Drainage for a Telescope Section of a Landing String
20170247976 · 2017-08-31
Assignee
Inventors
Cpc classification
E21B17/07
FIXED CONSTRUCTIONS
International classification
Abstract
A drainage device is for a tubular, telescopic pipe-landing unit having a through pipe bore partially formed of a center pipe extending from an upper end portion of an outer pipe-landing section and with a free end in through an upper end portion of an inner pipe-landing section, which is axially movable in the outer pipe-landing section. The center pipe has a fluid-communication opening arranged for pressure equalization between the pipe bore and an annulus between the center pipe and the outer pipe-landing section. The annulus has a drain passage arranged to be opened by the axial movement of the inner pipe-landing section into the outer pipe-landing section away from an extended, operative position, in which an abutment portion on the upper end portion of the inner pipe-landing section is resting sealingly against a seat portion on a lower end portion of the outer pipe-landing section.
Claims
1. A drainage device for a tubular, telescopic pipe-landing unit provided with a through pipe bore partially formed of a center pipe extending from an upper end portion of an outer pipe-landing section and with a free end in through an upper end portion of an inner pipe-landing section, which is axially movable in the outer pipe-landing section, the center pipe being provided with at least one fluid-communication opening arranged for pressure equalization between the pipe bore and an annulus defined between the center pipe and the outer pipe-landing section, wherein the annulus is provided with a drain passage which is arranged to be opened by the axial movement of the inner pipe-landing section into the outer pipe-landing section away from an extended, operative position, in which an abutment portion of the upper end portion of the inner pipe-landing section is resting sealingly against a seat portion on a lower end portion of the outer pipe-landing section.
2. The drainage according to claim 1, wherein a portion of the drain passage is formed as one or more clearances between the lower end portion of the outer pipe-landing section and a jacket surface of the inner pipe-landing section.
3. The drainage according to claim 1, wherein a portion of the drain passage is formed as one or more bores between the seat portion on the lower end portion of the outer pipe-landing section and the periphery of said end portion.
4. The drainage according to claim 1, wherein the upper end portion of the inner pipe-landing section forms a piston, which fits tightly against the internal wall surface of the outer pipe-landing section, and a portion of the drain passage is formed as one or more axial bores through a collar on the abutment portion.
5. The drainage according to claim 1, wherein the seat portion forms a substantially cylindrical recess, which is arranged to accommodate a substantial part of the abutment portion, and several seat seals are arranged in an axially spaced-apart manner on at least one of the seat portion and the abutment portion.
6. The drainage according to claim 1, wherein the upper end portion of the inner pipe-landing section is provided with at least one center-pipe seal abutting against the jacket surface of the center pipe.
Description
[0018] In what follows, an example of a preferred embodiment is described, which is visualized in the accompanying drawings, in which:
[0019]
[0020]
[0021]
[0022] Reference is first made to
[0023] A landing-pipe string 4 extends from the installation 1 down into the well 2 and is arranged, in a manner known perse, to carry cement from the installation 1 down into the well 2 in order to at least partially fill the annulus 26 between the casing 25 and the underground 6 to fix the casing 25 to the underground 6, possibly to fill an annulus, not shown, between the casing 25 and a further casing, not shown, of another diameter. The cement is carried into the landing-pipe string 4 through a cementing head 41 above the drilling floor 11. The landing-pipe string 4 is preferable adapted for hanging off in the rotary table 11.
[0024] The landing-pipe string 4 is provided with a telescopic pipe-landing unit 5 in a manner known perse. In
[0025] It is obvious to a person skilled in the art that the landing-pipe string 4 may also be used for riserless operations, that is to say without there being a riser 7 extending between the installation 1 on the surface 31 and the well 2.
[0026] Reference is now made especially to
[0027] The inner pipe-landing section 52 may be moved into the outer pipe-landing section 51 from an extended position in which an abutment portion 523 arranged in the upper end portion 521 of the inner pipe-landing section 52 is resting against a seat portion 513 arranged in the lower end portion 512 of the outer pipe-landing section 51. Seat seals 524 fit tightly between the pipe-landing sections 51, 52 in the extended position of the pipe-landing unit 5.
[0028] An annulus 54 is defined by the outer pipe-landing section 51, its upper end portion 511, the centre pipe 53 and the upper end portion 521 of the inner pipe-landing section 52. Several fluid-communication openings 531 are arranged in the centre pipe 53 so that fluid communication is provided between the bore of the centre pipe 53 and the annulus 54 when the pipe-landing unit 5 is in its extended position. The fluid pressure inside and outside the centre pipe 53 will thereby be equalized when fluid under pressure is flowing through the pipe-landing unit 5 in the extended, operative position thereof. The centre pipe 53 may thereby be formed with a relatively thin pipe wall.
[0029] The upper end portion 521 of the inner pipe-landing section 52 and the lower end portion 512 of the outer pipe-landing section 51 include a drain passage for the evacuation of the annulus 54 when the pipe-landing unit 5 is being retracted and the volume of the annulus 54 is being reduced. In the exemplary embodiment shown, said drain passage is formed as axial bores 525 in the abutment portion 523 of the inner pipe-landing section 52 and as a radial clearance 514 between the lower end portion 512 of the outer pipe-landing section 51 and a jacket surface 527 of the inner pipe-landing section 52. As long as the pipe-landing unit 5 is fully extended, the seat seals 524 will seal the drain passage 514, 525, but when the pipe-landing unit 5 is retracted so that the seat seals 524 does not fit tightly between the end sections 512, 521, fluid may flow through the axial bores 525 and out through the clearance 514 between the end portions 512, 521. At the same time, the fluid communication openings 531 have been closed by having been moved past the centre-pipe seal 526. Thereby fluid may not enter the annulus 54 from the centre pipe 53. This is seen best in
[0030] In
[0031] The fluid-communication openings 531 have so large an extent in the axial extent of the pipe-landing unit 5 that they close completely only as the drain passage 514, 514′, 525 has opened. As the seat seals 524 have an abutment area of a certain axial extent, the clearance 514 is kept tight over a certain axial distance of movement of the inner pipe-landing section 52, and the fluid-communication openings 531 may therefore have a corresponding axial extent. In the exemplary embodiment shown, two rows of fluid-communication openings 531 are arranged on the periphery of the centre pipe 53, spaced apart axially and evenly distributed on the periphery of the centre pipe 53. Alternatively, the fluid-communication openings 531 may, for example, be provided as oblong slots extending in the axial direction of the centre pipe 53.
[0032] A lower end portion 522 on the inner pipe-landing section 52 and the upper end portion 511 of the outer pipe-landing section 51 are adapted for connection to the landing-pipe string 4.
[0033] When the landing-pipe string 4 with the pipe-landing unit 5 is lowered to the well 2, the annulus 54 will fill with a fluid, typically water from the surrounding water mass 3, through the fluid-communication openings 531 by the very fact of the pipe-landing unit 5 usually becoming extended to its extended position because of the weight of the underlying, connected landing-pipe string 4 and/or other elements that are connected to the landing-pipe string 4. The annulus 54 may possibly, in the retracted position of the pipe-landing unit 5, be filled by fluid entering through the drain passage 514, 514′, 525. The initial filling of the annulus 54 may possibly take place before the pipe-landing unit 5 is lowered into the water mass, through a suitable, closable fill opening 515 in the upper end portion 511 of the outer pipe-landing section 51. Air, possibly other gases, present may be evacuated through a closable evacuation opening 516 in the upper end portion 511 of the outer pipe-landing section 51.
[0034] When a fluid is pumped through the landing-pipe string 4, the pipe-landing unit 5 is extended and is tightly closed towards the surroundings. The fluid pressure in the centre pipe 53 and in the annulus 54 is equalized through the fluid-communication openings 531. Some pumping fluid, for example cement, may thereby enter the annulus 54 through the fluid-communication openings 531, and there is therefore a need to remove this pumping fluid from the annulus 54 when the operation is finished, so that there is no risk of the pipe-landing unit 5 becoming ruined by the pumping fluid. The annulus 54 is emptied when the pipe-landing unit 5 is retracted, fluid initially exiting through the fluid-communication openings 531. When the inner pipe-landing section 52 has been moved so far in that the drain passage 514, 514′, 525 has been opened, the fluid also exits there, and after the fluid-communication openings 531 have been closed by having passed the centre-pipe seal 526, the fluid will flow from the annulus only through the drain passage 514, 514′, 525. As the fluid is exiting the annulus 54, any residues of cement or other harmful fluids are flushed out of the annulus 54 as well. Cement or other undesired fluids present in the landing-pipe string 4 and thereby also in the centre bore of the pipe-landing unit 5, is/are removed by means known per se, for example by flushing with a fluid suitable therefor, often with cleaning plugs being sent through the landing-pipe string 4 as well. The desired effect has been achieved: the telescopic pipe-landing unit 5 is free of harmful fluids. If required, the flushing of the annulus 54 can be repeated, the annulus 54, after a flushing fluid has been pumped into the landing-pipe string 4, becoming filled, when the pipe-landing unit 5 is being extended, by said flushing fluid entering through the fluid-communication opening 531 and being usable for repeated flushing.
[0035] It should be noted that the above-mentioned embodiment illustrates the invention, but does not limit it, and persons skilled in the art may construct many alternative embodiments without departing from the scope of the dependent claims.
[0036] In the claims, reference numbers in brackets are not to be regarded as restrictive. The use of the verb “to comprise” and its various forms, does not exclude the presence of elements or steps, which are not mentioned in the claims. The indefinite article “a” or “an” before an element does not exclude the presence of several such elements.