BALLISTIC INTERRUPT TO CLOSE A CIRCUIT TO A DETONATOR
Embodiments described herein provide perforating guns having one or more perforating charges and an initiator assembly. The initiator assembly includes one or more detonators configured to cause detonation of the one or more perforating charges. In addition, the initiator assembly includes one or more mechanical components configured to be actuated to transition the initiator assembly from a first mechanical configuration to a second mechanical configuration, wherein a detonation circuit of the initiator assembly is open when the initiator assembly is in the first mechanical configuration and the detonation circuit of the initiator assembly is closed when the initiator assembly is in the second mechanical configuration.
This application claims priority to U.S. Provisional Patent Application Ser. No. 63/723,974, entitled “Ballistic Interrupt to Close a Circuit to a Detonator”, which was filed on Nov. 22, 2024, and which is herein incorporated by reference in its entirety for all purposes.
BACKGROUNDThe present disclosure generally relates to systems and methods for enabling mechanical actuation of ballistic interrupts to close circuits to detonators.
This section is intended to introduce the reader to various aspects of art that may be related to various aspects of the present techniques, which are described and/or claimed below. This discussion is believed to be helpful in providing the reader with background information to facilitate a better understanding of the various aspects of the present disclosure. Accordingly, it should be understood that these statements are to be read in this light, and not as admission of prior art.
Exploring, drilling, and completing hydrocarbon and other wells are generally complicated, time consuming and ultimately very expensive endeavors. As a result, over the years, well architecture has become more sophisticated where appropriate in order to help enhance access to underground hydrocarbon reserves. For example, as opposed to wells of limited depth, it is not uncommon to find hydrocarbon wells exceeding 30,000 feet in depth. Furthermore, as opposed to remaining entirely vertical, today's hydrocarbon wells often include deviated or horizontal sections aimed at targeting particular underground reserves.
While such well depths and architecture may increase the likelihood of accessing underground hydrocarbon reservoirs, other challenges are presented in terms of well management and the maximization of hydrocarbon recovery from such wells. For example, during the life of a well, a variety of well access applications may be performed within the well with a host of different tools or measurement devices. However, providing downhole access to wells of such challenging architecture may require more than simply dropping a wireline into the well with the applicable tool located at the end thereof. Indeed, a variety of isolating, perforating, and stimulating applications may be employed in conjunction with completions operations.
In the case of perforating, different zones of the well may be outfitted with packers and other hardware, in part for sake of zonal isolation. Thus, wireline or other conveyance may be directed to a given zone and a perforating gun employed to create perforation tunnels through the well casing. Specifically, shaped charges housed within a steel gun may be detonated to form perforations or tunnels into the surrounding formation, ultimately enhancing recovery therefrom.
BRIEF DESCRIPTIONA summary of certain embodiments disclosed herein is set forth below. It should be understood that these aspects are presented merely to provide the reader with a brief summary of these certain embodiments and that these aspects are not intended to limit the scope of this disclosure. Indeed, this disclosure may encompass a variety of aspects that may not be set forth below.
In one embodiment, a perforating gun may include one or more perforating charges and an initiator assembly. The initiator assembly may include one or more detonators configured to cause detonation of the one or more perforating charges. In addition, the initiator assembly may include one or more mechanical components configured to be actuated to transition the initiator assembly from a first mechanical configuration to a second mechanical configuration. A detonation circuit of the initiator assembly is open when the initiator assembly is in the first mechanical configuration to prevent the one or more detonators from detonating the one or more perforating charges and the detonation circuit of the initiator assembly is closed when the initiator assembly is in the second mechanical configuration to enable the one or more detonators to detonate the one or more perforating charges.
In another embodiment, a perforating gun includes one or more perforating charges and an initiator assembly. The initiator assembly may include one or more detonators configured to cause detonation of the one or more perforating charges. In addition, the initiator assembly may include a ballistic interrupt shutter configured to be actuated to transition from a first position to a second position. A detonation circuit of the initiator assembly is open when the ballistic interrupt shutter is in the first position to prevent the one or more detonators from detonating the one or more perforating charges and the detonation circuit of the initiator assembly is closed when the ballistic interrupt shutter is in the second position to enable the one or more detonators to detonate the one or more perforating charges.
In yet another embodiment, a perforating gun includes one or more perforating charges and an initiator assembly having a detonator holder configured to cause detonation of the one or more perforating charges upon transition from a first position to a second position. A detonation circuit of the initiator assembly is open when the detonator holder is in the first position to prevent one or more detonators from detonating the one or more perforating charges and the detonation circuit of the initiator assembly is closed when the detonator holder is in the second position to enable the one or more detonators to detonate the one or more perforating charges.
In yet another embodiment, a perforating gun includes one or more perforating charges and an initiator assembly having a detonating cord configured to cause detonation of the one or more perforating charges upon transition from a first position to a second position. A detonation circuit of the initiator assembly is open when the detonating cord is in the first position to prevent one or more detonators from detonating the one or more perforating charges and the detonation circuit of the initiator assembly is closed when the detonating cord is in the second position to enable the one or more detonators to detonate the one or more perforating charges.
Various refinements of the features noted above may be undertaken in relation to various aspects of the present disclosure. Further features may also be incorporated in these various aspects as well. These refinements and additional features may exist individually or in any combination. For instance, various features discussed below in relation to one or more of the illustrated embodiments may be incorporated into any of the above-described aspects of the present disclosure alone or in any combination. The brief summary presented above is intended to familiarize the reader with certain aspects and contexts of embodiments of the present disclosure without limitation to the claimed subject matter.
These and other features, aspects, and advantages of the present invention will become better understood when the following detailed description is read with reference to the accompanying drawings in which like characters represent like parts throughout the drawings, wherein:
One or more specific embodiments will be described below. In an effort to provide a concise description of these embodiments, not all features of an actual implementation are described in the specification. It should be appreciated that in the development of any such actual implementation, as in any engineering or design project, numerous implementation-specific decisions must be made to achieve the developers'specific goals, such as compliance with system-related and business-related constraints, which may vary from one implementation to another. Moreover, it should be appreciated that such a development effort might be complex and time consuming, but would nevertheless be a routine undertaking of design, fabrication, and manufacture for those of ordinary skill having the benefit of this disclosure.
When introducing elements of various embodiments of the present disclosure, the articles “a,” “an,” and “the” are intended to mean that there are one or more of the elements. The terms “comprising,” “including,” and “having” are intended to be inclusive and mean that there may be additional elements other than the listed elements. Additionally, it should be understood that references to “one embodiment” or “an embodiment” of the present disclosure are not intended to be interpreted as excluding the existence of additional embodiments that also incorporate the recited features.
As used herein, the terms “connect,” “connection,” “connected,” “in connection with,” and “connecting” are used to mean “in direct connection with” or “in connection with via one or more elements”; and the term “set” is used to mean “one element” or “more than one element.” Further, the terms “couple,” “coupling,” “coupled,” “coupled together,” and “coupled with” are used to mean “directly coupled together” or “coupled together via one or more elements.” As used herein, the terms “up” and “down,” “uphole” and “downhole”, “upper” and “lower,” “top” and “bottom,” and other like terms indicating relative positions to a given point or element are utilized to more clearly describe some elements. Commonly, these terms relate to a reference point as the surface from which drilling operations are initiated as being the top (e.g., uphole or upper) point and the total depth along the drilling axis being the lowest (e.g., downhole or lower) point, whether the well (e.g., wellbore, borehole) is vertical, horizontal or slanted relative to the surface.
In addition, as used herein, the terms “real time”, “real-time”, or “substantially real time” may be used interchangeably and are intended to described operations (e.g., computing operations) that are performed without any human-perceivable interruption between operations. For example, as used herein, data relating to the systems described herein may be collected, transmitted, and/or used in control computations in “substantially real time” such that data readings, data transfers, and/or data processing steps occur once every second, once every 0.1 second, once every 0.01 second, or even more frequent, during operations of the systems (e.g., while the systems are operating). In addition, as used herein, the terms “automatic” and “automated” are intended to describe operations that are performed or caused to be performed, for example, by a processing system (i.e., solely by the processing system, without human intervention). In addition, as used herein, the term “approximately equal to” may be used to mean values that are relatively close to each other (e.g., within 5%, within 2%, within 1%, within 0.5 %, or even closer, of each other).
The embodiments described herein provide perforating guns having one or more perforating charges and an initiator assembly. The initiator assembly includes one or more detonators configured to cause detonation of the one or more perforating charges. In addition, the initiator assembly includes one or more mechanical components configured to be actuated to transition the initiator assembly from a first mechanical configuration to a second mechanical configuration, wherein a detonation circuit of the initiator assembly is open when the initiator assembly is in the first mechanical configuration and the detonation circuit of the initiator assembly is closed when the initiator assembly is in the second mechanical configuration. As used herein, when referring to the various initiator assemblies described herein, the term “open” is generally intended to refer to a circuit configuration where lead wires from a switch are not electrically connected to the one or more detonators (e.g., thereby preventing explosive transfer from the one or more detonators to the one or more perforating charges), and the term “closed” is generally intended to refer to a circuit configuration where lead wires from a switch are electrically connected to the one or more detonators (e.g., thereby enabling explosive transfer from the one or more detonators to the one or more perforating charges).
In general, in order to initiate perforating charges, the detonation of the detonator will typically be used to propagate explosive detonation to a detonating cord or a booster on a detonating cord. The detonation of the detonating cord will propagate along its length and then activate the perforating shape charges. It will be appreciated that many of the drawings presented herein illustrate movement of the detonator, but do not illustrate the specific location(s) of a booster or a detonating cord or ballistic interrupt shutter. However, one skilled in the art should realize that appropriate placement of a booster or a detonating cord may be assumed when not explicitly shown.
With reference to
Typically, perforating guns 15 (which include gun carriers and shaped charges mounted on or in the gun carriers or, alternatively, include sealed capsule charges) are lowered through tubing or other pipes to the desired formation interval on a line 17 (e.g., wireline, e-line, slickline, coiled tubing, and so forth). The charges carried in a perforating gun 15 may be phased to fire in multiple directions around the circumference of the wellbore 11. Alternatively, the charges may be aligned in a straight line. When fired, the charges create perforating jets that form holes in the surrounding casing 12 as well as extend perforation tunnels into the surrounding formation 16.
Certain embodiments include a perforation system comprising: (1) a perforating gun 15 (or gun string), wherein each gun may be a carrier gun (as shown) or a capsule gun (not shown); and (2) one or more perforating charges 20 loaded into the perforating gun 15 (or into each gun of the gun string); and (3) a conveyance mechanism 17 for deploying the perforating gun 15 (or gun string) into a wellbore 11 to align at least one of the perforating charges 20 within a target formation interval 13, wherein the conveyance mechanism 17 may be a wireline, tubing, or other conventional perforating deployment structure; among other components.
Referring to
As illustrated, the loading tube 50 may also include one or more charge jacket holders 68 (six are at least partially shown in
The component parts of the perforating gun 15 may be formed from any material. For example, one or more component parts of the perforating gun 15 may be formed from metals, such as carbon steel, stainless steel, nickel, nickel alloys, iron, aluminum, tungsten, ceramics, plastic, composite materials, glass, and so forth. One or more component parts of the perforating gun 15 may also be formed from one or more thermoplastic materials, such as polymers, elastomers, rubbers, and so forth.
As described in greater detail herein, the perforating gun 15 may include an initiator assembly 60 having a ballistic interrupt shutter 62 configured to prevent detonation until a command is sent to release the ballistic interrupt shutter 62, thereby closing the ballistic circuit between a detonating cord 64 and a detonator 66 of the perforating gun 15. As such, a perforating gun 15 fully loaded with perforating charges 20 may be safely handled and transported. In certain embodiments, the initiator assembly 60 may include circuitry that releases the ballistic interrupt shutter 62 and fires the detonator 66 somewhat independently.
For example,
In the embodiments illustrated in
In general, when the ASFS 94 has activated the circuitry for “FIRE,” current will flow through the shutter support circuit 92 causing an event that fails the circuit and allows the ballistic interrupt shutter 62 to drop from position 1 into position 2. This “failure” of the shutter support circuit 92 stops current flow through it, and once the ballistic interrupt shutter 62 is in position 2, current will flow through it and into the detonator 66.
As discussed above, when referring to the various initiator assemblies 60 described herein, the term “open” is generally intended to refer to a circuit configuration where lead wires from a switch (e.g., such as an ASFS 94) are not electrically connected to a detonator 66 (e.g., thereby preventing explosive transfer from the detonator 66 to perforating charges 20), and the term “closed” is generally intended to refer to a circuit configuration where lead wires from a switch (e.g., such as an ASFS 94) are electrically connected to a detonator 66 (e.g., thereby enabling explosive transfer from the detonator 66 to perforating charges 20).
As described in greater detail herein, different types of initiator assemblies 60 may be used. In general, two different types of mechanical schemes may be employed:
-
- (1) trigger (e.g., “hot knife”) mechanisms, which include fewer moving parts, such as fuse resistors 90 that enable more passive release of ballistic interrupt shutters 62; and
- (2) shutter release mechanisms, which include more moving parts, such as shutter springs 76 to actively move ballistic interrupt shutters 62. In general, fewer moving parts are preferred.
An assumption behind using fuse resistors 90 is that they are relatively fragile elements, and may be prone to break. Certain embodiments described herein include a pair of fuse resistors 90 that implement a two-step shutter release sequence that compensates for mechanical damage to one of the fuse resistors 90 during transportation (e.g., if one breaks, the second will prevent release of the ballistic interrupt shutter 62. In certain alternative embodiments, only one fuse resistor 90 may be used. In other embodiments, Ni—Cr (nichrome) alloy wire may be used instead of fuse resistors 90. Using Ni—Cr alloy wire is generally more robust than fuse resistors 90. In addition, Ni—Cr alloy wire is a relatively simpler mechanical scheme than using multiple fuse resistors 90. It should be noted that each of the embodiments described herein that utilize fuse resistors 90 may instead use Ni—Cr alloy wire.
As described in greater detail herein, the shutter release mechanisms described herein may utilize either rotational or linear motion. In many of the embodiments described herein, heat from either an external source or from current flow may be used to activate the rotational or linear motion. For example, in the embodiments with current flow, a current may be caused to flow through the devices when in a first position, and this flow of current may be stopped after a transition to a second position. Some of the embodiments illustrated in the drawings do not show all of the required elements to enable such implementation (e.g., to apply current or other source of heat) but rather focus on the specific mechanical methods of moving the ballistic interrupt shutter 62 or the detonator 66 between first and second positions. However, it will be appreciated that these embodiments will also include other elements to enable such implementations (e.g., to apply currents or other sources of heat).
As described in greater detail herein, a shape memory alloy (SMA), such as a Ni—Ti alloy, may be used to actuate movement of a ballistic interrupt shutter 62. As illustrated in
As described in greater detail herein, an SMA spring may be used directly as a shutter drive or as an arm release trigger mechanism. In general, using an SMA spring as an arm release trigger mechanism is relatively smaller and enable control of relatively larger loads.
Although the embodiments described above generally include SMA springs 126 that are either linear SMA springs or torsional SMA springs, in other embodiments, an initiator assembly 60 may include an SMA spring 126 that, when activated (e.g., when heat is applied), extends in a manner that the SMA spring 126 returns from a generally non-linear deformed shape to a generally linear pre-deformed (e.g., remembered) shape.
In addition, in certain embodiments, the initiator assembly 60 may include one or more additional torsional springs 208 (e.g., two torsional springs 208, in the illustrated embodiment) configured to bias the detonator trigger cam 190 in an opposite radial direction as opposed to the radial direction that the linear force applied by the linear SMA spring 126 against the detonator trigger cam 190 causes. In addition, as illustrated in
In addition, in certain embodiments, instead of using an SMA spring 126, a detonator 66 may instead be disposed within a detonator holder with one or more arms, and the SMA spring 126 may be replaced with a regular spring while the arm(s) are held in position by one or more fuse resistors 90, as described herein. Once the fuse resistors 90 are burned, the arm(s) would no longer hold the spring in position, allowing it to move from the first position 200 to the second position 202.
As such, in certain embodiments, the embodiments described herein provide a perforating gun 15 that includes one or more perforating charges 20, and an initiator assembly 60. In addition, in certain embodiments, the initiator assembly 60 may include one or more detonators 66 configured to cause detonation of the one or more perforating charges 20. In addition, in certain embodiments, the initiator assembly 60 may include one or more mechanical components configured to be actuated to transition the initiator assembly 60 from a first mechanical configuration (e.g., a deactivated configuration) to a second mechanical configuration (e.g., an activated configuration), wherein a detonation circuit of the initiator assembly 60 is open when the initiator assembly 60 is in the first mechanical configuration to prevent the one or more detonators 66 from detonating the one or more perforating charges 20 (e.g., either directly or via a detonating cord 64 or a detonating cord booster 80) and the detonation circuit of the initiator assembly 60 is closed when the initiator assembly 60 is in the second mechanical configuration to enable the one or more detonators 66 to detonate the one or more perforating charges 20 (e.g., either directly or via a detonating cord 64 or a detonating cord booster 80).
In certain embodiments, the one or more mechanical components of the initiator assembly 60 may include a ballistic interrupt shutter 62 configured to be actuated to transition from a first position 114 in the first mechanical configuration to a second position 116 in the second mechanical configuration to close the detonation circuit of the initiator assembly 60. In addition, in certain embodiments, the ballistic interrupt shutter 62 is configured to translate (e.g., via linear actuation) from the first position 114 in the first mechanical configuration to the second position 116 in the second mechanical configuration to close the detonation circuit of the initiator assembly 60. However, in other embodiments, the ballistic interrupt shutter 62 is configured to rotate about a shutter shaft 135 of the ballistic interrupt shutter 62 (e.g., via rotational actuation) from the first position 114 in the first mechanical configuration to the second position 116 in the second mechanical configuration to close the detonation circuit of the initiator assembly 60.
In certain embodiments, the one or more mechanical components of the initiator assembly 60 may include one or more fuse resistors 90 configured to receive excess current to melt to release the ballistic interrupt shutter 62, thereby enabling the transition of the ballistic interrupt shutter 62 from the first position 114 in the first mechanical configuration to the second position 116 in the second mechanical configuration to close the detonation circuit of the initiator assembly 60. However, in other embodiments, the one or more mechanical components of the initiator assembly 60 may include an SMA spring 126 configured to be actuated via application of heat to enable the transition of the ballistic interrupt shutter 62 from the first position 114 in the first mechanical configuration to the second position 116 in the second mechanical configuration to close the detonation circuit of the initiator assembly 60.
In embodiments utilizing an SMA spring 126, in certain embodiments, the SMA spring 126 may include a linear SMA spring 126 configured to be actuated via the application of the heat to enable the transition of the ballistic interrupt shutter 62 from the first position 114 in the first mechanical configuration to the second position 116 in the second mechanical configuration to close the detonation circuit of the initiator assembly 60. In other embodiments, the SMA spring 126 may include a torsional SMA spring 126 configured to be actuated via the application of the heat to enable the transition of the ballistic interrupt shutter 62 from the first position 114 in the first mechanical configuration to the second position 116 in the second mechanical configuration to close the detonation circuit of the initiator assembly 60.
In addition, in certain embodiments, the one or more mechanical components of the initiator assembly 60 may include an SMA spring configured to be actuated via application of heat to transition between a non-linear shape and a linear shape to close the detonation circuit of the initiator assembly 60. In addition, in certain embodiments, the one or more mechanical components of the initiator assembly 60 may include a detonator holder 66 configured to be actuated to transition from a first position 200 in the first mechanical configuration to a second position 202 in the second mechanical configuration to close the detonation circuit of the initiator assembly 60.
While only certain features of the invention have been illustrated and described herein, many modifications and changes will occur to those skilled in the art. It is, therefore, to be understood that the appended claims are intended to cover all such modifications and changes as fall within the true spirit of the invention.
The techniques presented and claimed herein are referenced and applied to material objects and concrete examples of a practical nature that demonstrably improve the present technical field and, as such, are not abstract, intangible or purely theoretical. Further, if any claims appended to the end of this specification contain one or more elements designated as “means for (perform)ing (a function) . . . ” or “step for (perform)ing (a function) . . . ”, it is intended that such elements are to be interpreted under 35 U.S.C. § 112(f). However, for any claims containing elements designated in any other manner, it is intended that such elements are not to be interpreted under 35 U.S.C. § 112(f).
Claims
1. A perforating gun, comprising:
- one or more perforating charges; and
- an initiator assembly comprising: one or more detonators configured to cause detonation of the one or more perforating charges; and one or more mechanical components configured to be actuated to transition the initiator assembly from a first mechanical configuration to a second mechanical configuration, wherein a detonation circuit of the initiator assembly is open when the initiator assembly is in the first mechanical configuration to prevent the one or more detonators from detonating the one or more perforating charges and the detonation circuit of the initiator assembly is closed when the initiator assembly is in the second mechanical configuration to enable the one or more detonators to detonate the one or more perforating charges.
2. The perforating gun of claim 1, wherein the one or more mechanical components comprise a ballistic interrupt shutter configured to be actuated to transition from a first position in the first mechanical configuration to a second position in the second mechanical configuration to close the detonation circuit of the initiator assembly.
3. The perforating gun of claim 2, wherein the ballistic interrupt shutter is configured to translate from the first position in the first mechanical configuration to the second position in the second mechanical configuration to close the detonation circuit of the initiator assembly.
4. The perforating gun of claim 2, wherein the ballistic interrupt shutter is configured to rotate about a shutter shaft of the ballistic interrupt shutter from the first position in the first mechanical configuration to the second position in the second mechanical configuration to close the detonation circuit of the initiator assembly.
5. The perforating gun of claim 2, wherein the one or more mechanical components comprise one or more fuse resistors configured to receive excess current to melt to release the ballistic interrupt shutter, thereby enabling the transition of the ballistic interrupt shutter from the first position in the first mechanical configuration to the second position in the second mechanical configuration to close the detonation circuit of the initiator assembly.
6. The perforating gun of claim 2, wherein the one or more mechanical components comprise a shape memory alloy (SMA) spring configured to be actuated via application of heat to enable the transition of the ballistic interrupt shutter from the first position in the first mechanical configuration to the second position in the second mechanical configuration to close the detonation circuit of the initiator assembly.
7. The perforating gun of claim 6, wherein the SMA spring comprises a linear SMA spring configured to be actuated via the application of the heat to enable the transition of the ballistic interrupt shutter from the first position in the first mechanical configuration to the second position in the second mechanical configuration to close the detonation circuit of the initiator assembly.
8. The perforating gun of claim 6, wherein the SMA spring comprises a torsional SMA spring configured to be actuated via the application of the heat to enable the transition of the ballistic interrupt shutter from the first position in the first mechanical configuration to the second position in the second mechanical configuration to close the detonation circuit of the initiator assembly.
9. The perforating gun of claim 1, wherein the one or more mechanical components comprise a shape memory alloy (SMA) spring configured to be actuated via application of heat to transition between a non-linear shape and a linear shape to close the detonation circuit of the initiator assembly.
10. The perforating gun of claim 1, wherein the one or more mechanical components comprise a detonator holder configured to be actuated to transition from a first position in the first mechanical configuration to a second position in the second mechanical configuration to close the detonation circuit of the initiator assembly.
11. A perforating gun, comprising:
- one or more perforating charges; and
- an initiator assembly comprising: one or more detonators configured to cause detonation of the one or more perforating charges; and a ballistic interrupt shutter configured to be actuated to transition from a first position to a second position, wherein a detonation circuit of the initiator assembly is open when the ballistic interrupt shutter is in the first position to prevent the one or more detonators from detonating the one or more perforating charges and the detonation circuit of the initiator assembly is closed when the ballistic interrupt shutter is in the second position to enable the one or more detonators to detonate the one or more perforating charges.
12. The perforating gun of claim 11, wherein the ballistic interrupt shutter is configured to translate from the first position to the second position to close the detonation circuit of the initiator assembly.
13. The perforating gun of claim 11, wherein the ballistic interrupt shutter is configured to rotate about a shutter shaft of the ballistic interrupt shutter from the first position to the second position to close the detonation circuit of the initiator assembly.
14. The perforating gun of claim 11, wherein the initiator assembly comprises one or more fuse resistors configured to receive excess current to melt to release the ballistic interrupt shutter, thereby enabling the transition of the ballistic interrupt shutter from the first position to the second position to close the detonation circuit of the initiator assembly.
15. The perforating gun of claim 11, wherein the initiator assembly comprises a shape memory alloy (SMA) spring configured to be actuated via application of heat to enable the transition of the ballistic interrupt shutter from the first position to the second position to close the detonation circuit of the initiator assembly.
16. The perforating gun of claim 15, wherein the SMA spring comprises a linear SMA spring configured to be actuated via the application of the heat to enable the transition of the ballistic interrupt shutter from the first position to the second position to close the detonation circuit of the initiator assembly.
17. The perforating gun of claim 15, wherein the SMA spring comprises a torsional SMA spring configured to be actuated via the application of the heat to enable the transition of the ballistic interrupt shutter from the first position to the second position to close the detonation circuit of the initiator assembly.
18. A perforating gun, comprising:
- one or more perforating charges; and
- an initiator assembly comprising a detonator holder configured to cause detonation of the one or more perforating charges upon transition from a first position to a second position, wherein a detonation circuit of the initiator assembly is open when the detonator holder is in the first position to prevent one or more detonators from detonating the one or more perforating charges and the detonation circuit of the initiator assembly is closed when the detonator holder is in the second position to enable the one or more detonators to detonate the one or more perforating charges.
19. The perforating gun of claim 18, wherein the detonator holder comprises a detonator wire path extending therethrough to enable passage of a detonating cord to close the detonation circuit of the initiator assembly.
20. A perforating gun, comprising:
- one or more perforating charges; and
- an initiator assembly comprising a detonating cord configured to cause detonation of the one or more perforating charges upon transition from a first position to a second position, wherein a detonation circuit of the initiator assembly is open when the detonating cord is in the first position to prevent one or more detonators from detonating the one or more perforating charges and the detonation circuit of the initiator assembly is closed when the detonating cord is in the second position to enable the one or more detonators to detonate the one or more perforating charges.
Type: Application
Filed: Nov 21, 2025
Publication Date: May 28, 2026
Inventors: Philip Kokel (Rosharon, TX), Todd Busch (Rosharon, TX), Atsushi Nakano (Newcastle, WA), Aleksey Barykin (Rosharon, TX)
Application Number: 19/397,476