Fixing support for remote temperature measuring device for expressway surface
By using high-speed fence support columns on highways as assembled fixed brackets of the supporting structure, the problem of fixed brackets occupying lanes in the existing technology is solved, safety and convenience are achieved, and protection for temperature measuring devices and signal transmitters is provided.
Patent Information
- Application Number
- CN202423063842.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-12-11
AI Technical Summary
Existing fixed brackets for remote temperature measurement devices on highways mostly rely on street lamp poles for support, resulting in the occupation of normal lanes in some sections of the road, posing a traffic safety hazard.
High-speed fence support columns are used as the supporting structure. The assembled fixing bracket composed of the clamp unit, bracket, power box, installation box and extension pipe is used to ensure the stability and tightness of the device. The telescopic rod structure is used to protect the temperature measuring device and signal transmitter.
It avoids lane occupation, improves traffic safety, simplifies the installation process, reduces maintenance costs, and provides effective protection for the device.
Smart Images

Figure CN223412828U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of fixed brackets, and in particular relates to a fixed bracket for a remote temperature measuring device on a high-speed road surface. Background Art
[0002] When winter comes, some sections of highways in northern my country are prone to icing. Affected by the ice on the road surface, the safety of cars driving on the highway is greatly reduced. In order to give a timely warning of road icing, it is necessary to measure the road surface temperature on the highway. Generally, road surface temperature measurement is achieved by a road surface thermometer in conjunction with a remote signal transmitter. By contacting the contact end of the road surface thermometer with the ground, the target road section is measured in real time. The temperature data measured by the road surface thermometer is transmitted to the remote command center through the remote signal transmitter, and the staff of the command center conducts unified control. If it is found that the road surface temperature of some sections is significantly reduced and icing is likely to occur, a warning can be issued to drivers on the highway. Early warning and alert, and contact road maintenance personnel for timely de-icing. The existing temperature measuring devices and far-side signal transmitters are fixed on the street lamp poles on both sides of the highway as the supporting body. However, for some sections with fewer lanes on the road, the street lamps are located in the middle of the two-way lanes. In this case, the street lamp poles are chosen as the supporting body to fix the temperature measuring device, which easily causes the layout position of the temperature measuring device to occupy the normal driving lane. At night, in heavy fog, rain and snow and other weather with limited visibility, it is easy to interfere with the normal driving of vehicles and cause traffic accidents. Therefore, in order to avoid the above situation, it is very practical to develop a high-speed road remote temperature measuring device fixing bracket with high-speed fence support column as the main supporting structure. Utility Model Content
[0003] The utility model aims to solve the problem that the existing fixed brackets for remote temperature measurement devices on highway roads mostly use street lamp poles as the main support body, which will occupy the normal driving lanes in some sections of the road and easily cause traffic safety hazards, and thus provide a fixed bracket for remote temperature measurement devices on highway roads;
[0004] A fixing bracket for a remote temperature measuring device for a highway road surface, the fixing bracket comprising a clamping unit, a bracket, a power supply box, a mounting box, and an extension pipe. The clamping unit is sleeved on a support column of a highway fence. The bracket is arranged on a side of the clamping unit facing the highway, and the bracket is detachably connected to the clamping unit. The power supply box is arranged on top of the bracket, and the power supply box is fixedly connected to the bracket. The mounting box is arranged on a side of the power supply box facing the highway, and the mounting box is detachably connected to the power supply box. The extension pipe is arranged at the bottom of the mounting box, and the top of the extension pipe is fixedly connected to the outer bottom of the mounting box. The extension pipe is connected to the mounting box.
[0005] Furthermore, the hoop unit includes a No. 1 half-ring fastener and a No. 2 half-ring fastener, which are assembled to form a complete ring structure and are sleeved on the highway fence support column. The No. 1 half-ring fastener is arranged on the side of the highway fence support column away from the highway, and the No. 2 half-ring fastener is arranged on the side of the highway fence support column close to the highway. The bracket is arranged on the No. 2 half-ring fastener and is detachably connected to the No. 2 half-ring fastener.
[0006] Furthermore, a connecting block is provided on the side of the No. 2 half-ring fastener close to the road, and the connecting block and the No. 2 half-ring fastener are integrally formed. Two U-shaped troughs are provided on the side of the connecting block close to the road. The two U-shaped troughs are symmetrically arranged along the center line of the width direction of the connecting block, and the closed end of each U-shaped trough is fixedly connected to the connecting block. The bracket is arranged in the two U-shaped troughs and is detachably connected to the two U-shaped troughs.
[0007] Furthermore, the bracket includes a support plate and two plug-in plates, the two plug-in plates are arranged parallel to each other at the bottom of the support plate along the center line of the width direction of the support plate, and the top of each plug-in plate is fixedly connected to the bottom of the support plate, each plug-in plate is correspondingly inserted into a U-shaped trough body and is detachably connected to the U-shaped trough body by bolts, the power box is arranged on the top of the support plate, and the bottom of the power box is fixedly connected to the top of the support plate;
[0008] Furthermore, the power box includes a power box body and a No. 1 connecting plate. The power box body is arranged on the top of the support plate, and the bottom of the power box body is fixedly connected to the top of the support plate. The No. 1 connecting plate is arranged on the side of the power box body close to the road, and the lower part of the No. 1 connecting plate is fixedly connected to the upper part of the power box body. The installation box is arranged on the No. 1 connecting plate, and the installation box is detachably connected to the No. 1 connecting plate.
[0009] Furthermore, two longitudinal reinforcing ribs are provided on the top of the power supply box, and the two longitudinal reinforcing ribs are arranged parallel to each other along the center line of the length direction of the No. 1 connecting plate, the bottom of each longitudinal reinforcing rib is fixedly connected to the top of the power supply box, and the front end of each longitudinal reinforcing rib is fixedly connected to the back side of the No. 1 connecting plate;
[0010] Furthermore, two horizontal reinforcing ribs are symmetrically provided on both sides of the upper part of the power supply box, the bottom of each horizontal reinforcing rib is fixedly connected to the outer side wall of the power supply box, and the front end of each horizontal reinforcing rib is fixedly connected to the back side of the No. 1 connecting plate;
[0011] Furthermore, a rectangular notch is processed on one side of the power box body, an opening and closing door is embedded in the rectangular notch, and one side of the opening and closing door is hinged to the power box body;
[0012] Furthermore, the installation box includes an installation box body and a second connecting plate, the second connecting plate is arranged in front of the first connecting plate, and the second connecting plate is detachably connected to the first connecting plate by bolts, the installation box body is arranged in front of the second connecting plate, and the installation box body is fixedly connected to the second connecting plate, the front side of the installation box body is opened, and a front side gusset plate is embedded in the opening of the installation box body, and the front side gusset plate is detachably connected to the installation box body;
[0013] Furthermore, the extension tube is a multi-stage telescopic rod structure;
[0014] The beneficial effects of this application compared to the prior art are as follows:
[0015] The present application provides a fixed bracket for a remote temperature measuring device on a highway surface, which fixes the bracket body on the highway fence support column through a clamp unit to ensure the stability of the fixed bracket installation. Since the highway fence support columns are set on both sides of the highway, and one side is close to the emergency lane, there are usually no vehicles on the emergency lane. Therefore, the layout position of the fixed bracket will not affect the normal driving of vehicles on the highway section, which is beneficial to improving the safety of vehicle driving. At the same time, since the highway fence is very close to the highway surface, it can be beneficial to reduce the layout distance of the fixed bracket and reduce the overall structure of the fixed bracket. Moreover, the height of the highway fence support column is limited, the layout position of the fixed bracket will be closer to the ground, and the contacts of the temperature measuring device are easier to contact the ground. Compared with the fixed bracket structure fixed on the street lamp pole, the bracket structure provided by the present application is smaller in size, simpler in structure, lower in production cost, and has stronger stability, and is more suitable for mass production and popularization.
[0016] The present application provides a fixed bracket for a remote temperature measuring device for a highway road surface, which adopts an assembly design concept. It is composed of four main parts: a clamp unit, a bracket, a power box and an installation box, which are assembled together through disassembly and connection. A skilled construction worker only needs to spend about 5 minutes to complete the layout of a fixed bracket and the installation and debugging of the temperature measuring device, which greatly improves the layout efficiency of the remote temperature measuring device. In addition, the assembled device structure has good replaceability. When a component is damaged, it is only necessary to replace its single structure without replacing the entire fixed bracket, thereby reducing subsequent maintenance costs.
[0017] The present application provides a fixed bracket for a remote temperature measuring device for a highway road surface, which adopts a fully wrapped design concept. The remote temperature measuring device and the remote signal transmitter are wrapped by an installation box and an extension tube, which can effectively prevent the interference and damage of the remote temperature measuring device and the remote signal transmitter by wind and snow, and provide good protection for them in severe cold weather. The extension tube in the present application adopts a telescopic structure. The advantage of this setting is that the extension tube is a supporting structure for making the contacts of the temperature measuring device close to the ground, and the tube body is also a structure for protecting the contact connection wires. If the extension tube adopts a fixed tube body structure, its length is long and it is not easy to wire the contact connection wires in the remote temperature measuring device. The design of the telescopic rod can make it easier to extend the wiring out of the extension tube structure when the contacts are installed, which provides convenience for the installation and debugging of the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 A side view schematic diagram of the fixing bracket described in this application;
[0019] Figure 2 This is a schematic front view of the fixing bracket described in this application (when the extension tube is extended);
[0020] Figure 3 This is a schematic diagram of the main view of the fixed bracket described in this application (when the extension tube is retracted);
[0021] Figure 4 This is a top view of a No. 1 half-ring fastener in the fixing bracket described in this application;
[0022] Figure 5 This is a schematic front view of a No. 1 half-ring fastener in the fixing bracket described in this application;
[0023] Figure 6 This is a top view of the second half-ring fastener in the fixing bracket described in this application;
[0024] Figure 7 This is a schematic front view of the second half-ring fastener in the fixing bracket described in this application;
[0025] Figure 8 This is a side view of the second half-ring fastener in the fixing bracket described in this application;
[0026] Figure 9 A schematic side view of a bracket in the fixing bracket described in this application;
[0027] Figure 10 This is a rear view schematic diagram of the power box in the fixing bracket described in this application;
[0028] Figure 11 This is a schematic diagram of the main view of the power box in the fixing bracket described in this application;
[0029] Figure 12 This is a schematic diagram of the main view of the installation box in the fixing bracket described in this application;
[0030] Figure 13 This is a schematic diagram of the connection between the mounting box, power box and bracket in the fixed bracket described in this application;
[0031] In the figure, 1 is a semi-ring fastener No. 1, 11 is a semi-ring body No. 1, 12 is an extension plate No. 1, 121 is a connecting hole No. 1, 2 is a semi-ring fastener No. 2, 21 is a semi-ring body No. 2, 22 is an extension plate No. 2, 221 is a connecting hole No. 2, 23 is a connecting block, 24 is a U-shaped trough body, 241 is a connecting hole No. 3, 3 is a bracket, 31 is a plug-in plate, 311 is a connecting hole No. 4, 32 is a bracket, 4 is a power box, 41 is a power box body, 42 is a connecting plate No. 1, 421 is a connecting hole No. 5, 422 is a through hole, 43 is a longitudinal reinforcing rib, 44 is a horizontal reinforcing rib, 45 is an opening and closing door, 5 is an installation box, 51 is an installation box body, 52 is a connecting plate No. 2, 521 is a connecting hole No. 6, 53 is a front side gusset plate, 531 is a glass, 54 is a top gusset plate, 6 is an extension pipe and 7 is a high-speed fence support column. DETAILED DESCRIPTION
[0032] Specific implementation method 1: Combination Figures 1 to 13 To describe this embodiment, a fixed bracket for a remote temperature measuring device for a highway road surface is provided in this embodiment, the fixed bracket includes a clamp unit, a bracket 3, a power box 4, an installation box 5 and an extension pipe 6, the clamp unit is mounted on the highway fence support column 7, the bracket 3 is arranged on the side of the clamp unit facing the highway, and the bracket 3 is detachably connected to the clamp unit, the power box 4 is arranged on the top of the bracket 3, and the power box 4 is fixedly connected to the bracket 3, the installation box 5 is arranged on the side of the power box 4 facing the highway, and the installation box 5 is detachably connected to the power box 4, the extension pipe 6 is arranged at the bottom of the installation box 5, and the top of the extension pipe 6 is fixedly connected to the outer bottom of the installation box 5, and the extension pipe 6 is connected to the installation box 5.
[0033] Specific implementation method 2: Combination Figures 1 to 13 This embodiment differs from the first embodiment in that the clamp unit comprises a first half-ring fastener 1 and a second half-ring fastener 2. These fasteners 1 and 2 are assembled to form a complete ring structure that is mounted on a highway fence support post 7. The first half-ring fastener 1 is positioned on the side of the highway fence support post 7 away from the road, while the second half-ring fastener 2 is positioned on the side of the highway fence support post 7 closer to the road. The bracket 3 is positioned on the second half-ring fastener 2 and is detachably connected to the second half-ring fastener 2. Other components and connection methods are the same as those of the first embodiment.
[0034] Specific implementation method three: Combination Figures 1 to 13This embodiment differs from the second embodiment in that a connecting block 23 is provided on the side of the second half-ring fastener 2 closest to the road. The connecting block 23 is integrally formed with the second half-ring fastener 2. Two U-shaped troughs 24 are provided on the side of the connecting block 23 closest to the road. The two U-shaped troughs 24 are symmetrically arranged along the centerline of the width of the connecting block 23, with the closed end of each U-shaped trough 24 fixedly connected to the connecting block 23. The bracket 3 is disposed within the two U-shaped troughs 24 and is detachably connected to them. Other components and connection methods are the same as those of the second embodiment.
[0035] Specific implementation method four: Combination Figures 1 to 13 This embodiment differs from the third embodiment in that the bracket 3 includes a support plate 32 and two insert plates 31. The two insert plates 31 are arranged parallel to each other at the bottom of the support plate 32 along the centerline of the width of the support plate 32, and the top of each insert plate 31 is fixedly connected to the bottom of the support plate 32. Each insert plate 31 is inserted into a corresponding U-shaped trough 24 and is detachably connected to the corresponding U-shaped trough 24 by bolts. The power box 4 is arranged on the top of the support plate 32, and the bottom of the power box 4 is fixedly connected to the top of the support plate 32. The other components and connection methods are the same as those of the third embodiment.
[0036] In combination with the description of the second and fourth embodiments, the No. 1 semi-ring fastener 1 is composed of a No. 1 semi-ring body 11 and two No. 1 extension plates 12. The two No. 1 extension plates 12 are arranged on both sides of the No. 1 semi-ring body 11, and the No. 1 semi-ring body 11 and the two No. 1 extension plates 12 are integrally formed. Each No. 1 extension plate 12 has two No. 1 connection holes 121 processed thereon. The No. 1 semi-ring body 11 is used to cooperate with the high-speed fence support column 7. The No. 1 extension plate 12 is used to connect with the No. 2 semi-ring fastener 2. The No. 2 semi-ring fastener 2 is composed of a No. 2 semi-ring body 21 and two No. 2 extension plates 22. The two No. 2 extension plates 222 are arranged on the No. 2 semi-ring body 21 On both sides, the No. 2 semi-ring body 21 and the two No. 2 extension plates 22 are integrally formed, and each No. 2 extension plate 22 is processed with two No. 2 connecting holes 221, and each No. 1 connecting hole 121 is correspondingly arranged with a No. 2 connecting hole 221. When the hoop unit is installed, the No. 1 semi-ring body 11 and the No. 2 semi-ring body 21 are first buckled on the outer circumferential surface of the high-speed fence support column 7. Each corresponding set of No. 1 connecting holes 121 and No. 2 connecting holes 221 is used to install the bolt and nut assembly. The No. 1 semi-ring fastener 1 and the No. 2 semi-ring fastener 2 are disassembled and connected by bolts, and the high-speed fence support column 7 is clamped during the threaded connection process of the bolts and nuts.
[0037] The connecting block 23 and the two U-shaped troughs 24 are combined to form the mounting structure of the bracket 3. Each side wall of the U-shaped trough 24 is processed with two No. 3 connecting holes 241, and each plug plate 31 is processed with two No. 4 connecting holes 311. During installation, the plug plate 31 is correspondingly inserted into a U-shaped trough 24, and it is ensured that each No. 4 connecting hole 311 on the plug plate 31 is coaxially arranged with a group of No. 3 connecting holes 241 relatively set in the U-shaped trough 24. The U-shaped trough 24 and the plug plate 31 are still connected by bolts. The threaded section of the bolt passes through a No. 3 connecting hole 241, a No. 4 connecting hole 311 and another No. 3 connecting hole 241 in sequence and is inserted into the nut located outside the U-shaped trough 24. During the screwing process of the bolt and the nut, the U-shaped trough 24 clamps and tightens the plug plate 31, thereby ensuring the connection reliability of the bracket 3 and the clamp unit.
[0038] Specific implementation method five: Combination Figures 1 to 13 This embodiment is described. This embodiment differs from the fourth embodiment in that the power supply box 4 includes a power supply box body 41 and a first connecting plate 42. The power supply box body 41 is disposed on top of the support plate 32, and the bottom of the power supply box body 41 is fixedly connected to the top of the support plate 32. The first connecting plate 42 is disposed on the side of the power supply box body 41 close to the road, and the lower portion of the first connecting plate 42 is fixedly connected to the upper portion of the power supply box body 41. The installation box 5 is disposed on the first connecting plate 42, and the installation box 5 is detachably connected to the first connecting plate 42. Other components and connection methods are the same as those of the fourth embodiment.
[0039] Specific implementation method six: combination Figures 1 to 13 This embodiment differs from the fifth embodiment in that two longitudinal reinforcing ribs 43 are provided on the top of the power supply housing 41. These ribs 43 are arranged parallel to and opposite each other along the longitudinal centerline of the first connecting plate 42. The bottom of each longitudinal reinforcing rib 43 is fixedly connected to the top of the power supply housing 41, and the front end of each longitudinal reinforcing rib 43 is fixedly connected to the back side of the first connecting plate 42. The remaining components and connection methods are the same as those of the fifth embodiment.
[0040] Specific implementation method seven: combination Figures 1 to 13 This embodiment differs from Specific Embodiment 6 in that two horizontal reinforcing ribs 44 are symmetrically provided on either side of the upper portion of the power supply housing 41. The bottom of each horizontal reinforcing rib 44 is fixedly connected to the outer wall of the power supply housing 41, and the front end of each horizontal reinforcing rib 44 is fixedly connected to the back side of the first connecting plate 42. The remaining components and connection methods are the same as Specific Embodiment 6.
[0041] Specific implementation method eight: combination Figures 1 to 13This embodiment differs from the seventh embodiment in that a rectangular notch is machined on one side of the power supply box 41, into which an opening and closing door 45 is embedded. One side of the opening and closing door 45 is hinged to the power supply box 41. The other components and connection methods are the same as those of the seventh embodiment.
[0042] Specific implementation method nine: combination Figures 1 to 13 This embodiment is described. This embodiment differs from the eighth embodiment in that the installation box 5 includes an installation box body 51 and a second connecting plate 52. The second connecting plate 52 is disposed in front of the first connecting plate 42 and is detachably connected to the first connecting plate 42 via bolts. The installation box body 51 is disposed in front of the second connecting plate 52 and is fixedly connected to the second connecting plate 52. The front side of the installation box body 51 is open, and a front side gusset plate 53 is embedded in the opening of the installation box body 51. The front side gusset plate 53 is detachably connected to the installation box body 51. Other components and connection methods are the same as those of the eighth embodiment.
[0043] In combination with the description of specific embodiments five to nine, the longitudinal reinforcing ribs 43 and the horizontal reinforcing ribs 44 are used to improve the connection reliability between the power supply box 41 and the No. 1 connecting plate 42. The rectangular notch on the side of the power supply box 41 is a working area for replacing the battery. The opening and closing door 45 on the rectangular notch is used to seal the rectangular notch to protect the battery structure therein. One side of the opening and closing door 45 is hinged to the power supply box 41 to achieve opening and closing action. Sealing strips are pasted on the other three sides of the opening and closing door 45, and the sealing strips are tightly plugged between the rectangular notch to lock the power supply box 41 with friction when closed. A bolt structure can also be added to the inside of the opening and closing door 45 and the power supply box 41 to lock the two when closed;
[0044] A No. 5 connecting hole 421 is processed at each of the four corners on the front side of the No. 1 connecting plate 42, and a No. 6 connecting hole 521 is processed at each of the four corners on the back side of the No. 2 connecting plate 52, and each No. 5 connecting hole 421 is corresponding to a No. 6 connecting hole 521. Each group of No. 5 connecting holes 421 and No. 6 connecting holes 521 is used to install a bolt and nut assembly. The No. 1 connecting plate 42 is detachably connected to the No. 2 connecting plate 52 through the bolt and nut assembly. At the same time, in order to ensure the convenience of wiring, a through hole 422 is further processed on the front side of the No. 1 connecting plate 42, and a wiring seat is embedded in the No. 2 connecting plate 52. The power output wiring of the power supply box 41 is connected to the wiring seat embedded on the No. 2 connecting plate 52 through the through hole 422. The wiring seat extends into the installation box 51 to facilitate powering the temperature measuring device and remote signal transmitter in the installation box 51;
[0045] The front side of the installation box 51 is opened, and the temperature measuring device and the remote signal transmitter are arranged in the installation box 51. The front side gusset plate 53 is provided with a sealing strip along the circumference to achieve a sealed connection with the installation box 51. The front side gusset plate 53 is embedded with glass. In order to observe the working condition of the temperature measuring device in the installation box 51 during maintenance, considering that some remote signal transmitters have their own antennas to improve the stability of signal transmission, an opening is also provided on the top of the installation box 51, and a top gusset plate 54 is embedded in the opening. A through hole is also processed on the top panel 54 to avoid interference with the antenna on the remote signal transmitter. During installation, the front panel 53 and the top panel 54 are removed from the installation box 51, and the temperature measuring device and the remote signal transmitter are placed in the installation box 51. At the same time, their power input ends are plugged into the terminal socket on the second connecting plate 52 to ensure power supply. At this time, the antenna is propped up and the staff performs signal debugging. After the debugging is correct, the front panel 53 and the top panel 54 are installed on the installation box 51.
[0046] Specific implementation method ten: Combination Figures 1 to 13 This embodiment differs from the ninth embodiment in that the extension tube 6 is a multi-stage telescopic rod structure. Other components and connection methods are the same as those of the ninth embodiment.
[0047] With such a configuration, considering that the extension tube is a supporting structure for bringing the contacts of the temperature measuring device close to the ground, and the tube body is also a structure for protecting the contact connecting wires, if the extension tube adopts a fixed tube body structure, its length is long and it is not easy to wire the contact connecting wires in the remote temperature measuring device. The design of the telescopic rod can make it easier to extend the wiring out of the extension tube structure when the contacts are installed, which provides convenience for the installation and debugging of the device. During installation, first ensure that the extension tube 6 is in a retracted state, and install the contacts of the temperature measuring device in the terminal tube body of the extension tube 6 by bolts or magnetic attraction. The connecting wires of the contacts are passed through the extension tube 6 and introduced into the installation box 51 and plugged into the main body of the temperature measuring device (the connecting wires of the contacts are long enough). After confirming that the contacts are connected to the main body of the temperature measuring device, pull down the extension tube 6 so that the contacts are in contact with the target ground.
[0048] The present invention has been disclosed as above with preferred implementation cases, but it is not intended to limit the present invention. Any technician familiar with the profession can make slight changes or modifications to the above-disclosed structures and technical contents without departing from the scope of the technical solution of the present invention. Equivalent implementation cases with equivalent changes can be made by using the above-disclosed structures and technical contents. However, any simple modifications, equivalent changes and modifications made to the above implementation cases based on the technical essence of the present invention without departing from the content of the technical solution of the present invention are still within the scope of the technical solution of the present invention.
[0049] How it works
[0050] When using this application, the staff will first divide the highway into sections according to the length of the highway and the areas prone to icing in previous years, and determine the layout of the temperature measuring device. After the layout of the temperature measuring device is determined, the hoop unit is put on the pre-selected high-speed fence support column 7 and the hoop unit and the high-speed fence support column 7 are fastened by bolts. Then, the bracket 3 is inserted into the No. 2 half-ring fastener 2 in the hoop unit, and the plug-in plate 31 is fastened to the corresponding U-shaped groove body 24 by bolts. The installation box 51 with the No. 2 connecting plate 52 is set on the front side of the No. 1 connecting plate 42. Now connect the power output line on the power box 41 to the terminal block of the No. 2 connecting plate 52, and fasten one by bolts. The No. 1 connecting plate 42 and the No. 2 connecting plate 52 are fastened. Now the fixing bracket is installed. The opening and closing door 45 is opened. The battery is placed on the battery seat of the power box 41 for power supply. The opening and closing door 45 is closed to ensure the sealing of the power box 4. The temperature measuring device and the remote signal transmitter are placed in the installation box 51. The power wiring of the two is plugged into the wiring seat to ensure power connectivity. The contacts of the temperature measuring device are installed at the end of the extension tube 6. The connecting wires of the contacts are extended into the installation box 51 and plugged into the temperature measuring device. At this time, the staff debugs the temperature measuring device and the remote signal transmitter. After the debugging is correct, the front side panel 53 and the top panel 54 are installed on the installation box 51.
Claims
1. A fixing bracket for a remote temperature measurement device for a highway road surface, characterized by: The fixing bracket comprises a hoop unit, a bracket (3), a power supply box (4), an installation box (5) and an extension pipe (6); the hoop unit is sleeved on a high-speed fence support column (7); the bracket (3) is arranged on a side of the hoop unit facing the road, and the bracket (3) is detachably connected to the hoop unit; the power supply box (4) is arranged on the top of the bracket (3), and the power supply box (4) is fixedly connected to the bracket (3); the installation box (5) is arranged on a side of the power supply box (4) facing the road, and the installation box (5) is detachably connected to the power supply box (4); the extension pipe (6) is arranged at the bottom of the installation box (5), and the top of the extension pipe (6) is fixedly connected to the outer bottom of the installation box (5); the extension pipe (6) is connected to the installation box (5).
2. The fixing bracket for a remote temperature measurement device for a highway road surface according to claim 1, characterized in that: The hoop unit comprises a No. 1 half-ring fastener (1) and a No. 2 half-ring fastener (2). The No. 1 half-ring fastener (1) and the No. 2 half-ring fastener (2) are assembled to form a complete ring structure and are sleeved on a high-speed fence support column (7). The No. 1 half-ring fastener (1) is arranged on a side of the high-speed fence support column (7) away from the road, and the No. 2 half-ring fastener (2) is arranged on a side of the high-speed fence support column (7) close to the road. The bracket (3) is arranged on the No. 2 half-ring fastener (2) and is detachably connected to the No. 2 half-ring fastener (2).
3. The fixing bracket for a remote temperature measurement device for a highway road surface according to claim 1, characterized in that: A connecting block (23) is provided on the side of the No. 2 half-ring fastener (2) close to the road, and the connecting block (23) and the No. 2 half-ring fastener (2) are integrally formed. Two U-shaped troughs (24) are provided on the side of the connecting block (23) close to the road. The two U-shaped troughs (24) are symmetrically arranged along the center line of the width direction of the connecting block (23), and the closed end of each U-shaped trough (24) is fixedly connected to the connecting block (23). The bracket (3) is arranged in the two U-shaped troughs (24) and is detachably connected to the two U-shaped troughs (24).
4. The fixing bracket for a remote temperature measurement device for a highway road surface according to claim 3, characterized in that: The bracket (3) comprises a support plate (32) and two plug-in plates (31). The two plug-in plates (31) are arranged parallel to and opposite to each other at the bottom of the support plate (32) along the center line of the width direction of the support plate (32), and the top of each plug-in plate (31) is fixedly connected to the bottom of the support plate (32). Each plug-in plate (31) is correspondingly inserted into a U-shaped trough (24) and is detachably connected to the U-shaped trough (24) by bolts. The power supply box (4) is arranged on the top of the support plate (32), and the bottom of the power supply box (4) is fixedly connected to the top of the support plate (32).
5. The fixing bracket for a remote temperature measurement device for a highway road surface according to claim 4, characterized in that: The power box (4) comprises a power box body (41) and a No. 1 connecting plate (42). The power box body (41) is arranged on the top of the supporting plate (32), and the bottom of the power box body (41) is fixedly connected to the top of the supporting plate (32). The No. 1 connecting plate (42) is arranged on the side of the power box body (41) close to the road, and the lower part of the No. 1 connecting plate (42) is fixedly connected to the upper part of the power box body (41). The installation box (5) is arranged on the No. 1 connecting plate (42), and the installation box (5) is detachably connected to the No. 1 connecting plate (42).
6. The fixing bracket for a remote temperature measurement device for a highway road surface according to claim 5, characterized in that: Two longitudinal reinforcing ribs (43) are provided on the top of the power supply box (41). The two longitudinal reinforcing ribs (43) are arranged parallel to each other along the center line of the length direction of the first connecting plate (42). The bottom of each longitudinal reinforcing rib (43) is fixedly connected to the top of the power supply box (41), and the front end of each longitudinal reinforcing rib (43) is fixedly connected to the back side of the first connecting plate (42).
7. The fixing bracket for a remote temperature measurement device for a highway road surface according to claim 6, characterized in that: Two horizontal reinforcing ribs (44) are symmetrically provided on both sides of the upper portion of the power supply box (41), the bottom of each horizontal reinforcing rib (44) is fixedly connected to the outer side wall of the power supply box (41), and the front end of each horizontal reinforcing rib (44) is fixedly connected to the back side of the No. 1 connecting plate (42).
8. The fixing bracket for a remote temperature measurement device for a highway road surface according to claim 7, characterized in that: A rectangular notch is processed on one side of the power supply box (41), an opening and closing door (45) is embedded in the rectangular notch, and one side of the opening and closing door (45) is hinged to the power supply box (41).
9. The fixing bracket for a remote temperature measurement device for a highway road surface according to claim 8, characterized in that: The installation box (5) comprises an installation box body (51) and a second connecting plate (52), wherein the second connecting plate (52) is arranged on the front side of the first connecting plate (42), and the second connecting plate (52) is detachably connected to the first connecting plate (42) by bolts, the installation box body (51) is arranged on the front side of the second connecting plate (52), and the installation box body (51) is fixedly connected to the second connecting plate (52), the front side of the installation box body (51) is open, and a front side buckle plate (53) is embedded in the opening of the installation box body (51), and the front side buckle plate (53) is detachably connected to the installation box body (51).
10. The fixing bracket for a remote temperature measurement device for a highway road surface according to claim 9, characterized in that: The extension tube (6) is a multi-stage telescopic rod structure.