Intelligent converged terminal capable of managing diversified device load

CN224610212UActive Publication Date: 2026-08-07ZHEJIANG RISESUN SCI & TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHEJIANG RISESUN SCI & TECH CO LTD
Filing Date
2025-08-12
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0003]智能融合终端通常在复杂的环境下运行,如在工业车间、户外基站等,这些地方可能存在振动等不利因素,导致电源插头容易在插槽内松动,进一步导致接触不良,出现影响设备正常供电的问题

Benefits of technology

1.本实用新型通过支托板、弹簧片与磁块、空心磁棒的协同工作,实现对插头的稳固支撑。在插头插入插座后,支托板在弹簧片的弹性复位作用下转动至合适的角度,并通过内壁的橡胶板对插头进行支撑,避免振动导致插头出现松动问题;同时,限位管限制空心磁棒的滑动终点,防止支托板过度转动,避免橡胶板对插头下表面的压紧力过大,使得插头紧紧抵住插座的内壁,导致插头与插座内的金属片受力不均匀,进一步导致金属片发生形变,加剧接触不良问题。

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Abstract

The utility model discloses a kind of intelligent fusion terminals capable of diversified equipment load management, it is related to intelligent fusion terminal technical field, specifically includes: fusion terminal equipment, socket, plug, the load management module is equipped in the fusion terminal equipment, the bottom of the plug is provided with a stable mechanism, to ensure that plug remains stable docking state when inserting socket, wherein the stable mechanism is signal connected with the load management module, to allow or prohibit load switching after plug is completely inserted.The utility model realizes the stable support to plug by the collaborative work of support plate, spring piece and magnetic block, hollow magnetic bar.After plug is inserted into socket, support plate rotates to appropriate angle under the elastic reset action of spring piece, and support plug by rubber plate of inner wall, avoid vibration to cause plug to appear loose problem.
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Description

Technical Field

[0001] This utility model relates to the field of intelligent converged terminal technology, specifically to an intelligent converged terminal capable of managing the load of diverse devices. Background Technology

[0002] In modern industry and daily life, the efficient and stable operation of various equipment is crucial, and diversified equipment load management has become a key link in ensuring its normal operation. Many pieces of equipment face complex operating conditions during operation, and their loads are constantly changing. This can lead to problems such as overload, abnormal energy consumption, and low operating efficiency, and in severe cases, even equipment failure, affecting production processes or the convenience of daily use. Therefore, there is an urgent need to develop an intelligent integrated terminal to achieve efficient and intelligent management of diversified equipment loads, ensuring the safe and stable operation of equipment.

[0003] Intelligent converged terminals typically operate in complex environments, such as industrial workshops and outdoor base stations. These places may have adverse factors such as vibration, which can cause the power plug to loosen in the slot, leading to poor contact and affecting the normal power supply of the equipment.

[0004] Meanwhile, in actual operation, friction between the contact surfaces of the plug and socket, tight fit due to manufacturing tolerances, dust or other impurities entering the socket, etc., may increase insertion resistance and cause incomplete insertion. As a result, the operator may misjudge that the plug is fully inserted when it is not actually fully inserted. This situation will cause the plug to only achieve partial connection, which will also lead to poor contact.

[0005] In summary, it is necessary to develop an intelligent converged terminal that can manage the load of diverse devices in order to solve the above problems. Utility Model Content

[0006] To address the shortcomings of existing technologies, the technical solution adopted by this utility model is: an intelligent converged terminal capable of managing the load of diverse devices, specifically comprising: The system integrates a terminal device, a socket, and a plug. The terminal device includes a load management module, and the plug has a stabilizing mechanism at its bottom to ensure a secure connection when inserted into the socket. This stabilizing mechanism is signal-connected to the load management module to allow or disable load switching after the plug is fully inserted. The intelligent converged terminal is a multi-functional device used for efficient and intelligent management of diverse device loads. It integrates power, communication, data acquisition, and control functions to achieve interconnection and collaborative operation between devices. The data cable at the bottom of the plug is existing technology and is not fully shown in this paper.

[0007] Furthermore, the stabilizing mechanism includes: A mounting bracket has a magnetic block fixed to its inner wall, and a trigger part is installed on the inner wall of the magnetic block. The mounting bracket has a hollow magnetic rod slidably connected to its inner wall. A limiting tube is movably connected to the side of the hollow magnetic rod away from the magnetic block. A support plate is mounted on the upper surface of the limiting tube, and a feedback component is slidably connected to the inner surface of the support plate. The magnetic block and the hollow magnetic rod have a strong attraction force within a short distance, but this attraction force is less than the pulling force of a human body, and the hollow magnetic rod is lightweight. The limiting tube limits the sliding endpoint of the hollow magnetic rod.

[0008] Furthermore, the stabilizing mechanism also includes: A spring sheet, the bottom of which is fitted with a support plate, the inner wall of which is rotatably connected. The device has a rotating shaft, and a rubber plate is installed on the inner wall of the support plate. A pull rope is fixed to the side of the support plate near the limiting tube. The spring plate functions similarly to a spring, possessing elasticity and a reset function. The elastic force of the spring plate is less than the attraction force of the magnetic block on the hollow magnetic rod, and this attraction force is only valid when the magnetic block and the hollow magnetic rod are at a relatively short distance. At the same time, the pulling force of the spring plate on the support plate ensures that the rubber plate inside the support plate can stably support the lower surface of the plug. Since the rubber plate is made of rubber, it will not damage the bottom of the plug. The pull rope has good strength but does not have elastic deformation capability.

[0009] Furthermore, the mounting bracket is installed on the lower surface of the fusion terminal device, the outer surface of the limiting tube is fixedly connected to the outer surface of the mounting bracket, and the top end of the spring sheet is installed on the lower surface of the support plate.

[0010] Furthermore, one end of the rotating shaft is fixedly connected to the outer surface of the socket, the outer surface of the pull rope is slidably connected to the inner wall of the limiting tube, and the end of the pull rope away from the support plate is fixedly connected to the side of the hollow magnetic rod close to the limiting tube.

[0011] Furthermore, the feedback component includes: A rotating plate has a rubber rod fixed to its outer surface. A mounting box is located outside the rubber rod, and an alarm light is fixed to the upper surface of the mounting box. A wireless controller and a power module are installed on the inner wall of the mounting box. The rubber rod can be stretched under tension and returns to its original length after the tension is released, exhibiting good elasticity.

[0012] Furthermore, the feedback component also includes: A first pressure sensor has a contact plate movably connected to its side away from the power module. A fixed shaft is rotatably connected to the inner wall of the contact plate, and a sleeve is positioned above the fixed shaft. The contact plate can rotate with the outer surface of the fixed shaft, allowing it to contact or separate from the fixed shaft at different rotation angles. The inner wall of the sleeve is made of polytetrafluoroethylene (PTFE), which has an extremely low coefficient of friction, excellent wear resistance, and chemical stability. This significantly reduces friction when the rubber rod is stretched and sliding, protecting the rubber rod from sliding damage.

[0013] Furthermore, the bottom of the rotating plate is mounted on the upper surface of the support plate, and the power module is electrically connected to the alarm light, the wireless controller, and the first pressure sensor via wires. Some of the wires are embedded in the inner wall of the mounting box.

[0014] Furthermore, the first pressure sensor is installed on the inner wall of the mounting box, the side of the contact plate near the sleeve is fixedly connected to the end of the rubber rod away from the rotating plate, and both ends of the fixed shaft are fixedly connected to the inner wall of the mounting box.

[0015] Furthermore, the outer surface of the sleeve is fixedly connected to the inner wall of the mounting box, and the inner wall of the sleeve is slidably connected to the outer surface of the rubber rod.

[0016] Furthermore, the triggering component includes: A compression block has a sliding rod fixedly attached to one side. A return spring is installed on the side of the compression block near the sliding rod. An auxiliary plate is fixedly attached to the end of the return spring away from the compression block. A fixing box is fixedly attached to the outer surface of the auxiliary plate. A power supply module is installed on the inner wall of the fixing box. The power supply module is electrically connected to a second pressure sensor via wires. The sliding rod is a soft rubber rod. The power supply module is equivalent to a power supply module, both having power supply capability and able to supply power to electrical components via wires. Specifically, the power supply module supplies power to the second pressure sensor via wires.

[0017] Furthermore, the outer surface of the extrusion block is slidably connected to the inner wall of the magnetic block, the end of the return spring away from the auxiliary plate is fixedly connected to the outer surface of the extrusion block, and the fixing box is mounted on the outer surface of the mounting bracket. The extrusion block is made of normal plastic material and is not magnetic.

[0018] Compared with the prior art, the beneficial effects of this utility model are as follows: 1. This utility model achieves stable support for the plug through the coordinated work of a support plate, spring sheet, magnetic block, and hollow magnetic rod. After the plug is inserted into the socket, the support plate rotates to a suitable angle under the elastic restoring action of the spring sheet, and supports the plug through the rubber plate on the inner wall, preventing the plug from loosening due to vibration. At the same time, the limiting tube restricts the sliding endpoint of the hollow magnetic rod, preventing the support plate from rotating excessively and avoiding excessive pressure from the rubber plate on the lower surface of the plug, which would cause the plug to press tightly against the inner wall of the socket, resulting in uneven force on the metal pieces inside the plug and socket, further causing deformation of the metal pieces and exacerbating poor contact problems.

[0019] 2. This utility model achieves the detection of the angle and posture of the support plate through the coordinated work of the support plate, rubber plate, pull rope and first pressure sensor, and further determines whether the plug is accurately inserted into the socket. This avoids the problem that the plug is not fully inserted into the socket due to the operator's insertion resistance, tolerance, tight fit or impurities on the inner wall of the socket, resulting in only partial connection of the plug.

[0020] 3. This device addresses two potential issues when the plug is not fully inserted into the socket: 1. If the plug is inserted deeply but not completely into the designated position, the rubber plates on the inner walls of the support plates on both sides of the plug may contact the lower surface of the plug. Under the elastic force of the spring plates, the rubber plates push the plug further into the inner wall of the socket, enabling the operator to correct the misoperation. 2. If the plug is not inserted deeply, the rubber plates on both sides may touch the sides of the plug. Through the cooperation of multiple components such as the first pressure sensor, the second pressure sensor, and the wireless controller, it is determined whether the support plates are in the correct position. If the rotation angle and position of the support plates are incorrect, the wireless controller can activate the alarm light to remind the operator that the plug is not fully inserted into the inner surface of the socket, assisting the operator in correcting the misoperation and avoiding misjudgment and poor contact caused by the plug not being fully inserted. Attached Figure Description

[0021] Figure 1 This is the front view of this utility model; Figure 2 This is a schematic diagram of the stabilizing mechanism of this utility model; Figure 3 This is a schematic diagram of the structure of the support plate of this utility model; Figure 4 This is a schematic diagram of the feedback component of this utility model; Figure 5 This is a sectional view of the mounting box of this utility model; Figure 6 This is a schematic diagram of the triggering component of this utility model; Figure 7This is a cross-sectional view of the fixing box of this utility model.

[0022] In the diagram: 1. Converged terminal device; 2. Socket; 3. Plug; 4. Stabilizing mechanism; 41. Mounting bracket; 42. Magnetic block; 43. Triggering component; 431. Pressing block; 432. Sliding bar; 433. Return spring; 434. Auxiliary plate; 435. Fixing box; 436. Power supply module; 437. Second pressure sensor; 44. Hollow magnetic rod; 45. Limiting tube; 46. Support plate; 47. Feedback component; 471. Rotating plate; 472. Rubber rod; 473. Mounting box; 474. Alarm light; 475. Wireless controller; 476. Power module; 477. First pressure sensor; 478. Contact plate; 479. Fixed shaft; 480. Sleeve; 48. Spring plate; 49. Support plate; 401. Rotating shaft; 402. Rubber plate; 403. Pull rope. Detailed Implementation

[0023] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. The embodiments of the present invention are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the present invention to the disclosed forms. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described to better illustrate the principles and practical applications of the present invention, and to enable those skilled in the art to understand the present invention and design various embodiments with various modifications suitable for a particular purpose. Example 1

[0024] Please see Figure 1 - Figure 3 This utility model provides a technical solution: an intelligent converged terminal capable of managing the load of diverse devices, specifically comprising: The device includes a converged terminal equipment 1, a socket 2, and a plug 3. The converged terminal equipment 1 is equipped with a load management module. The bottom of the plug 3 is provided with a stabilizing mechanism 4 to ensure that the plug 3 remains in a stable docking state when inserted into the socket 2. The stabilizing mechanism 4 is signal-connected to the load management module to allow or prohibit load switching after the plug 3 is fully inserted.

[0025] The intelligent converged terminal is an intelligent device that integrates multiple functions to efficiently and intelligently manage the load of diverse equipment. It can integrate multiple functions such as power, communication, data acquisition and control to realize interconnection and collaborative work between devices; among them, the data line at the bottom of plug 3 is existing technology and is not fully shown in this article.

[0026] Firstly, in this embodiment, the intelligent fusion terminal device 1 is equipped with a load management module, which includes an intelligent monitoring module, a communication module, a data processing module, and a control module, enabling effective management of diverse device loads. The intelligent monitoring module collects real-time operating data from each device, including key parameters such as voltage, current, and power, providing a detailed data foundation for subsequent load analysis. The communication module is responsible for efficient information exchange with different devices, ensuring interconnectivity between them. The data processing module performs in-depth analysis and processing of the collected data, accurately identifying the load status and trends of each device. The control module optimizes the device's operating strategy based on the analysis results, rationally allocating the load of each device to ensure efficient and stable operation. Since the stabilizing mechanism 4 is signal-connected to the load management module within the fusion terminal device 1, after the plug 3 is fully inserted into the socket 2 and securely connected, the load management module can accurately control the allowance and prohibition of load switching according to preset logic and conditions. For example, if the stabilizing mechanism 4 detects an unstable plug 3, it transmits a signal to the load management module, which then prohibits switching, preventing malfunctions or dangers caused by forcibly turning the device on or off due to poor contact. Because many modules are existing technologies, this device is not fully shown.

[0027] Stable mechanism 4 includes: Mounting bracket 41, with a magnetic block 42 fixed to its inner wall, a triggering component 43 mounted on the inner wall of the magnetic block 42, and a hollow magnetic rod 44 slidably connected to the inner wall of the mounting bracket 41. A limiting tube 45 is movably connected to the side of the hollow magnetic rod 44 away from the magnetic block 42, and a support plate 46 is mounted on the upper surface of the limiting tube 45. A feedback component 47 is slidably connected to the inner surface of the support plate 46. The magnetic block 42 and the hollow magnetic rod 44 have a strong attraction force within a short distance, but the attraction force is less than the pulling force of a human body, and the hollow magnetic rod 44 is lightweight. The limiting tube 45 limits the sliding endpoint of the hollow magnetic rod 44.

[0028] Stabilizing mechanism 4 also includes: A spring plate 48 has a support plate 49 mounted at its bottom. A rotating shaft 401 is rotatably connected to the inner wall of the support plate 49, and a rubber plate 402 is installed on the inner wall of the support plate 49. A pull rope 403 is fixed to the side of the support plate 49 near the limiting tube 45. The spring plate 48 has the same function as a spring, both having elasticity and reset function. The elastic force of the spring plate 48 is less than the attraction force of the magnetic block 42 on the hollow magnetic rod 44. This attraction force is only established when the magnetic block 42 and the hollow magnetic rod 44 are at a relatively short distance. At the same time, the pulling force of the spring plate 48 on the support plate 49 can also ensure that the rubber plate 402 inside the support plate 49 can stably support the lower surface of the plug 3. Since the rubber plate 402 is made of rubber, it will not damage the bottom of the plug 3. The pull rope 403 has good strength and does not have elastic deformation ability.

[0029] Mounting bracket 41 is mounted on the lower surface of fusion terminal equipment 1, the outer surface of limiting tube 45 is fixedly connected to the outer surface of mounting bracket 41, and the top end of spring plate 48 is mounted on the lower surface of support plate 49.

[0030] One end of the rotating shaft 401 is fixedly connected to the outer surface of the socket 2, the outer surface of the pull rope 403 is slidably connected to the inner wall of the limiting tube 45, and the end of the pull rope 403 away from the support plate 49 is fixedly connected to the side of the hollow magnetic rod 44 near the limiting tube 45.

[0031] The working principle is as follows: First, the staff inserts the plug 3 into the socket 2. Given that the overall intelligent fusion terminal device 1 often operates in complex environments such as industrial workshops and outdoor base stations, and is susceptible to vibration and other factors, the power plug 3 is prone to loosening within the socket 2, leading to poor contact. Therefore, a stabilizing mechanism 4 is used to solve this problem.

[0032] In the initial stage, the hollow magnetic rod 44 and the magnetic block 42 attract each other. The hollow magnetic rod 44 can drive the pull rope 403 to slide along the inner wall of the limiting tube 45. During the sliding process, the pull rope 403 can pull the support plate 49 to rotate around the outer surface of the rotating shaft 401 towards the side close to the limiting tube 45 until the support plate 49 rotates to an appropriate angle, while stretching the spring plate 48 on its upper surface. At this time, the support plates 49 on both sides of the socket 2 form a sufficient gap, making it easy for the operator to insert the plug 3 into the inner wall of the socket 2.

[0033] After the plug 3 is inserted into the inner wall of the socket 2, manually push the hollow magnetic rod 44 to separate it from the magnetic block 42. Then, under the elastic reset action of the spring plate 48, the support plate 49 can drive the pull rope 403 and the hollow magnetic rod 44 to move until one side of the hollow magnetic rod 44 abuts against the outer surface of the limiting tube 45. At this time, the support plate 49 is in the position of... Figure 3 As shown, the rubber plate 402 on its inner wall can stably support the lower surface of the plug 3 and prevent the plug 3 from being affected by adverse factors such as vibration.

[0034] exist Figure 3 In the indicated state, due to the large distance between the magnetic block 42 and the hollow magnetic rod 44, there is no attraction between them, and the spring plate 48 does not need to overcome the magnetic attraction between the magnetic block 42 and the hollow magnetic rod 44. When it is necessary to unplug the plug 3, the operator only needs to push the hollow magnetic rod 44 closer to the magnetic block 42 until the two attract each other. The pulling force of the operator is greater than the elastic force of the spring plate 48. At the same time, after the magnetic block 42 and the hollow magnetic rod 44 attract each other, the operator's hand is removed from the outer surface of the hollow magnetic rod 44. After the magnetic block 42 and the hollow magnetic rod 44 attract each other, the magnetic attraction is greater than the elastic force of the spring plate 48 when no external force is applied. Only human intervention can change its state.

[0035] The limiting tube 45 can limit the sliding end point of the hollow magnetic rod 44, prevent the hollow magnetic rod 44 from sliding excessively under the pulling force of the pull rope 403, and prevent the support plate 49 from continuing to rotate upward at a suitable angle, which would cause the rubber plate 402 to exert excessive pressure on the lower surface of the plug 3, potentially damaging the plug 3 inside the socket 2, and thus affecting the electrical contact between the plug 3 and the socket 2, causing poor contact problems. Example 2

[0036] Please see Figure 1 - Figure 7 This utility model provides a technical solution: based on embodiment one, the feedback component 47 includes: A rotating plate 471 has a rubber rod 472 fixedly attached to its outer surface. A mounting box 473 is located outside the rubber rod 472. An alarm light 474 is fixedly attached to the upper surface of the mounting box 473. A wireless controller 475 and a power module 476 are installed on the inner wall of the mounting box 473. The rubber rod 472 can be stretched under tension and returns to its original length after the tension is released, exhibiting good elasticity.

[0037] Feedback component 47 also includes: A first pressure sensor 477 has a contact plate 478 movably connected to the side of the first pressure sensor 477 away from the power module 476. A fixed shaft 479 is rotatably connected to the inner wall of the contact plate 478, and a sleeve 480 is disposed above the fixed shaft 479. The contact plate 478 can rotate with the outer surface of the fixed shaft 479, and can contact or separate from the contact plate 478 at different rotation angles. The inner wall of the sleeve 480 is made of polytetrafluoroethylene, which has an extremely low coefficient of friction, excellent wear resistance and chemical stability, and can significantly reduce the friction force when the rubber rod 472 is stretched and slid, protecting the rubber rod 472 from sliding damage.

[0038] The bottom of the rotating plate 471 is mounted on the upper surface of the support plate 49. The power module 476 is electrically connected to the alarm light 474, the wireless controller 475, and the first pressure sensor 477 via wires. Some of the wires are buried in the inner wall of the mounting box 473.

[0039] The first pressure sensor 477 is installed on the inner wall of the mounting box 473. The side of the contact plate 478 near the sleeve 480 is fixedly connected to the end of the rubber rod 472 away from the rotating plate 471. Both ends of the fixed shaft 479 are fixedly connected to the inner wall of the mounting box 473.

[0040] The outer surface of the sleeve 480 is fixedly connected to the inner wall of the mounting box 473, and the inner wall of the sleeve 480 is slidably connected to the outer surface of the rubber rod 472.

[0041] Trigger component 43 includes: A compression block 431 is included. A sliding rod 432 is fixedly connected to one side of the compression block 431. A return spring 433 is installed on the side of the compression block 431 near the sliding rod 432. An auxiliary plate 434 is fixedly connected to the end of the return spring 433 away from the compression block 431. A fixing box 435 is fixedly connected to the outer surface of the auxiliary plate 434. A power supply module 436 is installed on the inner wall of the fixing box 435. The power supply module 436 is electrically connected to a second pressure sensor 437 via wires. The sliding rod 432 is a soft rubber rod 472. The power supply module 436 is equivalent to the power supply module 476, both having power supply capability and able to supply power to electrical components via wires. Specifically, the power supply module 436 supplies power to the second pressure sensor 437 via wires.

[0042] The outer surface of the extrusion block 431 is slidably connected to the inner wall of the magnetic block 42. The end of the return spring 433 away from the auxiliary plate 434 is fixedly connected to the outer surface of the extrusion block 431. The fixing box 435 is installed on the outer surface of the mounting bracket 41. The extrusion block 431 is made of normal plastic material and is not magnetic.

[0043] The working principle is as follows: When the rubber plate 402 on the inner wall of the support plate 49 accurately fits against the lower surface of the plug 3 and provides stable support, the combination Figures 4 to 5 As shown, the rotating plate 471 on the upper surface of the support plate 49 can drive the contact plate 478 to rotate through the rubber rod 472. At this time, the rubber plate 402 is in a stable support state, and the contact plate 478 is attached to the outer surface of the first pressure sensor 477. After the first pressure sensor 477 senses the signal, it wirelessly transmits the signal to the wireless controller 475, indicating that the support plate 49 is in the accurate angle posture under this pressure level, and the detected signal is the correct signal.

[0044] If the worker does not insert the plug 3 deeply enough into the socket 2, the plug 3 in this state should be slightly lower than the plug 3 at the proper depth. Subsequently, if the worker misjudges the depth of the plug 3 and still separates the hollow magnetic rod 44 from the magnetic block 42, that is, if the support plate 49 and the rubber plate 402 are not rotated to the appropriate angle, they may touch the lower surface or sides of the plug 3. Depending on the depth of the plug 3 inserted into the socket 2, there are two possible situations: If plug 3 is inserted too deeply but not fully into the designated position, the support plates 49 on both sides of plug 3 may contact the lower surface of plug 3, pushing plug 3 further into the inner wall of socket 2 until the rubber plate 402 on the inner wall of support plate 49 is completely in contact with the lower surface of plug 3, thus enabling the operator to eliminate the misoperation on their own.

[0045] If plug 3 is not inserted deeply, the rubber plates 402 on both sides may touch the sides of plug 3. Due to their position, the rubber plates 402 cannot push plug 3 upwards. Figure 4 As shown, the support plate 49 was not rotated counterclockwise to the appropriate angle, therefore the distance between the rotating plate 471 located on the upper surface of the support plate 49 and the mounting box 473 is greater than [the distance is missing from the original text]. Figure 4 As shown, the rubber rod 472 extends and pulls the contact plate 478 to rotate around the outer surface of the fixed shaft 479 away from the first pressure sensor 477. The first pressure sensor 477 cannot feel the squeezing force of the contact plate 478, indicating that the rotation angle of the support plate 49 is incorrect and not fully aligned with the lower surface of the plug 3. It can be further deduced that the lower surface of the plug 3 is not accurately inserted into the inner wall of the socket 2. At this time, the pressure signal sensed by the first pressure sensor 477 is 0, and this information will be fed back to the wireless controller 475. The wireless controller 475 then controls the alarm light 474 to sound, reminding the staff that the plug 3 is not fully inserted into the inner surface of the socket 2, so as to avoid the staff misjudging and causing subsequent problems with poor contact due to insufficient insertion of the plug 3.

[0046] When plug 3 is inserted deeply but not fully, the support plate 49 can be used to help push plug 3 fully into the inner surface of socket 2. When plug 3 is not inserted deeply, the support plates 49 on both sides of plug 3 may be in contact with the sides of plug 3. If the operator applies slight upward force, plug 3 can be inserted into the interior of socket 2 without pushing hollow magnetic rod 44 to contact magnetic block 42. If the operator has more difficulty pushing, because the support plates 49 are clamped on both sides of plug 3, hollow magnetic rod 44 needs to be pushed to contact magnetic block 42. The degree of difficulty in pushing upward depends on the insertion depth of plug 3; the shorter the insertion depth, the more difficult it is.

[0047] The hollow magnetic rod 44 can further push the pressing block 431 to slide along the inner wall of the fixed box 435, and drive the soft slide bar 432 to slide towards the side closer to the second pressure sensor 437 until the slide bar 432 contacts the second pressure sensor 437. After the second pressure sensor 437 senses the signal, it transmits the signal to the wireless controller 475 wirelessly, indicating that the hollow magnetic rod 44 is in contact with the magnetic block 42. This further indicates that the rubber plate 402 on the inner wall of the support plate 49 has detached from the lower surface of the plug 3. At this time, the operator needs to push the plug 3 upward to the accurate depth and then release the hollow magnetic rod 44. After the hollow magnetic rod 44 and the magnetic block 42 are no longer in contact, the pressing block 431 returns to its original position under the elasticity of the return spring 433, and the slide bar 432 also contacts the second pressure sensor 437. 7. After the second pressure sensor 437 loses contact and no longer senses a pressure signal, the wireless controller 475 determines the following by associating the signal with the first pressure sensor 477: If the second pressure sensor 437 does not sense a signal, the rubber plate 402 on the inner wall of the support plate 49 should be in contact with the lower surface of the plug 3, and the first pressure sensor 477 should subsequently sense a pressure signal for the correct logical relationship. If the first pressure sensor 477 does not sense a signal, it indicates that the insertion depth of the plug 3 is insufficient, causing the first pressure sensor 477 to be unable to sense a pressure signal. Therefore, the setting of the trigger component 43 can assist the operation of the feedback component 47 to help determine whether the support plate 49 has rotated to the appropriate angle, and further determine whether the plug 3 has been deeply inserted into the socket 2.

[0048] The workflow is as follows: First, this device achieves stable support for the plug 3 through the coordinated operation of the support plate 49, spring plate 48, magnetic block 42, and hollow magnetic rod 44. After the plug 3 is inserted into the socket 2, the support plate 49 rotates to a suitable angle under the elastic reset action of the spring plate 48, and supports the plug 3 through the rubber plate 402 on the inner wall, preventing the plug 3 from becoming loose due to vibration. At the same time, the limiting tube 45 restricts the sliding end point of the hollow magnetic rod 44, preventing the support plate 49 from rotating excessively and avoiding excessive pressure from the rubber plate 402 on the lower surface of the plug 3, which would cause the plug 3 to press tightly against the inner wall of the socket 2, resulting in uneven force on the metal piece inside the plug 3 and socket 2, further causing deformation of the metal piece and aggravating poor contact problems.

[0049] Subsequently, through the coordinated operation of the support plate 49, rubber plate 402, pull rope 403 and first pressure sensor 477, this device detects the angle and posture of the support plate 49, and further determines whether the plug 3 is accurately inserted into the socket 3. This avoids the problem that the plug 3 is not fully inserted into the socket 2 due to the operator's insertion resistance, tolerance, tight fit, or impurities on the inner wall of the socket 2, resulting in only partial connection of the plug 3.

[0050] In particular, the solution addresses two potential problems when plug 3 is not fully inserted into socket 2: 1. If plug 3 is inserted too deeply but not fully into the designated position, the rubber plate 402 on the inner wall of the support plate 49 on both sides of plug 3 may contact the lower surface of plug 3. Under the elastic force of spring plate 48, the rubber plate 402 pushes plug 3 further into the inner wall of socket 2, thus enabling the operator to eliminate the misoperation on their own.

[0051] 2. If the plug 3 is not inserted deeply, the rubber plates 402 on both sides may touch the sides of the plug 3. Through the cooperation of multiple components such as the first pressure sensor 477, the second pressure sensor 437, and the wireless controller 475, it is determined whether the support plate 49 is in the correct position. If the rotation angle and position of the support plate 49 are incorrect, the wireless controller 475 can control the alarm light 474 to sound an alarm, reminding the staff that the plug 3 is not fully inserted into the inner surface of the socket 2. This helps the staff to correct the misoperation and avoid misjudgment by the staff, which may lead to poor contact due to the plug 3 not being inserted in place.

[0052] Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of this utility model without creative effort should fall within the protection scope of this utility model. Structures, devices, and operating methods not specifically described and explained in this utility model, unless otherwise specified or limited, shall be implemented according to conventional means in the art.

Claims

1. An intelligent converged terminal capable of managing the load of diverse devices, specifically comprising: The integrated terminal device (1), socket (2), and plug (3) are characterized in that: the integrated terminal device (1) is provided with a load management module, and the bottom of the plug (3) is provided with a stabilizing mechanism (4) to ensure that the plug (3) remains in a stable docking state when inserted into the socket (2), wherein the stabilizing mechanism (4) is signal connected to the load management module to allow or prohibit load switching after the plug (3) is fully inserted; The stabilizing mechanism (4) includes: A spring sheet (48) is provided with a support plate (49) installed at the bottom of the spring sheet (48). A rotating shaft (401) is rotatably connected to the inner wall of the support plate (49). A rubber plate (402) is installed on the inner wall of the support plate (49). A pull rope (403) is fixed to the side of the support plate (49) near the limiting tube (45). Feedback component (47) includes: a first pressure sensor (477), a contact plate (478) is movably connected to the side of the first pressure sensor (477) away from the power module (476), a fixed shaft (479) is rotatably connected to the inner wall of the contact plate (478), and a sleeve (480) is provided above the fixed shaft (479).

2. The intelligent converged terminal for managing the load of diversified equipment according to claim 1, characterized in that: The stabilizing mechanism (4) includes: Mounting bracket (41), the inner wall of which is fixedly connected to a magnetic block (42), the inner wall of which is installed with a triggering component (43), the inner wall of which is slidably connected to a hollow magnetic rod (44), the side of which is away from the magnetic block (42) is movably connected to a limiting tube (45), the upper surface of which is installed with a support plate (46), and the inner surface of which is slidably connected with a feedback component (47).

3. The intelligent converged terminal for managing the load of diversified equipment according to claim 2, characterized in that: The mounting bracket (41) is installed on the lower surface of the fusion terminal device (1), the outer surface of the limiting tube (45) is fixed to the outer surface of the mounting bracket (41), and the top end of the spring sheet (48) is installed on the lower surface of the support plate (49).

4. The intelligent converged terminal for managing the load of diversified equipment according to claim 3, characterized in that: One end of the rotating shaft (401) is fixedly connected to the outer surface of the socket (2), the outer surface of the pull rope (403) is slidably connected to the inner wall of the limiting tube (45), and the end of the pull rope (403) away from the support plate (49) is fixedly connected to the side of the hollow magnetic rod (44) near the limiting tube (45).

5. The intelligent converged terminal for managing the load of diversified equipment according to claim 2, characterized in that: The feedback component (47) includes: A rotating plate (471) is provided with a rubber rod (472) fixed to its outer surface. An installation box (473) is provided on the outside of the rubber rod (472). An alarm light (474) is fixed to the upper surface of the installation box (473). A wireless controller (475) is installed on the inner wall of the installation box (473). A power module (476) is installed on the inner wall of the installation box (473).

6. The intelligent converged terminal for managing the load of diversified devices according to claim 5, characterized in that: The bottom of the rotating plate (471) is mounted on the upper surface of the support plate (49), and the power module (476) is electrically connected to the alarm light (474), the wireless controller (475), and the first pressure sensor (477) through wires.

7. The intelligent converged terminal for managing the load of diversified equipment according to claim 6, characterized in that: The first pressure sensor (477) is installed on the inner wall of the mounting box (473). The side of the contact plate (478) near the sleeve (480) is fixed to the end of the rubber rod (472) away from the rotating plate (471). Both ends of the fixed shaft (479) are fixed to the inner wall of the mounting box (473).

8. The intelligent converged terminal for managing the load of diversified equipment according to claim 7, characterized in that: The outer surface of the sleeve (480) is fixedly connected to the inner wall of the mounting box (473), and the inner wall of the sleeve (480) is slidably connected to the outer surface of the rubber rod (472).