Construction Technology for Hanging Installation of Temperature Measuring Lines in Concrete Walls

Through technical means such as dislocation of sensor lines, reinforcement fixing, counterweights and locking parts, the problem of large line winding and measurement errors during the installation of sensor lines hanging is solved, and efficient and accurate temperature measurement results are achieved.

CN119288202BActive Publication Date: 2025-07-25GUANGDONG CONSTRUCTION ENGINEERING GROUP HOLDINGS CO LTD +1
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Patent Information

Application Number
CN202411503103.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-10-25
Publication Date
2025-07-25
Estimated Expiration
2044-10-25

AI Technical Summary

Technical Problem

In the construction of large-volume concrete, there are problems such as fighting, winding, time-consuming, and large measurement errors caused by excessive lines, too long and dense lines, which affect the accuracy and efficiency of the temperature measurement results.

Method used

Technical means such as misalignment arrangement of sensor lines, reinforcement fixing, counterweight fixing, equal-quantity marking and locking fixing are used to ensure that the sensor lines are not easily displaced and wound during construction, and improve temperature measurement accuracy and stability.

Benefits of technology

Effectively reduce mutual interference between sensing line measurement points, improve the accuracy and reliability of temperature measurement data, simplify construction operations, and improve construction efficiency and overall structure stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of concrete temperature measurement, in particular to the vertical hanging installation construction process of temperature measurement lines for concrete walls, including the following construction steps: staggered arrangement between sensing lines, positioning of measurement points, weighting of sensing lines, equal-height marking of sensing lines and wall height, centralized placement of sensing line test groups, vertical hanging of sensing line test groups, and reinforcement of sensing line test groups. This application can effectively reduce the mutual interference caused between the measurement points of different sensing lines and improve the accuracy and reliability of temperature measurement.
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Description

Technical Field

[0001] This application relates to the technical field of concrete temperature measurement, and particularly to the vertical hanging installation construction technology of temperature measurement wires for concrete walls. Background Art

[0002] During the construction of mass concrete, controlling the temperature difference between the inside and outside of the concrete is an effective measure to prevent internal cracking of the mass concrete. Therefore, the accuracy of the temperature measurement results determines the overall quality of the concrete structure.

[0003] At present, the thermocouple method is generally adopted in the construction industry as the main monitoring means. This method requires that the thermocouple be installed in place before the steel bar binding is completed and the concrete is poured, and the temperature measurement wire be fixed on the steel bars to ensure that the temperature sensing part is located at the predetermined temperature measurement point.

[0004] However, in actual applications, the installation method of hanging one by one vertically is often adopted, and the following problems will be encountered during the installation process:

[0005] 1. In the same measurement position, multiple temperature monitoring points often need to be arranged, which means that multiple temperature measurement wires need to be arranged in the same measurement position. During the process of vertically hanging the sensing wire probe into the wall, due to too many, too long, and too dense wires, adjacent wires are prone to collide and entangle during measurement, which brings inconvenience to the smooth progress of the measurement work.

[0006] 2. Hanging one by one vertically takes a long time, and the efficiency of the measurement work is low.

[0007] 3. The steel bars in the wall columns are relatively dense, and the sensing wire may often encounter obstacles formed by the steel bars during vertical hanging. At this time, the operator may mistakenly think that the probe at the bottom of the sensing wire has reached the depth of the position to be measured, but in fact it has not reached, resulting in a large measurement error.

[0008] 4. Due to the relatively light material of the sensing wire, during the concrete pouring, the flowing concrete is likely to cause a certain deviation to the sensing wire probe, making the actually measured position deviate greatly from the planned measured position in the horizontal direction, which will also bring a large measurement error. Summary of the Invention

[0009] In order to solve the above-mentioned deficiencies existing in the prior art, this application provides a vertical hanging installation construction technology for temperature measurement wires of concrete walls.

[0010] The vertical hanging installation construction technology for temperature measurement wires of concrete walls provided by this application adopts the following technical solutions:

[0011] The vertical hanging installation construction technology for temperature measurement wires of concrete walls includes the following construction steps:

[0012] S1: Staggered arrangement of sensing wires: According to the spacing of different measurement point depths, stagger the probes of the sensing wires on the same vertical axis;

[0013] S2: Positioning of measuring points: Starting from the probe of the longest sensing line, use reinforcements to fix the adjacent sensing lines along the line to fix the two adjacent sensing lines;

[0014] S3: Sensor line weight: Take the weight and fix it near the probe of the longest sensor line;

[0015] S4: equal amount marking of sensing line and wall height: measure equal amount points corresponding to the wall height on the longest sensing line, and set bright marks as marks to obtain the sensing line test group;

[0016] S5: The sensor line test group is placed centrally;

[0017] S6: Suspension of the sensor line test set: Suspension of the sensor line test set from the steel bars of the wall columns to the bottom of the wall;

[0018] S7: Reinforcement of the sensor line test group: fix the sensor line group to the steel bars at the top of the wall by means of a locking piece.

[0019] By adopting the above-mentioned technical scheme, the sensor lines are staggered and arranged, so that temperature tests can be performed on measuring points at different depths. Compared with the installation method of sensor lines one by one in the prior art, the present application adopts the method of "bundling first and then installing". The mutual interference between measuring points of different sensor lines can be effectively reduced, thereby improving the accuracy and reliability of temperature measurement.

[0020] In the present application, adjacent sensing lines are fixed by reinforcement pieces to achieve positioning of the measuring points, so that the sensing lines are firmly connected, displacement or shaking of the sensing lines during construction is reduced, and the stability of the temperature measurement data is further improved.

[0021] By setting a counterweight near the longest sensor line probe, the sensor line can remain vertical in a natural state, and the longest sensor line can remain vertical in a weighted scenario, making it less likely for the sensor lines to be entangled, and the probe can reach the preset depth of the wall. At the same time, due to the presence of the counterweight, when concrete is subsequently poured in the wall column steel bars, the sensor line is not easily damaged by the flowing concrete, so that all probes are close to the axis of the vertical axis and do not deviate, which helps to further improve the test accuracy of the temperature measurement data.

[0022] By measuring equal points corresponding to the wall height on the longest sensor line and setting bright marks, fast and accurate positioning and marking are achieved, which helps construction personnel quickly identify the position of the sensor line, simplifies the hanging operation process of the sensor line test group, and provides convenience for subsequent maintenance. It realizes the simultaneous installation of multiple sensor lines, effectively improving construction efficiency. At the same time, the sensor line group is fixed to the steel bar at the top of the wall through locking parts, further enhancing the stability of the overall structure.

[0023] Preferably, in the processing step S2, the plurality of sensing wires are first straightened to keep the spacing between two adjacent probes the same, starting from the probe of the longest wire, the wire is kept in a straightened state, at least two reinforcement points are set, each reinforcement point is provided with a reinforcement piece, ensuring that two adjacent sensing wires are fixed by the reinforcement piece, and the plurality of sensing wires are close to each other without being entangled or crossed.

[0024] By adopting the above technical solution, multiple sensor wires are first straightened and the spacing between two adjacent probes is kept the same, which is conducive to the neat arrangement and orderly management of the wires to avoid the occurrence of chaotic interweaving of the wires; starting from the probe of the longest wire, the wires are kept in a straightened state and at least two reinforcement points are set, which effectively ensures that the wires always remain straightened during the entire construction process, reducing the impact of bending or twisting on the temperature measurement results, that is, reducing signal interference or temperature measurement errors caused by wire crossing, which helps to further improve the performance and stability of the temperature measurement system; each reinforcement point of the present application is provided with a reinforcement piece to ensure that two adjacent sensor wires are fixed by the reinforcement piece, which can enhance the stability and anti-interference ability of the sensor wire structure, making the temperature measurement data more accurate and reliable.

[0025] Preferably, in the processing step S3, the counterweight is a metal part with good thermal conductivity, and the surface of the counterweight is smooth. Its length is greater than three times the length of the probe of the longest sensing line. When the counterweight is assembled on the longest sensing line, it is not allowed to contact its probe.

[0026] By adopting the above technical solution, the counterweight is made of metal with good thermal conductivity and is not in direct contact with the probe, thereby ensuring heat exchange between the sensor line probe and the concrete, so that the counterweight will not affect the data of the probe testing the concrete temperature, thereby ensuring the response speed and accuracy of the temperature measurement.

[0027] Preferably, in the processing step S3, the deadweight of the counterweight is greater than the deadweight of the longest sensing line, and the counterweight and the longest sensing line are not allowed to be free from each other when assembled.

[0028] By adopting the above technical solution, the deadweight of the counterweight is greater than the deadweight of the longest sensing line, so that the sensing line can remain stable and not sway during the hanging process, effectively reducing the shaking of the line caused by external force or other external factors, thereby improving the reliability of the temperature measurement data. When the counterweight and the longest sensing line are assembled, they are not allowed to be free from each other, ensuring the firmness of the assembly to prevent the counterweight from accidentally falling off during the construction process, thereby ensuring the personal safety of the construction workers.

[0029] Preferably, in the processing step S3, the connecting piece for fixing the counterweight and the longest sensing line is a cable tie and / or a rope and / or an adhesive tape and / or a hoop and / or a clamp.

[0030] By adopting the above technical solutions, diverse connecting components such as cable ties, ropes, tapes, hoop members or clamps are used, which can adapt to different environments and requirements, enhance the flexibility and convenience of construction. Moreover, these connecting components are usually simple and easy to use, and can quickly fix the counterweight and the longest sensing wire together, contributing to improving construction efficiency and reducing the overall construction cost.

[0031] Preferably, it includes a seat body. The reinforcing member includes a movable clamping seat. A driving assembly for driving the movable clamping seat to move along the length direction of the seat body is arranged in the middle of the seat body. The bottom of the movable clamping seat is assembled with the driving assembly. A wire groove is formed at the top of the movable clamping seat. A binding member is arranged at the top of the movable clamping seat. In the processing step of S2, the number of reinforcing members corresponds to the number of sensing wires. Each sensing wire is correspondingly placed in a wire groove, and the binding member covers the sensing wire on the wire groove for radially restraining the sensing wire. The driving assembly is used to adjust the specific position of the movable clamping seat on the seat body.

[0032] By adopting the above technical solutions, the cooperation of the wire groove and the binding member can effectively radially restrain the sensing wire to reduce the shaking and displacement of the wire, ensuring the accuracy of measurement. The driving assembly can adjust the specific position of the movable clamping seat on the seat body as needed, facilitating the adjustment and optimization during the construction process, making the overall structural design reasonable, thus making the wire reinforcement work faster and more accurate, facilitating the management and maintenance of users, and being beneficial to improving the construction quality and efficiency.

[0033] Preferably, the reinforcing member includes a stop rotating plate and a rotating shaft. The rotating shaft is rotatably connected to the side wall of the movable clamping seat. The stop rotating plate is fixed on the outer wall of the rotating shaft. A torsion spring is arranged between the stop rotating plate and the rotating shaft, so that one end of the torsion spring is assembled with the stop rotating plate and the other end is assembled with the stop rotating plate. Correspondingly, the driving assembly includes a rack fixed on the top surface of the seat body. The moving direction of the movable clamping seat is consistent with the extending direction of the rack and is perpendicular to the extending direction of the rotating shaft. In the processing step of S2, when the movable clamping seat stops moving, rotate the rotating shaft, and the bottom end of the stop rotating plate is adaptively clamped with the teeth of the rack.

[0034] By adopting the above technical solution, under the combined action of the stop turning plate, the rotating shaft and the torsion spring, a stable locking mechanism is formed. When the moving clamp seat stops moving, the stop turning plate can be adaptively clamped with the teeth of the rack, thereby effectively preventing the accidental sliding or displacement of the moving clamp seat, greatly improving the stability of the overall structure. At the same time, the construction personnel only need to rotate the rotating shaft to achieve the quick clamping and unlocking between the stop turning plate and the rack. The operation structure is simple and easy to implement, which helps to improve the construction efficiency, enables it to adapt to different construction environments and requirements, can provide a good stop effect, and ensures the accuracy and consistency of the installation position of the temperature measuring wire.

[0035] Preferably, the driving component includes a connecting rotating shaft and a gear. The gear is assembled in the middle of the moving clamp seat through the connecting rotating shaft. The gear meshes with the rack. In the processing step of S2, when the moving clamp seat is pushed, the gear moves along the rack.

[0036] By adopting the above technical solution, the connecting rotating shaft, the gear and the rack in the driving component are closely matched, realizing the precise driving and control of the moving clamp seat. When the moving clamp seat is pushed, the gear moves smoothly along the rack, and can accurately adjust the position of the wire, so as to push the moving clamp seat to a predetermined position, making the position of the moving clamp seat more flexible and meeting the usage requirements.

[0037] Preferably, the binding member is a magic tape, or an elastic band, or a flexible telescopic piece.

[0038] By adopting the above technical solution, the present application uses materials such as magic tape, elastic band or flexible telescopic piece as the binding member, which can fix the sensing wire more flexibly and with stronger adaptability. At the same time, the binding member has good elasticity and stretchability, can easily adapt to sensing wires of different diameters, and realizes quickly and firmly binding the sensing wire in the wire groove, thereby improving the construction efficiency. At the same time, the materials such as magic tape, elastic band and flexible telescopic piece have relatively low costs, which helps to reduce the overall construction cost.

[0039] Preferably, a rigid insertion piece is fixed at one end of the binding member. A first slot is formed on the side wall of the moving clamp seat, and a second slot is formed on the top wall thereof. The first slot communicates with the second slot to form an L-shaped slot. A positioning insertion block is movably arranged near the second slot of the moving clamp seat. In the processing step of S2, after the sensing wire is placed in the wire groove, the binding member covers the sensing wire on the wire groove, the rigid insertion piece is inserted into the first slot, and then the positioning insertion block is inserted into the second slot.

[0040] By adopting the above technical solution, a stable locking mechanism is formed by the coordinated use of the hard insert, the first slot, the second slot and the positioning insert. The restraint can tightly and stably fix the sensor line, effectively reducing the loosening or falling off of the sensor line caused by external force, and helping to enhance the stability and safety of the overall structure.

[0041] In the present application, by first inserting the hard insert into the first slot and then inserting the positioning insert into the second slot, the connection stability between the restraining member and the movable clamp seat can be further improved.

[0042] In summary, the present application includes at least one of the following beneficial technical effects:

[0043] 1. Fix the adjacent sensor lines with reinforcements to locate the measuring points, so that the sensor lines are firmly connected, reduce the displacement or shaking of the sensor lines during the construction process, and further improve the stability of the temperature measurement data;

[0044] 2. By setting a counterweight near the longest sensor line probe, the sensor line can be kept vertical in a natural state, and the longest sensor line can be kept vertical in a weighted scene, so that the sensor lines are not easily entangled, and the probe can reach the preset depth of the wall. At the same time, due to the existence of the counterweight, when pouring concrete in the wall column steel bar later, the sensor line is not easily pulled and damaged by the flowing concrete, so that all probes are close to the axis of the vertical axis and do not deviate, which helps to further improve the test accuracy of the temperature measurement data;

[0045] 3. By measuring the equal points corresponding to the wall height on the longest sensor line and setting bright marks, fast and accurate positioning and marking are achieved, which helps construction personnel to quickly identify the position of the sensor line, helps to simplify the hanging operation process of the sensor line test group, and provides convenience for subsequent maintenance, realizing the simultaneous installation of multiple sensor lines, effectively improving construction efficiency. At the same time, the sensor line group is fixed to the steel bar at the top of the wall through locking parts, further enhancing the stability of the overall structure. BRIEF DESCRIPTION OF THE DRAWINGS

[0046] Figure 1 It is a schematic diagram of the structure of the sensor line in the embodiment of the present application.

[0047] Figure 2 It is a plan view of the wall columns of an embodiment of the present application.

[0048] Figure 3 This is a wall column elevation view of an embodiment of the present application.

[0049] Figure 4 It is a structural schematic diagram of the sensor line test group in the embodiment of the present application.

[0050] Figure 5It is a schematic structural diagram of a reinforcement member in an embodiment of the present application.

[0051] Figure 6 It is a schematic structural diagram of a driving component in an embodiment of the present application.

[0052] Explanation of reference numerals: 1, sensing wire; 11, probe; 12, plug; 13, temperature reader; 2, reinforcement member; 21, moving clamp seat; 211, wire groove; 212, first slot; 213, second slot; 22, driving component; 221, rack; 222, connecting rotating shaft; 223, gear; 23, restraint member; 231, rigid insert piece; 24, stop rotating plate; 25, rotating shaft; 26, torsion spring; 27, positioning insert block; 271, connecting portion; 272, inserting portion; 28, sliding block; 3, seat body; 31, sliding groove; 4, counterweight member; 5, bright mark; 6, connecting member; 7, sensing wire test group; 8, measuring point; 9, wall. Detailed implementation manners

[0053] The following further Figure 1-6 elaborates on the present application in detail.

[0054] The embodiment of the present application discloses a construction technology for vertically suspending and installing a temperature measuring wire on a concrete wall.

[0055] Referring to Figure 1-3 , the construction technology for vertically suspending and installing a temperature measuring wire on a concrete wall includes the following construction steps:

[0056] S1: Dislocation arrangement of sensing wires: According to the spacing of different measuring point depths, the probes 11 of the sensing wires 1 on the same vertical axis are staggered. The user can freely adjust the specific number of the sensing wires 1 according to the actual height of the wall 9, so as to set a number of measuring points 8 on the same vertical axis of the wall 9.

[0057] In the present application, if it is set that three measuring points are to be arranged at the same measuring position (i.e., the same vertical axis), the depth interval is two meters, then three sufficiently long sensing wires 1 need to be prepared for use at this measuring position. The lengths of the three wires differ by two meters. Then, according to the spacing of different measuring point depths and in accordance with the lengths of the sensing wires 1, the probes 11 of all the sensing wires 1 are staggered from long to short.

[0058] S2: Positioning of measuring points: Starting from the probe 11 of the longest sensing wire 1, the adjacent sensing wires 1 are fixed along the line with the reinforcement member 2, so as to fix two adjacent sensing wires 1 to each other.

[0059] Specifically, referring to Figure 3 and Figure 4, First, straighten out multiple sensing wires 1, and keep the distance between adjacent two probes 11 the same, which is beneficial to the neat arrangement and orderly management of the wires, so as to avoid the situation of wire chaos and entanglement. Starting from the probe 11 of the longest wire, effectively ensure that the wire is always in a straightened state throughout the construction process. Set at least two reinforcement points, and each reinforcement point is provided with a reinforcement member 2 to ensure that two adjacent sensing wires 1 are fixed by the reinforcement member 2, and the multiple sensing wires 1 are close to each other without winding and crossing, reducing the influence of bending or twisting on the temperature measurement result, that is, reducing the signal interference or temperature measurement error caused by wire crossing, further improving the performance and stability of the temperature measurement system, and making the temperature measurement data more accurate and reliable.

[0060] In the present application, referring to Figure 4 and Figure 5 , it includes a seat body 3. The reinforcement member 2 includes a movable clamp seat 21. A driving assembly 22 for driving the movable clamp seat 21 to move along the length direction of the seat body 3 is arranged in the middle of the seat body 3. The bottom of the movable clamp seat 21 is assembled with the driving assembly 22. A wire groove 211 is opened at the top of the movable clamp seat 21. A restraint member 23 is arranged at the top of the movable clamp seat 21. In the processing step of S2, the number of the reinforcement members 2 corresponds to the number of the sensing wires 1. Each sensing wire 1 is correspondingly placed in a wire groove 211. The wire groove 211 is a U-shaped groove, and its inner wall has a smooth transition, so that the sensing wire 1 can be better constrained without mutual interference. The restraint member 23 covers the sensing wire 1 on the wire groove 211 and is used to radially constrain the sensing wire 1 to reduce the shaking and displacement of the wire, ensuring the accuracy of the measurement. The driving assembly 22 is used to adjust the specific position of the movable clamp seat 21 on the seat body 3, facilitating the adjustment and optimization of the position of the sensing wire 1 during the construction process, making the overall structure design reasonable, and also making the reinforcement work of the wire faster and more accurate, facilitating the management and maintenance of the user, and being beneficial to improving the construction quality and efficiency.

[0061] Referring to Figure 5 and Figure 6 , the driving assembly 22 includes a rack 221 fixed on the top surface of the seat body 3, a connecting rotating shaft 222 and a gear 223. The gear 223 is assembled in the middle of the movable clamp seat 21 through the connecting rotating shaft 222. The gear 223 meshes with the rack 221. The moving direction of the movable clamp seat 21 is consistent with the extending direction of the rack 221, and both are perpendicular to the extending direction of the rotating shaft 25.

[0062] Furthermore, sliding grooves 31 are respectively opened on the opposite surfaces of the two long sides of the seat body 3. Sliding blocks 28 are respectively fixed on the opposite surfaces of the two long sides of the movable clamp seat 21. The two sliding blocks 28 are respectively slidably connected with the sliding grooves 31 close to them.

[0063] In this application, the connecting rotating shaft 222, the gear 223 and the rack 221 are closely matched to achieve precise driving and control of the moving clamp seat 21. When the moving clamp seat 21 is pushed, the gear 223 moves smoothly along the rack 221. At the same time, the sliding block 28 can slide along the sliding groove 31, so as to smoothly push the moving clamp seat 21 to a predetermined position, making the position of the moving clamp seat 21 more flexible.

[0064] The reinforcing member 2 includes a stop rotating plate 24 and a rotating shaft 25. The rotating shaft 25 is rotatably connected to the side wall of the moving clamp seat 21, and the stop rotating plate 24 is fixed to the outer wall of the rotating shaft 25. In this application, the stop rotating plate 24 is a telescopic plate with a certain telescopic ability. A torsion spring 26 is arranged between the stop rotating plate 24 and the rotating shaft 25, so that one end of the torsion spring 26 is assembled with the stop rotating plate 24 and the other end is assembled with the stop rotating plate 24. When the moving clamp seat 21 is pushed, the gear 223 moves along the rack 221; when the moving clamp seat 21 stops moving, the rotating shaft 25 is rotated, and the bottom end of the stop rotating plate 24 is adaptively clamped with the teeth of the rack 221.

[0065] In this application, under the combined action of the stop rotating plate 24, the rotating shaft 25 and the torsion spring 26, a stable locking mechanism is formed. When the moving clamp seat 21 stops moving, the stop rotating plate 24 can be adaptively clamped with the teeth of the rack 221, so as to effectively prevent the accidental sliding or displacement of the moving clamp seat 21, greatly improving the stability of the overall structure. At the same time, the construction personnel only need to rotate the rotating shaft 25 to achieve the quick clamping and unlocking between the stop rotating plate 24 and the rack 221. The operation structure is simple and easy to implement, which helps to improve the construction efficiency, enables it to adapt to different construction environments and requirements, can provide a good stop effect, and ensures the accuracy and consistency of the installation position of the temperature measuring wire; on the contrary, releasing the constraint of the stop rotating plate 24 on the rotation of the gear 223, the gear 223 can continue to move smoothly along the rack 221 to change the position of the moving clamp seat 21.

[0066] Refer to Figure 4 and Figure 5 The binding member 23 is a magic tape, or an elastic band, or a flexible telescopic piece. A rigid insert piece 231 is fixed at one end of the binding member 23. A first slot 212 is opened on the side wall of the moving clamp seat 21, and a second slot 213 is opened on its top wall. The first slot 212 and the second slot 213 communicate with each other to form an L-shaped slot. A positioning insert block 27 is movably arranged near the second slot 213 of the moving clamp seat 21. In the processing step of S2, after the sensing wire 1 is placed in the wire groove 211, the binding member 23 covers the sensing wire 1 on the wire groove 211, the rigid insert piece 231 is inserted into the first slot 212, and then the positioning insert block 27 is inserted into the second slot 213.

[0067] Specifically, the positioning plug block 27 includes a connecting portion 271 and an inserting portion 272, wherein the inserting portion 272 is an elastic block, the shape and size of the inserting portion 272 are adapted to the aperture size of the second slot 213, the inserting portion 272 is fixed at one end of the connecting portion 271, and the connecting portion 271 is rotationally connected to the movable clamp seat 21.

[0068] When in use, first insert the hard insert piece 231 of the restraint 23 into the first slot 212, and then rotate the connecting portion 271 of the positioning plug 27 until the plug-in portion 272 is inserted into the second slot 213. At this time, the portion of the restraint 23 covering the top surface of the movable clamp seat 21 is pressed by the connecting portion 271 at the same time, further improving the connection stability between the restraint 23 and the movable clamp seat 21.

[0069] The present application uses materials such as magic tape, elastic tape or flexible expansion sheet as the binding member 23, which can fix the sensor line 1 more flexibly and adaptably. At the same time, the binding member 23 has good elasticity and expansion, which can easily adapt to sensor lines 1 of different diameters, and quickly and firmly bind the sensor line 1 in the line slot 211. In addition, the cost of materials such as magic tape, elastic tape and flexible expansion sheet is relatively low, which helps to reduce the overall construction cost. The hard insert 231, the first slot 212, the second slot 213 and the positioning insert 27 form a stable locking mechanism. The binding member 23 can tightly and stably fix the sensor line 1, effectively reducing the loosening or falling off of the sensor line 1 caused by external forces.

[0070] S3: Counterweight for sensing line: Take the counterweight 4 and fix it near the probe of the longest sensing line 1.

[0071] Specifically, refer to Figure 4 The counterweight 4 is a metal part with good thermal conductivity. In the present application, the counterweight 4 is a cylindrical steel rod with a smooth surface, and its length is greater than three times the length of the probe 11 of the longest sensing line 1. In addition, its own weight is greater than the self-weight of the longest sensing line 1, so that the sensing line 1 can remain stable and not sway during the hanging process, and effectively reduce the line shaking caused by external force or other external factors. When the counterweight 4 is assembled on the longest sensing line 1, it is not allowed to contact with its probe 11, nor is it allowed to be free from each other, thereby ensuring the heat exchange between the probe 11 of the sensing line 1 and the concrete, so that the counterweight 4 will not affect the data of the probe 11 testing the concrete temperature, and at the same time ensure the firmness of the assembly to prevent the counterweight 4 from accidentally falling off during the construction process, thereby ensuring the personal safety of the construction workers.

[0072] In the processing step of S3, the connecting member 6 for fixing the counterweight 4 and the longest sensing wire 1 is a cable tie and / or a rope and / or a tape and / or a hoop and / or a clamp. The diverse connecting members 6 are available for users to choose, which can adapt to different environments and requirements, enhancing the flexibility and convenience of construction. Moreover, these connecting members 6 are usually simple and easy to use, and can quickly fix the counterweight 4 and the longest sensing wire 1 together, helping to improve the construction efficiency and reduce the overall construction cost.

[0073] Refer to Figure 1-3 , S4: Mark the equal height of the sensing wire with the wall height: Measure the equal points corresponding to the wall height on the longest sensing wire 1, and set the bright mark 5 as a mark to obtain the sensing wire test group 7.

[0074] S5: Concentrate the placement of the sensing wire test group.

[0075] S6: Hang the sensing wire test group vertically: Hang the sensing wire test group 7 to the bottom of the wall in the steel bars of the on-site wall columns.

[0076] S7: Reinforce the sensing wire test group: Fix the sensing wire test group 7 to the steel bars at the top of the wall through the locking member, and then electrically connect the plug 12 of the sensing wire 1 to the temperature reading instrument 13, and repeat the test data for at least three groups.

[0077] In this application, the sensing wires 1 are arranged in a staggered manner, which can perform temperature tests on the measuring points at different depths. Adopting the method of "bundling first and then installing", compared with the installation method of each sensing wire 1 in the prior art, this application can effectively reduce the mutual interference caused between the measuring points of different sensing wires 1, thereby improving the accuracy and reliability of temperature measurement.

[0078] In this application, the adjacent sensing wires 1 are fixed through the reinforcing member 2 to realize the positioning of the measuring point 8, making the sensing wires 1 firmly connected to each other, reducing the displacement or shaking of the sensing wires 1 during the construction process, and further improving the stability of the temperature measurement data.

[0079] By setting the counterweight 4 at the point adjacent to the probe of the longest sensing wire 1, the sensing wire 1 can maintain a vertical state in the natural state, keep a vertical state in the scenario of adding weight, making it not easy for the sensing wires 1 to be entangled with each other, and enabling the probe 11 to reach the preset depth of the wall 9. At the same time, due to the existence of the counterweight, when pouring concrete in the steel bars of the wall columns later, the sensing wire 1 is not easily damaged by the flowing concrete being pulled, making all the probes 11 close to the axis of the vertical axis without deviation, which helps to further improve the test accuracy of the temperature measurement data.

[0080] By measuring equal points corresponding to the wall height on the longest sensing wire 1 and setting the bright marks 5, rapid and accurate positioning and marking are achieved, which helps the construction workers quickly identify the position of the sensing wire 1, simplifies the hanging operation process of the sensing wire test group 7, and provides convenience for subsequent maintenance. The simultaneous installation of multiple sensing wires 1 is realized, effectively improving the construction efficiency. At the same time, at the top of the wall, the sensing wire test group 7 is fixed to the steel bars through the locking parts, further enhancing the stability of the overall structure.

[0081] The above are all the preferred embodiments of the present application. This embodiment is only an explanation of the present application and does not limit the protection scope of the present application accordingly. Therefore, all equivalent changes made according to the structure, shape, and principle of the present application should be covered within the protection scope of the present application.

Claims

1. The construction technology for the vertical suspension installation of temperature measurement wires in concrete walls is characterized in that, It includes the following construction steps: S1: Misaligned arrangement of sensing wires: According to the spacing of different measuring point depths, stagger the probes (11) of the sensing wires (1) on the same vertical axis; S2: Positioning of measuring points: Starting from the probe (11) of the longest sensing wire (1), fix the adjacent sensing wires (1) along the line with the reinforcement member (2) to achieve the fixation of two adjacent sensing wires (1); S3: Weighing of sensing wires: Take the weight member (4) and fix it at a point adjacent to the probe of the longest sensing wire (1); S4: Equal - height marking of the sensing wire and the wall: Measure equal - height points corresponding to the wall height on the longest sensing wire (1), and set bright marks (5) as marks to obtain the sensing wire test group (7); S5: Concentrated placement of the sensing wire test group; S6: Suspension of the sensing wire test group: Suspend the sensing wire test group (7) to the bottom of the wall in the on - site wall column steel bars; S7: Reinforcement of the sensing wire test group: Fix the sensing wire test group (7) to the steel bars through a locking member at the top of the wall; It includes a seat body (3). The reinforcement member (2) includes a movable clamp seat (21). A driving component (22) for driving the movable clamp seat (21) to move along the length direction of the seat body (3) is arranged in the middle of the seat body (3). The bottom of the movable clamp seat (21) is assembled with the driving component (22). A wire groove (211) is opened at the top of the movable clamp seat (21). A binding member (23) is arranged at the top of the movable clamp seat (21). In the processing step of S2, the binding member (23) covers the entire wire groove. The specific position of the movable clamp seat (21) on the seat body (3); The reinforcement member (2) includes a stop turning plate (24) and a rotating shaft (25). The rotating shaft (25) is rotatably connected to the side wall of the movable clamp seat (21). The stop turning plate (24) is fixed to the outer wall of the rotating shaft (25). A torsion spring (26) is arranged between the stop turning plate (24) and the rotating shaft (25) so that one end of the torsion spring (26) is assembled with the stop turning plate (24) and the other end is assembled with the stop turning plate (24). Correspondingly, the driving component (22) includes a rack (221) fixed on the top surface of the seat body (3). The moving direction of the movable clamp seat (21) is consistent with the extending direction of the rack (221), and both are perpendicular to the extending direction of the rotating shaft (25). In the processing step of S2, when the movable clamp seat (21) stops moving, rotate the rotating shaft (25), and the bottom end of the stop turning plate (24) is adaptively clamped with the teeth of the rack (221); One end of the binding member (23) is fixed with a rigid insert piece (231). A first slot (212) is formed in the side wall of the movable clamp seat (21), and a second slot (213) is formed in the top wall thereof. A positioning plug (27) is movably arranged near the second slot (213) of the movable clamp seat (21). In the processing step of S2, after the sensing wire (1) is placed in the wire slot (211), the binding member (23) covers the sensing wire (1) on the wire slot (211), the rigid insert piece (231) is inserted into the first slot (212), and then the positioning plug (27) is inserted into the second slot (213).

2. The vertical hanging installation construction process of the temperature measuring wire for the concrete wall according to claim 1, characterized in that, In the processing step of S2, first smooth out multiple sensing wires (1), keep the distance between adjacent two probes (11) the same. Starting from the probe (11) of the longest wire, keep the wire in a straightened state, set at least two reinforcement points, and each reinforcement point is provided with a reinforcement member (2) to ensure that two adjacent sensing wires (1) are fixed by the reinforcement member (2), and the multiple sensing wires (1) are close to each other without winding and crossing.

3. The construction process for vertically suspending and installing the temperature measuring wires on the concrete wall according to claim 1 is characterized in that, In the processing step of S3, the counterweight member (4) is a metal part with good thermal conductivity, and the surface of the counterweight member (4) is smooth. Its length dimension is more than three times the length of the probe (11) of the longest sensing wire (1). When the counterweight member (4) is assembled on the longest sensing wire (1), it is not allowed to contact its probe (11).

4. The vertical hanging installation construction process of the temperature measuring wire for the concrete wall according to claim 3, characterized in that, In the processing step of S3, the self-weight of the counterweight member (4) is greater than the self-weight of the longest sensing wire (1). When the counterweight member (4) is assembled with the longest sensing wire (1), it is not allowed to be free from each other.

5. The construction process for vertically suspending and installing the temperature measuring wire in a concrete wall according to claim 3 or 4, characterized in that In the processing step of S3, the connecting member (6) for fixing the counterweight member (4) and the longest sensing wire (1) is a cable tie and / or a rope and / or a tape and / or a hoop and / or a clamp.

6. The temperature measurement wire hanging installation construction process for the concrete wall according to claim 1, characterized in that, In the processing step of S2, the number of the reinforcement members (2) corresponds to the number of the sensing wires (1), and each sensing wire (1) is correspondingly placed in a wire slot (211).

7. The construction process for vertically suspending and installing the temperature measurement wire on the concrete wall according to claim 6, characterized in that, The driving assembly (22) includes a connecting rotating shaft (222) and a gear (223). The gear (223) is assembled in the middle of the movable clamp seat (21) through the connecting rotating shaft (222). The gear (223) meshes with the rack (221). In the processing step of S2, when the movable clamp seat (21) is pushed, the gear (223) moves along the rack (221).

8. The construction process for vertically suspending and installing the temperature measurement wire on the concrete wall according to claim 6, characterized in that, The binding member (23) is a magic tape, or an elastic band, or a flexible telescopic sheet.

9. The construction process for vertically suspending and installing the temperature measuring wire on the concrete wall according to claim 1, characterized in that, The first slot (212) communicates with the second slot (213) to form an L-shaped slot.

Citation Information

Patent Citations

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