Lateral junctions are used in development and production of hydrocarbon reservoirs. Traditionally, the lateral junction comprises a main bore for coupling with main bore tubulars and a lateral bore that is in communication with the main bore. The main bore and lateral bore are separate units that are welded together. Because it is desirable to have a main bore with a maximum internal diameter so as to have maximum throughput, the lateral bore is manufactured to have a D-shape. A D-shaped lateral leg is then welded into the D-shaped lateral bore. However, although the main bore has an increased internal diameter, it also results in a decrease in compression rating and collapse rating of the lateral leg or legs.
In some downhole hydrocarbon reservoir formations, see
In these particular downhole environments, the materials used to manufacture the junctions should have a hardness level of less than 250 HV (Vickers Pyramid Number). This hardness level is also a requirement for ANSI (American National Standards Institute)/NACE MR0175 approved junctions. However, the oil and gas industry has been unable to provide a low-cost, NACE (National Association of Corrosion Engineers) approved (Multibranch Inflow Control) MIC-type, welded junction without using high-priced materials. As such, there is a need for a lower cost junction with acceptable hardness level, NACE approved MIC-type lateral junction that also includes a lateral bore or bores that do not require a reduction in the internal diameter of the main bore.
For a more complete understanding of the features and advantages of the present disclosure, reference is now made to the detailed description along with the accompanying figures in which corresponding numerals in the different figures refer to corresponding parts and in which:
While various embodiments of the present disclosure are discussed in detail below, it should be appreciated that the present disclosure provides many applicable inventive concepts, which can be embodied in a wide variety of specific contexts. The specific embodiments discussed herein are merely illustrative and do not delimit the scope of the present disclosure. In the interest of clarity, not all features of an actual implementation may be described in the present disclosure. It will of course be appreciated that in the development of any such actual embodiment, numerous implementation-specific decisions must be made to achieve the developer's specific goals, such as compliance with system-related and business-related constraints, which will vary from one implementation to another. Moreover, it will be appreciated that such a development effort might be complex and time-consuming but would be a routine undertaking for those of ordinary skill in the art having the benefit of this disclosure.
Presented herein is a lateral junction for coupling with tubing sections and lateral legs for use in a downhole well development and production environment. Also presented herein is a transition sub for coupling with the lateral legs so that the junction can be tied into another tubing section. The lateral junction comprises a y-block that includes formed therein a main bore and lateral bores. The main bore can couple with production tubing and each lateral bore couples with a lateral leg. Each lateral bore is threaded and couples with one end of a threaded, round shaped lateral leg. The other end of the lateral leg includes an interface, e.g. a threaded interface, which couples with the transition sub. The lateral junction has a hardness level of less than 250 HV and, therefore, burst, collapse, and compressional ratings suitable for use in all types of sandstone formations. The lateral junction is capable of withstanding high concentrations of stress due to formation subsidence, e.g. subsidence in bubblegum shale formations. Because welds are not required to couple the lateral legs with the junction, carbon and low-alloy steels, corrosion-resistant alloys, and other alloys can be used to manufacture a MIC-type lateral junction. Manufacturing the junction using the aforementioned y-block with integrated bores, threads, and materials results in a low-cost, MIC-type junction that meets ANSI/NACE MR0175 standards while maximizing throughput of the main bore. The terms lateral leg as used herein also means round shaped tubular.
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Each threaded interface 32 of each lateral leg 22 can couple with the threaded interface 30 of each lateral bore 28. Although the multilateral junction illustrated only includes two lateral legs 22, it should be understood that other configurations are also possible. In
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As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items. As used herein, phrases such as “between X and Y” and “between about X and Y” should be interpreted to include X and Y. As used herein, phrases such as “between about X and Y” mean “between about X and about Y.” As used herein, phrases such as “from about X to Y” mean “from about X to about Y.”
The above-disclosed embodiments have been presented for purposes of illustration and to enable one of ordinary skill in the art to practice the disclosure, but the disclosure is not intended to be exhaustive or limited to the forms disclosed. Many insubstantial modifications and variations will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the disclosure. The scope of the claims is intended to broadly cover the disclosed embodiments and any such modification. Further, the following clauses represent additional embodiments of the disclosure and should be considered within the scope of the disclosure:
Clause 1, an apparatus for communicating fluid in downhole well environments, the apparatus comprising: a y-block having a main bore and lateral bores formed therein, the main bore having a first end for coupling with a section of tubing and another end for coupling with a main bore leg, each lateral bore having a threaded interface, the main bore having an internal diameter greater than the internal diameter of the lateral bores; and a lateral leg for each lateral bore, each lateral leg having a threaded interface to couple with the threaded interface of a respective lateral bore;
Clause 2, the apparatus of clause 1, wherein the lateral leg further comprises another threaded interface for coupling with a transition sub;
Clause 3, the apparatus of clause 2, wherein the other threaded interface has a greater number of threads than the threaded interface that couples with the threaded interface of the respective lateral bore or the threaded interface of the lateral leg;
Clause 4, the apparatus of clause 2, wherein the threaded interface and the other threaded interface have a same turn orientation;
Clause 5, the apparatus of clause 2, wherein the threaded interface and the other threaded interface have a same turn orientation and timed threads;
Clause 6, the apparatus of clause 2, wherein at least one selected from a group comprising a lower section of the other threaded interface and an upper section of the threaded interface comprises a gasket;
Clause 7, the apparatus of clause 1, further comprising at least one selected from a group a stabilizer and a multipart stabilizer for stabilizing the lateral legs;
Clause 8, the apparatus of clause 2, wherein the threaded interface of the lateral bore, the threaded interface of the lateral leg, or the other interface of the lateral leg, or any combination thereof have a same thread pitch;
Clause 9, a system for use in downhole well environments, the system comprising: a y-block having a main bore and lateral bores formed therein, the main bore having a first end for coupling with a section of tubing and another end for coupling with a main bore leg, each lateral bore having a threaded interface, the main bore having an internal diameter greater than the internal diameter of the lateral bores; at least two lateral legs, each lateral leg having a threaded interface to couple with the threaded interface of a respective lateral bore; and a transition sub for coupling with another interface of the lateral leg;
Clause 10, the system of clause 9, wherein the other interface of the lateral leg is a threaded interface;
Clause 11, the system of clause 10, wherein the other threaded interface has a greater number of threads than the threaded interface that couples with the threaded interface of the respective lateral bore or the threaded interface of the lateral leg;
Clause 12, the system of clause 10, wherein the threaded interface and the other threaded interface have a same turn orientation;
Clause 13, the system of clause 10, wherein the threaded interface and the other threaded interface have a same turn orientation and timed threads;
Clause 14, the system of clause 10, further comprising at least one selected from a group a stabilizer and a multipart stabilizer for stabilizing the lateral legs;
Clause 15, the system of clause 10, wherein the threaded interface of the lateral bore, the threaded interface of the lateral leg, or the other interface of the lateral leg, or any combination thereof comprises a metal gasket;
Clause 16, the system of clause 10, wherein the transition sub comprises an annular cavity and a landing pad;
Clause 17, a method of using a junction in a downhole well environment, the method comprising: threading an end of a first lateral leg and an end of a second lateral leg into a transition sub; threading another end of the first lateral leg and another end of the second lateral leg into a y-block; positioning a section of tubing, the y-block, a main bore leg, the first lateral leg and the second lateral leg in a section of a well, the main bore leg and the lateral leg collapsed together; positioning the lateral leg into another section of the well; pumping fluid through the section of tubing, the main bore leg, and the later leg; the y-block having a main bore and lateral bores formed therein, the main bore having a first end for coupling with a section of tubing and another end for coupling with a main bore leg, each lateral bore having a threaded interface, the main bore having an internal diameter greater than the internal diameter of the lateral bores; the lateral legs having a threaded interface to couple with the threaded interface of a respective lateral bore; and a transition sub for coupling with another interface of the lateral leg;
Clause 18, the method of clause 17, wherein the other interface of the leg is a threaded interface; wherein the other threaded interface has a greater number of threads than the threaded interface that couples with the threaded interface of the respective lateral bore or the threaded interface of the lateral leg;
Clause 19, the method of clause 17, further comprising stabilizing the lateral legs using at least one selected from a group comprising a stabilizer and a multi-part stabilizer; and
Clause 20, the method of clause 17, further comprising forming a seal between the lateral legs and the transition sub.
The present application claims priority to and benefit of U.S. Provisional Patent Application No. 62/894,589, filed Aug. 30, 2019, the disclosure of which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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62894589 | Aug 2019 | US |