AVALANCHE TRIGGERING APPARATUS
An avalanche triggering apparatus having a tower that is connected to a base and two detonation chambers. Two pairs of gas supply lines are configured to deliver fuel gas and an oxidizer to the two detonation chambers. Two spark plugs are configured to initiate combustion of gases within the detonation chambers when activated by one of two flow switches. One or more batteries are configured to provide electricity to the two spark plugs. The detonation chambers are connected to the tower via a central mounting assembly, two detonation mounting assemblies, and a plurality of isolator springs disposed between the central mounting assembly and each of the two detonation mounting assemblies. The central mounting assembly is comprised of a main gusset plate, two side plates, two rear plates, a top frame, and a bottom frame. Each detonation mounting assembly is comprised of a central plate and two side plates.
Pursuant to 35 U.S.C. § 120, this application claims priority back to and is a continuation-in-part of U.S. patent application Ser. No. 19/189,679 filed on Apr. 25, 2025, which is a continuation-in-part of U.S. patent application Ser. No. 18/444,660 filed on Feb. 17, 2024. The contents of both applications are incorporated herein by reference.
BACKGROUND OF THE INVENTION 1. Field of the InventionThe present invention relates generally to the field of avalanche control systems, and more particularly, to a remote-controlled avalanche triggering apparatus that incorporates a tower and a detonation chamber that are joined together with a plurality of isolator springs.
2. Description of the Related ArtAvalanches pose a risk to people and property. Avalanches have the ability to injure and kill people and cause significant and costly damage to property. An avalanche hitting an open highway or rail system can close transportation corridors and have financial impacts in the millions of dollars. The present invention aims to minimize avalanche risk to people and property by creating avalanches in an intentional and controlled manner and in predetermined locations. Solutions to the problem of unanticipated avalanches include both assessment and mitigation of avalanche risk, The present invention does not deal with the assessment of risk; it deals with mitigation of an identified risk. Options that exist for avalanche mitigation include solid explosives, 105 mm high explosive (HE) howitzer rounds, skier-initiated avalanches a/k/a “ski cuts,” passive defense (such as constructing avalanche dams, ditches, earth mounds, and terraces or employing methods such as reforestation and architectural streamlining), and Remote Avalanche Control Systems (RACS), RACS are designed to minimize exposure to the individual operating the system by using communication technology that creates distance between the operator and the point of avalanche initiation. RACS are further divided into two categories: solid explosive-based and gas-based systems. In some cases, the use of solid explosives for avalanche mitigation is not possible. Some reasons for this include Bureau of Alcohol, Tobacco, Firearms and Explosives (ATF) regulations, land management agency restrictions, proximity to infrastructure, and inability to store solid explosives. The present invention is a gas-based system that utilizes gas explosions to trigger avalanches. Although there are other gas-based systems currently in use, the present invention has several unique characteristics that make it attractive to potential users and distinguishable from the prior art.
U.S. Pat. No. 6,279,481 (Schippers, 2001) provides a device for provoking the collapse of a snow cornice comprising several exploders, each of which has a main cylinder that is perpendicular to a support base arranged flat on the ground and a positioning tube that is connected to the main cylinder and mounted on a rigid seat fixed to the mountain side. Supply conduits are configured to deliver oxygen, propane, and a detonating gas mixture into a positioning tube and then into the main cylinder. Igniting means, which are mounted upstream of the supply conduit, are configured to ignite the detonating gas mixture.
U.S. Patent Application Pub. No. 2012/0318159 (Constant et al.) discloses an avalanche-inducing device that is comprised of a tube, one closed end of which is mounted onto a holder in the form of a concrete mass that is attached to a mountainside. The other end of the tube is open and is rotated toward the snow cover. The device includes a means for filling the tube with an explosive gas mixture and a priming means for inducing an explosion. The device has two beams that are attached on one end to the holder and that extend along the tube parallel to it. These beams are intended to absorb the movement of the tube following explosion of the gas mixture.
U.S. Patent Application Pub. No. 2006/0254449 (Hisel) describes an apparatus and method for avalanche control in which two gases are combined to form a detonable mixture that is detonated near an avalanche start zone, The gases are supplied at pressures above ambient pressure in order to drive them through a mixer and deploy the gases in the form of a detonable cloud in open air near the start zone. An igniter is situated in proximity to the discharge point of the detonable cloud and in communication with a controller that fires the igniter based on predetermined time intervals. The explosive gas mixture is detonated in open air.
U.S. Pat. No. 5,107,765 (Schippers, 1992) involves a process and device for triggering an avalanche. The device consists of a rigid explosion tank with a closed rear end and a front opening. The tank is mounted in the direction of the slope on which the avalanche is to be triggered. The tank is connected to sources of fuel gas and oxygen, which are delivered into the tank via injection nozzles and which combine to form an explosive mixture. The individual components of the explosive mixture are delivered to the tank at a pressure above atmospheric, and they achieve atmospheric pressure when combined within the tank. An ignition device is mounted in the bottom of the tank and operated via remote control.
U.S. Pat. No. 6,374,717 (Schippers, 2002) provides a device for provoking an avalanche that is comprised of a gas gun, one end (the upstream end) of which is pivotally attached to a seat that is solidly anchored to the mountain. The other end of the gun is supported by a leg that is configured to hold the downstream end of the gun above the level of the snow cover. The leg is preferably hollow and contains ballast consisting of chippings or concrete. The upstream end of the gun is equipped with ignition mechanisms (spark plugs) that are configured to discharge the device.
U.S. Pat. No. 5,864,517 (Hinkey et al., 1999) discloses a pulsed combustion acoustic wave generator comprised of an elongate tubular barrel with an inlet end and an open outlet end, a fuel controller that is configured to dispense a controlled quantity of fuel into the inlet end of the barrel, an oxidant controller that is configured to dispense a controlled quantity of oxidant into the inlet end of the barrel, and an igniter. The igniter extends into the inlet end of the barrel and is controllable by an operator. During operation, the generator produces sequentially pulsed directed pressure waves of sufficient pressure to incapacitate individuals at whom the open end of the barrel is pointed while minimizing effects on the operator of the generator, provided that the operator is not in the direct path of the pressure waves. As described by the inventors, this device may be used to trigger avalanches.
U.S. Patent Application Pub. No. 2013/0133543 (Farizy et al.) describes a device for setting off an avalanche comprising a support that is affixed to a concrete slab and an enclosure with an open end that faces the snow cap. The invention includes means for filling the enclosure with an explosive gaseous mixture, firing means, and a remote-communication system. The enclosure is removably mounted on the support and carries both the firing means and the means of storing the gases that are used to form the gaseous mixture.
BRIEF SUMMARY OF THE INVENTIONThe present invention is an avalanche triggering apparatus comprising: a tower having a first end, a second end, and a top part, the first end of the tower being connected to a base, and the top part of the tower being connected to two detonation chambers; two pairs of gas supply lines, each pair of gas supply lines being configured to deliver fuel gas and an oxidizer to one of the two detonation chambers; two spark plugs, each spark plug being configured to initiate combustion of gases within one of the two detonation chambers when activated by one of two flow switches; one or more batteries that are configured to provide electricity to the two spark plugs; and means for controlling remotely a flow of gas through the two pairs of gas supply lines; wherein the two detonation chambers are connected to the tower via a central mounting assembly, two detonation mounting assemblies, and a plurality of isolator springs disposed between the central mounting assembly and each of the two detonation mounting assemblies; wherein the central mounting assembly is comprised of a main gusset plate, two side plates, two rear plates, a top frame, and a bottom frame; wherein each of the two detonation mounting assemblies is comprised of a central plate and two side plates; wherein each of the two detonation chambers comprises a closed top end and an open bottom end; and wherein the open bottom end of each of the two detonation chambers is configured to face a snow surface.
In a preferred embodiment, the top frame of the central mounting assembly is roughly square in shape with a rearward opening and an interior recess that is configured to accept an outer circumference of the tower; wherein the interior recess of the top frame is configured to surround approximately three-quarters of the outer circumference of the tower; and wherein a front edge of the top frame has a width that is equal to a width of a top edge of the main gusset plate. The bottom frame of the central mounting assembly is preferably roughly square in shape with a rearward opening and an interior recess that is configured to accept an outer circumference of the tower; wherein the interior recess of the bottom frame is configured to surround approximately three-quarters of the outer circumference of the tower; and wherein a front edge of the bottom frame has a width that is equal to a width of a bottom edge of the main gusset plate.
In a preferred embodiment, each of the top frame, two rear plates, two sides plates, main gusset plate, and bottom frame of the central mounting assembly comprises a plurality of alternating keys and slots on at least one outer edge. Preferably, each of the two detonation chambers is positioned forwardly at a first angle in the range of ten degrees to twenty-five degrees relative to a vertical axis of the tower. Each of the two rear plates of the central mounting assembly has a front edge that is angled downwardly away from the vertical axis of the tower at a second angle, and the second angle is preferably equal to the first angle.
In a preferred embodiment, each of the two detonation chambers comprises a bottom end, and each of the two detonation chambers is splayed sideways so that the bottom ends of the two detonation chambers are at an angle in the range of ninety degrees to one hundred eighty degrees relative to each other. The central plate of the detonation chamber mounting assembly has four corners, each of the two side plates of the central mounting assembly has four corners, and the plurality of isolator springs are preferably mounted on the four corners of the central plates of each of the two detonation chamber mounting assemblies and the four corners of each of the two side plates of the central mounting assembly. In another preferred embodiment, the two flow switches are configured so that the spark plugs in both detonation chambers will ignite upon activation by either of the two flow switches.
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- 1 Base
- 2 Tower
- 3 Flange
- 4 Ladder
- Handrail
- 6 Detonation chamber
- 6a Top end (of detonation chamber)
- 6b Bottom end (of detonation chamber)
- 7 Mounting bracket
- 78 First mounting bracket
- 7b Side member (of first mounting bracket)
- 7c Front plate (of first mounting bracket)
- 7d Second mounting bracket
- 7e Side member (of second mounting bracket)
- 7f Front plate (of second mounting bracket)
- 8 Cover plate
- 8a Overhanging lip (of cover plate)
- 9 Lifting bracket
- Handle (of cover plate)
- 11 Gas supply line
- 12 Cover (for spark plug)
- 13 Electrical cable
- 14 Port (on base)
- Isolator spring
- 15a Helical cable isolator (of isolator spring)
- 15b Aluminum member (of isolator spring)
- 16 Ignition box
- 17 Battery
- 18 Capacitor
- 19 Voltage converter
- 20 Terminal block
- 21 Pipe union
- 22 Signal wire
- 23 Flow switch
- 24 Grip handle
- 25 Spark plug
- 26 Splice (in gas line)
- 27 Central mounting assembly (dual-head, side-by-side alternate embodiment)
- 28 Rear plate (of central mounting assembly)
- 29 Bracket
- 30 Bolt
- 31 Lifting lug
- 32 Side plate (of central mounting assembly)
- 33 Main gusset plate
- 34 Side plate (of detonation chamber mounting assembly)
- 35 Central plate (of detonation chamber mounting assembly)
- 36 Gusset plate (of detonation chamber mounting assembly)
- 37 Bracket (supporting ignition box)
- 38 Detonation chamber mounting assembly
- 39 Check valve
- 40 Top frame (of central mounting assembly)
- 41 Supporting plate (of central mounting assembly)
- 42 Bottom frame (of central mounting assembly)
- 43 Conduit
- 44 Foot peg
- 45 Side step
- 46 Bushing
Highway departments, ski resorts, railways, utility companies and mining operations all have a need to create avalanches in areas that expose people and property to avalanche risk. The present invention is a RACS that uses a mixture of gases to produce an air blast at the snow surface. The gas is delivered to and mixed within the detonation chamber part of the exploder and is ignited using a spark. The resulting explosion creates a shockwave that produces a pressure wave. This pressure wave is typically strong enough to initiate a fracture of the slab within the snowpack. When conditions are prime for triggering, the pressure wave creates an avalanche. Because of this conditional relationship between the snowpack and the exploder, assessment and prediction is critical to the success of the effects of the exploder. In other words, the exploder does not create avalanches on command but rather requires the operator to understand the proper timing of conducting mitigation work and creating avalanches.
Traditional (non-RACS) methods of avalanche triggering involve transport, delivery and detonation of solid explosives by individual avalanche workers. This is typically accomplished on foot/skis or from helicopters. Although this method is widely used, it is time-intensive and exposes the avalanche worker to risk of injury. With the present invention, the risk to workers is minimized, and avalanches are created more efficiently. The exploder is controlled by the operator from a safe distance.
The present invention has five main component parts. These parts include the tower, the detonation chamber, the spark/igniter, gas supply, and gas management/delivery. The tower is permanently installed via a concrete base that is anchored to the ground. The detonation chamber is attached to the tower, and the spark/igniter is threaded into the detonation chamber. The gas management/delivery system is a series of hoses, valves, regulators and electronic controls that run between the gas supply and the exploder. The details of the present invention are discussed more fully below.
B. Detailed Description of the FiguresExtending vertically upright from the base is the tower 2. The tower 2 may be comprised of one or more sections that are secured together via flanges 3. By installing the tower 2 in sections via flanges 3, the overall height of the tower 2 can be adjusted as necessary for a given installation. A ladder 4 is disposed along one side of the tower 2. The ladder 4 may be comprised of one or more sections, as shown. The top of the ladder 4 preferably comprises a handrail 5 that is configured to support a person who has climbed to the top of the ladder.
The detonation chamber 6 is positioned at the top of the tower 2 and attached to the tower with a pair of mounting brackets 7 that are connected to each other via four pairs of isolator springs 15. The detonation chamber 6 is preferably cylindrical in shape. The mounting brackets 7 and isolator springs 15 are discussed in further detail in connection with
Gas supply lines 11 are configured to deliver oxygen and a combustible gas to the detonation chamber 6. A cover 12 in the form of a box is situated on the exterior of the detonation chamber 6 houses the spark plug (see
The isolator springs 15 are intended to absorb the forces created by an explosion in the detonation chamber 6, thereby prolonging the overall life of the system. Specifically, the isolator springs 15 help to minimize the strain on the tower itself. Over time, the impact of the explosions will degrade the connection between the tower and the detonation chamber, at which point the detonation chamber can be removed and replaced. The detonation chamber is removed by removing the bolts that secure the isolator springs 15 to the first mounting bracket 7a and lifting the detonation chamber by helicopter.
In the particular configuration shown in
The tower and detonation chamber are installed in an avalanche starting zone. The tower is attached to anchor bolts, which are permanently fixed into the concrete base. The concrete base is prepped and poured onsite, typically in remote and rugged mountainous terrain,
The detonation chamber is fixed to the tower at an angle of fifteen (15) degrees and points down towards the snow surface. Between the detonation chamber and the tower is a series of shock absorbing coils/isolator springs that help to minimize the strain on the tower itself. Over time the impact of the explosions degrades the connection between the tower and the detonation chamber. When this happens, the detonation chamber can be replaced while the tower remains in place. Gas cylinders (some combination of oxygen, methane and hydrogen) are stored separately and within a reasonable distance (no closer than 30 meters and up to a kilometer) from the tower/detonation chamber. The cylinders are placed in a standard rack and anchored to the ground or a man-made surface (wooden, steel or concrete deck). A series of hoses and regulators are situated between the gas supply and the tower/detonation chamber. Hoses from the gas management system to the detonation chamber are preferably ½″ polyethylene (PE) pipe. These pipes will be run inside of a conduit that is appropriate for the terrain. The conduit can be a thick wall. large diameter PE pipe for buried sections or for use in areas above ground where there is little to no chance of the pipe being damaged. Where the conduit must be run above ground and damage is likely, steel pipe or rigid polyvinyl chloride (PVC) pipe must be used. The gas cylinders attach to high-pressure gas lines with the appropriate fittings. The gas lines are then interrupted by a series of regulators that control the volume of gas being delivered through the system. The gas lines terminate at and are threaded into the detonation chamber.
This system has the ability to employ a vertical distance of five hundred (500) meters and a horizontal distance of one kilometer between the gas supply and the tower/detonation chamber. This is a unique feature of the system and has the potential to greatly reduce user costs. By having longer gas line runs, the location options for gas storage change from remote terrain only accessible by helicopter to locations closer to roads, trails and rail systems. By increasing location options, the user can potentially use wheeled and/or over-snow vehicles to resupply gas. A mixture of gases is delivered to the detonation chamber. The mixtures that have been used by the inventors in testing the present invention thus far are oxygen/methane and oxygen/hydrogen; the present invention is not limited to any particular gas mixture, however, as long as it is ignitable. Once the proper mixture and volume of gas is achieved within the detonation chamber, a spark is initiated and creates an explosion of the gases. The spark is achieved through a flow switch, as noted above.
The ignition system uses a gas flow switch with a set of single pole double throw (SPDT) contacts. The common contact connects to a 10,000 uF capacitor, the normally closed (NC) contact connects to a spark generator, and the normally open (NO) contact connects to a battery. When gas flow starts, the flow switch detects the pressure increase and closes the connection between the battery and the capacitor. When the flow stops, the pressure drops, and the capacitor discharges into the spark generator, which sends high voltage to a spark plug, thereby igniting the gas mixture. This system is designed to optimize the detonation timing. It is imperative that the gas mixture ignites immediately after gas flow stops; this timing ensures that the oxygen and methane are still mixed evenly in the detonation chamber, allowing for optimal explosion velocity.
In the event of a misfire, the system is purged using nitrogen. This is done on a ten-minute cycle. After the system is purged, the user can safely troubleshoot the system without risk of detonation.
Snowpack assessment and avalanche forecasting require the user/operator to have a well-developed understanding of snowpack structure, fracture mechanics and meteorological influences on the snowpack. The user/operator is responsible for understanding when the time is right for attempting to trigger an avalanche and for deciding which mitigation efforts to employ. The present invention is designed to be used when the user/operator deems the snowpack unstable and capable of releasing avalanches from the trigger point.
There are four factors that must be present for an avalanche to occur: (i) a slab; (ii) a weak layer; (iii) terrain steep enough to produce avalanches; and (iv) a trigger. When the overlying slab or the underlying weak layer or both are at a critical point, the user introduces a trigger such as an air blast to create avalanches. The overpressure values created by gas-based systems have proven to be effective in generating avalanches. It is important to install the exploder in the best location possible for avalanche initiation. This process involves detailed terrain analysis, as well as snowpack. and weather history. The pressure wave that is emitted from the detonation chamber creates enough impact on the snow (slab and weak layer) to initiate an avalanche.
D. Advantages of the Present Invention Over Prior ArtThe present invention has numerous advantages over the prior art. The gas management system of the present invention is kept unpressurized to minimize the potential of leaks. In addition, there are fewer component parts than in existing RACS, which results in a less complex system with fewer potential fail points. A major complaint of other gas-based systems by users/operators is the prevalence of leaks within the system. Pressurized gas contained within lines and passing through a series of metal fittings tends to leak when subjected to wide temperature swings. Some mountainous locations where the present invention may be installed might experience temperature swings of 100 degrees Fahrenheit over the course of a year. The present invention also incorporates longer gas lines than in conventional avalanche control systems. With the present invention, operators have the ability not only to run gas lines uphill but also to run them for long distances, thereby reducing dependence on helicopters, increasing reliability, and decreasing operating costs, Initial testing has shown the potential to run lines up to 1 km in horizontal distance and 500 m in vertical rise. This flexibility allows users to install the gas supply in areas that are less expensive to access and to eliminate the use of a helicopter altogether.
The present invention also affords the user the ability to utilize different gas mixtures to create desired effects. Deeper snowpacks are generally safer than shallower snowpacks. The present invention enables the user to produce different shock waves to target the specific avalanche problem without wiping a slope clean, When repeatedly triggering avalanches in the same location over the course of the season, the snowpack immediately below the detonation chamber has the potential to remain shallow. When subjected to air and snowpack temperature swings, the snowpack is subjected to weakening due to a change in vapor pressure. This change is commonly referred to as a temperature gradient. When this steep gradient is present, vapor moves through the snowpack and recrystallizes at layer boundaries. This recrystallization allows for the formation of faceted snow grains, which are structurally weak. By themselves, facets do not pose a problem, but when overloaded by new snow in the form of slabs, the faceted layer of snow then becomes a weak layer that can fail more readily. By giving users the option of changing the peak and overall pressure on the snowpack through different gas mixtures and volumes, the user can decide how deeply to impact the underlying snowpack.
E. Dual-Head Side-by-Side ConfigurationAs shown in
The central mounting assembly 27 also comprises a bottom frame 42 that is approximately square in shape with a rearward opening and an interior recess configured to accept the outer circumference of the tower 2. The interior recess of the bottom frame 42 is preferably configured to surround approximately three-quarters (¾) of the tower (see also
In this embodiment, each isolator spring is configured to provide one inch of movement at a pull force of 4000 to 6000 pounds. Note also that the ladder 4 has a different configuration in this embodiment than is shown in
Although the preferred embodiment of the present invention has been shown and described, it will be apparent to those skilled in the art that many changes and modifications may be made without departing from the invention in its broader aspects. The appended claims are therefore intended to cover all such changes and modifications as fall within the true spirit and scope of the invention.
Claims
1. An avalanche triggering apparatus comprising:
- (a) a tower having a first end, a second end. a mid-section, and a top part, the first end of the tower being connected to a base, the mid-section of the tower being connected to a first detonation chamber, and the top part of the tower being connected to a second detonation chamber;
- (b) a first pair of gas supply lines comprising two gas supply lines and being configured to deliver fuel gas and an oxidizer to the first detonation chamber, and a second pair of gas supply lines comprising two gas supply lines and being configured to deliver fuel gas and an oxidizer to the second detonation chamber;
- (c) first and second spark plugs, the first spark plug being configured to initiate combustion of gases within the first detonation chamber when activated by a first flow switch, and the second spark plug being configured to initiate combustion of gases within the second detonation chamber when activated by a second flow switch;
- (d) one or more batteries that are configured to provide electricity to the two spark plugs; and
- (e) means for controlling remotely a flow of gas through the first and second pairs of gas supply lines;
- wherein the first detonation chamber is connected to the tower via a first set of mounting brackets and a first plurality of isolator springs:
- wherein the second detonation chamber is connected to the tower via a second set of mounting brackets and a second plurality of isolator springs;
- wherein each of the first and second detonation chambers comprises a closed top end and an open bottom end;
- wherein the open bottom end of the first detonation chamber is configured to face a snow surface having a first level;
- wherein the open bottom end of the second detonation chamber is configured to face a snow surface having a second level;
- wherein the first level is lower than the second level; and
- wherein the first and second detonation chambers are configured to be detonated simultaneously and/or non-simultaneously.
2. The avalanche triggering apparatus of claim 1, wherein the tower is comprised of at least two sections that are secured together via flanges.
3. The avalanche triggering apparatus of claim 1, wherein the tower has a height, further comprising a ladder that is situated along the height of the tower and a handrail that is situated at a top of the ladder.
4. The avalanche triggering apparatus of claim 1, wherein each of the first and second detonation chambers is cylindrical in shape.
5. The avalanche triggering apparatus of claim 1, wherein the second end of the tower is covered by a cover plate with an overhanging lip.
6. The avalanche triggering apparatus of claim 1, wherein each of the first and second detonation chambers is at an approximate 15-degree angle relative to the top part of the tower.
7. The avalanche triggering apparatus of claim 1, wherein the tower is cylindrical in shape;
- wherein a bottom section of the tower is situated below the mid-section of the tower and has a constant first outer diameter;
- wherein the mid-section and top part of the tower have a constant second outer diameter; and
- wherein the first outer diameter is greater than the second outer diameter.
8. The avalanche triggering apparatus of claim 1, wherein the closed top end of the first detonation chamber is rounded so as to prevent snow and ice from accumulating on top of the first detonation chamber, and the closed top end of the second detonation chamber is rounded so as to prevent snow and ice from accumulating on top of the second detonation chamber,
9. The avalanche triggering apparatus of claim 1, wherein the first detonation chamber comprises at least one lifting bracket that is configured to facilitate lifting and transport of the first detonation chamber, the second detonation chamber comprises at least one lifting bracket that is configured to facilitate lifting and transport of the second detonation chamber, and the top end of the tower comprises at least one lifting bracket that is configured to facilitate lifting and transport of the tower.
10. The avalanche triggering apparatus of claim 1, wherein each of the first and second detonation chambers is secured to the tower via a mounting assembly comprising a first mounting bracket that is attached to the top part of the tower and comprised of two side members and a front plate;
- wherein the two side members of the first mounting bracket are attached to opposing sides of the top part of the tower, and the front plate of the first mounting bracket extends across a front of the top part of the tower and connects the two side members of the first mounting bracket;
- wherein a second mounting bracket is attached to the detonation chamber and is comprised of two side members and a front plate:
- wherein the two side members of the second mounting bracket are attached to opposing sides of the detonation chamber, and the front plate of the second mounting bracket extends across a back of the detonation chamber and connects the two side members of the second mounting bracket; and
- wherein the front plate of the first mounting bracket and the detonation chamber are at a same angle relative to the tower.
11. The avalanche triggering apparatus of claim 10, wherein a first pair of isolator springs is situated in between the front plate of the first mounting bracket and the front plate of the second mounting bracket on a first side of the first and second mounting brackets, and a second pair of isolator spring is situated in between the front plate of the first mounting bracket and the front plate of the second mounting bracket on a second side of the first and second mounting brackets; and
- wherein each isolator spring is comprised of a helical cable isolator that is inserted through a plurality of holes in two aluminum members in a helical configuration.
12. The avalanche triggering apparatus of claim 11, wherein each isolator spring is configured to provide one inch of movement at a pull force in the range of 4000 to 6000 pounds.
13. The avalanche triggering apparatus of claim 1, wherein the first pair of gas supply lines is configured to supply gas to the first detonation chamber via a first pair of check valves;
- wherein the second pair of gas supply lines is configured to supply gas to the second detonation chamber via a second pair of check valves; and
- wherein the first pair of check valves is pointed upward, and the second pair of check valves is pointed downward.
14. The avalanche triggering apparatus of claim 1, further comprising an ignition box that is situated on an inside wall of the top part of the tower;
- wherein the ignition box contains a battery, at least one capacitor, a voltage converter, and at least one terminal block; and
- wherein the battery is configured to supply power to a first spark plug situated inside of the first detonation chamber and to a second spark plug situated inside of the second detonation chamber.
15. The avalanche triggering apparatus of claim 1, wherein the first flow switch is configured to be activated by a flow of fuel gas from the first pair of gas supply lines, and the second flow switch is configured to be activated by a flow of fuel gas from the second pair of gas supply lines.
Type: Application
Filed: Mar 18, 2026
Publication Date: Jul 23, 2026
Inventors: Eric Bressler (Tetonia, ID), Wade Wolf (Montrose, CO)
Application Number: 19/570,496