CN212538971U - Semi-closed acoustoelectric positioning target scoring system - Google Patents

Semi-closed acoustoelectric positioning target scoring system Download PDF

Info

Publication number
CN212538971U
CN212538971U CN202020822316.XU CN202020822316U CN212538971U CN 212538971 U CN212538971 U CN 212538971U CN 202020822316 U CN202020822316 U CN 202020822316U CN 212538971 U CN212538971 U CN 212538971U
Authority
CN
China
Prior art keywords
shock wave
target
semi
sensor
closed
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.)
Active
Application number
CN202020822316.XU
Other languages
Chinese (zh)
Inventor
张劲松
朱英勋
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Beijing Ying Xiang Orient Technology Co ltd
Original Assignee
Beijing Ying Xiang Orient Technology Co ltd
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Beijing Ying Xiang Orient Technology Co ltd filed Critical Beijing Ying Xiang Orient Technology Co ltd
Priority to CN202020822316.XU priority Critical patent/CN212538971U/en
Application granted granted Critical
Publication of CN212538971U publication Critical patent/CN212538971U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Aiming, Guidance, Guns With A Light Source, Armor, Camouflage, And Targets (AREA)

Abstract

The utility model discloses a semi-closed acoustoelectric positioning target-reporting system, which consists of an EVA target surface, a plastic target rod, a shock wave sensor, a sensor bracket, a temperature sensor, a semi-closed shock wave cover, a shock wave cover slot, a power supply electric cabin, a target drone base, a communication radio station, a USB interface line and a display control computer; three shock wave sensors and a temperature sensor which are horizontally arranged are arranged on the sensor bracket, the sensing plane of the shock wave sensor is right opposite to the center of the target surface, and the center positions of the sensing planes are on the same straight line; the semi-closed shock wave cover is formed by bonding EVA materials, and the semi-closed shock wave cover with an opening at the upper part can block ballistic shock wave signals. The utility model discloses semi-enclosed sound electricity target scoring system had both had open sound electricity location target surface consumptive material advantage with low costs, possessed again and carried out the ability of accurate target scoring to low-speed shots such as pistols, still had whole light in weight simultaneously, easily changed advantages such as target surface, both can be used for precision shooting training, also can be used for using shooting training.

Description

Semi-closed acoustoelectric positioning target scoring system
Technical Field
The utility model belongs to the technical field of automatic target scoring system, in particular to semi-enclosed sound electric location target scoring system.
Background
1) Background of the invention
The precision target scoring technology mainly comprises a laser receiving and transmitting array, an image recognition technology and an acoustoelectric positioning technology, wherein the laser receiving and transmitting array technology has high cost and higher requirements on the use environment, is generally used for shot characteristic detection of a professional target range and is not used for training; the image recognition technology is mainly used in indoor constant environment and cannot recognize repeated single holes; the acoustoelectric positioning technology has the advantages of strong environmental adaptability, high precision, recognizable heavy holes and the like, and is most applied to actual army training at present. The acoustoelectric positioning target scoring technology mainly comprises an open type and a closed type.
2) Open acoustoelectric positioning target-scoring technology
The open type acoustoelectric target scoring technology mainly utilizes the numerical relation between the time of shock waves generated when supersonic speed projectiles move and reaching a sound pressure sensor and the geometric distribution of the sensor to calculate the impact point position.
The geometric distribution of the sensor has various forms, such as a T type, a double triangle type, an L type and the like, and the T type is commonly used in China at present. The principle is shown in figure 1:
m is a point on the trajectory line, N is a target surface impact point, B is a sensor placement point, MN is perpendicular to NB, and NB is d in length. When the bullet velocity V is greater than the local sound velocity C, there is a point a that produces the shortest time required for the sound wave to reach point B. Point a is called the shock burst point. Distance of burst point from target surface:
Figure BDA0002495648590000011
the structure of the "T" layout open type acoustoelectric positioning precision target is shown in figure 2:
the mathematical model is as follows:
Figure BDA0002495648590000021
the impact point location can be resolved from the model.
3) Closed acoustoelectric positioning target-reporting technology
The closed acoustoelectric positioning precision target structure is shown in figure 3. A closed acoustic cavity is sleeved on the three horizontal array sensors. The main function of the acoustic cavity is to isolate the shock waves excited by the projectile on the trajectory outside the target surface, so that only the shock waves emitted when the projectile enters the cavity can be received by the sensor.
The distribution of the three horizontally arrayed sensors is shown in fig. 4. S1,S2,S3The positions of three sensors are arranged, the distance between the sensors is L, P (x, y) is the position of an impact point, and T1,T2,T3The absolute times of arrival of the shock waves from point P at the three sensors, respectively. When Δ T1=T2-T1,ΔT2=T3-T2When determined, P points should coincide with S at the same time2,S2And with S2,S3The two ellipses are positioned at the intersection point of the two ellipses in the sealed cavity, namely the impact point position.
The open type acoustoelectric positioning high-precision target adopts a multi-sensor space positioning algorithm to simultaneously calculate the coordinate, the speed, the angle and other information of a shot point, and according to the formula (1), when the speed of a shot is lower, the distance between the shot point and the target surface is xminThe shock wave signal propagated from the burst point to the sensor is relatively weak, and the shock wave intensity is not high due to the low speed of the shot, so that the measurement error is large, and the automatic target reporting device is difficult to adapt to automatic gun shooting in practical application.
The cavity type high-precision acoustoelectric positioning target adopts an acoustic cavity to isolate external interference, and a 3-sensor plane positioning algorithm is suitable for projectiles with various calibers, but has the defects that the cavity is heavy, the material consumption cost is high, and when the cavity type high-precision acoustoelectric positioning target is used as a tilting precision target, the tilting moment requirement on a target drone is very high, so that the target surface of a product on the market is lower than the ground, and the standing shooting requirement cannot be met. Furthermore, the requirement for target surface replacement by shooting cannot be met.
SUMMERY OF THE UTILITY MODEL
The utility model provides a 1) consumptive material such as target plate that exist in the present precision target scoring system with high costs 2) play down the precision target and play down moment big, target surface is low apart from ground height, 3) pistol, motion rifle pellet are little, the bullet speed is low, the problem that the target scoring deviation is big.
In order to realize the purpose, the utility model provides a technical scheme does: the semi-closed acoustoelectric positioning target-scoring system consists of an EVA target surface, a plastic target rod, a shock wave sensor, a sensor bracket, a temperature sensor, a semi-closed shock wave cover, a shock wave cover slot, a power supply electric cabin, a target machine base, a communication radio station, a USB interface line and a display control computer; the target drone base is used for bearing a target rod, a target surface, a power supply electric cabin, a shock wave cover slot and a sensor bracket; the laser cover slot is used for supporting the sensor bracket, is inserted with the laser cover and is connected with the power supply electric cabin; the sensor support is fixed inside the shock wave cover slot, three shock wave sensors and a temperature sensor which are horizontally arranged are arranged on the support, the sensing plane of each shock wave sensor is right opposite to the center of the target surface, and the center positions of the sensing planes are on the same straight line; the semi-closed shock wave cover is formed by bonding EVA materials, has an opening at the upper part, is inserted into the shock wave cover slot and can block ballistic shock wave signals; the shock wave sensor and the temperature sensor are connected with the signal processor through cables; the signal processor collects the shot shock wave signal, calculates the shot landing coordinates through signal processing and positioning algorithms, transmits the coordinate information to the communication radio station through a wireless link by the communication module, and transmits the coordinate information to the display control computer through a USB interface line of the communication radio station; the display control computer runs display control software and can display, prompt by voice, store, count and print the impact point information.
Preferably, the target drone base is formed by welding arc-drawing square steel, and the shock wave cover slot is formed by bending and welding stainless steel iron plates.
Preferably, the electric power supply cabin is a sealed metal shell formed by bending and welding stainless steel plates.
Preferably, the semi-closed shock wave cover is positioned below the target surface, and the target surface is supported by a plastic target rod and can bear penetration of bullets.
Preferably, the semi-closed laser cover is made of elastic materials such as EVA and the like, and the bullet hole can be contracted after the bullet is hit.
The utility model discloses semi-enclosed sound electricity target scoring system had both had open sound electricity location target surface consumptive material advantage with low costs, possessed again and carried out the ability of accurate target scoring to low-speed shots such as pistols, still had whole light in weight simultaneously, easily changed advantages such as target surface, both can be used for precision shooting training, also can be used for using shooting training.
Drawings
Fig. 1 is a diagram of a ballistic model of an open acoustic-electric target-reporting technique.
FIG. 2 is a diagram of a "T" layout high precision acousto-electric positioning precision target junction.
FIG. 3 is a block diagram of an enclosed electro-acoustic positioning accuracy target.
FIG. 4 is a sensor layout of a sealed acoustic-electric positioning accuracy target.
Fig. 5 is a schematic structural diagram of a semi-closed acoustoelectric positioning target scoring system.
Fig. 6 is a component diagram of a semi-enclosed acousto-electric localization target scoring system.
Fig. 7 is a diagram of a ballistic model of the present invention.
Figure 8 is a diagram of an increase laser mask blocking a burst point shock signal.
Fig. 9 is a schematic diagram of the target-scoring of the semi-enclosed acousto-electric target-scoring system.
Fig. 10 is a system work flow diagram.
In the figure: 11-EVA target surface, 12-shock wave sensor, 13-temperature sensor, 14-shock wave cover slot, 15-target machine base, 16-power supply electric cabin, 17-sensor support, 18-semi-closed shock wave cover and 19-plastic target rod.
Detailed Description
First, system composition and structural function
As shown in figure 5, the semi-closed acoustoelectric positioning target scoring system is mainly used for shooting training of direct aiming light arms in indoor and outdoor shooting ranges and is suitable for various firearms such as pistols, automatic rifles, sniper rifles, light guns and the like with the bullet diameter of less than or equal to 12.7mm and the bullet speed of less than or equal to 1000 m/s.
The system consists of an EVA target surface, a plastic target rod, a shock wave sensor, a sensor bracket, a temperature sensor, a semi-closed shock wave cover, a shock wave cover slot, a power supply electric cabin (containing a signal processor, a communication module and a lithium polymer battery), a target machine base, a communication radio station, a USB interface line and a display control computer. The target drone base is formed by welding arc-drawing square steel and is used for bearing a target rod, a target surface, a power supply electric cabin, a shock wave cover slot and a sensor bracket. The shock wave cover slot is formed by bending and welding a stainless steel iron plate and is used for supporting the sensor bracket, inserting the shock wave cover and connecting the power supply electric cabin. The sensor support is fixed inside the shock wave cover slot, three shock wave sensors and a temperature sensor which are horizontally arranged are arranged on the support, the sensing plane of each shock wave sensor is right opposite to the center of the target surface, and the center positions of the sensing planes are on the same straight line. The semi-closed shock wave cover is formed by bonding EVA materials, has an upper opening, is inserted into the shock wave cover slot and can block ballistic shock wave signals. The electric power supply cabin is a sealed metal shell formed by bending and welding stainless steel plates, the lower part of a shock wave cover slot is installed through screws, a signal processor, a communication module and a lithium polymer battery are installed in the electric power supply cabin, and a shock wave sensor and a temperature sensor are connected with the signal processor through cables. The signal processor collects the shot shock wave signal, calculates the shot landing coordinates through signal processing and positioning algorithms, transmits the coordinate information to the communication radio station through a wireless link by the communication module, and transmits the coordinate information to the display control computer through a USB interface line of the communication radio station. The display control computer runs display control software and can display, prompt by voice, store, count and print the impact point information.
Second, description of target-reporting principle
The supersonic projectile on the ballistic line continuously impacts and compresses air to generate shock waves in the advancing process, and a point sound source moving at supersonic speed is formed. In fig. 7, N is a target surface impact point, a trajectory line MN is perpendicular to the target surface, B is a sensor placement point, and is located right below the target surface and in the same plane as the target surface, and a distance d from the target surface impact point N. According to the ballistic model, there is a point a on the ballistic line, so that the shock wave emitted by point a reaches the sensor first. A is called the burst point of the projectile, and the minimum value of the point A reaching the target surface is as follows:
Figure BDA0002495648590000051
in the above formula, the slower the bullet velocity V is, xminThe larger the AB distance is, so that the attenuation of the shock wave signal reaching the point B from the point A is increased, the quality of the signal received by the sensor is reduced, and the target scoring accuracy is influenced.
In order to increase the signal receiving intensity of the shock wave sensor, the sensor is covered by a semi-closed cover, so that shock waves except the part right above the target surface on the ballistic line are blocked from being transmitted into the sensor, as shown in fig. 8.
According to the principle, a semi-open type acoustoelectric positioning precision target scoring system is designed, as shown in fig. 9, a sensor support is covered by a shock wave cover with an opening on the upper surface, and the sensor only receives shock wave signals from the position right above the sensor. Suppose a sensor S1、S2、S3Arranged horizontally in a line with S2Is taken as the origin point of the image,
Figure BDA0002495648590000052
in the positive direction of the X-axis, perpendicular to
Figure BDA0002495648590000053
Upward is the positive direction of the Y axis, a rectangular coordinate system is established, S1Has the coordinates of (-L, 0), S3Is (L, 0), the coordinates of the impact point P directly above the sensor is x, y, and the local sound velocity is C. The shock signal from P arrives at S1、S2、S3Respectively at a time of T1、T2、T3Then there is
(x+L)2+y2=(T1C)2=[T2C+(T1-T2)C]2=(T2C+ΔT1C)2 (1)
x2+y2=(T2C)2 (2)
(x-L)2+y2=(T3C)2=[T2C+(T3-T2)C]2=(T2C+ΔT2C)2 (3)
Wherein Δ T1=T1-T2,ΔT2=T3-T2And can be measured by a sensor. The local sound velocity C is calculated from an empirical formula according to the temperature value. Three equations, x, y, T, of the formulae (1), (2) and (3)2Three quantities are unknowns, from which the values of the P-point coordinates x, y can be calculated.
Third, target reporting workflow
After receiving shock wave signals, the three shock wave sensors respectively enter a first-stage amplifier for amplification, enter a second-stage amplifier for amplification after being filtered by a filter, and then enter a comparator to form digital pulse signals which are collected by an FPGA signal processor. And timing the digital pulse signals output by the three comparators in the FPGA signal processor to obtain delta T1 and delta T2. The signal processor transmits delta T1 and delta T2 to the controller by using a serial interface, the controller performs calculation by combining the acquired numerical value of the temperature sensor to obtain coordinate values x and y, the coordinate values x and y are wirelessly transmitted to a main control end communication radio station through a communication module, and the impact point information is stored, counted, displayed, printed, reported by voice and the like through display control software of a main control computer.
Semi-enclosed sound and electricity newspaper target system has open sound and electricity location target surface consumptive material advantage with low costs promptly, possesses the ability of carrying out accurate newspaper target to low-speed shots such as pistol again, still has whole light in weight simultaneously, easily changes advantages such as target surface, can be used for precision shooting training, also can be used to the application shooting training.
The target scoring device can be arranged on movement mechanisms such as lifting, rotating, lifting, rail cars, self-seeking cars and the like, and all target scoring systems arranged on the device belong to the protection range.
Finally, it should be noted that: although the present invention has been described in detail with reference to the foregoing embodiments, it will be apparent to those skilled in the art that modifications may be made to the embodiments described in the foregoing embodiments, or equivalents may be substituted for elements thereof. Any modification, equivalent replacement, or improvement made within the spirit and principle of the present invention should be included in the protection scope of the present invention.

Claims (5)

1. The semi-closed acoustoelectric positioning target-scoring system is characterized by consisting of an EVA target surface, a plastic target rod, a shock wave sensor, a sensor bracket, a temperature sensor, a semi-closed shock wave cover, a shock wave cover slot, a power supply electric cabin, a target drone base, a communication radio station, a USB interface line and a display control computer; the target drone base is used for bearing a target rod, a target surface, a power supply electric cabin, a shock wave cover slot and a sensor bracket; the laser cover slot is used for supporting the sensor bracket, is inserted with the laser cover and is connected with the power supply electric cabin; the sensor support is fixed inside the shock wave cover slot, three shock wave sensors and a temperature sensor which are horizontally arranged are arranged on the support, the sensing plane of each shock wave sensor is right opposite to the center of the target surface, and the center positions of the sensing planes are on the same straight line; the semi-closed shock wave cover is formed by bonding EVA materials, has an opening at the upper part, is inserted into the shock wave cover slot and can block ballistic shock wave signals; the shock wave sensor and the temperature sensor are connected with the signal processor through cables; the signal processor collects the shot shock wave signal, calculates the shot landing coordinates through signal processing and positioning algorithms, transmits the coordinate information to the communication radio station through a wireless link by the communication module, and transmits the coordinate information to the display control computer through a USB interface line of the communication radio station; the display control computer runs display control software and can display, prompt by voice, store, count and print the impact point information.
2. The semi-enclosed acousto-electric positioning target-scoring system according to claim 1, characterized in that the target drone pedestal is welded by arc-drawing square steel, and the shock wave shield slot is formed by bending and welding stainless steel plates.
3. The semi-enclosed acousto-electric positioning target scoring system according to claim 1, characterized in that the electric power supply compartment is a sealed metal casing formed by bending and welding stainless steel plates.
4. The semi-enclosed acousto-electric locating target scoring system according to claim 1, characterized in that the semi-enclosed laser shield is located below the target surface, which is supported by a plastic target rod and can withstand penetration of bullets.
5. The semi-enclosed acousto-electric location target scoring system according to claim 1, characterized in that the semi-enclosed laser cover is made of EVA elastic material, and the bullet hole can be contracted after the bullet is hit.
CN202020822316.XU 2020-05-18 2020-05-18 Semi-closed acoustoelectric positioning target scoring system Active CN212538971U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202020822316.XU CN212538971U (en) 2020-05-18 2020-05-18 Semi-closed acoustoelectric positioning target scoring system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202020822316.XU CN212538971U (en) 2020-05-18 2020-05-18 Semi-closed acoustoelectric positioning target scoring system

Publications (1)

Publication Number Publication Date
CN212538971U true CN212538971U (en) 2021-02-12

Family

ID=74542436

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202020822316.XU Active CN212538971U (en) 2020-05-18 2020-05-18 Semi-closed acoustoelectric positioning target scoring system

Country Status (1)

Country Link
CN (1) CN212538971U (en)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111609765A (en) * 2020-05-18 2020-09-01 北京盈想东方科技股份有限公司 Semi-closed acoustoelectric positioning target scoring system
CN113587732A (en) * 2021-08-14 2021-11-02 泰泷实业(河北)有限公司 Shock wave detection circuit of multifunctional target drone
CN113587733A (en) * 2021-08-14 2021-11-02 泰泷实业(河北)有限公司 Multifunctional target drone

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111609765A (en) * 2020-05-18 2020-09-01 北京盈想东方科技股份有限公司 Semi-closed acoustoelectric positioning target scoring system
CN113587732A (en) * 2021-08-14 2021-11-02 泰泷实业(河北)有限公司 Shock wave detection circuit of multifunctional target drone
CN113587733A (en) * 2021-08-14 2021-11-02 泰泷实业(河北)有限公司 Multifunctional target drone

Similar Documents

Publication Publication Date Title
CN212538971U (en) Semi-closed acoustoelectric positioning target scoring system
US10866071B2 (en) Shooting training system
US20140367918A1 (en) Mason Target System
US6109614A (en) Remote sensing apparatus of supersonic projectile
US4514621A (en) Firing range
US20090102129A1 (en) Shooting target system for automatic determination of the point of impact
US20160091285A1 (en) Portable, wireless electronic target devices, systems and methods
US20150123346A1 (en) Mason Target System
CN101839677B (en) Acousto-optic automatic target reporting system
CN110044209B (en) Digital simulation target aiming training system and training method
CN203785557U (en) Automatic shot result reporting device for light weapon shooting
CN112378295A (en) double-T-shaped array shock wave projectile landing point positioning method
CN102435106B (en) Projectile shock wave width-based shot indicating system
CN104713422A (en) T-shaped piezoelectric target scoring device
CN201449216U (en) Sighting telescope reticule with distance measuring function
CN105004224A (en) Laser electronic target system adopting cross, right-angled and non-overlapped laser screens
RU2005127700A (en) METHOD FOR CONTROLLED CONTROLLED SHOT WITH LASER SEMIACTIVE Homing head
CN111609765A (en) Semi-closed acoustoelectric positioning target scoring system
CN112162239A (en) Horizontal gate type array-based impact point positioning method
CN111637797A (en) Automatic target-reporting device and method for artillery live firing
CN212870924U (en) Automatic target-scoring target for firearm shooting
CN205175231U (en) Automatic target device that reports of light arms shooting
CN205049052U (en) Alternately laser curtain laser electron target system is underlaped at right angle
CN211717284U (en) Open type target scoring device based on sensor three-dimensional arrangement mode
CN214065865U (en) Shock wave shot positioning device of double-T-shaped arrangement

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant