The present invention concerns a wall structure cutting wire saw. Particularly, the invention relates to a saw for cutting inclined cuts through legs on GBS platforms.
When offshore oilfields are depleted or offshore platforms of some reason are taken out of service, the companies running the installations are obliged to remove or maintain at least parts of the installation. Such decommissioning and removal poses several challenges. One challenge is removal of the topside on GBS offshore installations. Many installations include a topside with a Main Support Frame or MSF fixed to the gravity based structures (GBS) legs. In many cases, these legs must be cut before the MSF can be lifted. Legs of this kind are often made of steel reinforced concrete.
Cutting of GBS legs is proposed in GB2458053 (B), (same applicant). This publication proposes providing a wire saw with a first frame surrounding the leg and moving a second frame with a sawing wire loop in relation to the first frame and cut the leg. The saw spans the entire diameter of the leg. The cut is horizontal and a cut surface is plane. The leg, formed with a wall structure, does not form a part of the saw.
With the above solution, the cut transition between the upper part and the lower part remains plane, and there is a risk that the upper part/topside move in a horizontal plane under the influence of wind, large waves, due to motion in the structure etc. Furthermore, the magnitude of the span of the saw, may reduce the accuracy of the cut, and an inaccurate cut can make the situation difficult. An accurate cut is also important to avoid any issues with inadvertently cutting into reinforcing steel inside the concrete. Cutting into stressed steel reinforcements extending downwards from the cut that may jeopardize the integrity of the leg with possible leg failure and fatal consequences.
A cutting process is time consuming, and it is important that the GBS maintains its integrity, only resting on its legs, even after the legs are cut. In some cases, the GBS must remain complete, with its legs cut off for extended periods of time, for instance while waiting for a weather window with a sufficiently calm weather to allow a topside to be lifted off the cut legs.
Accordingly there is a need for a gravity based structure with legs that for a time period after the legs are cut and before the topside is lifted off, maintains its structural integrity to satisfy safety requirements and to prevent a catastrophe. It is a purpose with the present invention to provide a solution that will enable a GBS to resist a 100 year wave in the above explained cut off state, only resting on its cut off legs due to gravity. Furthermore, it is a purpose to reduce the risk that the topside move sideways due to fluctuating forces from wind and waves. Microscopic movements of the legs may result in side forces acting on the cut interface, allowing the topside to gradually work it way sideways on the legs to the extent that an unpredictable situation may be the result.
The present invention solves this issue by providing a platform with legs that are cut off, still in a horizontal plane, but at an angle to allow the transition between to two cut part to form an obtuse cone. The upper and lower parts are formed simultaneously, and the cutting process will induce negligible motion in the cutting area.
Furthermore, the present invention provides a wire saw where the wall structure of the leg forms a part of a sawing system.
Cutting of such legs involve a certain risk, and it is an advantage if the cutting can be controlled from a remote location to reduce the risk for operating personnel.
In the following description are the words elliptical and ellipsis intended to cover circular, oval or any other shape of a cross section without sharp corners. The words elliptical and ellipsis is intended to describe shapes allowing a loop of rails to surround the cross section both internally and externally without being interrupted by sharp corners preventing a master saw unit and a slave unit running on the rails from performing a complete round around the cross section. In the most common situation, the ellipsis is a circle. The shape of the cross section depends on the structure to be cut. Such structures may include cooling towers, chimneys and silos.
Accordingly, the present invention relates to an elliptical wall structure cutting wire saw with a master saw unit with master rail runner elements adapted to run on a rail with a first set of rails forming an ellipse at a first side of the elliptical wall structure. The master saw unit includes a wire drive motor, a wire magazine accommodating a portion of a of cutting wire in a cutting wire loop, a saw drive adapted to drive the master saw unit along the first set of rails and a wire tension actuator. A slave unit with at least one slave return wheel and slave rail runner elements is adapted to run on a second set of rails forming an ellipse at a second side of the elliptical wall structure. A first set of rails forming an elliptic circular track is adapted to be secured in a horizontal plane to the first side of the wall structure, and a second set of rails, forming an elliptic track, is adapted to be secured in a plane to the second side of the wall structure. The GBS leg wall structure cutting wire saw is adapted to perform a complete cut around the GBS leg wall structure in one operation.
The slave return wheel may be located above two cutting gap guide wheels on the master saw unit in relation to a horizontal plane.
The wall structure cutting wire saw may further include a third set of rails adapted to be secured to the first side of the wall structure at a distance from and parallel to the first set of rails.
At least one of the sets of rails may include a gear rim or a pitch rack.
The slave unit may includes a slave drive motor for driving the slave unit along the second set of rails.
The slave drive motor may be battery powered, and the slave unit may include a battery pack.
The master saw unit and the slave unit may include communication means adapted to coordinate the speed of the master saw unit and the slave unit along their respective rails and to communicate sawing parameters between the wall structure cutting wire saw and a remote controller. The communication means may be wireless communication means.
The master saw unit and the slave unit include retaining elements holding the master saw unit and the slave unit to their respective rails.
The retaining elements holding the master saw unit and the slave unit to their respective rails may be formed by the master rail elements and the slave rail elements respectively.
The wall structure cutting wire saw may further include a wall structure, wherein the first set of rails is secured to the first side of the wall structure, and the master rail elements of the master saw unit may rest against the first set of rails. The second set of rails may be secured to the second side of the wall structure, and the slave rail elements of the slave unit may rest against the second set of rails. The cutting wire in the cutting wire loop extend through the reinforced concrete wall structure, between the master saw unit and the slave unit.
The first set of rails secured to the first side of the wall structure may form an inner ellipsis inside the GBS leg, and the second set of rails secured to the second side of the wall structure forms an outer ellipsis outside the GBS leg.
The circles formed by the tracks are located in a horizontal plane.
The sawing wire may be inclined and produce a cut in a range of 1-5° off a horizontal line.
The sawing wire may be inclined and produce a cut at an angle of 5° off a horizontal line.
The sawing wire may be inclined and produce a cut at an angle of 10° off a horizontal line.
The sawing wire may be inclined and produce a cut at an angle of 5°-10° off a horizontal line.
Short description of the enclosed drawings:
Detailed description of the enclosed drawings with reference to an embodiment of the invention:
The upper leg portion (not shown in
The sawing portion 9 typically includes a flexible and longitudinal diamond element such as a diamond wire typically used for sawing purposes. A sawing portion including a blade is more difficult to use as the vertical load from the upper leg portion is considerable, and a blade will typically be jammed between the upper leg portion and the lower leg portion.
In this disclosure is the term “circular cross-section” intended to cover slightly elliptical cross-sections in a horizontal plane. It is however relevant that the cuts are performer in a horizontal plane to prevent any forces acting sideways.
The cut is performed in a horizontal plane as gravity is used to hold the cut elements together and to avoid forces with a horizontal component.
The master saw unit 12 includes a sawing wire magazine 17 with two sawing wire magazine drums 24, holding the sawing wire. The magazine drums include twenty loops/revolutions of wire to hold about 53 meters of wire. The sawing wire magazine 17 allows the sawing wire to contain a sufficient amount of diamonds or another cutting/abrasive material to be embedded in the cutting wire. The distance between the magazine drums 24 is controlled by a tension actuator 21 to control the tension in the cutting wire 15. The electric wire drive motor 18 drives one of the magazine drums to 24 to rotate the wire loop formed by the sawing wire. Four wire guide wheels 22, guides the sawing wire 15 between the cutting portion of the wire saw and the wire magazine 17. Free wheeling slave return wheel 23 on the slave unit 13 returns the cutting wire loop from the slave unit 13 and back to the master saw unit 12. Push wheel 26 ensures that the cutting wire not is pushed off slave return wheel 23 when the cutting wire 15 is exposed to forces in the direction of the cut and the saw rails. The slave return wheel 23 and the push wheel 26 are located above two cutting gap guide wheels 27 in relation to a horizontal plane, to perform the inclined cut. Any of the cutting gap guide wheels 27, the slave return wheel 23 and the slave push wheel 26 may be slightly inclined to rotate the cutting wire 15 around its own axis. The motion of the sawing mechanism 12 and the slave unit 13 is coordinated by the saw drive driving the master saw unit 12 along the inner saw rail 7 and the gear rim 14, and the corresponding drive mechanism on the slave unit 13 drives the slave unit along the outer saw rails 8 and an outer gear rim. The drive mechanism on the slave unit 13 is typically battery powered.
An example of a leg to be cut: a leg with an inner radius of 5405 mm and an outer radius of 6245 mm and a thickness of 840 mm, may require a sawing wire loop with a length of typically 50-55 m.
Number | Date | Country | Kind |
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20180147 | Jan 2018 | NO | national |
Filing Document | Filing Date | Country | Kind |
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PCT/NO2019/050026 | 1/30/2019 | WO | 00 |