Communication electric power iron tower structure with digging warning function
The rotary alarm device, driven by gear meshing and servo motor, solves the problems of long installation time and equipment loosening caused by vibration in existing iron tower structures, realizes rapid assembly and multi-directional alarm, and improves emergency response efficiency.
Patent Information
- Application Number
- CN202510740743.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-05
- Publication Date
- 2025-08-12
Smart Images

Figure CN120465757A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of iron tower equipment, in particular to a communication and power iron tower structure with earth-digging warning function. Background Art
[0002] Power towers or communication towers equipped with excavation warning systems typically feature soil detection devices. Multiple soil detection devices are installed underground within the tower's protective perimeter, and these devices are in continuous operation. If excavation causes a device to rupture, an alert is immediately transmitted via a remote transmission device, allowing the system to determine if the soil surrounding the tower has been damaged.
[0003] When the existing communication power tower structure with earth-moving warning is in use, the soil detector has always continued the traditional screw crimping fixing technology. Its installation and disassembly process is cumbersome, which causes the tower construction process to take a long time. Moreover, the tower is in a low-frequency vibration environment for a long time due to factors such as wind or surrounding construction, which may cause the electronic components inside the alarm device to loosen or the solder joints to fall off. In addition, traditional unilateral or directional alarms may be blocked from the view, resulting in people in some areas not being able to perceive the warning, making it difficult to quickly and effectively locate the accident site, affecting the efficiency of emergency response. Summary of the Invention
[0004] The present invention relates to a communication power tower structure with earth-digging warning, which is driven by the meshing transmission of a first gear and two tooth plates, and can drive an adjustment rod to slide along a limit slide groove, so that the two positioning frames can be simultaneously engaged with the first limit groove and the second limit groove. Since no tools are required during the entire assembly process, the loading and unloading efficiency of the detector body and the tower body is improved. The connection structure is simple and the assembly process is flexible and convenient.
[0005] The present invention provides a communication power tower structure with earth-digging warning, specifically comprising: an iron tower body, wherein two detector bodies are provided at the bottom of the iron tower body, and the two detector bodies are symmetrically distributed and buried below the ground; two positioning frames are provided on the detector bodies, and the two positioning frames are symmetrically distributed; a fixed ring frame is provided on the iron tower body; a supporting top plate is provided on the iron tower body, and the supporting top plate is located above the fixed ring frame; an annular frame is provided on the top of the supporting top plate; a movable frame is provided on the annular frame; a servo motor is provided on the movable frame; four traction ropes are provided on the outer circumference of the iron tower body, and the four traction ropes are distributed in a rectangular array, and the bottom ends of the traction ropes are connected to the ground line; Four connecting brackets are provided at the bottom of the iron tower main body, and the four connecting brackets are distributed in a rectangular array. A fixed bottom plate is provided on the connecting bracket, and the fixed bottom plate is fixedly connected to the ground base through bolts. On both sides of the outer periphery of the connecting bracket near the bottom end, there are two first limiting grooves, and the two first limiting grooves are distributed symmetrically. Four first fixing blocks are provided at the top position of the iron tower main body, and the fixed ring frame is connected to the iron tower main body through the first fixing blocks.
[0006] Further, two docking sleeves are provided at the top of the detector body, and the two docking sleeves are distributed symmetrically. Two second limiting grooves are provided on the outer periphery of the docking sleeve, and the two second limiting grooves are distributed symmetrically. A fixed seat is provided at the top of the detector body.
[0007] Further, the fixed seat is provided with two limiting chutes, and the two limiting chutes are distributed symmetrically. A rotating column is rotatably installed at the middle position of the fixed seat. A first gear is provided on the rotating column, and the first gear is located inside the fixed seat. A knob is provided at the top end of the rotating column.
[0008] Further, the positioning frame is of a "C" - shaped structure, and adjusting rods are provided on the relatively inner sides of the two positioning frames. Tooth plates are provided on the adjusting rods, and the two tooth plates are distributed centrosymmetrically.
[0009] Further, the bottom end of the connecting bracket is inserted into the docking sleeve, and the positioning frame is clamped with the first limiting groove and the second limiting groove. Moreover, the adjusting rod is slidably connected to the fixed seat through the limiting chute, and the two tooth plates are meshed with the first gear.
[0010] Further, four second fixing blocks are provided on the fixed ring frame, and the four second fixing blocks are distributed in a circular array. A limiting sleeve is provided on the second fixing block.
[0011] Further, four connecting sleeve hoops are provided on the inner periphery of the support top plate, and the four connecting sleeve hoops are distributed in a circular array. Moreover, the support top plate is connected to the iron tower main body through the connecting sleeve hoops. Four limiting insertion rods are provided at the bottom of the support top plate, and the four limiting insertion rods are distributed in a circular array. A compression spring is sleeved on the limiting insertion rod. The limiting insertion rod slidably penetrates through the limiting sleeve, and the compression spring is supported between the limiting sleeve and the support top plate.
[0012] Further, the annular frame body includes a fixed frame, an adjusting frame and a toothed ring. The fixed frame is fixedly installed on the support top plate through bolts. Adjusting frames are provided on both sides of the fixed frame, and the adjusting frame and the fixed frame form an annular structure. The adjusting frame is rotatably connected to the fixed frame through a pin shaft, and the adjusting frame is fixedly connected to the support top plate through bolts. Toothed rings are provided on the inner peripheral surfaces of the adjusting frame and the fixed frame.
[0013] Furthermore, the movable frame is slidably installed on the adjustment frame and the fixed frame, a mounting seat is provided on the top of the movable frame, an alarm light is provided on the top of the mounting seat, a loudspeaker is provided on one side of the mounting seat, a protective cover is provided on the top of the movable frame, and the servo motor is located in the protective cover.
[0014] Furthermore, a rotating shaft is provided at the bottom of the servo motor, a second gear is provided on the rotating shaft, the rotating shaft is rotatably connected to the movable frame through a bearing, and the second gear is meshed with the gear ring.
[0015] The present invention provides a communication power tower structure with an earth-digging warning function, which has the following beneficial effects: In the present invention, by manually turning the knob, the first gear and the two toothed plates are engaged and transmitted, which can drive the adjusting rod to slide along the limiting slide groove, so that the two positioning frames can be simultaneously engaged with the first limiting groove and the second limiting groove. Since no tools are required during the entire assembly process, the loading and unloading efficiency of the detector body and the tower body is improved. The connection structure is simple and the assembly process is flexible and convenient.
[0016] In addition, in the present invention, the fixed ring frame is connected to the main body of the iron tower, and the limiting rod and the limiting sleeve cooperate with each other, and the elastic effect of the compression spring is utilized to buffer the alarm equipment set above the supporting top plate, isolate the vibration of the iron tower body, and effectively reduce the vibration amplitude transmitted to the alarm equipment, thereby increasing the service life of the components in the alarm equipment.
[0017] In addition, when the detector body triggers the excavation signal, the servo motor provides power to drive the rotating shaft to rotate. Through the meshing transmission of the second gear and the gear ring, the mobile frame can drive the alarm equipment to rotate 306 degrees along the ring frame, and use the alarm light and loudspeaker to emit sound and light alarms to ensure that the signal can be received in all directions centered on the tower. It can help surrounding personnel quickly determine the location through the direction of sound and the synchronization of light flashing, thereby guiding security personnel or operation and maintenance personnel to deal with the situation accurately. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments are briefly introduced below.
[0019] The drawings described below only relate to some embodiments of the present invention, but are not intended to limit the present invention.
[0020] In the attached figure: Figure 1 A schematic diagram showing the overall structure of the present application; Figure 2 A schematic diagram showing part of the tower body, detector body and positioning frame of the present application is shown; Figure 3A schematic diagram showing the disassembled state of the connection stand, detector body and positioning frame of the present application is shown; Figure 4 Shows the application Figure 3 A schematic diagram of the enlarged portion A in the middle; Figure 5 A schematic diagram showing part of the tower body, fixed ring frame, supporting top plate, annular frame and movable frame of the present application is shown; Figure 6 A schematic diagram showing the disassembled state of the supporting top plate and the fixed ring frame of the present application is shown; Figure 7 A schematic diagram showing the annular frame and the supporting top plate of the present application in a disassembled state; Figure 8 A schematic diagram showing the disassembled state of the movable frame and the servo motor of the present application is shown.
[0021] List of reference numerals: 1. Tower body; 101. Connecting bracket; 102. Fixed base; 103. First limiting groove; 104. First fixing block; 2. Detector body; 201. Docking sleeve; 202. Second limiting groove; 203. Fixing seat; 2031. Limiting slide; 2032. Rotating column; 2033. First gear; 2034. Knob; 3. Positioning frame; 301. Adjusting rod; 302. Tooth plate; 4. Fixed ring frame; 401. Second fixed block; 402, limiting sleeve; 5, supporting top plate; 501, connecting hoop; 502, limiting rod; 503, compression spring; 6, annular frame; 601, fixed frame; 602, adjusting frame; 603, gear ring; 7, movable frame; 701, mounting seat; 702, alarm light; 703, loudspeaker; 704, protective cover; 8, servo motor; 801, rotating shaft; 802, second gear; 9, traction rope. DETAILED DESCRIPTION
[0022] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of 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 described 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.
[0023] Example 1: Please refer to Figures 1 to 8 : The present invention provides a communication power transmission tower structure with earth-digging warning, including: a tower main body 1, at the bottom of the tower main body 1, there are two detector bodies 2, and the two detector bodies 2 are symmetrically distributed, and the detector bodies 2 are buried below the ground; on the detector body 2, there are two positioning frames 3, and the two positioning frames 3 are symmetrically distributed; on the tower main body 1, there is a fixed ring frame 4; on the tower main body 1, there is a support top plate 5, and the support top plate 5 is located above the fixed ring frame 4; on the top of the support top plate 5, there is an annular frame body 6; on the annular frame body 6, there is a moving frame 7; on the moving frame 7, there is a servo motor 8; on the outer periphery of the tower main body 1, there are four traction ropes 9, and the four traction ropes 9 are distributed in a rectangular array, and the bottom end of the traction rope 9 is connected to the ground wire; At the bottom of the tower main body 1, there are four connecting leg frames 101, and the four connecting leg frames 101 are distributed in a rectangular array. On the connecting leg frame 101, there is a fixed bottom plate 102, and the fixed bottom plate 102 is fixedly connected to the ground base by bolts. On both sides of the outer periphery of the connecting leg frame 101 near the bottom end, there are two first limiting grooves 103, and the two first limiting grooves 103 are symmetrically distributed. At the position near the top of the tower main body 1, there are four first fixing blocks 104, and the fixed ring frame 4 is connected to the tower main body 1 through the first fixing blocks 104.
[0024] In this embodiment, as Figures 2 to 4 shown, on the top of the detector body 2, there are two docking sleeves 201, and the two docking sleeves 201 are symmetrically distributed. On the outer periphery of the docking sleeve 201, there are two second limiting grooves 202, and the two second limiting grooves 202 are symmetrically distributed. On the top of the detector body 2, there is a fixed seat 203; The fixed seat 203 has two limiting sliding grooves 2031, and the two limiting sliding grooves 2031 are symmetrically distributed. At the middle position of the fixed seat 203, a rotating column 2032 is rotatably installed. On the rotating column 2032, there is a first gear 2033, and the first gear 2033 is located inside the fixed seat 203. At the top end of the rotating column 2032, there is a knob 2034; The positioning frame 3 is a "C" - shaped structure, and on the relatively inner sides of the two positioning frames 3, there is an adjusting rod 301. On the adjusting rod 301, there is a toothed plate 302, and the two toothed plates 302 are centrosymmetrically distributed; The bottom end of the connecting bracket 101 is inserted into the docking sleeve 201, and the positioning frame 3 is engaged with the first limiting groove 103 and the second limiting groove 202, and the adjusting rod 301 is slidably connected to the fixing seat 203 through the limiting slide groove 2031, and the two tooth plates 302 are meshed with the first gear 2033. By manually turning the knob 2034, the first gear 2033 and the two tooth plates 302 are engaged and transmitted, which can drive the adjusting rod 301 to slide along the limiting slide groove 2031, and enable the two positioning frames 3 to be engaged with the first limiting groove 103 and the second limiting groove 202 at the same time. Since no tools are required during the entire assembly process, the loading and unloading efficiency of the detector body 2 and the tower body 1 is improved.
[0025] In this embodiment, Figure 5 and Figure 6 As shown, four second fixing blocks 401 are provided on the fixing ring frame 4, and the four second fixing blocks 401 are distributed in a circular array, and a limiting sleeve 402 is provided on the second fixing block 401; Four connecting hoops 501 are provided on the inner circumference of the supporting top plate 5, and the four connecting hoops 501 are distributed in a circular array, and the supporting top plate 5 is connected to the tower body 1 through the connecting hoops 501, and four limiting rods 502 are provided at the bottom of the supporting top plate 5, and the four limiting rods 502 are distributed in a circular array, and a compression spring 503 is mounted on the limiting rod 502, and the limiting rod 502 slides through the limiting sleeve 402, and the compression spring 503 is supported between the limiting sleeve 402 and the supporting top plate 5. In the present invention, the fixed ring frame 4 is connected to the tower body 1, and the limiting rod 502 and the limiting sleeve 402 cooperate with each other, and the elastic action of the compression spring 503 can be used to buffer the alarm equipment arranged above the supporting top plate 5, isolate the vibration of the tower body, and effectively reduce the vibration amplitude transmitted to the alarm equipment.
[0026] Example 2, based on Example 1, Figures 6 to 8 As shown, the annular frame 6 includes a fixed frame 601, an adjusting frame 602 and a gear ring 603. The fixed frame 601 is fixedly mounted on the support top plate 5 by bolts. Adjusting frames 602 are provided on both sides of the fixed frame 601, and the adjusting frames 602 and the fixed frame 601 form an annular structure. The adjusting frame 602 is rotatably connected to the fixed frame 601 by a pin, and the adjusting frame 602 is fixedly connected to the support top plate 5 by bolts. A gear ring 603 is provided on the inner circumference of the adjusting frame 602 and the fixed frame 601; The movable frame 7 is slidably mounted on the adjustment frame 602 and the fixed frame 601. A mounting seat 701 is provided on the top of the movable frame 7. An alarm light 702 is provided on the top of the mounting seat 701. A loudspeaker 703 is provided on one side of the mounting seat 701. A protective cover 704 is provided on the top of the movable frame 7, and the servo motor 8 is located inside the protective cover 704. A rotating shaft 801 is provided at the bottom of the servo motor 8, and a second gear 802 is provided on the rotating shaft 801. The rotating shaft 801 is rotatably connected to the mobile frame 7 through a bearing, and the second gear 802 is meshed with the gear ring 603. When the detector body 2 triggers the excavation signal, the servo motor 8 provides power to drive the rotating shaft 801 to rotate. Through the meshing transmission of the second gear 802 and the gear ring 603, the mobile frame 7 can drive the alarm device to rotate 360 degrees along the annular frame 6, and use the alarm light 702 and the loudspeaker 703 to emit an audible and visual alarm to ensure that the signal can be received in all directions centered on the iron tower.
[0027] The working principle of this embodiment is as follows: when in use, by manually turning the knob 2034, the first gear 2033 and the two tooth plates 302 are engaged and driven, which can drive the adjusting rod 301 to slide along the limiting slide groove 2031, so that the two positioning frames 3 can be simultaneously engaged with the first limiting groove 103 and the second limiting groove 202. Since no tools are required during the entire assembly process, the loading and unloading efficiency of the detector body 2 and the tower body 1 is improved; the fixed ring frame 4 is connected to the tower body 1, and the limiting rod 502 and the limiting sleeve 402 cooperate with each other, and the compression is used. The elastic action of the spring 503 can buffer the alarm device installed above the supporting top plate 5, isolate the vibration of the tower body, and effectively reduce the vibration amplitude transmitted to the alarm device; when the detector body 2 triggers the excavation signal, the servo motor 8 provides power to drive the rotating shaft 801 to rotate, and through the engagement transmission of the second gear 802 and the gear ring 603, the mobile frame 7 can drive the alarm device to rotate 360 degrees along the annular frame 6, and use the alarm light 702 and the loudspeaker 703 to emit sound and light alarms to ensure that the signal can be received in all directions centered on the tower.
[0028] The embodiments of the present invention are presented for purposes of illustration and description and are not intended to be exhaustive or to limit the invention to the disclosed forms. Many modifications and variations will be apparent to those skilled in the art. The embodiments are chosen and described in order to better illustrate the principles of the invention and its practical application and to enable those skilled in the art to understand the invention and design various embodiments with various modifications as suited for specific applications.
Claims
1. A communication power tower structure with earth-moving warning function, characterized in that: Including: The main body of the iron tower (1), at the bottom of the main body of the iron tower (1), there are two detector bodies (2), and the two detector bodies (2) are distributed symmetrically, and the detector bodies (2) are buried below the ground; there are two positioning frames (3) on the detector body (2), and the two positioning frames (3) are distributed symmetrically; there is a fixed ring frame (4) on the main body of the iron tower (1); there is a support top plate (5) on the main body of the iron tower (1), and the support top plate (5) is located above the fixed ring frame (4); there is an annular frame body (6) on the top of the support top plate (5); there is a moving frame (7) on the annular frame body (6); there is a servo motor (8) on the moving frame (7); there are four traction ropes (9) on the outer periphery of the main body of the iron tower (1), and the four traction ropes (9) are distributed in a rectangular array, and the bottom end of the traction rope (9) is connected to the ground line; There are four connecting foot frames (101) at the bottom of the main body of the iron tower (1), and the four connecting foot frames (101) are distributed in a rectangular array. There is a fixed bottom plate (102) on the connecting foot frame (101), and the fixed bottom plate (102) is fixedly connected to the ground base by bolts. On both sides of the outer periphery of the connecting foot frame (101) near the bottom end, there are two first limiting grooves (103), and the two first limiting grooves (103) are distributed symmetrically. There are four first fixing blocks (104) at the position near the top of the main body of the iron tower (1), and the fixed ring frame (4) is connected to the main body of the iron tower (1) through the first fixing blocks (104).
2. The communication power tower structure for excavation warning according to claim 1, characterized in that: There are two docking sleeves (201) on the top of the detector body (2), and the two docking sleeves (201) are distributed symmetrically. There are two second limiting grooves (202) on the outer periphery of the docking sleeve (201), and the two second limiting grooves (202) are distributed symmetrically. There is a fixed seat (203) on the top of the detector body (2).
3. The communication power tower structure for excavation warning according to claim 2, characterized in that: The fixed seat (203) has two limiting sliding grooves (2031), and the two limiting sliding grooves (2031) are distributed symmetrically. A rotating column (2032) is rotatably installed at the middle position of the fixed seat (203). There is a first gear (2033) on the rotating column (2032), and the first gear (2033) is located inside the fixed seat (203). There is a knob (2034) at the top of the rotating column (2032).
4. The communication power tower structure for excavation warning according to claim 3, characterized in that: The positioning frame (3) is of a "C" - shaped structure, and there is an adjusting rod (301) on the relatively inner sides of the two positioning frames (3). There is a toothed plate (302) on the adjusting rod (301), and the two toothed plates (302) are distributed centrosymmetrically.
5. The communication power tower structure with earth-moving warning function according to claim 4, characterized in that: The bottom end of the connecting foot frame (101) is inserted into the docking sleeve (201), and the positioning frame (3) is clamped with the first limiting groove (103) and the second limiting groove (202). Moreover, the adjusting rod (301) is slidably connected to the fixed seat (203) through the limiting sliding groove (2031), and the two toothed plates (302) are meshed with the first gear (2033).
6. The communication power tower structure with earth-moving warning function according to claim 1, characterized in that: Four second fixing blocks (401) are provided on the fixing ring frame (4), and the four second fixing blocks (401) are distributed in a ring array. A limiting sleeve (402) is provided on the second fixing block (401).
7. The communication power tower structure with earth-moving warning function according to claim 1, characterized in that: The inner circumference of the support top plate (5) is provided with four connecting hoops (501), and the four connecting hoops (501) are distributed in a circular array. The support top plate (5) is connected to the iron tower body (1) through the connecting hoops (501). The bottom of the support top plate (5) is provided with four limiting rods (502), and the four limiting rods (502) are distributed in a circular array. A compression spring (503) is sleeved on the limiting rod (502). The limiting rod (502) slides through the limiting sleeve (402), and the compression spring (503) is supported between the limiting sleeve (402) and the support top plate (5).
8. The communication power tower structure with earth-moving warning function according to claim 1, characterized in that: The annular frame (6) includes a fixed frame (601), an adjusting frame (602) and a gear ring (603), wherein the fixed frame (601) is fixedly mounted on the supporting top plate (5) by means of bolts, and the adjusting frames (602) are provided on both sides of the fixed frame (601), and the adjusting frames (602) and the fixed frame (601) form an annular structure, wherein the adjusting frame (602) is rotatably connected to the fixed frame (601) by means of a pin, and the adjusting frame (602) is fixedly connected to the supporting top plate (5) by means of bolts, and the gear ring (603) is provided on the inner circumference of the adjusting frame (602) and the fixed frame (601).
9. The communication power tower structure with earth-moving warning function according to claim 1, characterized in that: The movable frame (7) is slidably mounted on the adjustment frame (602) and the fixed frame (601), a mounting seat (701) is provided on the top of the movable frame (7), an alarm light (702) is provided on the top of the mounting seat (701), a loudspeaker (703) is provided on one side of the mounting seat (701), a protective cover (704) is provided on the top of the movable frame (7), and the servo motor (8) is located in the protective cover (704).
10. The communication power tower structure for excavation warning according to claim 1, characterized in that The servo motor (8) is provided with a rotating shaft (801) at the bottom, and a second gear (802) is provided on the rotating shaft (801). The rotating shaft (801) is rotatably connected to the movable frame (7) through a bearing, and the second gear (802) is meshed with the gear ring (603).