An ocean electronic computing platform
Patent Information
- Application Number
- CN202310307021.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-03-27
- Publication Date
- 2026-08-28
- Estimated Expiration
- 2043-03-27
AI Technical Summary
[0004]针对现有技术的不足,本发明提供了一种海洋电子计算平台及其工作方法,解决了海洋电子计算平台,不可豁免的遭受海浪的冲击,从而对计算机的主机等精密器件造成伤害,不利于长久、稳定使用的问题
[0020]1、本发明通过将海洋电子计算平台的主机,利用支架组件设置在抗摇组件中,当海浪使得电子计算平台安装的海洋平台不断摇摆时,通过抗摇组件能够使得主机器件始终保持垂直状态,从而降低了主机所受到的冲击力,有利于维护内部精密连接处畅通。
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Figure CN116610195B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of computing platform technology, specifically to a marine electronic computing platform. Background Technology
[0002] In recent years, my country has attached great importance to the development of the marine economy, making the marine industry a strategic industry that the country focuses on developing and cultivating. It is accelerating the comprehensive construction of a modern marine industry system to promote the sustainable development of my country's marine economy. High-end marine equipment and intelligent marine platforms have emerged as important supports for the development of the marine economy. Industrial computers that can withstand harsh environments are also gradually becoming leaders in special environments such as marine exploration. Marine electronic computing platforms, as a type of special computer, are an indispensable part of ensuring the solid progress of marine research.
[0003] However, whether installed on buoys, ships, or submersibles, marine electronic computing platforms are inevitably subject to the impact of ocean waves, which can cause great damage to the computer's main unit and other precision components, hindering the long-term and stable use of the marine electronic computing platform. Summary of the Invention
[0004] In view of the shortcomings of the prior art, the present invention provides a marine electronic computing platform and its working method, which solves the problem that marine electronic computing platforms are inevitably subjected to the impact of sea waves, thereby damaging the computer host and other precision components, which is not conducive to long-term and stable use.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a marine electronic computing platform, comprising a shell assembly, the shell assembly including a lower protective shell, an anti-sway assembly disposed inside the lower protective shell, a support assembly disposed inside the anti-sway assembly, a computer host device installed inside the support assembly, a base fixedly connected to the bottom of the lower protective shell, an upper protective shell fixedly connected to the top of the lower protective shell, an opening provided in the middle of the upper protective shell, a movable inner cover disposed below the opening, the upper surface of the movable inner cover being tightly fitted with the lower surface of the upper protective shell and being movable relative to each other, an installation hole for installing an external interface of the computer provided in the middle of the movable inner cover, and the bottom of the movable inner cover being mounted on the top of the support assembly.
[0006] Preferably, the top two sides of the lower protective shell are equipped with bearing seats, the anti-sway assembly includes an action frame, and the middle of the middle of the two sides of the action frame is fixedly connected to a first trunnion. The outer side of the first trunnion is rotatably connected to the middle of the inner side of the bearing seat. The middle of the first trunnion is fixedly connected to a first swing rod. The lower two sides of the first swing rod are provided with a first pressing rod. The outer side of the first pressing rod is provided with a first action tube. The first action tubes located below the first swing rod on the same side are connected by a first blocking tube. The middle of the inner side of the first blocking tube is equipped with a first blocking ring.
[0007] Preferably, the outer side of the first action tube is fixedly connected to the inner wall of the lower protective shell, the bottom of the first top pressure rod is fixedly connected to a first piston ring, and the top of the first top pressure rod is rotatably connected to a first roller.
[0008] Preferably, a second trunnion is rotatably connected to the middle of the other two sides of the action frame, and a second swing rod is fixedly connected to the outside of the second trunnion. A second pressing rod is provided on both sides below the second swing rod, and a second action tube is provided on the outside of the second pressing rod. The second action tubes located below the second swing rod on the same side are connected by a second blocking tube, and a second blocking ring is installed in the middle of the inside of the second blocking tube.
[0009] Preferably, the outer side of the second action tube is fixedly connected to the outer wall of the action frame, the bottom of the second push rod is fixedly connected to a second piston ring, and the top of the second push rod is rotatably connected to a second roller.
[0010] Preferably, the support assembly includes a base support, which is disposed inside the action frame. The middle parts of the two sides of the base support are respectively fixedly connected to the inner ends of the second trunnion. A motherboard support is fixedly connected to the top of the base support. Short columns are fixedly connected to the four corners of the top of the motherboard support. The tops of the short columns are respectively fixedly connected to the four bottom corners of the movable inner cover.
[0011] Preferably, it also includes a cooling fan, which is fixedly connected to the lower interior of the base bracket;
[0012] It also includes two air drying boxes, which are respectively located on the lower outer sides of the lower protective shell. A first air window is provided on each of the lower protective shells at the location where the two air drying boxes are located, and a second air window is provided on each of the lower outer sides of the upper protective shell.
[0013] Preferably, a method for operating a marine electronic computing platform includes the following steps:
[0014] Step 1: Install this marine electronic computing platform onto the marine platform that needs to operate through the bolt holes around the edge of the base. The marine platform includes, but is not limited to, buoys, ships, and submersibles.
[0015] Step 2: Connect the external computer interface, which is located in the middle of the movable inner cover, to the corresponding devices through specific lines, including but not limited to connections to power lines, network lines, display lines, and sensor lines.
[0016] Step 3: Start this marine electronic computing platform to enable the host components of the electronic computer installed inside the motherboard bracket, including but not limited to the motherboard, CPU, memory, graphics card, etc., to work, thereby calculating and obtaining the data required in the process of marine research.
[0017] Step 4: During operation, marine platforms are inevitably affected by waves, resulting in longitudinal and lateral swaying. The internal components of electronic computers, especially the precision connections such as graphics card components and card slots, are easily loosened by external impacts, affecting the smooth flow of circuit connections and causing the electronic computer to malfunction. This marine electronic computing platform, by mounting the host on a support assembly, and through the cooperation between the support assembly and the second trunnion, the action frame, the first trunnion, and the bearing, can swing freely inside the lower protective shell. Thus, when the marine platform sways longitudinally and laterally, it can maintain a vertically upright state under the weight of the host, preventing the host from swaying with the marine platform due to waves, thereby reducing the impact on the host.
[0018] Step 5: The space between the first piston rings on both sides of the first actuating tube and the first blocking tube is filled with lubricating oil. When the actuating frame swings, the first swing rod presses the first top-pressing rod on one side. This causes the first top-pressing rod on that side to push the lubricating oil through the bottom first piston ring into the interior of the first actuating tube on the other side. When the oil flows through the first blocking ring, it is restricted by the small hole in the middle of the first blocking ring, thus reducing the flow rate of the lubricating oil. Under the action of the reaction force, the first swing rod encounters resistance when pressing the first top-pressing rod, thus providing a buffering and energy-dissipating effect for the swinging of the actuating frame. Similarly, the connection between the second actuating tube and the second blocking tube... The space between the two second piston rings is filled with lubricating oil. When the base support swings, the second swing rod presses the second top pressure rod on one side. The second top pressure rod on that side then pushes the lubricating oil through the second piston ring at the bottom to flow into the second action tube on the other side. When the oil flows through the second stagnation ring, it is restricted by the small hole in the middle of the second stagnation ring, which reduces the flow rate of the lubricating oil. As a result, under the action of the reaction force, the second swing rod is subjected to a certain resistance when pressing the second top pressure rod. This provides a buffer and energy dissipation effect for the swing of the base support, ultimately reducing the impact on the main unit and ensuring the stable use of this marine electronic computing platform.
[0019] This invention provides a marine electronic computing platform and its operating method. It has the following beneficial effects:
[0020] 1. This invention integrates the main unit of a marine electronic computing platform into an anti-sway component using a support assembly. When waves cause the marine platform on which the electronic computing platform is installed to sway continuously, the anti-sway component ensures that the main unit remains vertical, thereby reducing the impact force on the main unit and facilitating the maintenance of smooth internal precision connections.
[0021] 2. By designing the center of the movable inner cover, the center of the upper protective shell, and the center of the main unit's movement relative to the anti-sway component within the anti-sway component, the present marine electronic computing platform presents an overall closed state, thereby effectively coping with the high temperature, high humidity, and high corrosion of the marine air environment and improving its service life. Attached Figure Description
[0022] Figure 1 This is a three-dimensional schematic diagram of the present invention;
[0023] Figure 2 This is a schematic diagram of the structure of the present invention;
[0024] Figure 3 This is a schematic diagram of the interior of the lower protective shell of the present invention;
[0025] Figure 4 This is a schematic diagram of the anti-sway component structure of the present invention;
[0026] Figure 5 for Figure 4 Internal structure of the first action tube and the first blocking tube;
[0027] Figure 6 for Figure 4 Internal structure of the second action tube and the second blocking tube;
[0028] Figure 7 This is a schematic diagram of the support assembly structure of the present invention;
[0029] Figure 8 This is a schematic diagram of the installation state of the basic support of the present invention;
[0030] Figure 9 This is a schematic diagram of the movable inner cover and upper protective shell structure of the present invention.
[0031] The components include: 1. Housing assembly; 101. Base; 102. Lower protective shell; 103. Shaft seat; 104. Movable inner cover; 105. Upper protective shell; 2. Support assembly; 201. Basic support; 202. Main board support; 3. Air drying box; 4. Cooling fan; 5. Anti-shake assembly; 501. First trunnion; 502. First swing rod; 503. First actuating tube; 504. First top pressure rod; 505. First piston ring; 506. First roller; 507. First blocking tube; 508. First blocking ring; 509. Action frame; 510. Second trunnion; 511. Second swing rod; 512. Second actuating tube; 513. Second top pressure rod; 514. Second piston ring; 515. Second roller; 516. Second blocking tube; 517. Second blocking ring. Detailed Implementation
[0032] 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.
[0033] Example:
[0034] like Figure 1-9As shown, this embodiment of the invention provides a marine electronic computing platform to reduce the impact of ocean waves on the electronic computer and ensure normal operation. Specifically, the marine electronic computing platform includes a shell assembly 1, which includes a lower protective shell 102. An anti-sway assembly 5 is provided inside the lower protective shell 102, and a support assembly 2 is provided inside the anti-sway assembly 5. The host device of the electronic computer is installed inside the support assembly 2. A base 101 is fixedly connected to the bottom of the lower protective shell 102, and an upper protective shell 105 is fixedly connected to the top of the lower protective shell 102. An opening is provided in the middle of the upper protective shell 105, and a movable inner cover 104 is provided below the opening. The upper surface of the movable inner cover 104 is in close contact with the lower surface of the upper protective shell 105 and can move relative to each other. An installation hole for installing an external interface of the electronic computer is provided in the middle of the movable inner cover 104, and the bottom of the movable inner cover 104 is installed on the top of the support assembly 2.
[0035] Specific examples Figure 1-3 As shown, in this embodiment, the marine electronic computing platform is in a closed state, which effectively copes with the high temperature, high humidity and high corrosion of the marine air environment and improves its service life. The main unit of the marine electronic computing platform is set in the anti-sway component 5 through the bracket component 2. When the waves cause the marine platform on which the electronic computing platform is installed to sway continuously, the anti-sway component 5 can keep the main unit in a vertical state, thereby reducing the impact force on the main unit and helping to maintain the smooth flow of internal precision connections.
[0036] like Figure 4-6 As shown in the figure, in this embodiment, the structure of the anti-sway component 5 is as follows: the top two sides of the lower protective shell 102 are equipped with bearing seats 103. The anti-sway component 5 includes an action frame 509. The middle of the two sides of the action frame 509 is fixedly connected to a first trunnion 501. The outer side of the first trunnion 501 is rotatably connected to the middle of the inner side of the bearing seat 103. The middle of the first trunnion 501 is fixedly connected to a first swing rod 502. The lower two sides of the first swing rod 502 are provided with a first pressing rod 504. The outer side of the first pressing rod 504 is provided with a first action tube 503. The first action tubes 503 located below the first swing rod 502 on the same side are connected by a first blocking tube 507. The middle of the inner side of the first blocking tube 507 is equipped with a first blocking ring 508.
[0037] The outer side of the first action tube 503 is fixedly connected to the inner wall of the lower protective shell 102, the bottom of the first top pressure rod 504 is fixedly connected to the first piston ring 505, and the top of the first top pressure rod 504 is rotatably connected to the first roller 506.
[0038] The friction between the first swing rod 502 and the first pressing rod 504 can be reduced by the first roller 506.
[0039] The other two sides of the action frame 509 are rotatably connected to the middle of the second trunnion 510. The second trunnion 510 is fixedly connected to the outside of the second swing rod 511. The lower sides of the second swing rod 511 are provided with the second pressing rod 513. The outside of the second pressing rod 513 is provided with the second action tube 512. The second action tubes 512 located below the second swing rod 511 on the same side are connected by a second blocking tube 516. The inside of the second blocking tube 516 is equipped with the second blocking ring 517.
[0040] The second action tube 512 is fixedly connected to the outer wall of the action frame 509, and the bottom of the second push rod 513 is fixedly connected to the second piston ring 514. The top of the second push rod 513 is rotatably connected to the second roller 515.
[0041] The friction between the second swing rod 511 and the second top pressure rod 513 can be reduced by the second roller 515.
[0042] The support assembly 2 includes a base support 201, which is located inside the action frame 509. The middle parts of the two sides of the base support 201 are respectively fixedly connected to the inner ends of the second trunnion 510. The top of the base support 201 is fixedly connected to the main board support 202. Short posts are fixedly connected to the four corners of the top of the main board support 202. The tops of the short posts are respectively fixedly connected to the four bottom corners of the movable inner cover 104.
[0043] In this embodiment, in order to ensure the smooth operation of the anti-sway component 5 and the sealing of the inside of the protective shell, the movable inner cover 104 and the upper protective shell 105 are both sections of a standard spherical shell structure, and the centers of the movable inner cover 104 and the upper protective shell 105 coincide. At the same time, the center point of the main device's movement relative to the anti-sway component 5 inside the anti-sway component 5 also coincides with the aforementioned center.
[0044] like Figure 2 , 7 As shown in Figures 8 and 9, it also includes a cooling fan 4, which is fixedly connected to the lower part of the base bracket 201.
[0045] It also includes two air drying boxes 3, which are respectively located on the lower outer sides of the lower protective shell 102. A first air window is provided on both sides of the lower protective shell 102 at the location where the two air drying boxes 3 are located, and a second air window is provided on both sides of the upper protective shell 105.
[0046] Furthermore, to demonstrate in detail the working method of this marine electronic computing platform, this embodiment also describes the working method of the marine electronic computing platform as follows, including the following steps:
[0047] Step 1: Install this marine electronic computing platform onto the marine platform that needs to operate through the bolt holes around the edge of the base 101. The marine platform includes, but is not limited to, buoys, ships, and submersibles.
[0048] Step 2: Connect the external computer interface, which is installed in the middle of the movable inner cover 104, to the corresponding devices through specific lines, including but not limited to the connection to the power supply line, the connection to the network line, the connection to the display line, and the connection to the sensor line.
[0049] Step 3: Start this marine electronic computing platform to enable the host components of the electronic computer installed inside the motherboard bracket 202, including but not limited to the motherboard, CPU, memory, graphics card, etc., to work, thereby calculating and obtaining the data required in the process of marine research.
[0050] Step 4: During use, the marine platform is inevitably affected by waves, resulting in longitudinal and lateral swaying. The internal components of the electronic computer, especially the precision connection points such as the graphics card and card slot, are easily loosened when subjected to external impacts, which affects the smooth flow of circuit connections and causes the electronic computer to malfunction. This marine electronic computing platform, by mounting the host on the support assembly 2, and the cooperation between the support assembly 2 and the second trunnion 510, the action frame 509, the first trunnion 501, and the bearing 103, allows it to sway freely inside the lower protective shell 102. Thus, when the marine platform sways longitudinally and laterally, it can maintain a vertically upward state under the action of the host's gravity, avoiding the host from swaying with the marine platform due to waves, thereby reducing the impact on the host.
[0051] Step 5: The space between the first piston rings 505 on both sides of the first action tube 503 and the first blocking tube 507 is filled with lubricating oil. When the action frame 509 swings, the first swing rod 502 presses the first top-pressing rod 504 on one side. As a result, the first top-pressing rod 504 on that side pushes the lubricating oil through the first piston ring 505 at the bottom to flow into the interior of the first action tube 503 on the other side. When the oil flows through the first blocking ring 508, it is restricted by the small hole in the middle of the first blocking ring 508, thereby reducing the flow rate of the lubricating oil. As a result, under the action of the reaction force, the first swing rod 502 encounters a certain resistance when pressing the first top-pressing rod 504, thus providing a buffering and energy-dissipating effect for the swing of the action frame 509. Similarly, the second action tube 512 and the second blocking tube... The space between the two second piston rings 514 on both sides of the connecting space 516 is filled with lubricating oil. When the base support 201 swings, the second swing rod 511 presses the second top pressure rod 513 on one side. As a result, the second top pressure rod 513 on that side pushes the lubricating oil through the second piston ring 514 at the bottom to flow into the interior of the second action tube 512 on the other side. When it flows through the second blocking ring 517, it is restricted by the small hole in the middle of the second blocking ring 517, thereby reducing the flow rate of the lubricating oil. As a result, under the action of the reaction force, the second swing rod 511 is subjected to a certain resistance when pressing the second top pressure rod 513. This provides a buffer and energy dissipation effect for the swing of the base support 201, and ultimately reduces the impact on the host and ensures the stable use of this marine electronic computing platform.
[0052] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An ocean electronic computing platform comprising a housing assembly, characterized by: The housing assembly includes a lower protective shell, an anti-sway component inside the lower protective shell, a support assembly inside the anti-sway component, and a computer host unit installed inside the support assembly. A base is fixedly connected to the bottom of the lower protective shell, and an upper protective shell is fixedly connected to the top of the lower protective shell. An opening is provided in the middle of the upper protective shell, and a movable inner cover is provided below the opening. The upper surface of the movable inner cover fits tightly with the lower surface of the upper protective shell and can move relative to each other. A mounting hole for installing an external interface of the computer is provided in the middle of the movable inner cover, and the bottom of the movable inner cover is installed on the top of the support assembly. The other two sides of the action frame are rotatably connected to the middle of the second trunnion. The second swing rod is fixedly connected to the outside of the second trunnion. The lower sides of the second swing rod are provided with the second pressing rod. The outside of the second pressing rod is provided with the second action tube. The second action tubes located below the second swing rod on the same side are connected by a second blocking tube. The inside of the second blocking tube is equipped with the second blocking ring.
2. An ocean electronics computing platform according to claim 1, wherein: The top two sides of the lower protective shell are equipped with bearing seats. The anti-sway assembly includes an action frame. The middle of the two sides of the action frame is fixedly connected to a first trunnion. The outer side of the first trunnion is rotatably connected to the middle of the inner side of the bearing seat. The middle of the first trunnion is fixedly connected to a first swing rod. The lower two sides of the first swing rod are provided with a first pressing rod. The outer side of the first pressing rod is provided with a first action tube. The first action tubes located below the first swing rod on the same side are connected by a first blocking tube. The middle of the first blocking tube is equipped with a first blocking ring.
3. The marine electronic computing platform according to claim 2, characterized in that: The outer side of the first action tube is fixedly connected to the inner wall of the lower protective shell, the bottom of the first push rod is fixedly connected to the first piston ring, and the top of the first push rod is rotatably connected to the first roller.
4. The marine electronic computing platform according to claim 1, characterized in that: The second action tube is fixedly connected to the outer wall of the action frame, and the bottom of the second push rod is fixedly connected to the second piston ring. The top of the second push rod is rotatably connected to the second roller.
5. A marine electronic computing platform according to claim 1, characterized in that: The support assembly includes a base support, which is set inside the action frame. The middle parts of the two sides of the base support are fixedly connected to the inner ends of the second trunnion. The top of the base support is fixedly connected to the main board support. Short posts are fixedly connected to the top four corners of the main board support. The tops of the short posts are fixedly connected to the bottom four corners of the movable inner cover, respectively.
6. A marine electronic computing platform according to claim 1, characterized in that: It also includes a cooling fan, which is fixedly connected to the lower interior of the base bracket; It also includes two air drying boxes, which are respectively located on the lower outer sides of the lower protective shell. A first air window is provided on each of the lower outer sides of the lower protective shell where the two air drying boxes are located, and a second air window is provided on each of the lower outer sides of the upper protective shell.
7. A method for operating a marine electronic computing platform, employing the platform as described in any one of claims 1-6, characterized in that: Includes the following steps: Step 1: Install this marine electronic computing platform onto the marine platform that needs to operate through the bolt holes around the edge of the base. The marine platform includes, but is not limited to, buoys, ships, and submersibles. Step 2: Connect the external computer interface, which is located in the middle of the movable inner cover, to the corresponding devices through specific lines, including but not limited to connections to power lines, network lines, display lines, and sensor lines. Step 3: Start this marine electronic computing platform to enable the host components of the electronic computer installed inside the motherboard bracket, including but not limited to the motherboard, CPU, memory, graphics card, etc., to work and solve and obtain the data required in the process of marine research. Step 4: During operation, marine platforms are inevitably affected by waves, resulting in longitudinal and lateral swaying. The internal components of electronic computers, especially the precision connections such as graphics card components and card slots, are easily loosened by external impacts, affecting the smooth flow of circuit connections and causing the electronic computer to malfunction. This marine electronic computing platform, by mounting the host on a support assembly, and through the cooperation between the support assembly and the second trunnion, the action frame, the first trunnion, and the bearing, can swing freely inside the lower protective shell. Thus, when the marine platform sways longitudinally and laterally, it can maintain a vertically upright state under the weight of the host, preventing the host from swaying with the marine platform due to waves, thereby reducing the impact on the host. Step 5: The space between the first piston rings on both sides of the first actuating tube and the first blocking tube is filled with lubricating oil. When the actuating frame swings, the first swing rod presses the first top-pressing rod on one side. This causes the first top-pressing rod on that side to push the lubricating oil through the bottom first piston ring into the interior of the first actuating tube on the other side. When the oil flows through the first blocking ring, it is restricted by the small hole in the middle of the first blocking ring, thus reducing the flow rate of the lubricating oil. Under the action of the reaction force, the first swing rod encounters resistance when pressing the first top-pressing rod, thus providing a buffering and energy-dissipating effect for the swinging of the actuating frame. Similarly, the connection between the second actuating tube and the second blocking tube... The space between the two second piston rings is filled with lubricating oil. When the base support swings, the second swing rod presses the second top pressure rod on one side. The second top pressure rod on that side then pushes the lubricating oil through the second piston ring at the bottom to flow into the second action tube on the other side. When the oil flows through the second stagnation ring, it is restricted by the small hole in the middle of the second stagnation ring, which reduces the flow rate of the lubricating oil. As a result, under the action of the reaction force, the second swing rod is subjected to a certain resistance when pressing the second top pressure rod. This provides a buffer and energy dissipation effect for the swing of the base support, ultimately reducing the impact on the main unit and ensuring the stable use of this marine electronic computing platform.
Citation Information
Patent Citations
Strapdown marine gravimeter host machine stabilizing device
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