Metal foundation system for culverts, buried bridges and other structures
11174614 ยท 2021-11-16
Assignee
Inventors
- Brian N. Flint (Mason, OH, US)
- Darrell J. Sanders (Mason, OH, US)
- Matthew L. Westrich (Cincinnati, OH, US)
Cpc classification
E02D2250/0023
FIXED CONSTRUCTIONS
E01D18/00
FIXED CONSTRUCTIONS
E01D19/00
FIXED CONSTRUCTIONS
E01D21/00
FIXED CONSTRUCTIONS
E02D2300/0032
FIXED CONSTRUCTIONS
International classification
E02D29/05
FIXED CONSTRUCTIONS
E01D19/00
FIXED CONSTRUCTIONS
E01D18/00
FIXED CONSTRUCTIONS
E01D21/00
FIXED CONSTRUCTIONS
Abstract
A bridge system uses foundation structures that are formed of the combination of a metal-frame structure and cast-in-place concrete. The metal-frame structure of the foundation is capable of supporting bridge units before pouring of concrete.
Claims
1. A metal foundation unit for use in constructing a combination metal and cast-in-place concrete foundation structure, the metal foundation unit comprising: a first elongated upright metal wall member and a second elongated upright metal wall member spaced apart from the first elongated upright wall member to define a channel therebetween, and multiple upright metal supports located within the channel, each of the multiple upright metal supports extends laterally between the first elongated upright metal wall member and the second elongated upright metal wall member to (i) define multiple spaced apart cells along a length of the channel and (ii) rigidly connect the first elongated upright metal wall member to the second elongated upright metal wall member, each of the multiple cells is open at the top, a receiving slot is located atop each of the multiple upright metal supports, at least some of the multiple upright metal supports include at least one flow opening extending from cell to cell for permitting cast-in-place concrete to flow from one cell through the upright metal support to another cell during concrete pouring and multiple reinforcement openings through which elongated reinforcement can be passed from cell to cell prior to concrete pouring; wherein at least one reinforcement opening includes a spacing gusset inserted therein and which supports longitudinal reinforcement within the at least one reinforcement opening in a position that prevents contact between the longitudinal reinforcement and an inner edge of the at least one reinforcement opening.
2. A combination metal and cast-in-place concrete foundation structure incorporating the metal foundation unit of claim 1, located at a bridge installation site, comprising: cast-in-place concrete within the channel of the metal foundation unit along with longitudinal and lateral steel reinforcement embedded in the cast-in-place concrete, wherein the cast-in-place concrete substantially closes each cell from top to bottom, and cast-in-place concrete is located within flow openings of the upright metal supports.
3. A bridge system including the combination metal and cast-in-place concrete foundation structure of claim 2, wherein a bottom of one sidewall of a bridge structure lies within the receiving slots and is embedded within the cast-in-place concrete.
4. The bridge system of claim 3 wherein the bridge structure is a metal bridge of arch-shaped corrugated metal plate construction.
5. The metal foundation unit of claim 1 wherein a lower support surface of each receiving slot is defined at least in part by a bracket welded to a side of the metal plate.
6. The metal foundation unit of claim 5 wherein each bracket includes an upright mounting flange welded to the metal plate and a support flange extending laterally from the mounting flange to at least in part define the lower support surface.
7. The metal foundation unit of claim 1 wherein the first elongated upright metal wall member is of metal plate construction and the second elongated upright metal wall member is of metal plate construction.
8. The metal foundation unit of claim 7 wherein each cell is open at the bottom, the metal plate of the first elongated upright metal wall member includes a bottom bend forming a lateral ground surface seating flange and the metal plate of the second elongated upright metal wall member includes a bottom bend forming a lateral ground surface seating flange.
9. The metal foundation unit of claim 8, wherein each lateral ground surface seating flange is located within the channel.
10. The metal foundation unit of claim 1 further comprising a plurality of stabilizing members at the bottom of the metal foundation unit for inhibiting sliding movement of the metal foundation unit on a ground surface.
11. The metal foundation unit of claim 10 wherein the stabilizing members comprise a plurality of metal straps extending laterally across the bottom of the channel, each metal strap having at least one opening therein for receiving a stake.
12. The metal foundation unit of claim 11 wherein each metal strap includes a first end portion exterior of the channel and a second end portion exterior of the channel, the first end portion including at least one stake opening and the second end portion including at least one stake opening.
13. The metal foundation unit of claim 10 wherein each stabilizing member comprises (i) a stake opening in a portion of metal plate that is either internal of the channel or external of the channel and/or (ii) a downwardly projecting metal member at the bottom of the metal foundation unit and that is either internal of the channel or external of the channel.
14. The metal foundation unit of claim 1 wherein each upright metal support is of metal plate construction, a first end of the metal plate is fixed to a first bracket mounted on an interior side of the first elongated upright metal wall member and a second end of the metal plate is fixed to a second bracket mounted on an interior side of the second elongated upright metal wall member.
15. The metal foundation unit of claim 1 wherein the receiving slot of each of the multiple metal supports is located entirely within the channel.
16. A bridge system, comprising: a first combination metal-frame and cast-in-place concrete foundation structure defined by the combination metal-frame and cast-in-place concrete foundation structure of claim 2; a second combination metal-frame and cast-in-place concrete foundation structure, including a second metal foundation unit defining a second channel and cast-in-place concrete within the second channel, wherein the second combination metal-frame and cast-in-place concrete foundation structure is spaced from the first combination metal-frame and cast-in-place concrete foundation structure; a metal span bridge structure having spaced apart first and second sidewalls and an interconnecting top wall, a bottom portion of the first sidewall supported by the first combination metal-frame and cast-in-place concrete foundation structure and at least partly embedded in the cast-in-place concrete of the first combination metal-frame and cast-in-place concrete foundation structure, and the bottom portion of the second sidewall supported by the second combination metal-frame and cast-in-place concrete foundation structure and at least partly embedded in the cast-in-place concrete of the second combination metal-frame and cast-in-place concrete foundation structure.
17. A foundation unit for use in constructing a combination metal and cast-in-place concrete foundation structure, the foundation unit comprising: a first elongated upright metal wall member and a second elongated upright metal wall member spaced apart from the first elongated upright wall member to define a channel therebetween, and multiple upright metal supports located within the channel, wherein the multiple upright metal supports extend laterally between the first elongated upright metal wall member and the second elongated upright metal wall member to (i) define multiple cells along a length of the channel and (ii) rigidly connect the first elongated upright metal wall member to the second elongated upright metal wall member, wherein each of the cells is open at the top, wherein at least one upright metal support includes at least one flow opening extending therethrough for permitting cast-in-place concrete to flow from a first one of the cells through the upright metal support to a second one of the cells during concrete pouring, wherein at least one of the upright metal supports includes at least one reinforcement opening, wherein a spacer is located in the at least one reinforcement opening and supports a longitudinal reinforcement within the at least one reinforcement opening in a position that prevents contact between the longitudinal reinforcement and an inner edge of the at least one reinforcement opening, wherein the spacer is formed of a plastic material and includes a substantially central support collar formed by opposed arcuate segments, and a top of the support collar is open.
18. The foundation unit of claim 17, wherein the spacer snap-fits into the at least one reinforcement opening.
19. A foundation unit for use in constructing a combination metal and cast-in-place concrete foundation structure, the foundation unit comprising: a first elongated upright metal wall member and a second elongated upright metal wall member spaced apart from the first elongated upright wall member to define a channel therebetween, and multiple upright metal supports located within the channel, wherein the multiple upright metal supports extend laterally between the first elongated upright metal wall member and the second elongated upright metal wall member to (i) define multiple cells along a length of the channel and (ii) rigidly connect the first elongated upright metal wall member to the second elongated upright metal wall member, wherein each of the cells is open at the top, wherein at least one upright metal support includes at least one flow opening extending therethrough for permitting cast-in-place concrete to flow from a first one of the cells through the upright metal support to a second one of the cells during concrete pouring, wherein at least one of the upright metal supports includes at least one reinforcement opening, wherein a spacer is located in the at least one reinforcement opening and supports a longitudinal reinforcement within the at least one reinforcement opening in a position that prevents contact between the longitudinal reinforcement and an inner edge of the at least one reinforcement opening, wherein the spacer includes an inner support collar and a peripheral portion of the inner support collar is open.
20. The foundation unit of claim 19, wherein the spacer includes lead in guides that form an entry throat to the inner support collar.
21. The foundation unit of claim 19, wherein the spacer is formed of a plastic material and snap-fits into the at least one reinforcement opening.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(13) Referring to
(14) As best seen with reference to
(15) Each of the multiple cells 26 is open at both the top and the bottom, and a receiving slot 28 is located atop each of the multiple upright metal plate supports 24. The upright metal plate supports 24 include at least one flow opening 30 extending from cell to cell for permitting cast-in-place concrete to flow from one cell through the upright metal support to another cell during concrete pouring and multiple reinforcement openings 32 through which elongated reinforcement can be passed from cell to cell prior to concrete pouring, as will be described in further detail below.
(16) Generally, the upright metal supports 24 may be connected to the upright walls 20 in any suitable manner (e.g., welding, rivets, nuts and bolts etc.) that provides sufficient rigidity and strength to the metal-frame foundation unit. In the illustrated embodiment, each upright metal support 24 has ends fixed (e.g., by welding) to respective brackets 34 mounted (e.g., welded) at the interior sides of the upright metal walls 20. Here, each bracket is an angle member with one flange 36 seated against the interior side of the wall 20 and one flange 38 seated against one side of the support 24.
(17) In the illustrated embodiment, the receiving slots 28 are formed by a cut-out at the top of the metal plate. A lower support surface 40 of each receiving slot 28 is defined at least in part by a bracket 42 fixed (e.g., bolted or welded) to a side of the metal plate support 24. Each bracket 42 includes an upright mounting flange 44 adjacent metal plate and a support flange 46 extending laterally from the mounting flange to at least in part define the lower support surface 40.
(18) Each of the metal plate walls 20 includes a bottom bend 50 forming a lateral ground surface seating flange 52. The seating flange 52 helps support the metal-frame foundation unit against sinking into the ground during installation. The bend 50 also provides additional overall rigidity to the overall metal-frame foundation unit structure. Here, each lateral ground surface seating flange 52 is located within the channel 22. In alternative embodiments the bends could be outward to place the seating flanges 52 exterior of the channel. In addition, the flanges could be sized larger, such as to abut or overlap and effectively close the bottom of the channel. A separate bottom panel could also be connected between the bottoms of the metal plate walls to close the bottom of the channel.
(19) A plurality of stabilizing members 60 are located at the bottom of the metal foundation unit for inhibiting sliding movement of the metal foundation unit on a ground surface (e.g., during backfill and/or concrete pouring). Generally, the stabilizing members may take any suitable configuration, such as a stake opening in a portion of metal plate that is either internal of the channel or external of the channel and/or a downwardly projecting metal member at the bottom of the metal foundation unit and that is either internal of the channel or external of the channel. In the illustrated embodiment, the stabilizing members 60 are formed by a plurality of metal straps 62 extending laterally across the bottom of the channel 22 and below the metal plate walls 20. The straps 62 may be welded or otherwise fixed to the wall seating flanges 52. Each metal strap includes end portions 64 exterior of the channel 22 and having a respective stake opening 66 through which a stake or spike can be driven into the ground when the metal-frame foundation unit is properly positioned on-site for install.
(20) As seen in
(21) In some cases the foundation structure needed at a given installation site may be short enough to permit the use of a single metal-frame foundation unit at each side of the bridge installation, in which case the foundation unit will typically include closed metal plate end walls 80 at the ends of the unit to retain concrete in the channel during the on-site pour.
(22) In other cases the foundation structure needed at a given installation site may require two of more metal-frame foundation units 16 to be connected end to end as shown in
(23) The metal-frame foundation units are shipped to and received at a construction site. In use, a final use/installation site is prepared to receive the metal-frame foundation units by excavating to the desired elevation in a smaller area than traditional methods and preparing a level subsurface which may include additional backfill materials on which to install the units.
(24) Once the site is prepared to receive the metal-frame foundation units 16, the units are placed to form two spaced apart foundation structures 12. Once the metal-frame foundation units 16 are set in desired positions (with or without the use of stakes or spikes 88), the reinforcement can be manually placed and/or adjusted if needed (i.e., in cases where the reinforcement was not incorporated prior to shipping to the job site) and the bridge structure 10 placed (as a single unit or by interconnecting multiple pieces) atop the metal-plate supports 24. In this regard, as shown in
(25) While embedment of the bottom ends of the bridge structure is contemplated, in some instances the concrete may be poured in the U-shaped foundation prior to the bridge being set in place.
(26) With respect to lengthwise reinforcement 70, support for such reinforcement within the openings 32 of the metal plate supports 24 may be provided. In this regard, reference is made to
(27) The spacing gusset 110 includes an outer flange 120 with one face 122 that is substantially planar so as to seat flushly against one face 25 of the metal support plate 24 when the gusset is installed. A plurality of circumferentially spaced latching fingers 124 extend from the outer flange 120, and each finger includes a ramped portion 126 that leads to an outwardly facing lip 128 that faces the seating face 122 of the flange 120. The fingers are sized such that the ramped portions 126 engage the edge of the opening 32 during insertion, causing the fingers to flex slightly until the spacing gusset is fully seated in the opening and the fingers spring back out so that the lips 128 extend out beyond the opening edge and retain the spacing gusset in the opening per the depiction in
(28) The combination metal-frame and cast-in-place concrete foundation structures described herein can be utilized to support bridge structures other than metal plate bridge structures. Moreover, other types of structures could be supported as well. On-site time and expense associated with foundation placement is reduced (e.g., the need for form placement and much of the reinforcement placement is eliminated).
(29) It is to be clearly understood that the above description is intended by way of illustration and example only and is not intended to be taken by way of limitation, and that changes and modifications are possible. For example, the metal foundation units could also be used to establish the foundations for wingwalls of a bridge system. Accordingly, other embodiments are contemplated and modifications and changes could be made without departing from the scope of this application.