Low-Profile, High-Pressure Dust Separator and Collector
20190134649 ยท 2019-05-09
Assignee
Inventors
- Robert M. WITTER (Englewood, FL, US)
- Jeffrey M. Hill (Cicero, NY, US)
- John J. Fitzsimmons (Clay, NY, US)
Cpc classification
B01D45/16
PERFORMING OPERATIONS; TRANSPORTING
B04C2009/005
PERFORMING OPERATIONS; TRANSPORTING
B01D46/2403
PERFORMING OPERATIONS; TRANSPORTING
B04C5/13
PERFORMING OPERATIONS; TRANSPORTING
B04C5/181
PERFORMING OPERATIONS; TRANSPORTING
B04C5/14
PERFORMING OPERATIONS; TRANSPORTING
B01D46/71
PERFORMING OPERATIONS; TRANSPORTING
B04C9/00
PERFORMING OPERATIONS; TRANSPORTING
B01D50/20
PERFORMING OPERATIONS; TRANSPORTING
B04C2009/004
PERFORMING OPERATIONS; TRANSPORTING
B04C5/15
PERFORMING OPERATIONS; TRANSPORTING
International classification
B04C5/15
PERFORMING OPERATIONS; TRANSPORTING
B04C9/00
PERFORMING OPERATIONS; TRANSPORTING
B01D45/16
PERFORMING OPERATIONS; TRANSPORTING
B01D46/24
PERFORMING OPERATIONS; TRANSPORTING
B01D46/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A compact dust separator and collector employs a generally cylindrical separator section having a inlet tube where air and entrained dust particles enters the separator section, a top plate with a vortex tube extending downward, and a separator baffle plate disposed at a lower end of said separator section below a lower end of the vortex tube. The baffle plate has peripheral geometry that defines a peripheral gap from the cylindrical separator section wall, with the gap increasing in width in the direction of air flow. There is a blower and filter section above the separator section and a collection section below. The vortex tube can have a cylindrical mesh extending down to the baffle plate, which may have a self-emptying dust cup.
Claims
1. A powerful compact, high pressure, high flow vacuum or dust collector, comprising a low profile generally cylindrical separator section having a inlet tube through which a stream of air and entrained dust particles enters the separator section, the inlet tube extending tangentially into a top portion; a top plate at a top end of the separator section with a vortex tube extending downward from the top plate; the stream of air having a predetermined direction of spiral air flow at an outer cylindrical wall of the separator section, and a separator baffle disposed at a lower end of said separator section below a lower end of the vortex tube, said separator baffle having periphery that defines a peripheral gap from the cylindrical wall of said separator section, the gap increasing in width in the direction of air flow; a dust collection section positioned at the lower end of the separator section; and a blower and filter section positioned above the separator section to receive the stream of air passing through said vortex tube.
2. A powerful compact, high pressure, high flow dust collector as in claim 1 wherein said separator baffle has a contoured upper surface that slopes to encourage outward flow of particles and is easily removed for clearing of trash from the separator section.
3. A powerful compact, high pressure, high flow dust collector as in claim 1 wherein said baffle plate has a downwardly extending skirt formed along said peripheral gap configured to discourage re-uptake of material from the collection bin.
4. A powerful compact, high pressure, high flow dust collector as in claim 1 wherein said dust collection section has a cylindrical wall that has a greater diameter than said baffle plate, and forming toroid shaped section at a lower end of said separator section that is configured so as to segregate dust loaded eddy flow in the collection bin from re-entering the separation section through the gap of the baffle plate.
5. A powerful compact, high pressure, high flow dust collector as in claim 1 comprising interchangeable baffle plates to accommodate different conditions or materials.
6. A powerful compact, high pressure, high flow dust collector as in claim 1 wherein said peripheral gap extends about 200 to 270 degrees around the periphery of said baffle plate.
7. A powerful compact, high pressure, high flow dust collector as in claim 1 wherein said peripheral gap increases in gap width in the direction of air flow from about inch to about 2 inches.
8. A powerful compact, high pressure, high flow dust collector as in claim 1 wherein said separator section further includes a generally cylindrical mesh screen extending down below a lower end of said vortex tube.
9. A powerful compact, high pressure, high flow dust collector as in claim 1 wherein said baffle plate has a dust cup positioned at a center thereof below the lower end of said vortex tube for containing dust falling from said blower and filter section.
10. A powerful compact, high pressure, high flow dust collector as in claim 9 wherein said dust cup includes a drop valve arrangement positioned in a lower open end thereof that automatically empties stored back-charged dust into the collection section.
11. A powerful compact, high pressure, high flow dust collector as in claim 10 wherein said drop valve arrangement comprises an inverted conical cup that rides on a vertical central shaft.
12. A powerful compact, high pressure, high flow dust collector as in claim 9 wherein said top plate of said separation section is conic in shape forming a funnel to guide dust from the filter and blower section into said vortex tube and thence into said dust cup.
13. A powerful compact, high pressure, high flow dust collector as in claim 1 that features at least one pulse plate and an associated at least one pulse lever configured for reverse pulse cleaning of filters of said blower and filter section.
14. A powerful compact, high pressure, high flow dust collector as in claim 1 further comprising storage means for storing back washed dust from the pulse cleaning action and automatically dumping such back washed dust into the collection section.
Description
BRIEF DESCRIPTION OF THE DRAWING
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT(S)
[0021]
[0022] The inlet tube 1 extends more-or-less tangentially into the cylindrical separator section 2 to a radial line 3 (see
[0023] The top plate 6 of the separator section 2 can be flat or conical forming a funnel to allow the flow of material downward from the filter section above it. Alternately a separator plate can be employed, as a flat member which can incorporate a collar formed by either an extended vortex tube 15 or a separate tray. This acts as a secondary separator where the dust-laden air enters into the filter chamber, expands and de-accelerates and can drop some of the dust before it reaches the filter, this section also acts as a catchment storage area for back-washed dust from pulse cleaning the filters, as described further on.
[0024] At the bottom of the separator section 2 is a baffle plate 7, shown also in the top and bottom views of
[0025] The baffle plate 7 is easily removable to allow the removal of trash that may be too large to pass through the gap or otherwise does not pass into bin. Also, the baffle plate can be changed from the standard configuration to a specialized configuration that may, for example, be optimized for fine dust but perhaps unable to handle trash or chunks.
[0026] During use, the collection bin 24 can experience eddy currents that are propelled by the incoming air; these eddy currents can carry dust back up into the area of the baffle and into the separator. This re-uptake reduces the unit's separation efficiency. To reduce the re-uptake two mechanisms are employed:
[0027] A. The first mechanism for reducing the re-uptake of dust from the collection bin involves allowing the dust loaded eddy currents to flow along the outer walls of the collection bin while being separated from the baffle gap area by the skirt wall. The baffle plate 7 has a top surface located a small distance above the lowest edge of the outer wall 13A of the separator section 2, for instance, 1 inch. The bottom separator wall creates a skirt that extends below the plate that supports the wall that in turn sits on top of the collection bin 24. This creates a concentric annular space 12 between the collection bin wall and the skirt 13A of the separator wall 13. This concentric, toroid space, reduces the re-uptake of dust already in collection bin 24.
[0028] B. The second mechanism for reducing re-uptake is formed by a downward lip 8 on the edge at the underside of the baffle plate 7. This lip 8 re-directs the eddy current flow in the center of the bin, to downward and away from the gap 10 in the baffle plate.
[0029] In the center of the separator section is a vortex tube 15 or outlet tube which is typically of the same diameter as, or slightly larger diameter than the inlet tube. The vortex tube 15 extends vertically from the top of the separator to about midway or slightly below the inlet tube. The space between the baffle and the bottom of the vortex tube can be left open, but preferably this space enclosed with a generally cylindrical cage structure 16 covered with a fine mesh 17, typically a 4242 woven stainless steel screen. This mesh 17 reduces air turbulence and resistance and thus increases airflow while also preventing the excess of dust that may flow into the filter air in event of the overfilling of the collection bin.
[0030] The vortex tube assembly may or may not also support the baffle assembly. If the Vortex tube is supporting the baffle, a fastener 18 (see enlargement in
[0031] The baffle plate 7 may have a cup section 19 concentric and roughly equal in diameter to the vortex tube. This cup section serves as a storage area for dust that has been back charged from the filter during pulse cleaning, as described later.
[0032] In addition, this cup section 19 may also have a drop valve arrangement that automatically empties stored back-charged dust. This drop valve here consists of an inverted conical cup 21 that rides on a central shaft 22. During regular operation, this cup 21 is held closed against the collection cup 19 by the pressure differential between the collection bin 24 and the separator section 2. When the blower(s) are turned off or during pulse cleaning, the cup drops down and opens the cup section 19. The back-charged dust drops directly into the bin 24 below. The drop valve cup 21 is made of metal or molded plastic and has a conical surface 23 that mates with the cup section 19 and is steeply angled so as to be self-cleaning.
[0033] In some applications, such as collecting concrete grinding dust which is very fine and bridges easily, a baffle without a drop valve in the cone may be better suited. To help prevent bridging, a weighted chain can extend through the opening in the baffle cone to break up any bridging of the dust.
[0034] The base of the separator section is supported with a steel base ring 47 welded in place. This ring 47 has a standard arrangement of holes that are available to allow the attachment of optional accessories, such as a wall bracket, a heavy-duty cart, a hopper assembly, etc.
[0035] The separator section base ring 47 is held to the collection bin 24 with a steel clamp ring 49 and with a gasket 50 to seal against air leaks.
[0036] The wall bracket and cart may incorporate a bin lift mechanism that will raise the empty bin off the floor and lower the bin when full to the floor. This mechanism may be foot or hand operated. The cart may also lift the bin by picking it off the floor by first griping the drum at floor level and lifting the drum by tilting the cart backwards.
[0037] The collection bin 24 may comprise a pail or drum of standard or custom construction in fiber, metal or plastic. The bin may have wheels, casters, glides or a dolly to allow easy rolling. In the standard arrangement of the dust collector, the collection bin 24 serves as a base for the rest of the unit. Options for supporting the drum and the rest of the unit include a wall mount bracket, a heavy duty wheeled cart or a hopper and valve assembly. The wall mount bracket and heavy duty cart may include a lift mechanism that allows the collection bin to be lifted into place and lowered to the floor when full.
[0038] For the safe and convenient disposal of dust, the collection bin 24 may include a disposable liner bag 53. To prevent the air behind the bag to expand and cause the bag to be sucked upwards into the separator, a vinyl tube 52 is connected via a barbed fitting through the bin wall 51 of the collection bin, and through the wall 54 of the filter section 26. The air pressure in the filter section is lower than the air pressure in the bin, so this pressure differential pulls the liner bag back against the bin wall.
[0039] To detect dust levels in the bin and help avoid overfilling the bin 24, a clear window [55] may be included. Typically, this consists of a clear, die cut polycarbonate plastic window, sealed and bolted over a hole in the side wall in towards the top of the bin. When the dust fills the bag to the window, it is easy to see the difference in appearance. An alternate or additional level detection method may use a proximity sensor such as an infrared or ultrasonic sensor and alarm device, e.g., dust level sensor arrangement (U.S. Pat. No. 8,514,090).
[0040] An additional option available is a collection hopper with a dump valve that stores the dust during operation under negative pressure and, when the unit is turned off, manually dumps the dust into a bag positioned below the hopper. The bag can be a conventional individual bag or a tubular bag with dispenser such as a Longo bag device.
Filter Section:
[0041] The filter section 26 favorably can be formed of a cylindrical chamber approximately the same diameter as the separator Here, one or more final filters 27 can be arranged so the air flows from inside out or outside in and there can be one, two, or multiple filters. Typically, pleated HEPA media is used, formed into a cylinder or a conic frustum, open at one end 28 and closed at the other. The open end allows the filtered air to flow to the respective associated blower motor 30.
[0042] The filter section 26 is attached atop the separator section 2 with a band clamp 46 that engages a rolled edge so that the line between the two sections is sealed against air leakage.
[0043] In the case of multiple cartridge filters, there may be partitions 29 separating the filters which assist in the pulse cleaning. These partitions prevent the back-pulsed dust from re-entraining on a neighboring filter.
[0044] The filter section 26 is separated from the separator section 2 by either a conical divider such as the top plate 6, or alternatively a flat plate with a collar. This collar may be part of the vortex tube 15 and or part of a tray that is the shape of an open-topped toroid.
Motor Blower Section
[0045] The low profile, high pressure design uses one, two, or three high speed blowers 30 each producing 50 to 90 inches of water pressure at 130 to 150 CFM of air flow. These blowers are supported on a steel plate 40 with their inlets facing downward to communicate with the filter section.
[0046] The blowers and associated motors are supported as necessary and arrangements are provided for exhausting the work air as well as supplying cooling air, and the exhausting of the cooling air. One arrangement uses a hold down plate 42 to position the blower and its riser tube 41 to create clearance for the pulse valve, described shortly. A second hold down plate 43 isolates the incoming motor cooling air from the hot exhaust cooling air and working air.
[0047] A cowling or outer blower cover 31 is provided that protects the motor assembly, channels the cooling and working air as required and absorbs sound.
[0048] A Magnetic motor starter can provide overload protection as well as remote starting via a hand-held pendant. Alternatively, a single-pole or double-pole switch can be used.
Pulse Cleaning,
[0049] During use, the filter(s) gradually become blocked and need cleaning. A pulse valve mechanism allows cleaning without removing the filters. To clean the filter or filters, the blower(s) 30 are left running, the inlet is closed off using the blast gate 33 on the system inlet tube 1. This causes a buildup of negative pressure. The pulse valve or valves are then opened via hand operated levers 31 allowing a pulse of air to enter the filters from the clean side to the dust side. This reverse air flow pushes dust off the filter media while flexing the media, which assists in removing the dust. Multiple pulses are required and will typically maintain the filter(s) at 80% of the performance of a new filters.
[0050] Alternately, a mechanized pulsing can be used. Solenoid or motor operated mechanism can open and close the pulse valve. A pilot valve mechanism can use the higher differential pressure that occurs when a filter is overloaded to activate a pulsing valve to utilize the systems negative pressure to create a reverse pulse.
[0051] When a single filter is used, a valve consisting of a lever and a single or multiple plates that cover openings in the motor plate may be used. For multiple filters a concentric valve plate arrangement is used. This is a flat plate 32 with a gasket seal and lift lever 31 that is concentric to the inlet tube 41 for the respective blower(s) 30. A plan arrangement of this is illustrated in
[0052] The dust removed from the filters falls downward. In the illustrated arrangement the conical top late 6 acts to funnel the dust downward into the baffle cup 19 to be stored. During pulsing or when the unit is turned off, the drop valve 21 opens due to pressure equalization, allowing the downward flow of dust into the collection bin 24. As explained above, for some applications it is preferred to eliminate the drop valve and leave the bottom of the cone open to the bin.
[0053] An alternate arrangement may employ a toroid section tray below the filter(s) to catch the back-pulsed dust, which may then be emptied manually. An additional advantage of this arrangement is that it acts as secondary separation when the expanding dust laden air expands as it exits the vortex tube and allows some of the dust to drop out before it reaches the filter(s) 27.
[0054]
[0055] Many variations of this LPHP system can be constructed according to the main principles of this invention, and as mentioned before, the principles can be applied to an LPLP (low-profile, low-pressure) dust collection system, where that would be appropriate.