This application is the national phase under 35 U.S.C. § 371 of PCT/FI2002/000617 filed 8 Jul. 2002.
The invention relates to a method for operating a maritime unit, intended for seafaring, such as marine traffic, offshore operations, and/or the like. The maritime unit includes a frame structure, which is provided with at least power production and/or drive assemblies for the maritime unit, and at least three legs operated by a jack mechanism, on the one hand for steadying the maritime unit on the seabed by driving the legs from a standby position, as required by the maritime unit's shipping condition, downwards in a direction substantially vertical with respect to the frame structure and, on the other hand, for releasing the same from the seabed by driving the legs upward relative to the frame structure.
Mobile offshore rigs, especially at present, are designed both as, so-called semi-submersible drilling platforms and so-called jack-up drilling rigs, the latter being provided with legs or columns drivable in a vertical direction with respect to the frame structure of a drilling rig for steadying the drilling rig on the seabed in operating condition. Semi-submersible offshore rigs include an underwater section for supporting the actual working platform on the surface. This type of drilling rig is not secured to the seabed at all in a drilling condition, and therefore, such a drilling rig must be provided with expensive and sophisticated articulation and motion compensating mechanisms between a ground drilling mechanism and an offshore rig in order to enable drilling on rough seas. Both manufacturing and operating costs for this particular type of offshore rigs exceed many times those of the above-mentioned jack-up type drilling rigs.
In particular, Finnish patents Nos. 96896 and 100197 disclose solutions, especially for further development of traditional jack-up type drilling platforms. The solution disclosed in the former of these patents is intended for improving safety and usability aspects in an offshore rig in such a way that living quarters, included in the drilling rig, are designed as a movable unit, whereby, in a preferred application, it is removed, at least for the duration of a drilling operation, in a direction opposite to the traveling direction of a drilling unit.
The latter patent offers a solution, which is intended for improving the usability of a jack-up type drilling rig, particularly in reference to the safety of attachment and detachment procedures. Therefore, below the bottom of a frame structure is provided an air space, which is exhaustible for a shipping condition of the drilling rig and which is injected with air for building an air cushion or the like underneath the drilling rig for the duration of the above-mentioned procedures.
At present, offshore operations are still carried out by using prior known maritime units of so-called liftboat type.
Presently, a particular drawback in the above type of maritime units steadied on the seabed is the primitivity of jack mechanisms operating the legs or columns thereof. The reason for this is that these are conventionally designed with highly traditional mechanisms. Such traditional jack mechanisms, capable of sufficiently smooth hoisting, are generally implemented by using rack-and-pinion operated gear assemblies, which are very slow and highly expensive to design because of long racks. On the other hand, there are presently available a number of jack mechanisms driven directly by hydraulic cylinders, but such hydraulic mechanisms, as available at present, require that, as the stroke of each hydraulic cylinder has come to a stop, each movable leg or column be provided with a tenon-and-mortise locking for the duration of returning this particular cylinder to its starting position for the next stroke and the next tenon-and-mortise locking. As a result, traditional hydraulic mechanisms are not capable of stepless operation. Slowness is further enhanced by the fact that the legs or columns are never level with each other on the bottom of the sea. As the cylinders for one leg or column reach the end positions thereof and stop for relocating the tenons, all the rest of the legs come to a stop as well, even though a relocation of the tenons thereof is not yet called for or even desired. Consequently, such mode of operation is extremely tedious and laborious, in addition to which the automation of processes associated with operating the legs or columns is highly inconvenient and expensive, as such a process requires highly sophisticated accessory equipment, particularly for providing a reliable locking action.
Thus, all prior art operating modes are very slow. In addition, the gearshift-based solutions, capable of continuous hoisting action, are extremely expensive in terms of costs.
It is an object of a method of the invention to provide a decisive improvement regarding the above-discussed problems, and thus to essentially raise the existing state of the art. In order to fulfil this objective, a method of the invention is principally characterized in that at least the legs of a maritime unit are operated on a so-called disk brake principle for enabling a substantially stepless drive therefor, particularly regarding the manipulation and locking thereof, the maritime unit having each of its legs provided with a brake disk system, such as one or more brake flanges or the like, extending longitudinally of the leg and, on the other hand, the maritime unit having its frame structure provided with a brake system, such as one or more brake shoe elements or the like, operable in a vertical direction by means of a jack mechanism.
The most important benefits gained by a method of the invention include its simplicity and efficiency, as a result of which it is possible to rationalize significantly the available state of the art, regarding particularly the operation of legs or columns in various offshore units. The invention enables manipulation of the legs, such that both the descent and ascent thereof to and from the seabed, as well as the levelling operations of an offshore unit necessary in certain conditions, are feasible in a totally stepless and even fully automated fashion without subjecting the legs to labour-intensive “trimming” operations and mechanical locking actions. Actuation of each leg in a maritime unit is feasible e.g. by means of two or more brake shoe elements, which are set one below the other in a vertical direction and apply their action on a single brake flange in a brake disk system included therein, and which are operated by means of separate jack mechanisms, such as hydraulic cylinders or the like. Hence, it is further possible to provide such a function that each leg of an offshore unit is actuated in a substantially stepless manner by operating these brake shoe elements alternately in such a way that, in an operation involving a single, appropriately movable brake shoe element pressing into engagement with a brake flange, one or more movable brake shoe elements presently in a rest position are being returned relative to the brake flange to a standby position in anticipation of the next operation. Particularly in jack-up type offshore structures, as discussed above, or e.g. in offshore vessels of a liftboat type, it is advantageous to further control the motion of each leg or column by means of fixed brake shoe elements, arranged in conjunction with a frame structure and functioning largely as backup features principally similar to traditional locking systems. In this context, it is further preferred that the brake shoe system be designed with brake shoe elements, which in a standby condition are pressed in a self-powered, such as spring-biased manner, or in response to the gravity of a rig, into engagement with a brake disk system and, on the other hand, are disengaged therefrom in an operating condition in response to an auxiliary force, such as by the action of a hydraulically operating release mechanism.
The invention relates also to a maritime unit designed in accordance with the method.
The most important benefits gained by a maritime unit of the invention include its simplicity and reliability in operation. According to the invention, a maritime or offshore unit, provided with both brake disk and brake shoe systems, is implementable with extremely simple and reliable constructions which, unlike traditional solutions, are also adaptable to automation in such a way that the use of legs or columns in various situations does not necessitate any extra and tedious procedures, e.g. for locking the legs. Another essential benefit gained by a maritime or offshore unit of the invention is that the operation of the legs can be implemented in such a way that the manipulation thereof in all conditions proceeds in continuous and stepless actions. Thus, one significant benefit gained by a maritime unit of the invention lies in the fact that it enables the use of extremely simple constructions by avoiding the use of e.g. separate and expensive rack systems and locking systems, since the jack mechanisms to manipulate the legs are implementable by means of brake shoe/brake flange systems operating on quite simple principles.
The invention will be described in detail in the following specification, while reference is made to the accompanying drawings, in which
a and 7b shows another system which is alternative to the solution depicted in
The invention relates to a method for operating a maritime unit 1, intended for seafaring, such as marine traffic, offshore operations, and/or the like, said maritime unit comprising a frame structure 2, which is provided with at least power production and/or drive assemblies for the maritime unit, and at least three legs 3 operated by a jack mechanism 5, on the one hand for steadying the maritime unit 1 on the seabed by driving the legs 3 from a standby position, as required by the maritime unit's shipping condition, downwards in a direction substantially vertical with respect to the frame structure 2 and, on the other hand, for releasing the same from the seabed by driving the legs 3 upward relative to the frame structure. At least the legs 3 of the maritime unit 1 are operated on a so-called disk brake principle for enabling a substantially stepless drive therefor, particularly regarding the manipulation and locking thereof, the maritime unit having each of its legs 3 provided with a brake disk system 3a, such as one or more brake flanges 3a′ or the like, extending longitudinally of the leg and, on the other hand, the maritime unit having its frame structure 2 provided with a brake system 5a, such as one or more brake shoe elements 5a′ or the like, operable in a vertical direction by means of a jack mechanism 5.
Especially
The foregoing solution includes a drilling unit 4, which is adapted to be movable in a substantially horizontal plane relative to the frame structure 2 by means of a first offset mechanism 6, such as electrically, pressure-medium operated and/or similar actuators or a slideway system or the like, for carrying out the drilling in a drilling operation essentially from outside the frame structure 2. In order to improve the offshore rig 1 in terms of its usability, regarding particularly the safety of engagement and disengagement procedures, the frame structure bottom or floor 1b is provided therebelow with an air space 10a, which is exhaustible for the offshore rig's shipping condition and constructed e.g. with portable wall elements 10c, and which can be injected with air by means of an injection assembly 10b for producing an air cushion underneath the frame structure 2 for the duration of the above-discussed procedures.
In a preferred embodiment of the invention, the offshore unit has its leg or column 3 actuated on principles shown in
In a further preferred embodiment of the invention, the offshore unit has each of its legs or columns 3 actuated in a substantially stepless manner by using alternately two or more brake shoe elements 5a′ applying their action on a single brake flange 3a′ in a brake disk system 3a, particularly on a principle shown e.g. in
The movement of each leg 3 is preferably also controlled by means of one or more immobile brake shoe elements 5a″ mounted in connection with the frame structure 2. In a further preferred embodiment, the maritime unit 1 has one or more of its immobile and/or mobile brake shoe elements 5a′, 5a″ first of all pressed in a standby condition in a self-powered, such as spring-biased manner, into engagement with the brake disk system 3a and, on the other hand, has the same disengaged therefrom in an operating condition in response to an auxiliary force, such as by the action of a hydraulically operating release mechanism. The above-discussed arrangements can be used for maximizing safety, such that, when e.g. the hydraulic system of an offshore unit malfunctions, there will be no risk as the brake shoe elements remain in a self-powered compressive engagement with the brake flanges.
Thus, the invention relates to a maritime or offshore unit for the above purpose. According to the invention, the offshore unit 1 has at least its legs or columns 3 adapted to be operated on a so-called disk brake principle for enabling a substantially stepless operation therefor, regarding especially the manipulation and locking thereof, the offshore unit having each of its legs 3 provided with a brake disk system 3a, such as one or more brake flanges 3a′ or the like, extending longitudinally of the leg, and, on the other hand, the offshore unit has its frame structure 2 provided with a brake system 5a, such as one or more brake shoe elements 5a′ or the like, movable in a vertical direction by means of a jack mechanism 5.
As shown in
In this context, the maritime unit 1 has one or more of its immobile and/or mobile brake shoe elements 5a′, 5a″ further preferably adapted, first of all, to press in a standby condition in a self-powered, such as spring-biased manner, into engagement with the brake disk system 3a and, on the other hand, to disengage therefrom in an operating condition in response to an auxiliary force, such as by the action of a hydraulically operating release mechanism.
In a further preferred application, especially in reference to the embodiment shown in
It is obvious that the invention is not limited to the embodiments discussed or described above, but can be subjected to considerable modifications within the basic inventive concept. Hence, a method of the invention can be utilized in a multitude of technically varying constructions and general configurations in case of a maritime unit. In addition, it is of course possible to outfit an offshore unit with more equipment than what is described above, for example with conventional propeller mechanisms for enabling the self-propelled maneuvering of a maritime unit, and for example with anchoring systems designed according to the invention, etc.
Naturally, the offshore unit, constructed with a method of the invention, has its legs or columns provided, if necessary, with appropriate cleaning systems, especially for cleaning or washing the brake disks, included in a brake disk system, for removing seaweed, grease, or other debris interfering with braking. This type of solutions can be implemented e.g. with totally mechanical systems, or perhaps on ultrasound principle. In this context, it is naturally also possible to utilize e.g. pneumatic drying systems or the like. Therefore, a method of the invention can be further applied e.g. in such a way that the legs or columns of an offshore unit are lowered, if necessary, one by one, pairwise, or all together by releasing all brake systems, in which case it may be advisable to outfit the inventive maritime unit further with systems for monitoring the movement of the legs, such as acceleration sensors or the like, in such a way that, when the speed of movement exceeds a set threshold, the movement thereof is limited e.g. with immobile brake shoe elements.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/FI02/00617 | 7/8/2002 | WO | 00 | 1/7/2005 |
Publishing Document | Publishing Date | Country | Kind |
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WO2004/005129 | 1/15/2004 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
2967400 | Grant et al. | Jan 1961 | A |
2969648 | Rechtin | Jan 1961 | A |
3727414 | Davies | Apr 1973 | A |
3876181 | Lucas | Apr 1975 | A |
4270877 | Post | Jun 1981 | A |
4387881 | McDuffie | Jun 1983 | A |
4398847 | Horowitz et al. | Aug 1983 | A |
4411408 | Radovan et al. | Oct 1983 | A |
4427319 | Mayr | Jan 1984 | A |
4479401 | Korkut | Oct 1984 | A |
4589799 | Hotta et al. | May 1986 | A |
4655640 | Gillis | Apr 1987 | A |
4813814 | Shibuta et al. | Mar 1989 | A |
5035542 | Bassett | Jul 1991 | A |
5139366 | Choate et al. | Aug 1992 | A |
5906457 | Choate et al. | May 1999 | A |
5915882 | Darwiche et al. | Jun 1999 | A |
6030148 | Tormala et al. | Feb 2000 | A |
6030149 | Foo et al. | Feb 2000 | A |
6652194 | Ingle | Nov 2003 | B2 |
Number | Date | Country |
---|---|---|
3302865 | Aug 1984 | DE |
Number | Date | Country | |
---|---|---|---|
20060065113 A1 | Mar 2006 | US |