736 Ni Oct 2003 A1
20030066273 Choi et al. Nov 2003 A1
20030106180 Tsen Nov 2003 A1
20040010885 Hitzelberger et al. Jan 2004 A1
20040025285 McCormick et al. Feb 2004 A1
20040216264 Shaver et al. Nov 2004 A1
20050081321 Milligan et al. Apr 2005 A1
20050115409 Conrad Jun 2005 A1
20050132528 Yau Jun 2005 A1
20050138763 Tanner et al. Jun 2005 A1
20050198769 Lee et al. Sep 2005 A1
20050198770 Jung et al. Sep 2005 A1
20050252179 Oh et al. Nov 2005 A1
20060037172 Choi Feb 2006 A1
20060042206 Arnold et al. Mar 2006 A1
20060090290 Lau May 2006 A1
20060123590 Fester et al. Jun 2006 A1
20060137304 Jeong et al. Jun 2006 A1
20060137306 Jeong et al. Jun 2006 A1
20060137309 Jeong et al. Jun 2006 A1
20060137314 Conrad et al. Jun 2006 A1
20060156508 Khalil Jul 2006 A1
20060162298 Oh et al. Jul 2006 A1
20060162299 North Jul 2006 A1
20060168922 Oh Aug 2006 A1
20060168923 Lee et al. Aug 2006 A1
20060207055 Ivarsson et al. Sep 2006 A1
20060207231 Arnold Sep 2006 A1
20060230715 Oh et al. Oct 2006 A1
20060230723 Kim et al. Oct 2006 A1
20060230724 Han et al. Oct 2006 A1
20060236663 Oh Oct 2006 A1
20060278081 Han et al. Dec 2006 A1
20070067944 Kitamura et al. Mar 2007 A1
20070077810 Gogel et al. Apr 2007 A1
20070079473 Min et al. Apr 2007 A1
20070079585 Oh et al. Apr 2007 A1
20070095028 Kim et al. May 2007 A1
20070095029 Min et al. May 2007 A1
20070209334 Conrad Sep 2007 A1
20070209335 Conrad Sep 2007 A1
20070209338 Conrad Sep 2007 A1
20070271724 Hakan et al. Nov 2007 A1
20070289089 Yacobi Dec 2007 A1
20070289264 Oh Dec 2007 A1
20070289266 Oh Dec 2007 A1
20080040883 Beskow et al. Feb 2008 A1
20080047091 Nguyen Feb 2008 A1
20080134460 Conrad Jun 2008 A1
20080134462 Jansen et al. Jun 2008 A1
20080178416 Conrad Jul 2008 A1
20080178420 Conrad Jul 2008 A1
20080190080 Oh et al. Aug 2008 A1
20080196194 Conrad Aug 2008 A1
20080301903 Cunningham et al. Dec 2008 A1
20090100633 Bates et al. Apr 2009 A1
20090113659 Jeon et al. May 2009 A1
20090144932 Yoo Jun 2009 A1
20090165431 Oh Jul 2009 A1
20090205160 Conrad Aug 2009 A1
20090205161 Conrad Aug 2009 A1
20090205298 Hyun et al. Aug 2009 A1
20090209666 Hellberg et al. Aug 2009 A1
20090265877 Dyson et al. Oct 2009 A1
20090282639 Dyson et al. Nov 2009 A1
20090300874 Tran et al. Dec 2009 A1
20090300875 Inge et al. Dec 2009 A1
20090307564 Vedantham et al. Dec 2009 A1
20090307863 Milne et al. Dec 2009 A1
20090307864 Dyson Dec 2009 A1
20090308254 Oakham Dec 2009 A1
20090313958 Gomiciaga-Pereda et al. Dec 2009 A1
20090313959 Gomiciaga-Pereda et al. Dec 2009 A1
20100154150 McLeod Jun 2010 A1
20100175217 Conrad Jul 2010 A1
20100212104 Conrad Aug 2010 A1
20100224073 Oh et al. Sep 2010 A1
20100229321 Dyson et al. Sep 2010 A1
20100242210 Conrad Sep 2010 A1
20100243158 Conrad Sep 2010 A1
20100293745 Coburn Nov 2010 A1
20100299865 Conrad Dec 2010 A1
20100299866 Conrad Dec 2010 A1
20110146024 Conrad Jun 2011 A1
20110168332 Bowe et al. Jul 2011 A1
20120060322 Simonelli et al. Mar 2012 A1
20120216361 Millington et al. Aug 2012 A1
20120222245 Conrad Sep 2012 A1
20120222262 Conrad Sep 2012 A1
20130091660 Smith Apr 2013 A1
20130091661 Smith Apr 2013 A1
20130091812 Smith Apr 2013 A1
20130091813 Smith Apr 2013 A1
20140237768 Conrad Aug 2014 A1
20160367094 Conrad Dec 2016 A1
Foreign Referenced Citations (68)
Number Date Country
1077412 May 1980 CA
2438079 Aug 2009 CA
2659212 Sep 2010 CA
1434688 Aug 2003 CN
1493244 May 2004 CN
1875855 Dec 2006 CN
1887437 Jan 2007 CN
1911151 Feb 2007 CN
1981688 Jun 2007 CN
101108081 Jan 2008 CN
101612025 Dec 2009 CN
101657133 Feb 2010 CN
102188208 Sep 2011 CN
202277306 Jun 2012 CN
103040412 Apr 2013 CN
103040413 Apr 2013 CN
875134 Apr 1953 DE
4232382 Mar 1994 DE
10360002 Dec 2004 DE
102005047074 Apr 2007 DE
602004009782 Aug 2008 DE
112007003039 Oct 2009 DE
112007003052 Jan 2010 DE
493950 Apr 1998 EP
1200196 Jun 2005 EP
1779761 May 2007 EP
1676516 Jan 2010 EP
1629758 Feb 2010 EP
2812531 Nov 2004 FR
700791 Dec 1953 GB
1111074 Apr 1968 GB
2163703 Mar 1986 GB
2163703 Jan 1988 GB
2268875 Jan 1994 GB
2282979 Oct 1997 GB
2365324 Feb 2002 GB
2441962 Mar 2011 GB
2466290 Oct 2012 GB
61131720 Jun 1986 JP
2000140533 May 2000 JP
2000140533 May 2000 JP
2010178773 Aug 2010 JP
2010220632 Oct 2010 JP
2011189132 Sep 2011 JP
2011189133 Sep 2011 JP
1020060118795 Nov 2006 KR
1020060118800 Nov 2006 KR
1020060118802 Nov 2006 KR
1020060118803 Nov 2006 KR
9627446 Sep 1996 WO
9809121 Mar 1998 WO
9843721 Oct 1998 WO
0078546 Dec 2000 WO
2004069021 Aug 2004 WO
2006026414 Aug 2007 WO
2008009883 Jan 2008 WO
2008009888 Jan 2008 WO
2008009890 Jan 2008 WO
2008009891 Jan 2008 WO
2009026709 Mar 2009 WO
2010102396 Sep 2010 WO
2010142968 Dec 2010 WO
2010142969 Dec 2010 WO
2010142970 Dec 2010 WO
2010142971 Dec 2010 WO
2011054106 May 2011 WO
2012042240 Apr 2012 WO
2012117231 Sep 2012 WO
Non-Patent Literature Citations (33)
Entry
English machine translation of CN1434688, as published on Aug. 6, 2003.
English machine translation of CN1875855, as published on Dec. 13, 2006.
English machine translation of CN1911151, as published on Feb. 14, 2007.
English machine translation of CN1981688, as published on Jun. 20, 2007.
English machine translation of CN101108081, as published on Jan. 23, 2008.
English machine translation of CN101612025, as published on Dec. 30, 2009.
English machine translation of CN101657133, as published on Feb. 24, 2010.
English machine translation of CN102188208, as published on Sep. 21, 2010.
English machine translation of CN103040412, as published on Apr. 17, 2013.
English machine translation of CN103040413, as published on Apr. 17, 2013.
English machine translation of CN202277306, as published on Jun. 20, 2012.
English machine translation of DE10360002, as published on Dec. 16, 2004.
English machine translation of DE102005047074, as published on Apr. 5, 2007.
English machine translation of DE112007003039, as published on Oct. 29, 2009.
English machine translation of DE112007003052, as published on Jan. 14, 2010.
English machine translation of DE602004009782T2, as published on Aug. 28, 2008.
English machine translation of KR1020060118795, as published on Nov. 24, 2011.
English machine translation of KR1020060118800, as published on Nov. 24, 2006.
English machine translatio of KR1020060118802, as published on Nov. 24, 2006.
English machine translation of KR1020060118803, a published on Nov. 24, 2006.
English machine translation of JP2011189133, as published on Sep. 29, 2011.
English machine translation of JP2010220632, as published on Oct. 7, 2010.
English machine translation of JP2010178773, as published on Aug. 19, 2010.
English machine translation of JP2000140533, as published on May 23, 2000.
English machine translation of JP61131720, as published on Jun. 19, 1966.
English machine translation of DE4232382, as published on Mar. 24, 1994.
English machine translation of FR2812531, as published on Sep. 20, 2010.
English machine translation of JP2011-189132, as published on Sep. 29, 2011.
English machine translation of CN1887437A, as published on Jan. 3, 2007.
English machine translation of DE875134C, as published on Apr. 30, 1953.
Makita BCL180 User Manual.
Makita 4071 Handy VAC.
Handbook of Air Pollution Prevention and Contriol, pp. 397-404, 2002.
Related Publications (1)
Number Date Country
20140366313 A1 Dec 2014 US
Divisions (1)
Number Date Country
Parent 12675611 US
Child 13784590 US
Continuations (1)
Number Date Country
Parent 13784590 Mar 2013 US
Child 14472086 US