Concrete cooling water pipe for ship lock construction and laying method thereof

CN122610522APending Publication Date: 2026-08-21CCCC FIRST HARBOR ENGINEERING CO LTD +1
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Patent Information

Application Number
CN202610721154.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-05-25
Publication Date
2026-08-21

AI Technical Summary

Technical Problem

[0007]本发明的目的在于提供一种船闸施工用混凝土冷却水管及其铺设方法,为解决现有将冷却水管呈“S”形结构进行铺设施工,由冷却水管实现冷却水的循环降温,但冷却水管无法应对混凝土施工时因振捣、人为因素造成的偏移错位,而该类型冷却水管又并无对应的铺设装置与定位组件,进而在偏移之后又无法进行校准,使得在进行降温冷却时容易出现散热不对称,混凝土入模后温度失控发生开裂的问题

Benefits of technology

[0025]与现有技术相比,本发明的有益效果是:该船闸施工用混凝土冷却水管及其铺设方法,通过将冷却水管本体埋设于浇筑的船闸地基的混凝土内部,由可调的横拉机构将相邻冷却水管本体的间距进行调整锁止,同时主卡边支架与副卡边支架针对弯折处进行检测定位,提升冷却水管本体安装的稳定性,其具体内容如下:

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Abstract

The application discloses a concrete cooling water pipe for ship lock construction and a laying method thereof, and relates to the technical field of concrete foundation construction, which comprises a cooling water pipe body and a concrete ship lock achieving cooling through the cooling water pipe body; wherein the cooling water pipe body is curved and laid in an S-shaped structure, the end of the cooling water pipe body penetrates through the outside of the concrete ship lock, and is connected with a circulating water supply machine; further comprising: a horizontal pulling mechanism is arranged on the outside of the cooling water pipe body, and the horizontal pulling mechanism comprises a positioning sleeve; a clamping edge mechanism is arranged at the bending part of the cooling water pipe body. The concrete cooling water pipe for ship lock construction and the laying method thereof have the advantages that the cooling water pipe body is embedded in the concrete of the poured ship lock foundation, the spacing between adjacent cooling water pipe bodies is adjusted and locked through the adjustable horizontal pulling mechanism, the main clamping edge support and the auxiliary clamping edge support are used for detecting and positioning the bending part, and the stability of the installation of the cooling water pipe body is improved.
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Description

Technical Field

[0001] This invention relates to the field of concrete foundation construction technology, specifically to a concrete cooling water pipe for lock construction and its laying method. Background Technology

[0002] Concrete lock foundation construction refers to the construction of the lock foundation structure in hydraulic lock engineering through concrete construction technology. For weak foundations, sand and gravel or graded crushed stone are used for replacement. For special geological conditions (such as saturated soil), vibratory compaction or heavy hammer tamping is required. The bottom slab is poured in sections (with two construction joints). Standardized steel formwork is used. For large-volume concrete lock foundations, cooling water pipes need to be pre-embedded. This is mainly used to control the temperature rise of the large-volume lock foundation concrete and prevent cracks. Water cooling method (groundwater circulation cooling) is usually used to reduce the accumulation of hydration heat and lower the core temperature of the lock foundation concrete, thereby preventing cracks in the foundation concrete caused by excessive temperature difference. Excessive temperature difference can easily cause cracking of the foundation concrete. At the same time, the installation of cooling water pipes can effectively reduce the temperature stress of the foundation concrete and improve the structural stability.

[0003] CN209468763U discloses a parallel arrangement system of two serpentine cooling water pipes in concrete. The inlet and outlet of the two cooling water pipes are located at both ends of the concrete, and one end of the concrete is provided with the inlet of one cooling water pipe and the outlet of the other cooling water pipe. The parallel arrangement system of two serpentine cooling water pipes in concrete does not require changing the direction of water flow during water circulation, so that the temperature drop of the concrete in each part is more uniform, effectively reducing the temperature difference and temperature stress in different parts of the concrete.

[0004] Announcement No. CN209429125U discloses a concrete cooling water pipe device. The cooling water pipes are arranged in a horizontal parallel manner. The cooling water first enters from the center of the concrete shape in parallel. By adjusting the flow rate of the water pipes at different elevations, the cooling water flow rate at different parts can be precisely controlled. This can effectively solve the above-mentioned problems existing in the traditional serpentine arrangement of cooling water pipes, eliminate the cost of reversing the cooling water direction, and allow for the reuse of some equipment.

[0005] However, the cooling water pipes for concrete construction of lock foundations disclosed above still have the following problems in actual use: By laying the cooling water pipes in an "S" shape, the cooling water is circulated and cooled by the cooling water pipes. However, the cooling water pipes cannot cope with the displacement and misalignment caused by vibration and human factors during concrete foundation construction. Moreover, there is no corresponding laying device and positioning component for this type of cooling water pipe. Therefore, it is impossible to recalibrate after the displacement. This makes it easy for asymmetrical heat dissipation to occur during cooling, and for the temperature to run out and crack after the concrete is put into the formwork.

[0006] Therefore, we propose a concrete cooling water pipe for lock construction and its laying method to solve the problems mentioned above. Summary of the Invention

[0007] The purpose of this invention is to provide a concrete cooling water pipe for lock construction and its laying method. This invention addresses the problem that existing methods lay cooling water pipes in an "S" shape to circulate and cool the water. However, these pipes cannot handle the misalignment caused by vibration or human factors during concrete construction. Furthermore, there are no corresponding laying devices or positioning components for this type of cooling water pipe, making it impossible to recalibrate after misalignment. This leads to asymmetrical heat dissipation during cooling, resulting in temperature runaway and cracking of the concrete after it is poured into the formwork.

[0008] To achieve the above objectives, the present invention provides the following technical solution:

[0009] A concrete cooling water pipe for lock construction includes a cooling water pipe body and a concrete lock that achieves cooling through the cooling water pipe body, wherein the cooling water pipe body is embedded 15 cm inside the concrete lock by vibration.

[0010] The cooling water pipe body is laid in an "S" shaped bend, and the end of the cooling water pipe body passes through the outside of the concrete lock and is connected to the circulating water supply machine.

[0011] It also includes: a horizontal tensioning mechanism is provided on the outside of the cooling water pipe body, and the horizontal tensioning mechanism includes a positioning sleeve, and the outer end of the positioning sleeve is provided with a positioning clamp.

[0012] The bend in the cooling water pipe body is provided with a clamping mechanism, which includes a main clamping bracket and a secondary clamping bracket.

[0013] Preferably, the bends of the cooling water pipe body are arranged in a semi-circular structure, and the left and right ends of the cooling water pipe body are divided into inlets and outlets. Cooling water is guided into the interior of the cooling water pipe body through the inlets and outlets to provide symmetrical and uniform heat dissipation for the concrete ship lock.

[0014] Preferably, the horizontal pulling mechanism includes a bidirectional threaded groove, which is located at the center of the positioning sleeve, and both ends of the bidirectional threaded groove are threadedly connected to threaded pull rods.

[0015] Preferably, the outer end of the threaded tie rod included in the horizontal pulling mechanism passes through the outside of the positioning sleeve, and the outer ends of the symmetrically arranged threaded tie rods are fixedly connected to the inner side of the positioning clamp, and the symmetrically arranged positioning clamps are sleeved and installed on the outer wall of the adjacent cooling water pipe body to adjust the distance between the cooling water pipe bodies.

[0016] Preferably, the horizontal pulling mechanism includes a guide groove, which is opened on the left and right sides between the positioning sleeve and the bidirectional threaded groove. A protective sleeve is slidably arranged inside the guide groove, and the outer ends of the symmetrically arranged protective sleeves are slidably arranged through the outer wall of the positioning sleeve.

[0017] Preferably, the horizontal pulling mechanism includes a positioning ring, which is fixedly installed on the outer end of the threaded pull rod away from the positioning sleeve. The outer wall of the positioning ring is attached to the outer end of the protective sleeve, and the protective sleeve covers and protects the threaded pull rod outside the positioning sleeve.

[0018] Preferably, the outer wall of the positioning sleeve included in the lateral tensioning mechanism is hexagonal, and the positioning sleeve is embedded in the inner wall of the concrete lock through the hexagonal structure to avoid rotation affecting the lateral tensioning distance during the concrete lock vibration operation.

[0019] Preferably, the clamping mechanism includes a main clamping bracket and a secondary clamping bracket fitted together at the bend of the cooling water pipe body, and the secondary clamping bracket is used to connect adjacent main clamping brackets. The main clamping bracket and the secondary clamping bracket are locked and positioned by bolts to adapt to different degrees of bending of the cooling water pipe body.

[0020] Preferably, the adjacent main clamping brackets of the clamping mechanism are distributed in opposite directions, and a temperature measuring module is provided below the main clamping bracket in the middle position. The temperature measuring module measures the temperature at different bends of the cooling water pipe body. Moreover, the lower end of the main clamping bracket is set in a trapezoidal structure to be embedded inside the concrete lock to prevent displacement.

[0021] A method for laying concrete cooling water pipes for lock construction includes the following steps:

[0022] S1: The cooling water pipe body is laid in an "S" shape inside the concrete lock. The two ends of the cooling water pipe body extend to the outside of the concrete lock. At the same time, the outer end of the cooling water pipe body is divided into an inlet and an outlet, and connected to a circulating water supply machine to deliver cooling water into the cooling water pipe body. During the circulation process, heat exchange occurs between the cooling water pipe body and the concrete lock to achieve cooling.

[0023] S2: After the cooling water pipe body is bent and laid, the positioning clamp is locked to the outer wall of the adjacent cooling water pipe body with bolts. Then, the positioning sleeve is rotated manually. The threaded tie rod connected to the internal bidirectional thread groove is limited by the positioning clamp so that the rotating positioning sleeve can drive the threaded tie rod to adjust and move. The threaded tie rod is connected to the protective sleeve through the positioning ring at the outer end, so that the protective sleeve moves with the threaded tie rod to cover and protect it. The moving threaded tie rod drives the adjacent cooling water pipe body to adjust the spacing and position, so as to avoid displacement and misalignment during subsequent vibration and affect the heat dissipation effect.

[0024] S3: After unlocking the main and secondary clamping brackets connected by bolts, they can be adjusted according to the angle of the bend in the cooling water pipe body. Adjacent main clamping brackets are staggered inside and out and fit against the outer wall of the cooling water pipe body. The main clamping brackets limit the cooling water pipe body and then lock it again to prevent misalignment of the bend in the cooling water pipe body due to high temperature and vibration. At the same time, the temperature measurement module monitors the temperature emitted from different bends to improve the synchronization and efficiency of heat dissipation.

[0025] Compared with the prior art, the beneficial effects of the present invention are as follows: The concrete cooling water pipe for lock construction and its laying method, by embedding the cooling water pipe body inside the poured concrete of the lock foundation, and using an adjustable horizontal tensioning mechanism to adjust and lock the spacing between adjacent cooling water pipe bodies, while the main clamping bracket and the auxiliary clamping bracket detect and position the bending points, improve the stability of the cooling water pipe body installation. The specific details are as follows:

[0026] 1. The cooling water pipe body is laid in an "S" shape inside the concrete lock foundation. Its outer end extends to the outside of the concrete lock foundation. After distinguishing the inlet and outlet, it is connected to the circulating water chiller, so as to achieve heat exchange and cooling of the concrete of the lock foundation through circulating water supply.

[0027] 2. The positioning clamp is fixed to the outer wall of the adjacent cooling water pipe body by bolts. Rotating the positioning sleeve will cause the threaded tie rod connected inside to move the connected protective sleeve, so as to adjust and move the positioning clamp fixed to the outer wall of the cooling water pipe body, thereby realizing the adjustment and locking between the adjacent cooling water pipe bodies.

[0028] Furthermore, the outer wall of the positioning sleeve is hexagonal in shape and is embedded in the concrete lock foundation to avoid rotation caused by vibration construction or human factors affecting the positioning and locking effect.

[0029] 3. By unlocking the main and secondary clamping brackets, and then staggering them at the bends of the cooling water pipe body, the main and secondary clamping brackets, which are connected by rotation, are adapted to cooling water pipe bodies with different degrees of bending. After installation, they are locked. The trapezoidal structure at the bottom of the main and secondary clamping brackets is embedded in the concrete foundation to prevent displacement during vibration and improve the stability of the cooling water pipe body installation.

[0030] Furthermore, the temperature measurement module is installed on the bottom surface of the main card side bracket and is in close contact with the cooling water pipe body, thereby monitoring the temperature at different bends of the cooling water pipe body to improve the synchronization and efficiency of heat dissipation. Attached Figure Description

[0031] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the present invention;

[0032] Figure 2 For the present invention Figure 1 Enlarged structural diagram at point A in the middle;

[0033] Figure 3 This is a three-dimensional structural diagram of the cooling water pipe body of the present invention;

[0034] Figure 4 This is a schematic diagram of the installation structure of the main card side bracket and the secondary card side bracket of the present invention;

[0035] Figure 5 This is a three-dimensional structural diagram of the main card edge bracket and the secondary card edge bracket of the present invention;

[0036] Figure 6 This is a schematic diagram of the installation structure of the horizontal tensioning mechanism and the cooling water pipe body of the present invention;

[0037] Figure 7 For the present invention Figure 6 Enlarged structural diagram at point B;

[0038] Figure 8 This is a three-dimensional structural diagram of the horizontal tensioning mechanism of the present invention;

[0039] Figure 9 This is a schematic diagram of the threaded tie rod installation structure of the present invention;

[0040] Figure 10 For the present invention Figure 9 Enlarged structural diagram at point C;

[0041] Figure 11 This is a schematic diagram of the cross-sectional structure of the positioning sleeve of the present invention.

[0042] In the diagram: 1. Cooling water pipe body; 2. Concrete lock; 3. Temperature measurement module; 4. Positioning ring; 5. Positioning sleeve; 6. Positioning clamp; 7. Main clamping bracket; 8. Secondary clamping bracket; 9. Water inlet; 10. Water outlet; 11. Bidirectional threaded groove; 12. Threaded tie rod; 13. Guide slide; 14. Protective sleeve. Detailed Implementation

[0043] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0044] Please see Figures 1-11 The present invention provides the following technical solution:

[0045] Example 1: In order to solve the problems existing in the laying and use of existing ship lock foundation concrete cooling water pipes, this example discloses the following technical solution: a concrete cooling water pipe for ship lock construction, including a cooling water pipe body 1 and a concrete ship lock 2 that achieves cooling through the cooling water pipe body 1, wherein the cooling water pipe body 1 is embedded into the concrete ship lock 2 at a position of 15CM by vibration; wherein, the cooling water pipe body 1 is laid in an "S" shaped bend, and the end of the cooling water pipe body 1 penetrates through the outside of the concrete ship lock 2 and is connected to a circulating water supply machine.

[0046] The bends of the cooling water pipe body 1 are arranged in a semi-circular structure, and the left and right ends of the cooling water pipe body 1 are divided into inlet 9 and outlet 10. Cooling water is guided into the interior of the cooling water pipe body 1 through inlet 9 and outlet 10 to provide symmetrical and uniform heat dissipation for the concrete lock 2.

[0047] like Figures 1-2 As shown, the cooling water pipe body 1 is laid in an "S" shape inside the concrete lock 2. The two ends of the cooling water pipe body 1 extend to the outside of the concrete lock 2. At the same time, the outer end of the cooling water pipe body 1 is divided into an inlet 9 and an outlet 10, and is connected to a circulating water supply machine to deliver cooling water to the cooling water pipe body 1. During the circulation process, the cooling water exchanges heat with the concrete lock 2 to achieve cooling.

[0048] Example 2: To address the problems existing in the laying and use of existing cooling water pipes in the foundation concrete of ship locks, this example discloses the following technical solution: A horizontal tensioning mechanism is provided on the outside of the cooling water pipe body 1, and the horizontal tensioning mechanism includes a positioning sleeve 5, and a positioning clamp 6 is provided on the outer end of each positioning sleeve 5; the horizontal tensioning mechanism includes a bidirectional threaded groove 11, and the bidirectional threaded groove 11 is opened at the inner center position of the positioning sleeve 5, and threaded pull rods 12 are threadedly connected to both the left and right ends of the bidirectional threaded groove 11; the outer end of the threaded pull rod 12 included in the horizontal tensioning mechanism passes through the outside of the positioning sleeve 5, and the outer ends of the symmetrically arranged threaded pull rods 12 are fixedly connected to the inner side of the positioning clamp 6, and the symmetrically arranged positioning clamps 6 are sleeved and installed on the outer wall of adjacent cooling water pipe bodies 1 to adjust the distance between the cooling water pipe bodies 1.

[0049] The lateral tensioning mechanism includes a guide groove 13, which is located on the left and right sides between the positioning sleeve 5 and the bidirectional threaded groove 11. A protective sleeve 14 is slidably installed inside each guide groove 13, and the outer ends of the symmetrically arranged protective sleeves 14 slide through the outer wall of the positioning sleeve 5. The lateral tensioning mechanism includes a positioning ring 4, which is fixedly installed on the outer end of the threaded rod 12 away from the positioning sleeve 5. The outer wall of the positioning ring 4 is fitted to the outer end of the protective sleeve 14, providing protection for the threaded rod 12 outside the positioning sleeve 5. The outer wall of the positioning sleeve 5 in the lateral tensioning mechanism has a hexagonal structure, and the positioning sleeve 5 is embedded in the inner wall of the concrete lock 2 through this hexagonal structure, preventing rotation during the vibration operation of the concrete lock 2 from affecting the lateral tensioning distance.

[0050] like Figures 6-8 As shown, after the cooling water pipe body 1 is laid in a bent manner, the positioning clamp 6 is unlocked by the bolts at the connection point so that the two semi-circular hinged positioning clamps 6 can be flipped outward and then clamped onto the outer wall of the cooling water pipe body 1. The positioning clamp 6 is then locked and positioned again by bolts to prevent it from dislodging from the horizontal tensioning mechanism during the construction and vibration of the concrete lock 2.

[0051] like Figures 9-11 As shown, the positioning sleeve 5 is manually rotated, and the threaded rod 12, which is threadedly connected to the bidirectional threaded groove 11 inside it, is limited by the positioning clamp 6. This allows the rotating positioning sleeve 5 to drive the threaded rod 12 to adjust and move. The threaded rod 12 is connected to the protective sleeve 14 through the positioning ring 4 at its outer end, so that the protective sleeve 14 moves with the threaded rod 12 to cover and protect it. The moving threaded rod 12 also drives the adjacent cooling water pipe body 1 to adjust the spacing and position, so as to avoid displacement and misalignment during subsequent vibration, which would affect the heat dissipation effect.

[0052] Furthermore, because the positioning sleeve 5 has a hexagonal structure on the outside, it fits into the inside of the concrete lock 2 through the bottom outer wall. The hexagonal structure of the positioning sleeve 5 prevents it from turning over during vibration or when subjected to external forces, thus avoiding affecting the distance between the threaded tie rods 12 at both ends and the adjacent cooling water pipe body 1, and improving the consistency of the cooling water pipe body 1 during installation.

[0053] Example 3: In order to solve the problems existing in the laying and use of existing ship lock foundation concrete cooling water pipes, this example discloses the following technical solution: a clamping mechanism is provided at the bend of the cooling water pipe body 1, and the clamping mechanism includes a main clamping bracket 7 and a secondary clamping bracket 8; the main clamping bracket 7 and the secondary clamping bracket 8 are fitted and sleeved at the bend of the cooling water pipe body 1, and the secondary clamping bracket 8 is used to connect adjacent main clamping brackets 7, and the main clamping bracket 7 and the secondary clamping bracket 8 are locked and positioned by bolts in order to adapt to different bending degrees of the cooling water pipe body 1.

[0054] The adjacent main clamping brackets 7 of the clamping mechanism are distributed in opposite directions, and a temperature measuring module 3 is provided below the main clamping bracket 7 in the middle position. The temperature measuring module 3 measures the temperature at different bends of the cooling water pipe body 1. The lower end of the main clamping bracket 7 is set in a trapezoidal structure to be embedded inside the concrete lock 2 to prevent displacement.

[0055] like Figures 3-5 As shown, after the main clamp bracket 7 and the secondary clamp bracket 8 connected by bolts are unlocked, they can be adjusted according to the angle of the bend of the cooling water pipe body 1. The adjacent main clamp brackets 7 are attached to the outer wall of the cooling water pipe body 1 in an alternating manner. After the main clamp brackets 7 limit the cooling water pipe body 1, they are locked again to prevent misalignment of the bend of the cooling water pipe body 1 due to high temperature and vibration. At the same time, the temperature measuring module 3 monitors the temperature emitted from different bends to improve the synchronization and efficiency of heat dissipation.

[0056] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A concrete cooling water pipe for lock construction, comprising a cooling water pipe body (1) and a concrete lock (2) cooled by the cooling water pipe body (1), wherein the cooling water pipe body (1) is embedded 15 cm inside the concrete lock (2) by vibration. in, The cooling water pipe body (1) is laid in an "S" shaped structure, and the end of the cooling water pipe body (1) passes through the outside of the concrete lock (2) and is connected to the circulating water supply machine. Its characteristic is that it also includes: The cooling water pipe body (1) is provided with a horizontal pulling mechanism on the outside, and the horizontal pulling mechanism includes a positioning sleeve (5), and the outer end of the positioning sleeve (5) is provided with a positioning clamp (6). The cooling water pipe body (1) is provided with a clamping mechanism at the bend, and the clamping mechanism includes a main clamping bracket (7) and a secondary clamping bracket (8).

2. The concrete cooling water pipe for lock construction according to claim 1, characterized in that: The bends of the cooling water pipe body (1) are arranged in a semi-circular structure, and the left and right ends of the cooling water pipe body (1) are divided into an inlet (9) and an outlet (10). The cooling water is guided into the interior of the cooling water pipe body (1) through the inlet (9) and the outlet (10) to provide symmetrical and uniform heat dissipation for the concrete lock (2).

3. A concrete cooling water pipe for lock construction according to claim 2, characterized in that: The horizontal pulling mechanism includes a bidirectional threaded groove (11), and the bidirectional threaded groove (11) is opened at the internal center position of the positioning sleeve (5), and both the left and right ends of the bidirectional threaded groove (11) are threadedly connected to threaded pull rods (12).

4. A concrete cooling water pipe for lock construction according to claim 3, characterized in that: The outer end of the threaded pull rod (12) included in the horizontal pulling mechanism passes through the outside of the positioning sleeve (5), and the outer ends of the symmetrically arranged threaded pull rods (12) are fixedly connected to the inner side of the positioning clamp (6). The symmetrically arranged positioning clamp (6) is sleeved and installed on the outer wall of the adjacent cooling water pipe body (1) to adjust the distance between the cooling water pipe body (1).

5. A concrete cooling water pipe for lock construction according to claim 1, characterized in that: The horizontal pulling mechanism includes a guide groove (13), and the guide groove (13) is opened on the left and right sides between the positioning sleeve (5) and the bidirectional threaded groove (11). The guide groove (13) is slidably provided with a protective sleeve (14), and the outer end of the symmetrically arranged protective sleeve (14) is slidably provided through the outer wall of the positioning sleeve (5).

6. A concrete cooling water pipe for lock construction according to claim 5, characterized in that: The horizontal pulling mechanism includes a positioning ring (4), which is fixedly installed on the outer end of the threaded pull rod (12) away from the positioning sleeve (5). The outer wall of the positioning ring (4) is attached to the outer end of the protective sleeve (14), and the threaded pull rod (12) outside the positioning sleeve (5) is covered and protected by the protective sleeve (14).

7. A concrete cooling water pipe for lock construction according to claim 1, characterized in that: The outer wall of the positioning sleeve (5) included in the horizontal tensioning mechanism is set in a hexagonal structure, and the positioning sleeve (5) is embedded in the inner wall of the concrete lock (2) through the hexagonal structure to avoid rotation affecting the horizontal tensioning distance during the vibration operation of the concrete lock (2).

8. A concrete cooling water pipe for lock construction according to claim 1, characterized in that: The clamping mechanism includes a main clamping bracket (7) and a secondary clamping bracket (8) which are fitted together at the bend of the cooling water pipe body (1). The secondary clamping bracket (8) is used to connect the adjacent main clamping bracket (7). The main clamping bracket (7) and the secondary clamping bracket (8) are locked and positioned by bolts so as to adapt to different degrees of bending of the cooling water pipe body (1).

9. A concrete cooling water pipe for lock construction according to claim 8, characterized in that: The adjacent main edge clamping brackets (7) of the edge clamping mechanism are arranged in opposite directions, and a temperature measuring module (3) is provided below the main edge clamping bracket (7) in the middle position. The temperature measuring module (3) measures the temperature at different bends of the cooling water pipe body (1). The lower end of the main edge clamping bracket (7) is arranged in a trapezoidal structure to be embedded inside the concrete lock (2) to avoid displacement.

10. A method for laying concrete cooling water pipes for lock construction, characterized in that: This method is based on the concrete cooling water pipe for lock construction as described in any one of claims 1-9, and includes the following steps: S1: The cooling water pipe body (1) is laid in an "S" shape inside the concrete lock (2). The two ends of the cooling water pipe body (1) extend to the outside of the concrete lock (2). At the same time, the outer end of the cooling water pipe body (1) is divided into an inlet (9) and an outlet (10), and connected to a circulating water supply machine to deliver cooling water to the cooling water pipe body (1). During the circulation process, the cooling water is exchanged with the concrete lock (2) to achieve cooling. S2: After the cooling water pipe body (1) is bent and laid, the positioning clamp (6) is locked with bolts on the outer wall adjacent to the cooling water pipe body (1). Then, the positioning sleeve (5) is rotated manually. The threaded rod (12) connected to the internal bidirectional threaded groove (11) is limited by the positioning clamp (6) so that the rotating positioning sleeve (5) can drive the threaded rod (12) to adjust and move. The threaded rod (12) is connected to the protective sleeve (14) through the positioning ring (4) at the outer end, so that the protective sleeve (14) moves with the threaded rod (12) to cover and protect it. The moving threaded rod (12) drives the adjacent cooling water pipe body (1) to adjust the spacing and position to avoid displacement and misalignment during subsequent vibration, which will affect the heat dissipation effect. S3: After unlocking the main clamp bracket (7) and the auxiliary clamp bracket (8) connected by bolts, they can be adjusted according to the angle of the bend of the cooling water pipe body (1). The adjacent main clamp brackets (7) are attached to the outer wall of the cooling water pipe body (1) in an alternating manner. The main clamp brackets (7) limit the cooling water pipe body (1) and then lock it again to prevent the bend of the cooling water pipe body (1) from being misaligned due to high temperature and vibration. At the same time, the temperature measuring module (3) monitors the temperature emitted from different bends to improve the synchronization and efficiency of heat dissipation.

Citation Information

Patent Citations

  • Concrete cooling water pipe device

    CN209429125U

  • Concrete double-snake-shaped cooling water pipe parallel arrangement system

    CN209468763U