Anti-tank rocket launcher simulator convenient to assemble

By designing a buffer device in the anti-tank bazooka simulator to absorb the recoil during the launch of the turret body, the problems of shell launch angle offset and simulator damage caused by excessive recoil are solved, and the stability and safety of the simulator are achieved.

CN119934892AInactive Publication Date: 2025-05-06ZHANGZHOU SHIHUI ELECTRONIC TECH CO LTD
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Patent Information

Application Number
CN202510222928.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-27
Publication Date
2025-05-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the simulation of shell launch, the existing anti-tank rocket launcher simulators will cause the shell launch angle to be offset due to excessive recoil, and excessive recoil will damage the internal structure and external components of the simulator.

Method used

An anti-tank bazooka simulator with a buffer device is designed. The buffer device includes a sliding sleeve, a connecting rod, a jacket and a spring. Through the sliding sleeve, the recoil force is absorbed when the turret is fired, and the impact of the recoil force on the simulator is reduced.

Benefits of technology

It effectively reduces the impact of recoil on the simulator, protects the internal structure and external components of the simulator, and ensures the stability and safety of the simulator.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an antitank rocket launcher simulator convenient to assemble, and relates to the technical field of antitank rocket launcher simulators, the antitank rocket launcher simulator convenient to assemble comprises a supporting column, a rotating sleeve is rotatably mounted at the top of the supporting column, a supporting table is rotatably mounted at the top of the rotating sleeve, and a supporting frame is rotatably mounted at the bottom of the supporting column; a clamping plate is rotatably installed at the top of the supporting table, a fort body is fixedly installed at the top of the clamping plate, a trigger is rotatably installed at the bottom of the fort body, a pressing key slidably penetrates through the inner wall of the supporting column, the square block is fixedly installed on the side, close to the rotating sleeve, of the pressing key, and a buffering device is further arranged at the top of the supporting column. The problems that the fort body is not completely fixed, blasting is simulated, the fort body is influenced, the fort body is possibly displaced or shaken in the launching process, the launching stability is influenced, and then the use safety of a simulator is influenced are avoided.
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Description

Technical Field

[0001] The invention relates to the technical field of anti-tank bazooka simulators, in particular to an anti-tank bazooka simulator which is easy to assemble. Background Art

[0002] Bazookas are powerful weapons, and live-fire training carries a high safety risk. Using simulators can avoid injuries caused by accidental live-fire firing and ensure the safety of trainees.

[0003] The patent with patent announcement number CN221781352U involves the technical field of anti-tank rocket launcher simulators, including a barrel and a firing grip. The barrel is provided with two cavities along its length direction. The front end cavity is a closed structure, and the rear end cavity is unilaterally conductive. Electromagnetic propulsion components are provided in both cavities. The electromagnetic propulsion components are composed of a magnetic coil and a magnetic pressure head slidably connected to the magnetic coil. The firing grip is used to trigger the action of the electromagnetic propulsion component. The technical advantages of this application are: by arranging two electromagnetic propulsion components in the barrel, it is possible to realize the simulation of bullet withdrawal during firing and the recoil force at the same time; by arranging the magnetic coil to cooperate with the magnetic pressure head, the axial push-out of the magnetic pressure head is realized during electric magnetization, and the device is reused by resetting the reset spring when not magnetized; by arranging an integrated limit protrusion and a latch in the bullet withdrawal cavity, two types of simulated bullet withdrawal, active and passive, are realized.

[0004] The above patent realizes two types of simulated bullet ejection methods, active and passive, by setting an integrated limiting protrusion and a latch in the ejection cavity. However, during the simulated artillery firing process, the operator may offset the firing angle of the artillery shell due to excessive recoil of the turret body, and the excessive recoil may impact the simulator, causing varying degrees of damage to the internal structure and external components. Summary of the invention

[0005] In view of the deficiencies in the prior art, the present invention provides an anti-tank bazooka simulator that is easy to assemble, thereby solving the problems raised in the above-mentioned background technology.

[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: an anti-tank rocket launcher simulator that is easy to assemble, comprising a support column, a rotating sleeve is rotatably installed on the top of the support column, a support platform is rotatably installed on the top of the rotating sleeve, a support frame is rotatably installed on the bottom of the support column, a clamp is rotatably installed on the top of the support platform, a turret body is fixedly installed on the top of the clamp, a trigger is rotatably installed on the bottom of the turret body, a push button is slidably penetrated through the inner wall of the support column, the square block is fixedly installed on the side of the push button close to the rotating sleeve, and a buffer device is also provided on the top of the support column; The buffer device includes a sliding sleeve, a No. 1 sleeve, a connecting rod and a No. 2 sleeve, the sliding sleeve is slidably installed on the inner wall of the splint, the connecting rod slides through the splint, the connecting rod is fixedly installed on the outer wall of the sliding sleeve, the No. 1 sleeve is fixedly installed on the side of the connecting rod away from the trigger, and the No. 2 sleeve is fixedly installed on the side of the connecting rod close to the trigger. After the splint is completely fixed to the turret body, the key will contact the inside of the circular hole to limit the splint, so as to avoid incomplete fixation of the turret body, which will affect the turret body during simulated firing, and may cause the turret body to be displaced or shaken during the firing process, affecting the stability of the firing, and further affecting the safe use of the simulator.

[0007] According to the above technical solution, the buffer device also includes a sliding plate, a push block, an insert key and a fixed key. The sliding plate is slidably installed on the outer wall of the splint, the push block is fixedly installed on the outer wall of the splint, the insert key is rotatably installed on the outer wall of the splint, a circular hole is opened on the outer wall of the splint, the insert key contacts the inner wall of the circular hole, the fixed key is slidably installed on the side of the splint close to the connecting rod, a circular groove is opened on the side of the connecting rod close to the fixed key, the fixed key matches the shape of the circular groove, when the limit of the connecting rod is released, the limit of the sliding sleeve will also be released, when the simulation starts, the sliding sleeve can absorb the recoil force of the turret body when it is fired, and the sliding sleeve absorbs the reaction force, which can effectively reduce the impact of the recoil on the simulator and protect the internal structure and external components of the simulator from damage.

[0008] According to the above technical scheme, a slope is provided on the side of the sliding plate close to the fixed key, and the sliding plate is provided with the slope to facilitate pushing the fixed key to move, the sliding plate is in contact with the push block, a No. 1 torsion spring is provided between the insertion key and the clamping plate, and the No. 1 torsion spring is provided to drive the insertion key back to its original position, a No. 1 spring is provided between the fixed key and the clamping plate, and the No. 1 spring is provided to drive the fixed key back to its original position, a No. 2 spring is provided between the sliding plate and the clamping plate, and the No. 2 spring is provided to drive the sliding plate back to its original position, a No. 3 spring is provided between the connecting rod and the clamping plate, and the No. 3 spring is provided to drive the connecting rod back to its original position, a No. 4 spring is provided between the sliding sleeve and the clamping plate, and the No. 4 spring is provided to drive the sliding sleeve back to its original position, a fixed groove is provided on the outer wall of the rotating sleeve, and the square block is in contact with the inner wall of the fixed groove.

[0009] According to the above technical solution, a supporting device for strengthening the support of the turret body and a protective device for clamping the trigger are also provided at the bottom of the supporting column. The supporting device includes a sliding rod, a collar, a push plate, a rotating rod, a supporting leg, an inner rod and a supporting plate. The collar is sleeved on the circumferential surface of the supporting column, one end of the sliding rod is slidably mounted on the side of the supporting platform close to the trigger, the other end of the sliding rod is rotatably mounted on the circumferential surface of the collar, the push plate is slidably mounted on the circumferential surface of the supporting column, the rotating rod is rotatably mounted on the circumferential surface of the supporting column, the supporting leg is rotatably mounted on the bottom of the supporting column, and the inner rod is slidably mounted on the circumferential surface of the supporting platform. The support plate is rotatably installed on the inner wall of the support leg, and the support plate is rotatably installed on the bottom of the support leg. A limit groove is arranged on the outer wall of the support leg. A limit block is fixedly installed on the side of the inner rod close to the limit groove. The limit block is in contact with the inner wall of the limit groove. The support plate will be in contact with the ground to strengthen the support for the turret body to prevent the operator from not holding the turret body in the standard posture, resulting in unstable body posture, affecting the balance and stability of the entire simulation process. The operator may lose control of the turret body, increasing the difficulty of the training process, and may also cause the simulator itself to be unstable and cause the supporting device to tip over.

[0010] According to the above technical scheme, the supporting device also includes a fixing rod, a supporting rod, a pressure rod and an inserting rod, the fixing rod is fixedly mounted on the circumferential surface of the rotating sleeve, the supporting rod is slidably mounted on the inner wall of the fixing rod, the pressure rod is fixedly mounted on the top of the collar, the inserting rod is slidably mounted on the side of the fixing rod close to the pressure rod, the outer wall of the fixing rod is provided with a square groove, the side of the supporting rod close to the square groove is fixedly mounted with a fixing block, the fixing block contacts the inner wall of the square groove, the inserting rod slides through the fixing rod, the side of the supporting rod close to the inserting rod is provided with a socket, the inserting rod contacts the inner wall of the socket, the supporting rod will be pushed by the No. 6 spring to move in the direction away from the fixing rod, then the supporting rod will reinforce the supporting platform to prevent the operator from not holding the turret body in the standard posture, causing the recoil of the turret body to be too large to push the supporting platform to rotate, and the rotation of the supporting platform will cause the original target to shift, this error will cause the rocket to deviate, especially when shooting at a long distance, the accumulation of errors may cause the ammunition to completely miss the target, thereby affecting the stability and accuracy of the trajectory.

[0011] According to the above technical solution, the bottom of the limit block is provided with an inclined surface, and the inclined surface is provided at the bottom of the limit block to control the inner rod to move unidirectionally in the direction away from the supporting leg. The top of the fixed block is set as an inclined surface, and the top of the fixed block is set as an inclined surface to control the support rod to move unidirectionally toward the support platform. The insertion rod is set as an inclined surface close to the pressure rod. A No. 5 spring is provided between the supporting leg and the inner rod. The No. 5 spring is provided to drive the inner rod to move in the direction away from the supporting leg. A No. 6 spring is provided between the support rod and the fixed rod. The No. 6 spring is provided to drive the support rod toward the direction of the support platform. A No. 7 spring is provided between the insertion rod and the fixed rod. No. spring, a No. 7 spring is provided to drive the insertion rod back to its original position, a No. 8 spring is provided between the push plate and the support column, and a No. 8 spring is provided to drive the push plate back to its original position, a key is fixedly installed on the side of the rotating rod close to the support leg, and the key slides through the support leg, and a slot is provided on the side of the inner rod close to the key, and the key contacts the inner wall of the slot, a No. 2 torsion spring is provided between the rotating rod and the support column, and a No. 2 torsion spring is provided to drive the rotating rod back to its original position, a No. 3 torsion spring is provided between the support leg and the support column, and a No. 3 torsion spring is provided to drive the support leg to move away from the support column.

[0012] According to the above technical solution, the protection device includes a fixed frame, a fixed plate, a protrusion, a No. 1 hydraulic device, a sliding block, a sliding rod, an elastic telescopic block, a No. 2 hydraulic device and a blocking rod. The fixed frame is fixedly installed on the circumferential surface of the support column, the fixed plate is fixedly installed on the side of the push plate away from the support column, the protrusion is fixedly installed on the side of the push plate close to the fixed frame, the No. 1 hydraulic device is fixedly installed on the side of the fixed frame away from the support column, the sliding block is slidably installed on the top of the fixed frame, the elastic telescopic block is slidably installed on the inner wall of the fixed frame, the sliding rod is fixedly installed on the top of the sliding block, and the movable end of the No. 1 hydraulic device is fixedly installed on the top of the sliding rod The No. 2 hydraulic device is fixedly installed at the bottom of the No. 2 jacket, and the baffle rod is fixedly installed at the movable end of the No. 2 hydraulic device. The movement of the convex block will contact the elastic telescopic block, thereby reducing the reset speed of the fixed plate again. When the reset speed of the fixed plate is reduced, the reset speed of the sliding block will be reduced. When the reset speed of the sliding block is reduced, the reset speeds of the No. 1 hydraulic device and the No. 2 hydraulic device will increase, and the limiting time of the baffle rod on the trigger will increase, thereby preventing the operator from having a "fright reaction" after being frightened, such as the body unconsciously making actions such as avoiding, retreating, missing the target, etc. If the simulator is triggered again at this time, the operation may be inaccurate, resulting in damage to the training effect.

[0013] According to the above technical solution, the No. 1 hydraulic device is connected to the No. 2 hydraulic device through a hose, the side of the fixed plate close to the sliding block is set as an inclined surface, the fixed plate is provided with an inclined surface to facilitate the sliding block to push the fixed plate to move, and a No. 9 spring is provided between the sliding block and the fixed frame, and the spring is provided to drive the sliding block back to its original position.

[0014] The present invention provides an anti-tank bazooka simulator which is easy to assemble and has the following beneficial effects: (1) In the present invention, the movement of the connecting rod will drive the movement of the second clamp. The movement of the first and second clamps will strengthen the fixation of the turret body. After the clamp is completely fixed to the turret body, the key will contact the inside of the circular hole to limit the clamp, so as to avoid the turret body being incompletely fixed, which will affect the turret body during the simulated firing. It may cause the turret body to shift or shake during the firing process, affecting the stability of the firing and further affecting the safety of the simulator. When the limit of the connecting rod is released, the limit of the sliding sleeve will also be released. When the simulation starts, the sliding sleeve can absorb the recoil force of the turret body during firing. By absorbing the reaction force through the sliding sleeve, the impact of the recoil on the simulator can be effectively reduced, protecting the internal structure and external components of the simulator from damage.

[0015] (2) In this invention, when the key loses contact with the inner wall of the slot, the limit of the inner rod will be released, and the No. 5 spring will push the inner rod to move away from the support leg, and the inner rod will push the support plate to move toward the ground. The support plate will contact the ground to strengthen the support for the turret body, thereby preventing the operator from failing to hold the turret body in the standard posture, resulting in unstable body posture, affecting the balance and stability during the entire simulation process, and the operator may lose control of the turret body, increasing the difficulty of the training process, and may also cause the simulator itself to become unstable and cause the support device to topple over.

[0016] (3) In this invention, the support rod will be pushed by the No. 6 spring to move away from the fixed rod, and the support rod will reinforce the support platform to prevent the operator from not holding the turret body in the standard posture, causing the turret body to have excessive recoil and push the support platform to rotate. The rotation of the support platform will cause the original target to shift. This error will cause the rocket to miss the target, especially when shooting at long distances. The accumulation of errors may cause the ammunition to completely miss the target, thereby affecting the stability and accuracy of the trajectory.

[0017] (4) In this invention, the movement of the movable end of the No. 2 hydraulic device will pull the blocking rod upward, and the upward movement of the blocking rod will contact the trigger, preventing the operator from pressing the trigger, thereby preventing the operator from not holding the turret body in the standard posture, causing the turret body to move backward quickly and frighten the operator, which may cause the operator to accidentally injure himself or others during operation. Especially in the absence of complete safety measures, the simulator may be mistakenly pointed in the wrong direction, and the operation of the simulator may even become out of control.

[0018] (5) In this invention, the movement of the convex block will contact the elastic telescopic block, which will reduce the reset speed of the fixed plate again. When the reset speed of the fixed plate is reduced, the reset speed of the sliding block will be reduced. When the reset speed of the sliding block is reduced, the reset speeds of the No. 1 hydraulic device and the No. 2 hydraulic device will increase, and the limit time of the lever on the trigger will increase, thereby preventing the operator from having a "fright reaction" after being frightened, such as unconsciously avoiding, retreating, missing the target, etc. If the simulator is triggered again at this time, the operation may be inaccurate, resulting in damage to the training effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the position structure of the sliding sleeve and the connecting rod of the present invention; Figure 3 For the present invention Figure 2 The enlarged structural diagram of part A in the middle; Figure 4 This is a schematic diagram of the position structure of the support column and the rotating sleeve of the present invention; Figure 5 It is a schematic diagram of the position structure of the slide bar and the collar of the present invention; Figure 6 It is a schematic diagram of the position structure of the push plate and the rotating rod of the present invention; Figure 7 This is a schematic diagram of the position structure of the push plate and the fixed plate of the present invention; Figure 8 For the present invention Figure 7 The enlarged structural diagram of part B in the middle; Fig. 9 This is a schematic diagram of the position structure of the sliding rod and the elastic telescopic block of the present invention; Fig.10 It is a schematic diagram of the position structure of the connecting rod and the second jacket of the present invention; Fig.11 For the present invention Fig.10 Schematic diagram of the enlarged structure of part C in the middle.

[0020] In the figure: 1. support column; 2. support platform; 3. support frame; 4. clamping plate; 5. turret body; 6. trigger; 7. push button; 8. square block; 9. rotating sleeve; 10. sliding sleeve; 11. No. 1 clamping sleeve; 12. connecting rod; 13. No. 2 clamping sleeve; 14. sliding plate; 15. push block; 16. insert key; 17. fixed key; 20. sliding rod; 21. collar; 22. push plate; 23. rotating rod; 24. supporting leg; 25. inner rod; 26. supporting plate; 27. fixed rod; 28. supporting rod; 29. ​​pressure rod; 291. insert rod; 30. fixed frame; 31. fixed plate; 32. protrusion; 33. No. 1 hydraulic device; 34. sliding block; 35. sliding rod; 36. elastic telescopic block; 37. No. 2 hydraulic device; 38. stop rod. DETAILED DESCRIPTION

[0021] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0022] See also Figure 1-Figure 11 One embodiment of the present invention is: an anti-tank rocket launcher simulator that is easy to assemble, comprising a support column 1, a rotating sleeve 9 is rotatably installed on the top of the support column 1, a support platform 2 is rotatably installed on the top of the rotating sleeve 9, a support frame 3 is rotatably installed on the bottom of the support column 1, a clamping plate 4 is rotatably installed on the top of the support platform 2, a turret body 5 is fixedly installed on the top of the clamping plate 4, a trigger 6 is rotatably installed on the bottom of the turret body 5, a push button 7 is slidably penetrated through the inner wall of the support column 1, a square block 8 is fixedly installed on the side of the push button 7 close to the rotating sleeve 9, and a buffer device is also provided on the top of the support column 1; The buffer device includes a sliding sleeve 10, a No. 1 jacket 11, a connecting rod 12 and a No. 2 jacket 13. The sliding sleeve 10 is slidably installed on the inner wall of the splint 4, the connecting rod 12 slides through the splint 4, and the connecting rod 12 is fixedly installed on the outer wall of the sliding sleeve 10. The No. 1 jacket 11 is fixedly installed on the side of the connecting rod 12 away from the trigger 6, and the No. 2 jacket 13 is fixedly installed on the side of the connecting rod 12 close to the trigger 6. After the splint 4 is completely fixed to the turret body 5, the key 16 will contact the inside of the circular hole to limit the splint 4, so as to avoid incomplete fixation of the turret body 5, which will affect the turret body 5 during simulated firing, and may cause the turret body 5 to be displaced or shaken during the firing process, affecting the stability of the firing, and further affecting the safety of the simulator.

[0023] The buffer device also includes a sliding plate 14, a push block 15, a key 16 and a fixed key 17. The sliding plate 14 is slidably installed on the outer wall of the splint 4, the push block 15 is fixedly installed on the outer wall of the splint 4, the key 16 is rotatably installed on the outer wall of the splint 4, a circular hole is opened on the outer wall of the splint 4, the key 16 contacts the inner wall of the circular hole, and the fixed key 17 is slidably installed on the side of the splint 4 close to the connecting rod 12. A circular groove is opened on the side of the connecting rod 12 close to the fixed key 17, and the fixed key 17 matches the shape of the circular groove. When the limit of the connecting rod 12 is released, the limit of the sliding sleeve 10 will also be released. When the simulation starts, the sliding sleeve 10 can absorb the recoil force when the turret body 5 is fired. By absorbing the reaction force by the sliding sleeve 10, the impact of the recoil on the simulator can be effectively reduced, and the internal structure and external components of the simulator can be protected from damage.

[0024] A slope is provided on the side of the sliding plate 14 close to the fixed key 17. The slope is provided on the sliding plate 14 to facilitate the movement of the fixed key 17. The sliding plate 14 is in contact with the push block 15. A No. 1 torsion spring is provided between the insertion key 16 and the splint 4. The No. 1 torsion spring is provided to drive the insertion key 16 back to its original position. A No. 1 spring is provided between the fixed key 17 and the splint 4. The No. 1 spring is provided to drive the fixed key 17 back to its original position. A No. 2 spring is provided between the sliding plate 14 and the splint 4. The No. 2 spring is provided to return the sliding plate 14 to its original position. A No. 3 spring is provided between the connecting rod 12 and the splint 4. The No. 3 spring is provided to drive the connecting rod 12 back to its original position. A No. 4 spring is provided between the sliding sleeve 10 and the splint 4. The No. 4 spring is provided to drive the sliding sleeve 10 back to its original position. A fixed groove is provided on the outer wall of the rotating sleeve 9, and the square block 8 is in contact with the inner wall of the fixed groove.

[0025] When this embodiment is working: when simulating the use of an anti-tank rocket launcher, the support frame 3 needs to be opened in an open place and placed on the ground. After the placement is completed, the turret body 5 is attached to the support platform 2. After the turret body 5 is placed, the clamping plate 4 is rotated to fix the turret body 5. After the turret body 5 is fixed, the button 7 can be pressed. When the button 7 is pressed, the square block 8 can be driven to move toward the inner wall of the support column 1. After the square block 8 moves, the rotating sleeve 9 can be rotated to adjust the aiming direction. After the adjustment is completed, the experimenter can perform a firing simulation. When the clamping plate 4 fixes the turret body 5, it may drive the connecting rod 12 to move. The movement of the connecting rod 12 will drive the No. 1 jacket 11 to move. The movement of the connecting rod 12 will drive the No. 2 jacket 13 to move. The movement of the No. 1 jacket 11 and the No. 2 jacket 13 will strengthen the fixation of the turret body 5. After the clamping plate 4 completely fixes the turret body 5, the key 16 will contact the inside of the circular hole to limit the clamping plate 4, so as to avoid incomplete fixation of the turret body 5 When simulating firing, the turret body 5 is affected, which may cause the turret body 5 to be displaced or shaken during the firing process, affecting the stability of the firing and further affecting the safety of the simulator. When the splint 4 fixes the turret body 5, it will drive the sliding plate 14 and the push block 15 to move relative to each other, so that the sliding plate 14 contacts the push block 15. After the splint 4 is completely fixed to the turret body 5, the push block 15 will push the sliding plate 14 to slide in the direction of the fixed key 17. The fixed key 17 will contact the inclined surface of the sliding plate 14. The sliding plate 14 will push the fixed key 17 to move away from the circular hole. The limit of the connecting rod 12 will be released. When the limit of the connecting rod 12 is released, the limit of the sliding sleeve 10 will also be released. When the simulation starts, the sliding sleeve 10 can absorb the recoil force of the turret body 5 when firing. The sliding sleeve 10 absorbs the reaction force and can effectively reduce the impact of the recoil on the simulator, thereby protecting the internal structure and external components of the simulator from damage.

[0026] See also Figure 1-Figure 11On the basis of the above embodiment, in another embodiment of the present invention, a supporting device for strengthening the support of the turret body 5 and a protective device for clamping the trigger 6 are further provided at the bottom of the support column 1. The supporting device includes a slide bar 20, a collar 21, a push plate 22, a rotating rod 23, a support leg 24, an inner rod 25 and a support plate 26. The collar 21 is sleeved on the circumferential surface of the support column 1, one end of the slide bar 20 is slidably mounted on the side of the support platform 2 close to the trigger 6, and the other end of the slide bar 20 is rotatably mounted on the circumferential surface of the collar 21, the push plate 22 is slidably mounted on the circumferential surface of the support column 1, the rotating rod 23 is rotatably mounted on the circumferential surface of the support column 1, and the support leg 24 is rotatably mounted Installed at the bottom of the support column 1, the inner rod 25 is slidably installed on the inner wall of the support leg 24, and the support plate 26 is rotatably installed at the bottom of the support leg 24. A limiting groove is provided on the outer wall of the support leg 24. A limiting block is fixedly installed on the side of the inner rod 25 close to the limiting groove. The limiting block contacts the inner wall of the limiting groove, and the support plate 26 will contact the ground to strengthen the support for the turret body 5, so as to prevent the operator from not holding the turret body 5 in the standard posture, resulting in unstable body posture, affecting the balance and stability of the entire simulation process, and the operator may lose control of the turret body 5, increasing the difficulty of the training process, and may also cause the simulator itself to be unstable and cause the supporting device to tip over.

[0027] The supporting device also includes a fixed rod 27, a support rod 28, a pressure rod 29 and an insertion rod 291. The fixed rod 27 is fixedly installed on the circumferential surface of the rotating sleeve 9, the support rod 28 is slidably installed on the inner wall of the fixed rod 27, the pressure rod 29 is fixedly installed on the top of the collar 21, and the insertion rod 291 is slidably installed on the side of the fixed rod 27 close to the pressure rod 29. A square groove is provided on the outer wall of the fixed rod 27, and a fixed block is fixedly installed on the side of the support rod 28 close to the square groove. The fixed block contacts the inner wall of the square groove, and the insertion rod 291 slides through the fixed rod 27. The support rod 28 is close to the side of the insertion rod 291. A socket is provided, and the insertion rod 291 contacts the inner wall of the socket. The support rod 28 will be pushed by the No. 6 spring to move in the direction away from the fixed rod 27, and the support rod 28 will reinforce the support platform 2 to prevent the operator from not holding the turret body 5 in the standard posture, causing the turret body 5 to have excessive recoil and push the support platform 2 to rotate. The rotation of the support platform 2 will cause the original target to shift. This error will cause the rocket to miss the target, especially when shooting at a long distance. The accumulation of errors may cause the ammunition to completely miss the target, thereby affecting the stability and accuracy of the trajectory.

[0028] The bottom of the limit block is provided with an inclined surface, and the inclined surface is provided at the bottom of the limit block to control the inner rod 25 to move unidirectionally in the direction away from the support leg 24. The top of the fixed block is set as an inclined surface, and the top of the fixed block is set as an inclined surface to control the support rod 28 to move unidirectionally toward the support platform 2. The insertion rod 291 is set as an inclined surface close to the pressure rod 29. A No. 5 spring is provided between the support leg 24 and the inner rod 25. The No. 5 spring is provided to drive the inner rod 25 to move in the direction away from the support leg 24. A No. 6 spring is provided between the support rod 28 and the fixed rod 27. The No. 6 spring is provided to drive the support rod 28 toward the direction of the support platform 2. A seven spring is provided between the insertion rod 291 and the fixed rod 27 No. spring, No. 7 spring is provided to drive the insertion rod 291 back to its original position, No. 8 spring is provided between the push plate 22 and the support column 1, and No. 8 spring is provided to drive the push plate 22 back to its original position, a key is fixedly installed on the side of the rotating rod 23 close to the support leg 24, and the key slides through the support leg 24, and a slot is provided on the side of the inner rod 25 close to the key, and the key contacts the inner wall of the slot, a No. 2 torsion spring is provided between the rotating rod 23 and the support column 1, and No. 2 torsion spring is provided to drive the rotating rod 23 back to its original position, a No. 3 torsion spring is provided between the support leg 24 and the support column 1, and No. 3 torsion spring is provided to drive the support leg 24 to move away from the support column 1.

[0029] The protective device includes a fixed frame 30, a fixed plate 31, a convex block 32, a No. 1 hydraulic device 33, a sliding block 34, a sliding rod 35, an elastic telescopic block 36, a No. 2 hydraulic device 37 and a blocking rod 38. The fixed frame 30 is fixedly mounted on the circumferential surface of the support column 1, the fixed plate 31 is fixedly mounted on the side of the push plate 22 away from the support column 1, the convex block 32 is fixedly mounted on the side of the push plate 22 close to the fixed frame 30, the No. 1 hydraulic device 33 is fixedly mounted on the side of the fixed frame 30 away from the support column 1, the sliding block 34 is slidably mounted on the top of the fixed frame 30, the elastic telescopic block 36 is slidably mounted on the inner wall of the fixed frame 30, the sliding rod 35 is fixedly mounted on the top of the sliding block 34, and the movable end of the No. 1 hydraulic device 33 is fixedly mounted on the sliding rod 3 5, the second hydraulic device 37 is fixedly installed at the bottom of the second jacket 13, and the stopper 38 is fixedly installed at the movable end of the second hydraulic device 37. The convex block 32 moves to contact the elastic telescopic block 36, and the reset speed of the fixed plate 31 is reduced again. When the reset speed of the fixed plate 31 is reduced, the reset speed of the sliding block 34 will be reduced. When the reset speed of the sliding block 34 is reduced, the reset speeds of the first hydraulic device 33 and the second hydraulic device 37 will increase, and the limiting time of the stopper 38 on the trigger 6 will increase, so as to avoid the operator from having a "fright reaction" after being frightened, such as unconsciously avoiding, retreating, missing the target, etc. If the simulator is triggered again at this time, the operation may be inaccurate, resulting in a loss of training effect.

[0030] The No. 1 hydraulic device 33 is connected to the No. 2 hydraulic device 37 through a hose. The side of the fixed plate 31 close to the sliding block 34 is set as an inclined surface. The fixed plate 31 is provided with an inclined surface to facilitate the sliding block 34 to push the fixed plate 31 to move. A No. 9 spring is provided between the sliding block 34 and the fixed frame 30. The spring is provided to drive the sliding block 34 back to its original position.

[0031] When the present embodiment is working, the experimenter needs to absorb part of the recoil force by contacting the body of the turret 5 with the body during the firing simulation, and the sliding sleeve 10 can absorb part of the recoil force to reduce the force on the experimenter. However, when the experimenter does not use the standard posture to contact the body of the turret 5, a large recoil force will act on the sliding sleeve 10 during the simulated firing, and the sliding sleeve 10 will slide backward greatly. When the sliding sleeve 10 moves greatly, it will contact the inclined surface of the slide rod 20, and the sliding sleeve 10 will press the slide rod 20 to move downward, and the downward movement of the slide rod 20 will push the sleeve 10 to move downward. The ring 21 slides downward, and the downward sliding of the ring 21 will push the push plate 22 to slide downward. The downward movement of the push plate 22 will push the rotating rod 23 to rotate. The rotation of the rotating rod 23 will drive the card key to move. The card key movement will lose contact with the inner wall of the card slot and move in the direction away from the support leg 24, then the limit of the support leg 24 will be released, and the No. 3 torsion spring will drive the support leg 24 to rotate in the direction away from the support column 1. When the card key loses contact with the inner wall of the card slot, the limit of the inner rod 25 will be released, and the No. 5 spring will push the inner rod 25 to move in the direction away from the support leg 24, then the inner rod 25 will push the support plate 26 toward the ground When the sliding sleeve 10 slides downward, the pressure rod 29 will move downward, and the pressure rod 29 will lose contact with the insertion rod 291 when moving downward, so that the insertion rod 291 will be pushed by the No. 7 spring to move away from the fixed rod 27. The fixing rod 27 will lose contact with the inner wall of the socket, the limit of the support rod 28 will be released, and the support rod 28 will be pushed by the No. 6 spring to move away from the fixing rod 27, and the support rod 28 will reinforce the support platform 2 to prevent the operator from not holding the turret body 5 in the standard posture, causing the recoil of the turret body 5 to be too large and pushing the support platform 2 to rotate. The rotation of the support platform 2 will cause the original target to shift. This error will cause the rocket to miss the target, especially when shooting at a long distance. The accumulation of errors may cause the ammunition to completely miss the target, thereby affecting the stability and accuracy of the trajectory.

[0032] When the collar 21 pushes the push plate 22 to move downward, it will drive the fixed plate 31 to move. The movement of the fixed plate 31 will make the inclined surface of the fixed plate 31 contact with the sliding block 34, then the fixed plate 31 will push the sliding block 34 to move in the direction away from the fixed plate 31, and the movement of the sliding block 34 will pull the movable end of the No. 1 hydraulic device 33 to move in the direction away from the No. 1 hydraulic device 33, then the No. 1 hydraulic device 33 will extract the liquid on the inner wall of the No. 2 hydraulic device 37 into the No. 1 hydraulic device 33, then the liquid inside the No. 2 hydraulic device 37 will decrease, then the movable end of the No. 2 hydraulic device 37 will move toward the inside of the No. 2 hydraulic device, and the movement of the movable end of the No. 2 hydraulic device 37 will pull the blocking rod 38 to move upward, and the blocking rod 38 will move upward to contact with the trigger 6, blocking the operator from pressing the trigger 6, so as to prevent the operator from not holding the turret body 5 in the standard posture, causing the turret body 5 to move backward quickly to scare the operator, which may cause the operator to accidentally injure himself or others during operation. When the ring 21 moves toward the original position, it will drive the fixed plate 31 to move toward the original position. When the fixed plate 31 moves toward the original position, it will generate friction with the sliding block 34 to increase the reading speed of the fixed plate 31. The push plate 22 moves toward the original position and drives the protrusion 32 to move. The movement of the protrusion 32 will contact the elastic telescopic block 36, which will reduce the reset speed of the fixed plate 31 again. When the reset speed of the fixed plate 31 is reduced, the reset speed of the sliding block 34 will be reduced. When the reset speed of the sliding block 34 is reduced, the reset speed of the No. 1 hydraulic device 33 and the No. 2 hydraulic device 37 will increase, and the limiting time of the trigger 6 by the blocking rod 38 will be increased, so as to avoid the operator from having a "fright reaction" after being frightened, such as unconsciously avoiding, retreating, missing the target, etc. If the simulator is triggered again at this time, the operation may be inaccurate, resulting in damage to the training effect.

[0033] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An anti-tank bazooka simulator that is easy to assemble, comprising a support column (1), characterized in that: The top of the support column (1) is rotatably mounted with a rotating sleeve (9), the top of the rotating sleeve (9) is rotatably mounted with a supporting platform (2), the bottom of the support column (1) is rotatably mounted with a supporting frame (3), the top of the supporting platform (2) is rotatably mounted with a clamping plate (4), the top of the clamping plate (4) is fixedly mounted with a turret body (5), the bottom of the turret body (5) is rotatably mounted with a trigger (6), the inner wall of the support column (1) is slidably penetrated with a push button (7), the square block (8) is fixedly mounted on a side of the push button (7) close to the rotating sleeve (9), and a buffer device is also provided on the top of the support column (1); The buffer device comprises a sliding sleeve (10), a first clamping sleeve (11), a connecting rod (12) and a second clamping sleeve (13); the sliding sleeve (10) is slidably mounted on the inner wall of the clamping plate (4); the connecting rod (12) slides through the clamping plate (4); the connecting rod (12) is fixedly mounted on the outer wall of the sliding sleeve (10); the first clamping sleeve (11) is fixedly mounted on a side of the connecting rod (12) away from the trigger (6); and the second clamping sleeve (13) is fixedly mounted on a side of the connecting rod (12) close to the trigger (6); The bottom of the support column (1) is also provided with a support device for strengthening the support of the turret body (5) and a protection device for clamping the trigger (6).

2. The anti-tank bazooka simulator that is easy to assemble according to claim 1, characterized in that: The buffer device further comprises a sliding plate (14), a push block (15), an insertion key (16) and a fixed key (17); the sliding plate (14) is slidably mounted on the outer wall of the clamping plate (4); the push block (15) is fixedly mounted on the outer wall of the clamping plate (4); the insertion key (16) is rotatably mounted on the outer wall of the clamping plate (4); a circular hole is provided on the outer wall of the clamping plate (4); the insertion key (16) contacts the inner wall of the circular hole; the fixed key (17) is slidably mounted on a side of the clamping plate (4) close to the connecting rod (12); a circular groove is provided on a side of the connecting rod (12) close to the fixed key (17); the fixed key (17) matches the shape of the circular groove.

3. The anti-tank bazooka simulator that is easy to assemble according to claim 2, characterized in that: A slope is provided on one side of the sliding plate (14) close to the fixed key (17); the sliding plate (14) and the push block (15) are in contact; a No. 1 torsion spring is provided between the insertion key (16) and the clamping plate (4); a No. 1 spring is provided between the fixed key (17) and the clamping plate (4); a No. 2 spring is provided between the sliding plate (14) and the clamping plate (4); a No. 3 spring is provided between the connecting rod (12) and the clamping plate (4); a No. 4 spring is provided between the sliding sleeve (10) and the clamping plate (4); a fixed groove is provided on the outer wall of the rotating sleeve (9); and the square block (8) is in contact with the inner wall of the fixed groove.

4. The anti-tank bazooka simulator that is easy to assemble according to claim 3, characterized in that: The support device comprises a slide bar (20), a collar (21), a push plate (22), a rotating rod (23), a supporting leg (24), an inner rod (25) and a supporting plate (26), wherein the collar (21) is sleeved on the circumferential surface of the supporting column (1), one end of the slide bar (20) is slidably mounted on a side of the supporting platform (2) close to the trigger (6), the other end of the slide bar (20) is rotatably mounted on the circumferential surface of the collar (21), and the push plate (22) is slidably mounted on the supporting column ( The rotating rod (23) is rotatably mounted on the circumferential surface of the support column (1), the supporting leg (24) is rotatably mounted on the bottom of the support column (1), the inner rod (25) is slidably mounted on the inner wall of the supporting leg (24), the supporting plate (26) is rotatably mounted on the bottom of the supporting leg (24), a limiting groove is provided on the outer wall of the supporting leg (24), a limiting block is fixedly mounted on a side of the inner rod (25) close to the limiting groove, and the limiting block contacts the inner wall of the limiting groove.

5. The anti-tank bazooka simulator that is easy to assemble according to claim 4, characterized in that: The supporting device further comprises a fixing rod (27), a supporting rod (28), a pressing rod (29) and an inserting rod (291); the fixing rod (27) is fixedly mounted on the circumferential surface of the rotating sleeve (9); the supporting rod (28) is slidably mounted on the inner wall of the fixing rod (27); the pressing rod (29) is fixedly mounted on the top of the collar (21); the inserting rod (291) is slidably mounted on a side of the fixing rod (27) close to the pressing rod (29); a square groove is provided on the outer wall of the fixing rod (27); a fixing block is fixedly mounted on a side of the supporting rod (28) close to the square groove; the fixing block contacts the inner wall of the square groove; the inserting rod (291) slidably penetrates the fixing rod (27); a socket is provided on a side of the supporting rod (28) close to the inserting rod (291); the inserting rod (291) contacts the inner wall of the socket.

6. The anti-tank bazooka simulator that is easy to assemble according to claim 5, characterized in that: The bottom of the limit block is provided with an inclined surface, the top of the fixed block is provided with an inclined surface, the insertion rod (291) is provided with an inclined surface near the pressure rod (29), a No. 5 spring is provided between the support leg (24) and the inner rod (25), a No. 6 spring is provided between the support rod (28) and the fixed rod (27), a No. 7 spring is provided between the insertion rod (291) and the fixed rod (27), a No. 8 spring is provided between the push plate (22) and the support column (1), a key is fixedly installed on one side of the rotating rod (23) near the support leg (24), the key slides through the support leg (24), a slot is provided on one side of the inner rod (25) near the key, the key contacts the inner wall of the slot, a No. 2 torsion spring is provided between the rotating rod (23) and the support column (1), and a No. 3 torsion spring is provided between the support leg (24) and the support column (1).

7. The anti-tank bazooka simulator that is easy to assemble according to claim 6, characterized in that: The protective device comprises a fixed frame (30), a fixed plate (31), a protrusion (32), a first hydraulic device (33), a sliding block (34), a sliding rod (35), an elastic telescopic block (36), a second hydraulic device (37) and a blocking rod (38), wherein the fixed frame (30) is fixedly mounted on the circumferential surface of the support column (1), the fixed plate (31) is fixedly mounted on a side of the push plate (22) away from the support column (1), the protrusion (32) is fixedly mounted on a side of the push plate (22) close to the fixed frame (30), and the first hydraulic device (33) is fixedly mounted on the circumferential surface of the support column (1). ) is fixedly mounted on a side of the fixed frame (30) away from the support column (1), the sliding block (34) is slidably mounted on the top of the fixed frame (30), the elastic telescopic block (36) is slidably mounted on the inner wall of the fixed frame (30), the sliding rod (35) is fixedly mounted on the top of the sliding block (34), the movable end of the No. 1 hydraulic device (33) is fixedly mounted on the top of the sliding rod (35), the No. 2 hydraulic device (37) is fixedly mounted on the bottom of the No. 2 jacket (13), and the blocking rod (38) is fixedly mounted on the movable end of the No. 2 hydraulic device (37).

8. The anti-tank bazooka simulator that is easy to assemble according to claim 7, characterized in that: The first hydraulic device (33) and the second hydraulic device (37) are connected via a hose, a side of the fixed plate (31) close to the sliding block (34) is provided as an inclined surface, and a ninth spring is provided between the sliding block (34) and the fixed frame (30).

Citation Information

Patent Citations

  • 120mm antitank rocket launcher simulator

    CN221781352U