SELF-PROPELLED VALVE ACTUATOR ON A RAIL TRANSPORT SYSTEM FOR MANIFOLDS AND SUBSEA TREES
20230111005 · 2023-04-13
Inventors
Cpc classification
E21B41/04
FIXED CONSTRUCTIONS
E21B4/006
FIXED CONSTRUCTIONS
International classification
Abstract
The invention relates to a self-propelled valve actuator on a rail transport system for manifolds and Christmas trees. The valve actuator is moveable along a transport rail and may operate several valves. The valve actuator is driven by a gearwheel motor. The invention also relates to a rotatable valve head having diametrical slots with which the valve actuator may interact.
Claims
1. A production structure valve actuator system for actuating at least two valves on the production structure having at least two valves, each valve comprising a rotatable valve head, the production structure valve actuator system comprising: a transport rail; a valve actuator moveable along the transport rail, the valve actuator including at least a first gearwheel engaging a transport rail rack of the transport rail; an actuator motor housing; a rotatable drive element with a valve head engagement portion for engaging the valve head; and at least one motor for driving at least one of the gearwheel and the drive element.
2. The valve actuator system of claim 1, wherein the production structure is a manifold or a subsea tree.
3. The valve actuator system of claim 1, wherein the actuator motor housing is filled with a fluid.
4. The valve actuator system of claim 1, wherein the valve head engagement portion includes a first end portion and a second end portion each with chamfered corners.
5. The valve actuator system of claim 1, wherein the valve head includes either one single diametrical slot or 2.sup.n-1 diametrical slots where n=[2, 3, 4, . . . ] with an angle of 180°/2.sup.n-1 between each diametrical slot; and wherein an end surface of the valve head engagement portion is parallel to a base surface of the diametrical slots of the valve head.
6. The valve actuator system of claim 5, wherein each diametrical slot includes two inclined cut-away portions expanding the slot width towards the circumference of the cylindrical valve head at both ends of the slot.
7. The valve actuator system of claim 1, wherein the valve actuator includes a magnetic sensor, monitoring the position of the valve actuator along the transport rail.
8. The valve actuator system of claim 1, wherein the valve head engagement portion is a flat blade.
9. The valve actuator system of claim 1, wherein the transport rail is secured to the production structure.
10. The valve actuator system of claim 1, comprising a second valve actuator identical to the aforementioned valve actuator system.
11. A valve actuator according to claim 1.
12. A valve head according to claim 1.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF THE INVENTION
[0020]
[0021] In the embodiment of
[0022] The transport rail 201 may be U-shaped such as the transport rail 201 shown in
[0023] Alternatively, two separate valve actuators may be mounted to the transport rail 201. In case of failure of an actuator, the other actuator can push the redundant actuator to a parking position. Two actuators on one rail may also share the workload by operating different valves simultaneously.
[0024] The valve actuator 200 is driven by at least one electrical motor. Power may be supplied via internal power communication means within the transport rail and/or via power communication means connected to the valve actuator 200. The valve actuator 200 may be powered by a subsea battery pack or by a power source topside. The valve actuator 200 may be operated from topside.
[0025] The valves may include a mechanical spring release system and an electromechanical brake internally to hold the valve head 103 in place.
[0026]
[0027] A first support pin 211 is fixed to the valve actuator 200 and is located adjacent to the first gearwheel 204, the transport rail 201 being located between the first support pin 211 and the first gearwheel 204. A second support pin 212 is fixed to the valve actuator 200 and is located adjacent to the second gearwheel 205, the transport rail 201 being located between the second support pin 212 and the second gearwheel 205. The first support pin 211 and the second support pin 212 hold the valve actuator 200 upright and aligned with the transport rail 201.
[0028] The valve actuator 200 further includes a support clamp 208 located between the first gearwheel 204 and the second gearwheel 205 holding the valve actuator 200 upright and aligned with the transport rail 201.
[0029] The valve actuator also includes a magnetic sensor (not shown) in communication with magnetic components (not shown) of the transport rail 201 sensing the position of the valve actuator 200 along the transport rail 201. The valve actuator 200 position is communicated to a controller (not shown) topside.
[0030]
[0031] The valve actuator 200 may alternatively include one single motor driving both the first gearwheel 204 and/or the second gearwheel 205 for moving the valve actuator and the drive element 210 for actuating the valves. An internal transmission system (not shown) may shift the motor between driving the gearwheel or gearwheels for moving the actuator and driving valve head engagement portion 214. Each motor included in the valve actuator 200 may include torque overload protection means such as a torque limiter.
[0032]
[0033] The valve head 103 may alternatively have either one single diametrical slot 104 or 2.sup.n-1 diametrical slots where n=[2, 3, 4, . . . ] with an angle of 180°/2.sup.n-1 between each diametrical slot. Increasing the number of diametrical slots 104 provides the valve head with more points of entry for the valve head engagement portion 214.
[0034] In the embodiment of
[0035] The valve head engagement portion 214 may also be a mechanical claw or any other conventional gripping tool adapted to grip and rotate the valve head 103.
[0036]
[0037] To allow the valve actuator 200 to engage a valve head 103, a topside operator activates the gearwheel motor 207 (see
[0038]
TABLE-US-00001 Description of the figure reference numbers 100 Production structure 104 Diametrical slot 101 Valve 105 Inclined cut-away portion 102 Valve housing 213 Transport rail teeth 103 Valve head 214 Valve head engagement portion 200 Valve actuator 215 First edged end portion 201 Transport rail 216 Second edged end portion 202 First support frame 217 End surface 203 Second support frame 218 Base surface 204 First gearwheel 205 Second gearwheel 207 Gearwheel motor 208 Support clamp 209 Actuator motor housing 210 Drive element 211 First support pin 212 Second support pin