Transponder installation correction device

By designing a transponder installation correction device that integrates the level measurement lower frame, lift table, twelve-line measurement level and digital scale, the problems of inefficient and insufficient accuracy of the traditional transponder installation method are solved, and high-precision, fast and convenient transponder installation is achieved, and the reliability and efficiency of the system are improved.

CN222912731UActive Publication Date: 2025-05-27CHINA TIESIJU CIVIL ENGINEERING GROUP CO LTD +1
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Patent Information

Application Number
CN202421992715.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-16
Publication Date
2025-05-27
Estimated Expiration
2034-08-16

AI Technical Summary

Technical Problem

The traditional transponder installation method relies on manual operation, is inefficient, consumes a lot of manpower and material resources, and is difficult to meet the high-precision design requirements, which cannot meet the high-standard requirements of high-speed railways for installation accuracy and efficiency.

Method used

A transponder installation correction device is designed, including a horizontal measurement lower frame, a lifting table, a twelve-line measurement level, a Y-axis slope digital scale and an X-axis slope digital scale. Through the integration of these components, precise measurement and adjustment of the angle between the transponder installation position and the horizontal XY axis is achieved.

Benefits of technology

This device can significantly improve the installation accuracy of the transponder, reduce human error, ensure the reliability and safety of the system, shorten the installation time, improve construction efficiency, reduce labor costs, reduce maintenance costs, and improve system stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a transponder mounting and correcting device, which relates to the technical field of urban rail transit and high-speed railway construction and comprises a horizontal measurement lower frame, a lifting platform is arranged above the horizontal measurement lower frame, and a Y-axis gradient digital display ruler and an X-axis gradient digital display ruler are respectively arranged on the side wall of the horizontal measurement lower frame. A twelve-line measuring gradienter is arranged above the lifting platform, a groove is formed in the bottom of the horizontal measuring lower frame, a transponder is arranged in the groove, a base plate is arranged below the horizontal measuring lower frame, a pair of steel rails is arranged above the base plate, and the steel rails are distributed on the two sides of the horizontal measuring lower frame. The Y-axis gradient digital display ruler and the X-axis gradient digital display ruler are arranged on the two adjacent sides of the horizontal measurement lower frame respectively, and the problems that a traditional transponder installation method mainly depends on manual operation, and position and angle adjustment is carried out by using a simple measurement tool and depending on experience, so that the efficiency is low, and the cost is low are solved. And a lot of manpower and material resources are consumed.
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Description

Technical Field

[0001] The utility model relates to the technical field of urban rail transit and high - speed railway construction, and particularly relates to a transponder installation and calibration device. Background Art

[0002] In a complex and safety - critical system such as high - speed railways, the standard installation of transponders plays a crucial role. As an important part of the railway signal system, transponders are responsible for sending necessary control information to trains to ensure their safe and accurate operation along the predetermined route. Therefore, the installation position and angle of transponders must strictly follow the design standards. Any slight deviation may have an adverse impact on the running stability of trains and even cause system failures.

[0003] Traditional transponder installation methods mainly rely on manual operations, including using simple measuring tools and adjusting positions and angles based on experience. This method is not only inefficient, consuming a large amount of manpower and material resources, but also limited by human factors and often difficult to achieve the high precision required by the design. In today's rapid development of high - speed railways, this traditional method can no longer meet the high standards of installation accuracy and efficiency.

[0004] Therefore, a more accurate and convenient calibration device is needed to ensure the correct installation of transponders. Summary of the Utility Model

[0005] The utility model aims to solve at least one of the technical problems existing in the prior art. For this purpose, the utility model provides a transponder installation and calibration device, which solves the problem that traditional transponder installation methods mainly rely on manual operations, including using simple measuring tools and adjusting positions and angles based on experience. This method is not only inefficient but also consumes a large amount of manpower and material resources.

[0006] To achieve the above object, the utility model provides a transponder installation and calibration device, including a horizontal measurement lower frame. An elevating platform is arranged above the horizontal measurement lower frame. A Y - axis slope digital display scale and an X - axis slope digital display scale are respectively arranged on the side walls of the horizontal measurement lower frame. A twelve - line measuring level is arranged above the elevating platform.

[0007] Preferably, a groove is formed at the bottom of the horizontal measurement lower frame, and a transponder is arranged inside the groove.

[0008] Preferably, a base plate is arranged below the horizontal measurement lower frame.

[0009] Preferably, a pair of rails is arranged above the base plate, and the pair of rails is distributed on both sides of the horizontal measurement lower frame.

[0010] Preferably, the Y-axis slope degree digital display scale and the X-axis slope degree digital display scale are respectively arranged on two adjacent sides of the horizontal measurement lower frame.

[0011] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0012] 1. High-precision measurement: By using a twelve-line mini-level and a digital display level ruler for measurement, the installation accuracy of the transponder can be greatly improved, ensuring that its levelness and angle fully meet the design standards. This precise measurement method can effectively reduce human errors and ensure the reliability and safety of the system.

[0013] 2. Reducing installation time and simplifying the operation process: The device integrates a level and a digital display level ruler, simplifies the calibration process, and reduces the required adjustment steps. Through rapid and accurate measurement and adjustment, the installation time can be significantly shortened and the construction efficiency can be improved.

[0014] 3. Reducing labor costs and enabling automated measurement: The digital display function of the digital display level ruler reduces the dependence on manual calculation and judgment, thereby reducing labor costs. The operator only needs to read the digital result and make simple adjustments without complex manual measurement and calculation.

[0015] 4. Improving system stability and ensuring compliant installation: By ensuring the correct installation of the transponder through precise calibration, the stability and operation safety of the railway system can be improved. Precise installation can reduce system failures or performance problems caused by installation errors and ensure the normal operation of the high-speed railway system.

[0016] 5. Reducing maintenance costs and the failure rate: Precise installation reduces failures caused by improper installation, thereby reducing the frequency and cost of subsequent maintenance. The system operates more stably, which can reduce the long-term operation and maintenance costs.

[0017] 6. Wide applicability and suitability for multiple scenarios: Although the device is mainly used in high-speed railway construction, its principle and method can be applied to other fields that require precise installation, such as bridge construction, building engineering, etc., and has high versatility.

[0018] 7. Improving work efficiency and enabling rapid adjustment: The digital display level ruler provides real-time angle data, making the adjustment process more efficient. The operator can reach the required installation standards more quickly, improving the overall construction efficiency.

[0019] 8. The device ingeniously integrates the advanced technologies of a twelve-line mini level and a digital display level ruler, achieving precise measurement of the angles between the installation position of the transponder and the XY axes of the horizontal plane. The twelve-line mini level, with its multi-line laser beams, can cover the installation area of the transponder comprehensively and without dead angles, ensuring the comprehensiveness and accuracy of the horizontal measurement. The digital display level ruler, on the other hand, intuitively and quickly reflects the tilt angles of the transponder in the X-axis and Y-axis directions through high-precision digital display, facilitating timely and accurate adjustment by the operator. Brief Description of the Drawings

[0020] Figure 1 is a three-dimensional structural schematic diagram of the present utility model;

[0021] Figure 2 is a structural schematic diagram of the lower frame for horizontal measurement of the present utility model;

[0022] Figure 3 is a structural schematic diagram of the bottom of the lower frame for horizontal measurement of the present utility model.

[0023] In the figure: 1, lower frame for horizontal measurement; 101, groove; 2, lifting platform; 3, twelve-line measuring level; 4, digital display ruler for Y-axis slope degree; 5, digital display ruler for X-axis slope degree; 6, rail; 7, transponder; 8, substrate. Detailed Description of the Preferred Embodiment

[0024] The technical solutions of the present utility model will be clearly and completely described below in conjunction with the embodiments. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of them. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.

[0025] As Figures 1 - 3 shown, a transponder installation and calibration device includes a lower frame 1 for horizontal measurement. A lifting platform 2 is arranged above the lower frame 1 for horizontal measurement. The lifting platform 2 is micro-adjusted and is ingeniously connected to the lower frame 1 for horizontal measurement, forming a stable and flexible adjustment system. This design endows the user with high flexibility in height adjustment, enabling easy adaptation to height requirements in different installation scenarios and achieving fine height calibration.

[0026] On the side walls of the lower frame 1 for horizontal measurement, a digital display scale 4 for Y-axis slope degree and a digital display scale 5 for X-axis slope degree are respectively provided. Above the lifting platform 2, a twelve-line measuring level 3 is provided. The twelve-line measuring level 3, which is closely integrated with the lifting platform 2, is the core of the device to ensure the horizontal accuracy. This level uses high-precision laser measurement technology. By projecting up to 12 horizontal reference lines, it comprehensively covers and accurately indicates the horizontal state of the installation area of the transponder 7. This feature ensures that the lifting platform 2 and the transponder 7 can always maintain a high-precision horizontal state during the installation process, laying a solid foundation for subsequent calibration work.

[0027] A groove 101 is opened at the bottom of the lower frame 1 for horizontal measurement. Inside the groove 101, a transponder 7 is provided. The lower frame 1 for horizontal measurement perfectly fits with the transponder 7 with its precise dimensions, achieving a tight and accurate closure, thereby firmly maintaining the position of the transponder 7 throughout the installation process and ensuring the stability and accuracy of the installation.

[0028] A base plate 8 is provided below the lower frame 1 for horizontal measurement.

[0029] Above the base plate 8, a pair of steel rails 6 are provided. The pair of steel rails 6 are distributed on both sides of the lower frame 1 for horizontal measurement.

[0030] The digital display scale 4 for Y-axis slope degree and the digital display scale 5 for X-axis slope degree are respectively provided on two adjacent sides of the lower frame 1 for horizontal measurement. The device is also equipped with the digital display scale 4 for Y-axis slope degree and the digital display scale 5 for X-axis slope degree fixed to the lower frame 1 for horizontal measurement. These two high-precision digital display scales are respectively responsible for measuring the tilt angles of the transponder 7 in the vertical (Y-axis) and horizontal (X-axis) directions. By providing real-time feedback of the tilt angle data, it provides comprehensive angle measurement information for users. This design not only enhances the device's ability in angle calibration but also enables users to accurately master the installation state of the transponder 7, providing strong support for subsequent precise adjustment. The transponder 7 installation and calibration device of this device, with its unique design, high-precision measurement technology, and comprehensive calibration function, provides an efficient, accurate, and easy-to-operate solution for the installation of the transponder 7.

[0031] Working principle: First step, preliminary positioning and stabilization: The lower frame 1 for horizontal measurement of the device is first placed at the installation position of the transponder 7. Since the dimensions of the lower frame 1 for horizontal measurement closely match those of the transponder 7, it can quickly achieve preliminary positioning and stabilization. The three-sided metal plate of the lower frame 1 for horizontal measurement provides a solid foundation for the entire device, ensuring that it will not shake during subsequent installation.

[0032] Step 2, Height Adjustment and Horizontal Calibration: Next, the user adjusts the height using the lifting platform 2. The macro adjustment function of the lifting platform 2 allows the user to perform fine height control to meet the stringent requirements for the installation of the transponder 7. During the adjustment process, the laser beam emitted by the twelve-line measuring level 3 forms multiple horizontal reference lines, providing an intuitive reference basis for the height adjustment of the lifting platform 2. The user can ensure that the lifting platform 2 and the transponder 7 always remain horizontal during the installation process according to the indication of the twelve-line measuring level 3.

[0033] Step 3, Angle Measurement and Feedback: When the lifting platform 2 is adjusted to the appropriate height, the Y-axis slope digital display scale 4 and the X-axis slope digital display scale 5 fixed to the lower horizontal measurement frame 1 come into play. These two high-precision digital display scales measure the tilt angles of the transponder 7 in the Y-axis and X-axis directions respectively, and feed back the measurement results to the operator in real time. The operator can understand the tilt situation of the transponder 7 by observing the digital display on the digital display scale, and make subsequent fine adjustments accordingly.

[0034] Step 4, Fine Tuning and Precise Installation: According to the feedback results of the digital display scale, the operator can further fine-tune the lifting platform 2 to correct the tilt angle of the transponder 7. This fine-tuning process may need to be repeated until the tilt angle of the transponder 7 meets the design requirements. During the entire fine-tuning process, the twelve-line measuring level 3 continues to provide a horizontal reference to ensure the accuracy of the fine-tuning.

[0035] The above embodiments are only used to illustrate the technical method of the present invention rather than to limit it. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical method of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical method of the present invention.

Claims

1. A transponder installation and correction device, characterized in that: The invention comprises a horizontal measurement lower frame (1), a lifting platform (2) is arranged above the horizontal measurement lower frame (1), a Y-axis slope digital display ruler (4) and an X-axis slope digital display ruler (5) are arranged on the side walls of the horizontal measurement lower frame (1), and a twelve-line measurement level (3) is arranged above the lifting platform (2).

2. A transponder installation correction device according to claim 1, characterized in that: A groove (101) is provided at the bottom of the level measurement lower frame (1), and a transponder (7) is arranged inside the groove (101).

3. A transponder installation correction device according to claim 1, characterized in that: A base plate (8) is arranged below the horizontal measurement lower frame (1).

4. A transponder installation correction device according to claim 3, characterized in that: A pair of steel rails (6) is arranged above the base plate (8), and the pair of steel rails (6) are distributed on both sides of the horizontal measurement lower frame (1).

5. The transponder installation correction device according to claim 1, characterized in that: The Y-axis slope digital display ruler (4) and the X-axis slope digital display ruler (5) are respectively arranged on two adjacent sides of the horizontal measurement lower frame (1).