This invention relates to a sacrificial breakaway mechanism and a method of sequentially disconnecting connectors. In one embodiment, it relates to a sacrificial breakaway mechanism for a subsea jumper system.
In subsea hydrocarbon extraction facilities, there is a requirement to limit the amount of force exerted on subsea structures. In particular, where connectors, such as flying leads (i.e. subsea jumper systems providing interconnections within a subsea development), are connected to multiple quick connection (MQC) plates on a subsea structure there is the possibility that a jumper containing the flying lead may become snagged, for example, by anchors or trawl boards, and a tensile force exerted on the jumper that is transmitted to, and causes damage to, the subsea structure. It is therefore prudent to install a sacrificial breakaway system which can limit the amount of force that may be exerted on a subsea structure through a jumper.
Such systems are known. These comprise breakaway mechanisms that disconnect all of the flying leads in the jumper simultaneously. An example would be a mechanism comprising a pair of MQC plates populated with male and female connectors and held to one another using a hydraulic release unit. If a jumper connected to one of the MQC plates is pulled with a force exceeding a predetermined limit, the hydraulic release unit will release the two MQC plates. However, all the connectors between the MQC plates will be disconnected simultaneously.
This type of known system has problems, e.g. it could cause problems in subsea hydrocarbon extraction facilities as unless a sequential shutdown order of components in the facility is followed, damage can be caused to well components (e.g. a downhole safety valve).
It is an aim of the present invention to overcome some of the problems associated with prior art sacrificial breakaway systems by providing a sacrificial breakaway system which allows for a controlled shutdown of well components by disconnecting connectors in a preselected sequence during breakaway.
In accordance with a first aspect of the present invention there is provided a sacrificial breakaway mechanism comprising:
In accordance with a second aspect of the present invention there is provided a method of sequentially disconnecting a plurality of connectors comprising the steps of:
The sacrificial element could be a shear pin.
The breakaway mechanism could further comprise a shearing mechanism, said shearing mechanism sequentially severing the connectors in sequence during the relative movement. The shearing mechanism could comprise a blade attached to one of the first piece and the second piece. The shearing mechanism could comprise a through-plate attached to the other of the first piece and the second piece. The through-plate could comprise a plurality of apertures which receive the plurality of connectors.
The plurality of connectors could vary in length, the relative movement acting to disconnect the plurality of connectors in order from shortest to longest.
The plurality of connectors could comprise respective tubes containing respective hydraulic lines. At least one of the hydraulic lines could be a low pressure hydraulic line and at least one of the hydraulic lines could be a high pressure hydraulic line. The sequential disconnection of the plurality of connectors could comprise severing the at least one low pressure hydraulic line before the at least one high pressure hydraulic line.
The plurality of connectors could comprise an electrical line.
The fixed structure could be a subsea structure. The first piece could be attached to the subsea structure via a multiple quick connection plate. The second piece could be attached to a tube bundle via a termination flange. The second piece could be attached to a mini umbilical via a termination flange.
In one embodiment, the invention comprises a subsea hydrocarbon extraction facility including a sacrificial breakaway mechanism as described above.
The invention will now be described with reference to the accompanying drawing, in which:
A sacrificial breakaway mechanism 1 according to an embodiment of the invention is schematically shown during installation in
The sacrificial breakaway mechanism 1 comprises a first piece 5 attached to the MQC plate 2 and a second piece 6 attached to the tube bundle 4 via a termination flange 7a, 7b. The second piece 6 carries a first half 7a of the termination flange and the tube bundle 4 carries a second half 7b of the termination flange. The two halves 7a, 7b are mechanically interfaced with one another. The first piece 5 and second piece 6 are connected to one another via a sacrificial element in the form of a shear pin 8. The shear pin 8 is configured such that a tensile load exceeding a predetermined threshold exerted on the second piece will causes the shear pin 8 to break.
The second piece 6 is also anchored to a subsea anchor point, such as a concrete block (not shown) located on the seabed, via a connector 9 and cable 10 during installation. This is important, as during installation loads of several tonnes may be imparted on the components of the sacrificial breakaway mechanism 1, particularly on the second piece 6 along a load path in the direction of arrow A. By anchoring the second piece 6 to an anchor point, these installation loads may be transmitted directly to the anchor point and prevent the shear pin 8 from fracturing prematurely.
A pair of tubes 11, 12 run between the MQC plate 2 and the second piece 6, running through the termination flange 7a, 7b. The first tube 12 carries a low pressure hydraulic line and the second tube 11 carries a high pressure hydraulic line.
The tubes 11, 12 run through a shearing mechanism 13, 14. The shearing mechanism comprises a through-plate 13 connected to the first piece 5 and a blade 14 attached to the second piece 6. The through-plate 13 comprises a plurality of apertures through which the tubes 11, 12 run in use. The blade 14 is capable of severing the tubes 11, 12 when laterally forced against them.
When a tensile force is exerted on the tube bundle 4 (e.g. a force in the direction of arrow A) which exceeds a predetermined threshold, the shear pin 8 breaks, allowing the second piece 6 to move relative to the first piece 5. The movement of the second piece 6 will be rightward with respect to the first piece 5 as depicted in
The relative movement between the first piece 5 and the second piece 6 also causes relative movement between the components of the shearing mechanism 13, 14. The tubes 11, 12 are held in place by the through-plate 13 and the blade 14 is forced laterally against the tubes, severing them sequentially.
As
The blade 14 comprises a window 17 though which both the first tube 12 and second tube 11 run. The window 17 has an angled section 18 which is sharpened. It is the angled section 18 which is used to sever the tubes 11, 12 during operation of the sacrificial breakaway mechanism 1. As can be seen, when the blade 14 is moved in the direction of arrow B (which correspond to the direction of arrow A in
While the second piece 6 is attached to a tube bundle 4 in the above described embodiment, it could alternatively be attached to a mini umbilical, i.e. a smaller version of an umbilical cable with a smaller number of control lines running through it. Typically, mini umbillicals have a greater length than tube bundles such as flying leads (which are usually limited to approximately 300m or less) and terminate in a ‘Cobra Head’ termination, which the sacrificial breakaway mechanism of the present invention may replace.
The tubes 12, 13 shown the embodiment above carry hydraulic lines, but the invention is not limited to tubes. Electrical lines, fibre optic lines, or any other suitable connector could also be used.
While a shearing mechanism comprising a blade is described above, the connectors running between the structure and the second piece need not be severed, but simply disconnected. For example, the connectors desired to be disconnected first in the sequence may be designed to be shorter in length than those desired to be disconnected later in the sequence, such that the relative movement between the first and second pieces causes the shorter connectors to be disconnected before the longer connectors.
The invention aims to provide one or more of the following benefits over the prior art:
The invention is not limited to the specific embodiments disclosed above, and other possibilities will be apparent to those skilled in the art. For example, while two connectors are shown in
Number | Date | Country | Kind |
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1513066.9 | Jul 2015 | GB | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2016/067191 | 7/19/2016 | WO | 00 |