Field of the Invention
The present invention is related to the field of pile anchor foundations for supporting tall, heavy and/or large towers or the like which can be subject to high upset forces. More particularly, the present invention is directed to a perimeter pile anchor foundation including a plurality of pile anchors drilled in a circular or generally circular pattern so that adjacent piles overlap and form an arch with compression between the piles to resist soil caving in weak soils.
Description of the Related Art
In known pile anchor foundations, the piles extend downwardly from a foundation cap into the underlying soil and are spaced from one another. Such foundations are limited by soil conditions, as weak or wet soils will cave or sluff when, during construction, the ground under the center of the cap is excavated vertically.
Various forms of concrete foundations utilizing operational features of the instant invention have heretofore been disclosed in my earlier U.S. Pat. Nos. 5,586,417, 7,707,797 and 7,618,217 (“the '217 patent”), the disclosures of which are expressly incorporated herein in this application by reference as if fully set forth in their entirety. However, a need exists for a large deep concrete foundation capable of being constructed in cohesionless sands and weak soils with shallow ground water.
In view of the foregoing, the present invention is directed to a perimeter pile anchor foundation for supporting tower or other structures which may be subject to high upset forces. The foundation is built by drilling a plurality of individual perimeter pile anchors, or “piles”, in a large circular or generally circular pattern. The individual piles are contiguous, each pile overlapping the adjacent piles on either side.
To construct the overlapping piles, the piles are divided into odd and even piles which alternate with one another around the perimeter of the foundation. Either the odd or the even piles may be constructed first. For purposes of this description, the odd piles are selected for forming first. The odd piles are formed by drilling a vertical hole for each pile, filling the hole with concrete, and inserting a centralized bolt vertically in the concrete (the order of the last two steps could be reversed). (The centralized bolts may later be post-tensioned, although post-tensioning is not necessary for the pile anchor bolts.) The concrete in the odd piles is then allowed to preset to a limited degree.
The even piles are arranged in between the odd piles. Therefore, after the concrete of the odd piles has preset, adjacent vertical holes are then drilled. Since the holes overlap to some extent, the concrete of the odd piles is shaved as the auger forms the hole for the even piles. The holes for the even piles are then filled with concrete and provided with vertically oriented centralized bolts in the same manner as with the odd piles.
In one preferred embodiment, the even and odd piles are offset from one another so that the diameter of the circle formed by the even piles is different from the diameter of the circle formed by the odd piles. This offset is typically in the range of one quarter to one half of the pile diameter. As a result, the total perimeter formed by the odd and even piles together is not a perfect circle.
Once the perimeter piles have been formed with the concrete fully set, an annular steel plate formed as a ring having holes therein is then placed on top of the perimeter piles. The centralized pile bolts extend through the holes and are secured with nuts to retain bolt tension. Alternatively, the ring may be formed by a plurality of individual steel plates, one for each pile. Individual steel plates provide for greater flexibility with respect to the adjoining relationship of the piles and the centralized pile bolts.
The perimeter piles form a perimeter wall to stabilize and retain the soil outside the wall. The soil inside the perimeter wall can then be safely excavated to form the large deep concrete foundation with the perimeter wall, without the soil caving or sloughing into the excavation.
An annular steel plate formed as a ring having holes therein is then placed on top of the perimeter piles. The centralized pile bolts extend through the holes and are secured with nuts to retain bolt tension. Alternatively, the ring may be formed by a plurality of individual steel plates, one for each pile. Individual steel plates provide for greater flexibility with respect to the adjoining relationship of the piles and the centralized pile bolts.
According to a first embodiment, a first corrugated metal pipe (CMP), also referred to herein as the outer CMP, is placed vertically in the excavation inside the perimeter wall formed by the contiguous piles leaving an outer annular space between the inside of the perimeter wall and the outside of the outer CMP. A foundation bolt cage, including a plurality of vertically oriented sleeved tower anchor bolts and a horizontally oriented embedment ring, is installed vertically inside the first CMP with the embedment ring at the bottom. According to a first configuration of the first embodiment, the tower anchor bolts are arranged in two concentric circles. In a second configuration of the first embodiment, the bolts are arranged in a single bolt circle. The tower anchor bolts, whether arranged in a single circle or in two concentric circles, are nutted above and below the embedment ring to secure the embedment ring in place near the bottom of the tower anchor bolts and concrete foundation to be formed. A second CMP, also referred to herein as the inner CMP, and smaller in diameter than the first CMP, is installed vertically inside the tower anchor bolts and the embedment ring. This creates an inner annular space between the outer and inner CMPs through which the tower anchor bolts extend vertically.
A concrete plug is then poured in the bottom of the inner CMP, after which the area inside the inner CMP atop the plug is backfilled with soil to approximately five feet below the surrounding ground surface. Electrical, communication, and grounding conduits are installed through the first and second CMPs, the tower anchor bolts, and the perimeter piles, and then backfilling of the inner CMP is completed to within a minimum of about six inches from the top of the inner CMP for the concrete floor 61. The inner annular space between the outer and inner CMPs through which the tower anchor bolts extend vertically is filled to within about three to four inches from the top of the CMPs to create a grout trough. The outer annular space between the inside of the perimeter wall and the outer CMP, and the floor 61 inside the inner CMP, are then filled with concrete. Once the concrete cures, shims are stacked as necessary to support level the tower base section for grouting, the three to four inch grout trough filled with grout, and the tower base section flange set over the tower anchor bolts on top of the shims and nutted at the top against the upper surface of the tower base flange so that the tower anchor bolts can be post-tensioned when connecting and securing the tower to the foundation. The embedment ring is locked into place near the bottom of the foundation by the nutted tower anchor bolts.
According to a second embodiment, after the perimeter piles are formed, only a single CMP, such as the inner CMP is vertically placed in the excavation inside the pile perimeter and spaced therefrom to create an annular ring between the CMP and the piles. A direct embedded section is suspended in position between the piles and the inner CMP. The direct embedded section includes a reinforcing steel cage formed by a loop of rebar having a generally U-shaped cross-section. The loop includes a piece of rebar bent to have a generally vertical inner leg and a generally vertical outer leg joined at the top by a generally horizontal length of the rebar. The bottom of each leg is secured in place with rebar spacing hoops that are wire tied to the leg. The direct embedded section also includes an extension with flanges at the top and bottom thereof. The extension extends above the top of the concrete poured in the annular ring and is used to connect the foundation to the tower to be supported thereon. The direct embedded section takes the place of the tower anchor bolts and embedment ring that are part of the first embodiment.
The remainder of the construction of the second embodiment of the foundation is essentially the same as that already described in connection with the first embodiment, including the pouring of a concrete floor or plug and partial backfilling inside the inner CMP, installation of electrical, communication, and grounding conduits, completion of the backfilling of the inner CMP, and pouring of concrete into the annular ring between the inside of the perimeter wall and the CMP.
When constructed according to either the first or the second embodiment, the ring of overlapping odd and even piles forms an arch between adjacent piles. Compression and friction between the adjacent piles resists soil caving and sloughing pressure when soil inside the generally circular perimeter of the piles is excavated.
Accordingly, one object of the present invention is to overcome the difficulties of constructing deep concrete foundations in weak soil and/or cohesionless sand which are subject to sloughing or caving in when excavated vertically by providing a perimeter pile foundation.
Another object of the present invention is to provide a perimeter pile foundation in accordance with the preceding object that is formed by drilling a plurality of individual pile holes in a large generally circular pattern and filling them with concrete to form a perimeter wall, with the individual piles being contiguous and each pile overlapping the adjacent piles on either side so that the overlapping piles form a continuous arch, with compression between the overlapping piles resisting soil caving and sloughing pressure when soil inside the circle of piles is excavated.
Another object of the present invention is to provide a perimeter pile foundation in accordance with the preceding objects in which a vertical bolt is placed into the concrete of each of the perimeter piles before the concrete stiffens, the bolts extending substantially throughout the length of the pile anchor from top to bottom and having centralizers at one or more intervals along the length of the bolts to keep each bolt in the middle of its respective pile.
Yet another object of the present invention is to provide a perimeter pile foundation in accordance with the preceding objects in which a circular steel ring is placed over the top of the piles, the ring having holes therein through which the pile bolts extend and are secured with nuts to retain bolt tension.
A further object of the present invention is to provide a perimeter pile foundation in accordance with the preceding objects in which a central annular ring or foundation ring of concrete is poured inside the circular pile perimeter, the central foundation ring being provided with structure connecting elements placed in the concrete before the concrete stiffens.
A still further object of the present invention is to provide a perimeter pile foundation in accordance with the preceding objects in which the central foundation ring of concrete is bounded on the outside by the perimeter piles and on the inside by a first corrugated metal pipe (CMP).
Yet another object of the present invention is to provide a perimeter pile foundation in accordance with the preceding objects in which the structure connecting elements include an embedment ring and a plurality of post-tensioned tower anchor bolts.
A further object of the present invention is to provide a perimeter pile foundation in accordance with the preceding two objects in which the foundation further includes a second CMP placed inside the first CMP creating an inner annular ring between the first inner CMP and the second outer CMP, with the tower anchor bolts extending through the inner annular ring which is filled with concrete to complete the tower anchor bolt installation, both the inner and outer CMPs being inside the perimeter piles.
Yet another object of the present invention is to provide a perimeter pile foundation in which the structure connecting elements include a direct embedded section including a reinforcing steel cage secured to a generally cylindrical embedded structure extension having a side wall with a flange at each of its upper and lower ends.
Yet still another object of the present invention is to provide a perimeter pile foundation in accordance with the preceding objects in which concrete is poured to fill the entire volume within the circular pile perimeter.
It is yet another object of the invention to provide a perimeter pile foundation that is not complex in structure and which can be constructed at low cost and is effective in weak saturated soils and/or cohesionless sand that will not allow conventional concrete foundation excavations due to sloughing and caving in of such soils.
These together with other objects and advantages which will become subsequently apparent reside in the details of construction and operation as more fully hereinafter described and claimed, reference being had to the accompanying drawings forming a part hereof, wherein like numerals refer to like parts throughout.
In describing preferred embodiments of the invention illustrated in the drawings, specific terminology will be resorted to for the sake of clarity. However, the invention is not intended to be limited to the specific terms so selected, and it is to be understood that each specific term includes all technical equivalents which operate in a similar manner to accomplish a similar purpose.
A first embodiment of a perimeter pile anchor foundation in accordance with the present invention is shown in
According to the first embodiment, a second or inner CMP 70 is placed inside the outer CMP 68, forming an inner annular ring, also referred to herein as the foundation ring 72. Extending through the concrete foundation ring 72 is a series of tower anchor bolts 18 spaced circumferentially in a circle about the central vertical axis of the foundation. The inner annular ring 72 is filled with concrete 12 either before or after placement of the tower anchor bolts.
The tower anchor bolts 18 can include two bolt circles as in the configuration shown in
The inner tower anchor bolt circle 20 has a slightly smaller diameter than the outer tower anchor bolt circle 22. For example, the outer tower anchor bolt circle diameter may be about fourteen feet and the inner tower anchor bolt circle diameter may be about thirteen feet. A tower or other supported structure (not shown) can be attached to the concrete foundation by the tower anchor bolts 18. Structures which can be supported on the perimeter pile anchor foundation of the present invention include, but are not limited to, transmission towers, electrical towers, communication towers, lighting standards, bridge supports, commercial signs, freeway signs, ski lift supports, solar energy towers, wind turbine towers, large stacks or chimneys, silos, tank structures, airport towers, guard towers, etc.
The tower anchor bolts 18 extend through and are nutted atop the circular tower base flange 120 at the bottom of the tower or other supported structure. The bottom ends of the bolts 18 extend to an embedment ring 32 near the bottom of the foundation. The embedment ring 32 contains bolt holes for receiving the bottom ends of each of the tower anchor bolts. The bolt ends are anchored to the ring with suitable nuts 102 and 103 or the like. The embedment ring 32 is preferably constructed of several circumferential segments lap jointed together. The embedment ring 32 is approximately the same size as and is complementary to the tower base flange 120.
The tower anchor bolts 18 are sleeved in elongated hollow tubes, preferably PVC tubes, which cover the anchor bolts except for threaded portions at the top and bottom of the bolts. The anchor bolt sleeves prevent bonding of the bolts to the concrete 12 that is poured into the inner annular ring 72. This sleeved structure allows the tower anchor bolts, with nuts 49, to be elongated when post-stressed between the tower base flange 120 and the embedment ring 32 to alleviate bolt cycling and fatigue. A full description of the tower anchor bolts 18 is set forth in the '217 patent, previously incorporated herein by reference.
As shown in
The embedded portion of each of the bolts 36 includes a lower end 38 that is bare, i.e., is in direct contact with the cementitious material, for bonding thereto when the cementitious material is poured or pumped to fill the interior of the drilled pile holes 44. The cementitious material preferably fills the pile holes to their bottoms in soil 100. An end nut 42 may be provided on the lower end of the bolt 36 to facilitate bonding of the bolt lower portion 38 with the cementitious material (see
If the pile bolts 36 are to be post-tensioned, the upper end of the embedded portion of the pile bolt 36 is encased in an elongated hollow tube (not shown), preferably in a plastic sleeve or the like, and most preferably by PVC tubing, to prevent bonding with the pile anchor cementitious material and to allow for post-tension stretching. This sleeved structure is fully disclosed in the '217 patent, previously incorporated by reference herein. However, according to the present invention, the pile bolts 36 do not have to be post-tensioned, in which case the sleeve is not included, as is the case shown in
The perimeter pile foundation of the present invention is built by first drilling and then forming a plurality of individual perimeter pile anchors in a large generally circular pattern as shown in
When forming the perimeter pile “circle”, the even and odd piles are preferably offset from one another so that the diameter of the circle formed by the even piles is different from the diameter of the circle formed by the odd piles as shown in
The individual circular pile anchors 14 are approximately 18 inches in diameter, and together form a circular pattern that is about 21 feet in diameter. As shown in
To construct the overlapping pile anchors 14, either the odd piles or the even piles may be constructed first. For purposes of description, the odd pile anchors are formed first by drilling each odd pile hole 44, filling the pile hole with concrete, and inserting a centralized bolt 36 vertically into the concrete to form the pile anchor 14. The last two steps could be reversed.
The even piles are arranged in between the odd piles, with the concrete in the odd piles being allowed to preset to the stage where the concrete is firm but can still be shaved with the auger used to drill the even pile holes. The even pile holes are then drilled, filled with concrete and provided with vertically oriented centralized bolts as with the odd piles to form the even pile anchors 14. The last two steps could be reversed.
The pile holes 44 and pile anchors 14 for the concrete foundation of the present invention can be formed in the soil below the excavation in a variety of ways and using differing equipment, depending upon the condition of the soil, as known to those skilled in the art. For example, the pile hole 44 may be simply formed by a driven mandrel or formed by a screw auger in generally stable soils. However, in unstable soils for which the perimeter pile anchor foundation of the instant application is particularly adaptable, the pile holes are preferably formed by driven pile pipes or pipes drilled, jetted or vibrated in place, such as in U.S. Pat. No. 7,533,505 which is co-owned by the applicant of this application, before positioning the pile anchor bolt, followed by the addition of the cementitious material. Alternately, the pile holes 44 may be drilled and the concrete pressure cast with hollow stemmed augers in wet sands and clays or the hole filled with the cementitious material through a tube which then serves as the anchor bolt. Other methods and equipment to form the pile anchors 14 known to those skilled in the art can be used without departing from the present invention.
Following completion and concrete set of the perimeter pile circle, the soils within the perimeter pile circle are excavated to the foundation depth 101. As shown in
After the pile anchors have been formed, an annular steel plate 43 formed as a ring having holes therein is placed over the piles. The centralized pile bolts 36 extend through the holes and are secured with nuts 48 to retain bolt tension. Alternatively, the ring may be formed by a plurality of individual steel plates 45, one for each pile, with adjoining steel plates that either overlap, as in
The pile anchor base plate, whether formed as a ring 43 or as independent plates 45, is preferably grouted into the top surface of the pile anchors 14, forming the perimeter wall 11 of the foundation 10. This can be readily accomplished by blocking out an indentation slightly larger than the dimensions of the base plate, such as by using a Styrofoam or other easily removable form. The use of block-outs is fully discussed in the '217 patent, previously incorporated by reference. The pile anchor base plate(s) should be grouted into the top surface of the pile anchors so that the upper surface of the base plate coincides with the upper surface of the foundation 10.
According to both configurations of the first embodiment, after the soils inside the perimeter wall 11 formed by the piles have been excavated to create area 76 as shown in
The tower anchor bolts 18 are nutted at the bottom with the embedment ring 32 with nuts 102 and nutted atop the embedment ring with nuts 103 to secure the embedment ring in place near the bottom of the concrete foundation. The tower anchor bolts are used to secure the tower to the foundation as described in the '217 patent, previously incorporated by reference herein.
The second or inner CMP 70, having a smaller diameter than the first or outer CMP is then installed vertically inside the tower anchor bolts and the first CMP 68. Placement of the second CMP creates the inner annular space defining the inner foundation ring 72 between the outer and inner CMPs through which the tower anchor bolts extend vertically.
A concrete plug 75 is then poured in the bottom of the inner CMP 70, after which the area 76 inside the inner CMP atop the plug is backfilled with soil to approximately five feet below the surrounding ground surface. Alternatively, the entire area inside the inner CMP may be filled with concrete. Electrical, communication, and grounding conduits (not shown) are installed through the first and second CMPs 68, 70 and the perimeter pile anchors 14, and then filling of the inner CMP 70 is completed with soil to within about six inches of the top of the inner CMP 70. Once the backfill is completed, steel welded wire mesh (WWM) atop dobies (not shown) is placed on the backfill and a capped central drain (not shown) is installed and centered into the backfill. Dobies are typically 4″ by 4″ by 2″ concrete blocks with a tie wire cast therein which is used to secure the dobies to rebar.
The inner annular space or foundation ring 72 between the outer and inner CMPs is then filled with concrete to within about three or four inches of the of the top of the CMPs to create a grout trough 130 to complete the concrete foundation ring 72. The six inch floor area and the outer annular space 73 between the outside of the outer CMP 68 and the inside of the perimeter wall is also filled with concrete.
According to a second embodiment shown in
The extension 116 of the direct embedded section 85, shown as part of the foundation in
The remainder of the construction of the second embodiment of the foundation is the same as that already described in connection with the first embodiment, including the pouring of a concrete plug and partial backfilling inside the inner CMP, installation of electrical, communication, and grounding conduits, completion of the backfilling of the inner CMP, placement of the steel welded wire mesh (WWM) and the capped central drain, and pouring of concrete into the annular foundation ring 80 and the floor 61.
When constructed, both embodiments of the perimeter pile foundation result in a ring of overlapping odd and even pile anchors that form a generally circular peripheral wall, each section of which is formed as an arch. As is known in the art, forces applied to an arch structure are all resolved into compressive stresses. This is useful when building the pile anchor foundation as described herein because building materials such as concrete can strongly resist compression. The horizontal compressive forces acting on the perimeter piles hold the piles against one another in a state of equilibrium. Thus, compression and friction between adjacent piles resist soil caving and sloughing pressure when soil inside the generally circular perimeter of the piles is excavated. The large deep concrete foundation may therefore effectively be used to support a large tower 160 or other structure like that shown in
It should be understood by those skilled in the art that the foregoing description utilizes the terms “concrete” and “cementitious material” interchangeably. It will be further understood that various cementitious and cementitious-type materials can be utilized in constructing the post-tensioned pile anchor foundation of the present invention as would be utilized by those skilled in the art. These materials include, but are not limited to, sand-cement slurries, grout, and epoxy resins.
Further, while the elongated members in the pile anchors of the present invention have been described as bolts, those skilled in the art will appreciate that other elongated elements, such as strands, cables, rods, pipes, or the like, could be used in accordance with the present invention.
The foregoing descriptions and drawings should be considered as illustrative only of the principles of the invention. The invention may be configured in a variety of shapes and sizes and is not limited by the dimensions of the preferred embodiment. Numerous applications of the present invention will readily occur to those skilled in the art. Therefore, it is not desired to limit the invention to the specific examples disclosed or the exact construction and operation shown and described. Rather, all suitable modifications and equivalents may be resorted to, falling within the scope of the invention.
This is a continuation application of U.S. patent application Ser. No. 13/788,458 filed Mar. 7, 2013, issuing as U.S. Pat. No. 9,340,947 on May 17, 2016, and hereby claims the priorities thereof to which it is entitled.
Number | Name | Date | Kind |
---|---|---|---|
3429126 | Gino | Feb 1969 | A |
3969902 | Ichise et al. | Jul 1976 | A |
5586417 | Henderson | Dec 1996 | A |
5826387 | Henderson et al. | Oct 1998 | A |
7533505 | Henderson | May 2009 | B2 |
7618217 | Henderson | Nov 2009 | B2 |
7707797 | Henderson | May 2010 | B2 |
9340947 | Henderson | May 2016 | B2 |
20070269273 | Henderson | Nov 2007 | A1 |
Number | Date | Country | |
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20170044733 A1 | Feb 2017 | US |
Number | Date | Country | |
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Parent | 13788458 | Mar 2013 | US |
Child | 15155944 | US |