APPARATUS AND METHODS FOR ABLATIVE MEDIA FOR FIREARM SUPPRESSORS
Muzzle blasts of firearms may be reduced by using sound suppressors, such as “noise suppressors” and “silencers.” Use of ablative media, or “wetting,” is one way to reduce the signature of a suppressed shot. The ablative media absorbs energy from hot gases in the suppressor, thereby reducing the amount of energy expelled from the suppressor. Current approaches to wetting are often messy processes, and it can be difficult to keep ablative media in place during transport or carriage of the firearm. Another difficulty can be meting out an advantageous quantity of ablative media into the suppressor. Embodiments presented herein provide an apparatus and methods for improving the application and use of ablative media in firearm suppressors.
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This application claims the benefit of and priority to U.S. Provisional Application, entitled “Apparatus And Methods For Ablative Media For Firearm Suppressors,” filed on Jan. 22, 2025, and having application Ser. No. 63/748,138, the entirety of said application being incorporated herein by reference.
FIELDEmbodiments of the present disclosure generally relate to firearms. More specifically, embodiments of the disclosure relate to an apparatus and methods for improving the application and use of ablative media in firearm suppressors.
BACKGROUNDFirearms, such as pistols and rifles, generally utilize expanding high-pressure gases generated by a burning propellant to expel a projectile from the weapon at a relatively high velocity. When the projectile, or bullet, exits a muzzle end of the weapon's barrel, a bright, “muzzle flash” of light and a high-pressure pulse of combustion gases accompany the bullet. The rapid pressurization and subsequent depressurization caused by the high-pressure pulse gives rise to a loud sound known as “muzzle blast,” which, like muzzle flash, can readily indicate to a remote enemy both the location of the weapon and the direction from which it is being fired. In some situations, such as covert military operations, it is highly desirable to conceal this information from the enemy by suppressing the muzzle flash and/or substantially reducing the amplitude of the muzzle blast.
The muzzle blasts of firearms may be reduced by using sound suppressors, such as “noise suppressors” and “silencers.” Suppressors generally reduce muzzle blast by reducing and controlling the energy level of propellant gases accompanying a projectile as it exits the muzzle end of the weapon. Suppressors typically comprise an elongated tubular housing containing a series of baffles that define a plurality of successive internal chambers. The internal chambers control, delay, and divert the flow, expansion, and exit of the propellant gases. The internal chambers further serve to reduce the temperature of the propellant gases so as to cause a corresponding reduction in the noise produced by the propellant gases as they ultimately exit the suppressor. A rear portion of a typical suppressor may include a mechanism for removably attaching the suppressor to a firearm, and a front portion generally includes an opening for the exit of projectiles. Further, the front portion of suppressors typically are located sufficiently forward of the muzzle end of firearms to effectively function as a muzzle flash hider.
In some embodiments, suppressors are configured to reduce the temperature and pressure of propellant gases by introducing the gases into a succession of expansion chambers so as to give rise to a controlled expansion of the gases. In other embodiments, however, suppressors may be of a “multi-stage” variety that is configured to divert a portion of the propellant gases through a plurality of radial vents to one or more un-baffled, radially disposed “blast suppressor” chambers before being introduced into the succession of expansion chambers. Although multi-stage suppressors are relatively more complex to implement, they generally provide more opportunities to delay and cool the propellant gases, and hence, to reduce muzzle blast sound levels overall.
Use of ablative media, typically referred to as “wetting” is a well-known way to reduce the signature of a suppressed shot. Wetting is a process that involves placing ablative media, such as a liquid, a gel, or foam, into the suppressor prior to shooting. The ablative media absorbs energy from hot gases in the suppressor, thereby reducing the amount of energy expelled from the suppressor.
One drawback to current approaches of placing ablative media in suppressors is that it is often a messy process. Typically, it is difficult to keep the media in place during transport or carriage of the weapon. Another drawback is that it can be difficult to mete out an advantageous quantity of ablative media into a suppressor. For example, putting too much ablative media into the suppressor can cause safety concerns. Given these drawbacks, there is a need for improving the application and use of ablative media in suppressors.
SUMMARYMuzzle blasts of firearms may be reduced by using sound suppressors, such as “noise suppressors” and “silencers.” Use of ablative media, or “wetting,” is one way to reduce the signature of a suppressed shot. The ablative media absorbs energy from hot gases in the suppressor, thereby reducing the amount of energy expelled from the suppressor. Current approaches to wetting are often messy processes, and it can be difficult to keep ablative media in place during transport or carriage of the firearm. Another difficulty can be meting out an advantageous quantity of ablative media into the suppressor. Embodiments presented herein provide an apparatus and methods for improving the application and use of ablative media in firearm suppressors.
In an exemplary embodiment, an apparatus for an ablative media pod comprises: an ablative medium; a first thermoplastic film and a second thermoplastic film; and one or more welds attaching the first thermoplastic film to the second thermoplastic film so as to contain the ablative medium.
In another exemplary embodiment, the one or more welds comprises a perimeter weld so as to contain the ablative medium between the first thermoplastic film to the second thermoplastic film. In another exemplary embodiment, the one or more welds comprises an outer weld and an inner weld. In another exemplary embodiment, the outer weld and the inner weld form a central hole extending through the ablative media pod.
In another exemplary embodiment, the central hole is configured to be placed around the nose of a baffle within a suppressor. In another exemplary embodiment, the central hole is configured to allow the use of expanding projectiles without being negatively affected. In another exemplary embodiment, the one or more welds comprises an outer weld and an inner weld that form a primary compartment and a secondary compartment that each contains a portion of ablative media. In another exemplary embodiment, the primary compartment and the secondary compartment are configured such that a valley is disposed in the second compartment.
In another exemplary embodiment, the valley is configured to be placed around the nose of a baffle within a suppressor. In another exemplary embodiment, the primary compartment is configured to be activated by the passage of a first projectile and provide signature reduction for a predetermined number of shots. In another exemplary embodiment, the second compartment is configured to rupture only after the predetermined number of shots to provide signature reduction for a number of shots beyond the predetermined number of shots.
In an exemplary embodiment, an apparatus for an ablative media pouch comprises: an ablative medium; one or more thermoplastic films; a thermoplastic wipe; and one or more welds attaching the one or more thermoplastic films to the thermoplastic wipe to form one or more compartments.
In another exemplary embodiment, the one or more thermoplastic films comprises a single thermoplastic film that is sealed to the thermoplastic wipe by way of a peripheral weld. In another exemplary embodiment, the single thermoplastic film and the thermoplastic wipe comprise one compartment that encloses a pre-measured portion of the ablative media. In another exemplary embodiment, the one or more compartments comprise two compartments configured to extend signature reduction beyond a predetermined number of shots. In another exemplary embodiment, the two compartments comprise a primary compartment and a secondary compartment.
In another exemplary embodiment, the primary compartment comprises a first thermoplastic film that is peripherally welded to the thermoplastic wipe. In another exemplary embodiment, the secondary compartment comprises a second thermoplastic film that is sealed to the thermoplastic wipe by way of an outer weld and an inner weld. In another exemplary embodiment, the outer weld and the inner weld form a central valley in the secondary compartment. In another exemplary embodiment, the second compartment is configured to rupture only after a predetermined number of shots to provide signature reduction for a number of shots beyond the signature reduction provided by the primary compartment.
These and other features of the concepts provided herein may be better understood with reference to the drawings, description, and appended claims.
The drawings refer to embodiments of the present disclosure in which:
While the present disclosure is subject to various modifications and alternative forms, specific embodiments thereof have been shown by way of example in the drawings and will herein be described in detail. The present disclosure should be understood to not be limited to the particular forms disclosed, but on the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the present disclosure.
DETAILED DESCRIPTIONIn the following description, numerous specific details are set forth in order to provide a thorough understanding of the present disclosure. It will be apparent, however, to one of ordinary skill in the art that the apparatus and methods disclosed herein may be practiced without these specific details. In other instances, specific numeric references such as “first baffle,” may be made. However, the specific numeric reference should not be interpreted as a literal sequential order but rather interpreted that the “first baffle” is different than a “second baffle.” Thus, the specific details set forth are merely exemplary. The specific details may be varied from and still be contemplated to be within the spirit and scope of the present disclosure. The term “coupled” is defined as meaning connected either directly to the component or indirectly to the component through another component. Further, as used herein, the terms “about,” “approximately,” or “substantially” for any numerical values or ranges indicate a suitable dimensional tolerance that allows the part or collection of components to function for its intended purpose as described herein.
In general, muzzle blasts of firearms may be reduced by using sound suppressors, such as “noise suppressors” and “silencers.” Use of ablative media, or “wetting,” is a well-known way to reduce the signature of a suppressed shot. The ablative media absorbs energy from hot gases in the suppressor, thereby reducing the amount of energy expelled from the suppressor. Current approaches to wetting are often messy processes, and it can be difficult to keep ablative media in place during transport or carriage of the firearm. Another difficulty can be meting out an advantageous quantity of ablative media into the suppressor. Embodiments presented herein provide an apparatus and methods for improving the application and use of ablative media in firearm suppressors.
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Similar to the pod 124, the valley 180 of the pod 152 is well suited to be placed around the nose of a baffle 148 within the suppressor 116, as shown in
In particular,
With continuing reference to
Similar to the pod 152, the valley 260 of the pouch 220 is well suited to be placed around the nose of a baffle 148 within the suppressor 116, as shown in
While the apparatus and methods have been described in terms of particular variations and illustrative figures, those of ordinary skill in the art will recognize that the apparatus is not limited to the variations or figures described. In addition, where methods and steps described above indicate certain events occurring in certain order, those of ordinary skill in the art will recognize that the ordering of certain steps may be modified and that such modifications are in accordance with the variations of the apparatus. Additionally, certain of the steps may be performed concurrently in a parallel process, when possible, as well as performed sequentially as described above. To the extent there are variations of the apparatus, which are within the spirit of the disclosure or equivalent to the apparatus found in the claims, it is the intent that this patent will cover those variations as well. Therefore, the present disclosure is to be understood as not limited by the specific embodiments described herein, but only by scope of the appended claims.
Claims
1. An apparatus for an ablative media pod, comprising:
- an ablative medium;
- a first thermoplastic film and a second thermoplastic film; and
- one or more welds attaching the first thermoplastic film to the second thermoplastic film so as to contain the ablative medium.
2. The apparatus of claim 1, wherein the one or more welds comprises a perimeter weld so as to contain the ablative medium between the first thermoplastic film to the second thermoplastic film.
3. The apparatus of claim 1, wherein the one or more welds comprises an outer weld and an inner weld.
4. The apparatus of claim 3, wherein the outer weld and the inner weld form a central hole extending through the ablative media pod.
5. The apparatus of claim 4, wherein the central hole is configured to be placed around the nose of a baffle within a suppressor.
6. The apparatus of claim 4, wherein the central hole is configured to allow the use of expanding projectiles without being negatively affected.
7. The apparatus of claim 1, wherein the one or more welds comprises an outer weld and an inner weld that form a primary compartment and a secondary compartment that each contains a portion of ablative media.
8. The apparatus of claim 7, wherein the primary compartment and the secondary compartment are configured such that a valley is disposed in the second compartment.
9. The apparatus of claim 8, wherein the valley is configured to be placed around the nose of a baffle within a suppressor.
10. The apparatus of claim 8, wherein the primary compartment is configured to be activated by the passage of a first projectile and provide signature reduction for a predetermined number of shots.
11. The apparatus of claim 10, wherein the second compartment is configured to rupture only after the predetermined number of shots to provide signature reduction for a number of shots beyond the predetermined number of shots.
12. An apparatus for an ablative media pouch, comprising:
- an ablative medium;
- one or more thermoplastic films;
- a thermoplastic wipe; and
- one or more welds attaching the one or more thermoplastic films to the thermoplastic wipe to form one or more compartments.
13. The apparatus of claim 12, wherein the one or more thermoplastic films comprises a single thermoplastic film that is sealed to the thermoplastic wipe by way of a peripheral weld.
14. The apparatus of claim 13, wherein the single thermoplastic film and the thermoplastic wipe comprise one compartment that encloses a pre-measured portion of the ablative media.
15. The apparatus of claim 12, wherein the one or more compartments comprise two compartments configured to extend signature reduction beyond a predetermined number of shots.
16. The apparatus of claim 15, wherein the two compartments comprise a primary compartment and a secondary compartment.
17. The apparatus of claim 15, wherein the primary compartment comprises a first thermoplastic film that is peripherally welded to the thermoplastic wipe.
18. The apparatus of claim 17, wherein the secondary compartment comprises a second thermoplastic film that is sealed to the thermoplastic wipe by way of an outer weld and an inner weld.
19. The apparatus of claim 18, wherein the outer weld and the inner weld form a central valley in the secondary compartment.
20. The apparatus of claim 19, wherein the second compartment is configured to rupture only after a predetermined number of shots to provide signature reduction for a number of shots beyond the signature reduction provided by the primary compartment.
Type: Application
Filed: Jan 22, 2026
Publication Date: Jul 23, 2026
Applicant: Surefire, LLC (Fountain Valley, CA)
Inventors: Barry William Dueck (Fountain Valley, CA), Michael Standen (Fountain Valley, CA), Eric Hung Leung Chow (Fountain Valley, CA)
Application Number: 19/456,806