A virtual simulation training equipment for emergency rescue

By using rotating motors and simulation boxes in the virtual simulation training equipment for disaster relief and rescue, signal transmission under different environments is simulated, solving the problem that existing technologies cannot accurately understand the impact of signal transmission, and improving the realism and stability of simulation training.

CN118015889BActive Publication Date: 2026-05-05NAT EARTHQUAKE RESPONSE SUPPORT SERVICE
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
NAT EARTHQUAKE RESPONSE SUPPORT SERVICE
Filing Date
2024-02-01
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

In the simulation training of disaster relief, it is impossible to accurately understand the impact of the surrounding environment on the signal transmission between the signal transmitter, computer terminal and signal receiver.

Method used

A virtual simulation training equipment for disaster relief and rescue was designed, which includes a base, a rotating motor, a mounting plate, a signal transmitter box and a receiver box. Combined with the first to third simulation boxes, it simulates different environments. The stable rotation and position change of the signal box are achieved through shielding components and threaded connections, simulating the impact of signal transmission under different environments.

Benefits of technology

It enables accurate understanding of the impact of signal transmission between the signal transmitter and receiver in different environments, improving the realism and stability of simulation training, and is simple and flexible to operate.

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Abstract

This invention provides a virtual simulation training equipment for disaster relief and rescue, relating to the technical field of rescue training equipment. The equipment includes a base with a mounting slot at the top center. A rotating motor is fixedly connected to the bottom of the mounting slot, and a mounting plate is fixedly connected to the output shaft of the rotating motor. A computer terminal is fixedly connected to the top center of the mounting plate, and a signal transmitter and a signal receiver are also fixedly connected to the top of the mounting plate. The signal transmitter is located at the left edge of the mounting plate. By setting up the mounting slot, rotating motor, mounting plate, and first, second, and third simulation boxes, the signal transmitter and signal receiver can be easily rotated into different simulation boxes to understand the impact of signal transmission between the signal transmitter, computer terminal, and signal receiver under different environments.
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Description

Technical Field

[0001] This invention relates to the field of rescue training equipment technology, specifically a virtual simulation training equipment for disaster relief and rescue. Background Technology

[0002] Disaster relief and rescue involves organizing manpower and resources to rescue, transfer, or evacuate trapped personnel, rescue and transport important materials, protect the safety of important targets, and carry out post-disaster reconstruction. Currently, for disaster relief and rescue training devices, in order to clearly demonstrate the entire simulation process, improve the realism of the training process, and facilitate understanding, signal transmitters, computer terminals, and signal receivers are integrated into a single unit on a fixed base.

[0003] However, the simulation process cannot accurately understand the impact of the surrounding environment on signal transmission between the signal transmitter, computer terminal, and signal receiver, which has certain limitations. Summary of the Invention

[0004] To address the shortcomings of existing technologies, this invention provides a virtual simulation training equipment for disaster relief and rescue, which solves the problem that the surrounding environment cannot be accurately understood during the simulation process, thus affecting signal transmission between the signal transmitter, computer terminal, and signal receiver.

[0005] Technical solution

[0006] To achieve the above objectives, the present invention provides the following technical solution: a virtual simulation training equipment for disaster relief and rescue, comprising a base, an installation groove at the top center of the base, a rotating motor fixedly connected to the bottom of the installation groove, an installation plate fixedly connected to the output shaft of the rotating motor, a computer terminal fixedly connected to the top center of the installation plate, a signal transmitter box and a signal receiver box fixedly connected to the top of the installation plate, the signal transmitter box being located at the left edge of the installation plate, the signal receiver box being located at the right edge of the installation plate, and the signal transmitter box and the signal receiver box being symmetrically arranged with the computer terminal as the center; a first simulation box, a second simulation box, and a third simulation box are provided at the top edge of the base, and the first simulation box, the second simulation box, and the third simulation box have the same structure; there are two of each of the first simulation box, the second simulation box, and the third simulation box, arranged in a circular array; an electromagnetic wave generator is provided at the top inner interior of the first simulation box; a drying device is provided at the top inner interior of the second simulation box; and a miniature humidifier is provided at the top inner interior of the third simulation box.

[0007] The first, second, and third simulation boxes each have openings on their side walls. The first simulation box has a first shielding component on its top, the second simulation box has a second shielding component on its top, and the third simulation box has a third shielding component on its top. The first, second, and third shielding components have the same structure. The first shielding component includes a sliding groove, a sealing plate, a horizontal plate, a lifting motor, a threaded column, and a limiting block. The sliding groove is located on the inner wall of the first simulation box. The sealing plate is slidably connected to the inside of the sliding groove. The horizontal plate is fixedly connected to the top of the sealing plate. The lifting motor is fixedly connected to the top of the first simulation box. The threaded column is fixedly connected to the output shaft of the lifting motor, and the horizontal plate is threadedly connected to the threaded column. The limiting block is fixedly connected to the top of the threaded column.

[0008] The first, second, and third simulation boxes each have threaded holes on the side away from the rotating motor. The base has slots inside, and the number of slots is the same as the number of the first, second, and third simulation boxes. A threaded rod is threadedly connected to the side wall of the slot. A knob is fixedly connected to one end of the threaded rod outside the base. The first, second, and third simulation boxes are fixedly connected to the base through the threaded holes, slots, threaded rods, and knobs.

[0009] Preferably, the top of the base is provided with an annular guide groove, and the guide groove is located directly below the first simulation box, the second simulation box, and the third simulation box. The bottom of the mounting plate is fixedly connected with a support wheel, and the support wheel is located inside the guide groove. There are two support wheels, which are symmetrically arranged on the left and right sides of the mounting plate.

[0010] Preferably, each of the first shielding components is provided with two grooves and two sealing plates.

[0011] Preferably, the computer terminal has a first control panel and a display screen on its front side wall, with the first control panel located below the display screen; the signal transmitter box has a second control panel on its front side wall; the signal transmitter box has a signal transmitter on its top; the signal receiver box has a speaker on its front side wall; and the signal receiver box has a signal receiver on its top.

[0012] Preferably, the rotating motor, computer terminal, signal transmitter box, signal receiver box, electromagnetic wave generator, drying equipment, micro humidifier, and lifting motor are all electrically connected to an external power source, and the rotating motor, electromagnetic wave generator, drying equipment, micro humidifier, and lifting motor are all controlled by an external controller.

[0013] Preferably, the signal transmitting box is internally provided with a first control module, a first network connection module, a positioning module, a first power connection module, and a signal transmitting module, and the first network connection module, the positioning module, the first power connection module, and the signal transmitting module are all connected to the first control module, the signal transmitting module is connected to the signal transmitter, and the first control module is connected to the second control panel.

[0014] Preferably, the signal receiving box is internally provided with a second control module, a second network connection module, a second power connection module, an alarm module, and a signal receiving module. The second network connection module, the second power connection module, the alarm module, and the signal receiving module are all connected to the second control module. The signal receiving module is connected to a signal receiver, and the alarm module is connected to a speaker.

[0015] Preferably, the computer terminal, signal transmitter box, and signal receiver box are connected via a network, and both the first power connection module and the second power connection module are connected to an external power source. Beneficial effects

[0016] This invention provides a virtual simulation training equipment for disaster relief and rescue. It has the following beneficial effects:

[0017] This invention, by setting up an installation slot, a rotating motor, an installation plate, and a first, second, and third analog box, facilitates the rotation of the signal transmitter and receiver into different analog boxes, so as to understand the impact of signal transmission between the signal transmitter, computer terminal, and signal receiver in different environments.

[0018] This invention, by setting a first shielding component, a second shielding component, and a third shielding component, facilitates the blocking of the openings on the first simulation box, the second simulation box, and the third simulation box. At the same time, the sealing plate positions the mounting plate while it is completely closed, preventing the mounting plate from rotating during the simulation process and ensuring the stability of the mounting plate.

[0019] This invention, by setting threaded holes, slots, threaded rods and knobs, facilitates the replacement of the positions of the first simulation box, the second simulation box and the third simulation box, making it flexible to use and simple to operate. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the overall structure of a virtual simulation training equipment for disaster relief and rescue proposed in this invention;

[0021] Figure 2 This is a front sectional view of a virtual simulation training equipment for disaster relief and rescue proposed in this invention.

[0022] Figure 3This is a schematic diagram of the first simulation box of a virtual simulation training equipment for disaster relief and rescue proposed in this invention;

[0023] Figure 4 This is a schematic diagram of the first shielding component of a virtual simulation training equipment for disaster relief and rescue proposed in this invention;

[0024] Figure 5 This is a top view of a virtual simulation training equipment for disaster relief and rescue proposed in this invention;

[0025] Figure 6 for Figure 1 Schematic diagram of structure A in the middle;

[0026] Figure 7 This is a schematic diagram of the internal structure of the computer terminal, signal transmitter box, and signal receiver box of a virtual simulation training equipment for disaster relief proposed in this invention.

[0027] The components include: 1. Base; 2. Mounting slot; 3. Rotating motor; 4. Mounting plate; 5. Computer terminal; 6. Signal transmitter box; 7. Signal receiver box; 8. Guide groove; 9. Support wheel; 10. First analog box; 11. Second analog box; 12. Third analog box; 13. Opening; 14. First shielding assembly; 15. Second shielding assembly; 16. Third shielding assembly; 17. Threaded hole; 18. Slot; 19. Threaded rod; 20. Knob; 21. First control panel; 22. Display screen; 23. Second control panel; 24. Signal transmitter; 25. Speaker; 26. Signal receiver; 141. Slide; 142. Sealing plate; 143. Horizontal plate; 144. Lifting motor; 145. Threaded column; 146. Limit block. Detailed Implementation

[0028] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention. Example

[0029] like Figure 1-7As shown, this embodiment of the invention provides a virtual simulation training equipment for disaster relief and rescue, including a base 1. A mounting groove 2 is provided at the top center of the base 1. A rotating motor 3 is fixedly connected to the bottom of the mounting groove 2. The rotating motor 3 is mainly used to control the mounting plate 4 to drive the computer terminal 5, signal transmitter 6, and signal receiver 7 to rotate, so that the signal transmitter 6 and signal receiver 7 are located in different simulation boxes, in order to understand the impact of signal transmission between the signal transmitter 6, computer terminal 5, and signal receiver 7 under different environments. The mounting plate 4 is fixedly connected to the output shaft of the rotating motor 3. The computer terminal 5 is fixedly connected to the top center of the mounting plate 4. The signal transmitter 6, computer terminal 5, and signal receiver 7 are all prior art (application number: CN202023273787.9) and have the same working principle, which will not be described in detail here. The top of the mounting plate 4 is also fixedly connected to the signal transmitter 6 and signal receiver 7. Signal receiver box 7 and signal transmitter box 6 are located on the left edge of mounting plate 4, and signal receiver box 7 is located on the right edge of mounting plate 4. Signal transmitter box 6 and signal receiver box 7 are symmetrically arranged with computer terminal 5 as the center. The top edge of base 1 is provided with first simulation box 10, second simulation box 11 and third simulation box 12. The first simulation box 10, second simulation box 11 and third simulation box 12 have the same structure. There are two of each of the first simulation box 10, second simulation box 11 and third simulation box 12, and they are arranged in a ring array. The top inner part of the first simulation box 10 is provided with an electromagnetic wave generator. The first simulation box 10 is mainly used to simulate an electromagnetic environment. The top inner part of the second simulation box 11 is provided with a drying device. The second simulation box 11 is mainly used to simulate a dry environment. The top inner part of the third simulation box 12 is provided with a miniature humidifier. The third simulation box 12 is mainly used to simulate a humid environment.

[0030] The first simulation box 10, the second simulation box 11, and the third simulation box 12 all have openings 13 on their side walls. These openings 13 facilitate the entry of the signal transmitter box 6 and the signal receiver box 7 into the different simulation boxes. The top of the first simulation box 10 has a first shielding component 14, the top of the second simulation box 11 has a second shielding component 15, and the top of the third simulation box 12 has a third shielding component 16. All three components have identical structures. Their primary function is to shield the openings 13. Furthermore, when the mounting plate 4 enters the simulation box, the sealing plate 142 blocks the openings 13 and positions the mounting plate 4, preventing it from rotating during simulation and ensuring its stability. The first shielding component 14 includes a sliding groove 141, a sealing plate 142, and a horizontal plate 143. The components include a lifting motor 144, a threaded post 145, and a limiting block 146. The lifting motor 144 mainly controls the rotation of the threaded post 145, thereby controlling the horizontal plate 143 to move the sealing plate 142 up and down. When the lifting motor 144 rotates forward, the sealing plate 142 moves downward; when the lifting motor 144 rotates in reverse, the sealing plate 142 moves upward. The horizontal plate 143 mainly serves as a connector, and the limiting block 146 mainly limits the horizontal plate 143 to prevent it from sliding off the threaded post. The column 145 is detached, the slide 141 is set on the inner wall of the first simulation box 10, the sealing plate 142 is slidably connected to the inside of the slide 141, the horizontal plate 143 is fixedly connected to the top of the sealing plate 142, the lifting motor 144 is fixedly connected to the top of the first simulation box 10, the threaded column 145 is fixedly connected to the output shaft of the lifting motor 144, and the horizontal plate 143 is threadedly connected to the threaded column 145, and the limiting block 146 is fixedly connected to the top of the threaded column 145;

[0031] The first simulation box 10, the second simulation box 11, and the third simulation box 12 are all provided with threaded holes 17 on the side away from the rotating motor 3. The base 1 is provided with slots 18 inside, and the number of slots 18 is the same as the number of the first simulation box 10, the second simulation box 11, and the third simulation box 12. A threaded rod 19 is threadedly connected to the side wall of the slot 18. A knob 20 is fixedly connected to one end of the threaded rod 19 outside the base 1. The first simulation box 10, the second simulation box 11, and the third simulation box 12 are fixedly connected to the base 1 through the threaded holes 17, slots 18, threaded rods 19, and knobs 20. The setting of the threaded holes 17, slots 18, threaded rods 19, and knobs 20 facilitates the replacement of the simulation box positions, and can also install simulation boxes other than those of this invention.

[0032] The top of the base 1 is also provided with an annular guide groove 8, and the guide groove 8 is located directly below the first simulation box 10, the second simulation box 11, and the third simulation box 12. The bottom of the mounting plate 4 is fixedly connected with support wheels 9, and the support wheels 9 are located inside the guide groove 8. Two support wheels 9 are provided, symmetrically arranged on the left and right sides of the mounting plate 4. The guide groove 8 and support wheels 9 primarily support the mounting plate 4, ensuring its stability during rotation. Each first shielding component 14 is provided with two sliding grooves 141 and two sealing plates 142. The front side wall of the computer terminal 5 is provided with a first control panel 21 and... The display screen 22 is located below the first control panel 21. The second control panel 23 is provided on the front side wall of the signal transmitting box 6. The signal transmitter 24 is provided on the top of the signal transmitting box 6. The speaker 25 is provided on the front side wall of the signal receiving box 7. The signal receiver 26 is provided on the top of the signal receiving box 7. The rotating motor 3, computer terminal 5, signal transmitting box 6, signal receiving box 7, electromagnetic wave generator, drying equipment, micro humidifier and lifting motor 144 are all electrically connected to an external power supply. The rotating motor 3, electromagnetic wave generator, drying equipment, micro humidifier and lifting motor 144 are all controlled by an external controller.

[0033] The signal transmitting box 6 internally houses a first control module, a first network connection module, a positioning module, a first power connection module, and a signal transmitting module. All of these modules are connected to the first control module. The signal transmitting module is connected to the signal transmitter 24. The first control module is connected to the second control panel 23. The signal receiving box 7 internally houses a second control module, a second network connection module, a second power connection module, an alarm module, and a signal receiving module. All of these modules are connected to the second control module. The signal receiving module is connected to the signal receiver 26. The alarm module is connected to the speaker 25. The computer terminal 5, the signal transmitting box 6, and the signal receiving box 7 are connected via a network. Both the first and second power connection modules are connected to an external power source.

[0034] Working principle: When environmental testing is required during the simulation, the lifting motor 144 first rotates in the reverse direction to open the sealing plate 142 on the first simulation box 10. Then, the rotating motor 3 controls the mounting plate 4 to rotate, and the working signal transmitter box 6 and signal receiver box 7 are moved into the first simulation box 10. Then, the lifting motor 144 rotates in the forward direction to close the sealing plate 142 on the first simulation box 10. At the same time, the sealing plate 142 positions the mounting plate 4. The electromagnetic wave generator is started, and the effects of the signal transmitter box 6 and signal receiver box 7 on the electromagnetic wave environment are observed. After the test is completed, the lifting motor 144 rotates in the reverse direction again to open the sealing plate 142 on the first simulation box 10, and the next test is performed. The steps are the same.

[0035] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A virtual simulation training equipment for disaster relief and rescue, comprising a base (1), characterized in that: A mounting slot (2) is provided at the top center of the base (1). A rotating motor (3) is fixedly connected to the bottom of the mounting slot (2). A mounting plate (4) is fixedly connected to the output shaft of the rotating motor (3). A computer terminal (5) is fixedly connected to the top center of the mounting plate (4). A signal transmitting box (6) and a signal receiving box (7) are also fixedly connected to the top of the mounting plate (4). The signal transmitting box (6) is located at the left edge of the mounting plate (4), and the signal receiving box (7) is located at the right edge of the mounting plate (4). The signal transmitting box (6) and the signal receiving box (7) are connected to the computer terminal (5). For a centrally symmetrical arrangement, a first simulation box (10), a second simulation box (11), and a third simulation box (12) are arranged at the top edge of the base (1), and the first simulation box (10), the second simulation box (11), and the third simulation box (12) have the same structure. There are two of each of the first simulation box (10), the second simulation box (11), and the third simulation box (12), and they are arranged in a ring array. An electromagnetic wave generator is arranged at the top inner part of the first simulation box (10), a drying device is arranged at the top inner part of the second simulation box (11), and a miniature humidifier is arranged at the top inner part of the third simulation box (12). The first simulation box (10), the second simulation box (11), and the third simulation box (12) are all provided with openings (13) on their side walls. The first simulation box (10) is provided with a first shielding component (14) on its top, the second simulation box (11) is provided with a second shielding component (15) on its top, and the third simulation box (12) is provided with a third shielding component (16) on its top. The structures of the first shielding component (14), the second shielding component (15), and the third shielding component (16) are all the same. The first shielding component (14) includes a sliding groove (141), a sealing plate (142), a horizontal plate (143), and a lifting mechanism. The device includes a motor (144), a threaded column (145), and a limiting block (146). The slide (141) is located on the inner wall of the first simulation box (10). The sealing plate (142) is slidably connected to the inside of the slide (141). The horizontal plate (143) is fixedly connected to the top of the sealing plate (142). The lifting motor (144) is fixedly connected to the top of the first simulation box (10). The threaded column (145) is fixedly connected to the output shaft of the lifting motor (144). The horizontal plate (143) is threadedly connected to the threaded column (145). The limiting block (146) is fixedly connected to the top of the threaded column (145). The first simulation box (10), the second simulation box (11), and the third simulation box (12) are all provided with threaded holes (17) on the side away from the rotating motor (3). The base (1) is provided with slots (18), and the number of slots (18) is the same as the number of the first simulation box (10), the second simulation box (11), and the third simulation box (12). A threaded rod (19) is threadedly connected to the side wall of the slot (18). A knob (20) is fixedly connected to one end of the threaded rod (19) located outside the base (1). The first simulation box (10), the second simulation box (11), and the third simulation box (12) are fixedly connected to the base (1) through the threaded holes (17), slots (18), threaded rods (19), and knobs (20).

2. The virtual simulation training equipment for disaster relief and rescue according to claim 1, characterized in that: The top of the base (1) is also provided with an annular guide groove (8), and the guide groove (8) is located directly below the first simulation box (10), the second simulation box (11), and the third simulation box (12). The bottom of the mounting plate (4) is fixedly connected with a support wheel (9), and the support wheel (9) is located inside the guide groove (8). There are two support wheels (9), which are symmetrically arranged on the left and right sides of the mounting plate (4).

3. The virtual simulation training equipment for disaster relief and rescue according to claim 2, characterized in that: Each of the first shielding components (14) is provided with two grooves (141) and two sealing plates (142).

4. The virtual simulation training equipment for disaster relief and rescue according to claim 3, characterized in that: The computer terminal (5) is provided with a first control panel (21) and a display screen (22) on the front side wall, and the first control panel (21) is located below the display screen (22). The signal transmitting box (6) is provided with a second control panel (23) on the front side wall. The signal transmitting box (6) is provided with a signal transmitter (24) on the top. The signal receiving box (7) is provided with a speaker (25) on the front side wall. The signal receiving box (7) is provided with a signal receiver (26) on the top.

5. The virtual simulation training equipment for disaster relief and rescue according to claim 4, characterized in that: The rotating motor (3), computer terminal (5), signal transmitter (6), signal receiver (7), electromagnetic wave generator, drying equipment, micro humidifier and lifting motor (144) are all electrically connected to an external power source. The rotating motor (3), electromagnetic wave generator, drying equipment, micro humidifier and lifting motor (144) are all controlled by an external controller.

6. The virtual simulation training equipment for disaster relief and rescue according to claim 5, characterized in that: The signal transmitting box (6) is internally provided with a first control module, a first network connection module, a positioning module, a first power connection module and a signal transmitting module, and the first network connection module, the positioning module, the first power connection module and the signal transmitting module are all connected to the first control module. The signal transmitting module is connected to the signal transmitter (24), and the first control module is connected to the second control panel (23).

7. The virtual simulation training equipment for disaster relief and rescue according to claim 6, characterized in that: The signal receiving box (7) is internally equipped with a second control module, a second network connection module, a second power connection module, an alarm module and a signal receiving module. The second network connection module, the second power connection module, the alarm module and the signal receiving module are all connected to the second control module. The signal receiving module is connected to the signal receiver (26) and the alarm module is connected to the speaker (25).

8. The virtual simulation training equipment for disaster relief and rescue according to claim 7, characterized in that: The computer terminal (5), signal transmitter (6), and signal receiver (7) are connected via a network, and the first power connection module and the second power connection module are both connected to an external power source.

Citation Information

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