EP3953656A1 - Method of controlling ejection of a missile from a canister and system therefor - Google Patents
Method of controlling ejection of a missile from a canister and system thereforInfo
- Publication number
- EP3953656A1 EP3953656A1 EP20788349.7A EP20788349A EP3953656A1 EP 3953656 A1 EP3953656 A1 EP 3953656A1 EP 20788349 A EP20788349 A EP 20788349A EP 3953656 A1 EP3953656 A1 EP 3953656A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- canister
- missile
- measured
- data indicative
- state
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41G—WEAPON SIGHTS; AIMING
- F41G7/00—Direction control systems for self-propelled missiles
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41A—FUNCTIONAL FEATURES OR DETAILS COMMON TO BOTH SMALLARMS AND ORDNANCE, e.g. CANNONS; MOUNTINGS FOR SMALLARMS OR ORDNANCE
- F41A27/00—Gun mountings permitting traversing or elevating movement, e.g. gun carriages
- F41A27/28—Electrically-operated systems
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41G—WEAPON SIGHTS; AIMING
- F41G7/00—Direction control systems for self-propelled missiles
- F41G7/007—Preparatory measures taken before the launching of the guided missiles
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41A—FUNCTIONAL FEATURES OR DETAILS COMMON TO BOTH SMALLARMS AND ORDNANCE, e.g. CANNONS; MOUNTINGS FOR SMALLARMS OR ORDNANCE
- F41A23/00—Gun mountings, e.g. on vehicles; Disposition of guns on vehicles
- F41A23/34—Gun mountings, e.g. on vehicles; Disposition of guns on vehicles on wheeled or endless-track vehicles
- F41A23/42—Gun mountings, e.g. on vehicles; Disposition of guns on vehicles on wheeled or endless-track vehicles for rocket throwers
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41A—FUNCTIONAL FEATURES OR DETAILS COMMON TO BOTH SMALLARMS AND ORDNANCE, e.g. CANNONS; MOUNTINGS FOR SMALLARMS OR ORDNANCE
- F41A27/00—Gun mountings permitting traversing or elevating movement, e.g. gun carriages
- F41A27/30—Stabilisation or compensation systems, e.g. compensating for barrel weight or wind force on the barrel
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41F—APPARATUS FOR LAUNCHING PROJECTILES OR MISSILES FROM BARRELS, e.g. CANNONS; LAUNCHERS FOR ROCKETS OR TORPEDOES; HARPOON GUNS
- F41F3/00—Rocket or torpedo launchers
- F41F3/04—Rocket or torpedo launchers for rockets
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F41—WEAPONS
- F41G—WEAPON SIGHTS; AIMING
- F41G3/00—Aiming or laying means
- F41G3/14—Indirect aiming means
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F42—AMMUNITION; BLASTING
- F42B—EXPLOSIVE CHARGES, e.g. FOR BLASTING, FIREWORKS, AMMUNITION
- F42B30/00—Projectiles or missiles, not otherwise provided for, characterised by the ammunition class or type, e.g. by the launching apparatus or weapon used
Definitions
- the presently disclosed subject matter relates to a method of controlling ejection of a missile from a canister and a system therefor.
- MTE Melt Tip-off Effect
- MTE may occur due to various reasons, such as:
- Missile geometric tolerances such as missile centre of gravity not aligned with the symmetry axis, thrust misalignment, etc.
- TVC Thrust Vector Control
- MTE of a missile ejected from a canister comprising, by a processor and associated storage:
- the system according to this aspect of the presently disclosed subject matter can comprise one or more of features listed below, in any desired combination or permutation which is technically possible:
- the measured canister state includes measured canister angle and wherein desired canister state includes desired canister angle.
- the measured canister state includes measured canister rate and wherein desired canister state includes desired canister rate.
- the said measured canister state includes measured missile angle and wherein desired canister state includes desired canister angle.
- the measured canister state includes measured missile rate and wherein desired canister state includes desired canister rate.
- the measured canister state includes data indicate of remaining flight time of the missile in the canister. , such that for the same difference in measured angle or rate vs. desired angle or rate, the shorter the remaining flight time, the larger the command.
- At least one of said sensors is fitted on the missile.
- the data indicative of measured canister state is obtained by averaging the data indicative of the canister state of each canister of said array.
- a system for reducing or eliminating "Missile Tip-off Effect" (MTE) of a missile ejected from a canister comprising, a processor and associated storage configured to:
- receiving data indicative of desired canister state in response to a launch command perform repeatedly until an MTE control criterion is met: a. receiving, from at least one sensor associated with the canister, data indicative of measured canister state;
- This aspect of the disclosed subject matter can comprise one or more of features listed above and applied to the system, mutatis mutandis, in any desired combination or permutation which is technically possible.
- a non-transitory program storage device readable by a computer, tangibly embodying computer readable instructions executable by the computer to perform a method for reducing or eliminating "Missile Tip-off Effect" (MTE) of a missile ejected from a canister.
- MTE Melt Tip-off Effect
- This aspect of the disclosed subject matter can comprise one or more of features listed above and applied to the non-transitory program storage device, mutatis mutandis, in any desired combination or permutation which is technically possible.
- advantages of certain embodiments of the presently disclosed subject matter is the use of sensors fitted on the canister (rather than on the missile) and utilization of the canister's actuator, thereby utilizing a lighter missile considering that the need to fit larger and heavier actuators on the missile (as is the case in some prior art solutions) may be obviated.
- Yet another non-limiting advantage is the "shift" of using hardware components (such as sensors and actuators) to a sustainable multi use canister assembly rather than fitting them for one-time use on a disposable missile, thereby drastically reducing the overall system costs.
- FIG. 1 illustrates an exemplary operational scenario, in accordance with certain embodiments of the presently disclosed subject matter
- Fig. 2 illustrates a schematic illustration of a system, in accordance with certain embodiments of the presently disclosed subject matter;
- FIG. 3 illustrates a functional block diagram of a system in accordance with certain embodiments of the presently disclosed subject matter
- Fig. 4 illustrates a functional block diagram of a control system in accordance with certain embodiments of the presently disclosed subject matter
- FIG. 6 illustrates a generalized flow-chart of a system in accordance with certain embodiments of the presently disclosed subject matter
- Fig. 7 illustrates schematically a simplified chart comparing canister configuration with and without utilization of a technique in accordance with certain embodiments of the presently disclosed subject matter
- Fig. 8 illustrates a generalized flow-chart of a system in accordance with certain other embodiments of the presently disclosed subject matter
- Fig. 9 illustrates schematically a simplified chart comparing canister configuration with and without utilization of a technique in accordance with certain other embodiments of the presently disclosed subject matter.
- non-transitory memory and“non-transitory storage medium” used herein should be expansively construed to cover any volatile or non-volatile computer memory suitable to the presently disclosed subject matter.
- the phrase “for example,” “such as”, “for instance” and variants thereof describe non-limiting embodiments of the presently disclosed subject matter.
- Reference in the specification to "one case”, “some cases”, “other cases”, “one example”, “some examples”, “other examples” or variants thereof means that a particular described method, procedure, component, structure, feature or characteristic described in connection with the embodiment(s) is included in at least one embodiment of the presently disclosed subject matter, but not necessarily in all embodiments. The appearance of the same term does not necessarily refer to the same embodiment(s) or example(s).
- conditional language such as“may”,“might”, or variants thereof should be construed as conveying that one or more examples of the subject matter may include, while one or more other examples of the subject matter may not necessarily include, certain methods, procedures, components and features.
- conditional language is not generally intended to imply that a particular described method, procedure, component or circuit is necessarily included in all examples of the subject matter.
- usage of non-conditional language does not necessarily imply that a particular described method, procedure, component or circuit is necessarily included in all examples of the subject matter.
- a missile 4 is ejected from a canister 2 in an array of canisters 3.
- the missile may be ejected in an undesired angle e.g. as depicted schematically in 5.
- Fig. 2 it illustrates a schematic illustration of a system, in accordance with certain embodiments of the presently disclosed subject matter.
- MTE Missile Tipoff Effect
- the angular position of the canister 21 in response to a launch command (including meeting certain conditions such as time elapse after launch), the angular position of the canister 21 (fitted on carrier 22) may be modified by an actuator 23 in response to data indicative of an appropriate command.
- the command is determined based on processing data indicative of canister state as measured by at least one canister sensor measurements (depicted schematically as 24) and/or at least one missile sensor measurement depicted schematically as 25.
- the sensor associated with the canister may be e.g.
- canister state e.g. canister angle and / or canister angular rate and / or missile's angle and / or missile's angular rate.
- canister angle and / or canister angular rate e.g. canister angle and / or canister angular rate and / or missile's angle and / or missile's angular rate.
- the specified sensor or sensors may be mounted on the canister and/or the missile in a known per se manner (e.g. the sensors may be fitted e.g. in/on the canister, and/or in/on the missile).
- an array of canisters configured to launch a plurality of missiles. Operation of the system may be adapted to utilize the input from the plurality of sensors fitted on the array of canisters, all as will be explained in greater detail below.
- measured may embrace also other operations such as pertinent processing of raw measured data.
- FIG. 3 illustrating a functional diagram of a system 300.
- the illustrated system includes a control system 301 operatively coupled to a canister's actuator 302.
- the canister's actuator controls the angular position of the canister 303 (e.g. angle and/or angular rate).
- the control system 301 is also operatively coupled to the canister's sensor(s) 304 and missile's sensors 305 for obtaining data indicative of measured canister state (utilizing the canister and/or missile sensors) as well as desired canister's state (e.g. extracted from to database 307 ) for outputting a command to the actuator affecting the canister's angular position (angle and/or rate), and consequently also modifying the missile's angular position (305).
- the whole sequence is repeated, e.g. in a closed loop fashion until a Missile Tip-off Effect (MTE) control criterion is met. This occurs for example when data indicative of the measured canister state matches data indicative of the desired canister state.
- MTE Missile Tip-off Effect
- the desired canister's state (e.g. desired angle of canister) is determined for instance in a manner that guarantees that when the missile is ejected from the canister, its flight trajectory "compensates" for the inherent parasitic effects that the missile encounters while ejecting from the canister, thereby reducing or eliminating the undesired MTE effect.
- the missile may fly in a designated trajectory, obviating the need to utilize cumbersome hardware, such as large steering surfaces, for coping with the MTE effect, as is the case in prior art solutions.
- FIG. 4 it illustrates a functional block diagram of a control system (CS) (301) in accordance with certain embodiments of the presently disclosed subject matter.
- the CS system 301 may in some examples be a computer. It may, by way of non-limiting example, comprise a processing circuitry 405.
- Processing circuitry 405 may comprise at least one processor 401 (e.g. a general purpose processor), and memory 402.
- Processor 401 may be specially configured for the desired purpose by a computer program stored in a non-transitory computer-readable storage medium. Each may be configured to execute several functional modules in accordance with computer-readable instructions, e.g. in accordance with flow charts disclosed with reference to Figs. 6 and 8.
- the CS system may include input/output (I/O) 407, that may have conventional input/output peripherals such as a keyboard, mouse or touchscreen and/or other peripherals.
- System 301 may also include network interface 409 to provide connectivity to network 110 for sending or receiving data.
- the CS may reside fully or partially on board the system 10 or be placed at least partially in a remote location and communicate with other portions thereof residing in system 10. It is noted that the teachings of the presently disclosed subject matter are not bound by the system described with reference to Figs. 3 and 4. Equivalent and/or modified functionality can be consolidated or divided in another manner and can be implemented in any appropriate combination of software with firmware and/or hardware and executed on a suitable device.
- the equation below describes, by way of example, data indicative of the actuation command to the canister actuator, and assumes, for simplicity, that only canister sensor(s) are utilized.
- M c - an actuation command to the canister's actuator for modifying the angular position of the canister.
- the measured canister angle q canister may be obtained from the canister's sensor and the measured canister's angular rate q may be measured or calculated therefrom.
- the desired canister angle q com is obtained and the desired q com canister angular rate may be obtained or calculated therefrom. It is thus noted that whenever a reference is made to "measured” e.g. angle or rate, it encompasses also processing. Note that the resulting activation command M c that is fed to the canister actuator will result in modification of its angular position (angle and possibly rate). In the latter example illustrated with reference to Eq. 1, both the measured angular rate q and the angle position 9 canister are controlled in the sense that the activation command will be nulled in cases where both the angular rate and angle match their corresponding desired values q com and q com .
- only the angle is considered, e.g. q canister (measured) vs. q com (desired), yielding possibly a different flight trajectory of the missile for eliminating or reducing the MTE effect.
- q canister measured
- q com desired
- the command M c is based by this example on the difference between the measured canister angle and the desired one, as well as on the difference between the respective rates.
- the other coefficients e.g. K
- K may also affect the missile trajectory as it ejects from the canister for coping with the MTE effect, all depending upon the particular application.
- the invention is not bound by the specified coefficients.
- control may cease in case the "MTE control criterion is met".
- This criterion may be met, e.g. in cases where the desired and measured controlled parameters (e.g. angular position and/or rate) match, or when the missile ejects from the canister, or when the command to the actuators violates system specifications (e.g. is overly large), to the extent that following it may damage the canister and/or missile, and/or others, depending upon the particular application.
- Eq. 1 is by no means binding.
- additional parameters such as, for instance, the position of the missile within the canister, and the remaining flight duration of the missile within the canister
- a more accurate control e.g. applied by way of non limiting example mutatis mutandis to equation I or II - see below
- measured canister angular rate (q) may refer to averaging the measured canister angular rates as obtained (or derived) from two or more sensors that are fitted on respective two or more canisters of the array.
- q measured canister angular rate
- FIG. 6 there is illustrated a generalized flow chart of a sequence of operations in accordance with certain embodiments of the presently disclosed subject matter.
- the specified Eq. 1 illustrates a non-limiting example of the specified sequence of operations.
- step 601 data indicative of desired canister state (e.g. desired canister's angle and angular rate) is received in response to a launch command.
- desired canister state e.g. desired canister's angle and angular rate
- Data indicative of a measured canister state is received from at least one sensor associated with the canister
- the data indicative of measured canister state e.g. canister's rate and angle
- desired canister state is processed (e.g. in compliance with Eq. 1) , for outputting data indicative of a command to at least one actuator associated with the canister, for modifying at least the angular position of the canister 605.
- the MTE criterion may be modified, depending upon the particular application.
- Equation (Eq. 1) exemplifies, in a non-limiting manner, the specified steps 601-605.
- the specified Equation (Eq. 1) exemplifies in a non-limiting manner the specified steps 601-605 and the MTE criterion may be met if the measured and desired values match, or when the missile is ejected from the canister.
- FIG. 7 illustrates schematically a simplified chart comparing canister configuration with and without utilization of a technique in accordance with certain embodiments of the presently disclosed subject matter.
- the hashed line graphs 7005, 7003, 7007 and 7011 (in charts 710, 720, 730 and 740, respectively) indicate, as will be explained in detail below, the behaviour of the canister (angle and angular rate), as well as the missile flying inside the canister (angle and angular rate) when utilizing the technique in accordance with certain embodiments of the presently disclosed subject matter, e.g. in accordance with Eq.l described above.
- an unsupervised angular position of the canister stems e.g. from an unsupervised angular rate thereof see graph 704 in chart 720 (wherein the ordinate represents angular rate).
- the angle and the rate of the missile substantially follow suit. Namely, the angle (see graph 706 in chart 730) and angular rate (see graph 707 in chart 740) of the missile flying inside (and constrained by) the canister follow more or less the respective angle (graph 703) and angular rate (graph 704) of the canister (excluding some lateral degree of freedom of the missile inside the canister - as shown for instance by interferences 708 and 709).
- the net effect is that, at the point of ejection, when the missile departs from the canister (see 7001 in chart 730), the missile has a certain angular rate above 0 (7002 in chart 740) which results in an ever-increasing angle 7010 while flying in the boost phase, thereby intensifying the undue tip-off effect.
- the angular rate of the canister will coincide with the desired angular rate of the canister, e.g. 0, while the actual angle 7005 coincides with the desired angle 702.
- the missile angular rate will substantially follow suit (graph 7011 in chart 740) and coincides with the desired angular rate 7006 (in chart 740), e.g. 0, while the actual missile's angle coincides (matches) with the desired missile's angle (7007 and 7008 of chart 730).
- the net effect is that unlike the variable angular position of the missile (7010 in chart 730) in the unsupervised mode of operation, in accordance with certain embodiments of the invention, by virtue of the desired angular rate (e.g. 0 - see 7006 in chart 740) the missile's angular position will retain the desired angular position after departing from the canister, e.g. 0 (see 7009 in chart 730) (constituting an example of meeting the specified MTE control criterion, when the desired and measured value match, or when the missile ejects from the canister, thereby substantially reducing or eliminating the tip-off effect.
- the desired angular rate e.g. 0 - see 7006 in chart 740
- the missile's angular position will retain the desired angular position after departing from the canister, e.g. 0 (see 7009 in chart 730) (constituting an example of meeting the specified MTE control criterion, when the desired and measured value
- the measured canister's state embraces measured canister angle and angular rate
- the desired canister's state embraces desired canister angle and angular rate
- M c - an actuation command to the canister's actuator for modifying the angular position and the angular rate of the canister.
- the measured canister angle q canister may be obtained from the canister's sensor and the measured canister's angular rate q canister may be measured or processed therefrom.
- the measured missile angle q canister may be obtained from the canister's sensor and the measured canister's angular rate q missile may be measured or calculated therefrom.
- the desired canister angle q com is obtained (received or calculated) and the desired q com canister angular rate may be received or calculated therefrom.
- only the angle is controlled (constituting a different MTE control criterion) , e.g. q canister (measured) vs.
- the latter are obviously only non-limiting examples for overcoming the MTE effect.
- These examples are not limiting (e.g. only the rate of either or both or the missile and the canister are controlled; the missile measured angle may be compared to the missile's desired angle rather than to the canister's desired angular position, and, similarly, the measured and desired rates of the missile are compared; and/or other parameters for control may be added or modified , all depending upon the particular application.
- the MTE control criterion may be changed depending upon some or all of the parameters that are measures and/or controlled.
- control may cease in case the MTE control criterion is met.
- This criterion may be met in case that the desired and measured controlled parameters (e.g. angular position and / or rate) match, or when the missile ejects from the canister, or when the command to the actuators violates system specifications (e.g. is overly large to the extent that following it may damage the canister and/or missile.
- K canister and K missiie one can choose how to incorporate the amount of data fusion between the two sensors. By assigning K missiie to be zero, the algorithm will use data only from the canister, and by assigning K canister to be zero, the algorithm will use data only from the missile. Any other combination will fuse data from both of the sensors.
- FIG. 8 there is illustrated a generalized flow chart of a sequence of operations in accordance with certain embodiments of the presently disclosed subject matter.
- the specified Eq. 2 illustrates a non-limiting example of the specified sequence of operations.
- step 801 data indicative of desired canister state (e.g. desired canister's angle and angular rate) is received in response to a launch command.
- desired canister state e.g. desired canister's angle and angular rate
- Data indicative of measured canister state (e.g. measured canister's rate and angle, as well as measured missile's angle and angular position) is received from at least one sensor associated with the canister (804);
- the data indicative of measured canister state and desired canister state is processed (e.g. in compliance with Eq.2), for outputting data indicative of a command to at least one actuator associated with the canister, for modifying at least the angular position of the canister 805.
- the command may be issued based on e.g. at least one of: angular position of the canister (measured and desired), angular position of the missile
- angular rate of the canister (measured and desired), angular rate of the missile (measured and desired); possibly other parameters, such as for instance, the position of the missile within the canister, remaining flight duration of missile within the canister having a more accurate control (e.g. applied by way of non limiting example mutatis mutandis to Equation 1 or 2 - see below), and others.
- control may cease in case of a MTE control criterion being met.
- This criterion may be met also e.g. when the missile ejects from the canister, or e.g. when the command to the actuators violates system specifications (e.g. is overly large to the extent that following it may damage the canister and/or missile).
- Equation (Eq. 2) exemplifies, in a non-limiting manner, the specified steps 801-805.
- FIG. 9 illustrates schematically a simplified chart comparing canister configuration with and without utilization of a technique in accordance with certain embodiments of the presently disclosed subject matter.
- the hashed line graphs 9005, 9003, 9007 and 9011 (in charts 910, 920, 930 and 940, respectively) indicate, as will be explained in detail below, the behaviour of the canister (angle and angular rate) as well as the missile flying inside the canister (angle and angular rate) when utilizing the technique in accordance with certain embodiments of the presently disclosed subject matter, e.g. in accordance with Eq. 2 described above.
- an unsupervised angular position of the canister stems e.g. from an unsupervised angular rate thereof see graph 904 in chart 920 (wherein the ordinate represents angular rate).
- the angle and the rate of the missile substantially follow suit. Namely, the angle (see graph 906 in chart 930) and angular rate (see graph 907 in chart 940) of the missile flying inside (and constrained by) the canister follow more or less the respective angle (graph 903) and angular rate (graph 904) of the canister (excluding some lateral degree of freedom of the missile inside the canister - as shown for instance by interferences 908 and 909).
- the net effect is that at the point of ejection, when the missile departs from the canister (see 9001 in Chart 930), the missile has a certain angular rate above 0 (9002 in chart 940) which results in an ever increasing angle 9010 while flying in boost phase, thereby intensifying the undue tip-off effect.
- the angular rate of the canister will coincide with the desired angular rate of the canister, e.g. 0, while the actual angle 9005 coincides with the desired angle 902.
- the missile angular rate will substantially follow suit (graph 9011 in chart 940) and substantially coincides with the desired canister rate 9006 (in chart 940), e.g. 0, while the measured missile's angle coincides with the desired canister angle (9007 and 9008 of chart 930).
- the net effect is that unlike the variable angular position of the missile (9010 in chart 930) in the unsupervised mode of operation, in accordance with certain embodiments of the invention, by virtue of the desired angular rate (e.g. 0 - see 9011 in chart 940) the missile's angle will retain the desired angle after departing from the canister, e.g. 0 (see 9009 in chart 930, IF 9011 9009), thereby substantially reducing or eliminating the tip-off effect.
- the desired angular rate e.g. 0 - see 9011 in chart 940
- the system according to the invention may be, at least partly, implemented on a suitably programmed computer.
- the invention contemplates a computer program being readable by a computer for executing the method of the invention.
- the invention further contemplates a non- transitory computer-readable memory tangibly embodying a program of instructions executable by the computer for executing the method of the invention.
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- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Aiming, Guidance, Guns With A Light Source, Armor, Camouflage, And Targets (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| IL265993A IL265993B2 (en) | 2019-04-11 | 2019-04-11 | Method of controlling ejection of a missile form a canister and system therefor |
| PCT/IL2020/050324 WO2020208625A1 (en) | 2019-04-11 | 2020-03-19 | Method of controlling ejection of a missile from a canister and system therefor |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP3953656A1 true EP3953656A1 (en) | 2022-02-16 |
| EP3953656A4 EP3953656A4 (en) | 2023-01-04 |
Family
ID=67874134
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP20788349.7A Withdrawn EP3953656A4 (en) | 2019-04-11 | 2020-03-19 | Method of controlling ejection of a missile from a canister and system therefor |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20220178658A1 (en) |
| EP (1) | EP3953656A4 (en) |
| IL (1) | IL265993B2 (en) |
| WO (1) | WO2020208625A1 (en) |
Family Cites Families (12)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4327624A (en) * | 1980-06-23 | 1982-05-04 | General Dynamics, Pomona Division | Tip off rate reducer |
| US5175600A (en) * | 1990-06-21 | 1992-12-29 | Frank Jack D | Collimator mounting means adapted for attachment to missile launcher |
| DE4234026C1 (en) * | 1992-10-09 | 1994-02-10 | Bodenseewerk Geraetetech | Inertial measurement unit for missile or projectile - aligns optical rotation sensor axis with drift axis of two=axis mechanical gyroscope and with axis of high acceleration of launch |
| JP2000213894A (en) * | 1999-01-25 | 2000-08-02 | Mitsubishi Electric Corp | Projectile launcher |
| US8563910B2 (en) * | 2009-06-05 | 2013-10-22 | The Charles Stark Draper Laboratory, Inc. | Systems and methods for targeting a projectile payload |
| IL211142A (en) * | 2011-02-09 | 2015-06-30 | Yesaiahu Redler | System and method for measuring parameters of motion of a projectile as it exits the muzzle of a gun |
| US9012822B2 (en) * | 2012-07-18 | 2015-04-21 | Thales Holdings Uk Plc | Missile guidance |
| US9612085B2 (en) * | 2014-01-27 | 2017-04-04 | Sparton Corporation | Payload launch system and method |
| RU2569046C1 (en) * | 2014-06-25 | 2015-11-20 | Акционерное общество "Конструкторское бюро приборостроения им. академика А.Г. Шипунова" | Method of combined guidance of small-sized missile with separable propulsion system and guidance system for its implementation |
| CN107044361A (en) * | 2017-05-17 | 2017-08-15 | 西北工业大学 | A kind of pulse detonation rocket engines and control method with combustion-compensating device |
| RU2659622C1 (en) * | 2017-08-29 | 2018-07-03 | Акционерное общество "Конструкторское бюро приборостроения им. академика А.Г. Шипунова" | Rotating along the roll angle with direction gyroscope to the target acquisition zone by the homing head rocket outputting method and system for its implementation |
| CN114001602A (en) * | 2021-10-26 | 2022-02-01 | 东北大学秦皇岛分校 | Rocket gun disturbance detection method based on quaternion Kalman filtering denoising fusion |
-
2019
- 2019-04-11 IL IL265993A patent/IL265993B2/en unknown
-
2020
- 2020-03-19 WO PCT/IL2020/050324 patent/WO2020208625A1/en not_active Ceased
- 2020-03-19 US US17/602,672 patent/US20220178658A1/en not_active Abandoned
- 2020-03-19 EP EP20788349.7A patent/EP3953656A4/en not_active Withdrawn
Also Published As
| Publication number | Publication date |
|---|---|
| WO2020208625A1 (en) | 2020-10-15 |
| EP3953656A4 (en) | 2023-01-04 |
| US20220178658A1 (en) | 2022-06-09 |
| IL265993B2 (en) | 2023-06-01 |
| IL265993A (en) | 2020-10-28 |
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