AVALANCHE TRIGGERING SYSTEM
20260049801 ยท 2026-02-19
Inventors
Cpc classification
F42B3/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E01F7/00
FIXED CONSTRUCTIONS
International classification
F42D3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An explosion chamber for an avalanche triggering system including a lower half-chamber closed at its lower end and having an opening at its upper end, and an upper half-chamber closed at its upper end and having an opening at its lower end. The lower end of the upper half-chamber extends around the upper end of the lower half-chamber, or the upper end of the lower half-chamber extends around the lower end of the upper half-chamber, so as to create at least one gas flow channel. The gas flow channel includes a baffle formed by the lower end of the upper half-chamber and the upper end of the lower half-chamber.
Claims
1. An explosion chamber for an avalanche triggering system, the explosion chamber comprising: a lower half-chamber closed at its lower end and comprising an opening at an upper end, an upper half-chamber extending above the lower half-chamber, closed at an upper end and comprising an opening at a lower end, characterized in that the lower end of the upper half-chamber extends around the upper end of the lower half-chamber, or the upper end of the lower half-chamber extends around the lower end of the upper half-chamber, so as to create at least one gas flow channel between an inside and an outside of the explosion chamber, the gas flow channel comprising at least one baffle formed by the lower end of the upper half-chamber and the upper end of the lower half-chamber.
2. The explosion chamber according to claim 1, wherein the lower half-chamber and the upper half-chamber are attached to one another by resiliently deformable means.
3. The explosion chamber according to claim 1, wherein the gas flow channel extends around an entire periphery of the explosion chamber.
4. The explosion chamber according to claim 1, wherein the gas flow channel extends over part of a periphery of the explosion chamber.
5. The explosion chamber according to claim 2, wherein the gas flow channel extends over part of a periphery of the explosion chamber.
6. The explosion chamber according to claim 1, comprising several distinct gas flow channels extending around an entire periphery of the explosion chamber.
7. The explosion chamber according to claim 2, comprising several distinct gas flow channels extending around an entire periphery of the explosion chamber.
8. The explosion chamber according to claim 1, wherein the upper half-chamber comprises at least one internal chimney or partition extending inside the upper half-chamber.
9. The explosion chamber according to claim 1, wherein the lower half-chamber comprises at least one internal chimney or partition extending into the lower half-chamber.
10. An assembly formed by the explosion chamber according to claim 1 and a support for the explosion chamber.
11. The assembly according to claim 10, wherein the support and the explosion chamber are attached to one another by means of an articulated system.
12. The assembly according to claim 11, wherein the support is formed by several straight sections telescopically mounted together.
13. The assembly according to claim 10, wherein the support is formed by several straight sections telescopically mounted together.
14. An avalanche triggering system comprising: the assembly according to claim 10, and at least one member for feeding a gas mixture into the explosion chamber.
15. The avalanche triggering system according to claim 14, further comprising a technical unit integrating at least one of the following elements: at least one receiving member for receiving bottles of gaseous fuel and oxidizer, at least one member for injecting gas inside the explosion chamber, at least one member for controlling gas injection into the explosion chamber, at least one ignition member for igniting the gas mixture inside the explosion chamber.
16. The avalanche triggering system according to claim 15, wherein the technical unit is interfaced and placed on the explosion chamber without being attached thereto.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0041] The invention will be better understood upon reading the following description, which is provided merely by way of example and with reference to the appended drawings, wherein:
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DETAILED DESCRIPTION
[0052] Reference is now made to
[0053] The explosion chamber 2 comprises a lower half-chamber 4 closed at its lower end 6 and comprising an opening at its upper end 8.
[0054] In the example shown, the lower half-chamber 4 is substantially tubular in shape. This shape could be different: it could form a cylinder with a non-circular base, a frustoconical hollow body, etc. As shown in
[0055] Alternatively, the lower half-chamber 4 could be made in one piece.
[0056] The explosion chamber 2 further comprises an upper half-chamber 18 extending above the lower half-chamber 4, closed at its upper end 20 and comprising an opening at its lower end 22.
[0057] In the example shown, the upper half-chamber 18 has the shape of a frustoconical hollow body. This shape could be different: it could form a cylinder, more particularly a tube, etc.
[0058] As can be seen in
[0059] Alternatively, the upper half-chamber 18 could be made in one piece.
[0060] According to the invention: [0061] the lower end 20 of the upper half-chamber 18 extends around the upper end of the lower half-chamber 4, or [0062] the upper end 8 of the lower half-chamber 4 extends around the lower end 20 of the upper half-chamber 18, [0063] so as to create at least one gas flow channel 34 between the inside and outside of the explosion chamber 2, the gas flow channel 34 comprising at least one baffle formed by the lower end 20 of the upper half-chamber 18 and the upper end 8 of the lower half-chamber 4.
[0064] In other words, one of the two half-chambers overlaps the other without being in contact with the latter, so as to form said gas flow channel 34. This configuration allows the effects described above to be achieved. In the example shown in the figures, the half-chamber extending around the other (here the upper half-chamber 18 extending around the lower half-chamber 4) forms an outer skirt around said chamber. Together with the innermost wall of the half-chamber, this outer skirt helps to form the gas flow channel 34. The shape of this skirt, and more broadly of the outer deflectors, helps to guide the shock wave in a desired direction, in whole or in part and symmetrically or not, in order to trigger an avalanche.
[0065] Such a configuration implies that one of the two related ends is larger than the other. In the example shown, the lower end 20 of the upper half-chamber 18 is wider than the upper end 8 of the lower half-chamber 4. The reverse is also possible.
[0066] Advantageously, the lower half-chamber 4 and the upper half-chamber 18 are attached to one another by resiliently deformable means. In the example shown, the two half-chambers are attached to one another by means of a fastening member comprising fastening bars 36 and fastening nuts 38, together with spring-type return means 40. This allows the half-chambers to move relative to one another at the moment of the explosion, thereby better absorbing the forces exerted on the explosion chamber 2 when the shock wave is generated. It is therefore understood that the dimensioning of the resiliently deformable means allows deformation of the explosion chamber 2 at the moment of said explosion, while allowing a return to its resting shape after explosion. This could also allow the size of the gas flow channel 34 to be varied.
[0067] Alternatively, the two half-chambers can be attached via rigid means that prevent any deformation, for example by welding or bolting them to one another.
[0068] In the example shown, the gas flow channel 34 extends around the entire periphery of the explosion chamber 2. Depending on the desired result in terms of shock wave power and direction, it is possible to provide that: [0069] the gas flow channel 34 extends over part of a periphery of the explosion chamber 2, or that [0070] several distinct gas flow channels 34 extending around all or part of a periphery of the explosion chamber.
[0071] In general, the position and/or size of the gas flow channel(s) 34 is chosen based on the desired shock wave, both in terms of the power and the direction of the latter. Indeed, the total size of the opening (that is, of a single gas flow channel 34 or the sum of the gas flow channels 34) partly conditions the stress level for the gas outlet and therefore allows modulation of the shock wave power. As far as direction is concerned, it is understood why the position of the gas flow channel(s) 34 determines the latter.
[0072] Advantageously, the upper half-chamber 18 and/or the lower half-chamber 4 comprises at least one internal chimney or partition, extending, for example, from its closed end to the interior of said half-chamber or even the other half-chamber. Such a configuration makes it possible to increase the effects of an explosion by refining the orientation of the shock wave, further increasing the stresses on the explosion by generating more rebounds and internal reflections of the shock wave in order to increase its power with an equivalent amount of gas.
[0073] The explosion chamber 2 can be formed by two half-chambers made of metal, for example steel, or made of plastic. The shapes of the two half-chambers can be identical or different, as can the materials used to form them.
[0074] The explosion chamber 2 may comprise elements to facilitate access to the latter, means for evacuating water ingress, points for securing operators, means for guiding on its support and/or for accommodating a technical unit, etc.
[0075] Advantageously, the explosion chamber 2 can be equipped with a handling and/or gripping device. This device can be manual or automatic.
[0076] As can be seen from
[0077] Another object of the invention is an assembly 41 formed by an explosion chamber 2 according to the invention and an explosion chamber support 42. This assembly 41 is shown in
[0078] The explosion chamber 2 can be fixedly connected to the ground by a support 40, for example a grounded foot system, vertical or otherwise, and connected at a point on the explosion chamber 2, for example at the lower half-chamber 4. This connection can be rigid or articulated to allow a sweeping movement (obtained by the asymmetry of the aforementioned interlocking) during the explosion to better diffuse the shock wave emitted by the explosion.
[0079] As an alternative to a fixed connection, the explosion chamber 2 can be installed/embedded via the corresponding parts on a support 42, itself grounded to the ground and allowing seasonal helicopter transportation.
[0080] Alternatively, the explosion chamber 2 can be part of a complete system that can itself be transported by helicopter or transported under a cable or pipeline.
[0081] In short, the assembly 41 may or may not be removable, and may be transportable by helicopter in one or more parts. It can be made of steel, plastic or any other material.
[0082] The assembly 41 can be positioned vertically on a mountainside or inclined in any direction, particularly toward the slope, by being attached directly or by any structure allowing it to be connected to the ground.
[0083] Advantageously, the support 42 is formed by several straight sections 44 telescopically or slidably mounted together, for example on a mounting plate 45. Once again, this allows better absorption of the stresses exerted by the shock wave, this time on the assembly 41. More generally, it is advantageous for the support 41 to allow movement of the explosion chamber so as to absorb some of the energy and/or limit stress on the civil engineering structures. This movement can also be used to generate vibrations in the ground to increase the efficiency of the system. Alternatively, and if desirable, it is possible to provide a support that does not allow such vertical movements.
[0084] The assembly 41 can be held in place by its own weight or via external means.
[0085] The support 42 may comprise a connecting plate 47 attached to a section 44 so as to create an attachment interface with the explosion chamber 2, for example with the lower chamber 4. Rib-forming lugs 49 are arranged at the connection between the section 44 and the connecting plate 47 to reinforce this connection. Such lugs 49 can also be arranged at the plate 45.
[0086] A further object of the invention is an avalanche triggering system 46 (visible in
[0089] The member for feeding a gas mixture may, for example, comprise one or more hoses for feeding gas from one or more remote tanks to the assembly 41, and more particularly to the explosion chamber 2.
[0090] The explosion chamber 2 may in this case comprise a member for connecting the hose(s) to the assembly, as well as elements for igniting a gas mixture or monitoring the avalanche triggering system 46, for example via sensors.
[0091] Advantageously, the avalanche triggering device 46 can comprise a removable technical unit 48, generally installed and interfaced on the upper half-chamber 18. In this specific case, the upper end 20 of the upper half-chamber 18 is open without the placement of the technical unit 48, which closes the upper end 22 of the explosion chamber 2.
[0092] The technical unit 48 can be attached to the explosion chamber 2 or simply placed in a movable manner on the latter. A movable placement allows a relative movement of the technical unit 48 with respect to the explosion chamber 2, in particular at said explosion, so as to improve the resistance of the avalanche triggering system 46 over time.
[0093] The technical unit 48 may comprise at least one of the following elements: [0094] Receiving members 50 for receiving bottles 51 of gaseous fuel and oxidizer. [0095] At least one member for injecting gas inside the explosion chamber 2. For example, it may be a diffusion chamber secured to a frame 52, receiving gases from the receiving members 50 and having one end extending into the explosion chamber 2 so as to inject the received gases therein. [0096] At least one member for controlling gas injection into the explosion chamber 2. This control member comprises, for example, a power generation member configured to supply electrical power to the equipment, and/or an electrical power storage element configured to store said electrical power, and a communication element configured to exchange instructions with an external control unit. The control member can be configured to control at least one ignition member. [0097] At least one ignition member for igniting the gas mixture inside the explosion chamber 2. The latter therefore allows an explosion of the gas mixture to be triggered. In particular, the ignition of the ignition member can be controlled by the control member, and particularly based on instructions communicated by the communication element and/or measurements made by one or more physical sensors, for example a thermometer, an accelerometer, a seismometer or an anemometer.
[0098] All these elements can be assembled on a frame 52.
[0099] The technical unit 48 is known from the prior art and is described in document WO 2021/255370 A1. It will not be described in greater detail here.
LIST OF REFERENCES
[0100] 2: explosion chamber [0101] 4: lower half-chamber [0102] 6: lower end of the lower half-chamber [0103] 8: upper end of the lower half-chamber [0104] 10: main portion of the lower half-chamber [0105] 12: solid plate [0106] 14: first domed flange [0107] 16: first attachment flanges [0108] 18: upper half-chamber [0109] 20: upper end of the upper half-chamber [0110] 22: lower end of the upper half-chamber [0111] 24: main portion of the upper half-chamber [0112] 26: second domed flange [0113] 28: second attachment flange [0114] 30: injection hose [0115] 32: attachment flange of the injection hose [0116] 34: gas flow channel [0117] 36: fastening bars [0118] 38: fastening nuts [0119] 39: deflector [0120] 40: spring [0121] 41: assembly [0122] 42: support [0123] 44: sections [0124] 45: mounting plate [0125] 46: avalanche triggering system [0126] 47: connecting plate [0127] 48: technical unit [0128] 49: lugs [0129] 50: receiving member [0130] 51: bottle [0131] 52: frame