Assembly process of a telescopic tower
10465411 ยท 2019-11-05
Assignee
Inventors
Cpc classification
E04H12/34
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
F03D13/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E02B17/021
FIXED CONSTRUCTIONS
F05B2240/95
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/912
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/9151
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E04H12/342
FIXED CONSTRUCTIONS
E04H12/12
FIXED CONSTRUCTIONS
Y02E10/727
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
International classification
E04H12/34
FIXED CONSTRUCTIONS
E04H12/18
FIXED CONSTRUCTIONS
E04H12/12
FIXED CONSTRUCTIONS
E02B17/02
FIXED CONSTRUCTIONS
E04H12/00
FIXED CONSTRUCTIONS
Abstract
Assembly process of a telescopic tower (100) including at least one prefabricated concrete section, comprising the following steps: providing sections (2,4,6,8,10) in an initial position wherein superimposed sections are disposed coaxially within a base section (10); providing assembly means (14,16,18); providing operator support means (20) on the external surface of said base section (10) essentially vertically in correspondence with the upper edge of said base section (10); lifting the innermost superimposed section (2,4,6,8) radially from those that are in the initial position forming a joint between the lower end portion of said superimposed section (2,4,6,8) which is being lifted and the upper end portion of the radially external and immediately adjacent section (4,6,8,10); providing in said joint anchoring devices for immobilizing at least provisionally the corresponding sections (2,4,6,8,10) between one another.
Claims
1. Assembly process of a telescopic tower including at least one prefabricated concrete section, comprising a base section and a plurality of superimposed sections, wherein: the diameter of said base section is greater than the diameter of said superimposed sections, one of the superimposed sections is a top superimposed section supporting a wind turbine, the base section comprises an upper end portion, and the superimposed sections comprise upper end portions and lower end portions, characterized in that it comprises the following steps: a) providing the superimposed sections and the base section in an initial position wherein said base section is vertically disposed resting on an assembly surface and said superimposed sections are disposed coaxially within said base section, and wherein the upper end portion of the base section and the upper end portions of all the superimposed sections except the top superimposed section are arranged at the same height level; b) providing self-climbing assembly means capable of selectively lifting said superimposed sections, wherein said self-climbing assembly means comprise: a set of cables which connect the lower end portion of each of said superimposed sections and the upper end portion of the radially external and immediately adjacent section; a limiter means to fix each of said cable to each lower end portion of the superimposed sections; and a set of jacks arranged at the upper end portion of the base section and the upper end portions of the superimposed sections except the top superimposed section and connected to said cables, wherein a number of said jacks is smaller than said cables so that at least one of the jacks is successively connected to more than one cables and reusable for lifting more than one superimposed sections; c) providing operator support means on the external surface of said base section essentially vertically in correspondence with an upper end portion of said base section; d) lifting the innermost superimposed section radially from those that are in the initial position, by said assembly means, to an assembly position wherein a lower end portion of said superimposed section which is being lifted is situated essentially vertically in correspondence with an upper end portion of a radially external and immediately adjacent section in relation to said section which is being lifted, thus forming a joint between the lower end portion of said superimposed section which is being lifted and the upper end portion of the radially external and immediately adjacent section relation o said section which is being lifted, said joint being thus situated essentially vertically in correspondence with said operator support means; e) providing anchoring devices in said joint, for immobilizing at least provisionally the corresponding sections between one another, by operators housed in said operator support means; f) repeating steps d) and e) for the sequential lifting and immobilization of the remaining superimposed sections that are in the initial position, from the innermost to the outermost section radially; wherein the operator support means are maintained at the s position in he base section invariably during steps d) to f), wherein the operator support means enable the housing of operators that from said invariable position have direct access to said jacks used for the successive operations of lifting all the different superimposed sections of the tower through steps d) and f), wherein the operator support means enable the housing of operators that from said invariable position have direct access to anchoring devices used for the successive operations of immobilization of all the different superimposed sections of the tower through steps e) and f); g) removing the operator support means from the external surface of the base section after step f).
2. Assembly process of a telescopic tower according to claim 1, wherein said telescopic tower comprises guide means to guide the section which is being lifted along a predetermined trajectory.
3. Assembly process of a telescopic tower according to claim 2, wherein said guide means includes: at least one fixing member, fixed by a lower portion to the external surface of said base section so that it extends upward beyond the upper edge of said base section, at least one tensioning member which emerges from said fixing member in a position above the upper edge of said base section, and at least one displacement element disposed in the free end of said tensioning member; said tensioning, member being disposed to press said displacement element against a superimposed section which is being lifted.
4. Assembly process of a telescopic tower according to claim 3, wherein said fixing member a lattice girder and/or said tensioning members a rod and/or said displacement member is a wheel.
5. Assembly process of a telescopic tower according to claim 4, wherein said rod is of adjustable length.
6. Assembly process of a telescopic tower according to claim 1, wherein after step f) the process is carried out inversely in order to dismantle said telescopic tower.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and other characteristics and advantages of the present invention shall be revealed from the following description of an embodiment thereof, given only by way of non-limiting example, with reference to the attached drawings, wherein:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE INVENTION
(6) The figures in the attached drawings are all symmetrical with respect to its central vertical axis, except for part 300. Therefore, in the interests of clarity, parts 14, 16, 18, 20, 22, 24 and 26 only refer to one side of said central vertical axis, understanding that the similar parts disposed on the other side of said central vertical axis share the same references.
(7) With reference then to
(8) In this embodiment, the intermediate superimposed sections 4, 6, 8 all have straight cylinder form and the same length, the upper superimposed section 2 also has the form of a straight cylinder but it has a greater length than that of the intermediate superimposed sections 4, 6, 8, and the base section 10 has a truncated cone shape in a main lower portion and the form of a straight cylinder in the remaining portion, the total length of said base section 10 being larger than the length of said upper superimposed section 2.
(9) Furthermore, in this embodiment, by way of non-limiting example, the tower 100 is an off-shore tower, so that
(10) More specifically, after providing said sections 2, 4, 6, 8, 10 in an initial position wherein said base section 10 is vertically disposed resting on said assembly surface 200 and said superimposed sections 2, 4, 6, 8 are disposed coaxially within said base section 10, after providing assembly means 14, 16, 18 capable of selectively lifting said superimposed sections 2, 4, 6, 8, and after providing operator support means 20 on the external surface of said base section 10 essentially vertically in correspondence with the upper edge of said base section 10, all as shown in
(11) In this embodiment, wherein the tower 100 is an off-shore tower, it is preferred that said operator support means 20 are disposed above the maximum sea level foreseen.
(12) In accordance with the process of the present invention, the upper superimposed section 2 is first lifted followed by the superimposed section 4.
(13) Specifically,
(14)
(15) Finally, the
(16) As can be seen in
(17) With reference now to
(18) In this embodiment, the intermediate superimposed sections 4, 6, 8 all have the form of a straight cylinder and the same length, the upper superimposed section 2 also has the form of a straight cylinder but has a length greater than that of the intermediate superimposed sections 4, 6, 8, and the base section 10 has a truncated cone shape in a main lower portion and the form of a straight cylinder in the remaining portion, the total length of said base section 10 being larger than the length of said upper superimposed section 2.
(19) Furthermore, in this embodiment, by way of non-limiting example, the tower 100 is an off-shore tower, so that
(20) More specifically, after providing said sections 2, 4, 6, 8, 10 in an initial position wherein said base section 10 is vertically disposed resting on said assembly surface 200 and said superimposed sections 2, 4, 6, 8 are disposed coaxially within said base section 10, after providing assembly means 14, 16, 18 capable of selectively lifting said superimposed sections 2, 4, 6, 8, after providing operator support means 20 on the external surface of said base section 10 essentially vertically in correspondence with the upper edge of said base section 10, and after providing guide means 22, 24, 26 on the external surface of said base section 10, all as shown in
(21) In this embodiment wherein the tower 100 is an off-shore tower, it is preferred that said operator support means 20 are disposed above the maximum sea level foreseen.
(22) In accordance with the process of the present invention, the upper superimposed section 2 is first lifted followed by the superimposed section 4.
(23) Specifically,
(24)
(25) Finally,
(26) As can be seen in
(27) As can also be seen in
(28) In the event that the guide means are formed by discrete structures identical or technically equivalent to the discrete structures 22, 24, 26 of this embodiment, preferably at least three of said structures will be provided and preferably said structures will be distributed equidistantly along the circumference of the base section of the tower.
(29) Naturally, maintaining the principle of the present invention, the embodiments and construction details may largely vary from those described and illustrated purely by way of non-limiting example, without, due to this, departing from the scope of the present invention as defined in the attached claims.
(30) In particular, by way of non-limiting illustration, although the preceding description has been made in relation to a telescopic tower which supports a wind turbine, the process in accordance with the present invention is not limited to this type of towers.
(31) Likewise, by way of non-limiting illustration, although the preceding description has been made in relation to a telescopic tower that rests on an assembly surface of a foundation, the process in accordance with the present invention is not limited to towers that rest on a foundation.
(32) Also by way of non-limiting illustration, although the preceding description has been made in relation to a telescopic tower comprising support means of sections that maintain the sections in initial position at a certain distance from the assembly surface, in the process in accordance with the present invention the sections, or part of them, in initial position may directly rest on the assembly surface. In the embodiments described above, said limiter means 18 (wedge disposed in the cable 16 and stop plate containing the wedge) could therefore be disposed in the upper end of each cable 16, and said traction means 14 (jack fixed at the end of the cable 16) could therefore be disposed in the lower end of each cable 16. Nevertheless, according to the process in accordance with the present invention, in the embodiments described above the assembly of said traction means 14 or any other technically equivalent means are preferred in the upper end of said cables 16, to enable that the operators housed in the operator support means 20 have direct access to said traction means 14.
(33) Finally, also by way of non-limiting illustration, although the preceding description has been made in relation to a telescopic tower comprising assembly means including cables and jacks, the process in accordance with the present invention is not limited to this type of towers. For example, the assembly means may include push jack means that rest on the assembly surface and simply push each superimposed section according to the process of the present invention, or the assembly means may include a rack turret in the centre of the tower and at least one pinion that moves throughout the corresponding racks of the rack turret and simply pushes each superimposed section according to the process of the present invention.