A multi-port power safety monitoring physical protection enclosure
By designing a multi-port power safety monitoring physical protection enclosure, using a connection component that combines snap-fit protrusions and limit slots with a Hall current sensor, and combining auxiliary components such as a conveyor fan, processing pipe, filter screen, and smoke sensor, the problem of crude port management and lack of dynamic monitoring in existing protection enclosures is solved. Stable connection of cables of different specifications and real-time environmental monitoring are achieved, ensuring safe operation and flexible deployment of equipment.
Patent Information
- Application Number
- CN202510803878.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-17
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2045-06-17
AI Technical Summary
Existing protective enclosures suffer from problems such as inefficient port management, messy cabling, increased electromagnetic interference, and lack of dynamic monitoring. They are also difficult to adapt to the interfaces of different power monitoring equipment and cannot monitor the internal environment and equipment status in real time.
The design incorporates a multi-port power safety monitoring physical protection enclosure, employing a connection component that combines snap-fit protrusions with limiting grooves. It is equipped with Hall current sensors and temperature sensors, along with auxiliary components such as conveyor fans, processing pipes, filters, and smoke sensors, to achieve limiting and fixing of cables of different specifications and real-time environmental monitoring.
It enables stable connection and current monitoring of cables of different specifications, ensuring safe operation of the equipment, and real-time adjustment of the internal environment of the enclosure, improving the stability and flexibility of the equipment and adapting to rapid deployment in different locations.
Smart Images

Figure CN120341729B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of power safety enclosures, and more specifically, to a multi-port power safety monitoring physical protection enclosure. Background Technology
[0002] A protective enclosure is a structure used to protect internal equipment or systems from external environmental influences, physical damage, and security threats. It has wide applications in various fields, especially in industries such as power, communications, and industrial automation, to ensure the normal operation and safety of critical equipment. With the development of intelligent and networked new power systems, the number of power monitoring system access terminals has surged, and the centralized deployment of multi-port devices has become the norm.
[0003] However, existing protective enclosures generally have the following problems:
[0004] Inefficient port management: Traditional enclosures use fixed port designs, which are difficult to adapt to the interfaces of power monitoring equipment of different specifications, and can easily lead to messy cables and increased electromagnetic interference.
[0005] Lack of dynamic monitoring: The existing enclosures lack real-time monitoring of the internal environment (such as temperature, humidity, and gas concentration) and equipment status, making it impossible to provide early warnings of overheating. Summary of the Invention
[0006] To address the shortcomings of existing technologies, this invention provides a multi-port power safety monitoring physical protection enclosure that possesses the advantages of the aforementioned technical problems, thereby solving the issues in existing technologies.
[0007] To achieve the advantages of solving the aforementioned technical problems, the specific technical solution adopted by the present invention is as follows:
[0008] A multi-port power safety monitoring physical protection enclosure includes an enclosure, a connecting component, and an auxiliary component. The connecting component and the auxiliary component are disposed inside the enclosure, with the auxiliary component located on one side of the connecting component. The connecting component includes a snap-fit protrusion, a connector, a connector port, and a Hall current sensor. The snap-fit protrusion cooperates with a limiting groove to limit and fix the connector. The connector port on the connector is a multi-specification adapter port to meet the access requirements of different port types. The Hall current sensor on the connector port can monitor changes in cable current in real time.
[0009] Furthermore, to ensure the limiting and monitoring of cables entering the enclosure from the outside, thereby enabling the limiting, fixing, and protection of cables of different specifications or ports, the connecting assembly includes a first mounting cylinder, which is disposed on both sides of the enclosure. A mounting post is fixedly disposed inside the first mounting cylinder. Multiple first limiting springs are symmetrically arranged on the inner walls of the mounting posts and the first mounting cylinder. A first limiting plate is disposed at one end of each first limiting spring. Multiple second limiting springs are disposed between the first limiting plates. Multiple first temperature sensors are embedded in the inner side of each first limiting plate. To ensure the connection effect of cables with different specifications, the connecting assembly also includes mounting plates, which are symmetrically disposed on the inner walls of the enclosure.
[0010] Furthermore, to ensure the protective effect inside the enclosure, the auxiliary components include a conveyor cover, which is fixedly installed at one end of the enclosure. A conveyor pipe is fixedly installed at one end of the conveyor cover, and one end of the conveyor pipe extends into the interior of the enclosure. The end of the conveyor pipe inside the enclosure has installation ports at equal intervals. A second temperature sensor and a humidity sensor are symmetrically arranged on the inner wall of the enclosure. To ensure the monitoring effect, the auxiliary components also include a conveyor fan, which is installed inside the conveyor cover. One end of the conveyor cover is connected to a processing pipe.
[0011] Furthermore, multiple connection ports are provided on one side of the first mounting cylinder, and a dustproof protective coil is fixedly installed inside the connection port. Limiting holes are provided at equal intervals on one side of the mounting plate, and connecting protrusions are provided inside the limiting holes. A connecting plate is fixedly installed on one side of the connecting protrusions. A limiting groove is provided on one side of the connecting plate, and a third limiting spring is provided inside the limiting groove to limit and fix the connecting structure inserted into the limiting groove. A second limiting plate is provided at one end of the third limiting spring.
[0012] Furthermore, in order to better accommodate the insertion and connection of cables with different specifications, thereby achieving the expansion and connection effect of multiple ports, the inside of the limiting groove is provided with a snap-fit protrusion, and the snap-fit protrusion contacts the second limiting plate. A connecting seat is fixedly provided on one side of the snap-fit protrusion, and one end of the connecting seat contacts the second limiting plate. Multiple connection ports are opened on one side of the connecting seat, and a Hall current sensor is provided on one side of the connection port for monitoring the current of cables with different specifications connected to the ports on the connecting seat. The first temperature sensor is adapted to the first limiting plate.
[0013] Furthermore, to ensure the adjustment effect, a second mounting cylinder is provided inside the mounting port, an adjusting cylinder is fixedly installed inside the second mounting cylinder, a support frame is fixedly installed inside the adjusting cylinder, and multiple adjusting blades are embedded in the support frame through a bearing. One end of the adjusting blade is embedded in the adjusting cylinder through a bearing.
[0014] Furthermore, in order to ensure the adjustment effect of the output of the adjusting blade and thus be applicable to different temperature conditions, one end of the adjusting blade extends to the outside of the adjusting cylinder. An adjusting plate is provided at the end of the adjusting blade located outside the adjusting cylinder. An adjusting ring is connected to one end of the adjusting blade. Multiple motors are installed on the outer wall of the conveying pipe through a fixed frame. The output shaft of the motor is provided with a rotating rod through a coupling.
[0015] Furthermore, in order to ensure the multi-angle adjustment effect of the blades, the rotating rod is set on the outer wall of the conveying pipe through a fixed seat. Multiple first bevel gears are set on the rotating rod, and the first bevel gears are meshed with second bevel gears. The second bevel gears are fixedly set on one side of the adjusting ring.
[0016] Furthermore, a processing box is provided at one end of the processing tube, and a filter screen and a smoke sensor are installed inside the processing box. The filter screen is symmetrically arranged inside the processing box, and output holes are opened on both sides of the processing box.
[0017] Furthermore, in order to ensure good mobility of the enclosure and the installation effect of the cables, the two sides of the enclosure are connected by hinges to a first protective door and a second protective door. The second protective door is equipped with a locking structure on one side of the enclosure. The first protective door is controlled by a controller on one side. The bottom of the enclosure is symmetrically equipped with a first moving wheel and a second moving wheel.
[0018] Compared with the prior art, the present invention has the following beneficial effects:
[0019] 1. By setting up connection components, it can effectively adapt to the interfaces of power monitoring equipment of different specifications, avoiding the cable mess and electromagnetic interference problems caused by traditional fixed port design. At the same time, the second limit spring between the first limit plates and the embedded first temperature sensor can further enhance the stability and security of the port and ensure the reliability of the equipment connection.
[0020] 2. Through auxiliary components installed inside the enclosure, the internal environment can be monitored in real time. With the conveyor fan, processing pipe, processing box, filter screen and smoke sensor, the temperature, humidity and air quality inside the enclosure can be effectively regulated to prevent risks such as overheating and leakage, ensuring the safe operation of the power monitoring equipment and realizing intelligent regulation of the internal environment. By driving the rotation of the regulating blades with a motor, the air flow can be precisely controlled to further optimize the temperature and humidity conditions inside the enclosure and improve the operating efficiency and stability of the equipment.
[0021] 3. The first and second casters symmetrically arranged at the bottom of the enclosure give the entire protective enclosure good mobility, making it easy to move and deploy quickly between different locations, thus improving the equipment's flexibility and emergency response capabilities. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0023] Figure 1 This is a structural diagram of a multi-port power safety monitoring physical protection box according to an embodiment of the present invention;
[0024] Figure 2 This is a structural side view of a multi-port power safety monitoring physical protection box according to an embodiment of the present invention;
[0025] Figure 3 This is an internal structural diagram of a multi-port power safety monitoring physical protection box according to an embodiment of the present invention;
[0026] Figure 4 This is a partial structural side sectional view of the connection components of a multi-port power safety monitoring physical protection box according to an embodiment of the present invention;
[0027] Figure 5 This is a partial structural diagram of the connection components of a multi-port power safety monitoring physical protection box according to an embodiment of the present invention;
[0028] Figure 6 This is an exploded view of a partial structure of the connection components of a multi-port power safety monitoring physical protection box according to an embodiment of the present invention;
[0029] Figure 7 This is a partial structural side sectional view of the connection components of a multi-port power safety monitoring physical protection box according to an embodiment of the present invention;
[0030] Figure 8 This is a structural diagram of a connection base for a multi-port power safety monitoring physical protection box according to an embodiment of the present invention;
[0031] Figure 9 This is a structural diagram of auxiliary components of a multi-port power safety monitoring physical protection box according to an embodiment of the present invention;
[0032] Figure 10 This is a side sectional view of the auxiliary component structure of a multi-port power safety monitoring physical protection box according to an embodiment of the present invention;
[0033] Figure 11 This is a partial structural side view of an auxiliary component of a multi-port power safety monitoring physical protection enclosure according to an embodiment of the present invention. Figure 1 ;
[0034] Figure 12 This is a partial structural side view of an auxiliary component of a multi-port power safety monitoring physical protection enclosure according to an embodiment of the present invention. Figure 2 ;
[0035] Figure 13 This is a partial structural diagram of an auxiliary component of a multi-port power safety monitoring physical protection box according to an embodiment of the present invention;
[0036] Figure 14 This is a partial structural breakdown of an auxiliary component of a multi-port power safety monitoring physical protection enclosure according to an embodiment of the present invention. Figure 1 ;
[0037] Figure 15 This is a partial structural breakdown of an auxiliary component of a multi-port power safety monitoring physical protection enclosure according to an embodiment of the present invention. Figure 2 .
[0038] In the picture:
[0039] 1. Housing; 2. First protective door; 3. Second protective door; 4. Locking structure; 5. Controller; 6. Connecting assembly; 601. First mounting cylinder; 602. Dustproof protective coil; 603. Mounting post; 604. First limit spring; 605. First limit plate; 606. Second limit spring; 607. First temperature sensor; 608. Mounting plate; 609. Limiting hole; 610. Connecting plate; 611. Limiting groove; 612. Third limit spring; 613. Second limit plate; 614. Snap-fit protrusion; 615. Connecting seat; 616. Connecting port; 617. Hall current sensor; 618. Connecting... 7. Connecting protrusion; 7. Auxiliary components; 701. Conveying cover; 702. Conveying pipe; 703. Second temperature sensor; 704. Humidity sensor; 705. Second mounting cylinder; 706. Adjusting cylinder; 707. Support frame; 708. Adjusting blade; 709. Adjusting plate; 710. Motor; 711. Rotating rod; 712. First bevel gear; 713. Second bevel gear; 714. Adjusting ring; 715. Conveying fan; 716. Processing pipe; 717. Processing box; 718. Filter screen; 719. Smoke sensor; 720. Output hole; 8. Mounting port; 9. First moving wheel; 10. Second moving wheel. Detailed Implementation
[0040] To further illustrate the technical solutions of this application, the present invention provides accompanying drawings, which are part of the disclosure of the present invention. These drawings are mainly used to illustrate the embodiments and can be used in conjunction with the relevant descriptions in the specification to explain the operating principles of the embodiments. With reference to these contents, those skilled in the art should be able to understand other possible embodiments and the advantages of the present invention. The components in the drawings are not drawn to scale, and similar component symbols are usually used to represent similar components.
[0041] like Figures 1-15 As shown, the present invention provides a technical solution: a multi-port power safety monitoring physical protection box, including a box 1, a first protective door 2 and a second protective door 3 connected to both sides of the box 1 by hinges, a locking structure 4 provided between the second protective door 3 and one side of the box 1, a controller 5 on one side of the first protective door 2, a connecting component 6 provided on one side of the box 1, an auxiliary component 7 provided inside the box 1, and a first moving wheel 9 and a second moving wheel 10 symmetrically provided at the bottom of the box 1.
[0042] The connecting assembly 6 includes a first mounting cylinder 601, which is disposed on both sides of the housing 1. Four connection ports are provided on one side of the first mounting cylinder 601 for connecting cables of different specifications. Dustproof protective coils 602 are fixedly installed inside the connection ports to prevent external dust or impurities from entering the housing 1. Mounting posts 603 are fixedly installed inside the first mounting cylinder 601. Six first limiting springs 604 are symmetrically arranged on the inner wall of the mounting posts 603 and the first mounting cylinder 601. Two symmetrical arc-shaped first limiting plates 605 are provided at one end of the first limiting springs 604. Five symmetrical second limiting springs 606 are arranged between the two first limiting plates 605. Six first temperature sensors 607 are embedded in the inner side of the first limiting plates 605 for monitoring the temperature of cables of different specifications entering the housing 1. The first temperature sensors 607 are adapted to the inner wall of the first limiting plates 605.
[0043] The connecting assembly 6 also includes a mounting plate 608 for snapping onto the connecting plate 610. The mounting plates 608 are symmetrically arranged on the inner wall of the housing 1. Limiting holes 609 are equally spaced on one side of the mounting plate 608 for snapping onto the connecting protrusion 618. The connecting protrusion 618 is provided inside the limiting hole 609 for placing the connecting plate 610, and the connecting protrusion 618 is adapted to the limiting hole 609. The connecting plate 610 is fixedly mounted on one side of the connecting protrusion 618. The connecting plate 610 is used to house control electrical appliances. In actual use, it is equipped with circuit breakers, disconnect switches, load switches, protective electrical appliances, etc. A limit groove 611 is provided on one side of the connecting plate 610 for placement. A third limit spring 612 is installed inside the limit groove 611 for adjustment and limiting. A second limit plate 613 is provided at one end of the third limit spring 612 to limit the engagement protrusion 614. The engagement protrusion 614 is also provided inside the limit groove 611. 4. A snap-fit protrusion 614 is used for snap-fitting, and the snap-fit protrusion 614 contacts the second limiting plate 613. A connecting seat 615 is fixedly provided on one side of the snap-fit protrusion 614 for electrical connection. The connecting seat 615 has internal wiring (not shown in detail) in actual use. One end of the connecting seat 615 is connected to a conductive cable, which is connected to the port of the control electrical appliance (such as circuit breaker, disconnector, load switch, etc.). One end of the connecting seat 615 is in contact with the second limiting plate 613. Multiple connecting ports 616 are provided on one side of the connecting seat 615 for connecting cables of different specifications. The connecting ports 616 have a conventional structure, and the specific structure will not be described in detail. Different specifications of ports can be set for the connecting ports 616 in actual use. A Hall current sensor 617 is provided on one side of the connecting port 616. The Hall current sensor 617 is electrically connected to the controller 5 through a wire in actual use to monitor the current value of cables of different specifications to ensure the protection effect.
[0044] like Figures 1-15As shown, the auxiliary component 7 includes a conveyor cover 701, which is fixedly mounted at one end of the housing 1. A conveyor pipe 702 is fixedly mounted at one end of the conveyor cover 701, extending into the interior of the housing 1. Mounting ports 8 are equidistantly spaced at the end of the conveyor pipe 702 located inside the housing 1. A second temperature sensor 703 and a humidity sensor 704 are symmetrically arranged on the inner wall of the housing 1, both electrically connected to the controller 5 via wires during use. A second mounting cylinder 705 is installed inside the mounting port 8, and an adjusting cylinder 706 is fixedly mounted inside the second mounting cylinder 705. A support frame 707 is fixedly mounted inside the adjusting cylinder 706, and multiple adjusting blades 708 are embedded in the support frame 707 via bearings. One end of the adjusting blade 708 is embedded in the adjusting cylinder 706 via a bearing 2, and the other end of the adjusting blade 708 extends to the outside of the adjusting cylinder 706. An adjusting plate 709 is provided at the end of the adjusting blade 708 located outside the adjusting cylinder 706. An adjusting ring 714 is connected to the other end of the adjusting blade 708. Multiple motors 710 are provided on the outer wall of the conveying pipe 702 via a fixing frame. A rotating rod 711 is provided on the output shaft of the motor 710 via a coupling. The rotating rod 711 is provided on the outer wall of the conveying pipe 702 via a fixing seat. Multiple first bevel gears 712 are provided on the rotating rod 711. The first bevel gears 712 are meshed with second bevel gears 713, and the second bevel gears 713 are fixedly provided on one side of the adjusting ring 714.
[0045] The auxiliary component 7 also includes a conveying fan 715, which is located inside the conveying hood 701. One end of the conveying hood 701 is connected to a processing pipe 716, and one end of the processing pipe 716 is provided with a processing box 717. The processing box 717 is provided with a filter screen 718 and a smoke sensor 719. In actual use, the smoke sensor 719 is electrically connected to the controller 5 through a wire, and the filter screen 718 is symmetrically arranged inside the processing box 717. Output holes 720 are opened on both sides of the processing box 717.
[0046] In summary, by means of the above-mentioned technical solution of the present invention, when it is necessary to connect cables of different specifications of power monitoring equipment to the housing 1, the cables are inserted through the connection port on one side of the first mounting cylinder 601. The dustproof protective coil 602 can prevent dust from entering and provide a certain degree of protection for the cables. When the cable passes through the inside of the first mounting cylinder 601, it will contact the mounting post 603 and a plurality of first limiting springs 604 symmetrically arranged between the mounting post 603 and the inner wall of the first mounting cylinder 601. One end of the first limiting spring 604 is connected to the first limiting plate 605. When the cable is inserted, it will push the first limiting plate 605 to move inward. A limiting spring 604 is compressed, allowing the first limiting plate 605 to adapt to cables of different thicknesses, thereby limiting and fixing the cables and ensuring the stability of the connection. At the same time, multiple second limiting springs 606 arranged between the first limiting plates 605 further enhance this adaptive limiting effect, enabling cables of different specifications to be stably clamped. In addition, multiple first temperature sensors 607 embedded inside the first limiting plate 605 can monitor the temperature at the cable connection in real time. Once an abnormal temperature is detected, it can be promptly fed back to the controller 5 so that corresponding measures can be taken to avoid safety hazards such as cable damage or fire caused by excessive temperature.
[0047] When control electrical appliances need to be installed inside the housing 1, the operator installs the connecting plate 610 on the mounting plate 608 on the inner wall of the housing 1. The equidistant limiting holes 609 on the mounting plate 608 precisely align with the connecting protrusions 618, ensuring that the connecting plate 610 is securely engaged in the limiting holes 609. After the connecting plate 610 is in place, the limiting groove 611 on one side works in conjunction with the internal third limiting spring 612. When the engaging protrusion 614 on the connecting seat 615 is inserted, it rotates 90 degrees. Then, the third limiting spring 612 automatically pushes the second limiting plate 613 toward the engaging protrusion 614, achieving a secure limiting installation of the connecting seat 615. The connecting seat 615 is pre-arranged with... The wiring is connected to the conductive cable, and the other end of the conductive cable is connected to the port of the control electrical appliance to form a complete electrical circuit. The connector 615 is designed with multiple connection ports 616 of different specifications to adapt to various cables. At the same time, the Hall current sensor 617 on one side of the connection port 616 monitors the current change in the cable in real time. Once the current exceeds the safe range, the Hall current sensor 617 immediately transmits the signal to the controller 5 to trigger the corresponding protection mechanism, such as the circuit breaker tripping, thereby ensuring the safe operation of the entire system. The whole process does not require complicated manual intervention. The components automatically complete the linkage through ingenious mechanical and electrical design, which improves the installation efficiency and system reliability.
[0048] The conveyor cover 701 in auxiliary component 7 is fixedly installed at one end of the housing 1. A conveyor fan 715 is installed inside the cover. After the conveyor fan 715 starts, it conveys outside air into the housing 1 through the conveyor pipe 702. The conveyor pipe 702 has equidistant mounting ports 8 at one end inside the housing 1. Each mounting port 8 contains a second mounting cylinder 705. An adjusting cylinder 706 is fixed inside the second mounting cylinder 705. A support frame 707 is connected inside the adjusting cylinder 706 via a bearing. Multiple adjusting blades 708 are mounted on the support frame 707. One end of each adjusting blade 708 is connected to the adjusting cylinder 706 via a bearing and extends to the outside of the adjusting cylinder 706. An adjusting plate 709 and an adjusting ring 714 are provided at the external end. Multiple motors 710 are mounted on the outer wall of the conveying pipe 702 via a fixing bracket. The output shaft of the motor 710 is connected to a rotating rod 711 via a coupling. The rotating rod 711 is fixed to the outer wall of the conveying pipe 702 via a fixing seat. Multiple first bevel gears 712 are provided on the rotating rod 711. The first bevel gears 712 mesh with second bevel gears 713. The second bevel gears 713 are fixed to one side of the adjusting ring 714. When it is necessary to adjust the airflow inside the housing 1 to control the temperature and humidity, the motor 710 starts, driving the rotating rod 711 to rotate, and then the transmission is achieved through the meshing of the first bevel gears 712 and the second bevel gears 713. Rotating the regulating ring 714 causes the connected regulating blades 708 to rotate around bearings one and two, thereby changing the angle of the regulating blades 708. This precisely controls the airflow and direction entering the housing 1 from the mounting port 8, achieving intelligent regulation of the temperature and humidity inside the housing 1. Simultaneously, the second temperature sensor 703 and humidity sensor 704, symmetrically arranged on the inner wall of the housing 1, monitor the temperature and humidity inside the housing 1 in real time and feed the data back to the controller 5. This allows the controller to adjust the operating parameters of the conveyor fan 715 and motor 710 according to the actual environmental conditions, ensuring that the internal environment of the housing 1 is always in a suitable state for the operation of the power monitoring equipment. Air delivered by the conveyor fan 715 enters the processing chamber 717 through the processing pipe 716. The filter 718 inside the processing chamber 717 filters the air, removing dust, impurities and other particulate matter to ensure the air quality entering the chamber 1. At the same time, the smoke sensor 719 inside the processing chamber 717 can monitor the smoke concentration in the air in real time. Once an abnormality is detected, an alarm can be issued in time to prevent safety hazards such as fire. The processed air is finally output through the output holes 720 on both sides of the processing chamber 717. By continuously adjusting and optimizing the internal environment of the chamber 1, risks such as overheating and leakage are prevented, ensuring the safe and stable operation of the power monitoring equipment.
[0049] When the enclosure 1 needs to be moved from one location to another, the first moving wheel 9 and the second moving wheel 10 will roll on the ground by pushing the enclosure 1, which can achieve rapid transfer and deployment, thereby improving the flexibility of the equipment and enabling it to better adapt to different working scenarios and emergency response needs. This facilitates installation, maintenance and monitoring work in different locations of the power monitoring system.
[0050] In this invention, unless otherwise explicitly specified and limited, the terms "installation," "setting," "connection," "fixing," "screw connection," 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 or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal connection of two components or the interaction between two components. Unless otherwise explicitly limited, those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0051] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. 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 multi-port power safety monitoring physical protection enclosure, comprising an enclosure (1), characterized in that, It also includes a connecting component (6) and an auxiliary component (7), which are disposed inside the housing; The cable is placed into the first mounting cylinder (601). The first limiting plate (605), the second limiting plate (613), the first limiting spring (604), and the second limiting spring (606) are telescopically set to adapt to cables of different specifications. At the same time, the multiple first temperature sensors (607) embedded in the first limiting plate (605) can monitor the cable temperature in real time and provide temperature data for the operation of the housing (1). Then, by inserting the snap-fit protrusion (614) on the connector (615) into the limiting groove (611) and rotating it 90 degrees, the connector (615) can be fixed in a limited position. The connector port (616) on the connector (615) is a multi-specification compatible port that can meet the access requirements of different port types. The Hall current sensor (617) correspondingly set on the connector port (616) can monitor the current change of the cable in the connector port (616) in real time. The connecting assembly (6) includes a first mounting cylinder (601), which is disposed on both sides of the housing (1). A mounting post (603) is fixedly disposed inside the first mounting cylinder (601). Multiple first limiting springs (604) are symmetrically disposed on the inner wall of the mounting post (603) and the inner wall of the first mounting cylinder (601). A first limiting plate (605) is disposed at one end of the first limiting spring (604). Multiple second limiting springs (606) are disposed between the first limiting plates (605). Multiple first temperature sensors (607) are embedded in the inner side of the first limiting plate (605). The connecting assembly (6) also includes a mounting plate (608), which is symmetrically disposed on the inner wall of the housing (1). The auxiliary component (7) includes a conveyor cover (701), which is fixedly installed at one end of the housing (1). A conveyor pipe (702) is fixedly installed at one end of the conveyor cover (701). One end of the conveyor pipe (702) extends into the interior of the housing (1). An installation port (8) is opened at equal intervals at one end of the conveyor pipe (702) inside the housing (1). A second temperature sensor (703) and a humidity sensor (704) are symmetrically arranged on the inner wall of the housing (1). The auxiliary component (7) also includes a conveyor fan (715), which is installed inside the conveyor cover (701). One end of the conveyor cover (701) is connected to a processing pipe (716).
2. The multi-port power safety monitoring physical protection enclosure according to claim 1, characterized in that, The first mounting cylinder (601) has multiple connection ports on one side, and a dustproof protective coil (602) is fixedly installed inside the connection port. Limiting holes (609) are equally spaced on one side of the mounting plate (608). A connecting protrusion (618) is installed inside the limiting hole (609). A connecting plate (610) is fixedly installed on one side of the connecting protrusion (618). A limiting groove (611) is opened on one side of the connecting plate (610). A third limiting spring (612) is installed inside the limiting groove (611). A second limiting plate (613) is installed at one end of the third limiting spring (612).
3. The multi-port power safety monitoring physical protection enclosure according to claim 2, characterized in that, The limiting groove (611) is provided with a snap-fit protrusion (614) inside, and the snap-fit protrusion (614) is in contact with the second limiting plate (613). A connecting seat (615) is fixedly provided on one side of the snap-fit protrusion (614), and one end of the connecting seat (615) is in contact with the second limiting plate (613). Multiple connecting ports (616) are provided on one side of the connecting port (616). A Hall current sensor (617) is provided on one side of the connecting port (616). The first temperature sensor (607) is adapted to the first limiting plate (605).
4. The multi-port power safety monitoring physical protection enclosure according to claim 1, characterized in that, The mounting port (8) is provided with a second mounting cylinder (705), and an adjusting cylinder (706) is fixedly provided inside the second mounting cylinder (705). A support frame (707) is fixedly provided inside the adjusting cylinder (706). Multiple adjusting blades (708) are embedded in the support frame (707) through a bearing. One end of the adjusting blade (708) is embedded in the adjusting cylinder (706) through a bearing.
5. The multi-port power safety monitoring physical protection enclosure according to claim 4, characterized in that, One end of the adjusting blade (708) extends to the outside of the adjusting cylinder (706). An adjusting plate (709) is provided at the end of the adjusting blade (708) located outside the adjusting cylinder (706). An adjusting ring (714) is connected to one end of the adjusting blade (708). Multiple motors (710) are provided on the outer wall of the conveying pipe (702) through a fixing frame. A rotating rod (711) is provided on the output shaft of the motor (710) through a coupling.
6. The multi-port power safety monitoring physical protection enclosure according to claim 5, characterized in that, The rotating rod (711) is mounted on the outer wall of the conveying pipe (702) via a fixed seat. Multiple first bevel gears (712) are mounted on the rotating rod (711). The first bevel gears (712) are meshed with second bevel gears (713), and the second bevel gears (713) are fixedly mounted on one side of the adjusting ring (714).
7. A multi-port power safety monitoring physical protection enclosure according to claim 6, characterized in that, A processing box (717) is provided at one end of the processing tube (716). A filter screen (718) and a smoke sensor (719) are provided inside the processing box (717). The filter screen (718) is symmetrically arranged inside the processing box (717). Output holes (720) are provided on both sides of the processing box (717).
8. The multi-port power safety monitoring physical protection enclosure according to claim 1, characterized in that, The two sides of the box (1) are connected by hinges to a first protective door (2) and a second protective door (3). The second protective door (3) and one side of the box (1) are provided with a locking structure (4). The first protective door (2) is controlled by a controller (5). The bottom of the box (1) is symmetrically provided with a first moving wheel (9) and a second moving wheel (10).
Citation Information
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