Electricity taking structure of intelligent overhead line spacer capable of being perceived in global mode

By designing the Phillips screw and clamp structure for sliding connection in the power withdrawal structure, the problem of insufficient convenience and stability of the existing power withdrawal structure is solved, and convenient assembly and stable connection are achieved.

CN223246249UActive Publication Date: 2025-08-19ELECTRIC POWER SCI RES INST OF STATE GRID XINJIANG ELECTRIC POWER CO LTD
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Patent Information

Application Number
CN202422339682.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-25
Publication Date
2025-08-19
Estimated Expiration
2034-09-25

AI Technical Summary

Technical Problem

The existing power-taking structures are not convenient and stable during assembly, and are prone to loosening of screws due to shaking of the wire.

Method used

The upper power draw ring and the lower power draw ring are designed to be connected by a rotating shaft. Each ring is equipped with a reserved hole and a storage slot. The Phillips screws are slidly connected in the storage slot. They are equipped with a sliding groove and a block structure. The limit is achieved using springs and slide discs, and convenient assembly and tightening locking are achieved through a man-powered screwdriver.

Benefits of technology

It improves the convenience and stability of the power extraction structure, avoids screw looseness, and provides a convenient assembly process and stable connection effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a global perceptible power taking structure of an intelligent overhead line spacer, and relates to the technical field of power transmission equipment. The electricity taking structure of the global perceptible intelligent overhead line spacer comprises a wire, the wire is provided with a spacer body, each end of the spacer body is provided with an upper electricity taking ring and a lower electricity taking ring, and each upper electricity taking ring is connected with each lower electricity taking ring through a rotating shaft. The two sides of each upper electricity taking ring are each provided with two upper reserved holes, and the two sides of each lower electricity taking ring are each provided with two lower reserved holes. A containing groove is formed in the lower end of each upper preformed hole. According to the power taking structure of the intelligent overhead line spacer with the global perceptible function, the screwdriver is rotated manually to achieve the effect of convenient assembly, the effect of improving the use convenience of the power taking structure is achieved, the screwdriver is rotated manually to achieve the effect of tightening and locking, and the effect of improving the use stability of the power taking structure is achieved.
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Description

Technical Field

[0001] The utility model relates to a power-taking structure for an intelligent overhead line spacer bar that is fully perceptible, and belongs to the technical field of power transmission equipment. Background Art

[0002] The intelligent spacer is equipped with a variety of online monitoring devices such as remote video of the transmission line, micro-meteorology (temperature, humidity, air pressure), wind deviation, dancing, and conductor temperature measurement. The data information obtained by different online monitoring sensors is analyzed and processed using data fusion technology, including the collection, filtering, transmission, and comprehensive analysis of various data information. The monitored operation data is transmitted to the cloud server to assist in judgment, planning, detection, verification, and diagnosis, avoiding false alarms or low precision caused by errors in single sensor data. At the same time, based on the integrated acquisition technology of multi-sensor fusion and high-voltage equipotential mutual induction power taking, power is taken through the induction power taking structure, and long-term maintenance-free operation is achieved. , suitable for various ambient temperatures, the lowest can reach -40 ℃, the highest can reach 85 ℃. On the basis of not changing the spacer grip, the spacer rod adopts an independent measurement power grip structure, which is connected to the monitoring host through a flexible connecting line. The monitoring host is fixed in the middle gap of the spacer rod. The hardware of the non-electrical quantity sensor is divided into two parts, namely the measurement power structure and the monitoring host. The measurement power structure obtains electric energy through the energy acquisition module and completes basic energy processing. The energy will be used for the operation of the monitoring host. The current measurement module and the temperature measurement module obtain specific values through sensor measurements and transmit the data to the monitoring host to cooperate with the monitoring host to complete information collection.

[0003] Although the existing power supply structure can be used for daily power supply operations, in actual use, it is necessary to first pass a screw through one of the power supply rings, and then tighten the two power supply rings by turning the screw. In the initial stage of tightening, the staff needs to hold the screw with their hands, otherwise the screw is easy to fall off, which brings inconvenience to the staff's installation work, and thus makes the power supply structure less convenient to use. In addition, since it is assembled with screws, it is easy to generate impact force when the wire shakes, causing the screw to loosen, which makes the power supply structure less stable in use. Utility Model Content

[0004] (1) Technical problems solved

[0005] The utility model provides a fully perceptible intelligent overhead line spacer power supply structure to solve the problems of insufficient convenience and stability of the power supply structure in the prior art.

[0006] (2) Technical solution

[0007] The utility model is realized by the following technical solutions: a power-taking structure of a fully perceptible intelligent overhead line spacer, comprising a conductor, a spacer body provided on the conductor, an upper power-taking ring and a lower power-taking ring provided at each end of the spacer body, each upper power-taking ring being connected to each lower power-taking ring via a rotating shaft, two upper reserved holes being provided on both sides of each upper power-taking ring, and two lower reserved holes being provided on both sides of each lower power-taking ring;

[0008] A receiving groove is provided at the lower end of each upper reserved hole, a cross screw is slidably connected to the inner wall of each receiving groove, a clamping groove is provided on one side of each cross screw, and a sliding groove is provided on one side of each lower reserved hole. A connecting structure is provided on the inner wall of each sliding groove, and a clamping block is provided on the connecting structure; the connecting structure can slide in the depth direction of the sliding groove with the clamping block to limit the tightened cross screw.

[0009] Preferably, the connection structure includes a sliding plate, a spring is fixed to one end of the sliding plate, and a clamping block is fixed to the other end of the sliding plate.

[0010] Preferably, the outer surface of each cross screw is threadedly connected to the middle of each lower reserved hole, the outer surface of each clamping block contacts the inner wall of each clamping slot, the contact end of each clamping block and each clamping slot is arc-shaped, and the cross-section of each clamping slot is arc-shaped.

[0011] Preferably, the outer surface of each sliding plate is slidably connected to the inner wall of each sliding groove, and the vertical section of each sliding plate is circular.

[0012] Preferably, one end of each spring is fixed to one end of each sliding plate, and the other end of each spring is fixed to the inner wall of one end of each sliding groove away from the sliding plate.

[0013] Preferably, each of the upper reserved holes is opened opposite to each of the lower reserved holes, the outer surface of each cross screw is slidably connected to the inner wall of the receiving groove, and each cross screw passes through the lower end of each receiving groove.

[0014] Preferably, each of the upper power-taking rings and each of the lower power-taking rings are sleeved on the outer surface of the conductor, and each of the upper power-taking rings is electrically connected to each of the lower power-taking rings.

[0015] The utility model provides a fully perceptible intelligent overhead line spacer power supply structure, which has the following beneficial effects:

[0016] (1) The power supply structure of the intelligent overhead line spacer with full-area perception can be rotated by manually turning a screwdriver, so that the cross screw, the receiving slot, the upper reserved hole and the lower reserved hole can cooperate with each other to achieve the effect of convenient assembly, provide convenience for the workers in the assembly operation, and thus achieve the effect of improving the convenience of using the power supply structure.

[0017] (2) The power supply structure of the intelligent overhead line spacer with full-area perception can be rotated by manually turning a screwdriver, so that the cross screws, slots, blocks, slides, slides and springs can work together to achieve the effect of tightening and locking, thereby preventing the tightened screws from loosening, and thus achieving the effect of improving the stability of the power supply structure. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a three-dimensional diagram of the utility model;

[0019] Figure 2 It is a schematic diagram of the local structure of the utility model;

[0020] Figure 3 This is a schematic diagram of the cross screw structure of the utility model;

[0021] Figure 4 For this utility model Figure 3 A magnified view of the structure of part A.

[0022]

Main component symbol description

[0023] 1. Wire; 2. Spacer rod body; 3. Upper electric ring; 4. Lower electric ring; 5. Upper reserved hole; 6. Lower reserved hole; 7. Receiving groove; 8. Phillips screw; 9. Slide groove; 10. Slide plate; 11. Spring; 12. Block; 13. Slot. DETAILED DESCRIPTION

[0024] The embodiment of the utility model provides a power supply structure for an intelligent overhead line spacer that can be perceived in the entire area.

[0025] See also Figure 1 、 Figure 2 、 Figure 3 and Figure 4, including a wire 1, which performs the function of conducting electricity. A spacer body 2 is provided on the wire 1. The spacer body 2 refers to a hardware installed on the split wire 1 to fix the spacing between each split wire 1 to prevent the wires 1 from whipping each other and suppress breeze vibration and sub-spacing oscillation. An upper power-taking ring 3 and a lower power-taking ring 4 are provided at each end of the spacer body 2. The upper power-taking ring 3 and the lower power-taking ring 4 together constitute a measuring power-taking ring, which realizes inductive power taking through the energy-taking module, completes the acquisition of electric energy, and completes basic energy processing. The monitoring host is then powered by a flexible connecting line, and the measuring power-taking ring composed of the upper power-taking ring 3 and the lower power-taking ring 4 has a built-in current measurement module and a temperature measurement module. The specific values are measured by sensors and the data is transmitted to the monitoring host, in conjunction with The monitoring host completes the information collection, and multiple split wires 1 are used for inductive power supply in parallel, and super capacitors are used for energy storage without chemical batteries. The power supply stability is extremely high and is not affected by the environment, and it is completely maintenance-free. Each upper power ring 3 is connected to each lower power ring 4 through a rotating shaft. Two upper reserved holes 5 are provided on both sides of each upper power ring 3, and two lower reserved holes 6 are provided on both sides of each lower power ring 4. A receiving groove 7 is provided at the lower end of each upper reserved hole 5, and a cross screw 8 is slidably connected to the inner wall of each receiving groove 7. A card slot 13 is provided on one side of each cross screw 8, and a slide groove 9 is provided on one side of each lower reserved hole 6. The inner wall of each slide groove 9 is provided with a connecting structure, which includes a sliding plate 10, a spring 11 is fixed at one end of the sliding plate 10, and a card block 12 is fixed at the other end of the sliding plate 10.

[0026] Please refer again Figure 1 、 Figure 2 、 Figure 3 and Figure 4 It is worth mentioning that the outer surface of each cross screw 8 is threadedly connected to the middle of each lower reserved hole 6, the outer surface of each block 12 is in contact with the inner wall of each slot 13, the contact end of each block 12 and each slot 13 is arc-shaped, the cross-section of each slot 13 is arc-shaped, the outer surface of each sliding plate 10 is slidingly connected to the inner wall of each slide groove 9, the vertical section of each sliding plate 10 is circular, one end of each spring 11 is fixed to one end of each sliding plate 10, and the other end of each spring 11 is fixed to the inner wall of each slide groove 9 away from the slide plate 10.

[0027] Please refer again Figure 1 、 Figure 2 、 Figure 3 and Figure 4 It is worth mentioning that each upper reserved hole 5 and each lower reserved hole 6 are opened opposite to each other, the outer surface of each cross screw 8 is slidably connected to the inner wall of the receiving groove 7, each cross screw 8 passes through the lower end of each receiving groove 7, each upper power ring 3 and each lower power ring 4 are sleeved on the outer surface of the wire 1, and each upper power ring 3 is electrically connected to each lower power ring 4.

[0028] When the utility model is in use, first install the spacer rod body 2 on the conductor 1, then sleeve the upper power taking ring 3 and the lower power taking ring 4 connected by the rotating shaft on the conductor 1, then insert the screwdriver into the upper reserved hole 5, rotate the screwdriver by manpower, so that the screwdriver is inserted into the cross slot of the cross screw 8 and drives the cross screw 8 to rotate, and the rotating cross screw 8 is screwed into the lower reserved hole 6 under the stability of the receiving groove 7. The cross screw 8 can be stabilized by relying on the receiving groove 7, and there is no need for the staff to hold it steady by hand, completing the effect of convenient assembly, providing convenience for the staff to assemble the work, and thus achieving the effect of improving the convenience of using the power taking structure. The screwdriver is rotated by manpower, so that the screwdriver drives the cross screw 8 to be tightened step by step, so that the cross screw 8 first squeezes the block 12, so that the block 12 drives the sliding plate 10 to compress the spring 11. As the cross screw 8 is gradually tightened and moved downward, the slot 13 opened by the cross screw 8 moves to the position of the block 12. At this time, the compressed spring 11 drives the sliding plate 10 and the block 12 to slide into the slot 13, limiting the cross screw 8. At this time, the upper power ring 3 and the lower power ring 4 tightly wrap the wire 1, completing the tightening and locking effect, preventing the tightened screws from loosening, and thereby achieving the effect of improving the stability of the power taking structure.

[0029] Working principle: By manually rotating the screwdriver, the screwdriver drives the cross screw 8 to perform a stable tightening operation under the stability of the receiving groove 7, achieving the effect of convenient assembly, providing convenience for the staff to assemble the work, and thus achieving the effect of improving the convenience of using the power supply structure. At the same time, by manually rotating the screwdriver, the screwdriver drives the cross screw 8 to squeeze the block 12, achieving the effect of tightening and locking, preventing the tightened screw from loosening, and thus achieving the effect of improving the stability of the power supply structure.

[0030] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements are intended to fall within the scope of the present invention. The scope of protection claimed in this invention is defined by the appended claims and their equivalents.

Claims

1. A globally perceptible intelligent overhead line spacer power supply structure, comprising a conductor (1), a spacer body (2) disposed on the conductor (1), and an upper power supply ring (3) and a lower power supply ring (4) disposed at each end of the spacer body (2), characterized in that: Each of the upper power-taking rings (3) is connected to each of the lower power-taking rings (4) via a rotating shaft, and two upper reserved holes (5) are provided on both sides of each of the upper power-taking rings (3), and two lower reserved holes (6) are provided on both sides of each of the lower power-taking rings (4); Each upper reserved hole (5) is provided with a receiving groove (7) at the lower end, and each receiving groove (7) is slidably connected to the inner wall of each cross screw (8), and each cross screw (8) is provided with a clamping groove (13) on one side, and each lower reserved hole (6) is provided with a slide groove (9) on one side, and each slide groove (9) is provided with a connecting structure on the inner wall, and a clamping block (12) is provided on the connecting structure; the connecting structure can slide with the clamping block (12) in the depth direction of the slide groove (9) to limit the tightened cross screw (8).

2. The power supply structure of the intelligent overhead line spacer with global perception according to claim 1 is characterized by: The connection structure comprises a sliding plate (10), one end of the sliding plate (10) is fixed with a spring (11), and the other end of the sliding plate (10) is fixed with a clamping block (12).

3. The power supply structure of the intelligent overhead line spacer with global perception according to claim 2 is characterized by: The outer surface of each cross screw (8) is threadedly connected to the middle of each lower reserved hole (6), the outer surface of each clamping block (12) contacts the inner wall of each clamping slot (13), the contact end of each clamping block (12) and each clamping slot (13) is arranged in an arc shape, and the cross section of each clamping slot (13) is arranged in an arc shape.

4. The power supply structure of the intelligent overhead line spacer with global perception according to claim 2 is characterized by: The outer surface of each sliding plate (10) is slidably connected to the inner wall of each sliding groove (9), and the vertical section of each sliding plate (10) is circular.

5. The power supply structure of the intelligent overhead line spacer with global perception according to claim 2 is characterized by: One end of each spring (11) is fixed to one end of each sliding plate (10), and the other end of each spring (11) is fixed to the inner wall of one end of each sliding groove (9) away from the sliding plate (10).

6. The globally perceptible intelligent overhead line spacer power supply structure according to claim 1, characterized in that: Each upper reserved hole (5) is opened opposite to each lower reserved hole (6), the outer surface of each cross screw (8) is slidably connected to the inner wall of the receiving groove (7), and each cross screw (8) passes through the lower end of each receiving groove (7).

7. The globally perceptible intelligent overhead line spacer power supply structure according to claim 1, characterized in that: Each of the upper power-taking rings (3) and each of the lower power-taking rings (4) are sleeved on the outer surface of the wire (1), and each of the upper power-taking rings (3) and each of the lower power-taking rings (4) are electrically connected.