METHOD FOR CONSTRUCTING A FOUNDATION FOR A TOWER STRUCTURE, AND ONSHORE TOWER STRUCTURE
20180179721 ยท 2018-06-28
Inventors
Cpc classification
E02D2250/0023
FIXED CONSTRUCTIONS
E02D5/50
FIXED CONSTRUCTIONS
Y02E10/728
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F03D13/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
E02D5/50
FIXED CONSTRUCTIONS
Abstract
The invention relates to a method for constructing a foundation for a tower structure, comprising at least one structure-side connection profile in the form of a pipe segment. The method has the steps of providing a foundation pile with a diameter which differs from the diameter of the pipe segment, vibrating and/or ramming the foundation pile into a supporting substratum, aligning and fixing the pipe segment coaxially and concentrically to the foundation pile introduced into the substratum such that an annular space is formed between the pipe segment and the foundation pile, and filling the annular space with a curable casting compound.
Claims
1-12. (canceled)
13. A method for constructing a foundation for a tower structure having at least one structure-side connection profile in the form of a pipe segment, wherein the method comprises the following steps: supplying a number of foundation piles selected from a group comprising tubular profiles, T-shaped profiles, I-shaped profiles, Z-shaped profiles or other sheet-pile-wall segments; driving a number of foundation piles into a load-bearing foundation soil, wherein the driving-in method is selected from a group comprising introduction by vibration, ramming or drilling or combinations thereof, wherein a number of foundation piles are driven into the foundation soil over a circular arc which is arranged coaxially in relation to the longitudinal axis of the tower structure; orienting and securing the pipe segment coaxially and concentrically in relation to the arrangement of a number of foundation piles; and partially filling the pipe segment with a settable casting compound.
14. The method as claimed in claim 13, wherein the pipe segment is oriented and secured coaxially and concentrically in relation to a single foundation pile, or in relation to the arrangement of foundation piles, such that an annular space is formed between the pipe segment and the foundation pile or the foundation piles, wherein the annular space is filled with the settable casting compound.
15. The method as claimed in claim 13, wherein the pipe segment is supported on the foundation piles prior to the operation of filling with the casting compound, and in that the pipe segment is provided with a multiplicity of supporting brackets, which provides support on the foundation piles.
16. The method as claimed in claim 13, wherein the foundation piles are of flange-free design.
17. The method as claimed in claim 13, wherein the pipe segment, in the region where it is supported, has spacers placed beneath it for orientation purposes.
18. The method as claimed in claim 14, wherein the pipe segment is supported on the foundation soil prior to the annular space being filled with the casting compound.
19. The method as claimed in claim 13, wherein the diameter of the pipe segment is greater than the diameter of the circular arc enclosed by the foundation piles.
20. The method as claimed in claim 13, wherein the foundation is constructed onshore.
21. The method as claimed in claim 13, wherein the pipe segment is supported on the foundation piles at a distance from the foundation soil.
22. An onshore tower structure, produced using the method as claimed in claim 13, comprising a structure-side connection profile in the form of a pipe segment and also a number of foundation piles driven into a foundation soil and selected from a group comprising tubular profiles, T-shaped profiles, I-shaped profiles, Z-shaped profiles or other sheet-pile-wall segments, wherein the pipe segment and a number of foundation piles surround one another to form an annular space, and wherein the pipe segment is at least partially filled with a set casting compound.
23. The onshore structure as claimed in claim 22, wherein the pipe segment is fastened on the foundation pile or on the foundation piles at a distance from the foundation soil and/or in that the pipe segment is supported on the foundation pile or piles via supporting brackets.
24. The onshore structure as claimed in claim 22, wherein the foundation piles are of flange-free design.
25. A method for constructing a foundation for a tower structure having at least one structure-side connection profile in the form of a pipe segment, wherein the method comprises the following steps: supplying one or more foundation piles selected from a group comprising tubular profiles, T-shaped profiles, I-shaped profiles, Z-shaped profiles or other sheet-pile-wall segments; driving a single foundation pile or a number of foundation piles into a load-bearing foundation soil, wherein the driving-in method is selected from a group comprising introduction by vibration, ramming or drilling or combinations thereof, wherein either a single foundation pile is driven into the foundation soil along a longitudinal axis of the tower structure or a number of foundation piles are driven into the foundation soil along a circular arc arranged coaxially in relation to the longitudinal axis of the tower structure; orienting and securing the pipe segment coaxially and concentrically in relation to the foundation pile introduced into the foundation soil or coaxially and concentrically in relation to the arrangement of a number of foundation piles; and partially filling the pipe segment with a settable casting compound, wherein the pipe segment is oriented and secured coaxially and concentrically in relation to a single foundation pile, or in relation to the arrangement of foundation piles, wherein an annular space is formed between the pipe segment and the foundation pile or the foundation piles, wherein the annular space is filled with the settable casting compound, and wherein the pipe segment is supported on the foundation soil prior to the annular space being filled with the casting compound.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0042] The invention will be explained herein below with reference to the exemplary embodiments illustrated in the accompanying drawings, in which:
[0043]
[0044]
[0045]
[0046]
[0047]
DETAILED DESCRIPTION
[0048] Reference will be made first of all to the exemplary embodiment according to
[0049] In the case of the exemplary embodiment described, at least the lower pipe segment 3 illustrated, and in the form of a connection profile, is designed in the form of the cylindrical steel pipe segment. The latter is anchored in the foundation soil 1 via a foundation pile 4. It is also the case that only part of the foundation pile 4 is illustrated. The foundation pile, which according to the invention is designed in the form of a flange-free, cylindrical steel profile, has been driven into the foundation soil 1 by means of vibration and/or driving rams.
[0050] In the case of that exemplary embodiment of the invention which is illustrated in
[0051] The foundation pile 4 is fixed in the foundation soil 1 over a significant part of its length, a relatively small part of its length projects beyond the foundation soil 1.
[0052] The pipe segment 3 has been arranged concentrically and coaxially in relation to the foundation pile 4 and has been set down on the foundation pile 4 for example via supporting brackets 5 on the inner circumference of the pipe segment. The illustration according to
[0053] The pipe segment 3 is supported on the foundation pile 4 such that the segment has its free end arranged at a distance from the foundation soil 1. An annular space 6 forms between the pipe segment 3 and the foundation pile 4 and, once the pipe segment 3 has been oriented in relation to the foundation pile 4, said annular space has been filled with a settable casting compound 8. For this purpose, the lower, free end of the pipe segment 3 is closed by means of an inwardly directed, encircling sealing lip 7. The casting compound 8 has been introduced from above into the pipe segment 3, or into the annular space 6 between the pipe segment 3 and the foundation pile 4, and the sealing lip 7 prevents the casting compound 8 from escaping before it sets.
[0054] Once the casting compound 8 has set, it is then possible for further segments of the tower structure 2 to be positioned on the pipe segment 3. The segments of the tower structure 2 are preferably flanged to one another via internally encircling flange connections. For reasons of simplification,
[0055]
[0056] In the case of the exemplary embodiment illustrated in
[0057] In the case of the pipe segment 3 being supported on the foundation soil, load dissipation takes place, first of all, via the foundation plinth 9 and, if appropriate, via supporting brackets 5 provided in addition on the inner circumference of the pipe segment 3. When the tower structure 2 is being erected, these temporary supporting measures absorb only the weight of the pipe segment 3. When the casting compound 8 has set, further construction takes place on the pipe segment until, finally, for example a wind-power generator is positioned on the tower structure 2. The load dissipation of the entire mass of the tower structure 2 then takes place via the surface friction between the pipe segment 3 and the casting compound 8 and between the casting compound 8 and the foundation pile 4. It is therefore the case that the foundation plinth 9 and the supporting brackets 5 need only be designed for a small, axially acting partial load.
[0058] As an alternative, provision is made for the foundation plinth 9 to be designed for the actual operating loads.
[0059] Since, in the case of the exemplary embodiment according to
[0060] A further variant of the tower structure according to the invention is illustrated in
[0061] In order to increase the surface friction between the pipe segment 3 and the foundation pile 4, Scheer dowels 12 are provided both on the inside of the pipe segment 3 and on the outside of the foundation pile 4.
[0062] In the case of the exemplary embodiment illustrated in
[0063] A further variant of the method is illustrated in
[0064] Instead of a single foundation pile 4, in the case of this variant of the method, a number of sheet-pile-wall segments 14, in the form of I-shaped profile foundation piles, have been driven into the foundation soil 1 over a circular arc. The pipe segment 3 is set down, or supported, on the end surfaces of the sheet-pile-wall segments 14, so that then part of the pipe segment is filled with a settable casting compound. In the case of the exemplary embodiment according to
[0065] In the case of the exemplary embodiment illustrated in
LIST OF REFERENCE SIGNS
[0066] 1 Foundation soil [0067] 2 Tower structure [0068] 3 Pipe segment [0069] 4 Foundation pile [0070] 5 Supporting brackets [0071] 6 Annular space [0072] 7 Sealing lip [0073] 8 Casting compound [0074] 9 Foundation plinth [0075] 10 Supporting bearing [0076] 11 Shims [0077] 12 Scheer dowel [0078] 13 Abutment [0079] 14 Sheet-pile-wall segments