Cyclonic separator having stacked cyclones
09849468 ยท 2017-12-26
Assignee
Inventors
Cpc classification
International classification
Abstract
A cyclonic separator having a first cyclone stage; and a second cyclone stage comprising a plurality of cyclone bodies arranged in parallel, each cyclone body comprising an inlet and an outlet, the plurality of cyclone bodies being divided into at least a first layer and a second layer; wherein the second cyclone stage further comprises a first plenum common to the cyclone bodies, the first plenum extending from the outlet of the first cyclone stage to the inlets of each of the cyclone bodies of the second cyclone stage.
Claims
1. A cyclonic separator comprising a first cyclone stage; and a second cyclone stage comprising a plurality of cyclone bodies arranged in parallel, each cyclone body comprising an inlet and an outlet, the plurality of cyclone bodies being divided into at least a first layer and a second layer; wherein the second cyclone stage further comprises a first plenum common to the cyclone bodies, the first plenum extending from an outlet of the first cyclone stage to the inlets of the cyclone bodies of the second cyclone stage, and wherein the first plenum is an open chamber.
2. The cyclonic separator of claim 1, wherein the second cyclone stage further comprises a second plenum common to the cyclone bodies and extending from the outlet of each of the cyclone bodies.
3. The cyclonic separator of claim 2, wherein the second plenum substantially surrounds the first plenum.
4. The cyclonic separator of claim 2, wherein the cyclonic separator comprises a further stage located downstream of the second cyclone stage, the second plenum extends from the outlets of the cyclone bodies to the further stage, and the further stage is one of a cyclone stage, a filter stage and a chamber comprising an outlet of the cyclonic separator.
5. The cyclonic separator of claim 2, wherein the second plenum is substantially annular.
6. The cyclonic separator of claim 1, wherein the first plenum is substantially annular.
7. The cyclonic separator of claim 1, wherein the first plenum has a substantially annular inlet.
8. The cyclonic separator of claim 1, wherein the inlets of the cyclone bodies have the same size and dimensions.
9. The cyclonic separator of claim 1, wherein the outlets of the cyclone bodies have the same size and dimensions.
10. A vacuum cleaner comprising a cyclonic separator as claimed in claim 1.
11. A cyclonic separator comprising a first cyclone stage; and a second cyclone stage comprising a plurality of cyclone bodies arranged in parallel, each cyclone body comprising an inlet and an outlet, the plurality of cyclone bodies being divided into at least a first layer and a second layer; wherein the second cyclone stage further comprises a first plenum common to the cyclone bodies, the first plenum extending from an outlet of the first cyclone stage to the inlet of each of the cyclone bodies of the second cyclone stage, wherein the first plenum is an open chamber, wherein the second cyclone stage further comprises a second plenum common to the cyclone bodies and extending from the outlet of each of the cyclone bodies, wherein the cyclonic separator comprises a further stage located downstream of the second cyclone stage, the second plenum extends from the outlets of the cyclone bodies to the further stage, and the further stage is one of a cyclone stage, a filter stage and a chamber comprising an outlet of the cyclonic separator, and wherein the second plenum substantially surrounds the first plenum, and the first plenum substantially surrounds the further stage.
12. The cyclonic separator of claim 11, wherein each of the plenums is substantially annular.
13. The cyclonic separator of claim 11, wherein the inlets of the cyclone bodies have the same size and dimensions.
14. The cyclonic separator of claim 11, wherein the outlets of the cyclone bodies have the same size and dimensions.
15. A vacuum cleaner comprising a cyclonic separator according to claim 11.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order that the present invention may be more readily understood, embodiments of the invention will now be described, by way of example, with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE INVENTION
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(13) The body 24 comprises a cyclonic separator 28 for separating dirt and dust from an airflow, and a chassis 30. The cyclonic separator 28 is received within the chassis 30 such that it is at least partially nested or docked within the chassis 30. In use, a motor and fan unit located within the chassis 30 draws dust laden air into the vacuum cleaner 22. The dirty air enters the body 24 from the hose and wand assembly 26 via an inlet duct, and into the cyclonic separator 28. Dirt and dust particles entrained within the air flow are separated from the air and retained in the cyclonic separator 28. The clean air then passes from the cyclonic separator into the chassis 30 and is subsequently expelled through air outlets in the body 24. The cyclonic separator 28 is removable from the chassis 30 such that any dirt collected by the cyclonic separator 28 may be emptied.
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(15) The first cyclone stage 32 comprises an outer wall 36, an inner wall 38, a shroud 40 and a base 42, which collectively define a cyclone chamber 44 and a first dirt collection chamber 46. An inlet (not shown) to the cyclone chamber 44 is provided and arranged so as to introduce air into the cyclone chamber 44 in a substantially tangential direction in order to encourage the air to flow in a spiral or helical manner around the cyclone chamber 44. The shroud 40 comprises a mesh 48 secured to an upper portion 50 and a lower portion 52. Partially cleaned air exits the cyclone chamber 44 through the mesh 48 and is then directed towards the second cyclone stage 34.
(16) The second cyclone stage 34 comprises a second dirt collection chamber and a plurality of cyclone bodies 54 arranged in two layers about a longitudinal axis (shown as dotted line Y-Y in
(17) Although only a lower section of the inner wall 38 is visible in
(18) A plan view of the cyclonic separator 28 is shown in
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(20) Arrows V show the airflow pathway within the first plenum at the level containing the inlets for the lower layer L. Some of the air is drawn into the inlets 60 of the lower layer cyclone bodies C.sub.1L, C.sub.2L, C.sub.3L, C.sub.4L, C.sub.5L and C.sub.6L, while the remainder of the air continues to progress up the first plenum towards the inlets of the cyclones in the upper layer U.
(21) The air that does not enter the cyclone bodies of the lower level L is drawn into the inlets 60 of the upper layer cyclones C.sub.1U, C.sub.2U, C.sub.3U, C.sub.4U, C.sub.5U and C.sub.6U. As air is drawn into the cyclone bodies 54, more air continues to be drawn into the first plenum 64 from the first cyclone stage 32 to replace it.
(22) As air passes through a cyclone body 54, it spirals around and any dust that is entrained in the air is separated by centrifugal forces which cause the dust particles to be thrown from the air. The dust then passes through an opening in the bottom of the cyclone body 54 from which it is deposited into a second dust collection chamber, whereas the air passes back up the cyclone body towards the vortex finder 62.
(23) Once the air has passed through the vortex finders 62, it then enters a second plenum 66. The second plenum 66 is separate from the first plenum 64, but is also common to all of the cyclone bodies 54 of the second cyclone stage 34. The second plenum 66 extends from the outlet of each of the cyclone bodies 54 to an inlet of a further stage in the cyclonic separator 28. In the present embodiment, the further stage is a filter stage. However, the further stage could equally be a further cyclone stage, or a chamber having an outlet of the cyclonic separator. The second plenum 66 therefore acts as a common volume into which the air from all of the cyclone bodies 54 is unloaded. The arrows X and Y show air exiting the vortex finders of the lower layer L and upper layer U cyclone bodies respectively and entering the second plenum 66.
(24) In order that the two plenums can more easily be distinguished, the schematic representation of
(25) While passing through the second cyclone stage 34, the air is not required or restricted to pass through any conduits or ducts. The air feeding into all the cyclone bodies comes from a single common volume, and this ensures that each of the cyclone bodies has an equal load of air supply passing through it. Although the representations of
(26) As can be seen in the figures, the inlet 60 and outlet 62 for each cyclone body 54 is the same as for all other cyclone bodies 54. In other words, the sizes and dimensions of all inlets 60 are the same. In addition, the sizes and dimensions of all outlets 62 are the same. Consequently, there is no preferential loading of air supply on any of the cyclone bodies 54.
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(31) Whilst particular embodiments have thus far been described, it will be understood that various modifications may be made without departing from the scope of the invention as defined by the claims.