Terminal system of large model analysis system
By combining a variable frequency cooling fan and a flow-guiding cooling cylinder, along with dry powder fire extinguishing and automatic power-off components, the uneven heat dissipation and fire handling issues of the large model analysis system are solved, achieving efficient heat dissipation and equipment safety assurance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-11
- Publication Date
- 2026-03-31
AI Technical Summary
Uneven heat dissipation in existing large model analysis systems leads to equipment frequency reduction and failure, and in the event of a fire, it is impossible to extinguish the fire and cut off the power in time, which poses a risk of equipment damage and data loss.
It adopts a combination design of variable frequency cooling fan, airflow cooling cylinder, heat dissipation pipe, fire extinguishing component and power cut-off component. It achieves efficient heat dissipation, timely fire extinguishing and power cut-off in the core area through precise heat dissipation by negative pressure airflow, dry powder fire extinguishing and automatic power cut-off.
It improves heat dissipation efficiency, avoids equipment frequency reduction and failure, extinguishes fires in a timely manner, reduces equipment maintenance costs and the risk of data loss, and ensures equipment safety and continuous operation.
Smart Images

Figure CN121772176A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of large model analysis system technology, and in particular to a terminal system for a large model analysis system. Background Technology
[0002] As a core technology carrier in the field of artificial intelligence, the large-scale model analysis system integrates large-scale parameter training, efficient inference operations, and complex data processing capabilities, serving as a key hub connecting algorithm models with practical applications.
[0003] The portable data model analysis device with voice broadcast function disclosed in patent publication number "CN218213979U" can facilitate heat dissipation of the internal heat dissipation mechanism through ventilation holes symmetrically distributed along the outer walls of both sides of the chassis, so that the overall device can maintain good heat dissipation in high temperature environment, thereby improving service life and performance.
[0004] However, in actual use, its cooling fan can only maintain a fixed direction and wind speed, and the airflow coverage is limited to the area corresponding to the ventilation hole. It cannot accurately and directionally dissipate heat to the local high-heat areas of the core computing module inside the device. Over time, this can easily lead to uneven heat dissipation, causing the device to reduce its frequency and malfunction.
[0005] Accordingly, this application proposes a terminal system for a large model analysis system. Summary of the Invention
[0006] The purpose of this invention is to address the shortcomings of existing technologies by proposing a terminal system for a large model analysis system.
[0007] To achieve the above objectives, the present invention adopts the following technical solution: A terminal system for a large model analysis system includes an intelligent terminal cabinet, two heat dissipation components, two fire extinguishing components, a power-off component, and a transmission component. The intelligent terminal cabinet is fixedly installed with a training all-in-one machine and an inference all-in-one machine. Several heat dissipation vents are provided on both sides of the intelligent terminal cabinet. Module boards are fixedly connected to both sides of the intelligent terminal cabinet. Mounting base plates are fixedly connected to the module boards. A power disconnect frame is fixedly connected to the outside of the intelligent terminal cabinet. A power supply box is fixedly installed on the intelligent terminal cabinet. Two power cords are electrically connected to the power supply box. One end of each power cord is electrically connected to the training all-in-one machine. Several wire clamps are fixedly installed on the intelligent terminal cabinet to hold the power cords. The heat dissipation component is used to cool down the devices inside the smart terminal cabinet. The fire extinguishing assembly is used to extinguish fires in the event of a short-circuit fire; The power-off component is used to cut off the power supply in a timely manner in the event of a fire.
[0008] Preferably, the heat dissipation assembly includes a variable frequency cooling fan, a flow-guiding cooling cylinder, a plurality of heat dissipation pipes, a gear, and a half gear; the variable frequency cooling fan is fixedly mounted on the module board, the flow-guiding cooling cylinder is rotatably connected to the module board, the plurality of heat dissipation pipes are connected to the flow-guiding cooling cylinder, the gear is rotatably connected to the mounting base plate, and the half gear is rotatably connected to the mounting base plate.
[0009] Preferably, one end of the heat dissipation cylinder is connected to the module plate, the heat dissipation pipe is located inside the heat dissipation port, a torsion spring is provided at the connection between one end of the heat dissipation cylinder and the module plate, the gear is rotatably connected to the module plate, the gear is fixedly connected to the heat dissipation cylinder, and the half gear is meshed with the gear.
[0010] Preferably, the fire extinguishing assembly includes a telescopic rod, a spike, a dry powder cylinder, and a polypropylene film. The dry powder cylinder is connected to the heat dissipation cylinder, the polypropylene film is disposed at the connection between the dry powder cylinder and the heat dissipation cylinder, the telescopic rod is fixedly installed inside the dry powder cylinder, and the spike is fixedly connected to the output end of the telescopic rod.
[0011] Preferably, the transmission assembly includes a helical rack, a first spring, three second springs, and an L-shaped plate. The first spring is fixedly connected to the mounting base plate, the helical rack is slidably connected to the mounting base plate, one end of each of the second springs is fixedly connected to the helical rack, and the other end is connected to the mounting base plate. The L-shaped plate is fixedly connected to the upper end of the helical rack.
[0012] Preferably, one end of the first spring is fixedly connected to the helical rack, the helical rack can slide laterally through the groove in the initial position, and the L-shaped plate can slide laterally on the mounting base plate.
[0013] Preferably, the power-off assembly includes a sleeve, a slider, a power-off knife, a sliding rod, and a third spring. The sleeve is fixedly mounted on the power-off frame, the slider is slidably connected to the sleeve, the power-off knife is fixedly connected to the slider, the sliding rod is fixedly connected below the slider, and one end of the third spring is fixedly connected to the slider and the other end is fixedly connected to the sleeve.
[0014] Preferably, the slide rod is slidably connected to the sleeve through the power-off frame, the slide rod is located inside the third spring, the L-shaped plate can slide on the slide rod, and the power line is located between the power-off knife and the slider.
[0015] Preferably, a first motor is fixedly installed on the smart terminal cabinet, a fan is rotatably connected to the inner wall above the smart terminal cabinet, the drive shaft of the first motor is fixedly connected to the fan, a fire alarm is fixedly installed on the smart terminal cabinet, and a fire monitoring sensor is fixedly installed on the inner wall of the smart terminal cabinet.
[0016] Preferably, the training unit and the reasoning unit are electrically connected by two data transmission wires, the half gear meshes with the helical rack, a second motor is fixedly mounted on the mounting base, and the transmission shaft of the second motor is fixedly connected to the half gear.
[0017] The present invention has the following beneficial effects: 1. Through the heat dissipation components, the variable frequency cooling fan generates negative pressure airflow. The airflow affects the area around the heat dissipation port through the heat dissipation guide tube. At the same time, the half gear rotates and meshes with the gear, driving the heat dissipation guide tube to rotate. The heat dissipation guide tube is reset by the torsion spring, causing the heat dissipation pipe to swing inside the heat dissipation port. The airflow generated by the variable frequency cooling fan can quickly remove the heat from the heat dissipation slot of the training all-in-one machine inside the smart terminal cabinet. The heat dissipation pipe increases the contact area with the training all-in-one machine by swinging, which not only ensures that the heat dissipation is targeted and precise, but also improves the heat dissipation efficiency and avoids the equipment from throttling or malfunctioning due to high temperature.
[0018] Second, through the fire extinguishing components, when the fire monitoring sensor detects a fire, it sends a signal to the control system. The control system first activates the fire alarm to alert staff to the fire. Then, it controls the telescopic rod to move the cone and puncture the polypropylene film, and causes the variable frequency cooling fan and the second motor to rotate in opposite directions, creating positive pressure inside the heat dissipation cylinder. At this time, the dry powder in the dry powder cylinder, under the action of pressure and positive pressure inside the heat dissipation cylinder, is sprayed into the intelligent terminal cabinet as the heat dissipation cylinder swings, promptly extinguishing the fire caused by the short circuit, preventing the fire from spreading, reducing equipment maintenance costs and the risk of data loss, and ensuring the equipment safety and continuous operation of the large model analysis system.
[0019] Third, through the power-off component, when a fire occurs, the second motor rotates in reverse, causing the half gear to make direct contact with the helical rack. This causes the helical rack to slide down intermittently under the action of the first spring. At this time, the L-shaped plate continuously drives the slider to slide along the sleeve, and the slider drives the power-off knife to move, thereby cutting off the power line and realizing power-off. This avoids continuous power supply, which would cause more serious circuit damage to the equipment, reduce equipment maintenance costs, and reduce the risk of data loss due to equipment failure. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of the terminal system of a large model analysis system proposed in this invention; Figure 2 This is a schematic diagram of the connection structure of components on one side of the terminal system of a large model analysis system proposed in this invention; Figure 3 This is an internal cross-sectional view of the dry powder cylinder and the flow-guiding heat dissipation cylinder of the terminal system of a large model analysis system proposed in this invention; Figure 4This is a schematic diagram of the connection structure of components on the terminal system mounting base plate of a large model analysis system proposed in this invention; Figure 5 This is a schematic diagram of the connection structure between the L-shaped board and the power-off component of the terminal system of a large model analysis system proposed in this invention. Figure 6 This is an internal cross-sectional view of the terminal system of a large model analysis system proposed in this invention.
[0021] In the diagram: 1. Intelligent terminal cabinet; 2. Heat dissipation vent; 3. Training all-in-one machine; 4. Reasoning all-in-one machine; 5. First motor; 6. Fire alarm device; 7. Module board; 8. Variable frequency cooling fan; 9. Cable clamp; 10. Power cord; 11. Second motor; 12. Airflow cooling cylinder; 13. Dry powder cylinder; 14. Mounting base plate; 15. Power supply box; 16. Power disconnect frame; 17. Sleeve; 18. Fire monitoring sensor; 19. Polypropylene film; 20. Telescopic rod; 21. Conical spike; 22. L-shaped plate; 23. Heat dissipation pipe; 24. Gear; 25. Half gear; 26. First spring; 27. Helical rack; 28. Second spring; 29. Third spring; 30. Slide rod; 31. Power disconnect knife; 32. Slider; 33. Fan; 34. Data transmission wire. Detailed Implementation
[0022] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0023] Example 1: Reference Figures 1 to 4 A terminal system for a large model analysis system includes an intelligent terminal cabinet 1, two heat dissipation components, two fire extinguishing components, a power-off component, and a transmission component. The intelligent terminal cabinet 1 houses a training all-in-one machine 3, which is the core computing power device of the large model analysis system. It is responsible for parameter training, model iteration, and complex data processing of the large model. The intelligent terminal cabinet 1 also houses an inference all-in-one machine 4, which receives the model trained by the training all-in-one machine 3, efficiently processes various inference requests and data parsing tasks, and ensures system response efficiency. Two data transmission lines 34 are electrically connected between the training all-in-one machine 3 and the inference all-in-one machine 4, providing a stable data transmission channel for both, enabling bidirectional transmission of training models, computational instructions, and analysis data, ensuring collaborative operation. Several heat dissipation vents 2 are located on both sides of the intelligent terminal cabinet 1. A module board 7 is connected, which is used to install and fix the variable frequency cooling fan 8 and the airflow cooling cylinder 12. A mounting base plate 14 is fixedly connected to the module board 7. A power supply box 15 is fixedly installed on the intelligent terminal cabinet 1. The power supply box 15 is the core of the power supply of the entire terminal system. It has a built-in power supply module and can stably output voltage and current adapted to the operation of the equipment. Two power lines 10 are electrically connected to the power supply box 15. The power lines 10 are the power transmission carriers. One end of the two power lines 10 is electrically connected to the training all-in-one machine 3, providing independent and stable power support for the training all-in-one machine 3. At the same time, it can indirectly provide auxiliary power supply to related components through the training all-in-one machine 3. Several wire clamps 9 are fixedly installed on the intelligent terminal cabinet 1. The wire clamps 9 hold the power lines 10 to maintain the stability of the power lines 10.
[0024] The heat dissipation component is used to cool down the devices inside the smart terminal cabinet 1. Fire suppression kits are used to extinguish fires in the event of a short-circuit fire. The power-off component is used to cut off the power supply in time in the event of a fire.
[0025] The heat dissipation assembly includes a variable frequency cooling fan 8, a flow-guiding heat dissipation cylinder 12, several heat dissipation pipes 23, a gear 24, and a half gear 25. The variable frequency cooling fan 8 is fixedly installed on the module plate 7 to generate negative or positive pressure airflow. The flow-guiding heat dissipation cylinder 12 is rotatably connected to the module plate 7 to conduct airflow and install heat dissipation pipes 23. Several heat dissipation pipes 23 are connected to the flow-guiding heat dissipation cylinder 12 to transport airflow and achieve heat dissipation. The gear 24 is rotatably connected to the mounting base plate 14 to drive the flow-guiding heat dissipation cylinder 12 to rotate. The half gear 25 is rotatably connected to the mounting base plate 14 to mesh with the gear 24 for transmission.
[0026] One end of the heat dissipation cylinder 12 is connected to the module plate 7 to facilitate airflow. The heat dissipation pipe 23 is located inside the heat dissipation port 2 for airflow in and out. A torsion spring is provided at the connection point between one end of the heat dissipation cylinder 12 and the module plate 7 to drive the heat dissipation cylinder 12 to reset. The gear 24 is rotatably connected to the module plate 7 and is fixedly connected to the heat dissipation cylinder 12. The rotation of the gear 24 can drive the heat dissipation cylinder 12 to rotate synchronously. The half gear 25 is meshed with the gear 24. The rotation of the half gear 25 can drive the gear 24 to rotate.
[0027] A first motor 5 is fixedly installed on the smart terminal cabinet 1 to drive the fan 33 to rotate. The fan 33 is rotatably connected to the upper inner wall of the smart terminal cabinet 1 to assist in air circulation and heat dissipation inside the smart terminal cabinet 1. The drive shaft of the first motor 5 is fixedly connected to the fan 33. The operation of the first motor 5 can drive the fan 33 to rotate.
[0028] A second motor 11 is fixedly mounted on the mounting base plate 14. The transmission shaft of the second motor 11 is fixedly connected to the half gear 25. When the second motor 11 is working, it can drive the half gear 25 to rotate.
[0029] In this embodiment, the variable frequency cooling fan 8 generates negative pressure airflow. The airflow affects the area around the heat dissipation port 2 through the heat dissipation tube 12. At the same time, the half gear 25 rotates and meshes with the gear 24, driving the heat dissipation tube 12 to rotate. The heat dissipation tube 12 is reset by the torsion spring, causing the heat dissipation pipe 23 to swing inside the heat dissipation port 2. The airflow generated by the variable frequency cooling fan 8 can quickly remove the heat from the heat dissipation slot of the training all-in-one machine 3 inside the smart terminal cabinet 1. The heat dissipation pipe 23 increases the contact range with the training all-in-one machine 3 by swinging, which not only ensures that the heat dissipation is targeted and precise, but also improves the heat dissipation efficiency and avoids the equipment from throttling or malfunctioning due to high temperature.
[0030] Example 2: Unlike Example 1, referring to Figure 1 , Figure 2 , Figure 3 and Figure 6 This embodiment also has the following further features: The fire extinguishing assembly includes a telescopic rod 20, a spike 21, a dry powder cylinder 13, and a polypropylene film 19. The dry powder cylinder 13 is connected to the heat dissipation cylinder 12 and is used to store fire extinguishing dry powder. In case of fire, it is sprayed into the intelligent terminal cabinet 1 through the heat dissipation cylinder 12 and the heat pipe 23. The polypropylene film 19 is located at the connection between the dry powder cylinder 13 and the heat dissipation cylinder 12. It is a sealed structure that can prevent the fire extinguishing dry powder in the dry powder cylinder 13 from leaking in non-fire conditions and ensure the drying effectiveness of the dry powder. The polypropylene film 19 is made of stretched polypropylene film, which has a certain strength and sealing performance. It can be quickly broken by the spike 21 to release the dry powder. The telescopic rod 20 is fixedly installed inside the dry powder cylinder 13 and is used to provide driving force to move the spike 21. The spike 21 is fixedly connected to the output end of the telescopic rod 20 and is used to puncture the polypropylene film 19 under the drive of the telescopic rod 20. A fire alarm 6 is fixedly installed on the intelligent terminal cabinet 1 to issue an alarm signal when a fire occurs. A fire monitoring sensor 18 is fixedly installed on the inner wall of the intelligent terminal cabinet 1. The fire monitoring sensor 18 is the core component for fire detection and can monitor fire-related parameters such as temperature and smoke inside the intelligent terminal cabinet 1 in real time. When the detected parameters reach the preset threshold, a fire signal is immediately sent to the control system, triggering the fire alarm 6 to alarm, the telescopic rod 20 to move, and the power-off component to operate, so as to realize the automated linkage of fire response.
[0031] In this embodiment, when the fire monitoring sensor 18 detects a fire, it sends a signal to the control system. The control system first activates the fire alarm 6 to alert staff that there is a fire. Then, it controls the telescopic rod 20 to move the cone 21 and puncture the polypropylene film 19, and causes the variable frequency cooling fan 8 and the second motor 11 to rotate in opposite directions, creating positive pressure inside the heat dissipation cylinder 12. At this time, the dry powder in the dry powder cylinder 13 is sprayed into the intelligent terminal cabinet 1 under the action of pressure and positive pressure inside the heat dissipation cylinder 12, thus extinguishing the fire caused by the short circuit in time, preventing the fire from spreading, reducing equipment maintenance costs and the risk of data loss, and ensuring the equipment safety and continuous operation of the large model analysis system.
[0032] Example 3: Reference Figure 1 , Figure 2 , Figure 4 and Figure 5 Compared to Embodiment 1 and Embodiment 2, in this embodiment: The transmission assembly includes a helical rack 27, a first spring 26, three second springs 28, and an L-shaped plate 22. The helical rack 27 meshes with a half gear 25. When the half gear 25 rotates, it can slide on the inclined surface of the helical rack 27, causing the helical rack 27 to slide downwards and keeping its longitudinal position unchanged. When the half gear 25 rotates in the opposite direction, it can make direct contact with the helical rack 27, causing the helical rack 27 to slide downwards. The first spring 26 is fixedly connected to the mounting base plate 14. One end of the first spring 26 is fixedly connected to the helical rack 27, providing an elastic force for the reset of the helical rack 27. The helical rack 27 is slidably connected to the mounting base plate 14 in the longitudinal direction. One end of the second spring 28 is fixedly connected to the helical rack 27, and the other end is connected to the mounting base plate 14. It is used to assist the helical rack 27 in maintaining its initial position and to buffer the force during the sliding process. The L-shaped plate 22 is fixedly connected to the upper end of the helical rack 27 and moves synchronously with the helical rack 27 to transmit power to the power-off assembly. One end of the first spring 26 is fixedly connected to the helical rack 27. The helical rack 27 can slide laterally through the groove in the initial position, and the L-shaped plate 22 can slide laterally on the mounting base plate 14.
[0033] The power-off assembly includes a sleeve 17, a slider 32, a power-off blade 31, a sliding rod 30, and a third spring 29. The sleeve 17 is fixedly mounted on the power-off frame 16, providing a sliding track for the slider 32. The slider 32 is slidably connected to the sleeve 17, used to mount and fix the power-off blade 31 and drive it to move. The power-off blade 31 is fixedly connected to the slider 32, used to cut off the power line 10. The sliding rod 30 is fixedly connected below the slider 32, used to receive the driving force of the L-shaped plate 22 and drive the slider 32 to slide. One end of the third spring 29 is fixedly connected to the slider 32, and the other end is fixedly connected to the sleeve 17, providing elastic support for the reset of the slider 32.
[0034] The slide rod 30 passes through the power cut-off frame 16 and is slidably connected to the sleeve 17. The slide rod 30 is located inside the third spring 29. The L-shaped plate 22 can slide on the slide rod 30 to achieve effective power transmission. The power line 10 is located between the power cut-off knife 31 and the slider 32 to provide the target for the power cut-off knife 31 to cut off the power. The half gear 25 meshes with the helical rack 27.
[0035] In this embodiment, when a fire occurs, the second motor 11 rotates in the opposite direction, causing the half gear 25 to make direct contact with the helical rack 27. This causes the helical rack 27 to slide downward intermittently under the action of the first spring 26. At this time, the L-shaped plate 22 continuously drives the slider 32 to slide along the sleeve 17. The slider 32 drives the power cut-off knife 31 to move, thereby cutting off the power line 10 to achieve power cut-off. This avoids continuous power supply, which could cause more serious circuit damage to the equipment, reduce equipment maintenance costs, and reduce the risk of data loss due to equipment failure.
[0036] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A terminal system of a large model analysis system, characterized by, Intelligent terminal cabinet (1), two heat dissipation components, two fire extinguishing components, power-off component and transmission component are included. The training integrated machine (3) is fixedly installed in the intelligent terminal cabinet (1), the reasoning integrated machine (4) is fixedly installed in the intelligent terminal cabinet (1), a plurality of heat dissipation openings (2) are arranged on the two sides of the intelligent terminal cabinet (1), the module plate (7) is fixedly connected to the two sides of the intelligent terminal cabinet (1), the installation base plate (14) is fixedly connected to the module plate (7), the power-off frame (16) is fixedly connected to the outside of the intelligent terminal cabinet (1), the power supply box (15) is fixedly installed on the intelligent terminal cabinet (1), the two power supply lines (10) are electrically connected to the power supply box (15), one end of the two power supply lines (10) is electrically connected to the training integrated machine (3), a plurality of wire clamps (9) are fixedly installed on the intelligent terminal cabinet (1), and the wire clamps (9) clamp the power supply lines (10). The heat dissipation component is used for cooling and heat dissipation of the equipment in the intelligent terminal cabinet (1). The fire extinguishing component is used for extinguishing fire when short circuit fire occurs. The power-off component is used for cutting off power supply in time when fire occurs.
2. The terminal system of a large model analysis system according to claim 1, wherein The heat dissipation component includes a variable frequency heat dissipation fan (8), a flow guide heat dissipation cylinder (12), a plurality of heat dissipation pipes (23), a gear (24) and a half gear (25), the variable frequency heat dissipation fan (8) is fixedly installed on the module plate (7), the flow guide heat dissipation cylinder (12) is rotatably connected to the module plate (7), the plurality of heat dissipation pipes (23) are connected to the flow guide heat dissipation cylinder (12), the gear (24) is rotatably connected to the installation base plate (14), and the half gear (25) is rotatably connected to the installation base plate (14).
3. The terminal system of a large model analysis system according to claim 2, wherein One end of the flow guide heat dissipation cylinder (12) is connected to the module plate (7), the heat dissipation pipes (23) are arranged in the heat dissipation opening (2), a torsional spring is arranged at the connection position of one end of the flow guide heat dissipation cylinder (12) and the module plate (7), the gear (24) is rotatably connected to the module plate (7), the gear (24) is fixedly connected to the flow guide heat dissipation cylinder (12), and the half gear (25) is meshedly connected to the gear (24).
4. The terminal system of a large model analysis system according to claim 2, wherein The fire extinguishing component includes a telescopic rod (20), a conical spike (21), a dry powder cylinder (13) and a polypropylene film (19), the dry powder cylinder (13) is connected to the flow guide heat dissipation cylinder (12), the polypropylene film (19) is arranged at the connection position of the dry powder cylinder (13) and the flow guide heat dissipation cylinder (12), the telescopic rod (20) is fixedly installed in the dry powder cylinder (13), and the conical spike (21) is fixedly connected to the output end of the telescopic rod (20).
5. The terminal system of a large model analysis system according to claim 4, wherein The transmission component includes an inclined rack (27), a first spring (26), three second springs (28) and an L-shaped plate (22), the first spring (26) is fixedly connected to the installation base plate (14), the inclined rack (27) is longitudinally and slidably connected to the installation base plate (14), one end of the second spring (28) is fixedly connected to the inclined rack (27), the other end is connected to the installation base plate (14), and the L-shaped plate (22) is fixedly connected to the upper end of the inclined rack (27).
6. The terminal system of a large model analysis system according to claim 5, wherein The first spring (26) is fixedly connected with the bevel gear rack (27) at one end, the bevel gear rack (27) is capable of transversely sliding through the sliding groove at the initial position, and the L-shaped plate (22) is capable of transversely sliding on the mounting base plate (14).
7. The terminal system of a large model analysis system according to claim 5, wherein The power-off assembly comprises a sleeve (17), a sliding block (32), a power-off knife (31), a sliding rod (30) and a third spring (29), the sleeve (17) is fixedly installed on the power-off frame (16), the sliding block (32) is slidingly connected on the sleeve (17), the power-off knife (31) is fixedly connected on the sliding block (32), the sliding rod (30) is fixedly connected below the sliding block (32), one end of the third spring (29) is fixedly connected with the sliding block (32), and the other end is fixedly connected with the sleeve (17).
8. The terminal system of a large model analysis system according to claim 7, wherein The sliding rod (30) is slidingly connected on the sleeve (17) through the power-off frame (16), the sliding rod (30) is arranged in the third spring (29), the L-shaped plate (22) is capable of sliding on the sliding rod (30), and the power supply line (10) is arranged between the power-off knife (31) and the sliding block (32).
9. The terminal system of a large model analysis system according to claim 1, wherein, The first motor (5) is fixedly installed on the intelligent terminal cabinet (1), the fan (33) is rotatably connected to the inner wall above the intelligent terminal cabinet (1), the transmission shaft of the first motor (5) is fixedly connected with the fan (33), the fire early warning device (6) is fixedly installed on the intelligent terminal cabinet (1), and the fire monitoring sensor (18) is fixedly installed on the inner wall of the intelligent terminal cabinet (1).
10. The terminal system of a large model analysis system according to claim 5, wherein Two data transmission wires (34) are electrically connected between the training all-in-one machine (3) and the reasoning all-in-one machine (4), the half gear (25) is engaged with the bevel gear rack (27), the second motor (11) is fixedly installed on the mounting base plate (14), and the transmission shaft of the second motor (11) is fixedly connected with the half gear (25).
Citation Information
Patent Citations
Movable data model analysis device with voice broadcast function
CN218213979U