An auxiliary measurement marking structure and method for installing a vibration damper

By designing an auxiliary measurement marking structure for vibration-proof hammer installation, the problems of poor safety and inconvenient operation of vibration-proof hammer measurement devices in the prior art are solved, and a more efficient and safer vibration-proof hammer installation effect is achieved.

CN115388865BActive Publication Date: 2025-06-24ANHUI WEI LONG POWER EQUIP
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202211129566.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-09-16
Publication Date
2025-06-24
Estimated Expiration
2042-09-16

AI Technical Summary

Technical Problem

The existing anti-vibration hammer measurement device needs to separate the anti-vibration hammer during high-altitude operations, resulting in poor safety and inconvenient operation, which affects the installation effect.

Method used

Design a marking structure for installation of anti-vibration hammers, including structural body, anti-vibration hammer clamp, pull buckle, turntable and marking probe. The anti-vibration hammer is quickly fixed through anti-vibration hammer clamp, and high-altitude installation is achieved using pull buckle and turntable. The marking probe is used for precise measurement.

Benefits of technology

It improves the safety and operation convenience of vibration-proof hammer installation, ensures installation effect, is highly adaptable, and is suitable for different types of vibration-proof hammers.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN115388865B_ABST
    Figure CN115388865B_ABST
Patent Text Reader

Abstract

The present invention discloses a vibration damping hammer installation auxiliary measurement and marking structure and method, belonging to the field of vibration damping hammer installation. A vibration damping hammer installation auxiliary measurement and marking structure includes: a structural main body, in the middle of the interior of the structural main body, there is provided a vibration damping hammer clamping groove for auxiliary installation, and a vibration damping hammer to be installed is arranged inside the vibration damping hammer clamping groove; further included are: a pull buckle, one end of the pull buckle is installed with a measuring rope for detecting the installation distance; a vibration damping hammer fixture, and the rear end of the vibration damping hammer fixture is installed with an electric cylinder for adjusting the position of the fixture. The present invention solves the problems that the existing vibration damping hammer measuring device needs to separate the vibration damping hammer during work, has poor safety under high-altitude operation, is not convenient to operate, and affects the installation effect. By connecting the vibration damping hammer to be installed with the structural main body, it enables the staff to easily operate the equipment, facilitates measurement and marking work, and improves the safety effect.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of vibration damping hammer installation, and specifically relates to a vibration damping hammer installation auxiliary measurement marking structure and method thereof. Background Art

[0002] The vibration damping hammer is provided to reduce the vibration of the cable caused by the wind. The high-voltage overhead line poles are at a relatively high position and the span is relatively large. When the cable is affected by the wind, it will vibrate. When the cable vibrates, the working conditions at the cable suspension point are the most unfavorable. Due to multiple vibrations, the cable will undergo fatigue damage due to periodic bending. When the span of the overhead line is greater than 120 meters, a vibration damping hammer is generally used for vibration prevention. The installation position of the vibration damping hammer should be calculated according to the construction requirements. After calculating the installation distance of the vibration damping hammer, the installation position of the vibration damping hammer needs to be actually measured according to the reference object (such as a suspension clamp or a strain clamp).

[0003] In the prior art, such as a distance measuring device for vibration damping hammer installation with the publication number of CN210108174U, this patent uses a folding ruler for measurement, which overcomes the problems of difficult control of the tightness of the tape measure and difficult recognition of the ruler by high-altitude personnel caused by the bending of the ruler body when using a tape measure.

[0004] However, in the above technology, the existing vibration damping hammer measuring device needs to separate the vibration damping hammer during operation, resulting in poor safety during high-altitude operation, inconvenient operation, and affecting the installation effect.

[0005] In view of these defects, it is very necessary to design a vibration damping hammer installation auxiliary measurement marking structure and method thereof. Summary of the Invention

[0006] The purpose of the present invention is to provide a vibration damping hammer installation auxiliary measurement marking structure and method thereof, which can solve the problems that the existing vibration damping hammer measuring device needs to separate the vibration damping hammer during operation, resulting in poor safety during high-altitude operation, inconvenient operation, and affecting the installation effect.

[0007] To achieve the above purpose, the present invention provides the following technical solution: A vibration damping hammer installation auxiliary measurement marking structure, comprising:

[0008] The structure main body, an anti-vibration hammer clamping groove for auxiliary installation is arranged in the middle of the structure main body, an anti-vibration hammer to be installed is arranged inside the anti-vibration hammer clamping groove, and an integrally formed high-voltage wire clamping block is arranged below the structure main body, and a high-voltage wire is arranged on the lower end surface of the high-voltage wire clamping block;

[0009] It further includes:

[0010] A buckle, a buckle for measuring and positioning is located on one side of the outside of the structure main body, and a measuring rope for detecting the installation distance is installed at one end of the buckle;

[0011] A turntable, which is used to assist in high-altitude installation, is located outside the structural body. A connecting shaft for twisting screws is installed in the middle of the turntable;

[0012] A vibration damper clamp, which is used for quick fixing work, is located on both inner sides of the vibration damper clamping groove. An electric cylinder for adjusting the position of the clamp is installed at the rear end of the vibration damper clamp.

[0013] Preferably, balance plates are integrally formed on both outer sides of the structural body. The balance plates are used to keep the position of the structural body stable. A limiting card slot is integrally formed on the lower end surface of the high-voltage wire clamping block. The limiting card slot is used to guide the structural body to slide on the upper end surface of the high-voltage wire.

[0014] Preferably, a handle is welded and connected to the rear end of the structural body. The handle is used for workers to pull the structural body for installation work. A marking probe is arranged on the upper end surface of the structural body. The marking probe includes a digital display screen and a laser distance sensor, and the light outlet of the laser distance sensor is located below the balance plate.

[0015] Preferably, a connecting column is installed at the rear end of the buckle. A spring shaft is installed between the connecting column and the buckle. One end of the spring shaft is rotatably connected to the buckle through a shaft sleeve, and the other end of the spring shaft is fixedly connected to the connecting column through a spring. The connecting column is fixedly connected to one end of the measuring rope. A winding drum is installed on one side inside the structural body. The other end of the measuring rope is fixedly connected to the winding drum. A rotating shaft is installed at the upper end of the winding drum. A rotating spring is wound around the outside of the rotating shaft, and the winding drum is rotatably connected to the structural body through the rotating shaft.

[0016] Preferably, a handle is welded and connected to one outer side of the turntable. The connecting shaft is rotatably connected to the structural body through a shaft sleeve. One end of the connecting shaft is fixedly connected to a connecting sleeve. A screwdriver head slides inside the connecting sleeve. A pressure spring is installed between the screwdriver head and the connecting sleeve.

[0017] Preferably, a limiting card block for anti-slip is installed on the outside of the vibration damper clamp. A positioning card plate is installed in the middle of the vibration damper clamp. The positioning card plate is connected to one end of the electric cylinder through a fixing screw. A storage battery is installed inside the structural body. An electric motor is installed at the rear end of the positioning card plate. A threaded lead screw is installed at the rear end of the positioning card plate. The threaded lead screw penetrates through the vibration damper clamp and is threadedly connected to the vibration damper clamp. One end of the threaded lead screw is fixedly connected to the motor shaft of the electric motor. A sliding rod penetrates through the inside of the vibration damper clamp. A sliding block is installed at one end of the sliding rod and the threaded lead screw, and the sliding block is slidably connected to the structural body through a guide rail.

[0018] Preferably, a connection ear for fixing to the high-voltage wire is installed in the middle of the vibration damper to be installed. A fixing sleeve is installed at the upper end of the connection ear. Positioning blocks for limiting the connection ear are installed on both sides inside the vibration damper clamping groove. A high-pressure spring rod is installed outside the positioning block, and the high-pressure spring rod is in contact with the outer surface of the positioning block. A threaded sleeve is installed on one side of the lower end of the connection ear. A threaded rod passes through the inside of the threaded sleeve. A rotating head is installed at one end of the threaded rod, and the screwdriver head is fitted with the rotating head.

[0019] A method for an auxiliary measurement and marking structure of installing a vibration damper includes the following steps:

[0020] Step 1: Place the vibration damper to be installed inside the vibration damper clamping groove. Align the position of the connection ear of the vibration damper to be installed with the position of the positioning block. Limit the connection ear through the high-pressure spring rod, and insert the screwdriver head into the rotating head.

[0021] Step 2: After alignment, adjust the position of the electric cylinder to align the vibration damper fixture with the vibration damper to be installed. Adjust the threaded lead screw through the electric motor to clamp the vibration damper to be installed with the vibration damper fixture, and keep the position of the vibration damper to be installed fixed.

[0022] Step 3: The staff carries the structure main body and climbs to the high-voltage wire. Insert the limit card slot at the lower end of the high-voltage wire clamp into the upper end of the high-voltage wire, fix the buckle on the telegraph pole, and drag the handle to drive the structure main body to move above the high-voltage wire.

[0023] Step 4: During the movement, the measuring rope is pulled and moves outside the structure main body, and the installation distance is detected by the distance of the measuring rope outside the structure main body.

[0024] Step 5: Open the marking probe, detect the position between the structure main body and the telegraph pole through the light emitted by the laser distance sensor, and display it on the digital display screen.

[0025] Step 6: After the staff moves the structure main body to the predetermined position, turn the handle to rotate the turntable, the turntable drives the connecting sleeve to rotate, the screwdriver head drives the rotating head to rotate, and the threaded rod is screwed into the fixing sleeve to fix the connection ear to the high-voltage wire.

[0026] Step 7: After fixing, loosen the fixture, the vibration damper to be installed disengages from the vibration damper clamping groove, and the vibration damper works on the high-voltage wire.

[0027] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0028] 1. The anti-vibration hammer installation auxiliary measurement and marking structure and its method. Before work, the anti-vibration hammer to be installed can be placed inside the anti-vibration hammer clamping groove first. The position of the connecting ear of the anti-vibration hammer to be installed is corresponded to the position of the positioning block. The connecting ear is limited by the high-pressure spring rod, and the screwdriver head is embedded in the rotating head, so that the anti-vibration hammer to be installed can be quickly and simply installed with the main structure. And the position of the anti-vibration hammer clamp can be adjusted by the electric cylinder, so that different types of anti-vibration hammers to be installed can adapt to the anti-vibration hammer clamping groove, so as to carry out subsequent installation and positioning work. It has good adaptability. And the anti-vibration hammer to be installed is connected with the main structure, so that the staff can easily operate the equipment, which is convenient for measurement and marking work, and improves the safety effect.

[0029] 2. The anti-vibration hammer installation auxiliary measurement and marking structure and its method. During the work process, the staff can carry the main structure and climb to the high-voltage wire. The limit slot at the lower end of the high-voltage wire clamp is embedded into the upper end of the high-voltage wire, and the buckle is fixed on the telegraph pole. Drag the handle to drive the main structure to move above the high-voltage wire. Through the limit slot on the lower end face of the high-voltage wire clamp, the main structure can be kept stable with the high-voltage wire. At the same time, the overall balance of the main structure is improved by the balance plates on both sides, so that the main structure keeps a smooth state during the movement process in cooperation with the high-voltage wire clamp, which improves the safety effect.

[0030] 3. The anti-vibration hammer installation auxiliary measurement and marking structure and its method. During the work, the installation distance can be detected by measuring the rope outside the main structure. Then, the marking probe is opened, and the position between the main structure and the telegraph pole is detected by the light emitted by the laser distance sensor and displayed on the digital display screen. These two detection methods can facilitate the staff to carry out accurate measurement, thus facilitating the improvement of the detection effect. The structure is simple and easy to operate. After reaching the preset distance, the handle can be toggled to rotate the turntable, so that the turntable drives the connecting sleeve to rotate, and the screwdriver head drives the rotating head to rotate, so that the threaded rod is screwed into the fixed sleeve to fix the connecting ear to the high-voltage wire, and the anti-vibration hammer to be installed is quickly installed. By loosening the clamp, the main structure can be quickly detached, which improves the work efficiency and is convenient to operate. In high-altitude operations, the safety effect is effectively improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] Figure 1 It is an axonometric view of the present invention from above;

[0032] Figure 2 It is an axonometric view of the present invention from below;

[0033] Figure 3 It is an axonometric view of the main structure of the present invention from above;

[0034] Figure 4 For the present invention Figure 2 Partial enlarged view of area A in;

[0035] Figure 5 For the present invention Figure 3 A partial enlarged view of area B in the present invention;

[0036] Figure 6 An internal structure diagram of the main structure of the present invention.

[0037] In the figure: 1. Main structure; 101. Vibration damper clamping groove; 102. Balance plate; 103. High-voltage wire clamping block; 1031. Limit clamping groove; 104. Handle; 105. Marking probe; 106. Positioning block; 1061. High-voltage spring rod; 2. Pull buckle; 201. Connecting column; 202. Measuring rope; 203. Spring shaft; 204. Reel; 205. Rotating shaft; 3. Turntable; 301. Handle; 302. Connecting shaft; 303. Connecting sleeve; 304. Screwdriver bit; 4. Vibration damper clamp; 401. Electric cylinder; 4011. Battery; 402. Positioning card plate; 403. Limit clamping block; 404. Sliding rod; 405. Threaded lead screw; 5. High-voltage wire; 6. Vibration damper to be installed; 601. Connecting ear; 6011. Threaded sleeve; 6012. Rotating head; 6013. Threaded rod; 602. Fixed sleeve. Specific embodiments

[0038] 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.

[0039] In order to solve the technical problems in the prior art that the vibration damper measuring device needs to separate the vibration damper during operation, has poor safety under high-altitude operations, is not easy to operate, and affects the installation effect, please refer to Figure 1 - Figure 3 to provide the following technical solutions:

[0040] A vibration damper installation auxiliary measurement and marking structure and method, including:

[0041] The main structure 1, an internal middle of the main structure 1 is provided with a vibration damper clamping groove 101 for auxiliary installation, the inside of the vibration damper clamping groove 101 is provided with a vibration damper 6 to be installed, and an integrally formed high-voltage wire clamping block 103 is provided below the inside of the main structure 1, and a high-voltage wire 5 is provided on the lower end surface of the high-voltage wire clamping block 103;

[0042] It further includes:

[0043] The pull buckle 2 for measurement and positioning is located on the outer side of the structural body 1, and a measuring rope 202 for detecting the installation distance is installed at one end of the pull buckle 2;

[0044] The turntable 3 for assisting in high-altitude installation is located outside the structural body 1, and a connecting shaft 302 for twisting screws is installed in the middle of the turntable 3;

[0045] The vibration damping hammer clamp 4 for quick fixation is located on both inner sides of the vibration damping hammer clamping groove 101, and an electric cylinder 401 for adjusting the position of the clamp is installed at the rear end of the vibration damping hammer clamp 4.

[0046] Specifically, before work, the vibration damping hammer 6 to be installed can be placed inside the vibration damping hammer clamping groove 101 first, so that the vibration damping hammer 6 to be installed can be quickly and simply installed with the structural body 1, and the position of the vibration damping hammer clamp 4 can be adjusted by the electric cylinder 401, so that vibration damping hammers 6 of different types to be installed can all adapt to the vibration damping hammer clamping groove 101, so as to carry out subsequent installation and positioning work, with good adaptability. And through the vibration damping hammer 6 to be installed being connected to the structural body 1, it is convenient for the staff to operate the equipment, facilitating measurement and marking work, and improving the safety effect.

[0047] To solve the technical problem in the prior art that the overall structure is unstable during the work of the auxiliary device, which affects the operation of the staff, please refer to Figure 1 - Figure 2 The following technical solutions are provided:

[0048] Integrally formed balance plates 102 are arranged on both outer sides of the structural body 1, and the balance plates 102 are used to keep the position of the structural body 1 stable. A limiting card slot 1031 is integrally formed on the lower end surface of the high-voltage wire clamping block 103, and the limiting card slot 1031 is used to guide the sliding of the structural body 1 on the upper end surface of the high-voltage wire 5.

[0049] A handle 104 is welded and connected to the rear end of the structural body 1, and the handle 104 is used for the staff to pull the structural body 1 for installation work.

[0050] Specifically, during the work process, the staff can carry the structural body 1 and climb to the high-voltage wire 5, embed the limiting card slot 1031 at the lower end of the high-voltage wire clamping block 103 into the upper end of the high-voltage wire 5, fix the pull buckle 2 on the telegraph pole, drag the handle 104, drive the structural body 1 to move above the high-voltage wire 5. Through the limiting card slot 1031 on the lower end surface of the high-voltage wire clamping block 103, the structural body 1 can be kept stable with the high-voltage wire 5. At the same time, the overall balance of the structural body 1 is improved through the balance plates 102 on both sides, so that the structural body 1 keeps a smooth state during the movement process in cooperation with the high-voltage wire clamping block 103, improving the safety effect.

[0051] In order to solve the technical problem in the prior art that the measurement method of the auxiliary device is single and the detection quality cannot be guaranteed, please refer to Figure 1 - Figure 3 , Figure 6 , the following technical solutions are provided:

[0052] A marking probe 105 is arranged on the upper end surface of the structure main body 1. The marking probe 105 includes a digital display screen and a laser distance sensor, and the light outlet of the laser distance sensor is located at the lower end of the balance plate 102

[0053] A connecting column 201 is installed at the rear end of the buckle 2. A spring shaft 203 is installed between the connecting column 201 and the buckle 2. One end of the spring shaft 203 is rotatably connected to the buckle 2 through a bushing, and the other end of the spring shaft 203 is fixedly connected to the connecting column 201 through a spring. The connecting column 201 is fixedly connected to one end of the measuring rope 202. A winding drum 204 is installed on one side inside the structure main body 1. The other end of the measuring rope 202 is fixedly connected to the winding drum 204. A rotating shaft 205 is installed at the upper end of the winding drum 204. A rotating spring is wound around the outside of the rotating shaft 205, and the winding drum 204 is rotatably connected to the structure main body 1 through the rotating shaft 205.

[0054] Specifically, during work, the installation distance can be detected by the distance of the measuring rope 202 outside the structure main body 1. Then, the marking probe 105 is turned on, and the position between the structure main body 1 and the electric pole is detected by the light emitted by the laser distance sensor and displayed on the digital display screen. These two detection methods can facilitate the staff to perform precise measurement, thereby improving the detection effect, with a simple structure and convenient operation.

[0055] In order to solve the technical problem in the prior art that the installation method of the vibration damper is complex, which affects the construction efficiency and has low safety during high-altitude operations, please refer to Figure 2 - Figure 5 , the following technical solutions are provided:

[0056] A handle 301 is welded and connected to the outside of one side of the turntable 3. The connecting shaft 302 is rotatably connected to the structure main body 1 through a bushing. One end of the connecting shaft 302 is fixedly connected to a connecting sleeve 303. A screwdriver head 304 slides inside the connecting sleeve 303, and a compression spring is installed between the screwdriver head 304 and the connecting sleeve 303.

[0057] A limit block 403 for anti-slip is installed on the outside of the anti-vibration hammer clamp 4, and a positioning clamp plate 402 is installed in the middle of the anti-vibration hammer clamp 4, the positioning clamp plate 402 is connected to one end of the electric cylinder 401 by a fixing screw, and a battery 4011 is installed inside the structural body 1, an electric motor is installed at the rear end of the positioning clamp plate 402, and a threaded screw 405 is installed at the rear end of the positioning clamp plate 402, the threaded screw 405 passes through the anti-vibration hammer clamp 4 and is threadedly connected to the anti-vibration hammer clamp 4, one end of the threaded screw 405 is fixedly connected to the motor shaft of the electric motor, a sliding rod 404 passes through the interior of the anti-vibration hammer clamp 4, a sliding block is installed at one end of the sliding rod 404 and the threaded screw 405, and the sliding block is slidably connected to the structural body 1 through a guide rail.

[0058] A connecting ear 601 for fixing to the high-voltage wire 5 is installed in the middle of the anti-vibration hammer 6 to be installed, and a fixing sleeve 602 is installed on the upper end of the connecting ear 601. Positioning blocks 106 for limiting the connecting ear 601 are installed on both sides of the inside of the anti-vibration hammer clamping groove 101, and a high-voltage spring rod 1061 is installed on the outside of the positioning block 106. The high-voltage spring rod 1061 is fitted with the outer surface of the positioning block 106, and a threaded sleeve 6011 is installed on one side of the lower end of the connecting ear 601. The interior of the threaded sleeve 6011 passes through a threaded rod 6013, and a rotating head 6012 is installed at one end of the threaded rod 6013, and a screwdriver head 304 is engaged with the rotating head 6012.

[0059] Specifically, before work, the anti-vibration hammer 6 to be installed can be placed inside the anti-vibration hammer clamping groove 101, the position of the connecting ear 601 of the anti-vibration hammer 6 to be installed can be matched with the position of the positioning block 106, the connecting ear 601 can be limited by the high-pressure spring rod 1061, and the screwdriver head 304 can be embedded in the rotating head 6012, so that the anti-vibration hammer 6 to be installed can be quickly and simply installed with the structural main body 1, and the position of the anti-vibration hammer clamp 4 can be adjusted by the electric cylinder 401, and the threaded screw 405 can be adjusted by the electric motor to make the anti-vibration hammer clamp 4 clamp the anti-vibration hammer 6 to be installed. The position of the anti-vibration hammer 6 is kept fixed, which is convenient for measuring and marking, and improves the safety effect. After reaching the preset distance, the turntable 3 can be rotated by turning the handle 301, so that the turntable 3 drives the connecting sleeve 303 to rotate, and the screwdriver head 304 drives the rotating head 6012 to rotate, so that the threaded rod 6013 is screwed into the fixing sleeve 602, and the connecting ear 601 is fixed to the high-voltage wire 5, and the anti-vibration hammer 6 to be installed is quickly installed. By loosening the clamp, the structural main body 1 can be quickly disassembled, which improves work efficiency and is convenient to operate. In high-altitude operations, the safety effect is effectively improved.

[0060] A method for using an auxiliary measurement marking structure for installing an anti-vibration hammer comprises the following steps:

[0061] Step 1: Place the vibration damping hammer 6 to be installed inside the vibration damping hammer clamping groove 101. Align the position of the connecting ear 601 of the vibration damping hammer 6 to be installed with the position of the positioning block 106. Limit the connecting ear 601 through the high-pressure spring rod 1061, and embed the screwdriver head 304 into the rotating head 6012;

[0062] Step 2: After alignment, adjust the position of the electric cylinder 401 to align the vibration damping hammer fixture 4 with the vibration damping hammer 6 to be installed. Adjust the threaded lead screw 405 through the electric motor to clamp the vibration damping hammer 6 to be installed with the vibration damping hammer fixture 4, and keep the position of the vibration damping hammer 6 to be installed fixed;

[0063] Step 3: The staff member climbs to the high-voltage wire 5 with the structure main body 1. Embed the limit card slot 1031 at the lower end of the high-voltage wire clamp 103 into the upper end of the high-voltage wire 5. Fix the buckle 2 on the telegraph pole, and drag the handle 104 to drive the structure main body 1 to move above the high-voltage wire 5;

[0064] Step 4: During the movement, the measuring rope 202 is pulled and moves outside the structure main body 1. Detect the installation distance through the distance of the measuring rope 202 outside the structure main body 1;

[0065] Step 5: Open the marking probe 105, detect the position between the structure main body 1 and the telegraph pole through the light emitted by the laser distance sensor, and display it through the digital display screen;

[0066] Step 6: After the staff member moves the structure main body 1 to the predetermined position, turn the handle 301 to rotate the turntable 3, the turntable 3 drives the connecting sleeve 303 to rotate, the screwdriver head 304 drives the rotating head 6012 to rotate, and the threaded rod 6013 is screwed into the fixing sleeve 602 to fix the connecting ear 601 to the high-voltage wire 5;

[0067] Step 7: After fixation, loosen the fixture, the vibration damping hammer 6 to be installed disengages from the vibration damping hammer clamping groove 101, and the vibration damping hammer works on the high-voltage wire 5.

[0068] Working principle: The anti-vibration hammer installation auxiliary measurement marking structure and method thereof can, before work, first place the anti-vibration hammer 6 to be installed inside the anti-vibration hammer clamping groove 101, and can quickly and simply install the anti-vibration hammer 6 to be installed and the structural main body 1, and the position of the anti-vibration hammer clamp 4 can be adjusted by the electric cylinder 401, so that different types of anti-vibration hammers 6 to be installed can adapt to the anti-vibration hammer clamping groove 101, so as to carry out subsequent installation and positioning work, and the adaptability is good, and the anti-vibration hammer 6 to be installed will be connected to the structural main body 1, so that the staff can operate the equipment conveniently, and the measurement and marking work is convenient, thereby improving the safety effect. During the work process, the staff can carry the structural main body 1 to climb to the high-voltage wire 5, embed the limiting groove 1031 at the lower end of the high-voltage wire block 103 into the upper end of the high-voltage wire 5, fix the pull buckle 2 on the electric pole, drag the handle 104, drive the structural main body 1 to move above the high-voltage wire 5, and pass the limiting groove 1031 at the lower end face of the high-voltage wire block 103. The positioning slot 1031 can keep the structural body 1 and the high-voltage wire 5 stable. At the same time, the overall balance of the structural body 1 is improved by the balance plates 102 on both sides, so that the structural body 1 can keep moving smoothly in cooperation with the high-voltage wire block 103 during the movement. The installation distance is detected by measuring the distance of the rope 202 outside the structural body 1, and then the marking probe 105 is turned on. The position between the structural body 1 and the electric pole is detected by the light emitted by the laser ranging sensor and displayed on the digital display screen. The two detection methods can facilitate the staff to perform accurate measurements, thereby facilitating the improvement of the detection effect. After reaching the preset distance, the turntable 3 can be rotated by turning the handle 301, so that the turntable 3 drives the connecting sleeve 303 to rotate, and the screwdriver head 304 drives the rotating head 6012 to rotate, so that the threaded rod 6013 is screwed into the fixing sleeve 602, the connecting ear 601 is fixed to the high-voltage wire 5, and the anti-vibration hammer 6 to be installed is quickly installed.

[0069] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.

[0070] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An auxiliary measurement marking structure for installing a vibration damper, comprising: A structure main body (1), in the middle of the interior of the structure main body (1), there is a vibration damper clamping groove (101) for auxiliary installation. Inside the vibration damper clamping groove (101), there is a vibration damper (6) to be installed. And below the interior of the structure main body (1), there is an integrally formed high-voltage wire clamping block (103). On the lower end surface of the high-voltage wire clamping block (103), there is a high-voltage wire (5); Characterized in that, it further includes: A pull buckle (2), the pull buckle (2) for measurement and positioning is located on one side of the exterior of the structure main body (1). One end of the pull buckle (2) is installed with a measuring rope (202) for detecting the installation distance; A turntable (3), the turntable (3) for assisting in high-altitude installation is located on the exterior of the structure main body (1). In the middle of the turntable (3), there is a connecting shaft (302) for twisting screws; A vibration damper clamp (4), the vibration damper clamp (4) for rapid fixing work is located on both sides inside the vibration damper clamping groove (101). At the rear end of the vibration damper clamp (4), there is an electric cylinder (401) for adjusting the position of the clamp; At the rear end of the pull buckle (2), there is a connecting column (201). Between the connecting column (201) and the pull buckle (2), there is a spring shaft (203). One end of the spring shaft (203) is rotationally connected to the pull buckle (2) through a bushing. And the other end of the spring shaft (203) is fixedly connected to the connecting column (201) through a spring. The connecting column (201) is fixedly connected to one end of the measuring rope (202). On one side inside the structure main body (1), there is a winding drum (204). The other end of the measuring rope (202) is fixedly connected to the winding drum (204). At the upper end of the winding drum (204), there is a rotating shaft (205). The exterior of the rotating shaft (205) is surrounded by a rotating spring. And the winding drum (204) is rotationally connected to the structure main body (1) through the rotating shaft (205); On one side of the exterior of the turntable (3), there is a handle (301) welded and connected. The connecting shaft (302) is rotationally connected to the structure main body (1) through a bushing. One end of the connecting shaft (302) is fixedly connected to a connecting sleeve (303). Inside the connecting sleeve (303), there is a screwdriver head (304) sliding. Between the screwdriver head (304) and the connecting sleeve (303), there is a pressure spring; A connecting ear (601) for fixing to a high-voltage wire (5) is installed in the middle of the anti-vibration hammer (6) to be installed. A fixing sleeve (602) is installed at the upper end of the connecting ear (601). Positioning blocks (106) for limiting the connecting ear (601) are installed on both inner sides of the anti-vibration hammer clamping groove (101). A high-pressure spring rod (1061) is installed outside the positioning block (106), and the high-pressure spring rod (1061) is in contact with the outer surface of the positioning block (106). A threaded sleeve (6011) is installed on one side of the lower end of the connecting ear (601). A threaded rod (6013) passes through the inside of the threaded sleeve (6011). A rotating head (6012) is installed at one end of the threaded rod (6013), and the screwdriver head (304) is fitted with the rotating head (6012).

2. The auxiliary measurement marking structure for installing a vibration damper according to claim 1, characterized in that: Balancing plates (102) formed integrally are provided on both outer sides of the structural body (1). The balancing plates (102) are used to keep the position of the structural body (1) stable. A limiting card slot (1031) formed integrally is provided on the lower end surface of the high-voltage wire clamping block (103). The limiting card slot (1031) is used to guide the sliding of the structural body (1) on the upper end surface of the high-voltage wire (5).

3. The auxiliary measurement marking structure for damper installation according to claim 2, wherein: A handle (104) is welded and connected to the rear end of the structural body (1). The handle (104) is used for a worker to pull the structural body (1) for installation work. A marking probe (105) is provided on the upper end surface of the structural body (1). The marking probe (105) includes a digital display screen and a laser distance sensor, and the light outlet of the laser distance sensor is located below the balancing plate (102).

4. The auxiliary measurement marking structure for installing a vibration damper according to claim 3, wherein: A limiting card block (403) for anti-slip is installed outside the anti-vibration hammer clamp (4). A positioning card plate (402) is installed in the middle of the anti-vibration hammer clamp (4). The positioning card plate (402) is connected to one end of the electric cylinder (401) by a fixing screw. A storage battery (4011) is installed inside the structural body (1). An electric motor is installed at the rear end of the positioning card plate (402), and a threaded lead screw (405) is installed at the rear end of the positioning card plate (402). The threaded lead screw (405) passes through the anti-vibration hammer clamp (4) and is in threaded connection with the anti-vibration hammer clamp (4). One end of the threaded lead screw (405) is fixedly connected to the motor shaft of the electric motor. A sliding rod (404) passes through the inside of the anti-vibration hammer clamp (4). One ends of the sliding rod (404) and the threaded lead screw (405) are provided with sliding blocks, and the sliding blocks are slidably connected to the structural body (1) through guide rails.

5. A method for using the anti-vibration hammer installation auxiliary measurement marking structure according to claim 4, characterized in that, It includes the following steps: Step 1: Place the anti-vibration hammer (6) to be installed inside the anti-vibration hammer clamping groove (101). Align the position of the connecting ear (601) of the anti-vibration hammer (6) to be installed with the position of the positioning block (106). Limit the connecting ear (601) through the high-pressure spring rod (1061), and embed the screwdriver head (304) into the rotating head (6012). Step 2: After alignment, adjust the position of the electric cylinder (401) to align the anti-vibration hammer fixture (4) with the anti-vibration hammer to be installed (6). Adjust the lead screw (405) through the electric motor to clamp the anti-vibration hammer to be installed (6) with the anti-vibration hammer fixture (4), and keep the position of the anti-vibration hammer to be installed (6) fixed; Step 3: The staff member climbs to the high-voltage wire (5) with the structure main body (1), embed the limit card slot (1031) at the lower end of the high-voltage wire clamp (103) into the upper end of the high-voltage wire (5), fix the buckle (2) on the utility pole, and drag the handle (104) to drive the structure main body (1) to move above the high-voltage wire (5); Step 4: During the movement, the measuring rope (202) is pulled and moves outside the structure main body (1), and the installation distance is detected by the distance of the measuring rope (202) outside the structure main body (1); Step 5: Turn on the marking probe (105), detect the position between the structure main body (1) and the utility pole through the light emitted by the laser distance sensor, and display it through the digital display screen; Step 6: After the staff member moves the structure main body (1) to the predetermined position, turn the handle (301) to rotate the turntable (3), so that the turntable (3) drives the connecting sleeve (303) to rotate, and the screwdriver head (304) drives the rotating head (6012) to rotate, so that the threaded rod (6013) is screwed into the fixed sleeve (602) to fix the connecting ear (601) to the high-voltage wire (5); Step 7: After fixation, loosen the fixture, and the anti-vibration hammer to be installed (6) disengages from the anti-vibration hammer clamping groove (101), and the anti-vibration hammer works on the high-voltage wire (5).

Citation Information

Patent Citations

  • Distance measuring device for damper installation

    CN210108174U

  • Measuring tool and measuring method for installation of high-altitude operation damper

    CN102072691A

  • Vibration damper bolt assembling and disassembling device

    CN106984951A