Flexibly-installed data and power simultaneous transmission centralized controller
The flexible installation design of the digital-electrical simultaneous transmission and control unit solves the problem of damage to the voltage regulator, memory, and processor during assembly and use, thereby achieving equipment stability and extended lifespan, and optimizing the space utilization and maintenance convenience of the control box.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JINAN GOLDENWORLD HIGHWAY INDUSTRY DEVELOPMENT CO LTD
- Filing Date
- 2025-04-07
- Publication Date
- 2026-04-17
AI Technical Summary
In existing intelligent traffic light systems, voltage regulators, memory, and processors are easily damaged by bumps and knocks during assembly and use, affecting equipment stability and lifespan.
The design of the digital-electrical simultaneous transmission and control unit adopts a flexible installation, which integrates the voltage regulator, memory and processor in the same control box. By setting up a clearance cavity and flexible parts, it avoids collisions between the voltage regulator and other components, and uses transmission lines and filling cotton for flexible isolation and protection.
It enables flexible installation of voltage regulators, memory, and processors, avoiding assembly interference and damage from bumps, improving equipment stability and service life, and optimizing space utilization and maintenance convenience of the control box.
Smart Images

Figure CN224139289U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of intelligent traffic light technology, specifically relating to a flexibly installed digital-electrical simultaneous transmission and control unit. Background Technology
[0002] The widespread application of artificial intelligence in various industries has also had a significant impact on the general public. In the transportation sector, for example, intelligent traffic light systems use radar and AI cameras installed at intersections to monitor the number of vehicles, distances between vehicles, and vehicle speeds in real time. They also monitor the number of pedestrians and external weather conditions, dynamically adjusting traffic light signals to improve traffic flow at intersections, reduce the idle time of traffic lights, and ultimately improve the carrying capacity of roads.
[0003] In an intelligent traffic light system, monitoring information is fed back to the system based on the problem to be addressed, and the system then adjusts the traffic lights accordingly. Therefore, intelligent traffic light systems typically include a memory and a processor. The memory and processor collect and store necessary road condition information, and the processor dynamically adjusts the traffic light signals. These components are usually installed in a control box, equipped with a communication power supply and network ports for wiring connections.
[0004] In the existing technology, there is an intelligent traffic light control system that integrates the memory and processor in the same control box. In order to ensure the stable and normal operation of the control system, a voltage regulator is also set up. Due to the limited volume of the control box, the voltage regulator, memory and processor are inevitably bumped and knocked during assembly or use, which can easily lead to damage to the devices. Utility Model Content
[0005] This application provides a flexible-installation digital-electrical simultaneous transmission and control unit that solves the problem of collision damage to voltage regulators, memory, and processors during assembly and use.
[0006] The technical solution adopted in this application is as follows:
[0007] A flexible-installed digital-electric simultaneous transmission and control unit includes a control box, the control box having a housing and a cover that closes to the housing, the housing having a memory, a processor, and a traffic light control program stored in the memory and capable of running on the processor, the cover having a voltage regulator, the housing having a flexible element, and the cover closing to the housing so that the voltage regulator abuts against the flexible element.
[0008] In a preferred implementation of a flexible-installed digital-electrical simultaneous transmission and control unit, the control box is provided with a clearance cavity, the flexible component is located in the clearance cavity, and when the cover is closed on the box body, the voltage regulator falls into the clearance cavity.
[0009] In a preferred embodiment of a flexibly installed digital-electrical simultaneous transmission and control unit, the enclosure includes a base plate and a first connecting plate perpendicular to the base plate, the first connecting plate being arranged along the length direction, and the cover includes a bottom cover and a second connecting plate perpendicular to the bottom cover, the first connecting plate abutting against the second connecting plate to form a clearance cavity between the base plate and the bottom cover.
[0010] In a preferred embodiment of a flexible-mounted digital-electrical simultaneous transmission and control unit, the enclosure includes a first mounting part with a memory and a second mounting part with a processor. Along the length of the enclosure, the first mounting part is located above the second mounting part. The bottom cover and the second connecting plate enclose a third mounting part for mounting a voltage regulator. The third mounting part is aligned with the second mounting part. When the cover is closed on the enclosure, the second mounting part and the third mounting part enclose a clearance cavity. The flexible component is located between the voltage regulator and the processor.
[0011] In a preferred embodiment of a flexibly mounted digital-electrical simultaneous transmission controller, the memory and processor are provided with interfaces, the flexible components include multiple transmission lines connected to each interface, the housing is provided with a third connecting plate perpendicular to the bottom plate along the width direction, the third connecting plate is provided with through holes for the transmission lines to pass through, the transmission lines are located in the clearance cavity, and the voltage regulator abuts against the transmission lines.
[0012] In a preferred implementation of a flexible-mounted digital-electrical simultaneous transmission controller, the first connecting plate has a mounting surface parallel to the base plate, the processor is mounted against the base plate and has a clearance gap between it and the mounting surface, and a partial clearance cavity is formed between the clearance gaps on both sides, through which the transmission line passes and connects to the corresponding interface.
[0013] In a preferred embodiment of a flexible-installed digital-electrical simultaneous transmission controller, the base plate and the first connecting plate, as well as the bottom cover and the second connecting plate, are integrally formed.
[0014] In a preferred embodiment of a flexibly mounted digital transmission and control unit, the flexible component includes filling cotton disposed within the clearance cavity.
[0015] In a preferred implementation of a flexible-mounted digital transmission controller, the filling cotton has grooves, and the transmission lines are at least partially located within the grooves.
[0016] In a preferred implementation of a flexible-installed digital-electrical simultaneous transmission and control unit, a cylindrical channel is provided inside the filling cotton, and the transmission line passes through the channel to the corresponding interface.
[0017] Due to the adoption of the above technical solution, the beneficial effects achieved by this application are as follows:
[0018] (1) The present application integrates the memory and processor into the same control box, which facilitates assembly and maintenance by the staff. The memory receives and stores the acquired information, and the processor issues control commands based on the information in the memory and adjusts the traffic lights according to the obtained road condition information. At the same time, a voltage regulator is installed in the control box to ensure that the memory and processor can maintain stable power and operate normally. The memory and processor are installed in the box, and the voltage regulator is installed in the cover. The three are integrated into the control box and distributed and fixed in the box and cover, thereby avoiding assembly interference of the voltage regulator with the memory and processor. At the same time, by setting flexible parts, when the control box is closed, the voltage regulator located in the cover is fastened into the box and abuts against the flexible parts, thereby avoiding collision damage between the voltage regulator and the memory or processor, and achieving flexible installation protection for the voltage regulator, processor and memory.
[0019] (2) By setting a clearance cavity in the control box, the voltage regulator is installed in a designated area, and the flexible part is set in the clearance area. When the cover is closed, the voltage regulator is in the clearance cavity with the flexible part. The voltage regulator and the flexible part are arranged in a partitioned layout in the control box with respect to other components. So when the cover is closed to the box, the voltage regulator abuts against the flexible part located in the clearance cavity, avoiding collision between the voltage regulator and the processor.
[0020] (3) By setting the first connecting plate and the second connecting plate, the interior of the box and the cover can form a space to accommodate the voltage regulator, so that the voltage regulator can be installed in the cover, the layout of the control box is optimized, the space is used reasonably, and the memory, processor and voltage regulator are integrated in a control box. When the cover is closed, the first connecting plate and the second connecting plate abut against each other to enclose the cover and the box, thus forming a clearance cavity. The structure is simple and the molding difficulty is low.
[0021] (4) By setting a first mounting part, a second mounting part, and a third mounting part, the memory, processor, and voltage regulator are respectively partitioned and fixed in the control box, avoiding assembly interference between the three. The second mounting part and the third mounting part are aligned, that is, the voltage regulator is set in the lower half of the cover, and when the cover is closed, it is aligned with the second mounting part where the processor is located. The second mounting part and the third mounting part form a clearance cavity. The flexible part is located between the voltage regulator and the processor. It can be understood that there is a gap between the voltage regulator and the processor where the flexible part can be set, thus avoiding collision between the voltage regulator and the processor set opposite to each other in the second mounting part and the third mounting part, and will not affect the memory located in the first mounting part.
[0022] (5) By setting the transmission line as a flexible component, the original components in the control box can be flexibly installed. On the one hand, the transmission line itself occupies a small space and will not excessively occupy the assembly space of the voltage regulator and the processor. On the other hand, by using the flexible outer skin of the transmission line itself as a flexible component, when the control box is closed, the voltage regulator flexibly abuts against the transmission line in the clearance cavity, avoiding collision between the voltage regulator and the processor.
[0023] (6) By setting the filling cotton, when the cover is closed, the filling cotton is compressed by the pressure of the voltage regulator, forming a barrier between the voltage regulator and the processor, preventing the voltage regulator from contacting the processor, thereby achieving flexible isolation protection for the voltage regulator and the processor. By setting grooves or channels in the filling cotton, the transmission line can pass through the avoidance cavity to reach the interface for connection, and at the same time, the transmission line can be limited to ensure that the transmission line is connected along a predetermined route, which helps to avoid tangled wires. Attached Figure Description
[0024] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings:
[0025] Figure 1 This is a schematic diagram of the internal structure of the control box in one embodiment of the present invention;
[0026] Figure 2 This is a schematic diagram of the control box cover in one embodiment of the present invention;
[0027] Figure 3 This is a schematic diagram of the external structure of the control box in one embodiment of the present invention;
[0028] Figure 4 This is a schematic diagram of the partitioning inside the box in one embodiment of the present invention;
[0029] Figure 5 This is a schematic diagram of the filling cotton structure in one embodiment of the present invention.
[0030] Explanation of reference numerals in the attached figures:
[0031] 1-Control box;
[0032] 100-Box body, 110-Base plate, 120-First connecting plate, 121-Mounting surface, 130-First mounting part, 140-Second mounting part, 150-Allowing cavity, 160-Allowing clearance;
[0033] 200-Cover body, 210-Bottom cover, 220-Second connecting plate, 230-Third mounting part;
[0034] 300-Memory, 400-Processor, 500-Voltage Regulator, 600-Interface, 700-Transmission Line, 800-Filling Cotton, 810-Groove, 820-Channel. Detailed Implementation
[0035] To more clearly illustrate the overall concept of this application, a detailed explanation is provided below with reference to the accompanying drawings.
[0036] Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application may also be implemented in other ways different from those described herein. Therefore, the scope of protection of this application is not limited to the specific embodiments disclosed below. It should be noted that, unless otherwise specified, the embodiments of this application and the features thereof can be combined with each other.
[0037] Furthermore, it should be understood in the description of this application that the terms "top", "bottom", "inner", "outer", "axial", "radial", "circumferential", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.
[0038] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a communication connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0039] In this application, unless otherwise expressly specified and limited, the "above" or "below" of the second feature can mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. In the description of this specification, references to terms such as "an embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described can be combined in any suitable manner in one or more embodiments or examples.
[0040] This application provides a flexible, modular digital-electrical communication control unit, such as... Figures 1 to 5 As shown, the digital signal transmission and control unit includes a control box 1. The control box 1 has a box body 100 and a cover 200 that covers the box body 100. The box body 100 has a memory 300, a processor 400, and a traffic light control program stored in the memory 300 and that can run on the processor 400. The cover 200 has a voltage regulator 500. The box body 100 has a flexible component. The cover 200 covers the box body 100 so that the voltage regulator 500 abuts against the flexible component.
[0041] This application integrates the memory 300 and processor 400 into the same control box 1, facilitating assembly and maintenance by staff. The memory 300 receives and stores the acquired information, while the processor 400 issues control commands based on the information from the memory 300, adjusting traffic lights according to the obtained road condition information. Simultaneously, a voltage regulator 500 is installed in the control box 1 to ensure stable power supply for the memory 300 and processor 400 for normal operation. The memory 300 and processor 400 are housed in the enclosure 100, and the voltage regulator 500 is housed in the cover 200. All three are integrated into the control box 1 and are fixedly distributed in the enclosure 100 and cover 200. This avoids the voltage regulator 500 interfering with the assembly of the memory 300 and processor 400. At the same time, by setting up a flexible component, when the control box 1 is closed, the voltage regulator 500 located in the cover 200 is fastened to the enclosure 100 and abuts against the flexible component, thereby avoiding collision damage between the voltage regulator 500 and the memory 300 or processor 400. This provides flexible installation protection for the voltage regulator 500, processor 400 and memory 300.
[0042] In one embodiment, the control box 1 is provided with a relief cavity 150, the flexible element is located in the relief cavity 150, and when the cover 200 is closed on the box 100, the voltage regulator 500 falls into the relief cavity 150.
[0043] By setting a clearance cavity 150 in the control box 1, the voltage regulator 500 is installed in a designated area, and the flexible component is set in the clearance area. When the cover 200 is closed, the voltage regulator 500 is located in the clearance cavity 150 with the flexible component. The installation positions of the voltage regulator 500 and the flexible component in the control box 1 are partitioned and arranged apart from other components. Thus, when the cover 200 is closed to the box 100, the voltage regulator 500 abuts against the flexible component located in the clearance cavity 150, avoiding collision between the voltage regulator 500 and the processor 400.
[0044] In one embodiment, the housing 100 includes a bottom plate 110 and a first connecting plate 120 perpendicular to the bottom plate 110, the first connecting plate 120 being disposed along the length direction, and the cover 200 includes a bottom cover 210 and a second connecting plate 220 perpendicular to the bottom cover 210, the first connecting plate 120 abutting against the second connecting plate 220 to form a clearance cavity 150 between the bottom plate 110 and the bottom cover 210.
[0045] By setting the first connecting plate 120 and the second connecting plate 220, both the housing 100 and the cover 200 can form an accommodating space, so that the voltage regulator 500 can be installed in the cover 200. This optimizes the layout of the control box 1, makes reasonable use of space, and realizes the partitioned integration of the memory 300, the processor 400 and the voltage regulator 500 in one control box 1. When the cover 200 is closed, the first connecting plate 120 and the second connecting plate 220 abut against each other to enclose the cover 200 and the housing 100, thereby forming the clearance cavity 150. The structure is simple and the molding difficulty is low.
[0046] In one embodiment, the housing 100 includes a first mounting portion 130 with a memory 300 and a second mounting portion 140 with a processor 400. Along the length of the housing 100, the first mounting portion 130 is located above the second mounting portion 140. The bottom cover 210 and the second connecting plate 220 enclose each other to form a third mounting portion 230 for mounting the voltage regulator 500. The third mounting portion 230 is aligned with the second mounting portion 140. When the cover 200 is closed on the housing 100, the second mounting portion 140 and the third mounting portion 230 enclose each other to form a clearance cavity 150. The flexible member is located between the voltage regulator 500 and the processor 400.
[0047] By setting the first mounting part 130, the second mounting part 140, and the third mounting part 230, the memory 300, processor 400, and voltage regulator 500 are respectively partitioned and fixed in the control box 1, avoiding assembly interference between the three. The second mounting part 140 and the third mounting part 230 are aligned, that is, the voltage regulator 500 is set in the lower half of the cover 200, and when the cover is closed, it is aligned with the second mounting part 140 where the processor 400 is located. The second mounting part 140 and the third mounting part 230 enclose and form a clearance cavity 150. A flexible element is located between the voltage regulator 500 and the processor 400. It can be understood that there is a gap between the voltage regulator 500 and the processor 400 where the flexible element can be installed, so as to avoid collision between the voltage regulator 500 and the processor 400 which are positioned opposite each other in the second mounting part 140 and the third mounting part 230, and will not affect the memory 300 located in the first mounting part 130.
[0048] It is understandable that the positions of the first mounting part 130, the second mounting part 140 and the third mounting part 230 are indicated by dashed lines in the figure. In actual assembly, in order to meet the installation of components of different specifications, it is not necessary to make obvious area isolation of the mounting parts.
[0049] In a preferred embodiment, the memory 300 and the processor 400 are provided with an interface 600. The flexible component includes a plurality of transmission lines 700 connected to each interface 600. The housing 100 is provided with a third connecting plate perpendicular to the bottom plate 110 and arranged along the width direction. The third connecting plate is provided with a through hole for the transmission lines 700 to pass through. Part of the transmission lines 700 are located in the relief cavity 150. The voltage regulator 500 abuts against the transmission lines 700.
[0050] By setting the transmission line 700 as a flexible component, flexible installation can be achieved using the existing components inside the control box 1. On the one hand, the transmission line 700 itself occupies little space and will not excessively occupy the assembly space of the voltage regulator 500 and the processor 400. On the other hand, by using the flexible outer sheath of the transmission line 700 itself as a flexible component, when the control box 1 is closed, the voltage regulator 500 flexibly abuts against the transmission line 700 within the clearance cavity 150, avoiding collision between the voltage regulator 500 and the processor 400.
[0051] Furthermore, such as Figure 1 , Figure 4 As shown, the first connecting plate 120 has a mounting surface 121 parallel to the base plate 110. The processor 400 is set against the base plate 110 and has a clearance gap 160 between it and the mounting surface 121. A partial clearance cavity 150 is formed between the clearance gaps 160 on both sides. The transmission line 700 passes through the clearance cavity 150 and connects to the corresponding interface 600.
[0052] In this embodiment, there is a certain distance between the processor 400 and the open end of the housing 100, namely the aforementioned clearance gap 160, which provides a certain extension space or buffer space for the voltage regulator 500 in the housing 100 when the lid is closed.
[0053] Alternatively, the clearance 160 provides clearance space for the transmission line 700 to pass through the clearance cavity 150 and connect to the processor 400.
[0054] In a preferred embodiment, the base plate 110 and the first connecting plate 120, as well as the bottom cover 210 and the second connecting plate 220, are integrally formed. This helps to improve the overall structural stability of the control box 1.
[0055] It is understood that the housing 100 and cover of the control box 1 can be connected by hinges or other common housing 100 connection methods in the prior art.
[0056] In one embodiment, the flexible element includes a filling cotton 800 disposed within the clearance cavity 150.
[0057] As one embodiment of this example, the filling cotton 800 is provided with a groove 810, and the transmission line 700 is at least partially located within the groove 810.
[0058] As one implementation method of this embodiment, the filling cotton 800 has a cylindrical channel 820 inside, and the transmission line 700 passes through the channel 820 to the corresponding interface 600.
[0059] In this embodiment, by providing filling cotton 800, when the cover 200 is closed, the filling cotton 800 is compressed by the pressure of the voltage regulator 500, forming a barrier between the voltage regulator 500 and the processor 400, preventing the voltage regulator 500 from contacting the processor 400, thereby achieving flexible isolation protection between the voltage regulator 500 and the processor 400. By providing grooves 810 or channels 820 in the filling cotton 800, the transmission line 700 can pass through the avoidance cavity 150 to reach the interface 600 for connection. At the same time, it can also limit the movement of the transmission line 700, ensuring that the transmission line 700 is connected along a predetermined route, which helps to avoid tangled wires.
[0060] It should be noted that the filling cotton 800 can be directly placed inside the box 100. One or more pieces can be placed according to the width of the box 100 and the usage requirements. The groove 810 of the filling cotton 800 can be set on one side as shown in the attached figure, or it can be set on the top or bottom surface of the filling cotton 800. This method is not shown in the figure. Combining the structure of the groove 810 in the figure, it is easy to set the position of the groove 810.
[0061] For any parts not mentioned in this application, existing technologies may be used or referenced.
[0062] The various embodiments in this specification are described in a progressive manner. The same or similar parts between the various embodiments can be referred to each other. Each embodiment focuses on describing the differences from other embodiments.
[0063] The above description is merely an embodiment of this application and is not intended to limit the scope of this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of the claims of this application.
Claims
1. A flexible installed digital and electrical co-transmission controller, characterized in that, The digital-electric simultaneous transmission and control unit includes a control box, which has a box body and a cover that covers the box body. The box body has a memory, a processor and a traffic light control program stored in the memory and that can run on the processor. The cover has a voltage regulator and the box body has a flexible element. The cover covers the box body so that the voltage regulator abuts against the flexible element.
2. The flexible mounted digital electrical and optical transmission controller according to claim 1, characterized in that, The control box is provided with a clearance cavity, the flexible component is located in the clearance cavity, and when the cover is closed on the box, the voltage regulator falls into the clearance cavity.
3. A flexible mounted digital and electrical co-transmission controller according to claim 2, characterized in that, The housing includes a bottom plate and a first connecting plate perpendicular to the bottom plate, the first connecting plate being arranged along the length direction. The cover includes a bottom cover and a second connecting plate perpendicular to the bottom cover. The first connecting plate abuts against the second connecting plate to form the clearance cavity between the bottom plate and the bottom cover.
4. A flexible mounted digital and electrical co-transmission controller according to claim 3, characterized in that, The enclosure includes a first mounting portion for a memory and a second mounting portion for a processor. Along the length of the enclosure, the first mounting portion is located above the second mounting portion. The bottom cover and the second connecting plate enclose a third mounting portion for mounting the voltage regulator. The third mounting portion is aligned with the second mounting portion. When the cover is closed on the enclosure, the second mounting portion and the third mounting portion enclose the clearance cavity. The flexible member is located between the voltage regulator and the processor.
5. A flexible mounted digital and electrical co-transmission controller according to claim 4, characterized in that, The memory and the processor are provided with an interface. The flexible component includes multiple transmission lines connected to each of the interfaces. The housing is provided with a third connecting plate perpendicular to the bottom plate and arranged along the width direction. The third connecting plate is provided with a through hole for the transmission lines to pass through. The transmission lines are partially located in the clearance cavity. The voltage regulator abuts against the transmission lines.
6. A flexible mounted digital and electrical co-transmission controller according to claim 5, characterized in that, The first connecting plate has a mounting surface parallel to the base plate. The processor is disposed against the base plate and has a clearance gap between it and the mounting surface. A portion of the clearance cavity is formed between the clearance gaps on both sides. The transmission line passes through the clearance cavity and connects to the corresponding interface.
7. The flexible mounted digital and electrical co-transmission controller according to claim 3, characterized in that, The base plate and the first connecting plate, as well as the bottom cover and the second connecting plate, are integrally formed.
8. The flexible mounted digital electrical and optical transmission controller according to claim 5, wherein, The flexible component includes filling cotton disposed within the clearance cavity.
9. A flexible mounted digital and electrical co-transmission controller according to claim 8, characterized in that, The filling cotton has a groove, and the transmission line is at least partially located within the groove.
10. The flexible mounted digital electrical and optical transmission concentrator according to claim 8, characterized in that, The filling cotton has a cylindrical channel inside, and the transmission line passes through the channel to the corresponding interface.