DRILLING CASING AND METHOD OF PERFORMING FAST DRILLING AND COMPLETION OF LARGE-BOREHOLE MULTILATERAL WELL
20210025268 ยท 2021-01-28
Assignee
Inventors
- Chuanliang Yan (Qingdao, CN)
- Xu Ren (Qingdao, CN)
- Yuanfang Cheng (Qingdao, CN)
- Wanqing Tian (Qingdao, CN)
- Yang LI (Qingdao, CN)
- Qingchao Li (Qingdao, CN)
- Jia Wei (Qingdao, CN)
- Benjian Song (Qingdao, CN)
Cpc classification
E21B43/305
FIXED CONSTRUCTIONS
E21B41/0035
FIXED CONSTRUCTIONS
E21B7/20
FIXED CONSTRUCTIONS
E21B43/084
FIXED CONSTRUCTIONS
International classification
Abstract
Disclosed is a new drilling casing, including a casing wall and several sand control apparatuses disposed on the casing wall in a spacing, wherein each sand control apparatus includes a sand control net, a sealing steel sheet and a sealing rubber plug, a plurality of mutually-paralleled sand control meshes are disposed on the sand control net, the sand control mesh exactly faces the sealing steel sheet, and the sand control net is connected with the sealing steel sheet through a steel pin. Further a method of performing fast drilling and completion of a large-borehole multilateral well by using the new drilling casing is disclosed. a main borehole is formed by drilling to a destination well depth at one time with a large size drill bit, a lateral borehole is then drilled in a natural gas hydrate reservoir by using the new drilling casing, and then, the drill bit is taken out for completion. The method is applicable to various natural gas hydrate extraction manners. The method greatly increases production and recovery rate of a hydrate well by integrating well drilling and completion in a shorter drilling and completion period, thereby saving lots of labor and materials, and ensuring effective sand control.
Claims
1. A drilling casing, comprising a casing wall and several sand control apparatuses disposed on the casing wall in a spacing, wherein each sand control apparatus comprises a sand control net, a sealing steel sheet and a sealing rubber plug, a plurality of mutually-paralleled sand control meshes are disposed on the sand control net, the sand control mesh exactly faces the sealing steel sheet, the sealing rubber plug is further disposed on contact surfaces of two end surfaces, i.e., left and right end surfaces, of the sealing steel sheet and the sand control net respectively, the sand control net and the sealing steel sheet are connected by a steel pin, and the steel pin is further connected in series with a steel ring on the sealing steel sheet through a thin steel wire.
2. The drilling casing according to claim 1, wherein a design accuracy of the sand control mesh is =3.8 d.sub.50, and d.sub.50 refers to a median value of particle sizes of ultrafine sand in a natural gas hydrate reservoir.
3. A method of performing fast drilling and completion of a large-borehole multilateral well by using the drilling casing according to claim 1, comprising the following steps: at step (1), drilling a large main borehole by drilling to a destination layer by using a large-size drill bit, and then, running a large main borehole casing of a reserved lateral hole into the large main borehole and then injecting cement to perform well cementing operations; at step (2), drilling a lateral borehole on the reserved lateral hole by using the drilling casing, connecting a thick steel wire rope protruding into one end of the reserved lateral hole with the drill bit, wherein the drilling casing is in a sealed state and serves as a drill rod for drilling; at step (3), when drilling is performed to the destination layer, taking out the drill bit by using the thick steel wire rope; at step (4), pulling out the steel pin by using a thin steel wire, pulling out the sealing steel sheet and the sealing rubber plug together through the steel ring connected in series, and starting the sand control apparatus, wherein the drilling casing is changed from the drill rod to a casing with a sand control function at this time and a completion operation of one lateral borehole is completed; and at step (5), repeating steps (2) to (4) to complete the completion operations of the remaining lateral boreholes.
4. The method according to claim 3, wherein at step (1), when well cementing is performed after the large main borehole is drilled, the cementing is performed only for a rock layer without performing injection cementing for the natural gas hydrate reservoir.
5. The method according to claim 3, wherein a reamer is further disposed at a connection position of the thick steel wire rope and the drill bit.
6. The method according to claim 5, wherein at step (1), the reserved lateral hole on the large main borehole casing is 10 mm to 20 mm larger in radius than the reamer.
7. The method according to claim 6, wherein the reserved lateral hole is at an included angle of 40-50 with the large main borehole casing.
8. The method according to claim 3, wherein at step (2), when the lateral borehole is drilled, the sand control net in the sand control apparatus is plugged by the sealing steel sheet and the sealing rubber plug and clamped by the steel pin, and the drilling casing is in the sealed state.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
[0026]
[0027]
[0028]
[0029] Numerals of the drawings are described as follows: 1. a seawater layer, 2. a rock layer, 3. a natural gas hydrate reservoir, 4. a large main borehole casing, 5. a large main borehole, 6. a lateral borehole, 7. a sand control apparatus, 7-1. a sand control mesh, 7-2. a sealing rubber plug, 7-3. a sealing steel sheet, 7-4. a steel pin, 8. a thick steel wire rope, 9. a reserved lateral hole, 10. a thin steel wire, 11. a reamer, and 12. a drill bit.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0030] The technical solutions of the examples of the present disclosure will be described clearly and fully below in combination with drawings in the examples of the present disclosure. It is apparent that the described examples are merely part of examples of the present disclosure rather than all examples. Other examples achieved by those of ordinary skill in the art based on the examples in the present disclosure without paying creative work shall all fall into the scope of protection of the present disclosure.
[0031] As shown in
[0032] A design accuracy of the sand control mesh 7-1 is =3.8 d.sub.50, where d.sub.50 refers to a median value of particle sizes of ultrafine sand in a natural gas hydrate reservoir 3, and this data may be obtained according to a sand control experiment of an ultrafine sand reservoir of the natural gas hydrate.
[0033] As shown in
[0034] At step (1), a large main borehole 5 is drilled by drilling to a destination layer by using a large size drill bit 12 and drilling into a seawater layer 1, a rock layer 2 and a natural gas hydrate reservoir 3, and then, a large main borehole casing 4 of a reserved lateral hole 9 is run into the large main borehole 5, and then cement is injected to perform well cementing operation. At this time, it is only required to perform injection cementing for the rock layer 2 without performing injection cementing for the natural gas hydrate reservoir 3.
[0035] At step (2), a lateral borehole 6 is drilled on the reserved lateral hole 9 by using the new drilling casing, each lateral borehole 6 is located in the natural gas hydrate reservoir 3, and the lateral boreholes 6 are distributed around the large main borehole 5, as shown in a structural top view of
[0036] At step (3), when drilling is performed to the destination layer, the drill bit 12 is taken out by using the thick steel wire rope 8.
[0037] At step (4), the steel pin 7-4 is pulled out by using a thin steel wire 10, the sealing steel sheet 7-3 and the sealing rubber plug 7-2 are pulled out together through the steel ring connected in series, and the sand control apparatus 7 is started; at this time, the new drilling casing is changed from the drill rod to a casing with a sand control function and thus a completion operation of one lateral borehole 6 is completed.
[0038] At step (5), steps (2) to (4) are repeated to complete the completion operations of remaining lateral boreholes 6.
[0039] Particularly, at step (1), the reserved lateral hole 9 on the large main borehole casing 4 is 10 mm to 20 mm larger in radius than the reamer 11 to help the new drilling casing containing the reamer 11 to pass through the casing of the large main borehole 5 without being stuck when the lateral borehole 6 is drilled.
[0040] The reserved lateral hole 9 is at an included angle of 40-50 with the large borehole casing 4. The included angle is reserved based on an inclination angle designed at a kickoff point by a technician when a horizontal well track is designed.
[0041] In the present disclosure, the manner of allowing the large main borehole 5 to cooperate with a plurality of lateral boreholes 6 is adopted, which increases the contact area with the natural gas hydrate reservoir. Thus, the recovery rate is further increased, and the well pattern structure is optimized.
[0042] The multi-lateral borehole 6 is drilled with the drilling technology of the new drilling casing, and the drilling process is synchronously completed with the casing running operation. The lateral borehole 6 drilled by the casing is accompanied with the casing from beginning to end. Therefore, downhole accidents are reduced, and well control situations are improved.
[0043] Since an inner diameter of the casing is larger than the drill rod, an annular area becomes smaller. Thus, hydraulic parameters are improved, and well drilling and completion are integrated. Thus, the pollution of the natural gas hydrate reservoir is avoided in a cementing process, and the work period of drilling and completion is shortened, thereby saving lots of labor and material costs.
[0044] The new drilling casing may serve as a drill rod in a drilling process, and may also serve as a casing with a sand control function in a completion process. The design accuracy of the sand control mesh 7-1 on the new drilling casing is =3.8 d.sub.50, which is obtained according to the sand control experiment of the ultrafine sand reservoir of the natural gas hydrate. The mesh diameter can not only effectively prevent sand, but also ensure the recovery rate.
[0045] Certainly, the foregoing descriptions are not intended to limit the present disclosure, and the present disclosure is also not limited to the above examples. Any changes, modifications, additions or substitutions made by persons skilled in the art within the spirit of the present disclosure shall also be encompassed in the scope of protection of the present disclosure.