CROSS FLOW TABLE
20170095892 ยท 2017-04-06
Inventors
Cpc classification
B25H1/20
PERFORMING OPERATIONS; TRANSPORTING
B24B55/00
PERFORMING OPERATIONS; TRANSPORTING
B08B15/023
PERFORMING OPERATIONS; TRANSPORTING
B23K37/006
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23K37/00
PERFORMING OPERATIONS; TRANSPORTING
B24B55/00
PERFORMING OPERATIONS; TRANSPORTING
B23K37/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A crossflow table having a housing and a work surface. The housing includes an air intake path in fluid communication with the work surface. The air intake path has an intake entrance and intake exit. A filter and blower unit are positioned adjacent the intake exit. An air exhaust path has an exhaust entrance and exhaust exit. The exhaust entrance is adjacent the filter and blower unit. The air intake path and air exhaust path generally extend parallel to one another. The filter and blower unit draw air into the air intake path at the intake entrance and pull the air though the air intake path where the air exhausts into the filter and blower unit at the intake exit. The blower unit then pushes the air into the air exhaust path at the exhaust entrance and forces the air through the air exhaust path and out the exhaust exit. Due to the intake and exhaust paths being generally parallel to one another, the crossflow table is very compact in overall dimensions.
Claims
1. A crossflow table comprising: a housing having a top panel, side panels, a back panel and a front panel; a work surface positioned within said housing defining an open work space area, said open work space area being defined by side walls and a back wall; an air intake mounted above said work surface said air intake positioned adjacent said top panel and said back wall and an air exhaust positioned adjacent said back panel and said top panel; an inner wall positioned between said back panel and said back wall, said inner wall being generally parallel to said back panel and said back wall, and an interior floor spaced from said work surface and generally parallel to said work surface, said inner wall extending from said top panel to said interior floor; a filter compartment positioned between said work surface and said interior floor; a filter mounted within said filter compartment; a blower compartment positioned below said interior floor in operative communication with said filter compartment; a blower mounted within said blower compartment; an intake air flow path defined by said back wall and said inner wall, said intake air flow path being in operative communication with said filter compartment and said air intake, whereby said blower draws air into said air intake, through said air intake flow path and through said filter; a filtered air plenum defined by said back panel and said inner wall, said filtered air plenum being in operative communication with said blower compartment, whereby filtered air is exhausted from said blower compartment through said filtered air plenum and out said air exhaust.
2. The crossflow table of claim 1, further including a spark arrestor mounted in said air intake.
3. The crossflow table of claim 1, further including a pulse tube for reverse pulsing compressed air into said filter to clean said filter.
4. The crossflow table of claim 1, further including at least one trough positioned within said filter compartment for collecting debris.
5. The crossflow table of claim 4, wherein said trough extends from said front panel to said interior back wall.
6. The crossflow table of claim 4, further including a suction chamber in fluid communication with said trough, said suction chamber allowing the withdrawal of debris from said trough through said suction chamber.
7. The crossflow table of claim 6, further including a suction gap at the base of said trough, said suction gap in fluid communication with said suction chamber.
8. The crossflow table of claim 7, wherein said suction gap extends the length of said trough.
9. The crossflow table of claim 1, wherein said side panels and back panel are unobstructed whereby additional crossflow tables can be abutted against said side panels or back panels to form an array of crossflow tables.
10. A crossflow table comprising: a housing; a work surface; said housing including an air intake path in fluid communication with said work surface, said air intake path having an intake entrance and intake exit; a filter and blower unit positioned adjacent said intake exit; an air exhaust path having an exhaust entrance and exhaust exit; said exhaust entrance being adjacent said filter and blower unit; said air intake path and air exhaust path generally extending parallel to one another; whereby said filter and blower unit draw air into said air intake path at said intake entrance and pull the air though the air intake path where the air exhausts into said filter and blower unit at said intake exit, said blower unit then pushing the air into said air exhaust path at said exhaust entrance and forcing the air through said air exhaust path and out said exhaust exit.
11. The crossflow table of claim 10, wherein said housing has an inner wall, said air intake path and said air exhaust path are separated by said inner wall.
12. The crossflow table of claim 11, wherein said housing has a back panel and said work surface has a back wall, said an inner wall is positioned between said back panel and said back wall, said inner wall being generally parallel to said back panel and said back wall.
13. The crossflow table of claim 12, wherein said housing further includes an interior floor spaced from said work surface and generally parallel to said work surface, said inner wall extending interior floor.
14. The crossflow table of claim 10, further including a spark arrestor mounted within said intake entrance.
15. The crossflow table of claim 10, further including a pulse tube for reverse pulsing compressed air into said filter to clean said filter.
16. The crossflow table of claim 10, further including at least one trough positioned within said housing for collecting debris.
17. The crossflow table of claim 16, further including a suction chamber in fluid communication with said trough, said suction chamber allowing the withdrawal of debris from said trough through said suction chamber.
18. The crossflow table of claim 17, further including a suction gap at the base of said trough, said suction gap being in fluid communication with said suction chamber.
19. The crossflow table of claim 18, wherein said suction gap extends the length of said trough.
20. The crossflow table of claim 16, wherein said housing has two troughs positioned on opposite sides of said filter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION OF A PREFERRED EMBODIMENT
[0021] The cross flow table of the present invention is shown generally at 10 in
[0022] Fork lift pockets 32 are provided on the bottom 20 to facilitate easy movement of the table 10 by a forklift. It will be appreciated by those of ordinary skill that other moving devices could be used to move the table 10, such as for example, wheels, tracks, skids, etc.
[0023] The cross flow housing 10 has a work surface 22, side walls or partitions 24 and an exposed back wall 26 defining an open workspace area. Positioned between the top panel 12 and the back wall 26 is an air intake 28 which in the disclosed embodiment includes a spark arrestor, see
[0024] The cross flow table can also include front access panels 38 and 40 which provide easy access to the blower unit which includes the motor and blower 50 and 52 respectively shown in
[0025] Additionally in
[0026] With reference to
[0027] In the disclosed embodiment, the filter 36 is a hollow cylindrical style filter. It will be appreciated by those of ordinary skill in the art that other types of filters could be used, for example flat filters, bag filters, etc.
[0028] Referring more specifically to
[0029] With reference to
[0030] The pulse tube 54 is used to inject compressed air into the interior of filter 36 to blow contaminants off the outer surface of filter 36 into a collection trough 59. In the disclosed embodiment, there are two collection troughs 59 on opposed sides of the filter 36. When the gauge, not shown, coupled through the gauge access port 42 indicates that the filter 36 has reached a certain level of contamination, the operator through manual operation will reverse pulse compressed air through the pulse tube 54 to create a positive pressure within the filter 36 blowing the contaminant from the outside of the filter 36 into the collection trough 59. In this way, the filter 36 can be repeatedly cleaned during operation and increase the life of the filter 36 substantially.
[0031] With reference to
[0032] In the disclosed embodiment, the collection trough 59 extends the full-length from the front panel 14 to the interior work area back wall 26. A suction gap 65 is created between the dust collection walls 62 and 64 and the interior floor 60. This gap in the disclosed embodiment is approximately 3/16 inches wide and extends the length of the collection trough 59. The gap 65 is in fluid communication with a suction chamber 67 which is in turn in fluid communication with the cleanout ports 44 and 46. In operation, a suction device, such as a shop vacuum with a hose and nozzle attachment can be inserted in to the ports 44 and 46 to create a vacuum within the suction chamber 67. This in turn creates a large vacuum at the very small gaps 65 to then suck the contaminants within the collection trough 59 through the gap 65 and out the ports 44 and 46 respectively.
[0033] In operation, a worker, for example a welder, will weld upon the work table 22 creating welding fumes. The blower motor 50 will be energized and blower fan 52 will pull air within the work area into the air intake 28. The air is then pulled through the intake air flow path and into the filter 36. The filter 36 allows air to pass through and retains the contaminants in the filter 36. The filtered air then passes through the exhaust flow path 49 and exits through the air exhaust 30.
[0034] As the contaminants accumulate on the filter 36, the effectiveness of the filter 36 is reduced. At a pre-determined accumulation, the filter 36 must be cleaned to ensure continued effectiveness. The differential pressure minihelic gauge will indicate when the filter 36 needs to be cleaned. Once the gauge indicates that cleaning is needed, the operator will manually initiate the cleaning cycle.
[0035] The cleaning cycle includes the reverse pulse of compressed air into the pulse tube 54. The pulse tube 54 injects compressed air into the interior of the filter 36. The compressed air blows the contaminants from the filter 36 and into the trough 59. The cleaning process can be done during operation of the blower motor 50 or when the blower motor 50 is not operational. The particulate from the filter 36 accumulates in the trough 59 and can be removed through the ports 44 and 46. To remove the accumulated particulates, a vacuum, such as a shop vacuum is inserted into the ports 44 and 46 to suck out the particulates. As described above, the particulates are pulled through the gap 65 into the suction chamber 67 and into to the vacuum.
[0036] The foregoing invention has been described in accordance with the relevant legal standards, thus the description is exemplary rather than limiting in nature. Variations and modifications to the disclosed embodiment may become apparent to those skilled in the art and do come within the scope of the invention. Accordingly, the scope of legal protection afforded this invention can only be determined by studying the following claims.