TUBING ANCHOR RECEPTACLE FOR A MAGMA WELLBORE
20250035343 ยท 2025-01-30
Inventors
- Kevin Martin Stone (Houston, TX, US)
- Benjamin Chris Smith (Humble, TX, US)
- James Michael Browning (Houston, TX, US)
- Shamsul Abedin Al-Tomal (Houston, TX, US)
- ANDREW NGUYEN (RICHMOND, TX, US)
Cpc classification
F24T10/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A tubing is anchored in a boiler casing positioned in a borehole that extends into a magma reservoir. The tubing may include a notch that is secured to a tubing anchor receptacle of the boiler casing. The boiler casing may include a float shoe that helps to prevent or restrict the flow of magma from the magma reservoir into the boiler casing and tubing.
Claims
1. A geothermal system, comprising: a borehole extending from a surface into an underground magma reservoir; and a boiler casing positioned within the borehole and extending into the magma reservoir, wherein the boiler casing comprises a tubing anchor receptacle, the tubing anchor receptacle comprising: an outer body comprising an opening passing therethrough; a top receptacle formed in the outer body; and a grooved receptacle coupled to the top receptacle, wherein the grooved receptacle comprises: a helical groove sized and shaped to receive a notch of a tubing anchor configured to be coupled to the tubing anchor receptacle; and a vertical groove coupled to the helical groove and configured to receive the notch of the tubing anchor after the notch traverses the helical groove and to secure the notch in place.
2. The geothermal system of claim 1, wherein the helical groove is configured to: receive the notch of the tubing anchor; and direct the notch into a bottom of the vertical groove as the tubing anchor moves downwards.
3. The geothermal system of claim 2, wherein the vertical groove is configured to secure the tubing anchor in place in an upper position after the tubing anchor is raised.
4. The geothermal system of claim 1, wherein the outer body comprises an end section sized and shaped to fit securely in a float shoe coupled to the tubing anchor receptacle.
5. The geothermal system of claim 4, wherein the tubing anchor receptacle further comprises: a conduit coupled to the grooved receptacle, the conduit sized and shaped to fit within an opening in the float shoe; and at least one sealing ring positioned around the conduit.
6. The geothermal system of claim 5, wherein the at least one sealing ring is a metal or alloy gasket.
7. The geothermal system of claim 1, wherein the grooved receptacle further comprises a plurality of helical grooves, each sized and shaped to receive a notch of a plurality of notches of the tubing anchor.
8. The geothermal system of claim 7, wherein the grooved receptacle further comprises a plurality of vertical grooves, each vertical groove of the plurality of vertical grooves coupled to a corresponding helical groove of the plurality of vertical grooves.
9. A boiler casing positioned within a borehole and extending into an underground magma reservoir, wherein the boiler casing comprises a tubing anchor receptacle, the tubing anchor receptacle comprising: an outer body comprising an opening passing therethrough; a top receptacle formed in the outer body; and a grooved receptacle coupled to the top receptacle, wherein the grooved receptacle comprises: a helical groove sized and shaped to receive a notch of a tubing anchor configured to be coupled to the tubing anchor receptacle; and a vertical groove coupled to the helical groove and configured to receive the notch of the tubing anchor after the notch traverses the helical groove and to secure the notch in place.
10. The boiler casing of claim 9, wherein the helical groove is configured to: receive the notch of the tubing anchor; and direct the notch into a bottom of the vertical groove as the tubing anchor moves downwards.
11. The boiler casing of claim 10, wherein the vertical groove is configured to secure the tubing anchor in place in an upper position after the tubing anchor is raised.
12. The boiler casing of claim 9, wherein the outer body comprises an end section sized and shaped to fit securely in a float shoe coupled to the tubing anchor receptacle.
13. The boiler casing of claim 12, wherein the tubing anchor receptacle further comprises: a conduit coupled to the grooved receptacle, the conduit sized and shaped to fit within an opening in the float shoe; and at least one sealing ring positioned around the conduit.
14. The boiler casing of claim 13, wherein the at least one sealing ring is a metal or alloy gasket.
15. The boiler casing of claim 9, wherein the grooved receptacle further comprises: a plurality of helical grooves, each sized and shaped to receive a notch of a plurality of notches of the tubing anchor.
16. The boiler casing of claim 15, wherein the grooved receptacle further comprises a plurality of vertical grooves, each vertical groove of the plurality of vertical grooves coupled to a corresponding helical groove of the plurality of vertical grooves.
17. A tubing anchor receptacle of a boiler casing to be positioned in a borehole extending into an underground magma reservoir, the tubing anchor receptacle comprising: an outer body comprising an opening passing therethrough; a top receptacle formed in the outer body; and a grooved receptacle coupled to the top receptacle, wherein the grooved receptacle comprises: a helical groove sized and shaped to receive a notch of a tubing anchor configured to be coupled to the tubing anchor receptacle; and a vertical groove coupled to the helical groove and configured to receive the notch of the tubing anchor after the notch traverses the helical groove and to secure the notch in place.
18. The tubing anchor receptacle of claim 17, wherein: the helical groove is configured to: receive the notch of the tubing anchor; and direct the notch into a bottom of the vertical groove as the tubing anchor moves downwards; and the vertical groove is configured to secure the tubing anchor in place in an upper position after the tubing anchor is raised.
19. The tubing anchor receptacle of claim 17, further comprising: a conduit coupled to the grooved receptacle, the conduit sized and shaped to fit within an opening in a float shoe coupled to the tubing anchor receptacle; and at least one sealing ring positioned around the conduit, wherein the at least one sealing ring is a metal or alloy gasket.
20. The tubing anchor receptacle of claim 17, wherein the grooved receptacle further comprises: a plurality of helical grooves, each sized and shaped to receive a notch of a plurality of notches of the tubing anchor, and a plurality of vertical grooves, each vertical groove of the plurality of vertical grooves coupled to a corresponding helical groove of the plurality of vertical grooves.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0006] For a more complete understanding of the present disclosure, reference is now made to the following description, taken in conjunction with the accompanying drawings and detailed description, in which like reference numerals represent like parts.
[0007]
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023] Embodiments of the present disclosure and its advantages will become apparent from the following detailed description when considered in conjunction with the accompanying figures. In the figures, each identical, or substantially similar component that is illustrated in various figures is represented by a single numeral or notation. For purposes of clarity, not every component is labeled in every figure, nor is every component of each embodiment shown where illustration is not necessary to allow those of ordinary skill in the art to understand the disclosure.
[0024] The present disclosure includes unexpected observations, which include the following: (1) magma reservoirs can be located at relatively shallow depths of less than 2.5 km; (2) the top layer of a magma reservoir may have relatively few crystals with little or no mush zone; (3) a magma reservoir does not decline in thermal output over at least a two-year period; (4) eruptions at drill sites into magma reservoirs are unlikely and have not been observed (e.g., eruptions have not happened at African and Icelandic drill sites in over 10,000 years and it is believed a Kilauea, Hawaii drill site has never erupted); and (5) drilling into magma reservoirs can be reasonably safe.
[0025] As used herein, magma refers to extremely hot liquid and semi-liquid rock under the Earth's surface. Magma is formed from molten or semi-molten rock mixture found typically between 1 km to 10 km under the surface of the Earth. As used herein, borehole generally refers to a hole that is drilled to aid in the exploration and recovery of natural resources, including oil, gas, water, or heat from below the surface of the Earth. As used herein, a wellbore generally refers to a borehole either alone or in combination with one or more other components disposed within or in connection with the borehole in order to perform exploration and/or recovery processes. In some instances, the terms wellbore and borehole are used interchangeably. As used herein, fluid conduit refers to any structure, such as a pipe, tube, or the like, used to transport fluids. As used herein, heat transfer fluid refers to a fluid, e.g., a gas or liquid, that takes part in heat transfer by serving as an intermediary in cooling on one side of a process, transporting and storing thermal energy, and heating on another side of a process. Heat transfer fluids are used in processes requiring heating or cooling
[0026]
[0027]
[0028] The configuration of conventional geothermal system 200 of
Example Improved Geothermal System
[0029]
[0030] The geothermal system 300 provides technical advantages over previous geothermal systems, such as the conventional geothermal system 200 of
[0031] The example geothermal system 300 may include further components not illustrated in
Example Magma Wellbore
[0032]
[0033] Tubing 404 is positioned within the boiler casing 402. The tubing 404 may be a fluid conduit with a smaller diameter than that of the boiler casing 402. The tubing 404 may be made of the same material as the boiler casing 402 or a different material. The tubing 404 may have one or more openings at or near its terminal end (see, e.g., openings or orifices 1308 of
[0034] The magma wellbore 302 may include one or more casings 412 to maintain the structural integrity of the borehole 414 and/or help support the boiler casing 402. The casings 412 may be made of a metal or alloy, such as steel, or another appropriate material. The borehole 414 may be drilled and casings 412 may be established as described, for example, in U.S. patent application Ser. No. 18/099,499, filed Jan. 20, 2023, and titled Geothermal Power from Superhot Geothermal Fluid and Magma Reservoirs; U.S. patent application Ser. No. 18/099,509, filed Jan. 20, 2023, and titled Geothermal Power from Superhot Geothermal Fluid and Magma Reservoirs; U.S. patent application Ser. No. 18/099,514, filed Jan. 20, 2023, and titled Geothermal Power from Superhot Geothermal Fluid and Magma Reservoirs; U.S. patent application Ser. No. 18/099,518, filed Jan. 20, 2023, and titled Geothermal Power from Superhot Geothermal Fluid and Magma Reservoirs; U.S. patent application Ser. No. 18/105,674, filed Feb. 3, 2023, and titled Wellbore for Extracting Heat from Magma Chambers; U.S. patent application Ser. No. 18/116,693, filed Mar. 2, 2023, and titled Geothermal Systems and Methods with an Underground Magma Chamber; U.S. patent application Ser. No. 18/116,697, filed Mar. 2, 2023, and titled Method and System for Preparing a Geothermal System with a Magma Chamber; and U.S. Provisional Patent Application No. 63/444,703, filed Feb. 10, 2023, and titled Geothermal Systems and Methods Using Energy from Underground Magma Reservoirs, each of which is already incorporated herein by reference.
[0035] During an example operation of the magma wellbore 302, an inlet flow 406 of heat transfer fluid (e.g., relatively cool fluid from thermal process system 304, see
[0036] The heat transfer fluid may be any appropriate fluid for absorbing heat obtained from the magma reservoir 214 and driving a thermal process as described in this disclosure (see, e.g.,
Boiler Casing with Tubing Anchor Receptacle
[0037]
[0038]
Float Shoe
[0039]
[0040] A lower receptacle 614 is a cylindrical (or approximately cylindrical) opening coupled to the top receptacle 612. The lower receptacle 614 has a smaller diameter than that of the top receptacle 612 and is sized and shaped to secure ball cage 514 in place. The lower receptacle 614 couples the top receptacle 612 to a tapered receptacle 616. The tapered receptacle 616 is coupled to lower receptacle 614 and bottom opening 608. The tapered receptacle 616 has slots 618 formed by notches 620. The slots 618 are configured to receive and secure the ball cage 514 in place. For example, indentations (e.g., indentations 912 of
Tubing Anchor
[0041]
[0042] The tubing anchor receptacle 504 has an outer body 702 with an end section 704 adapted (e.g., sized and shaped) to fit into the opening 606 of the float shoe 506 (see
[0043] A grooved receptacle 716 has helical grooves 718 that lead in a downward spiral direction to vertical grooves 720. Each helical groove 718 leads to and is coupled to a corresponding vertical groove 720. Notches (see, e.g., notches 1312 of
[0044] A conduit 722 leads from the grooved receptacle 716 to the bottom opening 708. Sealing rings 518 may be positioned around the conduit 722.
Float Shoe Lock Ring
[0045]
Temperature Resistant Ball Check Valve
[0046]
[0047] The ball cage 514 is sized and shaped to hold ball 516. Ball cage 514 rests in the slots 618 of the float shoe 506 (see
[0048] The ball cage 514 is made up of a hollow cylindrical body 902 extending from a top end 904 to a bottom end 906. The body 902 has openings 908 in the side wall to facilitate movement of the ball 516 along the length 910 of the body 902 (see
[0049] Ball 516 is a spherical or approximately spherical ball with an effective density that is higher than the drilling fluid (e.g., water, a drilling mud, or another appropriate fluid) but slightly lower than that of magma from the magma reservoir 214. This allows the ball to float in magma from the magma reservoir 214 and block flow of magma up the tubing 404 (see
Sealing Rings
[0050]
Example Float Shoe Operation
[0051]
[0052]
Tubing and Tubing Anchor
[0053]
[0054] The solid cross-over 1304 is adapted to connect to both the main tubing section 1302 and the tubing anchor 1306. In some cases, an additional adapter/cross-over may be used to join the tubing anchor 1306 to different sizes of the main tubing section 1302. The solid cross-over 1304 may include ends 1318 and 1320 that are adapted to be joined the main tubing section 1302 and the tubing anchor 1306, respectively. For example, a threaded end 1316 of the main tubing section 1302 may be secured within corresponding threads in end 1318 of the solid cross-over 1304. Similarly, a threaded end 1324 of the tubing anchor 1306 may be secured within corresponding threads in the other end 1320 of the solid cross-over 1304. Between the ends 1318 and 1320 there is a solid section 1322 that prevents flow of fluid through the solid cross-over 1304 (i.e., that does not allow the flow of fluid from the tubing anchor 1306 into the main tubing section 1302).
[0055] The tubing anchor 1306 includes anchoring notches 1312 that are sized and shaped to fit into the helical grooves 718 of the tubing anchor receptacle 504 (see
Example Operation of Tubing Anchor and Anchor Receptacle
[0056]
[0057]
[0058]
[0059]
[0060]
Example Method of Preparing a Magma Wellbore
[0061]
[0062] At step 1504, the boiler casing 402 is lowered into and positioned within the borehole 414. The boiler casing 402 extends into the magma reservoir 214. At step 1506, the ball check valve formed of ball cage 514 and ball 516 is allowed to close to prevent or limit flow of magma into the boiler casing 402, as described above with respect to
[0063] At step 1508, the tubing 404 is lowered into the boiler casing 402. At step 1510, a decrease in weight of the tubing 404 is detected. The decrease in weight corresponds to the anchoring notches 1312 reaching the bottom of the vertical grooves 720 (see
[0064] At step 1512, the tubing 404 is raised. Raising the tubing 404 causes the anchoring notches 1312 to move to a secured position in the top of the vertical grooves 720 (see
[0065] At steps 1514 and 1516, operations may be performed to operate the wellbore 302 as part of the overall geothermal system 300. For example, at step 1514, a heat transfer fluid may be provided down the boiler casing 402 and sent back to the surface via the anchored tubing 404 (or vice versa). At step 1516, the heated heat transfer fluid received at the surface 216 may be used to power a thermal process (e.g., for electricity generation, thermochemical reactions, and/or the like). For example, the heated heat transfer fluid may be provided to the thermal process system 304 of
[0066] Modifications, omissions, or additions may be made to method 1500 depicted in
Example Thermal Processing Systems
[0067]
[0068] In the example of
[0069] The steam separator 1602 is connected to the wellbore 302 that extends between a surface and the underground magma reservoir. The steam separator 1602 separates a gas-phase heat transfer fluid (e.g., steam) from liquid-phase heat transfer fluid (e.g., condensate formed from the gas-phase heat transfer fluid). A stream 1620 received from the wellbore 302 may be provided to the steam separator 1602. A gas-phase stream 1622 of heat transfer fluid from the steam separator 1602 may be sent to the first turbine set 1604 and/or the thermal process 1612 via stream 1626. The thermal process 1612 may be a thermochemical reaction requiring high temperatures and/or pressures (e.g., temperatures of between 500 F. and 2,000 F. and/or pressures of between 1,000 psig and 4,500 psig). A liquid-phase stream 1624 of heat transfer fluid from the steam separator 1602 may be provided back to the wellbore 302 and/or to condenser 1642. The condenser 1642 is any appropriate type of condenser capable of condensing a vapor-phase fluid. The condenser 1642 may be coupled to a cooling or refrigeration unit, such as a cooling tower (not shown for conciseness).
[0070] The first turbine set 1604 includes one or more turbines 1606a,b. In the example of FIG. 16, the first turbine set includes two turbines 1606a,b. However, the first turbine set 1604 can include any appropriate number of turbines for a given need. The turbines 1606a,b may be any known or yet to be developed turbine for electricity generation. The turbine set 1604 is connected to the steam separator 1602 and is configured to generate electricity from the gas-phase heat transfer fluid (e.g., steam) received from the steam separator 1602 (stream 1622). A stream 1630 exits the set of turbines 1604. The stream 1630 may be provided to the condenser 1642 and then back to the wellbore 302.
[0071] If the heat transfer fluid is at a sufficiently high temperature, as may be uniquely and more efficiently possible using the wellbore 302, a stream 1632 of gas-phase heat transfer fluid may exit the first turbine set 1604. Stream 1632 may be provided to a second turbine set 1608 to generate additional electricity. The turbines 1610a,b of the second turbine set 1608 may be the same as or similar to turbines 1606a,b, described above.
[0072] All or a portion of stream 1632 may be sent as gas-phase stream 1634 to a thermal process 1614. Process 1614 is generally a process requiring gas-phase heat transfer fluid at or near the conditions of the heat transfer fluid exiting the first turbine set 1604. For example, the thermal process 1614 may include one or more thermochemical processes requiring steam or another heat transfer fluid at or near the temperature and pressure of stream 1632 (e.g., temperatures of between 250 F. and 1,500 F. and/or pressures of between 500 psig and 2,000 psig). The second turbine set 1608 may be referred to as low pressure turbines because they operate at a lower pressure than the first turbine set 1604. Fluid from the second turbine set 1608 is provided to the condenser 1642 via stream 1636 to be condensed and then sent back to the wellbore 302.
[0073] An effluent stream 1638 from the second turbine set 1608 may be provided to one or more thermal process 1616a,b. Thermal processes 1616a,b generally require less thermal energy than processes 1612 and 1614, described above (e.g., processes 1616a,b may be performed temperatures of between 220 F. and 700 F. and/or pressures of between 15 psig and 120 psig). As an example, processes 1616a,b may include water distillation processes, heat-driven chilling processes, space heating processes, agriculture processes, aquaculture processes, and/or the like. For instance, an example heat-driven chiller process 1616a may be implemented using one or more heat driven chillers. Heat driven chillers can be implemented, for example, in data centers, crypto-currency mining facilities, or other locations in which undesirable amounts of heat are generated. Heat driven chillers, also conventionally referred to as absorption cooling systems, use heat to create chilled water. Heat driven chillers can be designed as direct-fired, indirect-fired, and heat-recovery units. When the effluent includes low pressure steam, indirect-fired units may be preferred. An effluent stream 1640 from all processes 1612, 1614, 1616a,b, may be provided back to the wellbore 302.
Additional Embodiments
[0074] The following descriptive embodiments are offered in further support of the one or more aspects of the present disclosure.
[0075] Embodiment 1. A method, comprising: [0076] a borehole extending from a surface into an underground magma reservoir; and [0077] a boiler casing positioned within the borehole and extending into the magma reservoir, wherein the boiler casing comprises a float shoe at a terminal end to be positioned within the magma reservoir, the float shoe comprising: [0078] a body with an opening passing therethrough; [0079] a ball cage secured within the opening and configured to contain a movable ball; and [0080] the movable ball, wherein the movable ball has an effective density that is greater than a first density of drilling fluid used to prepare the borehole and less than a second density of magma in the magma reservoir, wherein the method optionally includes any one or more of the following limitations: [0081] wherein the float shoe further comprises a top receptacle sized and shaped to receive a float shoe lock ring; [0082] wherein the float shoe lock ring comprises a bottom portion that fits into the top receptacle, wherein a surface of the bottom portion comprises an indentation configured to fit a top end of the ball cage; [0083] wherein the float shoe lock ring comprises a top portion comprising one or more indentations sized and shaped to secure a portion of an anchor receptacle; [0084] wherein the movable ball is configured to move to a partially raised position when the drilling fluid is present, wherein flow is allowed through the opening when the movable ball is in the partially raised position; [0085] wherein the movable ball is configured to move to a fully raised position in the presence of the magma from the magma reservoir, wherein flow is restricted through the opening when the movable ball is in the fully raised position; and [0086] wherein the float shoe comprises a tapered bottom end.
[0087] Embodiment 2. A boiler casing positioned within a borehole and extending into an underground magma reservoir, wherein the boiler casing comprises a float shoe comprising: [0088] a body with an opening passing therethrough; [0089] a ball cage secured within the opening and configured to contain a movable ball; and [0090] the movable ball, wherein the movable ball has an effective density that is greater than a first density of drilling fluid used to prepare the borehole and less than a second density of magma in the magma reservoir, wherein the boiler casing optionally includes any one or more of the following limitations: [0091] wherein the float shoe further comprises a top receptacle sized and shaped to receive a float shoe lock ring; [0092] wherein the float shoe lock ring comprises a bottom portion that fits into the top receptacle, wherein a surface of the bottom portion comprises an indentation configured to fit a top end of the ball cage; [0093] wherein the float shoe lock ring comprises a top portion comprising one or more indentations sized and shaped to secure a portion of an anchor receptacle; [0094] wherein the movable ball is configured to move to a partially raised position when the drilling fluid is present, wherein flow is allowed through the opening when the movable ball is in the partially raised position; [0095] wherein the movable ball is configured to move to a fully raised position in the presence of the magma from the magma reservoir, wherein flow is restricted through the opening when the movable ball is in the fully raised position; and [0096] wherein the float shoe comprises a tapered bottom end.
[0097] Embodiment 3. A float shoe of a boiler casing to be positioned in a borehole extending into an underground magma reservoir, the float shoe comprising: [0098] a body with an opening passing therethrough; [0099] a ball cage secured within the opening and configured to contain a movable ball; and [0100] the movable ball, wherein the movable ball has an effective density that is greater than a first density of drilling fluid used to prepare the borehole and less than a second density of magma in the magma reservoir, wherein the float shoe optionally includes any one or more of the following limitations: [0101] further comprising a top receptacle sized and shaped to receive a float shoe lock ring; [0102] wherein the float shoe lock ring comprises a bottom portion that fits into the top receptacle, wherein a surface of the bottom portion comprises an indentation configured to fit a top end of the ball cage; [0103] wherein the float shoe lock ring comprises a top portion comprising one or more indentations sized and shaped to secure a portion of an anchor receptacle; [0104] wherein the movable ball is configured to move to a partially raised position when the drilling fluid is present, wherein flow is allowed through the opening when the movable ball is in the partially raised position; and [0105] wherein the movable ball is configured to move to a fully raised position in the presence of the magma from the magma reservoir, wherein flow is restricted through the opening when the movable ball is in the fully raised position.
[0106] Embodiment 4. A geothermal system, comprising: [0107] a borehole extending from a surface into an underground magma reservoir; and [0108] a boiler casing positioned within the borehole and extending into the magma reservoir, wherein the boiler casing comprises a tubing anchor receptacle, the tubing anchor receptacle comprising: [0109] an outer body comprising an opening passing therethrough; [0110] a top receptacle formed in the outer body; and [0111] a grooved receptacle coupled to the top receptacle, wherein the grooved receptacle comprises: [0112] a helical groove sized and shaped to receive a notch of a tubing anchor configured to be coupled to the tubing anchor receptacle; and [0113] a vertical groove coupled to the helical groove and configured to receive the notch of the tubing anchor after the notch traverses the helical groove and secure the notch in place, wherein the system optionally includes any one or more of the following limitations: [0114] wherein the helical groove is configured to receive the notch of the tubing anchor; and direct the notch into a bottom of the vertical groove as the tubing anchor moves downwards; [0115] wherein the vertical groove is configured to secure the tubing anchor in place in an upper position after the tubing anchor is raised; [0116] wherein the outer body comprises an end section sized and shaped to fit securely in a float shoe coupled to the tubing anchor receptacle; [0117] wherein the tubing anchor receptacle further comprises a conduit coupled to the grooved receptacle, the conduit sized and shaped to fit within an opening in the float shoe; and at least one sealing ring positioned around the conduit; [0118] wherein the at least one sealing ring is a metal or alloy gasket; wherein the grooved receptacle further comprises a plurality of helical grooves, each sized and shaped to receive a notch of a plurality of notches of the tubing anchor; and [0119] wherein the grooved receptacle further comprises a plurality of vertical grooves, each vertical groove of the plurality of vertical grooves coupled to a corresponding helical groove of the plurality of vertical grooves.
[0120] Embodiment 5. A boiler casing positioned within a borehole and extending into an underground magma reservoir, wherein the boiler casing comprises a tubing anchor receptacle, the tubing anchor receptacle comprising: [0121] an outer body comprising an opening passing therethrough; [0122] a top receptacle formed in the outer body; and [0123] a grooved receptacle coupled to the top receptacle, wherein the grooved receptacle comprises: [0124] a helical groove sized and shaped to receive a notch of a tubing anchor configured to be coupled to the tubing anchor receptacle; and [0125] a vertical groove coupled to the helical groove and configured to receive the notch of the tubing anchor after the notch traverses the helical groove and secure the notch in place, wherein the boiler casing optionally includes any one or more of the following limitations: [0126] wherein the helical groove is configured to receive the notch of the tubing anchor; and direct the notch into a bottom of the vertical groove as the tubing anchor moves downwards; [0127] wherein the vertical groove is configured to secure the tubing anchor in place in an upper position after the tubing anchor is raised; [0128] wherein the outer body comprises an end section sized and shaped to fit securely in a float shoe coupled to the tubing anchor receptacle; [0129] wherein the tubing anchor receptacle further comprises a conduit coupled to the grooved receptacle, the conduit sized and shaped to fit within an opening in the float shoe; and at least one sealing ring positioned around the conduit; [0130] wherein the at least one sealing ring is a metal or alloy gasket; [0131] wherein the grooved receptacle further comprises a plurality of helical grooves, each sized and shaped to receive a notch of a plurality of notches of the tubing anchor; and [0132] wherein the grooved receptacle further comprises a plurality of vertical grooves, each vertical groove of the plurality of vertical grooves coupled to a corresponding helical groove of the plurality of vertical grooves.
[0133] Embodiment 6. A tubing anchor receptacle of a boiler casing to be positioned in a borehole extending into an underground magma reservoir, the tubing anchor receptacle comprising: [0134] an outer body comprising an opening passing therethrough; [0135] a top receptacle formed in the outer body; and [0136] a grooved receptacle coupled to the top receptacle, wherein the grooved receptacle comprises: [0137] a helical groove sized and shaped to receive a notch of a tubing anchor configured to be coupled to the tubing anchor receptacle; and [0138] a vertical groove coupled to the helical groove and configured to receive the notch of the tubing anchor after the notch traverses the helical groove and secure the notch in place, wherein the tubing anchor receptacle optionally includes any one or more of the following limitations: [0139] wherein the helical groove is configured to receive the notch of the tubing anchor; direct the notch into a bottom of the vertical groove as the tubing anchor moves downwards; and the vertical groove is configured to secure the tubing anchor in place in an upper position after the tubing anchor is raised; [0140] further comprising a conduit coupled to the grooved receptacle, the conduit sized and shaped to fit within an opening in a float shoe coupled to the tubing anchor receptacle; and at least one sealing ring positioned around the conduit, wherein the at least one sealing ring is a metal or alloy gasket; and [0141] wherein the grooved receptacle further comprises a plurality of helical grooves, each sized and shaped to receive a notch of a plurality of notches of the tubing anchor; and a plurality of vertical grooves, each vertical groove of the plurality of vertical grooves coupled to a corresponding helical groove of the plurality of vertical grooves.
[0142] Embodiment 7. A geothermal system, comprising: [0143] a borehole extending from a surface into an underground magma reservoir; [0144] a boiler casing positioned within the borehole and extending into the magma reservoir; and [0145] tubing positioned within the boiler casing, the tubing comprising a tubing anchor with at least one notch, [0146] wherein the boiler casing comprises a tubing anchor receptacle configured to receive the tubing anchor and secure the tubing anchor in place, the tubing anchor receptacle comprising a grooved receptacle that comprises: [0147] a helical groove sized and shaped to receive the at least one notch of the tubing anchor; and [0148] a vertical groove coupled to the helical groove and configured to receive the notch of the tubing anchor after the notch traverses the helical groove and secure the notch in place, such that the tubing cannot lift out of the boiler casing, wherein the geothermal system optionally includes any one or more of the following limitations: [0149] wherein the helical groove is configured to receive the notch of the tubing anchor; and direct the notch into a bottom of the vertical groove as the tubing anchor moves downwards; [0150] wherein the vertical groove is configured to secure the tubing anchor in place in an upper position after the tubing anchor is raised and rotated; [0151] wherein the tubing anchor receptacle further comprises a conduit below the grooved receptacle; and at least one sealing ring positioned around the conduit; [0152] wherein the at least one sealing ring is a metal or alloy gasket; [0153] wherein the tubing anchor is sized and shaped to fit within the conduit; and the at least one sealing ring provides a fluid seal to prevent or limit fluid flow out of the conduit when the tubing anchor is secured; [0154] wherein the tubing anchor receptacle is coupled to a float shoe comprising a metal ball check valve that closes in the presence of magma from the magma reservoir; and [0155] wherein the tubing anchor is hollow with an opening at a bottom end, wherein the hollow tubing anchor provides a volume for holding fluid, magma, or debris that inadvertently passes the metal ball check valve.
[0156] Embodiment 8. A tubing positioned within a boiler casing positioned within a borehole extending into an underground magma reservoir, the tubing comprising: [0157] a tubing anchor with at least one notch, wherein the boiler casing comprises a tubing anchor receptacle configured to receive the tubing anchor and secure the tubing anchor in place, the tubing anchor receptacle comprising a grooved receptacle that comprises: [0158] a helical groove sized and shaped to receive the at least one notch of the tubing anchor; and [0159] a vertical groove coupled to the helical groove and configured to receive the notch of the tubing anchor after the notch traverses the helical groove and secure the notch in place, such that the tubing cannot lift out of the boiler casing, wherein the tubing optionally includes any one or more of the following limitations: [0160] wherein the helical groove is configured to receive the notch of the tubing anchor; and direct the notch into a bottom of the vertical groove as the tubing anchor moves downwards; [0161] wherein the vertical groove is configured to secure the tubing anchor in place in an upper position after the tubing anchor is raised and rotated; [0162] wherein the tubing anchor receptacle further comprises a conduit below the grooved receptacle; and at least one sealing ring positioned around the conduit; [0163] wherein the at least one sealing ring is a metal or alloy gasket; [0164] wherein the tubing anchor is sized and shaped to fit within the conduit; and the at least one sealing ring provides a fluid seal to prevent or limit fluid flow out of the conduit when the tubing anchor is secured; [0165] wherein the tubing anchor receptacle is coupled to a float shoe comprising a metal ball check valve that closes in the presence of magma from the magma reservoir; and [0166] wherein the tubing anchor is hollow with an opening at a bottom end, wherein the hollow tubing anchor provides a volume for holding fluid, magma, or debris that inadvertently passes the metal ball check valve.
[0167] Embodiment 9. A method, comprising: [0168] positioning a boiler casing within a borehole extending from a surface into an underground magma reservoir; [0169] lowering tubing positioned within the boiler casing; and [0170] causing a tubing anchor of the tubing to engage a tubing receptacle of the boiler casing by: [0171] inserting a notch of the tubing anchor into a helical groove of the tubing anchor receptacle; [0172] moving the notch along the helical groove via a downward motion of the tubing; and [0173] securing the notch to a vertical groove of the tubing anchor receptacle by moving the tubing in an upwards direction, such that the tubing cannot lift out of the boiler casing, wherein the method optionally includes any one or more of the following limitations: [0174] further comprising, prior to moving the tubing in the upwards direction, detecting a rotation of the tubing when the notch of the tubing anchor moves along the helical groove; [0175] further comprising, prior to moving the tubing in the upwards direction, detecting a decrease in a weight of the tubing; and [0176] further comprising positioning the boiler casing within the borehole by lowering the boiler casing into the borehole until a portion of the boiler casing extends into the magma reservoir; and [0177] after completion of lowering the boiler casing into the borehole, allowing a metal ball valve to close in a float shoe of the boiler casing.
[0178] Although embodiments of the disclosure have been described with reference to several elements, any element described in the embodiments described herein are exemplary and can be omitted, substituted, added, combined, or rearranged as applicable to form new embodiments. A skilled person, upon reading the present specification, would recognize that such additional embodiments are effectively disclosed herein. For example, where this disclosure describes characteristics, structure, size, shape, arrangement, or composition for an element or process for making or using an element or combination of elements, the characteristics, structure, size, shape, arrangement, or composition can also be incorporated into any other element or combination of elements, or process for making or using an element or combination of elements described herein to provide additional embodiments. Moreover, items shown or discussed as coupled or directly coupled or communicating with each other may be indirectly coupled or communicating through some interface device, or intermediate component whether electrically, mechanically, fluidically, or otherwise.
[0179] While this disclosure has been particularly shown and described with reference to preferred or example embodiments, it will be understood by those skilled in the art that various changes in form and detail may be made therein without departing from the spirit and scope of the disclosure. Accordingly, this disclosure includes all modifications and equivalents of the subject matter recited in the claims appended hereto as permitted by applicable law. Changes, substitutions and alterations are ascertainable by one skilled in the art and could be made without departing from the spirit and scope disclosed herein. Moreover, any combination of the above-described elements in all possible variations thereof is encompassed by the disclosure unless otherwise indicated herein or otherwise clearly contradicted by context.
[0180] Additionally, where an embodiment is described herein as comprising some element or group of elements, additional embodiments can consist essentially of or consist of the element or group of elements. Also, although the open-ended term comprises is generally used herein, additional embodiments can be formed by substituting the terms consisting essentially of or consisting of.