METHOD TO COMBAT A TARGET
20220412693 · 2022-12-29
Assignee
Inventors
Cpc classification
F41G7/2253
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G7/2233
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G7/2206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41G7/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method is provided to improve the impact point for at least one subsequent projectile fired towards a target, launched after an initial projectile, where the subsequent projectiles can alter their course, based on information on the previous projectiles' time of automatic detonation, to improve the ability to detect a target. A projectile and a fuse are also provided.
Claims
1. A method to improve an impact point of at least one subsequent projectile fired at a target, launched after at least one previous projectile, comprising altering a course of the at least one subsequent projectile based on information on a time of automatic detonation of the at least one previous projectile to improve an ability to detect a target, and detecting the target and transmitting information on the target's position to the at least one subsequent projectile by the at least one previous projectile.
2. A method to improve the impact point for at least one subsequent projectile according to claim 1, comprising setting a course of the at least one subsequent projectile towards received target location data, and detonating on an external command or at an estimated impact point based on an estimated trajectory of the target.
3. A method to improve the impact point for least one subsequent projectile according to claim 2, comprising estimating the target's trajectory using the target's location data.
4. A method to improve the impact point for at least one subsequent projectile according to claim 3, comprising using the estimated target trajectory to calculate an optimal impact point for detonation.
5. A method to improve the impact point for at least one subsequent projectile according to claim 2, comprising using a signal transmitted from a fire control system as an external command.
6. A method to improve the impact point for at least one subsequent projectile according to claim 1, wherein the target location data is in a direction relative to the at least one subsequent projectile.
7. A method to improve the impact point for least one subsequent projectile according to claim 1, wherein the target location data is a specified location in a three-dimensional positioning system.
8. A method to improve the impact point for at least one subsequent projectile according to claim 1, wherein the location data is used to direct a sensitivity of a sensor inside the at least one subsequent projectile.
9. A method to improve the impact point of at least one subsequent projectile according to claim 8, wherein changing the sensitivity of the sensor from omnidirectional, 360 degrees, to sensitivity in a segment <90 degrees.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The invention will be described in more detail below, with reference to the accompanying figures therein:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026] When combating a moving target, i.e. air targets, with unguided projectiles fired from barrel weapons, projectiles are aimed at the point where the target will be when the projectiles reach the target. These type of points, commonly called points of aim, are predicted based on measurement data and estimations. By the same estimation, you can also predict the trajectory of the projectiles fired at the target. The estimate or prediction is based on the projectile's previous positions and a hypothesis on how the projectile will behave in the future.
[0027] A system designed to use artillery and projectiles to combat targets can consist of or comprise three parts; fire control, weapons and projectiles. Such a system can also be called an artillery-based anti-aircraft defence. Projectiles are to be understood as various forms of projectiles, such as grenades, missiles and/or rockets, which intended use is to combat a target. A fire control system used in an artillery-based anti-aircraft defence includes one or more sensors and several methods for managing and evaluating the sensor data. The sensor or sensors that are included in, and used by, the fire control system are also referred to as sight. Refined information from the sight is used to control the direction of both sight and weapons.
[0028] In a first embodiment, the projectiles are fired in succession without moving the launcher, neither laterally nor vertically, making the projectiles travel in a line, or close to a line, towards the target. The launched projectiles are programmed with a time slot, i.e. the sensors inside the projectiles can detect a target during a certain time interval. In this case, the initial projectiles' time slot is communicated to the subsequent projectiles. If the target isn't detected by the initial projectile within the set time slot, the projectile will detonate. This, in turn, informs the subsequent projectiles that the target was not found within the target seeker's/sensor's search area. The subsequent projectiles can still obtain this information when there is a lack of communication from the projectiles in front, by noting that nothing is received when the target remains undetected by the projectiles in front. Alternatively, the subsequent projectiles can be fitted with a sensor, i.e. an optical sensor, that can detect the detonation of the projectiles in front, in order to obtain this information. If the projectiles in front have been unable to detect the target, the subsequent projectiles can alter their trajectory in order to be in a more favourable position to detect the target. Alternatively, the projectiles receive information that no target has been detected before automatic detonation. In the event that several subsequent projectiles are launched, different trajectories can be selected in order for the subsequent projectiles to cover a larger area.
[0029] In a second embodiment, the projectiles are fired in succession without moving the launcher, neither laterally nor vertically, making the projectiles travel in a line, or close to a line, towards the target. When the initial projectile detects a target, the communication to the first subsequent projectile can be simplified by transmitting only a direction. The first subsequent projectile receives the information from the initial projectile and sets its course towards the communicated direction. When the first subsequent projectile detects the target, the projectile transmits a direction to the following projectile and so on.
[0030] In a third embodiment, the projectiles are launched towards the target in an optional way. In this embodiment, the relative position of the launched projectiles is unknown. Each projectile is provided with a device that measures its current position, i.e. by inertial or satellite navigation, or a combination of inertial and satellite navigation. When the initial projectile detects a target, it transmits the position of the initial projectile and the position of the target in relation to the current position of the subsequent projectiles. The initial projectile transmits the target information to the first subsequent projectile, including the position of the initial projectile and the location of the target in relation to the initial projectile's position. The second projectile calculates, based on its current position, the position of the initial projectile and the location of the target in relation to the first projectile, and the maneuvers required to steer the second projectile towards the target.
[0031]
[0032] In the step 6, Receiving information in subsequent projectile, the subsequent projectiles are updated with information relating to where the target is located. The subsequent projectiles can, depending on their current position and estimated course, be steered to improve their trajectory in order to be in a more favourable position in relation to the target. The process of steering the projectile to a more favourable position in relation to the target can be found in step 7, Course correction. If the projectiles are launched using a time slot, as per the first embodiment, and no information is received by the subsequent projectiles from the projectiles in front, and the projectiles in front have detonated at the end of the time slot, the subsequent projectiles will still know that no target has been detected. As the subsequent projectiles are aware of the time slot of the initial projectile and therefore the time of self-destruction/automatic detonation, the subsequent projectiles can determine that the initial projectile has been unable to detect the target, as the time limit has been reached and no target information has been received. The subsequent projectiles can then correct their course in order to increase the possibility of detecting the target.
[0033] The subsequent projectile or projectiles will steer to a position where it/they can detect the target using the target seeker, sensor or proximity fuse. If the target cannot be detected, the projectile can be set to detonate by using an external command, i.e. a signal communicated from the assigning device. The radar fitted on the assigning device can detect both the projectile and the target. Therefore, it can send communication to the projectile to make it detonate at a suitable time to impact the target. Even if the seeker is unable to detect a target and the projectile receives an external signal to detonate, the subsequent projectile has still received the target location. Therefore, it may have changed its course to a position that is closer to the target, and therefore it may be in a position that is more favourable in terms of causing damage to the target, than if no information had been received at all. Communication with the projectile can be adapted based on the circumstances and can, in its simplest form, only include a signal to detonate. As an additional alternative, in the event the target seeker is unable to detect the target and it is not possible to communicate with the projectile (i.e. due to prohibited radio communication), the projectile can be set to detonate by calculating the target trajectory based on the information on the target location already received from the previous projectile. The previous projectile can communicate the target's relative location data, but also the absolute location data if the projectile is fitted with a positioning system. Furthermore, the projectile can assess the target's speed based on the location information. Subsequent projectiles can make assumptions about the target's trajectory based on an estimation of the target's location and speed. Therefore, an optimal impact point for the detonation can be calculated based on this estimation of the target's trajectory. Even if the seeker is unable to detect a target and the projectile detonates based on an optimal impact point, the subsequent projectile has still received the target location. Therefore, it may have changed its course to a position that is closer to the target, and as such it may be in a position that is more favourable in terms of causing damage to the target, than if no information had been received at all.
[0034] Which one of the three different modes that will generate the signal for the projectile to detonate is determined in step 8, Detecting a target/external command/calculated trajectory. When a decision has been made to detonate the projectile, the subsequent projectile can send an updated position, measured or calculated, of the target's location as described in step 9, Communication to subsequent projectiles, carried out in the same way as in step 4. Whereby step 10, Projectile detonation, is carried out in the same way as in step 5. In the first embodiment, where the projectiles are launched using a time slot, the subsequent projectiles will also detonate automatically at the end of the time limit if no target has been detected. Any additional subsequent projectiles will repeat this procedure from step 6.
[0035] An artillery-based anti-aircraft defence system (20), as described in
[0036]
[0037]
[0038]
[0039] The projectile is also fitted with control devices, such as fins (54), or other means of control, and a servo (56) or a different actuator to control the fins or other means of control. A processing unit (58), such as a microprocessor, receives information from the sensor (52), and estimates possible guidance laws, which the processor communicates to the servo (56), that in turn controls the fins (54) to move the projectile (50). The processor (58) also communicates with a communication unit (60) in order to transmit signals to the subsequent projectiles.
[0040] The communication unit (60) can also receive information from an external transmitter, i.e. information to detonate the projectile at a specific time, or information on the target's position, transmitted from the projectiles in front. Furthermore, the projectile (50) includes a warhead (62). The sensor (52) can be provided with a device that controls the sensitivity of the sensor, such as directional sensitivity, i.e. by controlling the lobe of an antenna. This can improve the sensitivity in a specific area, i.e. in an area where it's assessed that the target will pass.
[0041]
[0042] The first projectile (201) detonates at the end of the time limit. The subsequent projectiles (202, 203 and 204) are programmed or otherwise informed of the initial projectile's time slot. As the initial projectile (201) automatically detonates at the end of the time limit, the subsequent projectiles change their course, as the current trajectory is not within sufficient proximity to detect the target. Some time after the initial projectile's (201) detonation, the subsequent projectiles (202, 203 and 204) have moved into their new trajectories. Preferably, the subsequent projectiles will spread out to increase the probability that one of them will detect the target. Different algorithms can be used to improve the possibility of detection, depending on the current situation regarding the assumed target, distance to target, type of projectile, etc.
[0043] The invention is not limited to the specific embodiments described, but can be varied in different ways within the scope of the claims.
[0044] It is understood that the number of sensors, launching device, or systems of elements and details included in the method of fire control against targets have to be adapted to the weapon systems, platforms and other design characteristics currently available.
[0045] It is also understood that the method of fire control against targets, as described above, can be applied to virtually any guided vessel or system, including aircrafts, unmanned aircrafts and missiles.
[0046] The invention is not limited to a certain form of target, but can be used for various target types, such as surface targets or air targets.
[0047] Furthermore, it can use all forms of projectiles, including grenades, explosive grenades, missiles and rockets.
[0048] The invention is also not limited to a certain number of projectiles or targets, but can be adapted to the number of target objects or projectiles currently available.