Not Applicable
All of the material in this patent application is subject to copyright protection under the copyright laws of the United States and of other countries. As of the first effective filing date of the present application, this material is protected as unpublished material.
However, permission to copy this material is hereby granted to the extent that the copyright owner has no objection to the facsimile reproduction by anyone of the patent documentation or patent disclosure, as it appears in the United States Patent and Trademark Office patent file or records, but otherwise reserves all copyright rights whatsoever.
Not Applicable
Not Applicable
The present invention generally relates to deployment of instrument cables and control lines in an oil and gas wellbore. Specifically, the present invention provides a system and method for rapid deployment of fiber optic sensors and distributed sensing cables, electronic sensors and conventional electronic cables, capillary tubing, or hydraulic control lines in the annulus of a wellbore along a specific well zone without the need to clamp cables to the casing or tubing string for support.
Economic challenges have created the necessity for increased efficiency and precision of hydrocarbon production methods. Deploying instruments into the wellbore that capture data from specific zones can help achieve these efficiencies.
Advancements in distributed fiber optic sensing (“DxS”) technologies have resulted in such technologies becoming economically competitive with conventional logging methods. The barrier to wider use of DxS and other down-hole instruments by well operators has been relatively high installation costs.
In most cases, the standard casing program does not provide adequate clearance for current cable installation. This necessitates upsizing the entire casing and wellbore program to accommodate the necessary fiber cables, “marker” cables and associated clamps or centralizers that are run on the outside of the casing. The costs associated with drilling larger diameter wellbores can range from $500,000 to over $1 million, per well, in addition to the rig time for placement of clamps and centralizers.
The current industry practice for deploying instrumented cables and control lines behind casing or in the casing-tubing annulus is to rigidly attach the cables to the casing or tubing with bands or clamps that support the weight of the cable and deliver it down-hole. These clamps or bands may increase the outer running diameter of the casing string, which may necessitate upsizing of the well-bore to provide sufficient running clearance and reduce the risk of cable damage during installation transit.
While running these types of completions, the casing or tubing cannot be rotated without potential damage to the cables or control lines. The cables and control lines are typically installed from spools located some distance away from the rig. A cable sheave is then suspended above the rig floor to guide and position the cable relatively parallel to the casing or tubing so that it can be manually clamped into place. The suspended sheave load above the rig floor creates a potential safety hazard from failure of the suspending means and the load falling on rig personnel.
It may also be desirable during the drilling phase of a well to temporarily run certain fiber optic or electronic sensors into the annular space between the wellbore and drill pipe to better obtain geophysical parameters. Conventional logging systems are typically run inside the drill pipe which may act as an insulator and attenuate some sensor signals causing erroneous or weak signals.
The prior art as detailed above has the following deficiencies:
While some of the prior art may teach some solutions to several of these problems, the core issue of using a system of distributed fiber optic sensing technology within a durable and rugged delivery means to gather well logging data is disclosed as a way to deliver high quality information at lower cost to energy professionals.
Accordingly, the objectives of the present invention are (among others) to circumvent the deficiencies in the prior art and affect the following objectives:
While these objectives should not be understood to limit the teachings of the present invention, in general these objectives are achieved in part or in whole by the disclosed invention that is discussed in the following sections. One skilled in the art will no doubt be able to select aspects of the present invention as disclosed to affect any combination of the objectives described above.
The present invention, in various embodiments, provides a system and method to provide rapid deployment of fiber optic sensing cables, conventional electronic cables, or hydraulic control lines in the annulus of a wellbore without the need to clamp cables to the casing or tubing string for support, the system comprising:
A cable anchor sub-assembly;
Cable carriers;
Ruggedized cable; and
Specialized surface deployment equipment.
The method in broad aspect is the use and activation of the apparatus as described.
The present invention system may be utilized in the context of an overall resource extraction method, wherein the instrumented wellbore cable and sensor deployment system described previously is controlled by a method having the following steps:
Integration of this and other preferred exemplary embodiment methods in conjunction with a variety of preferred exemplary embodiment systems described herein in anticipation by the overall scope of the present invention.
For a fuller understanding of the advantages provided by the invention, reference should be made to the following detailed description together with the accompanying drawings wherein:
While this invention is susceptible of embodiment in many different forms, there is shown in the drawings and will herein be described in detailed preferred embodiment of the invention with the understanding that the present disclosure is to be considered as an exemplification of the principles of the invention and is not intended to limit the broad aspect of the invention to the embodiment illustrated.
The numerous innovative teachings of the present application will be described with particular reference to the presently preferred embodiment, wherein these innovative teachings are advantageously applied to the particular problems of an instrumented wellbore cable and sensor deployment system and method. However, it should be understood that this embodiment is only one example of the many advantageous uses of the innovative teachings herein. In general, statements made in the specification of the present application do not necessarily limit any of the various claimed inventions. Moreover, some statements may apply to some inventive features but not to others.
The present invention is an improved instrumented wellbore cable and sensor deployment system and method to gather data from areas of interest in the rock formation surrounding a wellbore by using an instrumented cable that is not rigidly attached to the casing at every joint. The apparatus allows rotation of the casing to improve running and cementing, and allows use of existing magnetic orienting tools for cable location, eliminates the need for cable sheaves hanging about the rig floor, and comprising;
(a) A flexible polymer cable with embedded wires,
(b) A system for deploying said flexible polymer cable,
(c) A means to hold the flexible polymer cable along a casing wall surface to allow sensing of at least one wellbore parameter.
Wherein
The system is configured to coaxially fit within a wellbore;
The system is configured to provide an articulating hydraulic arm to deploy the cable and sensors from a cable spool to the drilling rig and down into the wellbore;
The system is configured to allow rotation of the wellbore casing or tubing within the longitudinal axis of cable carriers; and
The anchor subassembly and the intermediate cable carriers are configured to support the weight of the flexible polymer cable in the downhole environment.
This general system summary may be augmented by the various elements described herein to produce a wide variety of invention embodiments consistent with this overall design description.
Referring to
According to one aspect of a preferred exemplary embodiment, cable 5 may be deployed at desired locations to acquire geophysical information from the surrounding formation without the need for clamping the cable 5 to the wellbore casing 3.
Cable 5 may have different types of electronic or optical sensors 9 attached to or imbedded in the cable at various intervals for acquiring geophysical information.
According to another preferred exemplary embodiment, cable 5 is fully encapsulated with low-friction polymer extrusion 6 on one side for casing friction drag reduction, or full metal 7 encapsulation in a “flat-pack” arrangement with welded seams.
According a further preferred exemplary embodiment and referring to
According to yet another preferred exemplary embodiment, cementing the ruggedized cable 5 in place between the casing and the wellbore 1 eliminates or reduces the need for larger wellbore 1 diameter. Furthermore, integrating metal sheathing or Ferro-magnetic particles into the polymer matrix 6, 8 creates high magnetic flux signature for the cable 5, and allows the cable 5 to be located with existing magnetic mapping tools. Locating the the relative orientation of the cable allows perforating guns to be configured to shoot unidirectionally (instead of the typical 360 degree pattern), and avoid the cable 5 by firing the perforation guns away from the relative bearing of the cable 5.
As generally seen in the flow chart of
Yet another preferred embodiment may be seen in more detail as generally illustrated in
In a preferred embodiment, only a few of the bow-spring carriers 20 would be deployed downhole in the casing string 3, thus minimizing rig-time for installation. After a completed installation to the desired location, the instrumented cables 5 can be terminated at surface points using conventional ported hangers and wellhead exits.
In another preferred embodiment shown in
In another preferred embodiment shown in
The present invention system anticipates a wide variety of variations in the basic theme of extracting gas utilizing wellbore casings, but can be generalized as a wellbore isolation plug system comprising:
Wherein
The system is configured to feed the flexible polymer cable into a wellbore; and
The system is configured to allow rotation of the wellbore casing or tubing within the longitudinal axis of cable carriers; and
The anchor subassembly and the intermediate cable carriers are configured to support the weight of the flexible polymer cable in the downhole environment.
This general system summary may be augmented by the various elements described herein to produce a wide variety of invention embodiments consistent with this overall design description.
The present invention method anticipates a wide variety of variations in the basic theme of implementation, but can be generalized as an instrumented wellbore cable and sensor system comprising:
Wherein the method comprises the steps of:
This general method summary may be augmented by the various elements described herein to produce a wide variety of invention embodiments consistent with this overall design description.
The present invention anticipates a wide variety of variations in the basic theme of oil and gas extraction. The examples presented previously do not represent the entire scope of possible usages. They are meant to cite a few of the almost limitless possibilities.
This basic system and method may be augmented with a variety of ancillary embodiments, including but not limited to:
An embodiment wherein the shape of the ruggedized flexible polymer cable shape is selected from a group consisting of: a flattened sphere, a crescent, an ellipse, a flattened rectangle and a flat cable.
One skilled in the art will recognize that other embodiments are possible based on combinations of elements taught within the above invention description.
An instrumented wellbore cable and sensor deployment system and method for rapid deployment of fiber optic distributed sensing cables, conventional electronic cables, or hydraulic control lines in the annulus of a wellbore without the need to clamp cables to the casing or tubing string for support.
| Number | Name | Date | Kind |
|---|---|---|---|
| 6446723 | Ramos et al. | Sep 2002 | B1 |
| 6910534 | Linyaev et al. | Jun 2005 | B2 |
| 7455106 | Veneruso et al. | Nov 2008 | B2 |
| 7552764 | Weems et al. | Jun 2009 | B2 |
| 7617873 | Lovell et al. | Nov 2009 | B2 |
| 7654315 | Du et al. | Feb 2010 | B2 |
| 7784537 | Baxter | Aug 2010 | B2 |
| 7845061 | Buytaert et al. | Dec 2010 | B2 |
| 8082988 | Redlinger et al. | Dec 2011 | B2 |
| 8678088 | Brown | Mar 2014 | B2 |
| 8720553 | Tips et al. | May 2014 | B2 |
| 8737774 | MacDougall et al. | May 2014 | B2 |
| 8746337 | Grigsby et al. | Jun 2014 | B2 |
| 8800650 | Spray et al. | Aug 2014 | B2 |
| 20010050111 | Neuroth et al. | Dec 2001 | A1 |
| 20050236161 | Gay et al. | Oct 2005 | A1 |
| 20060151194 | Varkey | Jul 2006 | A1 |
| 20080006400 | Coyle, Jr. | Jan 2008 | A1 |
| 20080041596 | Blount | Feb 2008 | A1 |
| 20080066905 | Aivalis et al. | Mar 2008 | A1 |
| 20120010846 | Brian | Jan 2012 | A1 |
| 20130118757 | Barrilleaux et al. | May 2013 | A1 |
| 20130309888 | Nicholson | Nov 2013 | A1 |
| 20140083714 | Grigsby | Mar 2014 | A1 |
| 20140144615 | Richards | May 2014 | A1 |
| 20140202767 | Feasey | Jul 2014 | A1 |
| Number | Date | Country |
|---|---|---|
| 2013134201 | Sep 2013 | WO |
| Entry |
|---|
| Weatherford, Roller Cross-Coupling Control-Line Protector, Weatherford Cementing Products Brochure 2012, 3 pages. |
| TubeTec Website Encapsulated Control Line Print Screen printed Sep. 16, 2014, from http://www.tubetec.co.uk/ 1 page. |
| Tesco Corporation, Multiple Control Line Running System (MCLRS), Tesco bulletin 47100e 2008, 1 page. |
| Schlumberger, Permanent Downhole Cable Product Information Sheet 2014, 2 pages. |
| Prysmian Group, Tubing Encapsulated Cable Brochure, 6 pages. |
| Halliburton, Flatpack, Completion Solutions Brochure 2013, 1 page. |
| Number | Date | Country | |
|---|---|---|---|
| 20160258271 A1 | Sep 2016 | US |