A penetration testing device for the security of data transmission of wireless data radio
By designing a penetration testing device that includes a fixed structure, disassembly mechanism and adjustment mechanism, the problem of fixing inconvenience in the installation and use of the radio station, the inability to prevent bad weather damage and the inability to adjust the signal reception direction, the stable installation of the radio station, weather protection and flexible signal adjustment are achieved.
Patent Information
- Application Number
- CN202211339840.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-29
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2042-10-29
AI Technical Summary
During installation and use, existing radio stations have problems such as inconvenience in fixing, inability to prevent damage to bad weather, and inability to adjust the signal reception direction.
A penetration testing device including a fixed structure, a disassembly mechanism and an adjustment mechanism is designed. The fixed structure protects the radio antenna through a fan and a ring baffle. The disassembly mechanism facilitates the installation and disassembly of the radio station, and the adjustment mechanism can adjust the signal reception direction of the radio antenna.
It realizes the protection of the radio station in bad weather conditions, simplifies the installation and disassembly of the radio station, and improves the flexibility and effect of signal reception.
Smart Images

Figure CN115899457B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of radio installation, and particularly relates to a penetration testing device for the data transmission security of wireless data transmission radios. Background Art
[0002] A radio is constructed from components such as mechanical devices, electronic devices, and magnets. It is a machine that converts electrical energy into radio wave signals and can receive and transmit audio signals and data signals. In the prior art, small radios are popular among the general public because of their portability and small size. To ensure the signal reception and transmission effects of the radios, they are usually installed at a higher position. In the existing radios during use, the radio body is fixed to the installation position by bolts. When assembling or disassembling the radio, an additional tool for turning the bolts is required, which is rather troublesome.
[0003] For example, the invention with the publication number CN215663859U discloses a radio that is easy to fixedly install, including a housing. Fixing structures for fixedly installing the radio are fixedly arranged on both sides of the housing, and a locking component is arranged between the fixing structures and the housing. The fixing structures are rotatably connected to the housing through the locking component, and the locking component can lock the rotation angle between the fixing structures and the housing. However, this device cannot prevent the radio from being damaged by bad weather, and at the same time, it cannot adjust the signal reception direction. Summary of the Invention
[0004] To solve the above problems, the present invention is achieved through the following technical solutions:
[0005] A penetration testing device for the data transmission security of wireless data transmission radios includes a mounting base. The mounting base is fixedly installed on a mounting plane by bolts. An installation cavity with an open upper end is provided inside the mounting base. A first card slot is communicated with the outer end wall of the installation cavity. A rotating cavity is provided in the rear end wall of the installation cavity. An annular groove is provided in the outer end wall of the installation cavity. Two symmetric spring cavities are provided in the front and rear end walls of the installation cavity. A hydraulic oil cavity communicated with the annular groove is provided in the left end wall of the rotating cavity. An installation block is installed and connected inside the installation cavity. A fixing structure is provided inside the mounting base, and a disassembly mechanism and an adjustment mechanism are provided inside the installation block. The fixing structure can fix the installation block, facilitating installation by personnel, and at the same time, it can prevent the radio from being damaged by bad weather. The disassembly mechanism can make the installation block no longer fixedly install the installation block, facilitating the removal of the radio. The adjustment mechanism can adjust the signal reception direction of the radio to ensure the communication effect.
[0006] Preferably, the fixing structure includes a rotating sleeve rotatably connected to the upper end surface of the mounting base. The rotating sleeve is fixedly connected with a connecting block, and the connecting block is rotatably connected with a fan shaft. The fan shaft is fixedly connected with a rotating cone pulley, and the fan shaft is fixedly connected with a fan. The lower end wall of the rotating cavity is rotatably connected with a rotating shaft with one end located above the mounting base. The rotating shaft is fixedly connected with a driving cone pulley meshing with the rotating cone pulley. The rotating shaft is fixedly connected with a centrifugal wheel located in the rotating cavity. The centrifugal wheel is provided with four centrifugal cavities symmetrically distributed about the center. The outer side of the centrifugal cavity is open, and a magnetic plate is slidably connected in the centrifugal cavity. A connecting spring is connected between the magnetic plate and the end wall of the centrifugal cavity. A push plate is slidably connected in the hydraulic oil cavity. The push plate is fixedly connected with a connecting rod with one end located in the rotating cavity. The connecting rod is fixedly connected with a repulsive plate located in the rotating cavity. The magnetic plate repels the repulsive plate. The right end wall of the hydraulic oil cavity is fixedly connected with a contact switch. An annular plate is slidably connected in the annular groove. The annular plate is fixedly connected with an annular baffle with one end located above the mounting base.
[0007] Preferably, the disassembly mechanism includes a placement plate slidably connected in the installation cavity. There are two symmetrically arranged buffer springs on the left and right between the placement plate and the lower end wall of the installation cavity. The installation block is placed on the buffer springs. An antenna cavity with an upward opening is provided in the installation block. A lifting cavity is provided in the lower end wall of the antenna cavity. A transmission cavity is provided in the lower end wall of the lifting cavity. There are four symmetrically distributed rope pulling cavities in the installation block. Symmetrically arranged push rod cavities are provided in the left and right end walls of the lifting cavity. A second card slot with an outer opening is provided in the end wall on the side away from the center of symmetry of the push rod cavity. A rope pulling plate is slidably connected in the rope pulling cavity. A rope pulling spring is connected between the rope pulling plate and the end wall of the rope pulling cavity. The rope pulling plate is fixedly connected with a first card block whose one end can be inserted into the first card slot. A second card block is slidably connected in the spring cavity. A card block spring is connected between the second card block and the end wall of the spring cavity. The second card block can be inserted into the second card slot. A thrust plate is slidably connected in the push rod cavity. The thrust plate is fixedly connected with a push rod whose one end is located in the second card slot. The push rod is fixedly connected with an abutting push plate located in the second card slot. The abutting push plate abuts against the second card block. A winding shaft is rotatably connected to the upper end wall of the transmission cavity. The winding shaft is fixedly connected with a first contact wheel. The winding shaft is fixedly connected with a winding wheel. The winding wheel winds a winding rope whose one end is connected with the rope pulling plate. A hinge cavity is provided in the lower end wall of the transmission cavity. A rotating shaft with one end located in the hinge cavity is rotatably connected to the upper end wall of the transmission cavity. The rotating shaft is fixedly connected with a second contact wheel located in the transmission cavity. The rotating shaft is fixedly connected with a rotating wheel located in the hinge cavity. The rotating wheel is hinged with a hinge rod. A liquid pushing cavity communicating with the two push rod cavities is provided in the right end wall of the hinge cavity. An articulated push plate is slidably connected in the liquid pushing cavity. A return spring is connected between the articulated push plate and the end wall of the liquid pushing cavity. The hinge rod is hinged with the articulated push plate.
[0008] Preferably, the adjustment mechanism includes a power motor fixedly connected to the lower end wall of the lifting cavity. The power motor is power-connected to a transmission shaft with one end located in the transmission cavity. The transmission shaft is fixedly connected with an incomplete gear that can respectively contact the second contact wheel and the first contact wheel. The power motor is power-connected to a power shaft. A threaded shaft sleeve is slidably connected in the lifting cavity. The threaded shaft sleeve is threadedly connected with the power shaft. The threaded shaft sleeve is fixedly connected with an antenna plate. An annular groove is provided in the antenna plate. A sliding ring is slidably connected in the annular groove. The sliding ring is fixedly connected with two symmetrically arranged telescopic rods. A rotating motor is fixedly connected to the upper end surface of the antenna plate. The rotating motor is power-connected to a steering shaft. The steering shaft is hinged to the radio antenna. The telescopic rod is hinged with a slider slidably connected to the radio antenna.
[0009] The present invention provides a penetration testing device for the data transmission security of a wireless data radio, which has the following beneficial effects: By setting a fixing structure, the present invention protects the radio antenna from adverse weather and prevents the radio from being damaged through a fan that can rotate when the wind blows and an annular baffle that can extend above the mounting base when the wind blows in the fixing structure. By setting a disassembly mechanism, the present invention can fix the mounting block through a first clamping block that can be clamped into the first clamping groove and a second clamping block that can be clamped into the second clamping groove, ensuring the firm installation of the radio. By setting an adjustment mechanism, the present invention can drive the radio antenna to rotate through a steering shaft that can rotate in the adjustment mechanism, thereby adjusting the direction of the radio antenna to receive signals and ensuring the signal reception effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0010] Figure 1 FIG. is a three-dimensional schematic diagram of a penetration testing device for the data transmission security of a wireless data radio according to the present invention;
[0011] Figure 2 FIG. is a schematic diagram of the internal structure of a penetration testing device for the data transmission security of a wireless data radio according to the present invention;
[0012] Figure 3 is the present invention Figure 2 Schematic diagram of the structure at A-A in;
[0013] Figure 4 is the present invention Figure 2 Partial enlarged schematic diagram of the transmission cavity in;
[0014] Figure 5 is the present invention Figure 3 Schematic diagram of the structure at B-B in;
[0015] Figure 6 is the present invention Figure 3 Partial enlarged schematic diagram of the second clamping groove in;
[0016] Figure 7 is the present invention Figure 4 Partial enlarged schematic diagram of the hinge cavity in;
[0017] In the figure:
[0018] 10. Mounting base; 11. Mounting cavity; 12. Annular groove; 13. First card slot; 14. Rotating cavity; 15. Rotating sleeve; 16. Connecting block; 17. Fan shaft; 18. Fan; 19. Rotating shaft; 20. Driving bevel gear; 21. Rotating bevel gear; 22. Hydraulic oil cavity; 23. Placing plate; 24. Buffer spring; 25. Mounting block; 26. Antenna cavity; 27. Lifting cavity; 28. Transmission cavity; 29. Liquid pushing cavity; 30. Hinge cavity; 31. Push rod cavity; 32. Second card slot; 33. Spring cavity; 34. Block spring; 35. Second block; 36. Pulling rope plate; 37. Pulling rope cavity; 38. First block; 39. Pulling rope spring; 40. Annular plate; 41. Annular baffle; 42. Power motor; 43. Power shaft; 44. Threaded shaft sleeve; 45. Antenna plate; 46. Ring groove; 47. Sliding ring; 48. Telescopic rod; 49. Slide block; 50. Rotating motor; 51. Steering shaft; 52. Radio antenna; 53. Centrifugal wheel; 54. Centrifugal cavity; 55. Magnetic plate; 56. Connecting spring; 57. Pushing plate; 58. Connecting rod; 59. Repulsive plate; 60. Contact switch; 61. Transmission shaft; 62. Incomplete gear; 63. Winding shaft; 64. First contact wheel; 65. Thrust plate; 66. Winding pulling rope; 67. Rotating shaft; 68. Second contact wheel; 69. Rotating wheel; 70. Hinge rod; 71. Hinge pushing plate; 72. Push rod; 73. Abutting pushing plate; 74. Reset spring; 75. Winding wheel; 81. Fixing structure; 82. Disassembly mechanism; 83. Adjusting mechanism. Detailed implementation manners
[0019] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0020] Refer to Figures 1-7, the present invention provides a technical solution: a penetration testing device for the data transmission security of a wireless data radio, including a mounting base 10, the mounting base 10 is fixedly installed on the mounting plane by bolts, an installation cavity 11 with an open upper end is provided in the mounting base 10, a first card slot 13 is communicated with the outer end wall of the installation cavity 11, a rotating cavity 14 is provided in the rear end wall of the installation cavity 11, an annular groove 12 is provided in the outer end wall of the installation cavity 11, two symmetric spring cavities 33 are provided in the front and rear end walls of the installation cavity 11, a hydraulic oil cavity 22 communicated with the annular groove 12 is provided in the left end wall of the rotating cavity 14, an installation block 25 is installed and connected in the installation cavity 11, a fixing structure 81 is provided in the mounting base 10, a dismounting mechanism 82 and an adjusting mechanism 83 are provided in the installation block 25. The fixing structure 81 can fix the installation block 25, which is convenient for personnel to install, and can also prevent the radio from being damaged in bad weather. The dismounting mechanism 82 can make the installation block 25 no longer fixedly install the installation block 25, which is convenient for removing the radio. The adjusting mechanism 83 can adjust the signal receiving direction of the radio to ensure the communication effect.
[0021] Among them, the fixing structure 81 includes a rotating sleeve 15 rotatably connected to the upper end surface of the mounting base 10. The rotating sleeve 15 is fixedly connected to a connecting block 16. The connecting block 16 is rotatably connected to a fan shaft 17. The fan shaft 17 is fixedly connected to a rotating cone wheel 21. The fan shaft 17 is fixedly connected to a fan 18. A rotating shaft 19 with one end located above the mounting base 10 is rotatably connected to the lower end wall of the rotating cavity 14. The rotating shaft 19 is fixedly connected to a driving cone wheel 20 meshing with the rotating cone wheel 21. The rotating shaft 19 is fixedly connected to a centrifugal wheel 53 located in the rotating cavity 14. Four centrifugal cavities 54 are symmetrically distributed in the center of the centrifugal wheel 53. The outer side of the centrifugal cavity 54 is open. A magnetic plate 55 is slidably connected in the centrifugal cavity 54. A connecting spring 56 is connected between the magnetic plate 55 and the end wall of the centrifugal cavity 54. A push plate 57 is slidably connected in the hydraulic oil cavity 22. The push plate 57 is fixedly connected to a connecting rod 58 with one end located in the rotating cavity 14. The connecting rod 58 is fixedly connected to a repulsive plate 59 located in the rotating cavity 14. The magnetic plate 55 repels the repulsive plate 59. A contact switch 60 is fixedly connected to the right end wall of the hydraulic oil cavity 22. An annular plate 40 is slidably connected in the annular groove 12. The annular plate 40 is fixedly connected to an annular baffle 41 with one end located above the mounting base 10. When the connecting rod 58 moves, it drives the push plate 57 to move, thereby discharging the hydraulic oil in the hydraulic oil cavity 22 into the annular groove 12, thereby driving the annular plate 40 to move, and then driving the annular baffle 41 to move to the outer side position of the installation block 25, thereby shielding the radio antenna 52 to a certain extent.
[0022] Among them, the disassembly mechanism 82 includes a placement plate 23 slidably connected in the installation cavity 11. Between the placement plate 23 and the lower end wall of the installation cavity 11, there are two symmetrically arranged buffer springs 24. The installation block 25 is placed on the buffer springs 24. An antenna cavity 26 with an upward opening is provided in the installation block 25. A lifting cavity 27 is provided in the lower end wall of the antenna cavity 26. A transmission cavity 28 is provided in the lower end wall of the lifting cavity 27. Four symmetrically distributed rope pulling cavities 37 are provided in the installation block 25. Two symmetrically arranged push rod cavities 31 are provided in the left and right end walls of the lifting cavity 27. A second card slot 32 with an outer opening is provided in the end wall of the push rod cavity 31 away from the symmetric center. A rope pulling plate 36 is slidably connected in the rope pulling cavity 37. A rope pulling spring 39 is connected between the rope pulling plate 36 and the end wall of the rope pulling cavity 37. The rope pulling plate 36 is fixedly connected with a first card block 38 whose one end can be inserted into the first card slot 13. A second card block 35 is slidably connected in the spring cavity 33. A card block spring 34 is connected between the second card block 35 and the end wall of the spring cavity 33. The second card block 35 can be inserted into the second card slot 32. A thrust plate 65 is slidably connected in the push rod cavity 31. The thrust plate 65 is fixedly connected with a push rod 72 whose one end is located in the second card slot 32. The push rod 72 is fixedly connected with an abutting push plate 73 located in the second card slot 32. The abutting push plate 73 abuts against the second card block 35. A winding shaft 63 is rotatably connected to the upper end wall of the transmission cavity 28. The winding shaft 63 is fixedly connected with a first contact wheel 64. The winding shaft 63 is fixedly connected with a winding wheel 75. The winding wheel 75 winds a winding rope 66 whose one end is connected with the rope pulling plate 36. A hinge cavity 30 is provided in the lower end wall of the transmission cavity 28. A rotating shaft 67 whose one end is located in the hinge cavity 30 is rotatably connected to the upper end wall of the transmission cavity 28. The rotating shaft 67 is fixedly connected with a second contact wheel 68 located in the transmission cavity 28. The rotating shaft 67 is fixedly connected with a rotating wheel 69 located in the hinge cavity 30. The rotating wheel 69 is hinged with a hinge rod 70. A liquid pushing cavity 29 communicating with the two push rod cavities 31 is provided in the right end wall of the hinge cavity 30. An articulated push plate 71 is slidably connected in the liquid pushing cavity 29. A return spring 74 is connected between the articulated push plate 71 and the end wall of the liquid pushing cavity 29. The hinge rod 70 is hinged with the articulated push plate 71. When the power motor 42 outputs power, it drives the transmission shaft 61 to rotate, thereby driving the incomplete gear 62 to rotate, thereby driving the second contact wheel 68 to rotate, thereby driving the rotating shaft 67 to rotate, thereby driving the rotating wheel 69 to rotate, thereby driving the hinge rod 70 to move.
[0023] Among them, the adjustment mechanism 83 includes a power motor 42 fixedly connected to the lower end wall of the lifting cavity 27. The power motor 42 is power-connected to a transmission shaft 61 with one end located in the transmission cavity 28. The transmission shaft 61 is fixedly connected with an incomplete gear 62 capable of contacting the second contact wheel 68 and the first contact wheel 64 respectively. The power motor 42 is power-connected to a power shaft 43. A threaded bushing 44 is slidably connected in the lifting cavity 27. The threaded bushing 44 is threadedly connected to the power shaft 43. The threaded bushing 44 is fixedly connected with an antenna plate 45. An annular groove 46 is provided in the antenna plate 45. A sliding ring 47 is slidably connected in the annular groove 46. The sliding ring 47 is fixedly connected with two symmetrically arranged telescopic rods 48. A rotating motor 50 is fixedly connected to the upper end surface of the antenna plate 45. The rotating motor 50 is power-connected to a steering shaft 51. The steering shaft 51 is hinged to the radio antenna 52. The telescopic rod 48 is hinged to a slider 49 slidably connected to the radio antenna 52. When it is necessary to adjust the angle of the radio antenna 52, start the two telescopic rods 48 to cooperate with each other in telescoping, so that the radio antenna 52 deflects, thereby adjusting the angle.
[0024] A penetration testing device for the data transmission security of a wireless data transmission radio according to the present invention has the following working process:
[0025] In the initial state, the mounting seat 10 is fixed to the mounting surface by bolts. The annular baffle 41 is in the lowermost position. The hydraulic oil chamber 22 is filled with hydraulic oil. The block spring 34 is in a relaxed state. The second block 35 can be inserted into the second card slot 32. The pull rope spring 39 is in a relaxed state. The liquid pushing chamber 29 is filled with hydraulic oil. The return spring 74 is in a relaxed state. The incomplete gear 62 just contacts the second contact wheel 68.
[0026] First step, when the radio needs to be installed, place the installation block 25 into the installation cavity 11 and make it contact with the placement plate 23. Press the installation block 25 downward to compress the buffer spring 24, so that the buffer spring 24 can play a buffering role when the installation block 25 shakes. When the first latch 38 moves to the inner position of the first slot 13, under the elastic force of the pull rope spring 39, the first latch 38 is snapped into the first slot 13. At this time, the second latch 35 is at the same height position as the second slot 32. Rotate the installation block 25. When the second latch 35 is in the corresponding position with the second slot 32, the second latch 35 is snapped into the second slot 32 to fix the installation block 25. When starting to receive signals, start the power motor 42 to output power, which drives the power shaft 43 to rotate, drives the threaded bushing 44 to move upward, drives the antenna plate 45 to move upward, drives the radio antenna 52 to move upward, so that the radio antenna 52 moves to a high position for convenient signal reception. When the angle of the radio antenna 52 needs to be adjusted, start the two telescopic rods 48 to cooperate in telescoping, so that the radio antenna 52 deflects to adjust the angle. When the signal reception direction needs to be adjusted, start the rotation motor 50 to output power, which drives the steering shaft 51 to rotate, drives the radio antenna 52 to rotate, drives the sliding ring 47 to rotate, and adjusts the signal reception direction;
[0027] Second step, when there is a stormy weather, the wind blows the fan 18 to rotate, which drives the fan shaft 17 to rotate, drives the rotating cone pulley 21 to rotate, drives the transmission cone pulley 20 to rotate, drives the rotating shaft 19 to rotate, and drives the centrifugal wheel 53 to rotate. When the centrifugal wheel 53 rotates to a certain speed, the magnetic plate 55 moves away from the center of symmetry, repels the repulsive plate 59, drives the connecting rod 58 to move, drives the push plate 57 to move, discharges the hydraulic oil in the hydraulic oil cavity 22 into the annular groove 12, drives the annular plate 40 to move, drives the annular baffle 41 to move to the outer position of the installation block 25, and shields the radio antenna 52 to a certain extent to avoid damage to the radio antenna 52. When the storm is too strong, the centrifugal wheel 53 rotates to a certain speed, so that the push plate 57 moves to contact the contact switch 60, controls the power motor 42 to start reverse output power, drives the power shaft 43 to reverse, drives the threaded bushing 44 to move downward, drives the radio antenna 52 to move downward, and makes the radio antenna 52 return to the antenna cavity 26 to avoid damage to the radio;
[0028] Step 3: When it is necessary to remove the mounting block 25, start the power motor 42 to output power, thereby driving the transmission shaft 61 to rotate, thereby driving the incomplete gear 62 to rotate, thereby driving the second contact wheel 68 to rotate, thereby driving the rotating shaft 67 to rotate, thereby driving the rotating wheel 69 to rotate, thereby driving the articulated rod 70 to move, thereby driving the articulated push plate 71 to move, thereby discharging the hydraulic oil in the liquid pushing cavity 29 into the two push rod cavities 31, thereby pushing the thrust plate 65, thereby driving the push rod 72 to move, thereby driving the abutting push plate 73 to move, thereby pushing the second locking block 35, thereby pushing the second locking block 35 out of the second clamping groove 32, so that the second locking block 35 cannot lock the mounting block 25. At this time, rotate the mounting block 25, so that the second locking block 35 cannot be inserted into the second clamping groove 32. At this time, the incomplete gear 62 is disengaged from the second contact wheel 68 and contacts the first contact wheel 64, thereby driving the first contact wheel 64 to rotate, thereby driving the winding shaft 63 to rotate, thereby driving the winding wheel 75 to rotate, thereby winding the winding rope 66, thereby pulling the rope plate 36, thereby driving the first locking block 38 to move, so that the first locking block 38 no longer engages with the first clamping groove 13, thereby facilitating the removal of the mounting block 25.
[0029] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations.
[0030] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A penetration testing device for the data transmission security of a wireless data radio, comprising a mounting base (10), characterized in that: The mounting base (10) is fixedly installed on the mounting plane by bolts. An installation cavity (11) with an upper opening is provided in the mounting base (10). A first card slot (13) is provided in the outer end wall of the installation cavity (11). A rotating cavity (14) is provided in the rear end wall of the installation cavity (11). An annular groove (12) is provided in the outer end wall of the installation cavity (11). Two symmetric spring cavities (33) are provided in the front and rear end walls of the installation cavity (11). A hydraulic oil cavity (22) communicating with the annular groove (12) is provided in the left end wall of the rotating cavity (14). An installation block (25) is installed and connected in the installation cavity (11). A fixing structure (81) is provided in the mounting base (10). A disassembly mechanism (82) and an adjustment mechanism (83) are provided in the installation block (25). The fixing structure (81) can fix the installation block (25), which is convenient for personnel to install and can avoid damage to the radio in bad weather. The disassembly mechanism (82) can make the installation block (25) no longer fix the installation block (25), which is convenient for taking away the radio. The adjustment mechanism (83) can adjust the radio signal receiving direction to ensure the communication effect; The fixing structure (81) includes a rotating sleeve (15) rotatably connected to the upper end surface of the mounting base (10). The rotating sleeve (15) is fixedly connected to a connecting block (16). The connecting block (16) is rotatably connected to a fan shaft (17). The fan shaft (17) is fixedly connected to a rotating cone pulley (21). The fan shaft (17) is fixedly connected to a fan (18). A rotating shaft (19) with one end located above the mounting base (10) is rotatably connected to the lower end wall of the rotating cavity (14). The rotating shaft (19) is fixedly connected to a driving cone pulley (20) meshing with the rotating cone pulley (21). The rotating shaft (19) is fixedly connected to a centrifugal wheel (53) located in the rotating cavity (14). Four centrifugal cavities (54) are symmetrically distributed in the center of the centrifugal wheel (53). The outer side of the centrifugal cavity (54) is open. A magnetic plate (55) is slidably connected in the centrifugal cavity (54). A connecting spring (56) is connected between the magnetic plate (55) and the end wall of the centrifugal cavity (54); The disassembly mechanism (82) includes a placement plate (23) slidably connected in the installation cavity (11). Between the placement plate (23) and the lower end wall of the installation cavity (11), there are two symmetrically arranged buffer springs (24) on the left and right. The installation block (25) is placed on the buffer springs (24). An antenna cavity (26) with an upward opening is provided in the installation block (25). A lifting cavity (27) is provided in the lower end wall of the antenna cavity (26). A transmission cavity (28) is provided in the lower end wall of the lifting cavity (27). Four symmetrically distributed rope pulling cavities (37) are provided in the installation block (25). Symmetrically arranged two push rod cavities (31) are provided in the left and right end walls of the lifting cavity (27). A second card slot (32) with an outer opening is provided in the end wall of the push rod cavity (31) away from the symmetric center. A rope pulling plate (36) is slidably connected in the rope pulling cavity (37). A rope pulling spring (39) is connected between the rope pulling plate (36) and the end wall of the rope pulling cavity (37). The rope pulling plate (36) is fixedly connected with a first card block (38) whose one end can be clamped into the first card slot (13). The adjustment mechanism (83) includes a power motor (42) fixedly connected to the lower end wall of the lifting cavity (27). The power motor (42) is power-connected to a transmission shaft (61) with one end located in the transmission cavity (28). The transmission shaft (61) is fixedly connected with an incomplete gear (62) that can respectively contact the second contact wheel (68) and the first contact wheel (64). The power motor (42) is power-connected to a power shaft (43).
2. The penetration testing device for the security of wireless data radio station data transmission according to claim 1, wherein: A push plate (57) is slidably connected in the hydraulic oil cavity (22). The push plate (57) is fixedly connected with a connecting rod (58) with one end located in the rotating cavity (14). The connecting rod (58) is fixedly connected with a repulsive plate (59) located in the rotating cavity (14). The magnetic plate (55) repels the repulsive plate (59). A contact switch (60) is fixedly connected to the right end wall of the hydraulic oil cavity (22). An annular plate (40) is slidably connected in the annular groove (12). The annular plate (40) is fixedly connected with an annular baffle (41) with one end located above the mounting seat (10).
3. The penetration testing device for the data transmission security of a wireless data radio according to claim 2, characterized in that: A second latch block (35) is slidably connected within the spring chamber (33). A latch spring (34) is connected between the second latch block (35) and the end wall of the spring chamber (33). The second latch block (35) can be inserted into the second slot (32). A thrust plate (65) is slidably connected within the push rod chamber (31). The thrust plate (65) is fixedly connected to a push rod (72) with one end located within the second slot (32). The push rod (72) is fixedly connected to an abutting push plate (73) located within the second slot (32). The abutting push plate (73) abuts against the second latch block (35). A winding shaft (63) is rotatably connected to the upper end wall of the transmission chamber (28). The winding shaft (63) is fixedly connected to a first contact wheel (64). The winding shaft (63) is fixedly connected to a winding wheel (75). A winding drawstring (66) with one end connected to the drawstring plate (36) is wound around the winding wheel (75).
4. The penetration testing device for the security of data transmission of a wireless data radio according to claim 3, characterized in that: An articulated chamber (30) is provided within the lower end wall of the transmission chamber (28). A rotating shaft (67) with one end located within the articulated chamber (30) is rotatably connected to the upper end wall of the transmission chamber (28). The rotating shaft (67) is fixedly connected to a second contact wheel (68) located within the transmission chamber (28). The rotating shaft (67) is fixedly connected to a rotating wheel (69) located within the articulated chamber (30). The rotating wheel (69) is articulated with an articulated rod (70). A liquid pushing chamber (29) communicating with the two push rod chambers (31) is provided within the right end wall of the articulated chamber (30). An articulated push plate (71) is slidably connected within the liquid pushing chamber (29). A return spring (74) is connected between the articulated push plate (71) and the end wall of the liquid pushing chamber (29). The articulated rod (70) is articulated with the articulated push plate (71).
5. The penetration testing device for the data transmission security of a wireless data radio according to claim 4, characterized in that: A threaded shaft sleeve (44) is slidably connected within the lifting chamber (27). The threaded shaft sleeve (44) is threadedly connected to the power shaft (43). The threaded shaft sleeve (44) is fixedly connected to an antenna plate (45). An annular groove (46) is provided within the antenna plate (45). A sliding ring (47) is slidably connected within the annular groove (46). The sliding ring (47) is fixedly connected to two symmetrically arranged telescopic rods (48). A rotating motor (50) is fixedly connected to the upper end face of the antenna plate (45). The rotating motor (50) is power-connected to a steering shaft (51). The steering shaft (51) is articulated with a radio antenna (52). The telescopic rod (48) is articulated with a slider (49) slidably connected to the radio antenna (52).
Citation Information
Patent Citations
Radio station convenient to fix and install
CN215663859U
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