US3314240A - Method and apparatus for use in forming foundations - Google Patents

Method and apparatus for use in forming foundations Download PDF

Info

Publication number
US3314240A
US3314240A US420070A US42007064A US3314240A US 3314240 A US3314240 A US 3314240A US 420070 A US420070 A US 420070A US 42007064 A US42007064 A US 42007064A US 3314240 A US3314240 A US 3314240A
Authority
US
United States
Prior art keywords
pile
section
tubular member
packer
driven
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
US420070A
Inventor
John J Bardgette
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
ExxonMobil Upstream Research Co
Original Assignee
Exxon Production Research Co
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Exxon Production Research Co filed Critical Exxon Production Research Co
Priority to US420071A priority Critical patent/US3314241A/en
Priority to US420070A priority patent/US3314240A/en
Priority to GB42835/65A priority patent/GB1094385A/en
Priority to NL6514594A priority patent/NL6514594A/xx
Priority to DE19651634340 priority patent/DE1634340A1/en
Application granted granted Critical
Publication of US3314240A publication Critical patent/US3314240A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Classifications

    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D7/00Methods or apparatus for placing sheet pile bulkheads, piles, mouldpipes, or other moulds
    • E02D7/24Placing by using fluid jets
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D7/00Methods or apparatus for placing sheet pile bulkheads, piles, mouldpipes, or other moulds
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D7/00Methods or apparatus for placing sheet pile bulkheads, piles, mouldpipes, or other moulds
    • E02D7/02Placing by driving
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D7/00Methods or apparatus for placing sheet pile bulkheads, piles, mouldpipes, or other moulds
    • E02D7/26Placing by using several means simultaneously
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D7/00Methods or apparatus for placing sheet pile bulkheads, piles, mouldpipes, or other moulds
    • E02D7/28Placing of hollow pipes or mould pipes by means arranged inside the piles or pipes

Definitions

  • the present invention generally concerns the construction of drilling platforms and, in particular, it concerns an improved method for forming foundations for drilling pl-atforms.
  • the invention also concerns apparatus for use in driving piles in accordance with this method.
  • the pile driving method to be described herein overcomes disadvantages inherent in ordinary pile driving techniques. It achieves deep penetrations of pile into dense sand formations with a minimum of pile driving difficulty.
  • the present invention permits the pumping of water while the new and driven sections of pile are being welded by securing a packer and holddown assembly to the pile driving head to seal off pumped water from the area of welding.
  • the method for driving piles uses a driving head secured to the upper end of the new pile section to be driven and containing a chamber, a tubular member extending from the chamber through the new pile section to be added and into a driven section of piling, an inflatable packer arranged on the tubular member and located within the driven section of piling, and means extending from the driving head through the tubular member to the interior of the inflatable packer adapted to supply packer-innate fluid to the packer and comprises the steps of pumping fluid through said uid supply means and into said packer to inflate said packer and seal off the annulus between said tubular member and the wall of the driven pile section; and welding the lower end of the new section of pile to the upper end ofthe driven pile section while pumping fluid into said chamber and through said tubular member into said pile.
  • a primary object of the invention is to provide an improved technique for driving piles.
  • FIG. l is a side elevation of apparatus embodying the invention and illustrating one manner of driving piles in offshore locations;
  • FIGS. 2 to 4 are side elevations of a pile to be driven into the underlying sand and illustrating positioning of a jet assembly and its action within the pile in accordance with the method of the Guy application;
  • FIGS. 5 and 5A are side elevations, partly in section, of the packer apparatus and holddown assembly arranged in the driving head, new pile section and driven pile section in accordance with the invention
  • FIG. 6 is a view taken along lines 6-6 of FIG. 5A.
  • FIG. 7 is a side elevation of the packer apparatus and holddown assembly arranged in the driven pile section with the packer apparatus in inated condition.
  • FIG. l a barge 10 on which is mounted a platform 11 and a crane 12 from which is suspended a steam hammer 13 used to drive piles 14 into the dense sand formation 15.
  • a zone of less dense sand or mud 16 is located above formation 15 and below water 17.
  • One pile has been driven through to the desired depth or to refusal and the other pile consisting of initial pile sections 14a and a new pile section 14b -are being driven into sand formation 15 by means of a driving head 18 on which is mounted steam hammer 13.
  • the sections of pile are welded together and to driving head 18 as indicated at 19.
  • FIGS. 2 to 4 show pile section 14a prior to its penetration into sand formation 15.
  • a jet line assembly 20 is shown arranged in pile section 14a.
  • Assembly 20 includes a hollow, tubular jet line .member 21, provided with a connection 22 to which a hose 22a is attached at its upper end and which contains perforations 23 adjacent its lower end.
  • Centralizers 24 are arranged along its length to maintain tube 21 upright and centrally positioned within pile section 14a.
  • Cable loops 25 are provided adjacent the upper end of tube 21 to aid in placing it within and removing it from pile section 14.
  • Hose 22a feeds water to tube 21 from an external surface source of supply. The water jets through perforations 23 and aids in washing assembly 20 through mud 16 (see FIG. 3).
  • hose 22a is removed from connection 22 as illustrated in FIG. 4.
  • This ligure also shows the lower end of new pile section 14b welded to the top of pile section 14a.
  • Tube 21 penetrates formation 15 as water Within the pile sections 14 passes into opening 22 through tube 21 and jets from perforations 23.
  • driving head 18, including the anvil portion 31 thereof, is welded to the new section of pile 14b and to a packer and holddown assembly 35.
  • Water fill up lines 32 and an air line 33 are connected .to a chamber in the interior of driving head 18 to supply water and/ or air to the driving head.
  • the upper end of the chamber is closed by means of a plate 34 below the anvil portion 31 thereof.
  • Assembly 35 is arranged in the lower end of driving head 18 and extends through pile 14b into pile 14a. It includes a seal plate 36 welded to the interior of driving head 18.
  • Reinforcing plates or ribs 37 are welded to plate 36 and to a tubular member or pipe 38 which protrudes through and is welded to plate 36 at its upper end and is latched to a pin or lug 40 welded to the interior of pile 14a at its lower end by means of the slot 41 formed thereon.
  • An inflatable packer 42 which includes an expansible sleeve member 43 preferably pleated or ribbed and upper and lower clamps 44 to fasten the sleeve member to tubular member 38, is located within driven pile 14a.
  • a centralizer 45 is also located on tubular member 38 below packer 3 42.
  • a small, hydraulic line 46 is located within tubular member 38. It connects the interior of sleeve member 43 to an outside source of fluid pressure through hose 47, valve 48, and hose 49.
  • pile section 14a is driven down to the hard, dense sand formation 15 by means of steam hammer 13.
  • pile 14a reaches refusal in sands 15, the pile driving hammer 13 is removed from anvil head 31.
  • the weld connection between head 18 and pile section 14a is severed and jet line assembly 20 with hose 22 connected to it is inserted in the top of pile section 14a and washed down to the tip of this pile by pumping water through hose 22a.
  • hose 22a is removed from its attachment to openings 22. Jet line 21 is positioned open-ended within pile section 14a in this manner.
  • driving head 18 (and the anvil portion 31, thereof) with assembly 35 attached to it is welded to the upper end of a new pile section 1417.
  • Assembly 35 extends through the lower end of pile section 14b.
  • Crane 12 picks up and carries the welded driving head and assembly 35 and pile section 14b to the top of pile section 14a where assembly 35 is inserted in pile section 14a and manipulated until slot 41 on tubular member 38 is latched or secured to lug 40 formed on driven pile 14a (see FIGS. and 5A).
  • Valve 48 is opened and fluid is pumped through hoses 47 and 49 and small diameter pipe 46 to the interior of packer 4sleeve element 43 to inflate and expand the packer element and seal off the annulus between tubular member 38 and pile section 14a below the uppermost end thereof as illustrated in FIG. 7.
  • Water is then pumped into driving head 18 through ll up lines 32 and through tubular member 38 into driven pile section 14a to below inflated packer assembly 42 and below the unwelded corinection 50 between pile sections 14a and 14b.
  • the upper end of pile section 14a is then Welded to the lower end of pile section 14h while water is being pumped.
  • a large, hydrostatic pressure is exerted on the underlying sand formation by means of this closed, hydraulic system. Water llows into the jet line assembly opening 22 and down through jet line 21 into formation 15 at the tip of the pile (see FIG. 4) during the welding operation which may take considerable time.
  • llup lines 32 and air connection line 33 are used to pump water and air into driving head 18.
  • the water lls the pile sections to a desired level.
  • An air space is left in driving head 18 and also, if needed, in a portion of pile section 14b.
  • driving with steam hammer 13 through driving head 18 of the piling is commenced.
  • Resistance to driving of the pile is reduced by the jetting action of the water through the jet line assembly 21 which permits additional penetration by the pile.
  • the column of air remains trapped so that the energy of driving is expended to the wall of the pile and not against the water column inside the pile.
  • Air supply connection 33 may be used to replenish the air supply in driving head 18 in the event air is lost or dissipated through the water.
  • a method for driving piles into earth formations using a driving head containing a chamber and provided with a packer and holddown assembly said packer and holddown assembly comprising a tubular member welded to said driving head and iluidly communicating with said chamber, an inflatable packer surrounding said tubular member adapted to seal oil, when intlated, the annulus between said tubular member and a pile section in which said packer is located, means for supplying fluid to said packer for inating said packer, and means on said tubular member and means on each pile section cooperating to latch together and hold said assembly in position, the steps of:
  • a jet line assembly comprising a tube provided Iwith an opening at its upper end and perforations at its lower end in the top of a driven pile section and washing said assembly down to the lower end of said pile with fluid;
  • Apparatus for use in -driving piles comprising:
  • a driving head having a chamber and fluid inlets to said chamber
  • a tubular member secured to said driving head and adapted to extend from the lower end of vsaid chamber, through a section of piling to be driven and into a section of driven piling;
  • an inflatable packervelement arranged on said tubular member and adapted to be positioned in said driven section of piling; conduit extending from said driving head through said tubular member to said inatable element adapted to carry packer iniiate fluid from an external supply source to the interior of sai-d inatable element; and means on said tubular member and means on said driven pile section cooperating to connect said tubular member to said driven pile section to hold said tubular member in position.

Landscapes

  • Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • Mining & Mineral Resources (AREA)
  • Paleontology (AREA)
  • Civil Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Structural Engineering (AREA)
  • Placing Or Removing Of Piles Or Sheet Piles, Or Accessories Thereof (AREA)
  • Earth Drilling (AREA)

Description

April 18, 1967 J. J. BARDGETTE 3,314,240
METHOD AND APPARATUS FOR USE IN FORMING FOUNDATIONS Filed Dec. 21, 1964 5 Sheets-Sheet 2 will IIIHM;
INVENTOR.
0H J. BARGETTE, Flc-3.2. FIG. 5. BY j v ATTORNEY.
April 1s, 1967 Filed Dec. 2l, 1964 Xfl lr l :In
J. J. BARDGETTE METHOD AND APPARATUS FOR USE 1N FORMING FoUNDATIoNs MMU ATTORNEY.
United States Patent 3,314,240 METHOD AND APPARATUS FOR USE IN FORMING FOUNDATIONS .lohn Il. Bardgette, New Orleans, La., assignor, by mesne assignments, to Esso Production Research Company,
Houston, Tex., a corporation of Delaware Filed Dec. 21, 1964, Ser. No. 420,070 Claims. (Cl. 61-53.5)
The present invention generally concerns the construction of drilling platforms and, in particular, it concerns an improved method for forming foundations for drilling pl-atforms. The invention also concerns apparatus for use in driving piles in accordance with this method.
When driving piles by ordinary hammer means, especially piles used to support offshore drilling structures, adequate pile penetrations cannot be achieved in dense sands because of the great buildup of end bearing on the piles in the sand formation. Pile driving in such sands often results in premature refusal, particularly for tension or holddown requirements.
The pile driving method to be described herein overcomes disadvantages inherent in ordinary pile driving techniques. It achieves deep penetrations of pile into dense sand formations with a minimum of pile driving difficulty.
In application Ser. No. 352,923, tiled Mar. 18, 1964, by Arthur L. Guy, entitled, Method and Apparatus for Driving Piles, now Patent No. 3,289,420, an operation is described in which pilings such as steel tubings or cylinders are driven with a hammer in a conventional way while simultaneously jetting water into the sand utilizing a close, hydrostatic system. In the practice of the Guy operation, the resistance to pile penetration is reduced and it is possible to drive the pile through dense, thick sand strata. However, pumping of water in accordance with the Guy technique cannot be resumed when a new section of pile is added until the weld between the new and driven pile sections is adequate to hold the pressure applied by pumping. Welding each new pile section to the previously driven pile sections in this manner consumes much time, especially when welding heavy wall, large ldiameter steel pipes such as those commonly used to support offshore drilling structures and when pumping of water is halted for a prolonged period of time, it is often diiicult or irnpossible to resume movement of the pile.
The present invention permits the pumping of water while the new and driven sections of pile are being welded by securing a packer and holddown assembly to the pile driving head to seal off pumped water from the area of welding.
The method for driving piles, according to the present invention, uses a driving head secured to the upper end of the new pile section to be driven and containing a chamber, a tubular member extending from the chamber through the new pile section to be added and into a driven section of piling, an inflatable packer arranged on the tubular member and located within the driven section of piling, and means extending from the driving head through the tubular member to the interior of the inflatable packer adapted to supply packer-innate fluid to the packer and comprises the steps of pumping fluid through said uid supply means and into said packer to inflate said packer and seal off the annulus between said tubular member and the wall of the driven pile section; and welding the lower end of the new section of pile to the upper end ofthe driven pile section while pumping fluid into said chamber and through said tubular member into said pile.
A primary object of the invention, therefore, is to provide an improved technique for driving piles.
The above and other objects and advantages of the invention will be apparent from the following, more detailed 3,314,240 Patented Apr. 18, 1957 rice description of the invention when taken with the drawings in which:
FIG. l is a side elevation of apparatus embodying the invention and illustrating one manner of driving piles in offshore locations;
FIGS. 2 to 4 are side elevations of a pile to be driven into the underlying sand and illustrating positioning of a jet assembly and its action within the pile in accordance with the method of the Guy application;
FIGS. 5 and 5A are side elevations, partly in section, of the packer apparatus and holddown assembly arranged in the driving head, new pile section and driven pile section in accordance with the invention;
FIG. 6 is a view taken along lines 6-6 of FIG. 5A; and
FIG. 7 is a side elevation of the packer apparatus and holddown assembly arranged in the driven pile section with the packer apparatus in inated condition.
Referring to the drawings in more detail, in FIG. l is shown a barge 10 on which is mounted a platform 11 and a crane 12 from which is suspended a steam hammer 13 used to drive piles 14 into the dense sand formation 15. A zone of less dense sand or mud 16 is located above formation 15 and below water 17. One pile has been driven through to the desired depth or to refusal and the other pile consisting of initial pile sections 14a and a new pile section 14b -are being driven into sand formation 15 by means of a driving head 18 on which is mounted steam hammer 13. The sections of pile are welded together and to driving head 18 as indicated at 19.
FIGS. 2 to 4 show pile section 14a prior to its penetration into sand formation 15. In FIG. 3 a jet line assembly 20 is shown arranged in pile section 14a. Assembly 20 includes a hollow, tubular jet line .member 21, provided with a connection 22 to which a hose 22a is attached at its upper end and which contains perforations 23 adjacent its lower end. Centralizers 24 are arranged along its length to maintain tube 21 upright and centrally positioned within pile section 14a. Cable loops 25 are provided adjacent the upper end of tube 21 to aid in placing it within and removing it from pile section 14. Hose 22a feeds water to tube 21 from an external surface source of supply. The water jets through perforations 23 and aids in washing assembly 20 through mud 16 (see FIG. 3). Once assembly 20 reaches sand formation 15, hose 22a is removed from connection 22 as illustrated in FIG. 4. This ligure also shows the lower end of new pile section 14b welded to the top of pile section 14a. Tube 21 penetrates formation 15 as water Within the pile sections 14 passes into opening 22 through tube 21 and jets from perforations 23.
As shown in FIGS. 5, 5A, 6, and 7, driving head 18, including the anvil portion 31 thereof, is welded to the new section of pile 14b and to a packer and holddown assembly 35. Water fill up lines 32 and an air line 33 are connected .to a chamber in the interior of driving head 18 to supply water and/ or air to the driving head. The upper end of the chamber is closed by means of a plate 34 below the anvil portion 31 thereof. Assembly 35 is arranged in the lower end of driving head 18 and extends through pile 14b into pile 14a. It includes a seal plate 36 welded to the interior of driving head 18. Reinforcing plates or ribs 37 are welded to plate 36 and to a tubular member or pipe 38 which protrudes through and is welded to plate 36 at its upper end and is latched to a pin or lug 40 welded to the interior of pile 14a at its lower end by means of the slot 41 formed thereon. An inflatable packer 42, which includes an expansible sleeve member 43 preferably pleated or ribbed and upper and lower clamps 44 to fasten the sleeve member to tubular member 38, is located within driven pile 14a. A centralizer 45 is also located on tubular member 38 below packer 3 42. A small, hydraulic line 46 is located within tubular member 38. It connects the interior of sleeve member 43 to an outside source of fluid pressure through hose 47, valve 48, and hose 49.
Referring particularly to FIGS. l to 4, the initial section of pile 14a is welded to driving head 18 and then,
pile section 14a is driven down to the hard, dense sand formation 15 by means of steam hammer 13. When pile 14a reaches refusal in sands 15, the pile driving hammer 13 is removed from anvil head 31. The weld connection between head 18 and pile section 14a is severed and jet line assembly 20 with hose 22 connected to it is inserted in the top of pile section 14a and washed down to the tip of this pile by pumping water through hose 22a. After- Wards, hose 22a is removed from its attachment to openings 22. Jet line 21 is positioned open-ended within pile section 14a in this manner.
Then driving head 18 (and the anvil portion 31, thereof) with assembly 35 attached to it is welded to the upper end of a new pile section 1417. Assembly 35 extends through the lower end of pile section 14b. Crane 12, then, picks up and carries the welded driving head and assembly 35 and pile section 14b to the top of pile section 14a where assembly 35 is inserted in pile section 14a and manipulated until slot 41 on tubular member 38 is latched or secured to lug 40 formed on driven pile 14a (see FIGS. and 5A).
Valve 48 is opened and fluid is pumped through hoses 47 and 49 and small diameter pipe 46 to the interior of packer 4sleeve element 43 to inflate and expand the packer element and seal off the annulus between tubular member 38 and pile section 14a below the uppermost end thereof as illustrated in FIG. 7. Water is then pumped into driving head 18 through ll up lines 32 and through tubular member 38 into driven pile section 14a to below inflated packer assembly 42 and below the unwelded corinection 50 between pile sections 14a and 14b. The upper end of pile section 14a is then Welded to the lower end of pile section 14h while water is being pumped. A large, hydrostatic pressure is exerted on the underlying sand formation by means of this closed, hydraulic system. Water llows into the jet line assembly opening 22 and down through jet line 21 into formation 15 at the tip of the pile (see FIG. 4) during the welding operation which may take considerable time.
Once the welding operation connecting pile sections 14a and 14h has been completed, pumping of lluid into driving head 18 is discontinued and fluid pressure within packer sleeve element 42 is released by opening valve 48 which permits the packer to deflate, at least suiciently to carry on pile driving operations and for subsequent movement or manipulation of the packer assembly without causing damage to it.
Then, llup lines 32 and air connection line 33 are used to pump water and air into driving head 18. The water lls the pile sections to a desired level. An air space is left in driving head 18 and also, if needed, in a portion of pile section 14b. As formation 15 at the top of pile section 14a again begins to take water by flow through jet line 21, driving with steam hammer 13 through driving head 18 of the piling is commenced. Resistance to driving of the pile is reduced by the jetting action of the water through the jet line assembly 21 which permits additional penetration by the pile. The column of air remains trapped so that the energy of driving is expended to the wall of the pile and not against the water column inside the pile. Air supply connection 33 may be used to replenish the air supply in driving head 18 in the event air is lost or dissipated through the water.
Additional sections (af-.pile are added to achieve the desired -pile penetrazn.4 The same sequence of steps that was described for adding pile section 14b to pile section 14a would be employed. Thus, to add a new pile section, driving head 18 is removed by severing its connection to the last section of pile added. Then the new pile section with another driving head 18 and another packer and holddown assembly 35 connected by welding is picked up by the crane. Assembly 35 is inserted in the driven pile section and latched to it through slot 41 and lug 40. Packer 42 is inflated and iluid is pumped into the pile below the packer through tubular member 38 and water is jetted into the sand formation while the driven pile section is welded to the new pile section. Then, the packer is deflated and pile sections are driven into the sand formation by the driving head while hydraulic fluid is pumped into the interior of driving head 18 to jet lluid into the sand while driving the pile.
Having fully described the nature, method, objects and advantages of ymy invention, I claim:
1. In a method for driving piles into earth formations using a driving head containing a chamber and provided with a packer and holddown assembly, said packer and holddown assembly comprising a tubular member welded to said driving head and iluidly communicating with said chamber, an inflatable packer surrounding said tubular member adapted to seal oil, when intlated, the annulus between said tubular member and a pile section in which said packer is located, means for supplying fluid to said packer for inating said packer, and means on said tubular member and means on each pile section cooperating to latch together and hold said assembly in position, the steps of:
positioning a jet line assembly comprising a tube provided Iwith an opening at its upper end and perforations at its lower end in the top of a driven pile section and washing said assembly down to the lower end of said pile with fluid;
attaching said driving head to the top of a new pile section to be added to said driven pile sections with said tubular member extending through the lower end of said new pile section;
arranging said new pile section on the uppermost driven pile section with said tubular member and packer mounted thereon extending into said uppermost driven pile section;
latching said tubular member to said uppermost driven pile section;
inflating said packer and sealing olf the annulus between said tubular member and the wall of said uppermost driven pile section;
pumping fluid into said chamber and through said tubular member into said pile sections;
welding said new pile section to said uppermost driven pile section while pumping iluid into said pile sections through said chamber and said tubular member; i discontinuing pumping of water into said pile sections; deating said packer; and
then, driving said piling into said earth formations with said driving head while pumping lluid into said chamber and through said tubular member and through said jet line assembly into said formations.
2. A method as recited in claim 1 in which additional new pile sections are added when necessary by the steps` of:
discontinuing pumping of fluid into said pile sections:
and driving of said piling;
disconnecting said driving head from the uppermost of said driven pile sections;
atta-ching a new pile section to said driving head with said tubular member and packer extending through the lower end of said new pile section; arranging said new pile section on said uppermost driven pile section with said tubular member and packer extending into said uppermost driven pile section;
latching said tubular member to said uppermost driven pile section;
inilating said packer and sealing off the annulus between said tubular member and the wall of said uppermost driven pile section; and
Welding said new pile section to said uppermost driven pile section while pumping iluid into said pile sections through said chamber and said tubular member.
3. In a method for driving piles into earth formations using a driving head containing a chamber and provided with a packer and holddown assembly, said packer and holddown assembly comprising a tubular member welded to said driving head and fludly communicating with said chamber, an inatable packer surrounding said tubular member adapted to seal 01T, when inated, the annulus between said tubular member and a pile section in which said packer is located, means for supplying fluid to said packer for inating said packer, and means on said tubular member and means on each pile section cooperating to latch together and hold said assembly in position, the steps of:
attaching said driving head to the top of a new pile section to be added to said driven pile sections with said tubular member extending through the lower end of said new pile section;
arranging said new pile section on the uppermost driven pile section with said tubular member and packer mounted thereon extending into said uppermost driven pile section;
latching said tubular member to said uppermost driven pile section;
inating said packer and sealing olf the annulus between said tubular member and the wall of said uppermost driven pile section;
pumping uid into said chamber and through said tubular member into said pile sections;
welding said new pile section to said uppermost driven pile section while pumping fluid into said pile sections through said chamber and said tubular member;
discontinuing pumping of water into said pile sections;
deating said packer; and
then, driving said piling into said earth formations with said driving head while pumping uid into said charnber and through said tubular member and into said formations.
4. A method as recited in claim 3 in which additional new pile sections are added when necessary by the steps of:
discontinuing pumping of fluid into said pile sections and driving of said piling;
disconnecting said `driving head from the uppermost of said driven pile sections; and
repeating the steps of attaching vsaid new pile section to said driving head, arranging said new pile section on said uppermost driven pile section, latching said tubular member to said uppermost driven pile section, inflating said packer, and welding the new and driven pile sections together.
5. Apparatus for use in -driving piles comprising:
a driving head having a chamber and fluid inlets to said chamber;
a tubular member secured to said driving head and adapted to extend from the lower end of vsaid chamber, through a section of piling to be driven and into a section of driven piling;
an inflatable packervelement arranged on said tubular member and adapted to be positioned in said driven section of piling; conduit extending from said driving head through said tubular member to said inatable element adapted to carry packer iniiate fluid from an external supply source to the interior of sai-d inatable element; and means on said tubular member and means on said driven pile section cooperating to connect said tubular member to said driven pile section to hold said tubular member in position.
References Cited by the Examiner UNITED STATES PATENTS 911,971 2/1909 Gilbreth 61-53.74 955,729 4/19'10 Welsh 61-53.74 3,215,201 11/1965 Lacy et al 175-67 X CHARLES E. OCONNELL, Primary Examiner.
JACOB SHAPIRO, Examiner.

Claims (1)

  1. 5. APPARATUS FOR USE IN DRIVING PILES COMPRISING: A DRIVING HEAD HAVING A CHAMBER AND FLUID INLETS TO SAID CHAMBER; A TUBULAR MEMBER SECURED TO SAID DRIVING HEAD AND ADAPTED TO EXTEND FROM THE LOWER END OF SAID CHAMBER, THROUGH A SECTION OF PILING TO BE DRIVEN AND INTO A SECTION OF DRIVEN PILING; AN INFLATABLE PACKER ELEMENT ARRANGED ON SAID TUBULAR MEMBER AND ADAPTED TO BE POSITIONED IN SAID DRIVEN SECTION OF PILING;
US420070A 1964-12-21 1964-12-21 Method and apparatus for use in forming foundations Expired - Lifetime US3314240A (en)

Priority Applications (5)

Application Number Priority Date Filing Date Title
US420071A US3314241A (en) 1964-12-21 1964-12-21 Method and apparatus for use in driving piles
US420070A US3314240A (en) 1964-12-21 1964-12-21 Method and apparatus for use in forming foundations
GB42835/65A GB1094385A (en) 1964-12-21 1965-10-08 Method and apparatus for driving piles in underwater formations
NL6514594A NL6514594A (en) 1964-12-21 1965-11-10
DE19651634340 DE1634340A1 (en) 1964-12-21 1965-12-17 Method and device for driving piles in underwater layers, in particular for drilling platforms

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US420071A US3314241A (en) 1964-12-21 1964-12-21 Method and apparatus for use in driving piles
US420070A US3314240A (en) 1964-12-21 1964-12-21 Method and apparatus for use in forming foundations

Publications (1)

Publication Number Publication Date
US3314240A true US3314240A (en) 1967-04-18

Family

ID=27024718

Family Applications (2)

Application Number Title Priority Date Filing Date
US420071A Expired - Lifetime US3314241A (en) 1964-12-21 1964-12-21 Method and apparatus for use in driving piles
US420070A Expired - Lifetime US3314240A (en) 1964-12-21 1964-12-21 Method and apparatus for use in forming foundations

Family Applications Before (1)

Application Number Title Priority Date Filing Date
US420071A Expired - Lifetime US3314241A (en) 1964-12-21 1964-12-21 Method and apparatus for use in driving piles

Country Status (4)

Country Link
US (2) US3314241A (en)
DE (1) DE1634340A1 (en)
GB (1) GB1094385A (en)
NL (1) NL6514594A (en)

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3468132A (en) * 1967-03-01 1969-09-23 Oil States Rubber Co Platform leg packer
US3738115A (en) * 1972-03-28 1973-06-12 Osaka Consulting Eng Ltd Method and apparatus for plastic hydraulic material
US3817040A (en) * 1972-07-03 1974-06-18 E Stevens Pile driving method
US5667341A (en) * 1993-01-05 1997-09-16 Kuehn; Hans Apparatus for signal and data transmission for controlling and monitoring underwater pile drivers, cut-off equipment and similar work units
US5788418A (en) * 1993-01-05 1998-08-04 Kuehn; Hans Detachable connector for the transmission of drive energy to submersible pile drivers, cut-off equipment or similar work units
US5915883A (en) * 1993-01-05 1999-06-29 Kuehn; Hans Submersible drive unit for use with underwater pile drivers and work units
US5951207A (en) * 1997-03-26 1999-09-14 Chevron U.S.A. Inc. Installation of a foundation pile in a subsurface soil
US20090255680A1 (en) * 2008-04-13 2009-10-15 Baker Hughes Incorporated Subsea Inflatable Bridge Plug Inflation System
US20120076591A1 (en) * 2009-06-02 2012-03-29 Marc Peters Method and device for creating an underwater foundation of a building
US9162736B2 (en) 2007-01-19 2015-10-20 Ronald J. Thibodaux Apparatus for performing overhead work using air-propelled vessel with articulating member

Families Citing this family (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3721095A (en) * 1971-08-23 1973-03-20 Bolt Associates Inc Controllable force method and system of driving piles
US3815374A (en) * 1972-07-19 1974-06-11 Texaco Inc Method and apparatus for inserting cylindrical piling
JPS5431605B2 (en) * 1974-09-24 1979-10-08
US3986369A (en) * 1975-08-13 1976-10-19 Fredric Rusche Composite pile structure and method
US4098355A (en) * 1977-01-27 1978-07-04 Raymond International Inc. Underwater hammer with circumferential flow seal
MY113957A (en) * 1986-03-07 2002-07-31 Precast Micro Injection Pile Tech Limited Improvements in or relating to pile driving.
EP0659941B1 (en) * 1993-12-20 1999-04-28 Beheersmaatschappij Verstraeten B.V. Piling apparatus adapted to be provided in a tube
US5423633A (en) * 1993-12-23 1995-06-13 Beheersmaatschappij Verstraeten B.V. Piling apparatus adapted to be provided in a tube
EA007215B1 (en) * 2003-03-04 2006-08-25 Эксонмобил Апстрим Рисерч Компани Anchor installation system
US8506206B2 (en) 2010-10-08 2013-08-13 9267-9075 Quebec Inc. Composite pile formed of interconnected rigid hollow tubes
CN102286976B (en) * 2011-06-29 2013-03-06 中铁四局集团第一工程有限公司 Method for making pile foundation construction follow long steel pile casing construction in karst area
DK2650446T3 (en) * 2012-04-12 2014-09-22 Herrenknecht Ag Process for making a foundation for an offshore plant
KR101912039B1 (en) * 2017-04-07 2018-10-25 김규상 Rotary penetration device of hydraulic jack type for circular pipe

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US911971A (en) * 1905-07-03 1909-02-09 Frank B Gilbreth Method and apparatus for sinking concrete piles.
US955729A (en) * 1910-04-19 American Concrete Piling Company File.
US3215201A (en) * 1962-09-13 1965-11-02 Shell Oil Co Well drilling method and apparatus

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US955729A (en) * 1910-04-19 American Concrete Piling Company File.
US911971A (en) * 1905-07-03 1909-02-09 Frank B Gilbreth Method and apparatus for sinking concrete piles.
US3215201A (en) * 1962-09-13 1965-11-02 Shell Oil Co Well drilling method and apparatus

Cited By (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3468132A (en) * 1967-03-01 1969-09-23 Oil States Rubber Co Platform leg packer
US3738115A (en) * 1972-03-28 1973-06-12 Osaka Consulting Eng Ltd Method and apparatus for plastic hydraulic material
US3817040A (en) * 1972-07-03 1974-06-18 E Stevens Pile driving method
US5667341A (en) * 1993-01-05 1997-09-16 Kuehn; Hans Apparatus for signal and data transmission for controlling and monitoring underwater pile drivers, cut-off equipment and similar work units
US5788418A (en) * 1993-01-05 1998-08-04 Kuehn; Hans Detachable connector for the transmission of drive energy to submersible pile drivers, cut-off equipment or similar work units
US5915883A (en) * 1993-01-05 1999-06-29 Kuehn; Hans Submersible drive unit for use with underwater pile drivers and work units
US5951207A (en) * 1997-03-26 1999-09-14 Chevron U.S.A. Inc. Installation of a foundation pile in a subsurface soil
US9162736B2 (en) 2007-01-19 2015-10-20 Ronald J. Thibodaux Apparatus for performing overhead work using air-propelled vessel with articulating member
US20090255680A1 (en) * 2008-04-13 2009-10-15 Baker Hughes Incorporated Subsea Inflatable Bridge Plug Inflation System
US8162061B2 (en) * 2008-04-13 2012-04-24 Baker Hughes Incorporated Subsea inflatable bridge plug inflation system
US20120076591A1 (en) * 2009-06-02 2012-03-29 Marc Peters Method and device for creating an underwater foundation of a building
US9222233B2 (en) * 2009-06-02 2015-12-29 Herrenknecht Ag Method and device for creating an underwater foundation of a building

Also Published As

Publication number Publication date
US3314241A (en) 1967-04-18
GB1094385A (en) 1967-12-13
NL6514594A (en) 1966-06-22
DE1634340A1 (en) 1970-06-18

Similar Documents

Publication Publication Date Title
US3314240A (en) Method and apparatus for use in forming foundations
US2589146A (en) Submersible deepwater drilling apparatus
US3380520A (en) Drilling and production platform
US3354657A (en) Method for installing anchoring or supporting columns in situ
US20060191719A1 (en) Method of geothermal loop installation
US4474243A (en) Method and apparatus for running and cementing pipe
US3389562A (en) Salvageable multi-well offshore well protector platform
BRPI0611197A2 (en) Apparatus and method for directing an open-ended conductive tube into the ground and well bottom assembly
US8479818B2 (en) Method and apparatus to cement a perforated casing
US8893788B2 (en) Enhanced permeability subterranean fluid recovery system and methods
US3393013A (en) Process of mining ore from beneath an overburden of earth formation
US3289421A (en) Method for driving piles
US3289420A (en) Method for driving piles
KR102609304B1 (en) A grouting method using a direction-controlled borehole and a grouting system for the soft ground and void area
US6715962B2 (en) Assembly and floatation method for drilling drivepipe
US597316A (en) Hydraulic well-boring machine
US3482408A (en) Telescoped caisson
US3620026A (en) Pile driving method and apparatus
JPH0350873B2 (en)
US3303244A (en) Method for forming foundation members
US4701078A (en) Pile construction method for improving bearing power
US2854825A (en) Magnetic jetting device
EP0060840A1 (en) Method and apparatus for running and cementing pipe
WO2009139510A1 (en) Construction method for continuous cut-off wall using overlap casing
US3426859A (en) Telescoped caisson