Big data storage device with protection function
By introducing the bottom buffer component, the left buffer component and the right buffer component in the big data storage device, combining the scraping component and the heat exchange component, the problem of lack of heat dissipation and dust removal during use is solved, and effective buffering and heat dissipation and dust removal protection is achieved.
Patent Information
- Application Number
- CN202510748136.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-06
- Publication Date
- 2025-07-04
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing big data storage devices lack heat dissipation and dust removal structure during use, resulting in the inability to effectively protect heat dissipation and dust removal.
The bottom buffer assembly, the left buffer assembly and the right buffer assembly are designed, combining the scraping component and the heat exchange component to absorb external forces through the buffer assembly, scraping the component to remove dust, and the heat exchange component to dissipate heat.
Effective buffering and heat dissipation and dust removal protection of big data storage devices are realized, protecting the device from external forces and maintaining the stable operation of the equipment.
Smart Images

Figure CN120260626A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of big data storage devices, and particularly relates to a big data storage device with a protection function. Background Art
[0002] Big data storage devices need to buffer external impact forces and achieve heat dissipation protection, mainly to protect the device from physical damage and failures caused by overheating. First of all, the storage device may be subject to external vibrations or impacts during operation, especially in data centers or during transportation. Without a buffer design for external impact forces, it may cause damage to hard disks, SSDs or other storage components, thereby affecting data security and the service life of the device. By designing an effective buffer system, such as shock pads, impact-resistant structures, etc., the external force can be effectively absorbed, reducing the impact on the hardware and protecting the normal operation of the device. On the other hand, heat dissipation protection is equally important. The storage device generates a large amount of heat during operation, especially when processing a large amount of data. If the heat dissipation is insufficient and the temperature is too high, it may cause hardware damage, performance degradation, and even data loss. Through heat dissipation design, such as radiators, fans or liquid cooling systems, the device can be maintained within an ideal temperature range, ensuring stability and reliability. Therefore, buffering and heat dissipation protection jointly ensure the long-term stable operation of big data storage devices.
[0003] Chinese Patent Publication No. CN219266868U discloses a big data storage device with a protection function, including a big data storage main body, guide rails and data storage devices. A storage bin is provided on the side wall of the big data storage main body. Chute grooves are respectively provided on the left and right sides of the storage bin. The guide rails are oppositely arranged inside the storage bin. Elastic members are oppositely arranged inside the guide rails. A connecting rod is arranged between the elastic members on the same side located in different guide rails. A rotating rod is sleeved on the connecting rod. Rotating shafts rotatably connected to the rotating rod are respectively provided at the bottom of the data storage devices. Sliders moving along the chute grooves are respectively provided on the left and right sides of the data storage devices. In the above patent document, through the buffering of the elastic members and the buffer rods, the purpose of multiple shock absorptions is achieved, preventing the data storage device from being shaken and ensuring the normal operation of the data storage device when internal components become loose.
[0004] Although the device in the above patent document can achieve a buffering effect on the data storage device during use, in actual use, there is a lack of a heat dissipation and dust removal structure for the data storage device, and thus it cannot achieve the effect of heat dissipation and dust removal protection for the data storage device. Summary of the Invention
[0005] The main object of the present invention is to provide a big data storage device with a protection function, which can effectively solve the problem that in the actual use process, there is a lack of a heat dissipation and dust removal structure for the data storage device, and thus the effect of heat dissipation and dust removal protection for the data storage device cannot be achieved.
[0006] To achieve the above object, the technical solution adopted by the present invention is as follows: A big data storage device with a protection function includes a cover plate. At the left and right lower edges of the cover plate, there are slidingly connected baffles. The lower ends of the two baffles are fixedly connected to a bottom plate together. A bottom buffer assembly is slidably installed on the outer surface of the bottom plate. A left buffer assembly is slidably installed on the outer surface of the left baffle, and a right buffer assembly is slidably installed on the outer surface of the right baffle. At the front and rear edges of the ends of the two baffles close to each other, there are fixedly installed scraping assemblies. At the ends of the inner surfaces of the two scraping assemblies close to each other, there are fixedly installed heat exchange assemblies.
[0007] Preferably, at the front sides of the middle parts of the upper ends of the two baffles, there are provided chutes. The upper end of the bottom plate is fixedly connected to two symmetrically distributed partition plates. At the left and right upper edges of the bottom plate, there are provided a plurality of guiding holes. At the left and right lower edges of the cover plate, there are fixedly connected sliding plates, and the two sliding plates are respectively slidably connected to the inner surfaces of the two chutes. In the middle of the upper end of the bottom plate, there is a data storage box.
[0008] Preferably, the bottom buffer assembly includes a base. In the middle of the upper end of the base, there is fixedly connected a rubber plate. At the left and right upper ends of the base, there are fixedly connected a plurality of first guiding rods. The plurality of first guiding rods are respectively slidably connected to the inner surfaces of the plurality of guiding holes. On the upper parts of the outer surfaces of the plurality of first guiding rods, there are fixedly connected limiting rings. Between the upper end of the base and the lower end of the bottom plate, there are fixedly connected a plurality of first springs, and the plurality of first springs are all located outside the plurality of first guiding rods.
[0009] Preferably, the left buffer assembly includes a first rectangular plate. In the middle of the right end of the first rectangular plate, there are linearly arrayed and fixedly connected a plurality of second guiding rods. The right ends of the plurality of second guiding rods all penetrate through the left baffle. Between the first rectangular plate and the end of the left baffle close to each other, there are fixedly connected a plurality of second springs, and the plurality of second springs are respectively located outside the plurality of second guiding rods. The right ends of the plurality of second guiding rods are all fixedly connected to a first rubber pad.
[0010] Preferably, the right buffer assembly includes a second rectangular plate. In the middle of the left end of the second rectangular plate, a number of third guide rods are fixedly connected in a linear array. The left ends of the third guide rods all penetrate through the baffle on the right side. A number of third springs are fixedly connected together at one end of the second rectangular plate and the baffle on the right side that are close to each other. The third springs are respectively located outside the third guide rods. Rubber pads are fixedly connected to the left ends of the third guide rods. Two rectangular holes penetrating through the left end of the second rectangular plate are formed in the lower part of the right end of the second rectangular plate.
[0011] Preferably, the scraping assembly includes a heat dissipation plate fixedly connected to the front edge of one end where the two baffles are close to each other. A number of heat dissipation holes are linearly arranged at the front end of the heat dissipation plate. A circular hole is formed in the middle of the front end of the heat dissipation plate. A round rod is rotatably connected to the inner surface of the circular hole. Two scraping plates are fixedly connected to the outer surface of the round rod.
[0012] Preferably, the heat exchange assemblies each include a circular ring fixedly connected to the other in a close manner by the two heat dissipation plates. Air outlets penetrating through the inner surface of the circular ring are formed in the lower part on the right side of the outer surfaces of the two circular rings. Air inlets penetrating through the inner surface of the circular ring are formed in the upper part on the left side of the outer surfaces of the two circular rings. Air outlet pipes are fixedly connected to the inner surfaces of the two air outlets. A C-shaped pipe is fixedly connected together at the inner surfaces of the two air inlets. The outer surface of the C-shaped pipe penetrates through the baffle on the left side and extends to the outside. A cold air blower is fixedly connected to the left edge at the upper end of the C-shaped pipe. The output end of the cold air blower communicates with the inner cavity of the C-shaped pipe. Rotating assemblies are arranged on the inner surfaces of the two circular rings.
[0013] Preferably, the rotating assemblies each include a connecting rod fixedly connected to one end where the two round rods are close to each other. A number of arc-shaped plates are fixedly connected in a circular array on the outer surfaces of the two connecting rods. Two connecting ropes are fixedly connected to one end where the arc-shaped plates on the same side are close to each other. Hollow balls are fixedly connected to the middle of the outer surfaces of the connecting ropes. The arc-shaped plates on the same side are all in contact with the inner surface of the circular ring on the same side.
[0014] Preferably, the outer diameters of the two air outlet pipes are both smaller than the inner diameters of the two rectangular holes.
[0015] Compared with the prior art, the present invention has the following beneficial effects: By providing the left buffer assembly and the right buffer assembly, when the data storage box is impacted by an external force, enough buffer space can be provided for it to avoid damage to the internal components of the data storage box due to external impact. At the same time, by providing the bottom buffer assembly, enough pressure buffer can be provided for the lower part of the device when pressure is applied to the upper end of the cover plate. Therefore, by providing the bottom buffer assembly, the left buffer assembly and the right buffer assembly, enough buffer effect can be provided for the whole device to avoid damage to the device due to external forces. Through the heat exchange component provided in the present invention, heat exchange treatment can be performed on the data storage box. And while heat exchange is carried out, the dust inside the device can be knocked down. At the same time, through the scraping component provided, when the device is used for a long time, the dust remaining on the surface of the device can be scraped off, thereby achieving the heat dissipation and dust removal protection effect for the large data storage device. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a schematic diagram of the overall structure of another perspective of the present invention; Figure 3 is a schematic diagram of a partial structure of the present invention; Figure 4 is a schematic diagram of a partial structure of the present invention; Figure 5 is a schematic diagram of the installation position of the heat exchange component of the present invention; Figure 6 is a schematic diagram of the structure of the rotating component of the present invention; Figure 7 is a schematic diagram of a partial structure of the scraping component of the present invention; Figure 8 is a schematic diagram of the structure of the bottom buffer component of the present invention; Figure 9 is a schematic diagram of the structure of the left buffer component of the present invention; Figure 10 is a schematic diagram of the structure of the right buffer component of the present invention.
[0017] In the figure: 1, cover plate; 2, baffle; 3, bottom plate; 31, data storage box; 4, bottom buffer component; 41, guide rod one; 42, base; 43, spring one; 44, limit ring; 45, rubber plate; 5, left buffer component; 51, guide rod two; 52, rectangular plate one; 53, spring two; 54, rubber pad one; 6, right buffer component; 61, guide rod three; 62, rectangular plate two; 63, spring three; 64, rubber pad two; 65, rectangular hole; 7, scraping component; 71, heat dissipation plate; 72, heat dissipation holes; 73, round holes; 74, round rod; 75, scraper; 8, heat exchange component; 81, ring; 82, air outlet; 83, air inlet; 84, air outlet pipe; 85, C-shaped pipe; 86, cold air blower; 87, rotating component; 871, arc-shaped plate; 872, connecting rod; 873, connecting rope; 874, hollow ball; 11, sliding plate; 21, sliding groove; 12, partition board; 13, guide hole. DETAILED DESCRIPTION OF THE INVENTION
[0018] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific embodiments.
[0019] Example 1, as Figure 1 , Figure 2 and Figure 3 shown, a big data storage device with a protection function includes a cover plate 1. Both the left and right lower edges of the cover plate 1 are slidably connected with baffle plates 2. A bottom plate 3 is fixedly connected to the lower ends of the two baffle plates 2. A bottom buffer assembly 4 is slidably installed on the outer surface of the bottom plate 3. By providing the bottom buffer assembly 4, when pressure is applied to the upper end of the cover plate 1, sufficient pressure buffering can be provided for the lower part of the device. A left buffer assembly 5 is slidably installed on the outer surface of the left baffle plate 2, and a right buffer assembly 6 is slidably installed on the outer surface of the right baffle plate 2. By providing the left buffer assembly 5 and the right buffer assembly 6, when the data storage box 31 is impacted by an external force, sufficient buffer space can be provided for it, avoiding damage to the internal components of the data storage box 31 due to external impact. At the front and rear edges of the ends where the two baffle plates 2 are close to each other, scraping assemblies 7 are fixedly installed. At the ends where the inner surfaces of the two scraping assemblies 7 are close to each other, heat exchange assemblies 8 are fixedly installed. By providing the heat exchange assemblies 8, heat exchange treatment can be performed on the data storage box 31, and at the same time, during heat exchange, the dust inside the device can be knocked down. At the same time, by providing the scraping assemblies 7, when the device is used for a long time, the dust remaining on the surface of the device can be scraped off, thereby realizing the heat dissipation and dust removal protection effect for the big data storage device.
[0020] The above-mentioned data storage box 31 is a conventional setting in the prior art and is a hardware device or system specifically used for storing and managing massive data. These devices can process extremely large amounts of data, usually involving data storage, backup, recovery, analysis, and processing. Big data storage devices mainly include the following forms: Distributed storage system: By multiple storage nodes working together, data is stored dispersedly, improving the scalability, reliability, and processing ability of the system. Common distributed storage systems include Hadoop HDFS, Ceph, GlusterFS, etc. Object storage system: Uses objects rather than traditional files or blocks to store data, usually used for storing a large amount of unstructured non-relational data that does not require structured management. Typical representatives such as Amazon S3, Google Cloud Storage, etc. Cloud storage: Stores data on remote servers through the Internet, with high elasticity and scalability. Common cloud storage services such as AWS, Azure, Google Cloud, etc. Big data database: A database system designed to process large-scale data sets, usually featuring distribution and strong scalability. For example, NoSQL databases such as HBase, Cassandra, and NewSQL databases such as Google Spanner; These devices are characterized by high storage capacity, high reliability, fast data read / write capabilities, and flexibility to adapt to large-scale data growth.
[0021] Embodiment 2: Based on Embodiment 1, for the purpose of buffering and protecting the data storage box 31.
[0022] Specifically, referring to Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 8 、 Figure 9 and Figure 10 , a chute 21 is provided at the middle front side of the upper end of each of the two baffles 2. Two symmetrically distributed partition plates 12 are fixedly connected to the upper end of the bottom plate 3. A number of guide holes 13 are provided at the left and right edge positions of the upper end of the bottom plate 3. Slide plates 11 are fixedly connected to the left and right edge positions of the lower end of the cover plate 1 respectively. The two slide plates 11 are respectively slidably connected to the inner surfaces of the two chutes 21. A data storage box 31 is provided at the middle of the upper end of the bottom plate 3.
[0023] Furthermore, the bottom buffer assembly 4 includes a base 42. A rubber plate 45 is fixedly connected to the middle of the upper end of the base 42. A number of first guide rods 41 are fixedly connected to the left and right sides of the upper end of the base 42 respectively. The number of first guide rods 41 are respectively slidably connected to the inner surfaces of the number of guide holes 13. Limiting rings 44 are fixedly connected to the upper parts of the outer surfaces of the number of first guide rods 41. A number of first springs 43 are fixedly connected together between the upper end of the base 42 and the lower end of the bottom plate 3. The number of first springs 43 are all located outside the number of first guide rods 41.
[0024] Furthermore, the left buffer assembly 5 includes a first rectangular plate 52. A number of second guide rods 51 are fixedly connected in a linear array to the middle of the right end of the first rectangular plate 52. The right ends of the number of second guide rods 51 all penetrate through the left baffle 2. A number of second springs 53 are fixedly connected together between the first rectangular plate 52 and the adjacent end of the left baffle 2. The number of second springs 53 are all located outside the number of second guide rods 51. Rubber pads 54 are fixedly connected to the right ends of the number of second guide rods 51.
[0025] Further, the right buffer assembly 6 includes a second rectangular plate 62. In the middle of the left end of the second rectangular plate 62, a number of third guide rods 61 are fixedly connected in a linear array. The left ends of the number of third guide rods 61 all penetrate through the right baffle 2. The second rectangular plate 62 and the mutually approaching ends of the right baffle 2 are fixedly connected together with a number of third springs 63. The number of third springs 63 are respectively located outside the number of third guide rods 61. The left ends of the number of third guide rods 61 are all fixedly connected with second rubber pads 64. Two rectangular holes 65 penetrating the left end of the second rectangular plate 62 are formed in the lower part of the right end of the second rectangular plate 62.
[0026] When an external force acts on the surface of the first rectangular plate 52, the first rectangular plate 52 will drive a number of second guide rods 51 fixedly connected thereto to slide inwards. At the same time, the first rectangular plate 52 will compress a number of second springs 53. Under the action of the outward supporting force of the number of second springs 53, the number of second springs 53 can absorb part of the external force, thereby playing a buffering effect. If the external force is large and the number of second springs 53 is compressed to the maximum extent, at this time, the number of second guide rods 51 will be in contact with the left side of the data storage box 31. In order to prevent the number of second guide rods 51 from squeezing and damaging the data storage box 31, a first rubber pad 54 is fixedly connected to the right end of the number of second guide rods 51. Due to the material of the first rubber pad 54, it can play a buffering effect and prevent the number of second guide rods 51 from directly contacting the left side of the data storage box 31. When an external force acts on one side of the second rectangular plate 62, the working principles of the number of third guide rods 61 and the number of third springs 63 are the same as those of the left buffer assembly 5. Therefore, this solution will not be elaborated too much here. And the materials of the number of second rubber pads 64 and the number of first rubber pads 54 are the same. Therefore, it can prevent the number of third guide rods 61 from directly contacting the right side of the data storage box 31. When a downward external force acts on the upper end of the cover plate 1, it will cause the lower end of the bottom plate 3 to squeeze a number of first springs 43 on both sides, so that a number of first guide rods 41 pass through a number of guide holes 13 on the same side and move upwards. According to the different degrees of the external force acting on the upper end of the cover plate 1, the contraction degrees of the number of first springs 43 are also different. And in the initial state of the number of first springs 43, they are sufficient to bear the weight of the whole device. At the same time, the limiting rings 44 fixedly connected to the upper part of the outer surface of the number of first guide rods 41 can prevent the number of first guide rods 41 from sliding out of the number of guide holes 13. When the number of first springs 43 is squeezed to the maximum extent by the external force, at this time, the rubber plate 45 will contact the lower end of the bottom plate 3, providing a buffering effect for the lower end of the bottom plate 3 and preventing the external force from being too large, resulting in the direct contact between the upper end of the base 42 and the lower end of the bottom plate 3, thus affecting the subsequent buffering and protection effect. When it is necessary to remove the data storage box 31 for regular maintenance later, just push the cover plate 1 forward, so that the sliding plates 11 fixedly connected to both sides of the lower end of the cover plate 1 slide out from the sliding grooves 21 opened at the front parts of the upper ends of the two baffles 2, then the cover plate 1 can be removed. Subsequently, the data storage box 31 can be taken out from between the two partition plates 12, and then the data storage box 31 can be maintained. After the subsequent maintenance is completed, just align the two sides of the data storage box 31 with the two partition plates 12, and then place the data storage box 31 between the two partition plates 12. And the two partition plates 12 play a role in limiting the left and right sides of the data storage box 31.
[0027] The rubber gasket I 54, the rubber gasket II 64 and the rubber plate 45 in the above all adopt the rubber materials in the prior art, and they have the following characteristics: Elasticity: Rubber is a highly elastic material and can quickly return to its original state after being stressed. When rubber is compressed or stretched by an external force, it can deform and absorb part of the energy, and then return to its original shape through its elasticity. This process of deformation and recovery helps to reduce the impact force; Softness: Rubber is relatively soft, which enables it to deform when colliding or being stressed, dispersing and relieving the external impact force, and preventing it from being directly transmitted to the object surface or structure; Energy absorption: Rubber can absorb a certain amount of energy when being compressed, and convert it into heat energy through the internal molecular structure, which reduces the damage of the impact to the object.
[0028] Therefore, the rubber materials in the above are conventional settings in the prior art, and this solution will not elaborate on them in detail.
[0029] Embodiment 3, on the basis of Embodiment 2, for the purpose of realizing heat exchange and dust removal for the data storage box 31.
[0030] Specifically, referring to Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 6 and Figure 7 , the scraping assembly 7 includes a heat dissipation plate 71 fixedly connected to the front edges of the mutually approaching ends of the two baffles 2. A plurality of heat dissipation holes 72 are linearly arrayed at the front end of the heat dissipation plate 71. A circular hole 73 is opened in the middle of the front end of the heat dissipation plate 71. A round rod 74 is rotatably connected to the inner surface of the circular hole 73. Two scraping plates 75 are fixedly connected to the outer surface of the round rod 74.
[0031] Further, each heat exchange component 8 includes a circular ring 81 formed by fixedly connecting two heat dissipation plates 71 close to each other. At the lower right of the outer surface of the two circular rings 81, air outlets 82 penetrating the inner surface of the circular ring 81 are provided. At the upper left of the outer surface of the two circular rings 81, air inlets 83 penetrating the inner surface of the circular ring 81 are provided. Inside the inner surfaces of the two air outlets 82, air outlet pipes 84 are fixedly connected. Inside the inner surfaces of the two air inlets 83, a C-shaped pipe 85 is fixedly connected in common. The outer surface of the C-shaped pipe 85 penetrates through the left baffle 2 and extends to the outside. At the left edge of the upper end of the C-shaped pipe 85, a cold air blower 86 is fixedly connected. The output end of the cold air blower 86 communicates with the inner cavity of the C-shaped pipe 85. Inside the inner surfaces of the two circular rings 81, a rotating assembly 87 is provided.
[0032] Further, each rotating assembly 87 includes a connecting rod 872 formed by fixedly connecting one ends of two round rods 74 close to each other. On the outer surfaces of the two connecting rods 872, a plurality of arc-shaped plates 871 are fixedly connected in a circular array. At the mutually close ends of the plurality of arc-shaped plates 871 on the same side, two connecting ropes 873 are fixedly connected. In the middle of the outer surfaces of the plurality of connecting ropes 873, hollow balls 874 are fixedly connected. The plurality of arc-shaped plates 871 on the same side are mutually attached to the inner surface of the circular ring 81 on the same side.
[0033] Further, the outer diameters of the two air outlet pipes 84 are both smaller than the inner diameters of the two rectangular holes 65.
[0034] By starting the cold air blower 86, the output end of the cold air blower 86 starts to spray cold air into the inner cavity of the C-shaped pipe 85. The cold air will enter the air inlets 83 on both sides from the two openings on both sides of the C-shaped pipe 85 respectively. Subsequently, the cold air continuously pushes the arc-shaped plates 871 on the same side from the two openings on both sides of the C-shaped pipe 85. A plurality of arc-shaped plates 871 on the same side are fixedly connected to the outer surface of the connecting rod 872 on the same side. The connecting rod 872 on the same side is fixedly connected to the round rod 74 on the same side. Therefore, when the cold air pushes the plurality of arc-shaped plates 871, it will drive the plurality of arc-shaped plates 871 and the connecting rod 872 to rotate. Subsequently, the cold air will take away the heat on the surface of the data storage box 31 and discharge it from the air outlet pipe 84. At the mutually close ends of the plurality of arc-shaped plates 871 on the same side, two connecting ropes 873 are fixedly connected. In the middle of the outer surfaces of the plurality of connecting ropes 873, hollow balls 874 are fixedly connected. Therefore, when the plurality of arc-shaped plates 871 rotate, the cold air will drive the hollow balls 874 to generate high-frequency vibrations. The high-frequency vibrations disturb the air flow, making the air flow more evenly distributed, reducing air flow dead corners or uneven flow, thereby improving the distribution efficiency of the cold air. The heat-exchanged gas will be discharged outwards from the air outlet pipes 84 on both sides. As known above, the outer diameters of the two air outlet pipes 84 are both smaller than the inner diameters of the two rectangular holes 65. Therefore, when the second rectangular plate 62 is externally squeezed, the air outlet pipes 84 on both sides will pass through the corresponding rectangular holes 65, thus not affecting the normal exhaust effect. When the connecting rods 872 on both sides rotate, since the connecting rods 872 on both sides are fixedly connected to the round rods 74 on the same side respectively, and the round rods 74 on the same side are rotatably connected to the inner cavity of the round holes 73 on the same side, the two round rods 74 are driven to rotate. When the two round rods 74 rotate, the two scraping plates 75 fixedly connected to their surfaces can rotate around the center point of the round rod 74, so as to continuously scrape the dust accumulated on the surface of the heat dissipation plate 71 on the same side. Moreover, by linearly arranging a number of heat dissipation holes 72 on the surface of the heat dissipation plate 71 on the same side, a preliminary heat dissipation effect can be achieved, and then in cooperation with the heat exchange process, a better heat dissipation efficiency can be realized.
[0035] The cold air blower 86 mentioned above is a conventional setting in the prior art, and its working principle is as follows: Air intake and filtration: The cold air blower 86 sucks indoor air through a fan, and the sucked air passes through a wet wet curtain, and the air temperature is effectively reduced; Cold air delivery: The air after temperature reduction is sent into the room through a fan, bringing a cool effect; Natural ventilation: The cold air blower 86 does not require a sealed space, and it relies on natural air flow to take away the hot air.
[0036] It should be specifically noted that the specific installation method, the connection method of the circuit and the control method of the cold air blower 86 adopted in the present invention are all conventional designs, and the present invention will not elaborate in detail.
[0037] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A big data storage device with a protection function, comprising a cover plate (1), characterized in that: At the left and right lower edges of the cover plate (1), baffles (2) are slidably connected. A bottom plate (3) is fixedly connected to the lower ends of the two baffles (2). A bottom buffer assembly (4) is slidably mounted on the outer surface of the bottom plate (3). A left buffer assembly (5) is slidably mounted on the outer surface of the left baffle (2). A right buffer assembly (6) is slidably mounted on the outer surface of the right baffle (2). Scraping assemblies (7) are fixedly mounted at the front and rear edges of the ends of the two baffles (2) close to each other. Heat exchange assemblies (8) are fixedly mounted at the ends of the inner surfaces of the two scraping assemblies (7) close to each other.
2. The a big data storage device with a protection function according to claim 1, characterized in that: Chutes (21) are provided at the front sides of the middle parts of the upper ends of the two baffles (2). Two symmetrically distributed partition plates (12) are fixedly connected to the upper end of the bottom plate (3). A number of guide holes (13) are provided at the left and right upper edges of the bottom plate (3). Slide plates (11) are fixedly connected to the left and right lower edges of the cover plate (1). The two slide plates (11) are respectively slidably connected to the inner surfaces of the two chutes (21). A data storage box (31) is provided at the middle part of the upper end of the bottom plate (3).
3. The big data storage device with a protection function according to claim 2, wherein: The bottom buffer assembly (4) includes a base (42). A rubber plate (45) is fixedly connected to the middle part of the upper end of the base (42). A number of first guide rods (41) are fixedly connected to the left and right upper ends of the base (42). The number of first guide rods (41) are respectively slidably connected to the inner surfaces of the number of guide holes (13). Limit rings (44) are fixedly connected to the upper parts of the outer surfaces of the number of first guide rods (41). A number of first springs (43) are fixedly connected between the upper end of the base (42) and the lower end of the bottom plate (3). The number of first springs (43) are all located outside the number of first guide rods (41).
4. A big data storage device with a protection function according to claim 2, characterized in that: The left buffer assembly (5) includes a first rectangular plate (52). A number of second guide rods (51) are fixedly connected in a linear array to the middle part of the right end of the first rectangular plate (52). The right ends of the number of second guide rods (51) penetrate through the left baffle (2). A number of second springs (53) are fixedly connected between the first rectangular plate (52) and the end of the left baffle (2) close to each other. The number of second springs (53) are respectively located outside the number of second guide rods (51). Rubber pads (54) are fixedly connected to the right ends of the number of second guide rods (51).
5. The big data storage device with a protection function according to claim 2, characterized in that: The right buffer assembly (6) includes a second rectangular plate (62). In the middle of the left end of the second rectangular plate (62), a number of third guide rods (61) are fixedly connected in a linear array. The left ends of the number of third guide rods (61) all penetrate through the baffle (2) on the right side. A number of third springs (63) are fixedly connected together at one end of the second rectangular plate (62) and the baffle (2) on the right side that are close to each other. The number of third springs (63) are respectively located outside the number of third guide rods (61). Rubber pads two (64) are fixedly connected to the left ends of the number of third guide rods (61). Two rectangular holes (65) penetrating through the left end of the second rectangular plate (62) are formed in the lower part of the right end of the second rectangular plate (62).
6. A big data storage device with a protection function according to claim 5, characterized in that: The scraping assembly (7) includes a heat dissipation plate (71) fixedly connected at the front edge of one end of the two baffles (2) that are close to each other. A number of heat dissipation holes (72) are formed in a linear array at the front end of the heat dissipation plate (71). A circular hole (73) is formed in the middle of the front end of the heat dissipation plate (71). A round rod (74) is rotatably connected to the inner surface of the circular hole (73). Two scraping plates (75) are fixedly connected to the outer surface of the round rod (74).
7. The big data storage device with a protection function according to claim 6, characterized in that: The heat exchange assembly (8) includes a circular ring (81) fixedly connected to the two heat dissipation plates (71) that are close to each other. Air outlet holes (82) penetrating through the inner surface of the circular ring (81) are formed in the lower part of the outer surface of the two circular rings (81) on the right side. Air inlet holes (83) penetrating through the inner surface of the circular ring (81) are formed in the upper part of the outer surface of the two circular rings (81) on the left side. Air outlet pipes (84) are fixedly connected to the inner surfaces of the two air outlet holes (82). A C-shaped pipe (85) is fixedly connected together to the inner surfaces of the two air inlet holes (83). The outer surface of the C-shaped pipe (85) penetrates through the baffle (2) on the left side and extends to the outside. A cold air blower (86) is fixedly connected to the left edge of the upper end of the C-shaped pipe (85). The output end of the cold air blower (86) communicates with the inner cavity of the C-shaped pipe (85). Rotating assemblies (87) are provided on the inner surfaces of the two circular rings (81).
8. The big data storage device with a protection function according to claim 7, wherein: The rotating assemblies (87) each include a connecting rod (872) fixedly connected to one end of the two round rods (74) that are close to each other. A number of arc-shaped plates (871) are fixedly connected in a circular array on the outer surfaces of the two connecting rods (872). Two connecting ropes (873) are fixedly connected to one end of the number of arc-shaped plates (871) on the same side that are close to each other. Hollow balls (874) are fixedly connected to the middle of the outer surfaces of the number of connecting ropes (873). The number of arc-shaped plates (871) on the same side are all in contact with the inner surface of the circular ring (81) on the same side.
9. A big data storage device with a protection function according to claim 8, characterized in that: The outer diameters of the two air outlet pipes (84) are both smaller than the inner diameters of the two rectangular holes (65).
Citation Information
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