BACKGROUND OF THE INVENTION
Field of the Invention
[0001] The present invention relates to a vacuum cleaner, and more particularly, to a dust
collector of a vacuum cleaner which collects contaminants, utilizing the cyclone principle.
Discussion of the Related Art
[0002] A cyclone dust collector is an appliance which collects contaminants such as dust
entrained in air, utilizing the cyclone principle. Such a cyclone dust collector may
be applied to diverse fields, and is mainly applied to vacuum cleaners, for domestic
purposes.
[0003] Recently, a multi-cyclone dust collector has been proposed, which includes a plurality
of cyclones to achieve an enhancement in dust collecting performance.
[0004] Hereinafter, a conventional dust collector applied to a vacuum cleaner will be described
with reference to FIG. 1.
[0005] The conventional dust collector includes a primary cyclone dust collecting part 10,
which sucks dirt-laden air from the outside of the dust collector, and collects dust
of a relatively large grain size from the sucked air. The dust collector also includes
a secondary cyclone dust collecting part 20, which is connected to the primary cyclone
dust collecting part 10, and collects dust of a relatively small grain size from the
sucked air.
[0006] The primary cyclone dust collecting part 10 includes a cylindrical container having
a lower end disposed to be in close contact with the bottom of the dust collector.
The primary cyclone dust collecting part 10 also includes a first air inlet 11 formed
through an upper portion of a peripheral wall of the cylindrical container at one
side of the cylindrical container to receive dirt-laden air in a tangential direction,
and a first air outlet 12 centrally formed through an upper end of the cylindrical
container to discharge the air, which has been primarily cleaned.
[0007] Thus, the upper space of the primary cyclone dust collecting part 10 forms a primary
cyclone 13 for performing separation of contaminants from dirt-laden air, using centrifugal
force, whereas the lower space of the primary cyclone dust collecting part 10 forms
a primary dust storage 14 for storing the centrifugally-separated contaminants.
[0008] The secondary cyclone dust collecting part 20 includes a plurality of small secondary
cyclones 21 circumferentially arranged around the upper portion of the primary cyclone
dust collecting part 10, and a secondary dust storage 22 for storing dust separated
in the secondary cyclones 21.
[0009] The secondary dust storage 22 is arranged beneath the secondary cyclones 21. The
primary and secondary dust storages 14 and 22 are partitioned by the peripheral wall
of the primary cyclone dust collecting part 10.
[0010] Accordingly, air discharged from the first air outlet 12 is introduced into the secondary
cyclone 21, and is upwardly discharged from the dust collector after being subjected
to the secondary dust separation process.
[0011] In addition, a separate top cover (not shown) is mounted to the top of the above-mentioned
conventional dust collector. A dust collector handle is provided at the top cover
to allow the user to easily perform assembly and disassembly of the dust collector.
[0012] In the conventional dust collector having the above-mentioned configuration, however,
there is a problem in that the coupling structure of the top cover is complex, thereby
causing an inconvenience in use of the dust collector.
[0013] US-A-3870486 discloses a dust collector for a vacuum cleaner which only has a single cyclonic
dust separator. A dust collecting container of this device constitutes the outer housing
for the vacuum cleaner. A removable cover for the housing permits access to the separator
and a motor fan unit and a generally horizontal partition element supports both the
cyclonic dust separator and the motor fan unit and separates a filtering space from
a dust collecting space in the housing. The partition is arranged to be lifted out
of the outer housing in order to remove the collected dust or liquid therein. There
is no connection between the removable outer cover and the partition element.
SUMMARY OF THE INVENTION
[0014] Accordingly, the present invention is directed to a dust collector of a vacuum cleaner
that substantially obviates one or more problems due to limitations and disadvantages
of the related art.
[0015] An object of the present invention is to provide a dust collector of a vacuum cleaner
which has a simple coupling structure, and is convenient in use.
[0016] To achieve these objects and other advantages and in accordance with the purpose
of the invention, as embodied and broadly described herein, a dust collector of a
vacuum cleaner comprises the features of claim 1.
[0017] The protrusion may be formed at an outer peripheral surface of the container cover,
and may include a first protrusion portion extending in the circumferential direction
of the container cover, a second protrusion portion extending from the first protrusion
portion at a predetermined angle, and a locking protrusion portion for limiting rotation
of the top cover.
[0018] Specifically, the locking protrusion portion may be arranged in a space defined between
the first protrusion portion and the second protrusion portion.
[0019] The engagement groove may include an insertion groove portion, through which the
protrusion is inserted into the engagement groove, a rotation guide for guiding the
inserted protrusion to move in a circumferential direction of the top cover.
[0020] The at least one protrusion may comprise a plurality of protrusions spaced apart
from one another, and at least one of spacings between adjacent ones of the protrusions
is different from the remaining spacings.
[0021] The dust collector may further comprise an alignment indicator adapted to indicate
coupling directions when the top cover is coupled with the container cover.
[0022] The alignment indicator may comprise a first alignment mark provided at a lower portion
of the top cover, and a second alignment mark corresponding to the first alignment
mark, the second alignment mark being provided at one of the dust collecting container
and the container cover.
[0023] The second alignment mark may be arranged at an extension extending downward from
a peripheral edge of the container cover.
[0024] It is to be understood that both the foregoing general description and the following
detailed description of the present invention are exemplary and explanatory and are
intended to provide further explanation of the invention as claimed.
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The accompanying drawings, which are included to provide a further understanding
of the invention and are incorporated in and constitute a part of this application,
illustrate embodiment(s) of the invention and together with the description serve
to explain the principle of the invention. In the drawings:
[0026] FIG. 1 is a longitudinal sectional view schematically illustrating a conventional
dust collector;
[0027] FIG. 2 is a perspective view illustrating a dust collector according to an embodiment
of the present invention, which is separated from a cleaner body;
[0028] FIG. 3 is a perspective view illustrating an exploded state of the dust collector
according to the embodiment of the present invention;
[0029] FIG. 4 is a longitudinal sectional view schematically illustrating the dust collector
according to the embodiment of the present invention;
[0030] FIG. 5 is a perspective view of the dust collector according to the embodiment of
the present invention, illustrating a state before coupling of a top cover; and
[0031] FIG. 6 is a perspective view of the dust collector according to the embodiment of
the present invention, illustrating a state after coupling of the top cover.
DETAILED DESCRIPTION OF THE INVENTION
[0032] Reference will now be made in detail to the preferred embodiments of the present
invention, examples of which are illustrated in the accompanying drawings. Wherever
possible, the same reference numbers will be used throughout the drawings to refer
to the same or like parts.
[0033] Hereinafter, a vacuum cleaner, in which a dust collector according to an embodiment
of the present invention is incorporated, will be described with reference to FIG.
2.
[0034] The vacuum cleaner includes a suction nozzle (not shown) which sucks air containing
contaminants while moving along a floor to be cleaned, a cleaner body 100 which is
separate from the suction nozzle, and a connecting hose (not shown) which connects
the suction nozzle and cleaner body 100, and guides dirt-laden air sucked through
the suction nozzle to the cleaner body 100.
[0035] A suction inlet having a certain size is formed at the bottom of the suction nozzle
to suck air containing contaminants including dust. The suction of air through the
nozzle suction inlet is achieved by a suction force generated from an air sucking
device disposed in the cleaner body 100.
[0036] In the cleaner body 100, electronic elements (not shown) adapted to control the vacuum
cleaner, and a fan-motor assembly (not shown) constituting the air sucking device
are disposed.
[0037] In detail, a hose connector 110, to which the connecting hose is connected, is provided
at a front upper portion of the cleaner body 100. Wheels 120 are rotatably mounted
to opposite sides of a rear portion of the cleaner body 100, respectively, to enable
the cleaner body 100 to smoothly move on a floor. A freely rotatable caster (not shown)
is mounted to a front portion of the bottom of the cleaner body 100 to enable the
cleaner body 100 to freely change the movement direction thereof.
[0038] Meanwhile, a dust collector 200 is separably mounted to the cleaner body 100. The
dust collector 200 functions to separate contaminants from air sucked into the interior
of the dust collector 200 via the suction nozzle and connecting hose, and to collect
the separated contaminants.
[0039] The air, which emerges from the dust collector 200, is outwardly discharged from
the rear portion of the cleaner body 100 after passing through a certain flow path
defined in the cleaner body 100 and the fan-motor assembly (not shown).
[0040] The dust collector 200 of the vacuum cleaner according to the present invention will
now be described in detail with reference to FIGs. 3 and 4.
[0041] The dust collector 200 includes a dust collecting container 210 having a dust separating
part for separating contaminants from air introduced into the dust collecting container
210, and a dust storing part for collecting the contaminants separated by the dust
separating part, and a top cover 230 separably coupled to the dust collecting container
210.
[0042] In detail, the dust collecting container includes primary and secondary dust collecting
parts for collecting contaminants such as dust. The dust collecting container 210
also includes a bottom panel 211 which constitutes the bottom of the dust collecting
container 210.
[0043] The primary dust collecting part includes a primary dust separating section, and
a primary dust storing section 212 for storing dust separated by the primary dust
separating section. The primary dust collecting part is constituted by a substantially
cylindrical container arranged in the dust collecting container 210.
[0044] The secondary dust collecting part is arranged around the primary dust collecting
part. The secondary dust collecting part includes a secondary dust separating section
for separating contaminants entrained in air discharged from the primary dust collecting
part, and a secondary dust storing section 213 for storing the dust separated by the
second dust separating section.
[0045] In the illustrated embodiment of the present invention, each of the primary and secondary
dust separating sections includes a primary cyclone 214 and a plurality of small secondary
cyclones 215, which perform separation of contaminants in a cyclone manner.
[0046] Specifically, the primary cyclone 214 has a downwardly-opened cylindrical container
shape. A first suction port 214a is formed through an upper portion of the primary
cyclone 214 at one side of the primary cyclone 214. The first suction inlet 214a communicates
with the hose connector 110 (FIG. 2). A first discharge port 214b is formed through
the top of the primary cyclone 214 such that the first discharge port 214b extends
vertically.
[0047] The first suction port 214a guides dirt-laden air introduced into the outside of
the dust collector to flow in a tangential direction of the primary cyclone 214 so
that the air entering the first suction port 214a flows spirally along an inner wall
surface of the primary cyclone 214.
[0048] The small secondary cyclones 215 are arranged at the upper portion of the primary
cyclone 214, and have peripheral walls formed integrally with a peripheral wall of
the dust collecting container 210, respectively. In particular, the secondary cyclones
215 are circumferentially arranged around the upper portion of the primary cyclone
214. Each secondary cyclone 215 has an upper end upwardly protruded to a level higher
than that of the upper end of the primary cyclone 214.
[0049] The peripheral wall of each secondary cyclone 215 is vertically cut out at a region
where the peripheral wall is upwardly protruded above the upper end of the primary
cyclone 214, thereby forming a second suction port 215a communicating with the first
discharge port 214b. The second suction port 215a of each secondary cyclone 215 guides
air emerging from the first discharge port 214b to flow in a tangential direction
of the secondary cyclone 215 so that the air entering the second suction port 215a
flows spirally along an inner wall surface of the secondary cyclone 215.
[0050] Each secondary cyclone 215 also has a conical portion 215d formed at a lower portion
of the secondary cyclone 215 such that the conical portion 215d has a diameter gradually
reduced as the conical portion 215d extends toward the bottom of the dust collecting
container 210. A contaminants discharge port 215e is formed at a lower end of each
secondary cyclone 215 to downwardly discharge contaminants such as dust.
[0051] The secondary cyclones 215 have an integrated structure such that adjacent ones of
the secondary cyclones 215 are in contact with each other to prevent air from being
leaked between the adjacent secondary cyclones 215. The dust collecting container
210 may further include a container cover 220 mounted to the upper end of the dust
collecting container 210 to open or close the upper ends of the secondary cyclones
215. The container cover 220 more smoothly guides air emerging from the first discharge
port 214b to the secondary cyclones 215. Second discharge ports 215b are formed at
the container cover 220 along the peripheral portion of the container cover 220 to
discharge air from the secondary cyclones 215, respectively.
[0052] Dust separated in the primary cyclone 214 and second cyclones 215, which have the
above-described configurations, respectively, is stored in the dust storing part defined
by the peripheral wall of the dust collecting container 210 and the bottom panel 211.
The stored dust is subsequently outwardly discharged by virtue of gravity when the
bottom panel 211 is opened.
[0053] The dust storing part is constituted by the primary dust storing section 212 and
secondary dust storing section 213. The primary dust storing section 212 stores dust
separated by the primary cyclone 214, and the secondary dust storing section 213 stores
dust separated by the secondary cyclones 215.
[0054] The primary dust storing section 212 and secondary dust storing sections 213 are
partitioned by a substantially cylindrical boundary wall 216, which is integrally
connected to the lower ends of the secondary cyclones 215, and has a diameter smaller
than that of the peripheral wall of the dust collecting container 210.
[0055] The boundary wall 216 has a lower end extending downward to the bottom of the dust
collecting container 210, that is, the upper surface of the bottom panel 211, beyond
the lower end of the primary cyclone 214. Accordingly, the boundary wall 216 prevents
the primary and secondary dust storing sections 212 and 213 from communicating with
each other.
[0056] It is preferred that the boundary wall 216 have a circumferentially corrugated shape,
in order to prevent the dust stored in the primary dust storing section 212 from floating
due to a spiral air flow formed in the primary cyclone 214.
[0057] In addition to the above-described configuration, the dust collector according to
the illustrated embodiment of the present invention further includes a discharge member
217 arranged in the primary cyclone 214 such that the discharge member 217 extends
vertically. A plurality of holes are formed at a peripheral wall of the discharge
member 217, in order to allow the discharge member 217 to communicate with the first
discharge port 214b of the primary cyclone 214. The dust collector also includes a
guide rib 218 provided at the primary cyclone 214, and adapted to guide air entering
the first suction port 214a.
[0058] It is preferred that the discharge member 217 be centrally arranged in the primary
cyclone 214, extend axially through the primary cyclone 214, and have a substantially
conical structure having an opened upper end and a closed lower end while having a
diameter gradually reduced as the discharge member 217 extends downward. When the
discharge member 217 has such a structure, it is possible to prevent dust moving downward
along the inner peripheral wall surface of the primary cyclone 214 from being influenced
by a suction force exerted in the discharge member 217, because the velocity of the
spiral air flow in the primary cyclone 214 is gradually reduced toward the lower end
of the primary cyclone 214.
[0059] The upper end of the discharge member 217 is separably coupled with the peripheral
edge of the first discharge port 214b. An annular sealing member, which provides a
sealing effect, is interposed between the upper end of the discharge member 217 and
the first discharge port 214b.
[0060] A floatation prevention member 219 may also be mounted to the lower end of the discharge
member 217, in order to prevent dust stored in the primary dust storing section 212
from floating. The floatation prevention member 219 prevents the dust collected in
the primary dust storing section 212 from rising due to the spiral air flow, and thus,
from entering the secondary cyclones 215.
[0061] For such a function, it is preferred that the floatation prevention member 219 have
a radially-extending structure formed integrally with the lower end of the discharge
member 217. It is also preferred that the floatation prevention member 219 has a downwardly-inclined
upper surface. Specifically, the floatation prevention member 219 has a conical structure
having a diameter gradually increased as the floatation prevention member 219 extends
downward.
[0062] The guide rib 218 guides air entering the first suction port 214a to flow in a direction
tangential to the inner peripheral wall surface of the primary cyclone 214. That is,
the guide rib 218 prevents the air entering the first suction port 214a from being
directly introduced into the discharge member 217.
[0063] Meanwhile, the top cover 230 includes a cover housing 235 provided with a dust collector
handle 231 adapted to enable the user to carry the dust collector, and a filter housing
236 disposed in the cover housing 235. The top cover 230 is separably coupled to the
container cover 220. This configuration will be described in detail hereinafter.
[0064] Operation of the vacuum cleaner, in which the dust collector according to the illustrated
embodiment of the present invention is incorporated, will now be described.
[0065] When the vacuum cleaner operates, dirt-laden ambient air is first introduced into
the primary cyclone 214 via the suction nozzle (not shown) and connecting hose (not
shown). The air introduced into the primary cyclone 214 is guided by the guide rib
218 to flow in a direction tangential to the inner peripheral surface of the primary
cyclone 214 without being directly introduced into the discharge member 217, thereby
forming a spiral flow.
[0066] As a result, relatively heavy and large dust is separated from the air in accordance
with the cyclone principle, and is then stored in the primary dust storing section
212 after falling downward. The dust stored in the primary dust storing section 212
is prevented from floating in accordance with the functions of the floatation prevention
member 219 and corrugated boundary wall 216.
[0067] The air, from which relatively heavy and large dust has been separated, is discharged
from the primary cyclone 214 through the first discharge port 214b communicating with
the holes formed at the peripheral wall of the discharge member 217. The air is then
introduced into the secondary cyclones 215 so that the air is again subjected to a
dust separation process, in order to separate relatively light and fine dust from
the air.
[0068] The air, from which relatively light and fine dust has been separated in the secondary
cyclones 215, is introduced into the interior of the top cover 230 through the second
discharge ports 215b. The air introduced into the interior of the top cover 230 is
filtered by the filter 237, and is then rearwardly discharged through a cover discharge
port 233 formed at the top cover 230. The air emerging from the cover discharge port
233 is outwardly discharged from the cleaner body 100 after moving along a predetermined
flow path defined in a rear portion of the cleaner body 100.
[0069] Hereinafter, the structures of the top cover and container cover will be described
in detail with reference to FIGs. 5 and 6. As described above, the dust collecting
container 210 includes a dust separating part for separating contaminants from air
introduced into the dust collecting container 210, and a dust storing part for collecting
the contaminants separated by the dust separating part. Also, the container cover
220 is mounted to the upper end of the dust collecting container 210 to open or close
the dust collecting container 210. The top cover 230 is separably coupled to the top
portion of the container cover 220. Alignment marks 228 and 238 are provided at the
container cover 220 and top cover 230 respectively to indicate coupling directions
of the container cover 220 and top cover 230, when the container cover 220 and top
cover 230 are to be coupled.
[0070] As described above, the dust collecting container 210 also includes the first suction
port 214a, through which air containing contaminants is sucked, and the bottom panel
211, which constitutes the bottom of the dust collecting container 210. An openlng/closing
device 213 is mounted to the peripheral wall of the dust collecting container 210
to open or close the bottom panel 211, and thus, the bottom of the dust collecting
container 210.
[0071] Protrusions 222 having a predetermined shape are formed at the outer peripheral surface
of the container cover 220. Engagement grooves 232 corresponding to the protrusions
222 are formed at the inner peripheral surface of the top cover 230. Of course, the
protrusions 222 may be formed at the top cover 230, and the engagement grooves 232
may be formed at the container cover 220. The alignment mark 228 is provided at an
extension extending downward from a lower peripheral edge of the container cover 220.
As described above, the alignment mark 228 informs the user of the coupling direction
of the container cover 220, when the container cover 220 and top cover 230 are to
be coupled.
[0072] Each protrusion 222 includes a first protrusion portion 222a extending to a predetermined
length in the circumferential direction of the container cover 220, a second protrusion
portion 222b extending from the first protrusion portion 222a at a predetermined angle,
and a locking protrusion portion 222c for limiting rotation of the top cover 230.
[0073] Although the container cover 220 has been described as including several protrusions
222, at least one protrusion 222 may be provided. Where several protrusions 222 are
provided, it is preferred that at least one of the spacings between adjacent ones
of the protrusions 222 be different from the remaining spacings. Preferably, three
protrusions 222 are provided at the container cover 220. In this case, it is preferred
that the spacings of the protrusions 222 in the circumferential direction of the container
cover 220 be 110°, 110°, and 140°, respectively.
[0074] When one of the spacings between adjacent ones of the protrusions 222 is different
from the remaining spacings, as above, the positioning of the top cover 230 for the
coupling of the container cover 220 and top cover 230 can be easily achieved. Of course,
the spacings between adjacent ones of the protrusions 222 are optional.
[0075] Preferably, the locking protrusion portion 222c is arranged in a space defined between
the first and second protrusion portions 222a and 222b. Also, the angle formed between
the first and second protrusion portions 222a and 222b is preferably 90°. In addition,
it is preferred that the locking protrusion portion 222c is inclined toward one side
thereof at a predetermined angle. In accordance with such a structure of the locking
protrusion portion 222c, it is possible to easily achieve engagement of the locking
protrusion portion 222c when the associated protrusion 222 is moved in the circumferential
direction of the top cover 230 after being inserted into the associated engagement
groove 232.
[0076] The top cover 230 includes the filter housing 236, in which the filter 237 is received.
The top cover 230 also includes the cover housing 235, which is arranged outside the
filter housing 236 to form the appearance of the top cover 230.
[0077] The filter housing 236 includes a filter housing discharge member 236c for discharging
air emerging from the filter 237. A cover discharge port housing 233a is formed on
the filter housing discharge member 236c at one side of the filter housing discharge
portion 236c. Through the cover discharge port housing 233a, the air emerging from
the filter housing discharge member 236c is outwardly discharged.
[0078] It is preferred that the filter housing discharge member 236c be inclined at a certain
angle. Specifically, it is preferred that the filter housing discharge member 236c
be downwardly inclined toward the cover discharge port housing 233a. In accordance
with such a structure, the filter 237 can obtain an increased filtering efficiency
while occupying a minimal space in the filter housing 236.
[0079] The engagement grooves 232, which have a predetermined shape, are formed at the inner
peripheral surface of the filter housing 236. Also, reinforcing grooves 239 are formed
at the inner peripheral surface of the top cover 230 to provide a desired strength
to the filter housing 236. The alignment mark 238 is provided at the outer peripheral
surface of the filter housing 236. As described above, the alignment mark 238 informs
the user of the coupling direction of the top cover 230, when the container cover
220 and top cover 230 are to be coupled. The alignment mark 238 corresponds to the
alignment mark 228 provided at the container cover 220. Although one alignment mark
238 is provided in the illustrated case, at least one alignment mark 238 may be provided.
Also, the alignment mark 228 may be provided at the dust collecting container, in
pace of the container cover.
[0080] The engagement grooves 232 cooperate with the protrusions 222 formed at the outer
peripheral surface of the container cover 220 to enable the top cover 230 to be separably
coupled with the container cover 220. Each engagement groove 232 includes an insertion
groove portion 232a, through which the associated protrusion 222 of the container
cover 220 is inserted into the engagement groove 232, a rotation guide 232b for guiding
the inserted protrusion 222 to move in the circumferential direction of the top cover
230, and an locking groove portion 232c corresponding to the locking protrusion portion
222c of the associated protrusion 222.
[0081] In order to enable easy insertion of the protrusion 222 of the container cover 220
into the engagement groove 232, the insertion groove portion 232a has a length longer
than the first protrusion portion 222a of the protrusion 222 extending in the circumferential
direction of the container cover 220. Also, the rotation guide 232b has a first portion
extending from the insertion groove portion 232a in parallel to the insertion groove
portion 232a, and a second portion extending from the first portion of the rotation
guide 232a in a direction perpendicular to the insertion groove portion 232a.
[0082] The rotation guide 232b extends along the inner peripheral surface of the filter
housing 236 to a length longer than that of the insertion groove 232a. The locking
groove portion 232c is formed at a predetermined position on the rotation guide 232b,
and has an inclination corresponding to the inclination of the locking protrusion
portion 222c. A reinforcing groove 239 is formed at the inner peripheral surface of
the filter housing 236 beneath each engagement groove 232. The reinforcing groove
239 enables the top cover 230 to have a constant thickness, and thus, to have an increased
strength. Of course, the provision of the reinforcing grooves 239 is optional.
[0083] The procedure for assembling the dust collector according to the illustrated embodiment
of the present invention will be described with reference to FIGs. 2 to 6. As described
above, the dust collector includes the dust collecting container 210, which separates
dust from air, and collects the separated dust, the container cover 220, which is
mounted to the top of the dust collecting container 210, and the top cover 230, which
is separably coupled with the container cover 220.
[0084] Hereinafter, the procedure for assembling the dust collector including the above-described
elements will be described. First, the user inserts, into the dust collecting container
210, the floatation prevention member 219 adapted to prevent the stored dust from
floating, together with the discharge member 217 coupled to the floatation prevention
member 219. Thereafter, the user couples the container cover 220, which is adapted
to open or close the dust collecting container 210, to the top of the dust collecting
container 210. In this case, the dust collecting container 210 and container cover
220 are fastened to each other by means of screws, in order to prevent the dust collecting
container 210 and container cover 220 from being separated from each other due to
vibrations of the vacuum cleaner.
[0085] The user then couples the top cover 230 to the top of the container cover 220. At
this time, the coupling is carried out under the condition in which the alignment
mark 228 formed at the container cover 220 and the alignment mark 238 formed at the
top cover 230 are aligned with each other.
[0086] Next, the user presses the top cover 230 such that the protrusions 222 of the container
cover 220 are inserted into the engagement grooves 232 of the top cover 230. Subsequently,
the user rotates the container cover 220 and top cover 230 with respect to each other
such that each protrusion 222 moves circumferentially in the associated engagement
groove 232. When the locking protrusion portion 222c of each protrusion 222 reaches
the locking groove portion 232c of the associated engagement groove 232 in accordance
with the relative movement of the protrusion 222 and engagement groove 232, the user
further forcibly rotates the container cover 220 and top cover 230 with respect to
each other such that each locking protrusion portion 222c is engaged with the associated
locking groove portion 232c.
[0087] In the completely-assembled dust collector, the alignment mark 228 of the container
cover 220 and the alignment mark 238 of the top cover 230 are positioned in a state
of being spaced apart from each other by a certain distance without being aligned
with each other, as shown in FIG. 6.
[0088] The above-described dust collector of the vacuum cleaner according to the present
invention has various effects.
[0089] That is, first, in accordance with the present invention, there is an advantage in
that it is possible to easily achieve replacement of the filter because the top cover
and container cover are separably coupled.
[0090] Second, in accordance with the present invention, there are advantages of a simple
coupling structure and a convenience in use because the top cover and container cover
can be coupled in accordance with a simple rotating operation by virtue of the engagement
grooves and protrusions respectively formed at the top cover and container cover.
1. A dust collector (200) of a vacuum cleaner comprising:
a dust collecting container (210) for separating contaminants from air introduced
into the dust collecting container (210) and for collecting the separated contaminants,
the dust collecting container (210) including
a primary cyclone (214) for separating contaminants from air introduced into the primary
cyclone (214) through a first suction port (214a) for guiding the air to flow in a
tangential direction of the primary cyclone (214);
a plurality of secondary cyclones (215) for separating contaminants entrained in the
air discharged from the primary cyclone (214), said air being introduced into the
secondary cyclones (215) through a respective second suction port (215a) for guiding
the air to flow in a tangential direction of the respective secondary cyclone (215);
an air discharging part (215b) arranged at a top portion of the dust collecting container
(210);
a container cover (220) mounted to the top portion of the dust collecting container
(210) and adapted to open or close the dust collecting container (210), and a top
cover (230) separably coupled with the container cover (220),
wherein one of the container cover (220) and the top cover (230) includes at least
one protrusion (222), and the other one of the container cover (220) and the top cover
(230) includes at least one engagement groove (232) corresponding to the at least
one protrusion (222),
wherein the protrusion (222) and the engagement groove (232) are coupled when the
protrusion (222) and the engagement groove (232) are moved with respect to each other
in a circumferential direction of the container cover (220),
wherein the protrusion (222) includes a locking protrusion portion (222c) for limiting
rotation of the top cover (230), and the engagement groove (232) includes a locking
groove portion (232c) which is engageable with the locking protrusion portion (222c);
and
a filter (237) arranged between the container cover (220) and the top cover (230),
for filtering air discharged from the air discharging part (215b), thereby separating
contaminants entrained in the discharged air.
2. The dust collector according to claim 1, wherein the protrusion (222) is formed at
an outer peripheral surface of the container cover (220) and includes a first protrusion
portion (222a) extending in the circumferential direction of the container cover (220)
and a second protrusion portion (222b) extending from the first protrusion portion
(222a) at a predetermined angle.
3. The dust collector according to claim 2, wherein the locking protrusion portion (222c)
is arranged in a space defined between the first protrusion portion (222a) and the
second protrusion portion (222b).
4. The dust collector according to claim 2, wherein the engagement groove (232) includes
an insertion groove portion (232a), through which the protrusion (222) is inserted
into the engagement groove (232), and a rotation guide (232b) for guiding the inserted
protrusion (222) to move in a circumferential direction of the top cover (230).
5. The dust collector according to claim 1, wherein the at least one protrusion comprises
a plurality of protrusions (222) spaced apart from one another, and at least one of
spacings between adjacent ones of the protrusions (222) is different from the remaining
spacings.
6. The dust collector according to any one of claims 1 to 5, further comprising an alignment
indicator adapted to indicate coupling directions when the top cover (230) is coupled
with the container cover (220).
7. The dust collector according to claim 6, wherein the alignment indicator comprises
a first alignment mark (238) provided at a lower portion of the top cover (230), and
a second alignment mark (228) corresponding to the first alignment mark, the second
alignment mark (228) being provided at one of the dust collecting container (210)
and the container cover (220).
8. The dust collector according to claim 7, wherein the second alignment mark (228) is
arranged at an extension extending downward from a peripheral edge of the container
cover (220).
9. A vacuum cleaner in which a dust collector (200) as defined in any one of claims 1
to 8 is incorporated.
1. Ein Staubsammler (200) eines Staubsaugers, mit:
einem Staubsammelbehälter (210) zum Abtrennen von Verunreinigungen von in den Staubsammelbehälter
(210) eingeleiteter Luft und zum Sammeln der abgetrennten Verunreinigungen, wobei
der Staubsammelbehälter (210) umfasst:
ein Primärzyklon (214) zum Abtrennen von Verunreinigungen von in den Primärzyklon
(214) durch einen ersten Ansauganschluß (214a) zum Leiten der Luft zum Strömen in
einer Tangentialrichtung des Primärzyklons (214) eingeleiteter Luft,
mehrere Sekundärzyklone (215) zum Abtrennen von Verunreinigungen, die in der von dem
Primärzyklon (214) ausgetragenen Luft enthalten sind, wobei die Luft in die Sekundärzyklone
(215) durch einen jeweiligen zweiten Ansauganschluß (215a) zum Leiten der Luft zum
Strömen in einer Tangentialrichtung des jeweiligen Sekundärzyklons (215) eingeleitet
wird,
einen Luftaustragteil (215b), der an einem oberen Abschnitt des Staubsammelbehälters
(210) angeordnet ist, einer Behälterabdeckung (220), die an dem oberen Abschnitt des
Staubsammelbehälters (210) angebracht und eingerichtet ist, den Staubsammelbehälter
(210) zu öffnen oder zu schließen, und einer oberen Abdeckung (230), die trennbar
mit der Behälterabdeckung (220) gekoppelt ist,
wobei die Behälterabdeckung (220) oder die obere Abdeckung (230) mindestens einen
Vorsprung (222) umfaßt, und die jeweils andere, die Behälterabdeckung (220) oder die
obere Abdeckung (230), mindestens eine Eingriffsnut (232) entsprechend dem mindestens
einen Vorsprung (222) umfaßt,
wobei der Vorsprung (222) und die Eingriffsnut (232) gekoppelt sind, wenn der Vorsprung
(222) und die Eingriffsnut (232) relativ zueinander in einer Umfangsrichtung der Behälterabdeckung
(220) bewegt werden,
wobei der Vorsprung (222) einen Verriegelungsvorsprungsabschnitt (222c) zum Begrenzen
der Drehung der oberen Abdeckung (230) umfaßt, und die Eingriffsnut (232) einen Verriegelungsnutabschnitt
(232c) umfaßt, der mit dem Verriegelungsvorsprungsabschnitt (222c) in Eingriff bringbar
ist, und
einem Filter (237), der zwischen der Behälterabdeckung (220) und der oberen Abdeckung
(230) angeordnet ist, zum Filtern von aus dem Luftaustragteil (215b) ausgetragener
Luft, um dadurch in der ausgetragenen Luft enthaltene Verunreinigungen abzutrennen.
2. Der Staubsammler gemäß Anspruch 1, wobei der Vorsprung (222) an einer Außenumfangsoberfläche
der Behälterabdeckung (220) ausgebildet ist und einen ersten Vorsprungsabschnitt (222a),
der sich in einer Umfangsrichtung der Behälterabdeckung (220) erstreckt, und einen
zweiten Vorsprungsabschnitt (222b), der sich von dem ersten Vorsprungsabschnitt (222a)
unter einem bestimmten Winkel erstreckt, umfaßt.
3. Der Staubsammler gemäß Anspruch 2, wobei der Verriegelungsvorsprungsabschnitt (222c)
in einem Raum angeordnet ist, der zwischen dem ersten Vorsprungsabschnitt (222a) und
dem zweiten Vorsprungsabschnitt (222b) definiert ist.
4. Der Staubsammler gemäß Anspruch 2, wobei die Eingriffsnut (232) einen Einsetznutabschnitt
(232a), durch den der Vorsprung (222) in die Eingriffsnut (232) eingesetzt wird, und
eine Drehführung (232b) zum Führen des eingesetzten Vorsprungs (222) zur Bewegung
in einer Umfangsrichtung der oberen Abdeckung (230) umfaßt.
5. Der Staubsammler gemäß Anspruch 1, wobei der mindestens eine Vorsprung mehrere Vorsprünge
(222) umfaßt, die voneinander beabstandet sind, und mindestens einer der Zwischenräume
zwischen Benachbarten der Vorsprünge (222) gegenüber den übrigen Zwischenräumen unterschiedlich
ist.
6. Der Staubsammler gemäß einem der Ansprüche 1 bis 5, ferner mit einem Ausrichtungsindikator,
der eingerichtet ist, Kopplungsrichtungen anzugeben, wenn die obere Abdeckung (230)
mit der Behälterabdeckung (220) gekoppelt ist bzw. wird.
7. Der Staubsammler gemäß Anspruch 6, wobei der Ausrichtungsindikator eine erste Ausrichtungsmarkierung
(238), die an einem unteren Abschnitt der oberen Abdeckung (230) vorgesehen ist, und
eine zweite Ausrichtungsmarkierung (228) entsprechend der ersten Ausrichtungsmarkierung
umfaßt,
wobei die zweite Ausrichtungsmarkierung (228) an dem Staubsammelbehälter (210) oder
an der Behälterabdeckung (220) vorgesehen ist.
8. Der Staubsammler gemäß Anspruch 7, wobei die zweite Ausrichtungsmarkierung (228) an
einer Erweiterung angeordnet ist, die sich von einem Umfangsrand der Behälterabdeckung
(220) nach unten erstreckt.
9. Ein Staubsauger, in dem ein Staubsammler (200) gemäß irgend einem der Ansprüche 1
bis 8 eingebunden ist.
1. Collecteur de poussière (200) d'un aspirateur, comprenant
un récipient de collecte de poussière (210) pour séparer des contaminants de l'air
introduit dans le récipient de collecte de poussière (210) et pour accumuler les contaminants
séparés, le récipient de collecte de poussière (210) renfermant
un cyclone principal (214) pour séparer des contaminants de l'air introduit dans le
cyclone principale (214) par un premier raccord d'aspiration (214a) pour guider l'air
à couler dans une direction tangentielle du cyclone principale (214);
une pluralité de cyclones secondaires (215) pour séparer des contaminants entraînés
dans l'air déchargé du cyclone principale (214), l'air étant introduit dans les cyclones
secondaires (215) par un deuxième raccord d'aspiration respectif (215a) pour guider
l'air à couler dans une direction tangentielle du cyclone secondaire respectif (215);
une pièce de décharge de l'air (215b) arrangée sur une partie supérieure du récipient
de collecte de poussière (210);
un couvercle de récipient (220) monté sur la partie supérieure du récipient de collecte
de poussière (210) et adapté pour ouvrir ou fermer le récipient de collecte de poussière
(210), et un couvercle supérieur (230) assemblé de manière séparable avec le couvercle
de récipient (220),
dans lequel l'un du couvercle de récipient (220) et du couvercle supérieur (230) renferme
au minimum une saillie (222) et l'autre du couvercle de récipient (220) et du couvercle
supérieur (230) renferme au minimum un cran d'engagement (232) en correspondace avec
le au minimum une saillie (222),
dans lequel la saillie (222) et le cran d'engagement (232) sont assemblés quand la
saillie (222) et le cran d'engagement (232) sont mouvés l'un rélativement à l'autre
dans une direction de circonférence du couvercle de récipient (220),
dans lequel la saillie (222) renferme une partie de saillie de barrage (222c) pour
limiter la rotation du couvercle supérieur (230), et le cran d'engagement (232) referme
une partie de cran de barrage (232c) capable de s'engager avec la partie de saillie
de barrage (222c); et
un filtre (237) arrangé parmis le couvercle de récipient (220) et le couvercle supérieur
(230), pour filtrer l'air déchargé de la pièce de décharge de l'air (215b), par lequel
des contaminants entraînés dans l'air déchargé sont séparés.
2. Collecteur de poussière selon la revendication 1, dans lequel la saillie (222) est
formée sur une surface périphérique extérieure du couvercle de récipient (220) et
renferme une première partie de saillie (222a) s'étendant à la direction de circonférence
du couvercle de récipient (220) et une deuxième partie de saillie secondaire (222b)
s'étendant de la première partie de saillie (222a) dans un angle fixé à l'avance.
3. Collecteur de poussière selon la revendication 2, dans lequel la partie de saillie
de barrage (222c) est arrangée dans une espace définie parmis la première partie de
saillie (222a) et la deuxième partie de saillie (222b).
4. Collecteur de poussière selon la revendication 2, dans lequel le cran d'engagement
(232) renferme une partie de cran d'insertion (232a), par laquelle la saillie (222)
est insérée dans le cran d'engagement (232), et un guide de rotation (232b) pour guider
la saillie (222) insérée à mouvoir dans une direction de circonférence du couvercle
supérieure (230).
5. Collecteur de poussière selon la revendication 1, dans lequel la au minimum une saillie
comprend une pluralité de saillies (222) distants les uns des autres, et au minimum
une des distances parmis des saillies (222) avoisinantes est différente des autres
distances.
6. Collecteur de poussière selon l'une quelconque des revendications 1 à 5, comprenant
en outre une indicateur d'alignement adaptée pour indiquer des directions d'assemblage
quand le couvercle supérieur (230) est assemblé avec le couvercle de récipient (220).
7. Collecteur de poussière selon la revendication 6, dans lequel l'indicateur d'alignement
comprend une première marque d'alignement (238) montée sur une partie inférieure du
couvercle supérieure (230) et une deuxième marque d'alignement (228) en correspondance
avec la première marque d'alignement, la deuxième marque d'alignement (228) étant
montée sur une du récipient de collecte de poussière (210) et du couvercle de récipient
(220).
8. Collecteur de poussière selon la revendication 7, dans lequel la deuxième marque d'alignement
(228) est arrangée sur un rallongement s'étendant d'un bord périphérique du couvercle
de récipient (220) vers le bas.
9. Aspirateur dans lequel est incorporé un collecteur de poussière (200) tel que defini
dans l'une quelconque des révendications 1 à 8.