FUZE COMPRISING A SELF-DESTRUCTION DEVICE FOR A GYRATORY PROJECTILE
20230133860 · 2023-05-04
Inventors
Cpc classification
F42C9/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F42C9/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F42C15/188
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a fuze for a gyratory projectile, including a striker holder movable about a rocker axis perpendicular to the axis of symmetry of the fuze, a primer holder rotatable about an axis of rotation parallel to the axis of symmetry, and a self-destruction device. The latter includes an SD mechanism using the linear acceleration of the projectile upon the departure of the shot to store axial kinetic energy, and a safety mechanism using the centrifugal effects of the projectile during the flight to store radial kinetic energy. The two mechanisms cooperate with each other, and with the striker holder and the primer holder to generate the different storage positions before firing, intermediate upon the departure of the shot, cocked during the flight and of self-destruction at the end of the flight, guaranteeing maximum safety of the projectile in the storage position and maximum responsiveness of the projectile regardless of the scenario encountered during ballistic firing.
Claims
1. A fuze including a self-destruction device for a gyratory projectile, said fuze consisting of a hollow body, defined by an axis of symmetry coinciding with the axis of rotation of said projectile, and including a striker associated with a striker holder, a primer associated with a primer holder, and a self-destruction device arranged to cooperate with said striker holder and said primer holder to successively generate a first position called “storage position” before firing the projectile, in which the primer is misaligned with respect to the striker, a second position called “intermediate position” upon the departure of the shot, in which the striker holder is away from the primer holder, a third position called “cocked position” during the flight of the projectile, in which the primer is aligned with the striker, and a fourth position called “self-destruction position” at the end of the flight, in which the strikerholer is folded down on the primer holder so that the striker hits the primer and initiates the pyrotechnic chain contained in the projectile, wherein said striker holder is rotatable about a pendulum axis perpendicular to said axis of symmetry, and wherein said primer holder is rotatable about an axis of rotation parallel to said axis of symmetry, and wherein said self-destruction device includes an SD mechanism and a safety mechanism arranged to cooperate, and wherein said SD mechanism includes an axial inertial body urged by a return member and arranged to use the linear acceleration of the projectile upon the departure of the shot, store axial kinetic energy and cause the switch from said storage position to said intermediate position in which said SD mechanism releases the striker holder so that the striker holder moves away from the primer holder, and wherein said safety mechanism includes a centrifugal lever urged by a return member and arranged to use the centrifugal effects of the projectile during the flight, store radial kinetic energy and cause the switch from said intermediate position to said cocked position in which said safety mechanism locks said SD mechanism, and wherein said safety mechanism is further arranged, at the end of the flight, as soon as the centrifugal force induced by the rotation of the projectile drops below a determined threshold, to cause the switch from said cocked position to said self-destruction position in which said safety mechanism restores the stored radial kinetic energy and unlocks said SD mechanism so that, in turn, said SD mechanism restores the stored axial kinetic energy and folds the striker holder back onto the primer holder to strike the primer.
2. The fuze according to claim 1, wherein the inertial body of said SD mechanism extends over an axis parallel to said axis of symmetry so that the rocker axis of said striker holder is positioned between the two axes and, and wherein said inertial body is movable in the axis between an extended position in which the inertial body pushes the striker holder in the direction of the primer holder, and a retracted position in which the inertial body releases the striker holder, said extended position corresponding to the storage and self-destruction positions, and said retracted position corresponding to the intermediate and cocked positions, and wherein said inertial body is arranged to move in a direction opposite to the direction of linear acceleration of the projectile from an extended position to a retracted position by compressing said return member to store axial kinetic energy upon the departure of the shot, and wherein said return member is arranged to move said inertial body in the opposite direction (G′) from a retracted position to an extended position by decompressing to restore said axial kinetic energy stored at the end of firing.
3. The fuze according to claim 2, wherein said striker is carried at one end of said striker holder located opposite said inertial body with respect to said rocker axis, and wherein said primer holder includes a housing remote from said primer, said housing being arranged to be aligned with said striker in said storage and intermediate positions, so that in the storage position, said striker holder is folded down towards said primer holder, and said striker enters said housing and blocks said primer holder.
4. The fuze according to claim 3, wherein said self-destruction device further includes an inertial mass pivotally mounted around said rocker axis, consisting of a part separate from said striker holder, disposed between said inertial body and said striker holder and arranged to transmit to said striker holder either the axial kinetic energy restored by said SD mechanism in said self-destruction position, or the specific kinetic energy that said inertial mass has stored and that said inertial mass restores in the event of strong linear deceleration of said projectile upon an impact.
5. The fuze according to claim 1, wherein the centrifugal lever of said safety mechanism is pivotally mounted around a pivot axis parallel to said axis of symmetry, between an unlocked position in which the centrifugal lever releases the inertial body and a locked position in which the centrifugal lever blocks the inertial body in a retracted position, the unlocked position corresponding to said storage and self-destruction positions, and the locked position corresponding to said cocked position, and wherein said centrifugal lever is arranged to move radially in one direction from an unlocked position to a locked position under the centrifugal effects of the projectile by compressing said return member to store radial kinetic energy during the flight, and wherein said return member is arranged to move said centrifugal lever in the opposite direction from a locked position to an unlocked position by decompressing to restore said stored radial kinetic energy at the end of firing when the centrifugal force is less than the elastic force of said return member.
6. The fuze according to claim 5, wherein the centrifugal lever of said safety mechanism includes two segments disposed on either side of the pivot axis of the centrifugal lever, a first segment able to carry a centrifugal mass, and a second segment forming a locking stop to bock the inertial body in a retracted position, the pivot axis being close to the axis of said inertial body so that the length of said first segment is larger than the length of said second segment.
7. The fuze according to claim 6, wherein the return member of said safety mechanism consists of a torsion spring mounted on a fastening stud with an axis parallel to said axis of symmetry, and provided with a fixed end relative to the body of said fuze, and with a movable end coupled to said centrifugal lever to urge the centrifugal lever into the unlocked position.
8. The fuze according to claim 1, wherein said self-destruction device includes a storage lever pivotally mounted around a pivot axis parallel to said axis of symmetry, between an active position in which the storage lever blocks said centrifugal lever in an unlocked position corresponding to said storage position, and a passive position in which the storage lever retracts relative to said centrifugal lever when the latter moves into a locked position corresponding to said cocked position.
9. The fuze according to claim 8, wherein said storage lever includes a blocking lug arranged to block said primer holder in a safety position corresponding to said storage position, when said storage lever is in an active position.
10. The fuze according to claim 8, wherein said storage lever and said centrifugal lever respectively include self-locking means arranged to cooperate only when said storage lever is in an active position and said centrifugal lever is in an unlocked position.
11. The fuze according to claim 10, wherein said self-locking means are provided respectively in an end area of said storage lever opposite the pivot axis of said storage lever and in an end area of said centrifugal lever opposite the pivot axis of said centrifugal lever, and wherein said storage and centrifugal levers are arranged to pivot about their respective pivot axis in opposite directions of rotation under the effect of said centrifugal force of the projectile.
12. The fuze according to claim 11, wherein said self-locking means include a blocking tooth provided on one of the storage or centrifugal levers, and a blocking notch provided on the other one of the centrifugal or storage levers, the blocking tooth being arranged to escape from the blocking notch when said centrifugal lever moves into a locked position, which is only possible in said cocked position.
13. The fuze according to claim 1, wherein the body of said fuze includes an impact disc coaxial with the axis of symmetry, disposed between the top of the body of said fuze and the striker holder, and arranged to deform in the event of direct impact of the projectile on a target, and fold said striker holder back on the primer holder to strike the primer.
Description
BRIEF DESCRIPTION OF FIGURES
[0024] The present invention and its advantages will appear better in the following description of several embodiments given as non-limiting examples, with reference to the appended drawings, in which:
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DETAILED DESCRIPTION
[0040] In the illustrated embodiment, identical elements or portions bear the same reference numerals. Also, terms that have a relative meaning, such as vertical, horizontal, right, left, front, back, above, below, inside, outside, etc. should be interpreted under normal conditions of use of the invention, and as represented in the figures.
[0041] The invention relates more particularly to giratory grenades, which are projectiles 1 having a substantially ogive-like shape, rotating on themselves about an axis of rotation coinciding with the axis of symmetry A of the projectile. This rotation allows for an increased stability of the projectile in flight by gyroscopic effect. In the remainder of the description, the generic term “projectile” is used, which applies to any type of projectile, ammunition, grenades, and the like. The projectile 1 represented in
[0042] The projectile 1 will not be described in more detail, since it is not the subject of the invention as such. Furthermore, it may have a composition or a constitution other than that described and illustrated in
[0043] The invention relates more particularly to the fuze 4 and to the self-destruction device 7 that it contains. This fuze 4 could also be suitable for any type of gyratory projectile. It is represented in partial section in
[0044] The base 8 of the fuze 4 includes at its center a through housing (not represented) to receive the top portion of the ammunition body 3 communicating with the primer 6 allowing initiating a pyrotechnic chain which will activate the explosive charges and cause the destruction of the projectile 1.
[0045] The cap 9 of the fuze 4 includes an impact disc 11, coaxial with the axis of symmetry A, arranged in line with the striker 5 and the primer 6 when the SD device is in the cocked position. Upon a direct impact (from 0° to 60° NATO), the cap 9 will deform, thereby resulting in a deformation of the impact disc 11. This impact disc 11 is specially designed so that all possible deformations of the cap generate a sudden descent of the striker 5 in the direction of the primer 6. Indeed, the impact disc 11 has a generally conical shape and deforms always so that its center collapses, presses on the striker 5, which hits the primer 6, which initiates the pyrotechnic chain.
[0046] The fuze 4 includes a plate 12 perpendicular to the axis of symmetry A, delimiting in the internal volume of the fuze 4 an upper portion, in which are housed the striker holder 14 and the self-destruction device 7, and a lower portion in which are housed the primer holder 60 and its actuation mechanism.
[0047] The self-destruction device 7 of the invention is designed to cooperate with the striker holder 14 and the primer holder 60 to place the projectile 1 in the following successive positions:
[0048] a first position called “storage position” in which the projectile 1 is at rest during all of the phases that precede firing, in which the primer 6 is misaligned with respect to the striker 5,
[0049] a second position called “intermediate position” upon the departure of the shot, in which the striker holder 14 is away from the primer holder 60,
[0050] a third position called “cocked position” during the flight of the projectile, in which the primer 6 is aligned with the striker 5, and
[0051] a fourth position called the “self-destruction position” at the end of the flight, in which the striker holder 14 is folded down on the primer holder 60 so that the striker 5 hits the primer 6, initiates the pyrotechnic chain and destroys the bullet 1.
[0052] In the represented example and with reference to
[0056] The striker holder 14 is associated with an inertial mass 16, which is pivotally mounted around the same rocker axis 15, while forming a mechanically separate part. It has the shape of a U-shaped clevis and is positioned below one end of the striker holder 14 opposite to the striker 5. The inertial mass 16 and the striker holder 14 intersect at a right angle. They may include complementary interlocking shapes to be linked together at least temporarily, in particular in the striking position. These complementary interlocking shapes may consist, for example, of an L-shaped end at the end of the striker holder 14 and of a U-shaped recess at the center of the inertial mass 16, without these examples being limiting. The center of gravity of the inertial mass 16 is offset outside the rocker axis 15, i.e. away from the axis of symmetry A of the fuze 4.
[0057] As will be seen later on with reference to
[0058] Upon the initiation of the launch of a projectile 1, called “departure of the shot”, ballistic phenomena are transmitted to the fuze 4. These are two combined phenomena of linear acceleration and of angular acceleration. The self-destruction device 7 according to the invention is a mechanical device designed to use these two phenomena as sources of energy for operation thereof. It is activated as of the departure of the shot and stores the energy necessary for the SD function. This energy, called kinetic energy, is mechanically stored upon the departure of the shot and is kept stored by the centrifugal effects throughout the entire flight of the projectile 1. As soon as the rotational speed of the projectile 1 falls below a given threshold, the centrifugal effects are no longer enough to keep the kinetic energy stored. Without the necessary centrifugal effects, the self-destruction stored kinetic energy is then released and the explosive charge is initiated.
[0059] Referring to
[0060] a storage position, which corresponds to the storage position of the projectile 1, in which it keeps the striker holder 14 lowered and prevents the primer holder 60 from rotating,
[0061] a cocked position, throughout the entire duration of the intermediate and cocked positions of the projectile 1, in which it stores kinetic energy under the effect of the linear acceleration of the projectile 1 upon the departure of the shot, and enables the striker holder 14 to rise in a standby position, and
[0062] a self-destruction position in which it restores the stored kinetic energy by moving the striker holder 14 into the striking position to hit the primer 6 as soon as the rotational speed of the projectile 1 falls below a certain threshold.
[0063] The self-destruction mechanism 7 further includes a safety mechanism 30 arranged to exploit the second phenomenon which is the angular acceleration. It is designed to successively adopt:
[0064] a storage position, which corresponds to the storage position of the projectile 1, in which it has no effect on the SD mechanism,
[0065] a locked position, throughout the entire duration of the intermediate and cocked positions of the projectile 1, in which it keeps the SD mechanism in the cocked position under the effect of the centrifugal force induced by the rotational speed of the projectile 1 as of the departure of the shot and throughout the entire duration of the flight, and
[0066] an unlocked position, in the self-destruction position of the projectile 1, in which it releases the SD mechanism in the self-destruction position as soon as the rotational speed of the projectile 1 falls below a certain threshold.
[0067] Referring more particularly to
[0068]
[0069] Indeed, the fact of separating these two parts: the inertial body 21 and the sleeve 22, enables the self-destruction device 7 to guarantee both that no energy is stored in the fuze 4 before the departure of the shot but also that the SD mechanism 20 is always locked by the locking lever 31 described hereinafter, regardless of the firing situation. In addition, in the storage position, when the self-destruction device 7 is in safety, the protruding position of the inertial body 21 prevents the locking lever 31 from rotating (
[0070] Referring now to
[0071]
[0072] The safety mechanism 30 further includes a storage lever 37 pivotally mounted about a pivot axis E parallel to the axis of symmetry A of the fuze 4, and substantially diametrically opposite to the pivot axis C of the locking lever 31. It is designed to successively adopt:
[0073] an active position, corresponding to the storage position of the projectile 1, in which it retains the locking lever 31 in the storage position (
[0074] a passive position, throughout the entire duration of the intermediate, cocked and self-destruction positions of the projectile 1, in which it clears away relative to the locking lever 31 (
[0075] The storage lever 37 includes at its free end a blocking notch 38 arranged to receive a blocking tooth 39 with a complementary shape provided on the locking lever 31. The blocking tooth 39 protrudes radially from the end of the locking lever 31 carrying the centrifugal mass 32. It further includes a blocking lug 40, opposite the blocking notch 38, which extends in the direction of the primer holder 60 to fit into a blocking notch 64 of the actuation mechanism of the primer holder 60 described later on.
[0076] In the active position (
[0077] Upon the departure of the shot, when the locking lever 31 moves under the effect of the angular acceleration of the projectile 1, the blocking tooth 39 escapes from the blocking notch 38 thanks to their respective curved shape, and releases the lever storage 37. This storage lever 37, being itself also subjected to centrifugal force, can move outward by moving away from the axis of symmetry A and by pivoting about its axis E in a direction of rotation opposite to the locking lever 31, represented by the arrow T. Thus, it switches from an active position to a passive position in which it will remain, as it is not subjected to any return member. During this time, the blocking lug 40 has left the blocking notch 64 releasing the actuation mechanism of the primer holder 60. The configuration of the illustrated and described storage lever 37 and self-locking means (blocking notch 38 and blocking tooth 39; blocking lug 40 and blocking notch 64) may vary subject to filling the same function.
[0078]
[0079] Upon an impact, the projectile 1 undergoes a drop of rotational speed, the centrifugal effects then decrease very rapidly until they completely disappear. As soon as the centrifugal effects fall below the triggering threshold of the SD function, the centrifugal force is no longer enough to keep the return member 33 compressed. Thus, the triggering threshold is determined by the elastic force of said return member 33. The centrifugal mass 31 is then pushed towards the inside of the fuze 4 by the return member 33. It carries with it the locking lever 31 in rotation about its pivot axis C in the opposite direction represented by the arrow S′. The locking stop 31b then releases the SD mechanism 20, and the safety mechanism 30 is in the unlocked position (
[0080] As soon as the locking lever 31 is in the unlocked position, the inseparable assembly formed by the inertial body 21 and the sleeve 22 could rise under the effect of the return member 23 which releases the kinetic energy stored upon the departure of the shot. The “inertial body 21 and sleeve 22” assembly moves upwards in the direction of the arrow G′, and drives the inertial mass 16 which in turn rises by tilting about the rocker axis 15 (
[0081]
[0082] the storage position (
[0083] the standby position (
[0084] the striking position (
[0085] The primer holder 60 is rotatable about an axis of rotation P parallel to and away from the axis of symmetry A. It is associated with an actuation mechanism which includes at least a pair of inertial locks 62, a motor segment 63 and a timing train 65. The primer holder 60 is mechanically independent of the motor segment 63, which enables the projectile 1 to remain in safety over a defined safety distance. The pair of inertial locks 62 forms a safety for the actuation mechanism, which reacts only to the linear acceleration of the projectile 1. Thus, it blocks the rotation of the motor segment 63 and of the primer holder 60 as long as firing has not been done.
[0086] The motor segment 63 is an eccentric mass which reacts strongly to the centrifugal effects. When it is subjected to the centrifugal effects of the projectile 1 after the departure of the shot, it begins to rotate about its axis of rotation P. This rotation is subject to the fact that the storage lever 37 of the self-destruction device 7 has switched in a passive position (
[0087] The operation of the actuation mechanism associated with the primer holder 60 is simple and the self-destruction device 7 according to the invention contributes to keeping this mechanism in safety.
[0088] Of course, the present invention is not limited to the described embodiment but extends to any modification and variant obvious to a person skilled in the art within the limits of the appended claims.