Air filter including a scavenging shutter
11333111 · 2022-05-17
Assignee
Inventors
Cpc classification
B01D45/16
PERFORMING OPERATIONS; TRANSPORTING
F02M35/084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D46/71
PERFORMING OPERATIONS; TRANSPORTING
F02M35/0223
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D50/20
PERFORMING OPERATIONS; TRANSPORTING
F02M35/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D46/521
PERFORMING OPERATIONS; TRANSPORTING
B01D46/0005
PERFORMING OPERATIONS; TRANSPORTING
B01D2279/60
PERFORMING OPERATIONS; TRANSPORTING
F02M35/0216
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M35/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An air filter for heavy dust conditions has an efficient scavenging system. The air filter includes: a housing, a permeable filter, and a scavenger system. The scavenger system disposes of particles collected on the upstream surface of the permeable filter. The scavenger system includes: an air suction source, and a shutter. The shutter is positioned substantially along, typically below, the permeable filter, at a certain distance from a wall, typically the bottom wall, of the housing. The air suction source draws air from a collecting space located between the shutter and the wall of the housing. The shutter is being selectively operated to permit or restrict passage there-through. The air suction source efficiently operates to scavenge particles from the collecting space when the passage through the shutter is at least partially restricted.
Claims
1. An air filter for heavy dust conditions comprising: a housing; a permeable filter; and a scavenger system, said scavenger system disposes of particles collected on an upstream surface of said permeable filter, said scavenger system further comprising: an air suction source; and a shutter, said shutter is positioned substantially along said permeable filter, at a certain distance from a wall of said housing, said air suction source draws air from a collecting space formed between said shutter and said wall, wherein said shutter being selectively operated to permit or restrict passage there-through, and wherein said air suction source efficiently operates to scavenge particles from said collecting space, when the passage through said shutter is at least partially restricted.
2. An air filter as claimed in claim 1, wherein said shutter is positioned substantially below said permeable filter.
3. An air filter as claimed in claim 1, wherein said wall is an internal partition of said housing.
4. An air filter as claimed in claim 1, wherein said wall is a bottom wall of said housing.
5. An air filter as claimed in claim 1, wherein said shutter comprising a first perforated sheet and a second perforated sheet slide-ably seated against each other, the perforations of said perforated sheets are so arranged that at a first positional relation between said first and second perforated sheets said perforations of said first sheet are substantially positioned against an unperforated area of said second sheet, thus at least partially restricting passage through said shutter, while at a second positional relation between said first and second perforated sheets, at least a region of the perforations of said first sheet are aligned with at least a region of the perforations of said second sheet, thus permitting controllable passage through said shutter.
6. An air filter as claimed in claim 5, wherein a longitudinal pitch of said perforations of said first sheet is different than a longitudinal pitch of said perforations of said second sheet, thus when slided against each other, said aligned region is changing longitudinal position in a manner of a propagating wave.
7. An air filter as claimed in claim 6, wherein said positional relation between said first and second perforated sheets may be changed intermittently or continuously during scavenging to any positional relation between said first positional relation and said second positional relation.
8. An air filter as claimed in claim 5, wherein said shutter is shorter than said housing, leaving a suction gap of free airflow at a first end thereof, distal from said air suction source.
9. An air filter as claimed in claim 5, wherein said perforations of said first and second perforated sheets are elongated oval perforations.
10. An air filter as claimed in claim 5, wherein said first perforated sheet slides on top of said second perforated sheet by means of at least one pneumatic cylinder.
11. An air filter as claimed in claim 1, wherein said air suction source is an electric blower.
12. An air filter as claimed in claim 1, further comprising: a precleaner.
13. An air filter as claimed in claim 12, wherein said scavenger system further comprises a three way valve, enabling scavenge of said precleaner and said permeable filter alternately.
14. An air filter as claimed in claim 12, wherein said precleaner is a multi vortex tube type precleaner.
15. An air filter as claimed in claim 1, further comprising a pulse jet back-flow flush system.
16. A method for a scavenging sequence of an air filter for heavy dust conditions comprising the steps of: a) providing an air filter comprising: a housing; a permeable filter; and a scavenger system, said scavenger system further comprising: an air suction source; and a shutter, said shutter being selectively operated to permit or restrict passage there-through; g) setting said shutter to restrict passage there-through; h) operating said air filter until a determinable amount of particulate material is collected on an upstream surface of said permeable filter; i) setting said shutter to permit passage there-through; j) letting said particulate material pass through said shutter; l) setting said shutter to restrict passage there-through; n) enabling said air suction source to dispose of said particulate material now located between said shutter and a wall of said housing; and o) repeating steps g to n as needed.
17. A method as claimed in claim 16, further comprising between steps a and g the step of: b) providing a pulse jet back-flow flush system; and between steps j and l the step of: k) operating said pulse jet back-flow flush system.
18. A method as claimed in claim 17, further comprising between steps b and g the steps of: c) providing a precleaner; d) providing said scavenger system with a three way valve; e) setting said three way valve to scavenge said precleaner; f) enabling said air suction source to dispose of particles collected by said precleaner; and further comprising between steps l and n the step of: m) setting said three way valve to scavenge said permeable filter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention and the way it may be carried out in practice, will be understood with reference to the following illustrative figures, by way of non-limiting example only, in which like reference numerals identify like elements, and in which:
(2)
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DETAILED DESCRIPTION OF EMBODIMENTS
(11) According to the present invention there is provided an air filter for heavy dust conditions such as military and off-road vehicles operative in harsh environments. The air filter includes a controllable scavenging shutter that improves scavenging efficiency. A sequence of operation thereof is also provided.
(12) Several terms relating to the present invention will be defined prior to describing the invention in detail. It should be noted that the following definitions are used throughout this application.
(13) For the purposes of the present invention, directional terms such as “top”, “bottom”, “below”, “left”, “right”, “horizontal”, “vertical”, “upper”, “lower” “down”, etc. are merely used for convenience in describing the various implementations of the present invention. The assemblies demonstrating the present invention may be oriented in various ways. For example, the assemblies shown in
(14) For the purposes of the present invention, the term “wall” refers to an outer wall as well as an internal partition, or in the wider sense to a layer of structural material defining the physical limit of a space.
(15) For the purposes of the present invention, the term scavenger or scavenging refers to the system or the operation respectively, that performs removal of dirt or refuse from an area, space or region by physical means.
(16) For the purposes of the present invention, the term shutter refers to a mechanical device that is able to restrict or block the passage of air and particulate material therethrough.
(17) For the purposes of the present invention, the term pitch refers to the distance between successive corresponding physical occurrences, such as apertures or perforations in a perforated sheet.
(18) With reference to the figures, according to an embodiment of the present invention, there is shown in
(19) A minimal scavenger system 30 according to the present invention, is configured to dispose of particles collected upstream at least the permeable filter. Such minimal scavenger system comprises an air suction source, for instance, blower 24 and a shutter 32. The shutter 32 is positioned substantially along and typically below the permeable filter 28, at a certain distance from a wall, typically a bottom wall 34, and optionally a partition of the housing 20.
(20) The air suction source or blower 24 draws air from a collecting space 36 formed between the shutter 32 and the bottom wall 34 of housing 20. According to the invention, the shutter 32 is being selectively operated to permit or restrict passage there-through. The air suction source or blower 24 efficiently operates to scavenge particles from the above mentioned collecting space 36, when the passage through the shutter 32 is blocked or at least partially restricted, as will be herein-below further explained.
(21) Yet with reference to
(22)
(23) Preferably but not necessarily, the perforations 46 of the first 42 and second 44 perforated sheet are elongated oval perforations. The first 42 upper perforated sheet may include chamfers 48 on the circumference of each of the perforations 46 to permit easier drop of the collected particles into the perforations and down to the collecting space 36 formed between the shutter 32 and the bottom wall 34 of housing 20, when the shutter 32 is set to permit passage there-through as shown in
(24) With reference now to
(25)
(26)
(27) With reference to
(28) With reference to
(29) According to the above implementation, a longitudinal pitch of the perforations of the first upper sheet 42 is different than the longitudinal pitch of the perforations of the second lower sheet 44, thus when the perforated sheets are slided against each other, a region of aligned perforations is changing longitudinal position along the shutter in a manner of a propagating wave.
(30) In more detail,
(31) The above concept of shutter sheets having different perforation pitch permits efficient scavenging of the collecting space 36 formed between the shutter 32 and the bottom wall 34 of housing 20, by regions. The positional relation between the upper first sheet 42 and the lower second sheet 44 may be changed intermittently or continuously during scavenging to any positional relation between a first positional relation where the passage through the shutter 32 is restricted or blocked and a second positional relation where the passage is permitted. Accordingly, the upper first sheet 42 may change position during the scavenging cycle thus changing the position of the region accepting active scavenging. As a result, a propagating wave of air suction is generated, pulling the particulate material towards the lower duct 27 and through blower 24 back to the atmosphere. It will be understood that many variants of the above concept may be applied such as different shapes and pitches of perforations, different speed of relative movement of the perforated sheets, and even gradually changing pitch along the shutter length.
(32) The positional relation or sliding movement of the first perforated sheet 42 on top of the second perforated sheet 44 is performed by way of example only, by means of at least one pneumatic cylinder 49. The pneumatic cylinder 49 is attached to the housing 20 at one end and attached to the first upper perforated sheet 42 at the other end by means of a bracket 45. It will be understood that any mechanical means such as: screw and nut, rack and pinion, lever mechanism, crank mechanism, eccentric mechanism and any other actuation mechanism may be used to the same extent and all fall under the scope of the present invention. Additionally it will be understood that the first upper perforated sheet 42 may be fixed in position and the second lower perforated sheet 44 may be moved. Optionally both perforated sheets 42, 44 may be moved in relation to each other and to the housing 20.
(33) With reference to
(34) Further shown in
(35) Yet with reference to
(36) With reference to
(37) It should be noted that although the invention is described with reference to a cylindrical permeable filter, it is equally effective for other types of permeable filters such as a single or multiple V pack arrangement as known in the art. In case of a V pack arrangement, the pattern of perforations of the shutter may accept a dedicated shape following the footprint of the V pack permeable filter.
(38) As indicated in the background, the air filter 10 is intended for use in military and heavy off-road vehicles where large mass of particulate material should be removed from the ambient air before it is permitted into the inlet manifold of the main engine. It is known in the art of such filters that the vortex type precleaner may remove up to 99% of the contaminants from the air stream, accordingly it is desired that the three way valve 70 is set to scavenge the precleaner 60 most of the time. However, during operation the permeable filter 28 gradually collects particulate material on the upstream surface to a point where there is a significant air flow restriction and pressure drop over the permeable filter 28. At this point a control system of the air filter activates the pulse jet system 50, if applied, to produce a series of back-flow jet pulses. According to the present invention, substantially at the same time that the pulse jet system 50 is operative, the shutter 32 is set to permit passage there-through such that the particulate material knocked off the permeable filter 28 falls by gravity through perforations 46 into the permeable filter 28 collecting space 36. The operation of permitting and restricting or blocking passage through the shutter 32 may be repeated several times in order to vibrate the particulate material collected on top of the shutter 32 and cause it to drop down trough the perforations 46. Following the above steps, the shutter is set to block or restrict passage there-trough and the three way valve is rotated to enable a short scavenging period of the permeable filter 28 collecting space 36. Since the shutter 32 is set to block or restrict passage there-through during scavenging, the entire suction power of the scavenging blower is directed to evacuate the relatively small volume of the permeable filter 28 collecting space 36, thus enabling an efficient scavenging in a short time. When scavenging of the permeable filter 28 collecting space 36 is completed, the three way valve 70 is rotated back to normal continuous scavenging of the precleaner 60. It will be understood that the sequence of operation may accept variations and the exact periods of time dedicated to each of the process steps may be varied according to environmental conditions and the accumulated operation time of the permeable filter 28.
(39) The shutter 32 is described above and in the figures, lying horizontally under the permeable filter 28. It will be understood however that an inclination at a certain angle or even vertical position of the shutter is also possible. Additionally, the shatter 32 may accept a non-planar shape such as a V shape or an arc cross section. The perforated sheets 42, 44 may have a certain amount of flexibility such that longitudinal curvature of the shutter 32 is also possible. All such positional and structural variations fall under the scope of the present invention.
(40) The present invention seeks protection regarding the air filter as described above, as well as the method steps taken to accomplish the desired result of scavenging at least the permeable filter and preferably both the permeable filter and the precleaner.
(41) Accordingly a method is provided comprising one or more of the steps below:
(42) a) providing an air filter comprising: a housing; a permeable filter; and a scavenger system. The scavenger system further comprising: an air suction source; and a shutter. The shutter being selectively operated to permit or restrict passage there-through;
(43) b) optionally providing a pulse jet back-flow flush system;
(44) c) optionally providing a precleaner;
(45) d) optionally providing the scavenger system with a three way valve;
(46) e) setting the three way valve to scavenge the precleaner;
(47) f) enabling the air suction source to dispose of particles collected by the precleaner;
(48) g) setting the shutter to restrict passage there-through;
(49) h) operating the air filter until a determinable amount of particulate material is collected on the upstream surface of the permeable filter;
(50) i) setting the shutter to permit passage there-through;
(51) j) letting the particulate material pass through the shutter;
(52) k) operating the pulse jet back-flow flush system;
(53) l) setting the shutter to restrict passage there-through;
(54) m) setting the three way valve to scavenge the permeable filter;
(55) n) enabling the air suction source to dispose of the particulate material now located between the shutter and a wall of the housing; and
(56) o) repeating steps g to n as needed.
(57) It will be understood that steps b and k depend on the optional implementation of the pulse jet back-flow flush system and are not mandatory for operation of the basic implementation of the present invention. At the same way, steps c to f and m depend on the optional implementation of a precleaner and a three way valve, and are not mandatory for operation of the basic implementation of the present invention.
(58) It will be appreciated that the specific embodiments of the present invention described above and illustrated in the accompanying drawings are set forth merely for purposes of example. Other variations, modifications, and applications of the present invention will readily occur to those skilled in the art. It is therefore clarified that all such variations are considered within the scope and spirit of the invention. Accordingly, the protection sought herein is as set forth in the claims below.