Server for virtual human animation synthesis based on emotional research
By designing the thermal expansion and contraction mechanism of the scroll compressor and metal aluminum in the virtual human animation synthesis server, and using temperature sensors and electromagnet structures to disconnect the data storage module in a timely manner when the fire occurs, the aging problem caused by high temperature and data loss caused by fire is solved, and the server is quickly and effectively cooled down and data security is achieved.
Patent Information
- Application Number
- CN202510170306.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-17
- Publication Date
- 2025-05-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing virtual human animation synthesis server based on emotional research is prone to aging and failure of electronic components due to excessive internal temperature when working at high loads, and the data storage module cannot be disconnected in time when the fire occurs, resulting in data loss.
A server including a housing, a temperature sensor, a cooling air output mechanism, a temperature regulating mechanism and a lifting disconnection mechanism are designed. The thermal expansion and contraction mechanism of the scroll compressor and metal aluminum can be achieved quickly, and the data storage module is disconnected in time when the fire occurs.
It effectively solves the problem of aging of electronic components caused by high temperatures on the server, and promptly disconnects the data storage module when the fire occurs, avoiding data loss. It realizes fast and effective cooling of the server and data security.
Smart Images

Figure CN120045032A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of servers, and specifically provides a server for virtual human animation synthesis based on emotion research. Background Art
[0002] A server is a computer program or physical device that provides various services for other devices in a network. In terms of physical form, a server is usually a chassis, and its internal components are similar to those of an ordinary computer. It includes a processor, memory, storage devices, etc.; Since virtual humans can provide emotional assistance, the development of virtual humans has a positive effect on emotion research. During the process of virtual humans and emotion research, a computer platform and a server are required. Through a large amount of long-term data operation, a data-based conclusion of emotion research can be obtained; When the existing server for virtual human animation synthesis based on emotion research is in use, the following technical problems still exist, such as: 1. When the existing server for virtual human animation synthesis based on emotion research is in use, since the server often needs to be in a high-load working state for a long time, the temperature inside the server is relatively high, which may cause the internal electronic components of the server to age and malfunction easily, and then may cause the server to fail to work properly, thus reducing the service life of the server; 2. When the existing server for virtual human animation synthesis based on emotion research is in use, if a fire accidentally occurs, the data storage module cannot be disconnected in time, which is likely to cause data loss, and then the previously studied data will be completely destroyed; Therefore, a server for virtual human animation synthesis based on emotion research is needed to solve the above problems. Summary of the Invention
[0003] The purpose of the present invention is to provide a server for virtual human animation synthesis based on emotion research, so as to solve the problems in the above background art that after the internal temperature of the existing server for virtual human animation synthesis based on emotion research rises, heat dissipation is not timely, and the data storage module cannot be disconnected in time when a fire occurs.
[0004] To achieve the above purpose, the present invention provides the following technical solutions: A server for virtual human animation synthesis based on emotion research, comprising a housing, a temperature sensor, a cold air output mechanism, a temperature-adjusting mechanism and a lifting and disconnecting mechanism. Square through holes are provided on the left, right and rear sides of the housing, and a circular through hole is provided on the upper surface of the housing. The square through holes are used for installing filters, and the circular through hole is used for installing a filter frame. A servo motor is installed at a corner of the upper surface of the housing through a servo motor bracket, and the shaft end of the servo motor is connected to the upper surface of the housing through a bearing. A support frame coaxial with the circular through hole is provided on the upper surface of the housing, and the lower surface of the support frame is connected to the upper end of a shaft tube through a connecting frame coaxial therewith through a bearing. The shaft tube is connected to the shaft end of the servo motor through a belt transmission assembly, and the shaft tube and the support frame are also connected through the cold air output mechanism. The shaft tube passes through the filter frame through a bearing, and an exhaust fan blade is installed on the shaft tube in the filter frame. A support frame is provided at the position of the square through hole on the inner side of the housing, and the support frame is connected to the shaft end of a louver through the temperature-adjusting mechanism. The shaft end of the louver passes through the support frame through a bearing. The lower end of the shaft tube is connected to a support bearing tube through a bearing, and the outer side of the support bearing tube is connected to a plug through the lifting and disconnecting mechanism. The plug is inserted into a socket, and the socket is fixed to the inner bottom surface of the housing. The temperature sensor is arranged on the inner surface of the housing.
[0005] Preferably, the lower surface of the plug is a ferrite magnet, and the plug is connected to a data storage module. An electromagnet is provided on the upper surface of the socket, and the positive and negative connection of the electromagnet circuit is controlled by a processor built in the housing. The processor is electrically connected to the temperature sensor. The application of the processor, the electromagnet circuit and the temperature sensor can enable the temperature sensor to transmit a fire signal to the processor during a fire, and the processor controls the positive and negative connection of the electromagnet circuit, so that the electromagnet and the ferrite magnet repel each other, realizing the plug being pulled out from the socket.
[0006] Preferably, the cold air output mechanism includes a vortex tube, a scroll compressor, an annular tube and a transmission rod. The vortex tube is installed on the upper surface of the housing, and the three connection ends of the vortex tube are respectively connected to a hot air discharge pipe, a cold air discharge pipe and an air delivery pipe. The vortex tube is connected to the exhaust end on the scroll compressor through the air delivery pipe in a through manner, and an air inlet pipe is connected to the air inlet end of the scroll compressor. The vortex tube is connected to the annular tube through the cold air discharge pipe in a through manner, and the cold air discharge pipe is arranged through the upper surface of the housing. The scroll compressor is installed at the upper end of the support frame, and the lower end of the eccentric shaft on the scroll compressor is coaxially arranged with the shaft tube. The lower end of the shaft tube is provided with strip-shaped through holes penetrating its inner and outer sides at equal angles, and the position of the strip-shaped through holes inside the shaft tube is connected to the support disk through a second aluminum sheet. The second aluminum sheets are arranged in one-to-one correspondence with the strip-shaped through holes. The upper surface of the support disk is coaxially and bearing-connected with a push rod, and the upper end of the push rod extends into the concave hole at the lower end of the transmission rod movably. The transmission rod is movably arranged inside the shaft tube, and the upper end of the transmission rod penetrates above the shaft tube movably. Friction sheets are arranged at the upper end of the transmission rod and the lower end of the eccentric shaft on the scroll compressor. One ends of four communication pipes are connected to the annular tube in a through manner at equal angles, and the other ends of the four communication pipes are respectively connected to four air vent pipes in a through manner. The four air vent pipes are respectively installed on the left and right sides of the position of the square through hole in the housing, and vent holes are uniformly arranged on the air vent pipes.
[0007] Preferably, no drive motor is provided on the scroll compressor. Through the contact of two friction sheets, the transmission rod can drive the eccentric shaft on the scroll compressor to rotate.
[0008] Preferably, a prismatic slot is opened at the upper end of the shaft tube, and the upper end of the transmission rod is of a prismatic structure. The prismatic slot and the prismatic structure are in conformity, which is applied to the synchronous rotation of the transmission rod and the shaft tube.
[0009] Preferably, a protrusion is arranged on the upper surface of the annular tube, and the annular tube is connected to the inner top end of the housing through the protrusion.
[0010] Preferably, the air inlet pipe is arranged towards the servo motor, which is applied to suck away the heat generated during the operation of the servo motor and facilitate the heat dissipation of the servo motor.
[0011] Preferably, the temperature-adjusting mechanism includes a T-rod, a connecting tube, a first aluminum sheet, a connecting sheet, a coupling sheet and a toggle rod, the connecting sheet is arranged on one side of each louver, and all the connecting sheets are axially connected to the coupling sheet, the outer axis of the lower end of the coupling sheet is axially connected to one end of a connecting rod, and the other end of the connecting rod is axially connected to one end of the toggle rod, the toggle rod is axially connected to a raised portion on a support frame near the connecting rod, and the other end of the toggle rod is axially connected to the lower end of the T-rod, the upper end of the T-rod movably extends into the inner side of the lower end of the connecting tube, and the upper end of the T-rod is connected to the inner top end of the shell through the first aluminum sheet, the upper end of the connecting tube is fixedly connected to the inner top end of the shell, the connecting tube is a U-shaped structure, and the connecting tube is slidably connected to the upper end of the T-rod, and the first aluminum sheet is arranged on the outside of the connecting tube.
[0012] Preferably, the lifting and disconnecting mechanism includes an attachment tube, which is fixedly connected to the outer side of the supporting bearing tube, and the lower end of the supporting bearing tube is fixedly connected to the inner bottom end of the shell, a T-shaped positioning rod is movably provided on the attachment tube, and the lower end of the positioning rod is coaxially connected to the plug connector, and a spring movably nested in the outer side of the positioning rod is provided between the upper surface of the plug connector and the lower surface of the attachment tube.
[0013] A working method of a server, the method comprising: Step 1: Install the electronic components inside the housing, then start the servo motor. The servo motor drives the shaft tube to rotate through the belt drive assembly, and the exhaust fan blades on the shaft tube rotate with it, thereby extracting the air inside the housing. The three filter positions on the housing allow external gas to enter the interior of the housing to achieve heat exchange, thereby achieving air cooling; Step 2: When the electronic components are in a high-load operation state, the heat generated by them cannot be removed in time. At this time, the temperature in the shell will gradually increase. During the gradual increase in the temperature in the shell, the first aluminum sheet and the second aluminum sheet will become straight from being bent; Step 3: When the first aluminum sheet is straightened, push the T-shaped rod downward to drive the toggle rod to rotate, and the louver blades seal all the square through holes through the connecting piece, coupling piece and connecting rod. At this time, the outside normal temperature gas or high temperature gas cannot pass through the filter screen into the shell; Step 4: When the second aluminum sheet becomes straight, the support plate is pushed to drive the push rod to move upward, thereby lifting the transmission rod, so that the friction plate on the transmission rod contacts the friction plate connected to the lower end of the eccentric shaft on the scroll compressor, so that the eccentric shaft on the scroll compressor rotates synchronously with the transmission rod, thereby realizing the operation of the scroll compressor, and the transmission rod moves synchronously with the shaft tube through the prismatic structure at its upper end; Step Five: When the scroll compressor is operating, it absorbs the hot air around the servo motor, thereby cooling the servo motor. The gas inhaled into the scroll compressor enters the vortex tube through the air delivery pipe, thus forming a stream of hot air and a stream of cold air. The hot air is discharged through the hot air discharge pipe, while the cold air enters the annular pipe through the cold air discharge pipe, then enters the ventilation pipe through the connecting pipe, and is then discharged into the interior of the housing through the ventilation holes to absorb the heat inside the housing. The air that has absorbed the heat is then discharged through the filter frame. Step Six: When the temperature inside the housing is too high and reaches the temperature of a fire, the temperature sensor will transmit a signal to the processor. The processor promptly reverses the circuit of the electromagnet, thereby changing the magnetic pole of the electromagnet, causing it to repel the ferrite magnet. Then, through the pulling of the spring, the plug connector is promptly separated from the plug interface, so that the data storage module can be quickly disconnected to avoid data loss.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: When the server for virtual human animation synthesis based on emotion research generates high temperature, due to the thermal expansion and contraction of aluminum metal, the scroll compressor operates, and then the vortex tube can generate low-temperature air. The low-temperature air sequentially passes through the cold air discharge pipe, the annular pipe, the connecting pipe, and the ventilation pipe and is then discharged from the ventilation holes. At the same time, through the temperature-adjusting mechanism, the louvers can be closed, so that the outside air can only enter the server interior through the vortex tube and cannot enter through the filter screen, avoiding the influence of external normal-temperature or high-temperature air on the internal cooling of the server, thereby quickly and promptly cooling the interior of the server. In addition, through structures such as the electromagnet and the ferrite magnet, the data storage module can be disconnected in a timely manner after a fire occurs. 1. Under normal circumstances, through the rotation of the exhaust fan blades and structures such as the filter screen, the interior of the housing can be cooled conventionally. When the temperature inside the server is too high, the second aluminum sheet will gradually straighten from the bent state, and then through the support plate and the ejector rod, the transmission rod is lifted, so that the friction plate at the upper end of the transmission rod and the friction plate connected to the eccentric shaft of the scroll compressor are in extrusion contact, thereby causing the scroll compressor to work. The scroll compressor compresses and heats the air and transports it into the vortex tube. The vortex tube will discharge low-temperature air and high-temperature air respectively. The high-temperature air can be discharged into the container filled with water to avoid scalding the staff with high temperature and also avoid the influence of high-temperature air on the environment. The low-temperature air sequentially passes through the cold air discharge pipe, the annular pipe, the connecting pipe, and the ventilation pipe and is then discharged from the ventilation holes, thereby quickly and effectively cooling the interior of the server. In addition, when the temperature inside the server is too high, the first aluminum sheet will also gradually straighten from the bent state. At this time, through a number of structures connected to the first aluminum sheet, all the louvers will seal the square through holes on the housing. At this time, the outside air can only enter the interior of the housing through the vortex tube, thereby avoiding the influence of external normal-temperature gas or high-temperature gas on the heat dissipation of the server. 2. The temperature inside the server can be transmitted to the processor in real time through the temperature sensor. The processor processes the temperature data. When the temperature is too high and reaches the temperature at which a fire occurs, the processor controls the circuit of the electromagnet to make the electromagnet and the ferrite magnet repel each other, and then resets it by pulling the spring to separate the plug connector and the plug interface, and disconnects the data storage module in time to avoid data loss caused by fire. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a schematic diagram of the main structure of the present invention; Figure 2 It is a schematic diagram of the internal structure of the present invention; Figure 3 This is a schematic diagram of the connection structure between the support frame and the louver blades of the present invention; Figure 4 For the present invention Figure 3 A schematic diagram of the enlarged structure of point A; Figure 5 It is a schematic diagram of the longitudinal structure of the present invention; Figure 6 For the present invention Figure 5 A schematic diagram of the enlarged structure of point B in the middle; Figure 7 For the present invention Figure 5 The schematic diagram of the enlarged structure of point C in the middle; Figure 8 It is a schematic diagram of a partial internal structure of the present invention when viewed from above; Figure 9 For the present invention Figure 8 The enlarged structural diagram of point D in the middle; Figure 10 It is a schematic diagram of a partial cross-sectional structure of the present invention; Figure 11 For the present invention Figure 10 Schematic diagram of the enlarged structure at point E.
[0016] In the figure: 1, housing; 2, filter screen; 3, servo motor frame; 4, servo motor; 5, support frame; 6, exhaust fan blades; 7, belt drive assembly; 8, vortex tube; 9, hot air exhaust pipe; 10, cold air exhaust pipe; 11, air pipe; 12, shaft tube; 13, support bearing tube; 14, vent pipe; 15, vent hole; 16, connecting pipe; 17, filter frame; 18, scroll compressor; 19, ring pipe; 20, support frame; 21, shutter blades; 22. T-shaped rod; 23. Connecting pipe; 24. First aluminum sheet; 25. Connecting plate; 26. Coupling plate; 27. Connecting rod; 28. Toggle rod; 29. Strip through hole; 30. Second aluminum sheet; 31. Support plate; 32. Push rod; 33. Transmission rod; 34. Intake pipe; 35. Connecting frame; 36. Friction plate; 37. Attaching tube; 38. Positioning rod; 39. Plug connector; 40. Spring; 41. Plug interface; 42. Temperature sensor. Detailed implementation mode
[0017] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0018] Please refer to Figures 1-11 , the present invention provides the following technical solutions: Embodiment
[0019] In order to solve the problem that when a fire occurs inside a server in the past, the data storage module cannot be disconnected in time, resulting in data loss, the following technical solutions are provided. Specifically, A server for virtual human animation synthesis based on emotion research includes a housing 1, a temperature sensor 42, a cold air output mechanism, a temperature-adjusting mechanism, and a lifting disconnection mechanism. Square through holes are provided on the left, right, and rear sides of the housing 1, and a circular through hole is provided on the upper surface of the housing 1. The square through holes are used to install filters 2, and the circular through hole is used to install a filter frame 17. A servo motor 4 is installed at a corner of the upper surface of the housing 1 through a servo motor bracket 3, and the shaft end of the servo motor 4 is connected to the upper surface of the housing 1 through a bearing. A support frame 5 coaxial with the circular through hole is provided on the upper surface of the housing 1, and the lower surface of the support frame 5 is connected to the upper end of a shaft tube 12 through a connecting frame 35 coaxial with it. The shaft tube 12 is connected to the shaft end of the servo motor 4 through a belt drive assembly 7. The shaft tube 12 penetrates through the filter frame 17 through a bearing, and exhaust fan blades 6 are installed on the shaft tube 12 inside the filter frame 17. The lower end of the shaft tube 12 is connected to a support bearing tube 13 through a bearing, and the outside of the support bearing tube 13 is connected to a plug connector 39 through a lifting disconnection mechanism. The plug connector 39 is inserted into a socket 41, and the socket 41 is fixed to the inner bottom surface of the housing 1. The temperature sensor 42 is arranged on the inner surface of the housing 1.
[0020] The lower surface of the plug connector 39 is a ferrite magnet, and the plug connector 39 is connected to the data storage module. An electromagnet is provided on the upper surface of the plug interface 41, and the positive and negative connections of the electromagnet circuit are controlled by a processor built into the housing 1. The processor is electrically connected to the temperature sensor 42. The application of the processor, the electromagnet circuit, and the temperature sensor 42 enables the temperature sensor 42 to transmit a fire signal to the processor during a fire. The processor controls the positive and negative connections of the electromagnet circuit, so that the electromagnet and the ferrite magnet repel each other, realizing the unplugging of the plug connector 39 from the plug interface 41. The lifting disconnection mechanism includes an attachment tube 37. The attachment tube 37 is fixedly connected to the outside of the support bearing tube 13, and the lower end of the support bearing tube 13 is fixedly connected to the inner bottom end of the housing 1. A T-shaped positioning rod 38 is movably penetrated through the attachment tube 37, and the lower end of the positioning rod 38 is coaxially connected to the plug connector 39. A spring 40 movably nested outside the positioning rod 38 is provided between the upper surface of the plug connector 39 and the lower surface of the attachment tube 37. When the plug connector 39 and the plug interface 41 are connected, the ferrite magnet on the lower surface of the plug connector 39 will adsorb to the electromagnet on the upper surface of the plug connector 39, so that the plug connector 39 and the plug interface 41 can resist the pulling force of the spring 40, so that the plug connector 39 and the plug interface 41 can be stably connected. After the server is powered on, the electromagnet generates magnetic force, so that the plug connector 39 and the plug interface 41 can be adsorbed more tightly. When the temperature sensor 42 senses abnormal temperature, that is, when the detected temperature reaches the fire temperature, the processor in the server changes the direction of the current on the electromagnet circuit according to the signal transmitted by the temperature sensor 42, thereby changing the magnetic pole of the electromagnet. At this time, the electromagnet will repel the ferrite magnet, so that the plug connector 39 and the plug interface 41 repel each other, and then through the pulling of the spring 40, the plug connector 39 and the plug interface 41 will be separated, thus disconnecting the data storage module. Embodiment
[0021] To solve the problem that heat cannot be removed in time when the temperature inside the conventional server is too high, resulting in aging failures of electronic components, the following technical solutions are provided. Specifically, the shaft tube 12 and the support frame 5 are also connected by a cold air output mechanism. A support frame 20 is provided at the position of the square through hole inside the housing 1, and the support frame 20 is connected to the shaft end of the louver 21 through a temperature-adjusting mechanism, and the shaft end bearing of the louver 21 penetrates through the support frame 20.
[0022] The cold air output mechanism includes a vortex tube 8, a scroll compressor 18, a ring tube 19 and a transmission rod 33. The vortex tube 8 is installed on the upper surface of the housing 1, and the three connection ends of the vortex tube 8 are respectively connected to a hot air exhaust pipe 9, a cold air exhaust pipe 10 and an air delivery pipe 11. The vortex tube 8 is connected through the air delivery pipe 11 to the exhaust end on the scroll compressor 18, and an intake pipe 34 is connected to the intake end of the scroll compressor 18. The vortex tube 8 is connected through the cold air exhaust pipe 10 to the ring tube 19, and the cold air exhaust pipe 10 is arranged through the upper surface of the housing 1. The scroll compressor 18 is installed at the upper end of the support frame 5, and the lower end of the eccentric shaft on the scroll compressor 18 is coaxially arranged with the shaft tube 12. Strip-shaped through holes 29 that penetrate both the inner and outer sides are arranged at equal angles at the lower end of the shaft tube 12, and the position of the strip-shaped through holes 29 inside the shaft tube 12 is connected to a support disk 31 through a second aluminum sheet 30. The second aluminum sheets 30 are arranged in one-to-one correspondence with the strip-shaped through holes 29. The upper surface of the support disk 31 is coaxially and bearing-connected with a push rod 32, and the upper end of the push rod 32 extends movably into the concave hole at the lower end of the transmission rod 33. The transmission rod 33 is movably arranged inside the shaft tube 12, and the upper end of the transmission rod 33 extends movably above the shaft tube 12. Friction plates 36 are arranged at the upper end of the transmission rod 33 and the lower end of the eccentric shaft on the scroll compressor 18. One ends of 4 connecting pipes 16 are connected through the ring tube 19 at equal angles, and the other ends of the 4 connecting pipes 16 are respectively connected through 4 air vent pipes 14. The 4 air vent pipes 14 are respectively installed on the left and right sides of the position of the square through hole inside the housing 1, and ventilation holes 15 are evenly arranged on the air vent pipes 14. During the process of generating high temperature inside the housing 1, the second aluminum sheets 30 will gradually change from being bent to straight, so that the 2 friction plates 36 can be squeezed into contact, achieving the purpose of driving the eccentric shaft on the scroll compressor 18 to rotate by the rotation of the transmission rod 33, and making the scroll compressor 18 work. When the scroll compressor 18 is working, it will suck in the air near the servo motor 4, thereby taking away the heat generated when the servo motor 4 is working. At the same time, the gas sucked into the scroll compressor 18 will be heated, and then enter the vortex tube 8 through the air delivery pipe 11. After entering the vortex tube 8, the temperature of part of the air increases and is discharged from the hot air exhaust pipe 9. At this time, the lower end of the hot air exhaust pipe 9 can be connected to the water body, so as to cool the high-temperature air, avoiding scalding the staff and also avoiding the high-temperature air affecting the normal heat dissipation of the surrounding equipment. The temperature of the other part of the air drops sharply to form low-temperature air, which enters the ring tube 19 through the cold air exhaust pipe 10, then enters the air vent pipes 14 through the connecting pipes 16, and is then discharged to the inside of the housing 1 through the ventilation holes 15 on the air vent pipes 14, so as to quickly dissipate the heat inside the housing 1. No driving motor is provided on the scroll compressor 18. Through the contact of the 2 friction plates 36, the transmission rod 33 can drive the eccentric shaft on the scroll compressor 18 to rotate. A prismatic slot is opened at the upper end of the shaft tube 12, and the upper end of the transmission rod 33 is of a prismatic structure, and the prismatic slot and the prismatic structure fit, which is applied to the synchronous rotation of the transmission rod 33 with the shaft tube 12. A protrusion is arranged on the upper surface of the ring tube 19.The protrusion is connected to the inner top of the shell 1, and the air inlet pipe 34 is arranged toward the servo motor 4, and is used to absorb the heat generated by the servo motor 4 when it is working, so as to facilitate the heat dissipation of the servo motor 4. The temperature adjustment mechanism includes a T-shaped rod 22, a connecting pipe 23, a first aluminum sheet 24, a connecting sheet 25, a coupling sheet 26 and a toggle rod 28. The connecting sheet 25 is arranged on one side of each louver 21, and all the connecting sheets 25 are axially connected to the coupling sheet 26. The outer side of the lower end of the coupling sheet 26 is axially connected to one end of the connecting rod 27, and the other end of the connecting rod 27 is axially connected to one end of the toggle rod 28. The toggle rod 28 is axially connected to the protrusion on the support frame 20 near the connecting rod 27, and the other end of the toggle rod 28 is axially connected to the lower end of the T-shaped rod 22, and the upper end of the T-shaped rod 22 is movably extended into the connecting rod. The lower end of the pipe 23 is connected to the inner top of the shell 1 through the first aluminum sheet 24. The upper end of the connecting pipe 23 is fixedly connected to the inner top of the shell 1. The connecting pipe 23 is a U-shaped structure, and the connecting pipe 23 is slidably connected to the upper end of the T-shaped rod 22. The first aluminum sheet 24 is arranged on the outside of the connecting pipe 23. In the process of generating high temperature in the shell 1, the first aluminum sheet 24 will also be bent and straightened, so that the T-shaped rod 22 moves downward, and then the toggle rod 28 can be driven to rotate, so that the louver 21 seals the square through hole through the connecting sheet 25, the coupling sheet 26 and the connecting rod 27, so that the air in the shell 1 can only be discharged through the filter frame 17, thereby avoiding the influence of the external normal temperature air or high temperature air in the process of conveying low temperature air to the shell 1, so as to affect the heat dissipation.
[0023] The server's working methods include: Step 1: Install the electronic components inside the housing 1, then start the servo motor 4, the servo motor 4 drives the shaft tube 12 to rotate through the belt transmission assembly 7, and the exhaust fan blades 6 on the shaft tube 12 rotate with it, so as to extract the air inside the housing 1. The positions of the three filters 2 set on the housing 1 can allow external gas to enter the interior of the housing 1 to achieve heat exchange, thereby achieving air cooling and heat dissipation; Step 2: When the electronic component is in a high-load operation state, the heat generated by it cannot be removed in time. At this time, the temperature in the housing 1 will gradually increase. During the gradual increase in the temperature in the housing 1, the first aluminum sheet 24 and the second aluminum sheet 30 will become straight from being bent; Step 3: When the first aluminum sheet 24 is straightened, the T-shaped rod 22 is pushed downward to drive the toggle rod 28 to rotate, and the louver blades 21 seal all the square through holes through the connecting piece 25, the coupling piece 26 and the connecting rod 27. At this time, the ambient temperature gas or the high temperature gas cannot pass through the filter screen 2 and enter the housing 1; Step 4: During the process of straightening the second aluminum sheet 30, the support disk 31 is pushed, driving the ejector rod 32 to move upward, thereby lifting the transmission rod 33, causing the friction plates 36 on the transmission rod 33 to contact the friction plates 36 connected to the lower end of the eccentric shaft on the scroll compressor 18, so that the eccentric shaft on the scroll compressor 18 rotates synchronously with the transmission rod 33, thus realizing the operation of the scroll compressor 18. The transmission rod 33 moves synchronously with the shaft tube 12 through the prismatic structure at its upper end; Step 5: When the scroll compressor 18 is operating, it absorbs the hot air around the servo motor 4, thereby cooling the servo motor 4. The gas inhaled into the scroll compressor 18 enters the vortex tube 8 through the air delivery pipe 11, thereby forming a stream of hot air and a stream of cold air. The hot air is discharged through the hot air discharge pipe 9, while the cold air enters the annular tube 19 through the cold air discharge pipe 10, then enters the ventilation pipe 14 through the connecting pipe 16, and is then discharged into the interior of the housing 1 through the ventilation holes 15, absorbing the heat inside the housing 1. The air that has absorbed heat is then discharged through the filter frame 17; Step 6: When the temperature inside the housing 1 is too high and reaches the temperature of a fire, the temperature sensor 42 will transmit a signal to the processor. The processor promptly reverses the circuit of the electromagnet, thereby changing the magnetic pole of the electromagnet, causing it to repel the ferrite magnet, and then through the pulling of the spring 40, the plug connector 39 is separated from the socket 41 in a timely manner, so that the data storage module can be quickly disconnected, avoiding data loss.
[0024] The content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.
[0025] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A server for virtual human animation synthesis based on emotion research, comprising a housing (1), a temperature sensor (42), a cold air output mechanism, a temperature adjustment mechanism and a lifting and disconnecting mechanism, characterized in that: The left and right sides and the rear side of the shell (1) are both provided with square through holes, and the upper surface of the shell (1) is provided with a circular through hole, the square through hole is used to install the filter screen (2), and the circular through hole is used to install the filter frame (17), a servo motor (4) is installed at one corner of the upper surface of the shell (1) through a servo motor frame (3), and the shaft end bearing of the servo motor (4) is connected to the upper surface of the shell (1), the upper surface of the shell (1) is provided with a support frame (5) coaxial with the circular through hole, and the lower surface of the support frame (5) is connected to the upper end of the shaft tube (12) through a connecting frame (35) coaxial with the shaft tube (12), the shaft tube (12) is connected to the shaft end of the servo motor (4) through a belt transmission assembly (7), and the shaft tube (12) and the support frame (5) are also connected through a cold air output mechanism. The filter frame (17) is connected to the housing (1), the bearing of the shaft tube (12) passes through the filter frame (17), and the exhaust fan blade (6) is installed on the shaft tube (12) in the filter frame (17); a support frame (20) is provided at the position of the square through hole inside the housing (1), and the support frame (20) is connected to the shaft end of the shutter blade (21) through a temperature-adjusting mechanism, and the shaft end bearing of the shutter blade (21) passes through the support frame (20); the lower end bearing of the shaft tube (12) is connected to the support bearing tube (13), and the outer side of the support bearing tube (13) is connected to the plug connector (39) through a lifting and disconnecting mechanism, the plug connector (39) is plugged with the plug interface (41), and the plug interface (41) is fixed to the inner bottom surface of the housing (1); and the temperature sensor (42) is arranged on the inner surface of the housing (1).
2. The server for virtual human animation synthesis based on emotion research according to claim 1, characterized in that: The lower surface of the plug connector (39) is a ferrite magnet, and the plug connector (39) is connected to the data storage module. The upper surface of the plug interface (41) is provided with an electromagnet, and the positive and negative connection of the electromagnet circuit is controlled by a processor built into the housing (1). The processor is electrically connected to the temperature sensor (42). The application of the processor, the electromagnet circuit and the temperature sensor (42) enables the temperature sensor (42) to transmit a fire signal to the processor in the event of a fire, and the processor controls the positive and negative connection of the electromagnet circuit, thereby causing the electromagnet and the ferrite magnet to repel each other, thereby enabling the plug connector (39) to be unplugged from the plug interface (41).
3. The server for virtual human animation synthesis based on emotion research according to claim 2, characterized in that: The cold air output mechanism comprises a vortex tube (8), a scroll compressor (18), a ring tube (19) and a transmission rod (33); the vortex tube (8) is mounted on the upper surface of the housing (1), and the three connecting ends of the vortex tube (8) are respectively connected to the hot air exhaust pipe (9), the cold air exhaust pipe (10) and the air delivery pipe (11); the vortex tube (8) is connected to the exhaust end of the scroll compressor (18) through the air delivery pipe (11), and the air inlet end of the scroll compressor (18) is connected to the air inlet pipe (11). The air pipe (34) is connected to the annular pipe (19) through the cold air exhaust pipe (10), and the cold air exhaust pipe (10) is arranged to penetrate the upper surface of the shell (1), the scroll compressor (18) is installed on the upper end of the support frame (5), and the lower end of the eccentric shaft on the scroll compressor (18) is coaxially arranged with the shaft tube (12), and the lower end of the shaft tube (12) is provided with strip-shaped through holes (29) penetrating the inner and outer sides thereof at equal angles, and the strip-shaped through holes inside the shaft tube (12) are arranged The position of the shaft tube (29) is connected to the support plate (31) through a second aluminum sheet (30), the second aluminum sheet (30) and the strip-shaped through hole (29) are arranged one by one, the upper surface of the support plate (31) is connected to a push rod (32) by a coaxial bearing, and the upper end of the push rod (32) is movably extended into a concave hole at the lower end of the transmission rod (33), the transmission rod (33) is movably arranged inside the shaft tube (12), and the upper end of the transmission rod (33) is movably extended to the upper end of the shaft tube (12). The upper end of the transmission rod (33) and the lower end of the eccentric shaft of the scroll compressor (18) are both provided with a friction plate (36); one end of four connecting pipes (16) are connected to the annular pipe (19) at equal angles, and the other ends of the four connecting pipes (16) are connected to four ventilation pipes (14) respectively; the four ventilation pipes (14) are respectively installed on the left and right sides of the square through hole in the shell (1), and ventilation holes (15) are evenly arranged on the ventilation pipes (14).
4. The server for virtual human animation synthesis based on emotion research according to claim 3, characterized in that: The scroll compressor (18) is not provided with a driving motor, and the transmission rod (33) can drive the eccentric shaft on the scroll compressor (18) to rotate through the contact between the two friction plates (36).
5. The server for virtual human animation synthesis based on emotion research according to claim 4, characterized in that: The upper end of the shaft tube (12) is provided with a prismatic slot, the upper end of the transmission rod (33) is a prismatic structure, the prismatic slot and the prismatic structure match, and the transmission rod (33) is used to rotate synchronously with the shaft tube (12).
6. The server for virtual human animation synthesis based on emotion research according to claim 5, characterized in that: The upper surface of the ring tube (19) is provided with a protrusion, and is connected to the inner top end of the shell (1) via the protrusion.
7. The server for virtual human animation synthesis based on emotion research according to claim 6, characterized in that: The air inlet pipe (34) is arranged towards the servo motor (4) and is used to absorb heat generated by the servo motor (4) when it is working, thereby facilitating heat dissipation of the servo motor (4).
8. The server for virtual human animation synthesis based on emotion research according to claim 7, characterized in that: The temperature-adjusting mechanism comprises a T-shaped rod (22), a connecting pipe (23), a first aluminum sheet (24), a connecting sheet (25), a coupling sheet (26) and a toggle rod (28), wherein the connecting sheet (25) is provided on one side of each louver blade (21), and all the connecting sheets (25) are axially connected to the coupling sheet (26), an outer side of the lower end of the coupling sheet (26) is axially connected to one end of a connecting rod (27), and the other end of the connecting rod (27) is axially connected to one end of the toggle rod (28), and the toggle rod (28) is axially connected to the support frame at a position close to the connecting rod (27). The convex portion of the toggle rod (20) is connected to the convex portion of the toggle rod (28), and the other end of the toggle rod (28) is axially connected to the lower end of the T-shaped rod (22), the upper end of the T-shaped rod (22) is movably extended to the inner side of the lower end of the connecting tube (23), and the upper end of the T-shaped rod (22) is connected to the inner top end of the shell (1) through the first aluminum sheet (24), the upper end of the connecting tube (23) is fixedly connected to the inner top end of the shell (1), the connecting tube (23) is a U-shaped structure, and the connecting tube (23) is slidably connected to the upper end of the T-shaped rod (22), and the first aluminum sheet (24) is arranged outside the connecting tube (23).
9. The server for virtual human animation synthesis based on emotion research according to claim 8, characterized in that: The lifting and disconnecting mechanism comprises an attachment tube (37), wherein the attachment tube (37) is fixedly connected to the outer side of the support bearing tube (13), and the lower end of the support bearing tube (13) is fixedly connected to the inner bottom end of the shell (1), and a T-shaped positioning rod (38) is movably provided on the attachment tube (37), and the lower end of the positioning rod (38) is coaxially connected to the plug connector (39), and a spring (40) movably nested in the outer side of the positioning rod (38) is provided between the upper surface of the plug connector (39) and the lower surface of the attachment tube (37).
10. The working method of the server according to claim 9, characterized in that: The method comprises: Step 1: The electronic components are installed inside the housing (1), and then the servo motor (4) is started. The servo motor (4) drives the shaft tube (12) to rotate through the belt drive assembly (7), and the exhaust fan blades (6) on the shaft tube (12) rotate therewith, thereby extracting air from the inside of the housing (1). The positions of the three filters (2) provided on the housing (1) allow external air to enter the inside of the housing (1), thereby achieving heat exchange and air cooling. Step 2: When the electronic component is in a high-load operation state, the heat generated by it cannot be removed in time. At this time, the temperature inside the housing (1) will gradually increase. In the process of gradually increasing the temperature inside the housing (1), the first aluminum sheet (24) and the second aluminum sheet (30) will change from being bent to being straight; Step 3: When the first aluminum sheet (24) is straightened, the T-shaped rod (22) is pushed downward, driving the toggle rod (28) to rotate, so that the shutter blades (21) seal all the square through holes through the connecting piece (25), the coupling piece (26) and the connecting rod (27). At this time, the ambient air at normal temperature or high temperature cannot pass through the filter screen (2) and enter the interior of the housing (1); Step 4: When the second aluminum sheet (30) becomes straight, the support plate (31) is pushed to drive the push rod (32) to move upward, thereby lifting the transmission rod (33), so that the friction plate (36) on the transmission rod (33) and the friction plate (36) connected to the lower end of the eccentric shaft on the scroll compressor (18) are in contact, so that the eccentric shaft on the scroll compressor (18) rotates synchronously with the transmission rod (33), thereby realizing the operation of the scroll compressor (18), and the transmission rod (33) moves synchronously with the shaft tube (12) through the prismatic structure at its upper end; Step 5: When the scroll compressor (18) is in operation, it absorbs hot air around the servo motor (4), thereby cooling the servo motor (4). The gas sucked into the scroll compressor (18) enters the vortex tube (8) through the air delivery pipe (11), thereby forming a high-temperature air and a low-temperature cold air. The high-temperature air is discharged through the hot air exhaust pipe (9), while the low-temperature cold air enters the ring pipe (19) through the cold air exhaust pipe (10), and then enters the ventilation pipe (14) through the connecting pipe (16), and is then discharged to the inside of the housing (1) through the ventilation hole (15), absorbing the heat in the housing (1). The air that has absorbed the heat is then discharged from the filter frame (17); Step 6: When the temperature inside the housing (1) is too high and reaches the temperature of a fire, the temperature sensor (42) transmits a signal to the processor, which promptly reverses the circuit of the electromagnet, thereby changing the magnetic poles of the electromagnet so that it repels the ferrite magnet. The spring (40) then pulls the plug connector (39) and the plug interface (41) apart in time, thereby quickly disconnecting the data storage module and avoiding data loss.