Ground leakage early warning engineering consultation multi-port storage cooperative management device and system

By using a ground current detection alarm module and a vacancy exposure module, the alarm and vacancy search problems of the storage device under current conditions are solved, thereby improving the safety and efficiency of the device.

CN122487707APending Publication Date: 2026-07-31ZHEJIANG TONGCHENG CONSTR MANAGEMENT CO LTD
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Patent Information

Application Number
CN202610574499.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-04-28
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing storage devices cannot provide timely warnings when there is an electric current on the ground, making them susceptible to damage, which affects their lifespan and the security of stored data. In addition, the need for manual searching for empty spaces leads to low hard drive storage efficiency.

Method used

A ground current detection alarm module and an empty space exposure module were designed. The ground current detection module triggers an alarm when there is a weak current, and the empty space exposure module automatically pops out an empty space when a hard drive is placed, reducing the time spent searching manually.

Benefits of technology

It enables timely alarms, reduces the possibility of device damage, extends service life, ensures the security of stored data, and improves hard drive storage efficiency and human-machine interface.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention provides a multi-port storage collaborative management device and system for ground leakage current early warning in engineering consulting, belonging to the technical field of storage collaborative management devices. It includes a cabinet, a counterweight, a ground current detection alarm module, a first plate, a second plate, and a third plate. The counterweight and the ground current detection alarm module are sequentially arranged on the side of the cabinet from left to right. The first plate, the second plate, and the third plate are fixedly connected to the inner wall of the cabinet from front to back. By incorporating the ground current detection alarm module, this invention can immediately trigger an alarm when a weak current is detected on the ground, thereby alerting on-duty personnel to the presence of a weak current in the ground equipment room and enabling timely handling. This reduces the possibility of the ground current increasing in size, thereby reducing the likelihood of the device being damaged by a stronger current, extending the device's lifespan, and also reducing the possibility of the internal storage hard drive being damaged by the ground current, ensuring the security of stored data.
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Description

Technical Field

[0001] This invention relates to the field of storage collaborative management equipment technology, and in particular to a multi-port storage collaborative management equipment and system for ground leakage early warning engineering consulting. Background Technology

[0002] The ground leakage early warning engineering consulting multi-port storage collaborative management equipment is a rack-mounted mechanical device that is oriented towards the full life cycle data management of construction projects and has the ability to support multiple hard drives in parallel and physical protection.

[0003] A data hard drive storage cabinet disclosed in Chinese Invention Patent Application Publication No. CN218499424U, while allowing for easier removal of storage boxes and hard drives, overlooks the fact that ground currents in ordinary computer rooms can occur due to various factors. Initially, these currents may be weak and imperceptible to humans, but they can increase over time. High-voltage ground currents can damage the device, reducing its lifespan and compromising the security of the data stored on the internal hard drives. Furthermore, the device neglects the fact that manually searching for available spaces is often required when storing hard drives. With a large number of hard drives, this time-consuming process reduces storage efficiency. The human-machine interface of the device is also compromised. Therefore, this application provides a multi-port storage collaborative management device and system with ground current leakage warning to meet this need. Summary of the Invention

[0004] (a) Technical problems to be solved To address the shortcomings of existing technologies, this invention provides a multi-port storage collaborative management device and system for ground leakage early warning engineering consulting. It solves the problems of existing devices failing to provide timely alarms when current appears on the ground, which not only makes the device prone to breakdown by ground current, reducing its lifespan, but also easily damages the internal storage hard drive, affecting the security of stored data. Furthermore, existing devices require manual time to find available storage space, which reduces hard drive storage efficiency and human-machine interface efficiency.

[0005] (II) Technical Solution To solve the above-mentioned technical problems, the present invention provides the following technical solution: A multi-port storage collaborative management device and system for ground leakage early warning engineering consulting includes a cabinet. From left to right, the sides of the cabinet are provided with counterweights and a ground current detection alarm module. From front to back, the inner wall of the cabinet is fixedly connected with a first plate, a second plate, and a third plate. The bottom of the first plate, the second plate, and the third plate are all fixedly connected with a support plate. The top of the support plate is provided with a space exposure module. The front of the cabinet is provided with a hinge. The cabinet is fitted with a cabinet door through the hinge. The front of the cabinet door is fixedly connected with a handle.

[0006] Preferably, the ground current detection alarm module includes a frame, a short-pitch vertical base is fixedly connected to the top of the frame, a circular hole is opened on the front of the short-pitch vertical base, and a first square groove, a second square groove and a third square groove are opened sequentially from top to bottom on one side of the frame. A first spring hole is opened on the inner wall of the first square groove, and a first torsion spring is provided inside the first spring hole.

[0007] Preferably, one end of the first torsion spring is fixedly connected to a shaped plate, the bottom of the shaped plate is provided with a suction cup, the inner wall of the second square groove is provided with a second spring hole, the inside of the second spring hole is provided with a second torsion spring, one end of the second torsion spring is fixedly connected to a baffle, the inner wall of the third square groove is provided with a third spring hole, the inside of the third spring hole is provided with a third torsion spring.

[0008] Preferably, a short plate is fixedly connected to one end of the third torsion spring, a long plate is fixedly connected to one side of the short plate, a net is provided on the inner wall of the long plate, a fixed pulley is provided inside the circular hole, a rope is provided on the surface of the fixed pulley, and a first hanging ring is provided at one end of the rope.

[0009] Preferably, a counterweight is fixedly connected to the bottom of the first hanging ring, a second hanging ring is fixedly connected to the other end of the rope, a trigger block is fixedly connected to the bottom of the second hanging ring, a trigger plate is fixedly connected to one side of the trigger block, and a third hanging ring is fixedly connected to the bottom of the trigger block.

[0010] Preferably, the surface of the third hanging ring is provided with an aramid conductive blended rope, one end of which is provided with a metal knob, and one end of the metal knob is provided with a small threaded hole, the inside of which is connected to a conductive rod.

[0011] Preferably, the frame has a large threaded hole on its side, which is compatible with the metal knob. The trigger plate has an actuator on its top, and a horn is provided on one side of the actuator.

[0012] Preferably, the starter has a power supply compartment on top, a battery inside the power supply compartment, a sealing plate on the front of the power supply compartment, the power supply compartment being threadedly connected to the sealing plate by sealing plate bolts, and a frame being threadedly connected to the power supply compartment by power supply compartment bolts.

[0013] Preferably, the empty space exposure module includes an external frame box, with a vertical spring and a magnet fixedly connected to the bottom of the external frame box from left to right, a placement platform fixedly connected to the top of the vertical spring, a fixing plate on the top of the placement platform, and the placement platform being threadedly connected to the fixing plate by fixing plate bolts.

[0014] A system for engineering consulting on ground leakage current early warning and multi-port storage collaborative management equipment includes the following steps: Step 1: The counterweights are responsible for symmetrically counterweighting the side of the cabinet and the ground current detection alarm module opposite it. The first plate, the second plate, and the third plate are to limit the left and right movement of the empty space exposure module. The support plate is to support the empty space exposure module. When the personnel pull the handle, the cabinet door will open and close via the hinges. The cabinet is the outer frame of the entire module. The ground current detection alarm module will immediately trigger an alarm when a weak current is detected on the ground, thereby alerting the on-duty personnel to the presence of a weak current on the ground computer room floor and enabling timely handling. The empty space exposure module can automatically pop out the empty space when a hard drive is manually placed into the device, eliminating the need for manual searching for an empty space. Step 2: The conductive rod is dragged on the floor of the machine room. If there is current on the ground, the conductive rod can conduct the current to the metal knob and finally to the aramid conductive blended rope. After the aramid conductive blended rope comes into contact with the current, it can be slowly electro-eroded and broken. When the aramid conductive blended rope breaks, it can no longer restrain the trigger block. Since the trigger block is not as heavy as the counterweight, the counterweight falls synchronously, and the trigger block rises. During the rise of the trigger block, it is slowed down by the side deceleration assembly composed of the net, baffle and suction cup to prevent the trigger block from rising too fast and damaging the starter. The first torsion spring, the second torsion spring and the third torsion spring are responsible for restoring their respective irregular plates, baffles and short plates to their original positions after the trigger block passes. The rope is to make the counterweight and the trigger block move synchronously. The rise of the trigger block will trigger the trigger plate to trigger the starter, thereby allowing the power supply compartment to supply power to the horn. When the horn receives power, it will emit an alarm sound. Step 3: When placing the storage hard drive, the personnel open the cabinet door, place the hard drive into the placement platform, and use the fixing plate to secure the hard drive inside the platform so that it cannot be moved out. When manually fixing it, the downward pressure applied will press the fixing plate down onto the magnet. Therefore, the fixing plate with the hard drive on it will be firmly fixed to the magnet and cannot be lifted. The fixing plate without the hard drive will be continuously lifted by the vertical spring. Even after being pressed down, the vertical spring will spring the fixing plate back. Therefore, the fixing plate with the hard drive is inside the external frame box, while the fixing plate without the hard drive is much higher than the external frame box. This is very obvious and can be easily seen by personnel.

[0015] Compared with the prior art, the present invention has at least the following beneficial effects: In the above solution, the ground current detection alarm module can immediately trigger an alarm when a weak current appears on the ground, thereby alerting the on-duty personnel to the presence of a weak current on the ground equipment room and enabling timely handling. This can reduce the possibility of the ground current increasing from a small value, thereby reducing the possibility of the device being damaged by a strong current, extending the service life of the device, and also reducing the possibility of the hard drive inside the device being damaged by the ground current, thus ensuring the security of the stored data.

[0016] By setting up an empty space exposure module, the module can automatically pop out empty spaces when a hard drive is manually placed into the device, eliminating the need for manual searching for empty spaces. This not only saves time for manual hard drive placement and improves hard drive storage efficiency, but also enhances the human-machine interface of the device.

[0017] In summary, this invention has the advantages of being able to detect ground current and issue timely alarms, reducing the possibility of the device being damaged by ground current and extending its service life, reducing the possibility of hard drive being damaged by ground current and protecting the security of stored data, and being able to actively pop up empty slots without requiring manual effort and time to search, thereby improving hard drive storage efficiency and enhancing human-machine interaction. Attached Figure Description

[0018] Figure 1 A schematic diagram of a multi-port storage collaborative management device and system structure for ground leakage current early warning engineering consulting; Figure 2 for Figure 1 A schematic diagram of the exploded structure; Figure 3 for Figure 1 A schematic diagram of the cabinet assembly; Figure 4 for Figure 3 Enlarged schematic diagram of a local part of the structure; Figure 5 for Figure 2 A schematic diagram of the ground current detection alarm module; Figure 6 for Figure 5 A schematic diagram of the frame assembly; Figure 7 for Figure 5 Schematic diagram of the upper reduction gear assembly; Figure 8 for Figure 5 Schematic diagram of the middle-level reduction gear assembly; Figure 9 for Figure 5 Schematic diagram of the lower-level reduction gear assembly; Figure 10 for Figure 5 A schematic diagram of the sliding assembly; Figure 11 for Figure 5 A schematic diagram of the conductive assembly; Figure 12 for Figure 5 Schematic diagram of the alarm assembly; Figure 13 for Figure 2 A schematic diagram of the empty space exposed module; Figure 14 for Figure 13 A schematic diagram of the second form; Figure 15 for Figure 13 Schematic diagram of the external frame assembly; Figure 16 for Figure 13 Schematic diagram of the placement assembly.

[0019] [Figure Labels] 1. Cabinet; 2. Counterweight; 3. Ground current detection alarm module; 301. Frame; 302. Short-distance vertical base; 303. First torsion spring; 304. Irregularly shaped plate; 305. Suction cup; 306. Second torsion spring; 307. Baffle; 308. Third torsion spring; 309. Short plate; 310. Long strip plate; 311. Net; 312. Fixed pulley; 313. Rope; 314. First hanging ring; 315. Counterweight block; 316. Second hanging ring; 317. Trigger block; 318. 319. Trigger plate; 320. Third hanging ring; 321. Aramid conductive blended rope; 322. Metal knob; 323. Conductive rod; 324. Starter; 325. Horn; 326. Power supply compartment; 327. Battery; 328. Sealing plate; 4. First plate; 5. Second plate; 6. Third plate; 7. Support plate; 8. Empty space exposed module; 801. External frame box; 802. Vertical spring; 803. Magnet; 804. Placement platform; 805. Fixing plate; 9. Hinge; 10. Cabinet door; 11. Handle.

[0020] As shown in the figure, specific structures and devices are marked in the figure to clearly illustrate the structure of the embodiments of the present invention. However, this is only for illustrative purposes and is not intended to limit the present invention to this specific structure, device and environment. Those skilled in the art can adjust or modify these devices and environments according to specific needs. Detailed Implementation

[0021] The following is a detailed description of the multi-port storage collaborative management device and system for ground leakage current early warning engineering consultation provided by the present invention, with reference to the accompanying drawings and specific embodiments. It should also be noted that, to make the embodiments more detailed, the following embodiments are the best and preferred embodiments, and those skilled in the art can use other alternative methods to implement some well-known technologies; moreover, the accompanying drawings are only for more specific description of the embodiments and are not intended to specifically limit the present invention.

[0022] It should be noted that the use of terms such as "an embodiment," "an embodiment," "an exemplary embodiment," and "some embodiments" in the specification indicates that the described embodiment may include a specific feature, structure, or characteristic, but not every embodiment necessarily includes that specific feature, structure, or characteristic. Furthermore, when a specific feature, structure, or characteristic is described in connection with an embodiment, implementing such a feature, structure, or characteristic in conjunction with other embodiments (whether explicitly described or not) should be within the knowledge of those skilled in the art.

[0023] Generally, terms can be understood at least partly from their use in context. For example, depending at least partly on the context, the term "one or more" as used herein can be used to describe any feature, structure, or characteristic in a singular sense, or a combination of features, structures, or characteristics in a plural sense. Additionally, the term "based on" can be understood not necessarily to convey an exclusive set of factors, but rather, alternatively, depending at least partly on the context, to allow for the presence of other factors that are not necessarily explicitly described.

[0024] It is understood that the meanings of “on”, “above”, and “above” in this invention should be interpreted in the broadest manner, such that “on” means not only “directly on” something, but also includes the meaning of being “on” something with an intervening feature or layer, and that “above” or “above” means not only “on” something, but also includes the meaning of being “on” something without an intervening feature or layer.

[0025] Furthermore, spatially related terms such as “below,” “under,” “lower,” “above,” and “upper” are used herein for convenience to describe the relationship of one element or feature to one or more other elements or features, as illustrated in the accompanying drawings. Spatially related terms are intended to cover different orientations in the use or operation of the device other than those depicted in the accompanying drawings. The device may be oriented in other ways, and the spatially related descriptive terms used herein can be interpreted similarly.

[0026] like Figures 1 to 4 As shown, the embodiments of the present invention provide a multi-port storage collaborative management device and system for ground leakage early warning engineering consultation, including a cabinet 1. The side of the cabinet 1 is provided with a counterweight 2 and a ground current detection alarm module 3 from left to right. The inner wall of the cabinet 1 is fixedly connected with a first plate 4, a second plate 5 and a third plate 6 from front to back. The bottom of the first plate 4, the second plate 5 and the third plate 6 are all fixedly connected with a support plate 7. The top of the support plate 7 is provided with a space exposure module 8. The front of the cabinet 1 is provided with a hinge 9. The cabinet 1 is installed with a cabinet door 10 through the hinge 9. The front of the cabinet door 10 is fixedly connected with a handle 11.

[0027] The counterweight 2 and the ground current detection alarm module 3 are welded to the side of the cabinet 1. The first plate 4, the second plate 5 and the third plate 6 are welded to the inner wall of the cabinet 1 in front to back. The support plate 7 is welded to the bottom of the first plate 4, the second plate 5 and the third plate 6. The empty space exposure module 8 is installed on the top of the support plate 7. The hinge 9 is installed between the cabinet 1 and the cabinet door 10. The handle 11 is welded to the front of the cabinet door 10.

[0028] The counterweight 2 is responsible for symmetrically counterweighting the side of the cabinet 1 and the ground current detection alarm module 3 opposite it. The first plate 4, the second plate 5 and the third plate 6 are to limit the left and right movement of the empty space exposure module 8. The support plate 7 is to support the empty space exposure module 8. When the personnel pull the handle 11, the cabinet door 10 is opened and closed by the hinge 9. The cabinet 1 is the outer frame of the entire module. The ground current detection alarm module 3 will immediately trigger an alarm when a weak current appears on the ground, thereby prompting the on-duty personnel to deal with the weak current on the ground computer room floor in a timely manner. The empty space exposure module 8 can automatically pop out the empty space when the hard drive is manually placed into the device, without the need for the personnel to spend a lot of time searching for an empty space.

[0029] like Figures 5 to 12As shown, in this embodiment, the ground current detection alarm module 3 includes a frame 301. A short-pitch vertical base 302 is fixedly connected to the top of the frame 301. A circular hole is opened on the front of the short-pitch vertical base 302. A first square groove, a second square groove and a third square groove are opened sequentially from top to bottom on one side of the frame 301. A first spring hole is opened on the inner wall of the first square groove. A first torsion spring 303 is provided inside the first spring hole.

[0030] One end of the first torsion spring 303 is fixedly connected to the irregular plate 304. The bottom of the irregular plate 304 is provided with a suction cup 305. The inner wall of the second square groove is provided with a second spring hole. The second torsion spring 306 is provided inside the second spring hole. One end of the second torsion spring 306 is fixedly connected to a baffle 307. The inner wall of the third square groove is provided with a third spring hole. The third torsion spring 308 is provided inside the third spring hole.

[0031] One end of the third torsion spring 308 is fixedly connected to a short plate 309, and one side of the short plate 309 is fixedly connected to a long strip plate 310. The inner wall of the long strip plate 310 is provided with a net 311, and the inside of the circular hole is provided with a fixed pulley 312. The surface of the fixed pulley 312 is provided with a rope 313, and one end of the rope 313 is provided with a first hanging ring 314.

[0032] A counterweight 315 is fixedly connected to the bottom of the first hanging ring 314, a second hanging ring 316 is fixedly connected to the other end of the rope 313, a trigger block 317 is fixedly connected to the bottom of the second hanging ring 316, a trigger plate 318 is fixedly connected to one side of the trigger block 317, and a third hanging ring 319 is fixedly connected to the bottom of the trigger block 317.

[0033] The surface of the third hanging ring 319 is provided with an aramid conductive blended rope 320. One end of the aramid conductive blended rope 320 is provided with a metal knob 321. One end of the metal knob 321 is provided with a small threaded hole. The internal thread of the small threaded hole is connected to a conductive rod 322.

[0034] The frame 301 has a large threaded hole on its side, which is compatible with the metal knob 321. The trigger plate 318 has a starter 323 on its top, and a horn 324 is provided on one side of the starter 323.

[0035] The starter 323 has a power supply compartment 325 on its top, a battery 326 inside the power supply compartment 325, a sealing plate 327 on the front of the power supply compartment 325, the power supply compartment 325 is connected to the sealing plate 327 by a sealing plate bolt thread, and the frame 301 is connected to the power supply compartment 325 by a power supply compartment bolt thread.

[0036] The frame 301 is welded to the side of the cabinet 1, the short vertical base 302 is welded to the top of the inner wall of the frame 301, the first torsion spring 303 is welded between the first spring hole of the first square groove and the irregular plate 304, the suction cup 305 is integrally connected with the irregular plate 304, the second torsion spring 306 is welded between the second spring hole of the second square groove and the baffle 307, the third torsion spring 308 is welded between the third spring hole of the third square groove and the short plate 309, the long strip 310 is welded to the side of the short plate 309, and the net 311 is integrally connected with the long strip 310. The fixed pulley 312 is installed into the circular hole of the short-pitch vertical base 302. The rope 313 is looped onto the surface of the fixed pulley 312. One end of the rope 313 is tied to the first hanging ring 314, which is welded to the counterweight 315. The other end of the rope 313 is tied to the second hanging ring 316, which is welded to the trigger block 317. The trigger plate 318 is welded to the side of the trigger block 317. The third hanging ring 319 is welded to the bottom of the trigger block 317. The aramid conductive blended rope 320 is tied between the third hanging ring 319 and the metal knob 321. The metal knob 321 is screwed into the large threaded hole of the frame 301, while the conductive rod 322 is screwed into the small threaded hole of the metal knob 321. The power supply compartment 325 is fixed to the top of the inner wall of the frame 301 by the power supply compartment bolts. The battery 326 is placed in the power supply compartment 325. The sealing plate 327 is fixed to the power supply compartment 325 by the sealing plate bolts. The starter 323 is integrated with the power supply compartment 325. The horn 324 is integrated with the starter 323.

[0037] The conductive rod 322 is dragged on the floor of the machine room. If there is current on the ground, the conductive rod 322 can conduct the current to the metal knob 321 and ultimately to the aramid conductive blended rope 320. (It should be noted that the length and contact with the ground of the conductive rod 322 can be flexibly adjusted because the material of the conductive rod 322 is rubber-silicone, which inherently possesses flexibility and conductivity. After the device is placed on the ground, the conductive rod 322 can be flexibly adjusted to ensure it fully contacts the ground.) The aramid conductive blended rope 320 can be slowly broken by electrolytic corrosion upon contact with current. (It should be noted that the voltage of this weak current needs to exceed 36V, and the trigger current threshold needs to be between 0.5mA and 5mA.) Under the aforementioned voltage and current parameters, a micro-arc acts on a 0.05mm micro-conductive fiber. After 3 to 8 seconds of continuous "micro-arc ablation and melting," the metal micro-conductive fiber on one side will be completely melted. The main insulating skeleton of the aramid conductive blended rope 320 uses aramid fiber accounting for approximately 85%-90% with a diameter of 0.02-0.03mm, providing extremely high tensile strength to withstand the tension of the counterweight 315. The single-sided bundled conductive layer is located on the side of the rope that is close to the metal knob 321. It is composited with an extremely fine metal-based micro-conductive fiber accounting for approximately 10%-15% through a weaving process. The preferred material for this micro-conductive fiber is ultra-fine nickel-chromium alloy wire or silver-plated copper wire with a diameter of 0.05mm-0.08mm. Nickel-chromium alloy has high resistivity and a relatively low melting point, making it very easy to melt under a micro-arc. Silver-plated copper wire has excellent conductivity and easily accumulates charge at the tip. The outer diameter of the finished blended rope is controlled between 2.5mm and 3mm.Within 5mm, due to the special limitations of the material, model, current, and voltage mentioned above, the aramid conductive blended rope 320 can only be electrolytically broken when it comes into contact with current. If the aramid conductive blended rope 320 breaks, it cannot restrain the trigger block 317. The trigger block 317 is not as heavy as the counterweight 315 (it should be noted that the counterweight 315 is made of iron, and its main function is to fall when the trigger block 317 is unrestrained, pulling the rope 313 and thus causing the trigger block 317 to move upwards). Therefore, the counterweight 315 falls synchronously, and the trigger block 317 rises. During the process, the trigger block 317 is slowed down by the side deceleration assembly consisting of the net 311, baffle 307, and suction cup 305 to prevent the trigger block 317 from rising too quickly and damaging the starter 323. The first torsion spring 303, the second torsion spring 306, and the third torsion spring 308 are responsible for restoring their respective irregular plates 304, baffles 307, and short plates 309 to their original positions after the trigger block 317 passes. The rope 313 is used to synchronize the movement of the counterweight 315 and the trigger block 317. The rise of the trigger block 317 will cause the trigger plate 318 to trigger the starter 323, thereby activating the power supply compartment 325 to power the horn 3. When powered by 24, the speaker 324 will emit an alarm sound upon receiving power. (It should be noted that this module does not require a reset module. Although the aramid conductive blended rope 320 is consumed once, upon hearing the alarm, the on-duty personnel should not immediately enter the server room to investigate, but rather immediately cut off all power supplies around the server room to further limit the current on the floor inside the server room and prevent the current from continuing to worsen and causing further damage to the cabinet. This is a normal emergency response procedure. Under no circumstances should the on-duty personnel enter the server room to replace the aramid conductive blended rope 320 first. The entire module should be restored to normal before addressing the floor current.) After the above treatment, there is no continuous current on the ground. At this point, the aramid conductive blended rope 320 is replaced, allowing the entire module to resume operation. Then, the cause of the current on the ground is investigated and resolved. Furthermore, the aramid conductive blended rope 320 is relatively inexpensive. Before the ground current is addressed, even with a reset structure, the module would still frequently reset and operate under the influence of the current. In other words, a reset structure is useless when there is unresolved ground current. Therefore, this module does not have a reset structure; the use of the aramid conductive blended rope 320 is more in line with the design and practical application.

[0038] By using the ground current detection alarm module 3, the system can immediately trigger an alarm when a weak current appears on the ground, thereby alerting the on-duty personnel to the presence of a weak current on the ground equipment room floor and enabling timely handling. This can reduce the possibility of the ground current increasing from a small value to a large value, thereby reducing the possibility of the device being damaged by a strong current, extending the device's service life, and also reducing the possibility of the hard drive inside the device being damaged by the ground current, ensuring the security of the stored data.

[0039] like Figures 13 to 16 As shown, in this embodiment, the empty space exposure module 8 includes an external frame box 801. A vertical spring 802 and a magnet 803 are fixedly connected to the bottom of the external frame box 801 from left to right. A placement platform 804 is fixedly connected to the top of the vertical spring 802. A fixing plate 805 is provided on the top of the placement platform 804. The fixing plate 805 is threadedly connected to the placement platform 804 by fixing plate bolts.

[0040] The external frame box 801 is fixed to the top of the tray 7 by bolts, the vertical spring 802 is welded to the bottom of the external frame box 801, and the magnet 803 is first glued to the bottom of the external frame box 801. The placement platform 804 is welded to the top of the vertical spring 802, and the fixing plate 805 is fixed to the top of the placement platform 804 by fixing plate bolts.

[0041] When placing a storage hard drive, the operator opens cabinet door 10, places the hard drive into placement platform 804, and secures it in place using fixing plate 805, preventing it from being moved. During manual securing, the applied downward pressure pushes fixing plate 805 down onto magnet 803. Therefore, with the hard drive inside, the increased weight of fixing plate 805 exceeds the weight supported by vertical spring 802, firmly fixing it to magnet 803 and preventing it from being lifted. Without the hard drive, fixing plate 805 is continuously lifted by vertical spring 802, and even after being pressed down, vertical spring 802 will spring the fixing plate 805 back up. Thus, the hard drive... The hard drive mounting plate 805 is inside the external frame box 801, while the mounting plate 805 without the hard drive is much higher than the external frame box 801. This is very conspicuous and can be easily identified by personnel. (It should be noted that when a person manually places a hard drive and secures it with bolts, the downward pressure applied usually fluctuates wildly between 10N and 30N. Since the final locking of this module relies entirely on the "absolute weight of the hard drive itself (about 9N)" rather than "manual downward pressure", the manual pressing pressure drops to zero instantly after the locking bolts are removed. Therefore, no matter whether the operator presses lightly or slams it down, as long as the hard drive is placed in, the final mechanical balance is unique and certain, completely eliminating human-machine operation errors.)

[0042] By setting up the empty space exposure module 8, the module can automatically pop out the empty space when a hard drive is manually placed into the device, eliminating the need for manual searching for empty spaces. This not only saves time for manual placement of hard drives and improves the efficiency of hard drive storage, but also enhances the human-machine interface of the device.

[0043] When using a multi-port storage collaborative management system for ground leakage early warning engineering consulting, the following steps are included: Step 1: Counterweight 2 is responsible for symmetrically counterweighting the side of cabinet 1 and the ground current detection alarm module 3 opposite it. The first plate 4, the second plate 5 and the third plate 6 are to limit the left and right movement of the empty space exposure module 8. The support plate 7 is to support the empty space exposure module 8. When the person pulls the handle 11, the cabinet door 10 is opened and closed by the hinge 9. Cabinet 1 is the outer frame of the entire module. The ground current detection alarm module 3 will immediately trigger an alarm when a weak current appears on the ground, so as to remind the on-duty personnel that a weak current appears on the ground computer room floor and deal with it in time. The empty space exposure module 8 can automatically pop out the empty space when the hard drive is placed into the device, without the need for the person to spend a lot of time searching for the empty space. Step 2: The conductive rod 322 is dragged on the floor of the machine room. If there is current on the ground, the conductive rod 322 can conduct the current to the metal knob 321 and finally to the aramid conductive blended rope 320. After contacting the current, the aramid conductive blended rope 320 can be slowly electro-eroded and broken. When the aramid conductive blended rope 320 breaks, it can no longer restrain the trigger block 317. Since the trigger block 317 is not as heavy as the counterweight 315, the counterweight 315 falls synchronously, and the trigger block 317 rises upward. During the rising process, the trigger block 317 is supported by the net 311, the baffle 307, and the suction cup 305. The side deceleration assembly decelerates the circuit to prevent the trigger block 317 from rising too fast and damaging the starter 323. The first torsion spring 303, the second torsion spring 306 and the third torsion spring 308 are responsible for restoring their respective irregular plates 304, baffles 307 and short plates 309 to their original positions after the trigger block 317 passes. The rope 313 is used to make the counterweight block 315 and the trigger block 317 move synchronously. When the trigger block 317 rises, the trigger plate 318 will trigger the starter 323, thereby allowing the power supply compartment 325 to supply power to the horn 324. When the horn 324 receives power, it will emit an alarm sound. Step 3: When placing the storage hard drive, the operator opens cabinet door 10, places the hard drive into placement platform 804, and uses fixing plate 805 to secure the hard drive inside placement platform 804, preventing it from being moved out. During manual fixing, the applied downward pressure can press the fixing plate 805 down onto magnet 803. Therefore, with the hard drive inside, the weight of the fixing plate 805 increases, exceeding the weight supported by vertical spring 802. Thus, the fixing plate 805 with the hard drive inside will be firmly fixed to magnet 803 and cannot be lifted. The fixing plate 805 without the hard drive will be continuously lifted by vertical spring 802. Even after being pressed down, vertical spring 802 will spring the fixing plate 805 back. Therefore, the fixing plate 805 with the hard drive inside is inside the external frame box 801, while the fixing plate 805 without the hard drive is much higher than the external frame box 801. This is very obvious and can be easily seen by the operator.

[0044] The technical solution provided by this invention: The counterweight 2 is responsible for symmetrically counterweighting the side of the cabinet 1 and the opposite ground current detection alarm module 3. The first plate 4, the second plate 5, and the third plate 6 are for restricting the left and right movement of the empty space exposure module 8. The support plate 7 is for supporting the empty space exposure module 8. Personnel pull the handle 11, causing the cabinet door 10 to open and close via the hinge 9. The cabinet 1 forms the outer frame of the entire module. The ground current detection alarm module 3 immediately triggers an alarm when a weak current appears on the ground, thus alerting the on-duty personnel to address the weak current in the ground computer room. The empty space exposure module 8 can automatically pop out of its empty space when a hard drive is manually placed into the device, without requiring manual intervention. The workers spent a lot of time finding an empty space. The conductive rod 322 was dragged on the floor of the machine room. If there was current on the ground, the conductive rod 322 could conduct the current to the metal knob 321 and finally to the aramid conductive blended rope 320. After the aramid conductive blended rope 320 came into contact with the current, it could be slowly electro-eroded and broken. When the aramid conductive blended rope 320 broke, it could not restrain the trigger block 317. The trigger block 317 was not as heavy as the counterweight 315, so the counterweight 315 fell down in sync, and the trigger block 317 rose up. During the rising process of the trigger block 317, it was slowed down by the side deceleration assembly composed of the net 311, the baffle 307 and the suction cup 305 to prevent the trigger block 317 from rising. Excessive lifting speed can damage the starter 323. The first torsion spring 303, the second torsion spring 306, and the third torsion spring 308 are responsible for restoring their respective irregular plates 304, baffles 307, and short plates 309 to their original positions after the trigger block 317 passes. The rope 313 is used to synchronize the movement of the counterweight 315 and the trigger block 317. The lifting of the trigger block 317 will cause the trigger plate 318 to trigger the starter 323, thereby allowing the power supply compartment 325 to supply power to the speaker 324. When the speaker 324 receives power, it will emit an alarm sound. When placing the storage hard drive, the personnel open the cabinet door 10, place the hard drive into the placement platform 804, and use the fixing plate 805 to fix the hard drive to the placement platform 804. Within 4, it cannot be moved out. When manually fixed, the applied downward pressure can press the fixing plate 805 down onto the magnet 803. Therefore, the fixing plate 805 contains a hard drive, and the increased gravity makes the overall weight exceed the weight supported by the vertical spring 802. Thus, the fixing plate 805 with the hard drive will be firmly fixed to the magnet 803 and cannot be lifted. The fixing plate 805 without the hard drive will be directly and continuously lifted by the vertical spring 802. Even after being pressed down, the vertical spring 802 will spring the fixing plate 805 back. Therefore, the fixing plate 805 with the hard drive stays inside the external frame box 801, while the fixing plate 805 without the hard drive is much higher than the external frame box 801. This is very conspicuous and can be easily seen by personnel.

[0045] This invention encompasses any substitutions, modifications, equivalent methods, and solutions made within the spirit and scope of this invention. To provide the public with a thorough understanding of this invention, specific details are described in detail in the following preferred embodiments; however, those skilled in the art will fully understand the invention even without these details. Furthermore, to avoid unnecessary misunderstanding of the essence of this invention, well-known methods, processes, procedures, components, and circuits are not described in detail.

[0046] The above are merely preferred embodiments of the present invention. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principle of the present invention, and these improvements and modifications should also be considered within the scope of protection of the present invention.

Claims

1. A multi-port storage and collaborative management device for ground leakage current early warning engineering consulting, characterized in that, The cabinet includes a cabinet body (1). From left to right, the side of the cabinet body (1) is provided with a counterweight (2) and a ground current detection alarm module (3). From front to back, the inner wall of the cabinet body (1) is fixedly connected with a first plate (4), a second plate (5) and a third plate (6). The bottom of the first plate (4), the second plate (5) and the third plate (6) are all fixedly connected with a support plate (7). The top of the support plate (7) is provided with a space exposure module (8). The front of the cabinet body (1) is provided with a hinge (9). The cabinet body (1) is equipped with a cabinet door (10) through the hinge (9). The front of the cabinet door (10) is fixedly connected with a handle (11).

2. The multi-port storage and collaborative management device for ground leakage current early warning engineering consulting as described in claim 1, characterized in that, The ground current detection alarm module (3) includes a frame (301), and a short-pitch vertical base (302) is fixedly connected to the top of the frame (301). A circular hole is opened on the front of the short-pitch vertical base (302). A first square groove, a second square groove and a third square groove are opened sequentially from top to bottom on one side of the frame (301). A first spring hole is opened on the inner wall of the first square groove. A first torsion spring (303) is provided inside the first spring hole.

3. The multi-port storage and collaborative management device for ground leakage current early warning engineering consulting as described in claim 2, characterized in that, One end of the first torsion spring (303) is fixedly connected to a shaped plate (304), and a suction cup (305) is provided at the bottom of the shaped plate (304). A second spring hole is provided on the inner wall of the second square groove, and a second torsion spring (306) is provided inside the second spring hole. A baffle (307) is fixedly connected to one end of the second torsion spring (306). A third spring hole is provided on the inner wall of the third square groove, and a third torsion spring (308) is provided inside the third spring hole.

4. The multi-port storage and collaborative management device for ground leakage current early warning engineering consulting as described in claim 3, characterized in that, One end of the third torsion spring (308) is fixedly connected to a short plate (309), and one side of the short plate (309) is fixedly connected to a long strip plate (310). The inner wall of the long strip plate (310) is provided with a net (311), and the inside of the circular hole is provided with a fixed pulley (312). The surface of the fixed pulley (312) is provided with a rope (313), and one end of the rope (313) is provided with a first hanging ring (314).

5. The multi-port storage and collaborative management device for ground leakage current early warning engineering consulting as described in claim 4, characterized in that, A counterweight (315) is fixedly connected to the bottom of the first hanging ring (314), and a second hanging ring (316) is fixedly connected to the other end of the rope (313). A trigger block (317) is fixedly connected to the bottom of the second hanging ring (316), a trigger plate (318) is fixedly connected to one side of the trigger block (317), and a third hanging ring (319) is fixedly connected to the bottom of the trigger block (317).

6. The multi-port storage and collaborative management device for ground leakage current early warning engineering consulting as described in claim 5, characterized in that, The surface of the third hanging ring (319) is provided with an aramid conductive blended rope (320), one end of the aramid conductive blended rope (320) is provided with a metal knob (321), one end of the metal knob (321) is provided with a small threaded hole, and a conductive rod (322) is connected to the inside of the small threaded hole.

7. The multi-port storage and collaborative management device for ground leakage current early warning engineering consulting as described in claim 6, characterized in that, The frame (301) has a large threaded hole on its side, and the large threaded hole and the metal knob (321) are adapted to each other. The trigger plate (318) has an actuator (323) on its top, and a horn (324) is provided on one side of the actuator (323).

8. The multi-port storage and collaborative management device for ground leakage current early warning engineering consulting as described in claim 7, characterized in that, The starter (323) has a power supply compartment (325) on top, and a battery (326) is provided inside the power supply compartment (325). A sealing plate (327) is provided on the front of the power supply compartment (325). The sealing plate (327) is threadedly connected to the power supply compartment (325) by sealing plate bolts. The power supply compartment (325) is threadedly connected to the frame (301) by power supply compartment bolts.

9. The multi-port storage and collaborative management device for ground leakage current early warning engineering consulting as described in claim 1, characterized in that, The empty space exposure module (8) includes an external frame box (801). A vertical spring (802) and a magnet (803) are fixedly connected to the bottom of the external frame box (801) from left to right. A placement platform (804) is fixedly connected to the top of the vertical spring (802). A fixing plate (805) is provided on the top of the placement platform (804). The placement platform (804) is threadedly connected to the fixing plate (805) by fixing plate bolts.

10. The system of the engineering consulting multi-port storage collaborative management device for ground leakage early warning according to claims 1-9, characterized in that, Includes the following steps: Step 1: The counterweight (2) is responsible for symmetrically counterweighting the side of the cabinet (1) and the ground current detection alarm module (3) opposite it. The first plate (4), the second plate (5) and the third plate (6) are to restrict the left and right movement of the empty space exposure module (8). The support plate (7) is to support the empty space exposure module (8). When the personnel pull the handle (11), the cabinet door (10) is opened and closed through the hinge (9). The cabinet (1) is the outer frame of the entire module. The ground current detection alarm module (3) will immediately trigger the alarm when a weak current appears on the ground, thereby prompting the on-duty personnel to deal with the weak current on the ground computer room floor in a timely manner. The empty space exposure module (8) can automatically pop out the empty space when the hard drive is manually placed into the device, without the need for the personnel to spend a lot of time searching for the empty space. Step 2: The conductive rod (322) is dragged on the floor of the machine room. If there is current on the ground, the conductive rod (322) can conduct the current to the metal knob (321) and finally to the aramid conductive blended rope (320). After the aramid conductive blended rope (320) comes into contact with the current, it can be slowly electro-eroded and broken. When the aramid conductive blended rope (320) breaks, it can no longer restrain the trigger block (317). The trigger block (317) is not as heavy as the counterweight (315), so the counterweight (315) falls down synchronously, and the trigger block (317) rises. During the process of the trigger block (317) rising, it will be supported by the side of the net (311), the baffle (307) and the suction cup (305). The surface deceleration assembly decelerates to prevent the trigger block (317) from rising too fast and damaging the starter (323). The first torsion spring (303), the second torsion spring (306), and the third torsion spring (308) are responsible for restoring their respective irregular plates (304), baffles (307), and short plates (309) to their original positions after the trigger block (317) passes over. The rope (313) is used to make the counterweight (315) and the trigger block (317) move synchronously. The rise of the trigger block (317) will cause the trigger plate (318) to trigger the starter (323), thereby allowing the power supply compartment (325) to supply power to the horn (324). When the horn (324) receives power, it will emit an alarm sound. Step 3: When placing the storage hard drive, the operator opens the cabinet door (10), places the hard drive into the placement platform (804), and uses the fixing plate (805) to fix the hard drive in the placement platform (804), making it impossible to move out. When manually fixing it, the applied downward pressure can press the fixing plate (805) down onto the magnet (803). Therefore, the fixing plate (805) contains the hard drive, and the weight increases, exceeding the weight supported by the vertical spring (802). Therefore, the fixing plate (805) containing the hard drive ( The plate (805) will be firmly fixed to the magnet (803) and cannot be lifted. The plate (805) without a hard drive will be continuously lifted by the vertical spring (802). Even after being pressed down, the vertical spring (802) will spring the plate (805) back. Therefore, the plate (805) with a hard drive stays inside the external frame box (801), while the plate (805) without a hard drive is much higher than the external frame box (801). This is very obvious and can be easily seen by personnel.