BACKGROUND OF THE INVENTION
1. Field of the Invention
[0001] The present invention relates to a dust separating apparatus for a vacuum cleaner,
which draws in contaminant-laden air from a cleaning surface, separates and collects
contaminants from the air, and discharges clean air. Such a dust separating apparatus
is known from
EP 2 1 042 981,
DE 103 56 156 and
EP 1 371 318.
2. Description of the Related Art
[0002] There are various kinds of dust separating apparatuses. Recently, a cyclone-type
dust separating apparatus has been widely used, which is convenient and can be used
semi-permanently, compared to a dust separating apparatus employing a traditional
disposable dust bag or dust filter. FIG 1 is a perspective view of a canister type
vacuum cleaner employing a cyclone-type dust separating apparatus.
[0003] Referring to FIG. 1, a vacuum cleaner 10 is shown, generally comprising a cleaner
body 11 having a motor driving chamber 12 with a motor (not shown) and a mounting
chamber 13 in which a dust separating apparatus 30 is mounted, a suction nozzle 21,
an extension pipe 22, and a flexible hose 23. The vacuum cleaner 10 drives the motor
(not through the suction nozzle 21, the extension pipe 22, and the flexible hose 23
into the cleaner body 11. The vacuum cleaner 10 uses the dust separating apparatus
30 to separate and collect dust or contaminants (hereinafter, contaminants) from drawn-in
air and discharges the air removed of contaminants via the motor driving chamber 12
to the outside.
[0004] The cyclone-type dust separating apparatus 30 forms a rotative stream that separates
the contaminants from the drawn-in air by centrifugal force. The cyclone-type dust
separating apparatus 30 generally has a cylindrical cyclone body 31 to contain the
rotative stream, an air inlet 33 and an air outlet (not shown) at an upper portion
of the cyclone body 31. The air inlet 33 is fluidly communicated with flexible hose
23 via an inlet port 14, and the air outlet (not shown) is fluidly communicated with
motor driving chamber 12 via an outlet port 15. A contaminant receptacle 32 for collecting
the contaminant separated from the drawn-in air in the cyclone body 31 is engaged
with a bottom portion of the cyclone body 31, and is also cylindrical to correspond
to the cyclone body 31. In other words, the conventional dust separating apparatus
30 is generally cylindrical.
[0005] Accordingly, as shown in FIG. 2, the mounting chamber 13 includes a dead space S
that is formed surrounding an area where the dust separating apparatus 30 is mounted.
In the cleaner body 11, generally, the motor driving chamber 12 is substantially rectangular
and the mounting chamber 13 engaged with the motor driving chamber 12 is substantially
semicircular. Due to the cylindrical dust separating apparatus 30, a structural problem
occurs: the creation of dead space S in the mounting chamber 13 can not be avoided.
Additionally, the contaminant receptacle 32 can not be manufactured over a certain
height due to the limited height of the dust separating apparatus 30 mounted in the
mounting chamber 13. Because the height of the contaminant receptacle 32 is limited,
the capacity of dust separation apparatus is also limited.
SUMMARY OF THE INVENTION
[0006] The present invention has been conceived to solve the above-mentioned problems occurring
in the prior art, and an aspect of the present invention is to provide a dust separating
apparatus which efficiently uses a dead space of a vacuum cleaner so that the capacity
of the dust separating apparatus can be increased without substantially changing the
design of the vacuum cleaner.
[0007] In order to achieve the above aspects, there is provided a dust separating apparatus
according to claim 1 and a vacuum cleaner according to claim 4.
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The above and other aspects, features and advantages of the present invention will
become more apparent and more readily appreciated from the following detailed description
of the embodiment taken with reference to the accompanying drawings of which:
[0009] FIG. 1 is a perspective view of a prior art vacuum cleaner employing a general dust
separating apparatus;
[0010] FIG. 2 is a schematic plan view of the vacuum cleaner body of FIG. 1;
[0011] FIG 3 is a perspective view of an external appearance of a dust separating apparatus
according to an embodiment of the present invention;
[0012] FIG 4 is an exploded perspective view of a dust separating apparatus of FIG 3;
[0013] FIG 5 is a bottom perspective view of a casing of the dust separating apparatus of
FIG. 3; and
[0014] FIG 6 is a cross-sectional view of the dust separating apparatus taken along lines
VI-VI line of FIG. 3.
DETAILED DESCRIPTION OF THE INVENTION
[0015] Exemplary embodiments of the present invention will be described in detail with reference
to the annexed drawings. In the drawings, the same elements are denoted by the same
reference numerals throughout. In the following description, detailed descriptions
of known functions and configurations incorporated herein have been omitted for conciseness
and clarity.
[0016] Referring to FIG. 3, a dust separating apparatus 100 of the present invention comprising
a casing 110, a cyclone unit 120, a dust collection part 130, and a cover 140 is shown.
[0017] The casing 110 has a certain height and is substantially semicircular in cross section.
In other words, the casing 110 is semicircular to correspond to the mounting chamber
13 (refer to FIG 1) of the vacuum cleaner body 11, in which the dust separating apparatus
100 is mounted. The bottom surface of the casing 110 is connected with an inlet port
111 and an outlet port (not shown), the inlet port 111 is fluidly communicated with
a suction nozzle (not shown) of the vacuum cleaner, and the outlet port (not shown)
is fluidly communicated with the motor driving chamber 12 (refer to FIG 1) of the
vacuum cleaner 10.
[0018] Referring to FIGS. 4 and 5, the casing 110 has the cyclone unit 120 and the dust
collection part 130 therein.
[0019] The cyclone unit 120 is formed in a substantial central portion of the casing 110
to separate the contaminants from air drawn in the cyclone unit 120 and discharge
the air removed of contaminants to an air outlet 125. The cyclone unit 120 comprises
a cyclone body 121 forming a cyclone chamber 122, an air inlet 123, and an air guide
pipe 124 with the air outlet 125.
[0020] The cyclone body 121 is cylindrical, allowing air and contaminants to form a rotative
stream, and is a little lower than the casing 110 (refer to FIG. 6). The air inlet
123 is formed on a bottom surface of the cyclone body 121 to fluidly communicate with
the inlet port 111. As contaminant-laden air flows in via the inlet port 111, the
air inlet 123 allows the air to flow into the cyclone body 121. A spiral-shaped guide
member 126 of a predetermined length is configured on an inner wall of the cyclone
body 121 to have a gradually higher height from the bottom, forcing the contaminant-laden
air to form a rotative stream as it ascends up through the cyclone body 121.
[0021] The air guide pipe 124 is formed in a substantially central portion of the cyclone
body 121, and protrudes a predetermined length from a bottom surface of the cyclone
body 121. The air outlet 125 is formed at a bottom portion of the air guide pipe 124
to discharge the air removed of the contaminants by the cyclone chamber 122 to the
outside.
[0022] As shown in FIG. 5, the air inlet 123 and the air outlet 125 are arranged in parallel
on the bottom surface of the cyclone body 121. The air outlet 125 is fluidly communicated
with the motor (not shown) of the vacuum cleaner 10. In other words, the dust separating
apparatus 100 according to an embodiment of the present invention has a structure
of suction and discharge through the bottom portion. A filter member (not shown) such
as a grille may be formed at a top portion of the air guide pipe 124 to filter contaminants
from the drawn-in air.
[0023] The dust collection part 130 collects contaminants separated from the drawn-in air
by the cyclone unit 120. The dust collection part 130 is arranged in parallel with
the cyclone unit 120, except for an area where the cyclone unit 120 is mounted in
the casing 110. In other words, the dust collection part 130 is surrounded by an inner
wall of the casing 110 and an outer wall of the cyclone body 121.
[0024] As described above, the casing 110 is semicircular to correspond to the mounting
chamber 13 (refer to FIG. 1), in which the dust separating apparatus 100 is mounted,
of the vacuum cleaner 10, and the cyclone unit 120 is arranged in parallel with the
dust collection part 130 formed in a dead space surrounding the cyclone unit 120 in
the casing 110, thus increasing the capacity of dust collection part 130. As shown
in FIG. 1, the conventional dust separating apparatus 30 has the contaminant receptacle
32 under the cyclone body 31 so that the capacity of the contaminant receptacle 32
is limited. However, according to an embodiment of the present invention, the casing
110 is semicircular to remove the dead space S (refer to FIG. 2) from the dust collection
chamber 13 of the vacuum cleaner body 11, in which the dust separating apparatus 100
is mounted, and to replace the dead space S with the dust collection part 130. Accordingly,
the size of the vacuum cleaner body 11 is not changed, but the capacity of the dust
collection part 130 is increased.
[0025] Referring back to FIG. 4, the cover 140 is detachably engaged with a top portion
of the casing 110. Accordingly, to repair the casing 110 or to empty the contaminants
collected in the dust collection part 130, all that is required is revomal of the
cover 140. A dust discharge opening 141 is formed by the cover 140 and the top portion
of the cyclone body 121. The cyclone body 121 is lower than the casing 110. Accordingly,
as the cover 140 is engaged with the casing 110, the dust discharge opening 141 is
formed between the inside of the cover 140 and the top portion of the cyclone body
121 (refer to FIG 6). A counterflow prevention member 142 protrudes from the inside
of the cover 140 by a certain length to prevent contaminant collected in the dust
collection part 130 from flowing backward into the cyclone body 121. As shown in FIGS.
4 and 6, the diameter D1 of the counterflow prevention member 142 is larger than the
diameter D2 of the cyclone body 121.
[0026] The operations and functions of the dust separating apparatus 100 with the above
structure according to an embodiment of the present invention will be explained with
reference to FIG 6.
[0027] The motor (not shown) of the vacuum cleaner generates a suction force which operates
via the dust separating apparatus 100 on the air inlet 123. Air and contaminant are
drawn through the suction nozzle (not shown), which is fluidly communicated with the
air inlet 123 and an inlet port 111, and the air inlet 123 into the cyclone body 121.
[0028] As contaminant-laden air flows into the air inlet 123, the contaminant-laden air
forms a rotative stream, ascending through the cyclone chamber 122 as illustrated
by arrow A. At this time, heavier-than-air contaminants are gathered on the inner
wall of the cyclone body 121 by centrifugal force. The contaminants flow upward by
means of the rotative stream, flow out through the dust discharge opening 141, and
collect on a bottom surface of the dust collection part 130 as illustrated by arrow
B. The contaminant collected in the dust collection part 130 can not flow backward
in the cyclone chamber 122 because of the counterflow prevention member 142.
[0029] The air removed of the contaminants collides with the cover 140, causing the air
removed of the contaminants to descend back through cyclone chamber 122 into the air
guide pipe 124, and to discharge via the air outlet 125 to the outside of the casing
110 as illustrated by arrow C.
1. A dust separating apparatus (100) detachably engagable with a mounting chamber (13)
of a vacuum cleaner body (11), comprising:
a casing (110) ;
a cyclone unit (120) formed in the casing (110) to filter contaminants from drawn-in
air and discharge air removed of the contaminants ;
a dust collection part (130) arranged in parallel with the cyclone unit (120) in the
casing (110) to collect the contaminants separated from the air by the cyclone unit
(120), the casing (110) being substantially semicircular to correspond to the mounting
chamber (13) of the vacuum cleaner body (11),
the cyclone unit (120) comprising a cyclone body (121) forming a cyclone chamber (122)
and having a lower height than the casing (110), the dust collection part (130) being
formed on an outer circumference surface of the cyclone body (121) to surround the
cyclone body (121),
characterized in that the cyclone unit (120) comprises an air inlet (123) and an air outlet (125) formed
in parallel on a bottom surface of the cyclone body (121), the dust collecting part
(130) being surrounded by an inner wall of the casing (110) and an outer wall of the
cyclone body (121).
2. The apparatus (100) according to claim 1, wherein the cyclone body (121) further comprises
a guide member (126) configured on an inner wall in a spiral configuration to guide
air drawn in via the air inlet (123) to form an ascending stream in the cyclone chamber
(122).
3. The apparatus (100) according to claim 2, further comprising a cover (140) detachably
engaged with a top portion of the casing (110) and forming a dust discharge opening
(141) in cooperation with the cyclone unit (120).
4. A vacuum cleaner (10) comprising a body (11) and a mounting chamber (13) in the body
(11);
characterized in that the vacuum cleaner comprises a dust separating apparatus (100) according to claim
1 or 2, the dust separating apparatus (100) being detachably engagable with the mounting
chamber (13) in the body (11) so that a dead space between the cyclone unit (120)
and the mounting chamber (13) is utilized by the dust collection part (130).
5. The vacuum cleaner (10) according to claim 4, wherein the mounting chamber (13) and
the dust collection part (130) are both substantially semicircular.
6. The vacuum cleaner (10) according to claim 4, wherein the dust separating apparatus
(100) further comprises a cover (140) being detachably engaged with the casing (110).
7. The vacuum cleaner (10) according to claim 6, further comprising a counterflow prevention
member (142) protruding a predetermined distance from an inside portion of the cover
(140).
1. Staubabscheidevorrichtung (100), die lösbar mit einer Aufnahmekammer (13) eines Staubsaugergehäuses
(11) in Eingriff bringbar ist, umfassend:
Ein Gehäuse (110);
Eine Zykloneinheit (120), die im Gehäuse (110) geformt ist, um Verunreinigungen aus
der eingesaugten Luft herauszufiltern und von den Verunreinigungen befreite Luft abzuführen;
Ein Staubsammelteil (130), das parallel mit der Zykloneinheit (120) zum Sammeln der
aus der Luft durch die Zykloneinheit (120) abgeschiedene Verunreinigungen im Gehäuse
(110) angeordnet ist, wobei das Gehäuse (110) zur Anpassung an die Aufnahmekammer
(13) des Staubsaugergehäuses (11) im Wesentlichen halbkreisförmig ausgebildet ist,
die Zykloneinheit (120) einen Zyklonkörper (121) umfasst, der eine Zyklonkammer (122)
bildet und eine geringere Höhe als das Gehäuse (110) besitzt, wobei das Staubsammelteil
(130) an einer äußeren Umfangsfläche des Zyklonkörpers (121) geformt ist, um den Zyklonkörper
(121) zu umgeben,
dadurch gekennzeichnet,
dass die Zykloneinheit (120) einen Lufteinlass (123) und einen Luftauslass (125) aufweist,
die parallel an einer Bodenfläche des Zyklonkörpers (121) geformt sind,
und dass das Staubsammelteil (130) von einer inneren Wand des Gehäuses (110) und einer äußeren
Wand des Zyklonkörpers (121) umgeben ist.
2. Vorrichtung (100) nach Anspruch 1, worin der Zyklonkörper (121) weiterhin ein an einer
inneren Wand in einer spiralförmigen Konfiguration ausgebildetes Führungselement (126)
umfasst, welches Luft, die über den Lufteinlass (123) eingesaugt wird, führt, um einen
aufsteigenden Strom in der Zyklonkammer (122) zu erzeugen.
3. Vorrichtung (100) nach Anspruch 2, welche weiterhin eine Abdeckung (140) umfasst,
die lösbar mit einem oberen Abschnitt des Gehäuses (110) in Eingriff bringbar ist
und in Verbindung mit der Zykloneinheit (120) eine Staub-Auswurföffnung (141) bildet.
4. Staubsauger (10) umfassend ein Gehäuse (11) und eine im Gehäuse (11) vorgesehene Aufnahmekammer
(13),
dadurch gekennzeichnet,
dass der Staubsauger eine Staubabscheidevorrichtung nach Anspruch 1 oder 2 umfasst, wobei
die Staubabscheidevorrichtung (100) lösbar mit der Aufnahmekammer (13) im Gehäuse
(11) in Eingriff bringbar ist, derart, dass ein toter Raum zwischen der Zykloneinheit
(120) und der Aufnahmekammer (13) durch das Staubsammelteil (130) nutzbar ist.
5. Staubsauger (10) nach Anspruch 4, worin die Aufnahmekammer (13) und das Staubsammelteil
(130) beide im Wesentlichen halbkreisförmig ausgebildet sind.
6. Staubsauger (10) nach Anspruch 4, worin die Staubabscheidevorrichtung (100) weiterhin
eine Abdeckung (140) umfasst, die lösbar mit dem Gehäuse (110) in Eingriff ist.
7. Staubsauger (10) nach Anspruch 6, welcher weiterhin ein Gegenstromhinderungselement
(142) umfasst, welches von einem inneren Abschnitt der Abdeckung (140) um einen vorgegebenen
Abstand hervorsteht.
1. Appareil séparateur de poussière (100) pouvant se mettre en prise de manière détachable
avec une chambre de montage (13) d'un corps d'aspirateur (11), comprenant :
un carter (110) ;
une unité de cyclone (120) formée dans le carter (110) pour filtrer les contaminants
de l'air aspiré et décharger l'air dépourvu des contaminants ;
une partie de collecte de poussière (130) agencée parallèlement à l'unité de cyclone
(120) dans le carter (110) pour collecter les contaminants séparés de l'air par l'unité
de cyclone (120), le carter (110) étant sensiblement semi-circulaire pour correspondre
à la chambre de montage (13) du corps d'aspirateur (11),
l'unité de cyclone (120) comprenant un corps de cyclone (121) formant une chambre
de cyclone (122) et ayant une hauteur inférieure au carter (110), la partie de collecte
de poussière (130) étant formée sur une surface circonférentielle externe du corps
de cyclone (121) pour entourer le corps de cyclone (121),
caractérisé en ce que l'unité de cyclone (120) comprend une entrée d'air (123) et une sortie d'air (125)
formées en parallèle sur une surface inférieure du corps de cyclone (121), la partie
de collecte de poussière (130) étant entourée par une paroi interne du carter (110)
et une paroi externe du corps de cyclone (121).
2. Appareil (100) selon la revendication 1, dans lequel le corps de cyclone (121) comprend
en outre un élément de guidage (126) configuré sur une paroi interne selon une configuration
en spirale pour guider l'air aspiré via l'entrée d'air (123) afin de former un courant
ascendant dans la chambre de cyclone (122).
3. Appareil (100) selon la revendication 2, comprenant en outre un couvercle (140) mis
en prise de manière détachable avec une partie supérieure du carter (110) et formant
une ouverture de décharge de poussière (141) en coopération avec l'unité de cyclone
(120).
4. Aspirateur (10) comprenant un corps (11) et une chambre de montage (13) dans le corps
(11) ;
caractérisé en ce que l'aspirateur comprend un appareil de séparation de poussière (100) selon la revendication
1 ou 2, l'appareil de séparation de poussière (100) pouvant être mis en prise de manière
détachable avec la chambre de montage (13) dans le corps (11) de sorte qu'un espace
vide entre l'unité de cyclone (120) et la chambre de montage (13) est utilisé par
la partie de collecte de poussière (130).
5. Aspirateur (10) selon la revendication 4, dans lequel la chambre de montage (13) et
la partie de collecte de poussière (130) sont toutes deux sensiblement semi-circulaires.
6. Aspirateur (10) selon la revendication 4, dans lequel l'appareil de séparation de
poussière (100) comprend en outre un couvercle (140) qui est mis en prise de manière
détachable avec le carter (110).
7. Aspirateur (10) selon la revendication 6, comprenant en outre un élément anti-écoulement
à contre-courant (142) faisant saillie sur une distance prédéterminée d'une partie
intérieure du couvercle (140).