Lock for telescopic crane system
The telescopic lifting system with pulley and locking mechanisms addresses the challenges of mobilizing offshore wind turbine maintenance by providing efficient, cost-effective, and stable lifting solutions at great heights.
Patent Information
- Application Number
- FR2023006305
- Authority / Receiving Office
- FR · FR
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-06-19
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2043-06-19
AI Technical Summary
Existing lifting systems for offshore wind turbines, particularly those that are floating, are difficult to mobilize, expensive, and lack the capability to efficiently reach great heights for maintenance and assembly tasks, with land-based cranes being bulky, costly, and requiring extensive mobilization time.
A telescopic lifting system with a tower composed of multiple sections that can extend and retract, featuring pulley systems and locking mechanisms to stabilize the sections, allowing for high lifting heights and efficient deployment.
Enables efficient assembly, maintenance, and disassembly of offshore wind turbines at sea, reducing mobilization time and costs, while minimizing space requirements and maintaining stability during high winds.
Smart Images

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Abstract
Description
Title of the invention: Lock for telescopic crane system
[0001] The present invention relates to the field of lifting loads to great heights, in particular for the assembly, maintenance and disassembly of fixed or floating offshore wind turbines.
[0002] The assembly, maintenance or disassembly of a wind turbine requires significant lifting means, both in terms of lifting capacity and working height. The problem is increased for offshore wind turbines. Thus, for the maintenance of a wind turbine, for example to replace a blade, a gearbox or an alternator, these lifting means can be brought out to sea, to the location where the wind turbine is installed; such lifting means are difficult to mobilize and the intervention is particularly expensive. A second solution, when the wind turbine is floating, is to bring it back to a port to use a land crane.
[0003] In the case where the wind turbine is brought back to a port, the cranes that are generally available do not allow intervention at great heights on the moving parts of a wind turbine or on its nacelle. A land-based mobile crane must then be mobilized.
[0004] However, such a crane has many disadvantages: - such a crane is rare and its mobilization time can be several months; - it is particularly bulky; it requires a large footprint, particularly during its assembly and disassembly; - its assembly and disassembly duration is more than one week for each operation; - a high cost; and, - limited use for intervention on the wind turbine.
[0005] For example, in 2021, to install a blade of the “Haliade-X” wind turbine prototype at a height of almost one hundred and fifty meters above the ground, this blade weighing two hundred tonnes with its lifting tool, it was necessary to use a “Liebherr 11350” crane which costs several hundred thousand euros to mobilize.
[0006] The aim of the invention is to propose lifting means allowing the assembly, maintenance or disassembly of a floating wind turbine at dock or a wind turbine at sea, fixed or floating, and which anticipates the continuous increase in the size of wind turbines.
[0007] According to a first object of the invention, a lifting system comprises a tower comprising at least two sections which can be telescoped together so that the tower can take at least one retracted position, in which the tower has a minimum height and a deployed position, in which the tower has a maximum height, and, hauling means for a cable provided for the deployment of an upper section relative to a lower section, among the at least two sections.
[0008] Preferably: - the upper section comprises a lower set of low pulleys arranged near a lower end of this section; - the lower section comprises an upper set of high pulleys arranged near an upper end of this lower section; - the hauling being carried out between these two sets of pulleys.
[0009] The high pulleys are advantageously double pulleys. The low pulleys are advantageously arranged in a herringbone pattern.
[0010] According to a second object of the invention, a lifting system comprises a tower comprising at least two sections which can be telescoped together so that the tower can take at least one retracted position, in which the tower has a minimum height and one deployed position, in which the tower has a maximum height, and means for locking said two telescopable sections together.
[0011] Preferably: - the upper section comprises a striker having a substantially oblong hole extending vertically; - the section comprises a lock having a high pin and a low pin both provided to engage the striker in the hole; such that, in a locked position, the upper pin is in substantially snug engagement with an upper end of the oblong hole, and, the lower pin is in substantially snug engagement with a lower end of the oblong hole, such that the striker is substantially immobilized vertically relative to the latch
[0012] Advantageously, the locking means comprise two latches, one for engaging the lock in a retracted position of the upper section relative to the lower section, the other latch being provided for engaging the lock in a deployed position of the upper section relative to the lower section.
[0013] According to a third object of the invention, a method for locking a system according to the invention comprises the following steps: - the strike plate is positioned at a height greater than a locking height provided for the locking position, so that the upper pin can penetrate with clearance between the upper and lower ends of the oblong hole; then, - the upper pin is inserted into said oblong hole; then, - lower the upper section until it rests on the upper pin; then, - the lower pin is inserted into the oblong hole. Brief description of the figures
[0014] Several embodiments of the invention will be described below, by way of non-limiting examples, with reference to the appended drawings in which:
[0015] [Fig.l] is a schematic elevational view of a telescopic lifting system according to, on the right in retracted configuration, on the left in fully extended configuration;
[0016] [Fig.2] is a top view in isometric perspective of the lifting system of [Fig.l] used to manipulate a blade of an offshore wind turbine;
[0017] [Fig.3] Illustrates four stages of deployment of the system of [Fig.l], from the retracted configuration on the left to the fully deployed configuration on the right;
[0018] [Fig.4] is a half view, from above, of the system, illustrating in particular a telescoping device according to the invention;
[0019] [Fig.5] schematically illustrates a hauling system for deploying a telescopable section of the lifting system;
[0020] [Fig.6] is a schematic elevation view, three-quarter view and isometric perspective from above, of the telescoping section of [Fig.5];
[0021] [Fig.7] illustrates several partial views of the section of [Fig.5], including a truncated and elevational half-view of this section, a quarter top view according to 7A illustrating locking means, a quarter horizontal section according to 7B illustrating a set of pulleys, at the base of the section, an isometric view 7C of the locking means, and, a detail 7D of these means; and,
[0022] [Fig.8] illustrates four steps for locking together neighboring sections of the lifting system according to the invention. Detailed description
[0023] The figures illustrate a lifting system 1 according to the invention.
[0024] The lifting system 1 comprises a telescopic tower 11 and a crane 12 mounted on top of the tower 11. The crane 12 comprises a lifting boom 14. The crane illustrated is of the PC400 type, supplied by Favel-Favco-Berhad (Malaysia).
[0025] In the illustrated example, the tower 11 comprises a base 10 and four elements T1-T4 designed to slide vertically relative to each other. Each element has a substantially square horizontal section, symmetrical around a tower axis XI1; the tower is mainly made up of a lattice of metal beams.
[0026] A first section T1 is rigidly fixed to the base 10 and extends upwards from the base 10; a second section T2, of reduced section, is slidably mounted inside the first; a third section T3, of smaller section, is slidably mounted inside the second; the fourth section T4, of even smaller section, is slidably mounted inside the third element. The fourth section is the upper section and supports, at its top, the crane 12. The crane is mounted so that it can rotate around the axis XI of the tower relative to the upper section T4.
[0027] [Fig. 1] illustrates two configurations of tower 11, on the left in its fully extended configuration, in its maximum height H11D, and, on the right in its retracted configuration, in its minimum height H1 IR.
[0028] In the example illustrated, the maximum height H11D of the tower, measured between the top of the base, that is to say from the lowest section of the first section T1, to the top of the fourth section is one hundred and ten meters, H11D = 110 m. Measured in the same way, the minimum height H1 IR of the tower 11 is forty meters, H1 IR = 40 m. Thus, when the boom of the crane 12 is fully erected, the height under hook HC can reach more than one hundred and seventy-five meters above the base 10.
[0029] [Fig.2] illustrates the system 1 in use for handling, here the installation of a blade 2 of a wind turbine 3 at sea. In this example, the wind turbine 2 is fixed to the seabed. The system 1 is fixed on a self-elevating platform 4, of the jack-up type, resting by feet 5 on the seabed. A stock 6 of blades is arranged on the platform 4, ready to be installed on other wind turbines of the same farm, currently being assembled.
[0030] [Fig.3] illustrates, from left to right, four stages 3A-3D of the telescoping of tower 11.
[0031] In a first step 3A, the tower is in its retracted configuration.
[0032] In a second step 3B, an assembly T2-T4 consisting of the second section T2, the third section T3 and the fourth section T4 was lifted as a unit, relative to the first section TL. As illustrated in [Fig.3], the assembly T2-T3 was lifted to a height H3B which corresponds to the position of the second section T2 in the fully deployed configuration (see [Fig.l]).
[0033] In a third step 3C, an assembly T3, T4, consisting of the third section T3 and the fourth section T4, was lifted as a unit relative to the second section T2. As illustrated in [Fig.3], the assembly T3-T4 was lifted to a height H3C which corresponds to the position of the second section T2 in the fully deployed configuration (see [Fig.l]).
[0034] In a fourth step 3C, the fourth section T4 was lifted relative to the third section T2. As illustrated in [Fig.3], the fourth section T4 was lifted to a height H3D so that the tower 11, therefore the lifting system 1, is in its fully deployed configuration.
[0035] Preferably, during the deployment operations of the system 1, the boom 14 of the crane 12 is straightened so that the loads are lowered as close as possible to axis XI of the tower. Typically, in the example illustrated, arrow 14 forms an angle A14 of approximately eighty degrees.
[0036] The sequence described above is recommended but not mandatory. The sections may be deployed in another order. Sections may be left retracted if the height to be reached does not justify their extension. Lifting operations may be carried out with retracted sections as long as they are locked together, as will be explained with reference to [Fig.8].
[0037] [Fig.4] illustrates a half-top view of the tower 11. It shows the four sections T1-T4 nested within each other, above the base 10. It also shows elements of telescoping systems 2, in particular pulleys 16, winches 17. In the example illustrated, each of the four faces of the tower 11 comprises its own telescoping system 2. Each telescoping system comprises three winches 17: - a first winch 171 for telescoping the second section T2 or the set of three sections T2-T4; - a second winch 172 for telescoping the third section T3 or the set of two sections T3-T4; and, - a third winch 173 for telescoping the fourth section T4. The first, second and third sections T1-T3 each comprise locking means 18.
[0038] [Fig.6] illustrates the third section T3. Each of its faces comprises a lower set JBT3 of pulleys 16 and an upper set JHT3 of pulleys 16.
[0039] As particularly illustrated in [Fig.5], a high clearance JH of a section is pulled with a low clearance JB of a higher level section. In the example illustrated, the high clearance THT3 of the third section T3 is pulled with the low clearance of the fourth section T4. As a result, only the first, second and third sections T1-T3 have high clearances JH, and only the second, third and fourth sections T2-T4 have low clearances JB. The first section does not have a low clearance; the upper section, here the fourth section T4, does not have a high clearance.
[0040] We will now describe, with reference to [Fig.5], the pulley which allows the fourth section T4 to slide inside the third section T3.
[0041] In [Fig.5] we see, on one of the faces of the tower 11, one of the upper sets JHT3 of the third section T3 and the corresponding lower set JBT4 of the fourth section T4. We also see a cable 20 which, pulled on these sets JHT3, JBT4 and driven by the third corresponding winch 173, allows the deployment or retraction of the fourth section T4 relative to the third section T3.
[0042] The high set JHT3 comprises, in addition to the input pulley 16E, two double pulleys 16H. The low set JBT4 comprises five single pulleys. Thus, the cable 20, coming from the winch is first received by the input pulley 16E, returned downwards on a pulley low 16B, then returned to a first groove G1 of a first high pulley 16H, then returned downwards to a second low pulley 16B, then upwards onto the second groove G2 of the same first high pulley, then downwards to a third low pulley 16B, then upwards into a first groove G1 of the second high pulley, then downwards onto a fourth low pulley 16B, then upwards into the second groove G2 of the same second high pulley, then downwards onto the fifth low pulley 16B, then finally upwards to a fixed point PF of the fourth section T4. Thus hauled, the cable 20 forms ten strands which connect, on each face of the tower 11, the fourth section T4 to the third section T3, i.e. forty strands in total.
[0043] Section T3 will now be described in more detail, with reference to [Fig.7].
[0044] Section T3 comprises a metal lattice structure, which comprises four vertical uprights 21. The locking means 18 comprise four locks 22, each arranged at the top of a respective upright 21.
[0045] Each upright 21 further comprises two latches 23 for engaging with a lock of the lower section. Thus, the latches 23 of the third section T3, illustrated in FIGS. 6 and 7, are provided for engaging with locks of the second section T2. One of the latches 23, arranged near the top of the section, is provided for locking the section there in its retracted position, for example in configurations 3A and 3B of [Fig. 3]. The second latch 23, located lower on the upright 21, is provided for locking the section there in its deployed position, for example in configurations 3C and 3D of [Fig. 3].
[0046] The strike plates are identical to each other; each has substantially the shape of a vertical plate which extends diagonally from the upright 22 to which it is fixed away from the axis XI of the tower. As particularly illustrated in details 7C and 7D of [Fig.7], each strike plate is pierced with an oblong hole 24 which extends vertically, the lower and upper ends of which have substantially the shape of a semicircle of radius R24; the axis X24H of the upper semicircle and the axis X24B of the lower semicircle are distant from each other by a spacing distance D24 greater by a non-zero value J24 than the sum of these radii, that is to say that D24 = 2 x R24 + J24.
[0047] The oblong hole 24 widens slightly between the two axes X24H, X24B, so that at mid-height it has a greater width L24.
[0048] Rollers 26 serve as guides for the upper section. Thus, the rollers of the third section T3, visible in view 7A, are arranged to serve as guides for the fourth section T4. The rollers are arranged to be able to roll on the outer faces 21E of the uprights 21.
[0049] Elevation wedges 27 extend from the lattice structure. They constitute a safety feature; they are designed to come into contact with the structure of the lower section, to prevent the section being deployed from rising beyond a limit height relative to this lower section. Thus, the wedges 27 visible on the third section T3 are designed to come into contact with the second section T2.
[0050] As illustrated in view 7A, the pulleys 16 of the high set JH comprise an input pulley 16E and double pulleys 16H. As illustrated in view 7B, the pulleys 16B of the low set JB are arranged in a herringbone pattern. This herringbone pattern allows each strand extending between a groove G1, G2 to a corresponding low pulley to be vertical, as much as possible.
[0051] A locking procedure according to the invention will now be described, with reference to [Fig.8]. This figure illustrates, in section, three steps 8A-8D for locking in the deployed position of the fourth section T4 of the third section T3.
[0052] The lock 22 comprises a yoke 30, formed of two vertical flanks 300. A top pin 31 and a bottom pin 31. The pins 31, 32 are movable horizontally relative to the yoke 30, under the action of a respective double-acting cylinder 33. Each pin is fixed, with its cylinder, on a respective side of the yoke. Thus, in [Fig.8], the top pin 31 is fixed on the left on the yoke, and the bottom pin 32 is fixed on the right on the yoke 30. The pins are substantially identical to each other. Each pin has a cylindrical shape around a respective axis X31, X32. It has a radius R312, substantially equal to the radius R24 of the oblong hole 24 of the strikers. The axes of the pins are in the same vertical plane; this plane of axes X31, X32 is the cutting plane of [Fig.8].
[0053] In the first step 8A of [Fig.8], each of the pins 31, 32 is engaged in a respective flank 300, on the side of the yoke to which it is fixed. One of the strikers 23 of the fourth section T4 is arranged between the two flanks 300 of the yoke 30; the striker is arranged so that the axis of the upper pin 31 of the third section T3 extends substantially between the two ends, upper and lower, of the oblong hole 24 of the striker 23; thus, the upper pin is facing the region of greatest width L24 of the oblong hole. Since the section T4 may not be totally aligned with the section T3, it is thus ensured that each of the four upper pins 31 of the third section is indeed facing a corresponding oblong hole 24 and can penetrate it easily due to the play in height and width which compensates for the misalignment.This effect is due to the oblong shape of the hole and its greater width L24, which is greater than twice the diameter of the radius R24 of the ends of the hole.
[0054] In the second step 8B, the high pin 31 is advanced so that it is engaged in the oblong hole, and beyond, into the opposite flank 300.
[0055] In the third step 8C, the fourth section T4 is lowered until the striker rests by its upper end on the upper pin 31. The assembly of the four strikers 23 of the sections T4 resting on a respective upper pin, it is thus ensured that the fourth section T4 is suitably aligned with the third section T3 which carries it; in this position, the axis X32 is substantially aligned with the lower axis X24B of the oblong hole 24.
[0056] In the fourth step 8D, the lower pin 32 is advanced so that it is engaged in the oblong hole 24, and beyond, up to the opposite flank 300. In this position, the fourth section T4 is aligned and secured to the third section T3. If the action of a load lifted by the system 1 tended locally to lift the fourth section relative to the third, it would be prevented from doing so by the support of the lower pin 32 on the latch 23; If the action of a load lifted by the system 1 tended locally to lower the fourth section, it would also be prevented from doing so by the support of the upper pin 31 on the latch 23.
[0057] Such a locking method is useful for locking each of the telescoping sections, in the retracted position or in the deployed position.
[0058] It will indeed appear to those skilled in the art that various modifications can be made to the embodiments described above, in light of the teaching which has just been disclosed to them.
[0059] Thus, the number of sections of the tower may be other than four; for example, the tower may have three or five sections. Each or all may have a section which is not square but for example form a polygon with more than four sides; each or all may also be formed otherwise than by a lattice of beams, for example by solid sheets.
[0060] The number of tower sections and their respective height are preferably calculated so that in the retracted position the system has optimal dimensions for use as a harbor crane and in the deployed position the system has optimal dimensions for use in the maintenance of a floating wind turbine.
[0061] The number of winches can vary. There is not necessarily one winch per side and per telescoping section. However, multiplying the winches allows their capacity to be limited as well as the size of the cables and pulleys.
[0062] Unlike existing cranes, a system according to the invention makes it possible to achieve very high lifting heights by means of a rotating crane mounted on a telescopic tower with high vertical slenderness. The load passing substantially through the neutral fiber of the mast, or at least in the envelope of the support base, the problems of bending moments are reduced and controlled.
[0063] A system according to the invention may comprise a gantry and the tower is mounted on this gantry. The gantry being arranged on rails, it allows the tower and the entire lifting system to be moved parallel to the edge of the quay.
[0064] The fact of being able to leave the system immobile in the retracted position makes it possible to avoid the risks due to strong winds, which are significant at the seaside.
[0065] The possibility of dual use of the system, both for loading and unloading ships and for installing and removing parts of wind turbines from the quayside, is a real added value for a port intended for construction.
[0066] Furthermore, since a system according to the invention remains in position on its platform, its footprint is reduced. It requires neither assembly time nor space apart from the very reduced time required to deploy or fold the tower.
[0067] The system replaces without penalty a pre-existing quayside crane for loading or unloading ships, according to the principle that what can do more can do less. The system is and remains versatile for use between conventional heights for ships of all sizes and, for example, up to 200 meters for current high-capacity floating wind turbines.
[0068] A system according to the invention can be used to install the blades of floating wind turbines. This makes it possible to limit the use of a giant, high-capacity crane to the installation of the masts and nacelles. It is then possible, for example, to store the floats without blades, which takes up much less space than with the blades. The blades can then be installed with the lifting system according to the invention just a few days before towing the assembly out to sea, which is of real interest.
[0069] A system according to the invention can be used elsewhere than in a port. For example, it can be mounted on a self-elevating barge, in order to maintain offshore wind turbines fixed to the seabed. The compactness of the system allows the use of much smaller and much less expensive self-elevating platforms than the ships currently used to install very large wind turbines.
[0070] The system, mounted on a standard jack-up platform, can also be used to install blades for a wind farm under construction. This limits the intervention time of a large vessel and reduces the overall duration of the offshore campaign. This installation choice can prove to be very economical, especially in locations where installation periods are short, for example only a few months per year.
[0071] A system according to the invention can also be used temporarily on a floating wind turbine to carry out a heavy maintenance operation such as changing a blade or a gearbox, directly at sea.
[0072] As regards the two-stage locking principle, it will appear to those skilled in the art that the latch and its oblong hole could be replaced by another form of part that would first rest on the lower pin before being capped by the upper pin, or any other arrangement that first ensures the correct alignment of the sections before locking them. The retractable parts, called pins here, may not be cylindrical. Also, instead of moving in translation, these parts could be mounted rotating.
Claims
Claims
1. Lifting system (1), comprising a tower (11) comprising at least two sections (T1-T4) telescopable with each other so that said tower can take at least one retracted position, in which the tower has a minimum height (H1 IR) and one deployed position, in which the tower has a maximum height (H11D), and, means (18) for locking said two telescopable sections (T3, T4) together, characterized in that: - the upper section (T4) comprises a latch (23) having a substantially oblong hole (24) extending vertically; - the section (T3) comprises a lock (22) having a high pin (31) and a low pin (32) both provided to engage with said latch (23) in said hole (24);such that, in a locked position, the upper pin (31) is in substantially fitted engagement with an upper end of said oblong hole, and, the lower pin (32) is in substantially fitted engagement with a lower end of said oblong hole, such that said striker (23) is substantially immobilized vertically relative to said latch (22;
2. System according to claim 1, characterized in that the locking means comprise two latches (23), one for engaging the lock in a retracted position of the upper section (T4) relative to the lower section (T3), the other latch being provided for engaging the lock in a deployed position of the upper section (T4) relative to the lower section (T3).
3. Method for locking a system according to one of claims 1 and 2, characterized in that the following steps are carried out: - the strike plate is positioned at a height greater than a locking height provided for the locking position, so that the upper pin (31) can penetrate with clearance between the upper and lower ends of the oblong hole (24); then, - said upper pin (31) is made to penetrate into said oblong hole; then, - the upper section (T4) is lowered until it rests on said upper pin; then, - the lower pin (32) is made to penetrate into said oblong hole.