Two-piece polygon shaped metal fin tube foundation and method of making same
10422097 ยท 2019-09-24
Assignee
Inventors
Cpc classification
E02D2300/0032
FIXED CONSTRUCTIONS
E02D2600/20
FIXED CONSTRUCTIONS
E02D5/285
FIXED CONSTRUCTIONS
International classification
E02D7/00
FIXED CONSTRUCTIONS
Abstract
A metal fin tube foundation includes a pair of coupled metal plates, each plate being comprised of a plurality of flat panels, wherein each panel is positioned at an angle relative to an adjacent panel, and each plate including a fin on each lateral end of each plate, wherein each fin overlaps a fin of the other metal plate forming two pairs of overlapped fins, wherein the plates are coupled along each of the two pairs of overlapped fins; wherein the plurality of panels of the coupled two metal plates form a closed perimeter polygon shape having an open interior and wherein each pair of overlapped fins form a combined fin element which extends away from the perimeter of the polygon.
Claims
1. A metal tube fin foundation comprising: a pair of metal plates, each plate being comprised of a plurality of flat panels, wherein each panel is positioned at an angle relative to an adjacent panel, and each plate including a fin on each lateral end of each plate, wherein each fin overlaps a fin of the other metal plate forming two pairs of overlapped fins; a coupling of the pair of metal plates along each of the two pairs of overlapped fins for coupling the two plates; wherein the plurality of panels of the coupled two metal plates form a closed perimeter polygon shape having an open interior and wherein each pair of overlapped fins form a combined fin element which extends away from the perimeter of the polygon, wherein a distal end structure of the flat plates and fins are angled relative to a longitudinal axis of the foundation; and further including a top plate immediately adjacent to a proximal end of the metal plates and fastened to at least one panel of each metal plate.
2. The metal tube fin foundation according to claim 1 wherein the pair of combined fin elements extend along a common plane, and at least one fin is spaced from the vertices of the polygon.
3. The metal tube fin foundation according to claim 1 wherein the coupling of the pair of plates includes a plurality of mechanical fasteners along each of the two pairs of overlapped fins for mechanically fastening the two plates; and wherein the top plate has a central opening.
4. The metal tube fin foundation according to claim 1 wherein the closed perimeter polygon shape includes five to twelve panels.
5. The metal tube fin foundation according to claim 1 wherein both plates include the same number of panels.
6. The metal tube fin foundation according to claim 1 wherein both plates are substantially identical, whereby the number and width of panels of each plate is the same and the width of the fins is the same.
7. The metal tube fin foundation according to claim 1 wherein the closed perimeter polygon shape is formed of panels of substantially equal width.
8. The metal tube fin foundation according to claim 1 wherein the closed perimeter polygon shape is formed of substantially identical angles between adjacent panels.
9. A method of formation of metal tube fin foundations comprising the steps of: a. Nesting a plurality metal plates in one or more nested stacks, each plate being comprised of a plurality of flat panels, wherein each panel is positioned at an angle relative to an adjacent panel, and each plate including a fin on each lateral end of each plate wherein a distal end structure of the flat plates and fins are angled relative to a longitudinal axis of a foundation formed by the metal plate; b. Transporting the nested plurality of metal plates to a foundation installation location; c. Aligning the fins of a pair of metal plates from the nested plurality of metal plates, whereby each fin overlaps a fin of the other metal plate forming two pairs of overlapped fins; d. coupling the pair of metal plates along each of the two pairs of overlapped fins, wherein the plurality of panels of the coupled two metal plates form a closed perimeter polygon shape having an open interior and wherein each pair of overlapped fins form a combined fin element which extends away from the perimeter of the polygon; and e. fastening a top plate immediately adjacent to a proximal end of the metal plates to at least one panel of each metal plate; f) Repeating steps C.
10. The method of formation of metal tube fin foundations according to claim 9 wherein the pair of combined fin elements for each foundation extend along a common plane, and at least one fin is spaced from the vertices of the polygon.
11. The method of formation of metal tube fin foundations according to claim 9 further including prior to the nesting of the metal plates the steps of cutting each metal plate from a flat metal plate and bending each cut flat metal plate to form the metal plates that are nested.
12. The method of formation of metal tube fin foundations according to claim 9 wherein the coupling of the metal plates includes mechanically fastening the pair of metal plates with a plurality of mechanical fasteners along each of the two pairs of overlapped fins.
13. The method of formation of metal tube fin foundations according to claim 9 wherein the closed perimeter polygon shape for each foundation includes five to twelve panels.
14. The method of formation of tube fin foundations according to claim 9 wherein both plates for each foundation include the same number of panels.
15. The method of formation of metal tube fin foundations according to claim 9 wherein both plates for each foundation are substantially identical, whereby the number and width of panels of each plate is the same and the width of the fins is the same, and wherein the top plate has a central opening.
16. The method of formation of metal tube fin foundations according to claim 9 wherein the closed perimeter polygon shape for each foundation is formed of panels of substantially equal width.
17. The method of formation of metal tube fin foundations according to claim 9 wherein the closed perimeter polygon shape for each foundation is formed of substantially identical angles between adjacent panels.
18. A metal tube fin foundation for post mounted signs, comprising: a pair of metal plates, each plate being comprised of a plurality of flat panels, wherein each panel is positioned at an angle relative to an adjacent panel, and each plate including a fin on each lateral end of each plate, wherein each fin overlaps a fin of the other metal plate forming two pairs of overlapped fins; a coupling of the pair of metal plates along each of the two pairs of overlapped fins for coupling the two plates; wherein the plurality of panels of the coupled two metal plates form a closed perimeter polygon shape having an open interior configured as a post receiving sleeve for receipt of a post and wherein each pair of overlapped fins form a combined fin element which extends away from the perimeter of the polygon, wherein a distal end structure of the flat plates and fins are pressed together to close the polygon and form a sealed distal end to the metal tube fin foundation meeting at a center of the foundation.
19. A metal tube fin foundation for post mounted signs according to claim 18 wherein the polygon shape is a rectangle of about 46.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(11) As detailed below, and particularly shown in
(12) The two piece metal fin tube foundation 100 will be pre-engineered and generally delivered to the job site ready to assemble and install in a fraction of the time it takes to install competing concrete foundations with virtually no digging and minimal equipment, allowing the foundations to be quickly and easily installed in various soil conditions and in any weather.
(13) The structure that the two piece metal fin tube foundation 100 is designed to support can be mounted to the two piece metal fin tube foundation 100 immediately following insertion. The two piece metal fin tube foundation 100 is far more cost effective than prior art metal fin pipe foundations due to easier and faster fabrication, the ability to select a wide variety of sized plate thicknesses (rather than be limited to standard pipe thickness), and the ability to transport to the job site at a fraction of the cost. As described in greater detail below the two piece metal fin tube foundation 100 is more cost effective in design than the known non-welded metal fin tube foundation, such as disclosed in U.S. Patent Publication 2013-0322970 (which is incorporated herein by reference) due to the top plate construction and the provision of a two piece dual fin polygon body design shown herein. The foundation 100 of the present invention also maintains all of the advantages of U.S. Patent Publication 2013-0322970.
(14) One key aspect of the present invention is the ability to select the plate thickness for plate 20 (with panels 24 and fins 26) that is needed for the associated foundation application. Steel plates 10 come in a far greater range of thicknesses and grades than do conventional pipes. Thus for the vast majority of applications the two piece metal fin tube foundation 100 of the present invention will be designed with a lighter steel plate 10 than a comparable metal fin pipe foundation which typically will select a larger pipe size than needed. The two piece metal fin tube foundation 100 will be engineered for the given application, which will take into account the structure being supported on the two piece metal fin tube foundation 100, the environmental conditions on the associated structure supported on the two piece metal fin tube foundation 100 and the soil type in which the two piece metal fin tube foundation 100 is placed.
(15) The two piece metal fin tube foundation 100 of the present invention gives that engineer a number of variables to work with to best accommodate and design a given metal fin tube foundation 100, such as the particular number of panels 24 for each plate 20, the relative widths of each panel 24 and the relative widths of each fin 26. It should be noted that the drawings of the non-welded metal fin tube foundation 100 and associated plates 20 are only schematic and the range of sizes of the fins 26 is quite large in practice.
(16) The length of the fins 26 may be considerably larger than the diameter of the tube formed by the panels 24 of the plates 20. A key feature of the two piece metal fin tube foundation 100 is that the panels 24 are flat elements that will resist turning (sometimes called torsional resistance) of the metal fin tube foundation 100, thus the use of the panels 24 allows the metal fin tube foundation 100 to be designed with only a pair of fins formed by combined pairs of fins 26.
(17) The foundation 100 is referenced as a two piece structure because the two plates 20 form the body of the foundation 100 and the top plate 30 may be considered as a base of the structure supported on the foundation 100. Further the foundation 100 may have the plates 20 welded together, or alternatively may use the fasteners 28 and 32 for a weldless configuration. In a weldless configuration for the foundation 100, in addition to the number, length, and width of panels 24 and fins 26, the engineered design will identify the number and position of holes for fasteners 28 and the number and position of holes for fasteners 32 for top plate 30.
(18) Further the engineered design of the foundation 100 will designate the end structure 36 of the fins 26 and the end structure 38 of the panels 24. The end structures 36 and 38 will typically be angled as shown in
(19)
(20) The cut panels 10 are then moved to a bending brake 14, generally called a press brake or brake press. The brake 14 is often identified by basic parameters, such as the force or tonnage and the working length of the brake 14. Additional relevant brake 14 parameters include the amplitude or stroke, the distance between the frame uprights or side housings, distance to the back gauge, and work height. The upper beam usually operates at a speed ranging from 1 to 15 mm/s. Hydraulic brakes produce accurate high quality products are reliable, use little energy and are safer because, unlike flywheel-driven presses, the motion of the ram can be easily stopped at any time in response to a safety device i.e. a light curtain. A back gauge is a device that can be used to accurately position a piece of metal so that the brake puts the bend in the correct place. Furthermore the multi-axis computer-controlled back gauge can be programmed to move between bends to repeatedly make complex parts, back gauges. Optical sensors allow operators to make adjustments during the bending process. These sensors send real-time data about the bending angle in the bend cycle to machine controls that adjust process parameters.
(21) The top plate 30 will follow a similar manufacturing process in that an appropriate plate is selected and is cut to shape on a cutter (laser cutter or plasma cutter or the like) to form the perimeter and the central opening with connecting flanges 34 and with optional holes in the flanges 34 for fasteners 32. The connecting flanges 34 will be bent generally to extend perpendicular to the main portion of the plate 30 via a brake such that each connecting flange 32 will align with an associated panel 24 and holes for the fasteners 32 will align.
(22) After the formed plate 20 exits from the brake 14 and as shown in
(23) The top plates 30 may also be galvanized and these also form a relatively compact structure when grouped so that the capacity of the shipping truck may be fully realized and greatly decrease the shipping costs associated with the foundations 100 compared with prior art foundations, such as metal fin pipe foundations.
(24) On site the non-welded metal fin tube foundations 100 are assembled through the use of mechanical fasteners 28 and 32. Any mechanical fasteners can be utilized such as nuts and bolts huck bolts, rivets, clips, studs and clamps. The invention may be expedited with the use of blind rivets, commonly referred to as pop rivets (POP is the brand name of the original manufacturer, now owned by Stanley Engineered Fastening, a division of Stanley Black & Decker) which rivets are generally tubular and are supplied with a mandrel through the center. Blind rivets for fasteners 28 and 32 may be the most expeditious fasteners and the use of these is extremely well known to make assembly by any workforce easy.
(25) The non-welded metal fin tube foundations 100 of the present invention are better than the conventional metal fin pipe foundations as noted above and further because the bending and forming the multiple different angles between the panels 24 strengthens the structure of the resulting polygon, whereby the thickness of metal can be less than the standard pipe required when using the metal fin pipe foundation.
(26) Also, as noted above current metal fin pipe foundations have the disadvantage of requiring welding which sometimes adds to expense of fabricating the foundations and is environmentally unfriendly. Further the present invention can optionally also eliminate the welding needed for the top plate 30 with the innovative design. Thus the disclosed non-welded embodiment of the metal fin tube foundation 100 eliminates the welding expense and hazards of prior art structures. Further because the foundation is assembled out of plates 20 with integrated fins 26, the foundation 100 can be any practical polygon shape necessary; from a three to twelve sided polygon shape section of tubes. Larger foundations may generally require more sides which increase the number of angles necessary. The more panels 24 that are provided, generally the more obtuse the angle can be between adjacent sections. Additionally the width and relative angles between sections need not be equal. The disclosed metal fin tube foundations 100 allows for a lot of flexibility in engineering designs for foundations. Any practicable size, shape, thickness or length can be accommodated by the disclosed invention. The metal fin tube foundation 100 of the disclosed invention can be comprised of plates 20 generally of steel with any grade and thickness necessary to meet the load requirements of a specific project. The metal fin tube foundation 100 of the disclosed invention can be installed in the ground to any depth by any means known in the art including but not limited to vibrating, puling or driving (see the methods of the above cited patents for more details for installation methods).
(27)
(28) Another use of the two piece foundation 100 of the present invention having an open bottom (i.e. not the sealed or closed bottom embodiment of
(29) The preferred embodiments described above are illustrative of the present invention and not restrictive hereof. It will be obvious that various changes may be made to the present invention without departing from the spirit and scope of the invention. The precise scope of the present invention is defined by the appended claims and equivalents thereto.