An automatic real-time data analysis system with a high-temperature protection module

CN117812898BActive Publication Date: 2026-08-14HANGZHOU YIQUAN DIGITAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-01-08
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

现有技术中,自动实时数据分析是系统内部各个模块进行配合计算进行分析,而各个模块进行配合计算时,由于各个模块一起配合工作,并且各个模块电性元件配合运行时,会产生大量热量,从而导致数据分析系统内部温度升高,而高温会导致各个模块电性元件过热,从而导致数据分析系统无法正常运行;

Benefits of technology

1.通过将用于数据分析系统主机进行储放的机柜设置成由柜体、柜门、储放支架、蓄水箱、送气管道和液氮储罐组合构成,并将储放支架设置成由主管体、纵向管体和横向管体组合构成,从而当空调系统损坏时,或者当断电发生时,可以通过液氮储罐释放液氮,从而让液氮气化,并通过送气管道输送至蓄水箱之中,从而通过蓄水箱之中的水体进行降温,并通过水体进入主管体、纵向管体、横向管体之中,从而达到对柜体内部进行降温的目的,并且通过水体作为缓冲媒介,也可以避免柜体内部温度过低而影响数据分析系统主机的正常运行;

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Abstract

This invention relates to the technical field of automotive parts processing, specifically to an automatic real-time data analysis system with a high-temperature protection module. The system comprises a main unit for the data analysis system and a cabinet for housing the main unit. The cabinet includes a cabinet body, cabinet door, storage rack, water tank, air supply pipe, and liquid nitrogen storage tank. When the air conditioning system malfunctions or a power outage occurs, liquid nitrogen is released from the storage tank, vaporizing and transported through the air supply pipe to the water tank. The water in the tank cools the interior of the cabinet, and the water then enters the main pipe, longitudinal pipe, and transverse pipe, thus achieving the purpose of cooling the interior of the cabinet. Furthermore, the water acts as a buffer medium, preventing excessively low internal temperatures from affecting the normal operation of the main unit.
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Description

Technical Field

[0001] This invention relates to the technical field of automotive parts processing, specifically to an automatic real-time data analysis system with a high-temperature protection module. Background Technology

[0002] Data analysis refers to the process of analyzing large amounts of collected data using appropriate statistical analysis methods, summarizing, understanding, and digesting the data to maximize its functionality and effectiveness. Data analysis is the process of detailed study and summarization of data to extract useful information and draw conclusions. In the existing technology, automatic real-time data analysis involves the cooperation of various modules within the system to perform calculations. When these modules work together, a large amount of heat is generated due to the coordinated operation of their electrical components. This causes the internal temperature of the data analysis system to rise, which in turn leads to overheating of the electrical components in each module, resulting in the data analysis system failing to operate normally. In existing data analysis systems, the modules used for cooling and heat dissipation typically utilize the air conditioning system in the computer room. However, when the air conditioning system fails or a power outage occurs, the backup power supply can only be used to maintain the operation of the data analysis system, so the air conditioning system has to be disconnected. This causes the operating temperature of the data analysis system to rise continuously, creating a potential hazard that the data analysis system cannot operate normally. This invention proposes an automatic real-time data analysis system with a high-temperature protection module to solve the above problems. Summary of the Invention

[0003] The purpose of this invention is to provide an automatic real-time data analysis system with a high-temperature protection module to solve the problems mentioned in the background art.

[0004] To achieve the above objectives, the present invention provides the following technical solution: an automatic real-time data analysis system with a high-temperature protection module, wherein the automatic real-time data analysis system with a high-temperature protection module comprises a data analysis system host and a cabinet for housing the data analysis system host, the cabinet comprising: The cabinet is a rectangular box structure; Cabinet door, which is hinged to the cabinet body; The data analysis system host is placed on the storage rack, and the storage rack is composed of a main tube, a longitudinal tube and a transverse tube. A water storage tank is located on the upper side of the cabinet. The water storage tank contains water. An air vent slot is provided at the port of the water storage tank. A top cover is installed on the upper end of the water storage tank. An air supply pipe is installed on the bottom surface of the water storage tank. A liquid nitrogen storage tank, which is fixedly installed on a tank bracket on the side wall of the cabinet.

[0005] Preferably, the gas delivery pipeline is connected to the liquid nitrogen storage tank, and a valve is installed on the gas delivery pipeline. The portion of the gas delivery pipeline located inside the water storage tank is arranged in a square coil shape, and the center of the gas delivery pipeline is vertically upward. The water level in the water storage tank is lower than the port of the gas delivery pipeline, and the gas delivery pipeline is an austenitic stainless steel pipe.

[0006] Preferably, the main pipe is vertically arranged and the lower end of the main pipe is sealed. The upper end of the main pipe is connected to the water storage tank. The longitudinal pipe is connected to the main pipe. The transverse pipe is connected to the longitudinal pipe. A row of transverse pipes are closely fitted together. The data analysis system host is actually placed on the transverse pipes during installation.

[0007] Preferably, the valve is an electromagnetic valve, and a temperature sensor is installed inside the cabinet. Both the valve and the temperature sensor are electrically connected to the PLC control module inside the cabinet.

[0008] Preferably, a nozzle is rotatably mounted at the port of the air supply pipe via a sealed bearing. The nozzle orifice is located on the side wall of the nozzle, and the orifice does not pass through the center point of the nozzle. A mounting plate is fixedly installed on the side wall of the water storage tank, and a liquid-dispersing component is mounted on the mounting plate.

[0009] Preferably, the liquid-dispensing assembly is composed of a rectangular frame, an annular frame, a connecting plate, an elastic connector, and a liquid-dispensing rod. The rectangular frame has multiple layers, and adjacent layers are connected by elastic connectors. The annular frame is connected to the innermost rectangular frame through the connecting plate, and the outermost rectangular frame is mounted on a mounting plate. The liquid-dispensing rod is fixedly welded to the lower side of the rectangular frame and inserted below the liquid level in the water tank. The liquid-dispensing rod is offset from the air supply pipe, and the rectangular frame is located above the liquid level in the water tank.

[0010] Preferably, when the elastic connector is in the reset state, the annular frame is coaxially arranged with the nozzle, a support rod is fixedly connected between the front and rear side walls of the water storage tank, and the rectangular frame is erected on the support rod.

[0011] Preferably, a vibration spring is sleeved on the liquid-dispensing rod, and the upper end of the vibration spring is fixedly glued to the rectangular frame.

[0012] Preferably, the elastic connector is composed of a primary connector and a secondary connector. The primary connector has a shuttle-shaped frame structure, and the secondary connector has a rhomboid frame structure. The primary connector and the secondary connector are integrally formed, and both the primary connector and the secondary connector are cast from spring steel.

[0013] Preferably, ventilation louvers are installed on both the left and right side walls of the cabinet.

[0014] Compared with the prior art, the beneficial effects of the present invention are: 1. By configuring the cabinet for storing the host of the data analysis system as a combination of cabinet body, cabinet door, storage rack, water tank, air supply pipe and liquid nitrogen storage tank, and configuring the storage rack as a combination of main body, longitudinal pipe and transverse pipe, liquid nitrogen can be released through the liquid nitrogen storage tank when the air conditioning system fails or when a power outage occurs. The liquid nitrogen will be vaporized and transported to the water tank through the air supply pipe. The water in the water tank will be cooled and enter the main body, longitudinal pipe and transverse pipe, thereby achieving the purpose of cooling the inside of the cabinet. In addition, the water can be used as a buffer medium to prevent the internal temperature of the cabinet from being too low and affecting the normal operation of the host of the data analysis system. 2. A nozzle is rotatably installed at the port of the air supply pipe via a sealed bearing, and a liquid-dispelling assembly consisting of a rectangular frame, an annular frame, a connecting plate, an elastic connector, and a liquid-dispelling rod is set up. The nozzle blows air through the nozzle orifice onto the annular frame. Due to the reaction force of the air blown through the nozzle orifice, the nozzle rotates, causing the direction of the force on the liquid-dispelling assembly to change continuously. This causes the liquid-dispelling assembly to deflect at an angle, thereby creating a dispelling effect on the water in the water tank, allowing the water in the water tank to exchange heat better with the air supply pipe. Attached Figure Description Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 for Figure 1 Enlarged schematic diagram of the structure at point A in the middle; Figure 3 This is a half-sectional view of the cabinet body of the present invention; Figure 4 This is a schematic diagram of the internal structure of the water storage tank of the present invention; Figure 5 for Figure 4 Enlarged schematic diagram of the structure at point B; Figure 6 This is a schematic diagram of the horizontal tube distribution of the present invention; Figure 7 for Figure 6 Enlarged schematic diagram of the structure at point C; Figure 8This is a schematic diagram of the liquid-repelling component structure of the present invention; Figure 9 for Figure 8 Enlarged schematic diagram of the structure at point D; Figure 10 This is a half-sectional view of the water storage tank of the present invention; Figure 11 for Figure 10 Enlarged schematic diagram of the structure at point E in the middle; Figure 12 This is a schematic diagram of the gas delivery pipeline structure of the present invention; Figure 13 for Figure 12 Enlarged schematic diagram of the structure at point F.

[0015] In the diagram: 1. Data analysis system host; 2. Cabinet; 3. Cabinet door; 4. Storage rack; 5. Water tank; 6. Gas supply pipe; 7. Liquid nitrogen storage tank; 8. Top cover; 9. Main pipe; 10. Longitudinal pipe; 11. Transverse pipe; 12. Storage tank support; 13. Valve; 14. Mounting plate; 15. Air vent groove; 16. Sealed bearing; 17. Nozzle; 18. Spray hole; 19. Liquid dispensing assembly; 20. Rectangular frame; 21. Circular frame; 22. Connecting plate; 23. Elastic connector; 24. Primary connector; 25. Secondary connector; 26. Mounting rod; 27. Heat dissipation louver; 28. Liquid dispensing rod; 29. ​​Vibration spring. Detailed Implementation

[0016] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0017] Please see Figure 1-13 The present invention provides the following four preferred embodiments: Example 1 An automatic real-time data analysis system with a high-temperature protection module is provided. The system comprises a data analysis system host 1 and a cabinet for housing the host 1. The cabinet includes a cabinet body 2, a cabinet door 3, a storage rack 4, a water tank 5, a gas supply pipe 6, and a liquid nitrogen storage tank 7. The cabinet body 2 has a rectangular box structure, and the cabinet door 3 is hinged to the cabinet body 2. The data analysis system host 1 is placed on the storage rack 4, which consists of a main pipe 9, a longitudinal pipe 10, and a transverse pipe. The system consists of 11 components. A water storage tank 5 is located on the upper side of the cabinet 2. The water storage tank 5 contains water and has an air vent 15 at its port. A top cover 8 is installed on the upper end of the water storage tank 5. An air supply pipe 6 is laid on the bottom surface of the water storage tank 5. A liquid nitrogen storage tank 7 is fixedly installed on a tank support 12 on the side wall of the cabinet 2. The system absorbs the heat generated by the operation of the data analysis system host 1 through the water and automatically cools the water when the data analysis system host 1 is not running, which can reduce electricity consumption and is very environmentally friendly.

[0018] The gas supply pipe 6 is connected to the liquid nitrogen storage tank 7, and a valve 13 is installed on the gas supply pipe 6. The part of the gas supply pipe 6 located inside the water storage tank 5 is arranged in a square coil shape, and the center of the gas supply pipe 6 is arranged vertically upward. The water level in the water storage tank 5 is lower than the port of the gas supply pipe 6. The gas supply pipe 6 is an austenitic stainless steel pipe.

[0019] The main pipe 9 is vertically installed with a sealed lower end. The upper end of the main pipe 9 is connected to the water storage tank 5. The longitudinal pipe 10 is connected to the main pipe 9, and the transverse pipe 11 is connected to the longitudinal pipe 10. A row of transverse pipes 11 are tightly joined together. The data analysis system host 1 is actually installed on the transverse pipes 11. The cabinet for storing the data analysis system host 1 is configured as a combination of cabinet 2, cabinet door 3, storage bracket 4, water storage tank 5, gas supply pipe 6, and liquid nitrogen storage tank 7. The storage bracket 4 is then installed... The cabinet 2 is composed of a main pipe 9, a longitudinal pipe 10, and a transverse pipe 11. When the air conditioning system is damaged or a power outage occurs, liquid nitrogen can be released through the liquid nitrogen storage tank 7, causing the liquid nitrogen to vaporize and be transported to the water storage tank 5 through the gas supply pipe 6. The water in the water storage tank 5 is then used to cool the cabinet. The water then enters the main pipe 9, the longitudinal pipe 10, and the transverse pipe 11, thereby achieving the purpose of cooling the inside of the cabinet 2. In addition, the water acts as a buffer medium to prevent the internal temperature of the cabinet 2 from being too low and affecting the normal operation of the data analysis system host 1.

[0020] Valve 13 is an electromagnetic valve. A temperature sensor is installed inside the cabinet 2. Both valve 13 and the temperature sensor are electrically connected to the PLC control module inside the cabinet 2.

[0021] Example 2 Based on Embodiment 1, a nozzle 17 is rotatably mounted at the port of the air supply pipe 6 via a sealed bearing 16. The nozzle 17 has nozzle holes 18 located on its side wall, and the nozzle holes 18 are not oriented through the center point of the nozzle 17. A mounting plate 14 is fixedly mounted on the side wall of the water storage tank 5, and a liquid-dispersing assembly 19 is mounted on the mounting plate 14. The liquid-dispersing assembly 19 is composed of a rectangular frame 20, an annular frame 21, a connecting plate 22, an elastic connector 23, and a liquid-dispersing rod 28. The rectangular frame 20 has multiple layers, and adjacent layers of rectangular frames 20 are connected by elastic connectors 23. The annular frame 21 is connected to the innermost rectangular frame 20 through a connecting plate 22, and the outermost rectangular frame 20 is erected on the mounting plate 14. The liquid-dispensing rod 28 is fixedly welded to the lower side of the rectangular frame 20, and the liquid-dispensing rod 28 is inserted below the liquid level of the water tank 5. The liquid-dispensing rod 28 is offset from the air supply pipe 6, and the rectangular frame 20 is located above the liquid level of the water tank 5.

[0022] When the elastic connector 23 is in the reset state, the annular frame 21 is coaxially arranged with the nozzle 17, and the front and rear side walls of the water tank 5 are fixedly connected with the support rod 26. The rectangular frame 20 is mounted on the support rod 26. The nozzle 17 is rotatably installed at the port of the air supply pipe 6 through the sealed bearing 16, and a liquid-dispelling assembly 19 composed of the rectangular frame 20, the annular frame 21, the connecting plate 22, the elastic connector 23 and the liquid-dispelling rod 28 is set up. The nozzle 17 blows the annular frame 21 through the spray hole 18. Due to the reaction force of the air blown by the spray hole 18, the nozzle 17 will rotate, thereby causing the force direction of the liquid-dispelling assembly 19 to change continuously, thereby causing the liquid-dispelling assembly 19 to produce an angular offset, thereby creating a dispelling effect on the water in the water tank 5, so that the water in the water tank 5 can better exchange heat with the air supply pipe 6.

[0023] Example 3 Based on Embodiment 2, a vibration spring 29 is fitted on the liquid-dispelling rod 28. The upper end of the vibration spring 29 is fixedly glued to the rectangular frame 20. By setting the vibration spring 29, the vibration effect of the liquid-dispelling rod 28 on the water body is further improved through the vibration action of the vibration spring 29.

[0024] Example 4 Based on Embodiment 3, the elastic connector 23 is composed of a primary connector 24 and a secondary connector 25. The primary connector 24 has a shuttle-shaped frame structure, and the secondary connector 25 has a rhomboid frame structure. The primary connector 24 and the secondary connector 25 are integrally formed, and both the primary connector 24 and the secondary connector 25 are cast from spring steel. Through the combined action of the primary connector 24 and the secondary connector 25, the elastic support effect of the elastic connector 23 is effectively improved.

[0025] Ventilation louvers 27 are installed on both the left and right side walls of cabinet 2.

[0026] Although the illustrative specific embodiments of this application have been described above to enable those skilled in the art to understand this application, this application is not limited to the scope of the specific embodiments. For those skilled in the art, all applications utilizing the concept of this application are protected as long as various variations are within the spirit and scope of this application as defined and determined by the appended claims.

Claims

1. An automatic real-time data analysis system with a high-temperature protection module, the automatic real-time data analysis system with a high-temperature protection module comprising a data analysis system host (1) and a cabinet for housing the data analysis system host (1), characterized in that: The cabinet includes: Cabinet (2), wherein the cabinet (2) is a rectangular box structure; Cabinet door (3), which is hinged to the cabinet body (2); The storage rack (4) is used to place the host computer (1) of the data analysis system on the storage rack (4), and the storage rack (4) is composed of a main tube (9), a longitudinal tube (10) and a transverse tube (11); Water storage tank (5), the water storage tank (5) is located on the upper side of the cabinet (2), the water storage tank (5) contains water, the water storage tank (5) has an air hole groove (15) at the port position, and the water storage tank (5) has a top cover (8) installed on the upper end. Gas supply pipe (6), the gas supply pipe (6) is laid on the bottom surface of the water storage tank (5); Liquid nitrogen storage tank (7), which is fixedly installed on the storage tank bracket (12) on the side wall of the cabinet (2); The gas delivery pipe (6) is connected to the liquid nitrogen storage tank (7), and a valve (13) is provided on the gas delivery pipe (6). The part of the gas delivery pipe (6) located inside the water storage tank (5) is arranged in a square coil shape, and the center of the gas delivery pipe (6) is arranged vertically upward. The water level in the water storage tank (5) is lower than the port of the gas delivery pipe (6). The gas delivery pipe (6) is an austenitic stainless steel pipe. The main pipe (9) is vertically arranged and the lower end of the main pipe (9) is sealed. The upper end of the main pipe (9) is connected to the water storage tank (5). The longitudinal pipe (10) is connected to the main pipe (9). The transverse pipe (11) is connected to the longitudinal pipe (10). A row of transverse pipes (11) are closely fitted together. The data analysis system host (1) is actually placed on the transverse pipe (11) during installation.

2. The automatic real-time data analysis system with a high-temperature protection module according to claim 1, characterized in that: The valve (13) is an electromagnetic valve. A temperature sensor is installed inside the cabinet (2). The valve (13) and the temperature sensor are both electrically connected to the PLC control module inside the cabinet (2).

3. The automatic real-time data analysis system with a high-temperature protection module according to claim 1, characterized in that: The nozzle (17) is rotatably mounted at the port of the air supply pipe (6) via a sealed bearing (16). The nozzle (18) is located on the side wall of the nozzle (17), and the nozzle (18) is not oriented through the center point of the nozzle (17). A mounting plate (14) is fixedly installed on the side wall of the water storage tank (5), and a liquid-dispensing assembly (19) is mounted on the mounting plate (14).

4. The automatic real-time data analysis system with a high-temperature protection module according to claim 3, characterized in that: The liquid-dispensing assembly (19) is composed of a rectangular frame (20), an annular frame (21), a connecting plate (22), an elastic connector (23), and a liquid-dispensing rod (28). The rectangular frame (20) has multiple layers, and adjacent layers of rectangular frames (20) are connected by elastic connectors (23). The annular frame (21) is connected to the innermost rectangular frame (20) through the connecting plate (22), and the outermost rectangular frame (20) is erected on the mounting plate (14). The liquid-dispensing rod (28) is fixedly welded to the lower side of the rectangular frame (20), and the liquid-dispensing rod (28) is inserted below the liquid level of the water tank (5). The liquid-dispensing rod (28) is offset from the air supply pipe (6), and the rectangular frame (20) is located above the liquid level of the water tank (5).

5. An automatic real-time data analysis system with a high-temperature protection module according to claim 4, characterized in that: When the elastic connector (23) is in the reset state, the annular frame (21) is coaxially arranged with the nozzle (17), and a support rod (26) is fixedly connected between the front and rear side walls of the water storage tank (5), and the rectangular frame (20) is erected on the support rod (26).

6. An automatic real-time data analysis system with a high-temperature protection module according to claim 5, characterized in that: A vibration spring (29) is fitted on the liquid-dispensing rod (28), and the upper end of the vibration spring (29) is fixedly glued to the rectangular frame (20).

7. An automatic real-time data analysis system with a high-temperature protection module according to claim 6, characterized in that: The elastic connector (23) is composed of a primary connector (24) and a secondary connector (25). The primary connector (24) has a shuttle-shaped frame structure, and the secondary connector (25) has a rhomboid frame structure. The primary connector (24) and the secondary connector (25) are integrally formed, and both the primary connector (24) and the secondary connector (25) are cast from spring steel.

8. An automatic real-time data analysis system with a high-temperature protection module according to claim 1, characterized in that: The cabinet (2) is equipped with heat dissipation louvers (27) on both the left and right side walls.

Citation Information

Patent Citations

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