This invention is a method for building a tower, especially a tower of a wind power plant, in which at least one tubular tower section made of annular prefabricated concrete parts arranged on top of one another is built with two horizontal contact surfaces. Furthermore, the invention refers to a tower, especially a tower of a wind power plant, with at least one tubular tower section made of concrete, developed from annular prefabricated concrete parts arranged on top of one another with two horizontal contact surfaces.
Towers for wind energy power plants are constructed from prefabricated concrete parts manufactured in a prefabricated part facility. According to a typical state of the art method, the prefabricated concrete parts are transported to the assembly site after they are manufactured and placed on top of one another to assemble a tower. However, to accomplish this, they must first be straightened with respect to one another. In this case, a casting compound is placed between the prefabricated parts so the large production tolerances of the prefabricated concrete parts—which generally amount to several millimeters with large parts as is the case here—are compensated. Furthermore, a casting compound is necessary in the joint between the prefabricated parts to seal the tower. The disadvantage of this method is that building by straightening the parts requires a lot of effort and is time consuming. Moreover, the building of the tower at the assembly site is possible only under good weather conditions.
For this reason, DE 10 2008 016 828 A1 suggests an improved method for manufacturing prefabricated concrete parts for wind energy power plants. Here, the prefabricated concrete part is manufactured in a casting mold with a level floor so that the underside of the prefabricated concrete part can be very accurately manufactured.
A layer of epoxy resin milled over parallel to the underside after hardening is applied on the upper side of the prefabricated concrete part. In this method, the casting mold must already be very accurate for the manufacturing of the level underside. Thus, the manufacturing of the mold is relatively difficult. Furthermore, the grinding station must make available a precisely positioned seat for the prefabricated concrete part.
The task of the present invention is to suggest a method for building a tower from prefabricated concrete parts that allow the tower to be built easily and quickly.
The task is solved with the features of the independent claims.
In a method for building a tower, especially a tower for a wind energy power plant, at least one tubular tower section made up of annular prefabricated concrete parts arranged on top of one another is built with two horizontal contact surfaces. According to the invention, the annular prefabricated concrete parts are damped after pouring in a processing station in the prefabricated parts manufacturing facility and the two horizontal contact surfaces of the prefabricated concrete parts are processed in plane-parallel manner in a fixture to remove material. In this method, the horizontal contact surfaces made of concrete are refinished directly, so that the additional application of a leveling layer on the contact surfaces is no longer necessary. The difficult manufacturing of a very precise casting mold is not necessary either, as the horizontal contact surfaces are exactly refinished only after the pouring process has been completed.
A tower, especially a tower of a wind energy power plant, has at least one tubular tower section made of concrete that consists of annular prefabricated concrete parts arranged on top of one another with two horizontal contact surfaces. According to the invention, the two horizontal contact surfaces of the prefabricated concrete parts are refinished by removing material in a plane-parallel manner with a parallel and flatness deviation of only a few tenths of millimeters, preferably of less than 0.2 mm. The development of prefabricated concrete parts with such small tolerances allows the tower to be erected quickly by simply placing the structural parts on top of each other. Owing to the small tolerances during the erection, no alignment and leveling work is necessary any longer; only the centering of the generally annular prefabricated concrete parts placed on top of one another must be ensured. Compliance with such small tolerances in prefabricated concrete parts weighing several tons and measuring several meters is possible by favorably refinishing both contact surfaces in the same fixture.
It is advantageous when the prefabricated concrete parts with a parallel and flatness deviation of a few tenths of a millimeter, preferably of less than 0.2 mm, are re-ground. When a grinding process is employed, the desired precision can be achieved especially well, reaching tolerances in the range between 0.1 and 0.2 mm.
If a tower made of re-ground prefabricated concrete parts is built, then dry joints between two prefabricated concrete parts arranged on top of one another can be made without taking further measures and without using casting compounds owing to the very small parallelism and evenness deviations. These joints have a width of less than 0.5 mm already in the tower's unstressed condition. If the prefabricated concrete parts are re-ground very accurately with deviations of just 0.1 mm, the width of the joints in the unstressed condition less than 0.2 mm. If afterwards the tower's prefabricated concrete parts are stressed against one another with clamping devices and an initial stress is exerted on the tower, then the width of the joints can be reduced even more and the prefabricated concrete parts can be connected continuously without joints.
In this case, it is especially advantageous if the prefabricated concrete parts are braced by means of external pre-stressing tendons running along the tower's interior. As a result of this, the manufacture of the prefabricated concrete parts is simplified because no jacket tubes for the clamping devices must be provided. Also, the pre-stressing tendons remain accessible for inspection purposes and maintenance work.
If the joints are executed in a dry manner (i.e. without applying a casting or leveling compound between the prefabricated concrete parts) at the assembly site, the building of the tower is greatly simplified and can be completed quickly. The high-quality execution of the contact surfaces makes the sealing of the joints unnecessary, since they can be completely eliminated by bracing the prefabricated concrete parts.
For manufacturing the prefabricated concrete parts with exact plane-parallel horizontal contact surfaces, it is advantageous if the annular prefabricated concrete parts are turned on their vertical axis during processing. The easy processing of the horizontal contact surfaces in the same fixture is made possible with this method. It is especially advantageous that highly precise and parallel contact surfaces can be created in spite of the less than exact positioning of the prefabricated concrete part.
It is furthermore advantageous if the annular prefabricated concrete parts are processed in a horizontal fixture (i.e. in their subsequent assembly position) on a revolving table. This method allows conical or parabolic prefabricated concrete parts, in particular, to be easily positioned on the revolving table.
For clamping the prefabricated concrete parts on a revolving table, they are advantageously provided with a fastening device for securely holding the prefabricated concrete parts. The device can already be cast in them or be created in a recess in the concrete. For example, nuts for use as fastening devices in which a steel console engages can be cast.
For manufacturing annular prefabricated concrete parts with a large diameter, it is advantageous if, before re-grinding, they are put together from two or more ring segments and secured. Preferably, the prefabricated concrete parts are screwed or bolted together. After re-grinding, the prefabricated concrete parts are disassembled in ring segments for transportation to the assembly site. Owing to their smaller size compared to the complete rings, they can still be easily transported on the highway.
In a tower made of prefabricated concrete parts, the individual ring segments are put together again to become an annular prefabricated concrete part with the help of a casting compound. Since the casting compound is used in a very small area, the annular prefabricated concrete parts can nonetheless be very easily put together and assembled regardless of weather conditions. Additionally, the concrete segments can still be braced or screwed with each other.
If the annular prefabricated concrete parts consist of two or more ring segments, then it is furthermore advantageous if vertical contact joints are also executed in a dry manner between the contact surfaces of the ring segment-shaped prefabricated concrete parts. In this case, the ring segments are pre-stressed in horizontal direction, preferably with diagonally arranged clamping elements (e.g. with screws). The joint can nonetheless be created without screwed connections, in which case the vertical joint is held together only by the vertical bracing of the tower section made of concrete. Here, the ring segments of one ring are in each case arranged in twisted position against each other in successive rings.
To enhance the tower's sealing even more, however, it can also be advantageous to provide a sealing profile between the horizontal contact surfaces of the prefabricated concrete parts. To achieve this, the prefabricated concrete parts have an annular groove for a sealing profile on their upper horizontal contact surface. After re-grinding in the same fixture, the annular groove is incorporated into the upper horizontal contact surface of the prefabricated concrete parts. Preferably, the annular groove is inserted with a saw.
According to another advantageous further development of the invention, the prefabricated concrete parts should have at least one recess on their contact surfaces, preferably at least one bore hole so that an element (e.g. a plastic dowel) for securing the position and/or anti-twisting can be used in them. Here, several bore holes are preferably distributed evenly over the circumference.
After re-grinding, the recesses or centering bore holes are preferably incorporated into both horizontal contact surfaces, likewise in the same fixture.
According to an advantageous further development of the invention, after re-grinding and/or incorporating the annular groove and/or the recesses, the prefabricated concrete parts are measured with a contact-free measuring system, preferably in the same fixture. By combining several processing steps in one single processing station, the prefabricated concrete parts can be manufactured with great precision without rearrangement, in which case the positioning on a revolving table favorably allows processing with several tools and the measuring.
Further advantages of the invention are described with the help of the embodiments shown below, which show:
In this case, the tower section 2 made of concrete is made of individual, annular pre-fabricated concrete parts 5, which here consist in each case, in turn, of two ring segments 6, as can be seen in
During assembly of the tower section 2 made of concrete, the prefabricated concrete parts 5 are placed dry on top of one another and braced against each another. The prefabricated concrete parts 5 (see
In this case, the prefabricated concrete part 5 includes fastening devices 35 for clamping it on the revolving table 29. Depending on the execution of the seat of the revolving table 29, the conical prefabricated parts 5, in particular, can also be merely placed on a correspondingly shaped seat.
Thanks to the production steps independent from one another, namely pouring of the prefabricated concrete part 5 and manufacturing of the exactly horizontal contact surfaces 21, errors or tolerances of the pouring process cannot exert an effect on the development of the contact surfaces 21. Owing to the fact that both horizontal contact surfaces 21 are created in one production step and in the same fixture by refinishing the prefabricated concrete part 5, a difficult set-up of the prefabricated concrete part 5 in the processing station is furthermore not necessary, as the parallelism between the upper and lower contact surface 21 is always ensured. Even angular deviations in the fixture have no effect on the building of the tower 1 and the groove creation, as even if the prefabricated concrete part 5 is obliquely clamped, the parallelism of both contact surfaces 21 can be ensured.
Refinishing with a travel stand grinding machine 33 can re-grind the prefabricated concrete parts 5 with an accuracy of down to 0.1 to 0.2 mm, resulting in the smallest deviations from evenness and parallelism. By very precisely refinishing the prefabricated concrete parts 5 by re-grinding, the width of the joints 32 between the prefabricated concrete parts 5 placed on top of one another is less than 0.5 mm, preferably merely 0.2 mm. For this reason, the tower 1 can be erected at the assembly site without performing complex adjustment work and without using a leveling compound between the individual prefabricated concrete parts 5 by simply placing the prefabricated concrete parts 5 on top of one another. Once the desired tower height has been reached, the prefabricated concrete parts 5 arranged on top of one another are pre-stressed with pre-stressing tendons, thus reducing joint width even more. Owing to the minimal and precise development of the joints, special measures for sealing the tower 1 are therefore not necessary either. However, to ensure the tower's leak-proof sealing in any case, a sealing profile 31 (see
As also shown in
It is especially advantageous that the recesses 24, the annular groove 30 and, if need be, additional processing steps, can also be done in the same fixture so very precise prefabricated concrete parts 5 can be produced. Because all processing steps can take place after the pouring in one single processing station 27, the prefabricated parts 5 can be produced very economically in spite of the very precise execution. As can also be seen in
If the annular prefabricated concrete parts 5 consist of two or several ring segments 6 (as shown in
Finally, the vertical contact joints 23 between the individual ring segments 6 are cast on the ground to create stable annular prefabricated concrete parts 5. Since merely a very small area needs to be cast, the tower assembly is not delayed. If need be, the vertical contact joints 23 can be likewise executed in a dry manner, however.
So the individual ring segments 6 can be fixed in place against one another, diagonally arranged screw joints (not shown) can be provided in the area of the vertical contact joints 23. However, a fixation of the ring segments 6 to each other can also be accomplished solely by the pre-load force of the pre-stressing tendons 13 and an offset of the individual ring segments 6 in each ring 5. In this case, the vertical contact joints 23 of the following ring 5 are offset in each case by 90° (see
As can additionally be seen in
As can also be seen in
In the installed position, the adapter element 7 has a recess 21 on the lower end so that the pre-stressing tendons are merely guided within the wall of tower 1 in the area of the adapter piece 7 and otherwise extend along the interior of the tower outside the wall down to the foot section 4 of the tower 1, where they are also anchored. However, to guide the pre-stressing tendons 13, they could also be fastened or at least guided at certain distances along the height of the tower by means of suitable fastening or guidance elements. Instead of the tension accomplished with external pre-stressing tendons 13 shown here, the initial stress can naturally also be exerted on the tower section made of concrete 2 with pre-stressing tendons 13 placed in the concrete cross-section.
The invention is not limited to the embodiments shown. Modifications and combinations also fall within the scope of the invention.
Number | Date | Country | Kind |
---|---|---|---|
10 2010 030 047.0 | Jun 2010 | DE | national |
10 2010 039 796.2 | Aug 2010 | DE | national |
PCT/EP2011/057088 | May 2011 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2011/059713 | 6/10/2011 | WO | 00 | 6/27/2013 |