Method for producing extra force and reduced hydraulic supply for shearing pipe
The method of providing blowout preventer ram actuator which will move a blowout preventer shear ram into the bore of the blowout preventer and retract the blowout preventer shear ram from the bore of the blowout preventer, comprising providing a first and second piston, pressuring the second cylinder extension area to move the blowout preventer shear ram into contact with the pipe to be sheared while venting the second cylinder, sensing that the blowout preventer shear ram has contacted the pipe to be sheared, pressuring the first and the second cylinder to shear the pipe and pressuring the first cylinder to retract the shear ram.
This invention relates to the method of providing a high force by hydraulic fluid to blowout preventer shear rams while reducing the volume of hydraulic fluid and size of hydraulic accumulators required.
CROSS-REFERENCE TO RELATED APPLICATIONSNot applicable.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENTNot applicable
REFERENCE TO A “MICROFICHE APPENDIX”Not applicable
BACKGROUND OF THE INVENTIONDeepwater offshore drilling requires that a vessel at the surface be connected through a drilling riser and a large blowout preventer stack to the seafloor wellhead. The seafloor wellhead is the structural anchor piece into the seabed and the basic support for the casing strings which are placed in the well bore as long tubular pressure vessels. During the process of drilling the well, the blowout preventer stack on the top of the subsea wellhead provides the second level of pressure control for the well. The first level being provided by the weighted drilling mud within the bore.
During the drilling process, weighted drilling mud circulates down a string of drill pipe to the drilling bit at the bottom of the hole and back up the annular area between the outside diameter of the drill pipe and the inside diameter of the drilled hole or the casing, depending on the depth.
Coming back up above the blowout preventer stack, the drilling mud will continue to travel back outside the drill pipe and inside the drilling riser, which is much large than the casing. The drilling riser has to be large enough to pass the casing strings run into the well, as well as the casing hangers which will suspend the casing strings. The bore in a contemporary riser will be at least twenty inches in diameter. It additionally has to be pressure competent to handle the pressure of the weighed mud, but does not have the same pressure requirement as the blowout preventer stack itself.
As wells are drilled into progressively deeper and deeper formations, the subsurface pressure and therefore the pressure which the blowout preventer stack must be able to withstand becomes greater and greater. This is the same for drilling on the surface of the land and subsea drilling on the surface of the seafloor. Early subsea blowout preventer stacks were of a 5,000 p.s.i. working pressure, and over time these evolved to 10,000 and 15,000 p.s.i. working pressure. As the working pressure of components becomes higher, the pressure holding components naturally become both heavier and taller. Additionally, in the higher pressure situations, redundant components have been added, again adding to the height. The 15,000 blowout preventer stacks have become in the range of 800,000 lbs. and 80 feet tall. This provides enormous complications on the ability to handle the equipment as well as the loadings on the seafloor wellhead. In addition to the direct weight load on the subsea wellheads, side angle loadings from the drilling riser when the surface vessel drifts off the well centerline are an enormous addition to the stresses on both the subsea wellhead and the seafloor formations.
Shear rams within these blowout preventers are utilized to shear pipe only in emergency cases when there is not other solution to securing a subsea well installation. Securing the well involves both the steps of shearing the pipe in half and then providing a seal across the well bore. Ideally a single blowout preventer ram will be equipped with shear rams which upon actuation will shear and seal in a single movement and then provide a seal which is compression set. Being compression set is beneficial as the extreme destructive nature of cutting high strength pipe in half tends to damage any kind of seal, and a compression set seal is the most “self-healing” type of seal. The high pressures generated by being compression set will tend to seal over many defects in the seal.
It can be sometimes presumed that the sheared section of pipe above the shear ram will be yanked out of the seal area upon shearing if the pipe is in its normal tension is a subsea drilling system. This is not always true, and was not true in the 2010 Gulf of Mexico Macondo blowout case.
One solution provided for this is to have a seal which seal in the shear plane as a face seal. This seal is dependent upon not scratching the seal or the mating seal surfaces, and that no shrapnel from the shearing operation gets in the way.
Another solution which has been provided is to literally bend the pipe out of the way. This has worked on some section of pipe, but with extreme high strength pipe and connections used today, there is great difficulty in bending the pipe and coupling sections.
The shearing of the pipe and casing available today requires very high forces and when you add lifting or bending of the pipe out of the way of the seals the forces are even higher. This is in direct conflict with the need for reduced accumulator volumes to operate the shear rams. The ideal solution here is to provide a maximum shearing force with a minimum of hydraulic accumulator volume required.
BRIEF SUMMARY OF THE INVENTIONThe object of this invention is to provide blowout preventer shear rams with a high shear force to shear pipe in the bore of the blowout preventer.
A second object of this invention is to minimize the hydraulic supply required to perform the shearing operations.
A third object of this invention is to sense the need for high force requirements rather than low volume requirements by sensing the operating pressure.
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Blowout preventer stack 60 is landed on a subsea wellhead system 64 landed on the seafloor 66. The blowout preventer stack 60 includes pressurized accumulators 68, kill valves 70, choke valves 72, choke and kill lines 74, choke and kill connectors 76, choke and kill flex means 78, and control pods 80.
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The same economies of accumulator can also be applied to any of the other rams in a blowout preventer stack.
The particular embodiments disclosed above are illustrative only, as the invention may be modified and practiced in different but equivalent manners apparent to those skilled in the art having the benefit of the teachings herein. Furthermore, no limitations are intended to the details of construction or design herein shown, other than as described in the claims below. It is therefore evident that the particular embodiments disclosed above may be altered or modified and all such variations are considered within the scope and spirit of the invention. Accordingly, the protection sought herein is as set forth in the claims below.
SEQUENCE LISTING: N/A
Claims
1. The method of providing blowout preventer ram actuator which will move a blowout preventer shear ram into the bore of the blowout preventer and retract the blowout preventer shear ram from the bore of the blowout preventer, comprising
- providing a first piston with a piston rod connected to the blowout preventer shear ram in a first cylinder, the first cylinder having a first [an first] cylinder extension area for extending the blowout preventer shear ram into the bore of the blowout preventer and a first cylinder retraction area for retracting the blowout preventer shear ram from the bore of the blowout preventer,
- providing a second piston in a second cylinder which is connected to the first cylinder, the second cylinder having a second cylinder extension area for extending the blowout preventer shear ram into the bore of the blowout preventer and a second cylinder retraction area,
- pressuring the second cylinder extension area to move the blowout preventer shear ram into contact with the pipe to be sheared while venting the second cylinder retraction area, the first cylinder extension area, and the first cylinder retraction area,
- sensing that the blowout preventer shear ram has contacted the pipe to be sheared,
- pressuring the second cylinder extension area and the first cylinder extension area and venting the first cylinder retraction area and the second cylinder retraction area to shear the pipe in the bore of the blowout preventer.
2. The method of claim 1, providing pressuring the first cylinder retraction area while venting the first cylinder extension area, the second cylinder extension area, and the second cylinder retraction area to retract the blowout preventer shear ram from the bore of the blowout preventer.
3. The method of claim 1, providing sensing that the blowout preventer shear ram has contacted the pipe to be sheared is by sensing the pressure in the second cylinder extension area.
4. The method of providing blowout preventer ram actuator which will move a blowout preventer shear ram into the bore of the blowout preventer and retract the blowout preventer shear ram from the bore of the blowout preventer, comprising
- providing a first piston in a first cylinder, the first piston having a piston rod connected to the blowout preventer shear ram:
- the first cylinder having a first cylinder extension area for extending the blowout preventer shear ram into the bore of the blowout preventer and a first cylinder retraction area for retracting the blowout preventer shear ram from the bore of the blowout preventer,
- providing a second piston in a second cylinder which is connected to the first cylinder, the second cylinder having a second cylinder extension area for extending the blowout preventer shear ram into the bore of the blowout preventer and a second cylinder retraction area,
- pressuring the second cylinder extension area to move the blowout preventer shear ram into contact with the pipe to be sheared while venting the second cylinder retraction area, the first cylinder extension area, and the first cylinder retraction area,
- sensing that the blowout preventer shear ram has contacted the pipe to be sheared,
- pressuring the second cylinder extension area and the first cylinder extension area and venting the first cylinder retraction area and the second cylinder retraction area to shear the pipe in the bore of the blowout preventer, and
- shearing the pipe in the bore of the blowout preventer.
5. The method of claim 4, providing pressuring the first cylinder retraction area while venting the first cylinder extension area, the second cylinder extension area, and the second cylinder retraction area to retract the blowout preventer shear ram from the bore of the blowout preventer.
6. The method of claim 4, providing sensing that the blowout preventer shear ram has contacted the pipe to be sheared is by sensing the pressure in the second cylinder extension area.
Type: Application
Filed: Jul 28, 2021
Publication Date: Feb 2, 2023
Inventor: Benton Frederick Baugh (Houston, TX)
Application Number: 17/386,817