Multi-parameter detector fixing frame and marine detection device

CN224838984UActive Publication Date: 2026-10-09SOUTHERN MARINE SCI & ENG GUANGDONG LAB (ZHUHAI)
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Patent Information

Application Number
CN202522501477.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-25
Publication Date
2026-10-09
Estimated Expiration
2035-11-25

AI Technical Summary

Technical Problem

[0002]海洋探测装置常用于对海洋水质状态、水文数据、海洋微生物信息等多种海洋参数信息进行检测记录,是人类感知海洋生态环境变化状态的第一手原始数据,其探测精度直接影响了科学家对海洋环境的探测结果,但目前现有探测仪还存在着探测进度不高的问题,主要原因是由于洋流的阻扰,产生的扰流会对多参数探测器形成干扰,进而影响测量精度

Benefits of technology

[0025]基于上述技术方案,本申请实施例至少具有以下有益效果:由于第一结构板、第二结构板和第三结构板相互平行且间隔排布,洋流可以平行穿过三个结构板之间的间隔空间,减少了扰流的产生,进而减小了扰流对多参数探测器的干扰,提高了测量精度;同时由于多参数探测器的安装方向与三个结构板的水平方向垂直,进一步降低了三个结构板对多参数探测器所要探测洋流的阻挡,进一步提升了多参数探测器的探测精准度。

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Abstract

The application relates to the technical field of marine exploration equipment, in particular to a multi-parameter detector fixing frame and a marine exploration device. The multi-parameter detector fixing frame comprises a first structure plate, one side of which is provided with a first open slot; a first lock catch which is installed at the first open slot; a second structure plate which is arranged in parallel and at intervals with the first structure plate, and is provided with a second open slot; a second lock catch which is installed at the second open slot; a first connecting column which is connected between the first structure plate and the second structure plate; a third structure plate which is arranged in parallel and at intervals with the second structure plate, and is provided with a third open slot; a second connecting column which is connected between the second structure plate and the third structure plate; and a third lock catch which is installed at the third open slot. The marine exploration device comprises any one of the above multi-parameter detector fixing frames; and a buoy structure which is installed on the first structure plate. Since the three structure plates are parallel and at intervals with each other, the disturbance of the air flow to the multi-parameter detector is reduced, and the measurement precision is improved.
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Description

Technical Field

[0001] This application relates to the field of marine exploration equipment technology, and in particular to a multi-parameter detector mounting bracket and a marine exploration device. Background Technology

[0002] Marine detection devices are commonly used to detect and record various marine parameters such as ocean water quality, hydrological data, and marine microbial information. They provide humans with first-hand raw data for perceiving changes in the marine ecological environment, and their detection accuracy directly affects scientists' results in detecting the marine environment. However, existing detectors still suffer from slow detection progress, mainly due to the obstruction of ocean currents. The resulting disturbances interfere with multi-parameter detectors, thus affecting measurement accuracy. Utility Model Content

[0003] This application aims to at least partially address one of the aforementioned technical problems in the prior art. To this end, embodiments of this application provide a multi-parameter detector mounting bracket and a marine detection device, which can reduce the interference of currents on the multi-parameter detector and improve measurement accuracy.

[0004] A multi-parameter detector mounting bracket, comprising:

[0005] A first structural plate, wherein a first opening slot is provided on one side of the first structural plate, the first opening slot being used to mate with the top of a multi-parameter detector;

[0006] A first latch is installed at the first opening slot to clamp the top of the multi-parameter detector;

[0007] The second structural plate is arranged parallel to the first structural plate and is located below the first structural plate and spaced apart from the first structural plate. A second opening slot is provided on the same side as the first structural plate, and the second opening slot is used to cooperate with the outer wall of the middle part of the multi-parameter detector.

[0008] The second latch is installed at the second opening slot to clamp the middle of the multi-parameter detector;

[0009] The first connecting column connects the first structural plate and the second structural plate;

[0010] The third structural plate is arranged parallel to the second structural plate and is located below the second structural plate and spaced apart from the second structural plate. A third opening slot is provided on the same side as the second structural plate. The third opening slot is used to fit the outer side wall of the bottom of the multi-parameter detector.

[0011] The second connecting column connects the second structural plate and the third structural plate;

[0012] The third latch is installed at the third opening slot to clamp the bottom of the multi-parameter detector;

[0013] The length direction of the multi-parameter detector is the same as the distribution direction of the first structural plate, the second structural plate, and the third structural plate.

[0014] In an optional or preferred embodiment, the distance between the second structural plate and the third structural plate is greater than the distance between the first structural plate and the second structural plate.

[0015] In an optional or preferred embodiment, multiple first connecting columns are provided, and each first connecting column is distributed circumferentially between the first structural plate and the second structural plate.

[0016] In an optional or preferred embodiment, multiple second connecting columns are provided, and each second connecting column is distributed circumferentially between the second structural plate and the third structural plate.

[0017] In an optional or preferred embodiment, a first flange and a second flange are respectively provided on both sides of the second structural plate, one end of the first connecting column is connected to the first flange and the second structural plate, and one end of the second connecting column is connected to the first flange and the second structural plate.

[0018] In an optional or preferred embodiment, the multi-parameter detector includes a base, a multi-parameter probe, and a deflector. The base is fixed to one end of the deflector. The multi-parameter probe is mounted on the base and extends into the deflector. The base of the multi-parameter probe is fixed in the first opening slot and the second opening slot by the first latch and the second latch. The deflector is fixed in the third opening slot by the third latch.

[0019] A marine detection device, comprising:

[0020] Any of the above-described multi-parameter detector mounting brackets;

[0021] The buoy structure is mounted on the first structural plate of the multi-parameter detector mounting bracket.

[0022] In an optional or preferred embodiment, a solar panel is provided on the buoy structure, and the solar panel is connected to the multi-parameter detector.

[0023] In an optional or preferred embodiment, the buoy structure is further provided with a BeiDou positioning system, which is connected to the multi-parameter detector.

[0024] In an optional or preferred embodiment, the buoy structure is further provided with a communication module, which is connected to the multi-parameter detector.

[0025] Based on the above technical solution, the embodiments of this application have at least the following beneficial effects: Since the first structural plate, the second structural plate, and the third structural plate are parallel to each other and arranged at intervals, the ocean current can pass through the space between the three structural plates in parallel, reducing the generation of turbulence, thereby reducing the interference of turbulence on the multi-parameter detector and improving the measurement accuracy; at the same time, since the installation direction of the multi-parameter detector is perpendicular to the horizontal direction of the three structural plates, the obstruction of the three structural plates to the ocean current to be detected by the multi-parameter detector is further reduced, further improving the detection accuracy of the multi-parameter detector. Attached Figure Description

[0026] The present application will be further described below with reference to the accompanying drawings and embodiments;

[0027] Figure 1 This is a schematic diagram of the structure of the multi-parameter detector mounted on the multi-parameter detector mounting bracket in the embodiments of this application;

[0028] Figure 2 This is an exploded view of the multi-parameter detector mounting bracket in an embodiment of this application;

[0029] Figure 3 This is a schematic diagram of the structure of the multi-parameter detector in the embodiments of this application;

[0030] Figure 4 This is a schematic diagram of the structure of the marine exploration device in the embodiments of this application.

[0031] Figure label:

[0032] 100 - Multi-parameter detector; 110 - Base; 120 - Flow deflector; 10 - First connecting post; 20 - Second connecting post; 200 - First structural plate; 210 - First opening slot; 220 - First bolt hole; 300 - Second structural plate; 310 - Second opening slot; 320 - Threaded hole; 400 - Third structural plate; 410 - Third opening slot; 420 - Second bolt hole; 50 - First locking buckle; 60 - Second locking buckle; 70 - Third locking buckle; 30 - First flange; 40 - Second flange; 500 - Buoy structure; 510 - Solar panel; 600 - Connecting cylinder. Detailed Implementation

[0033] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, the specific embodiments of this application are described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this application. Therefore, this application is not limited to the specific embodiments disclosed below.

[0034] In the description of this application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.

[0035] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0036] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0037] In this application, unless otherwise expressly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0038] It should be noted that when an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. When an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.

[0039] Ocean detection devices are commonly used to detect and record various ocean parameters such as ocean water quality, hydrological data, and marine microbial information. They provide humans with first-hand raw data for perceiving changes in the marine ecological environment, and their detection accuracy directly affects scientists' results in detecting the marine environment. However, existing detectors still suffer from slow detection progress, mainly due to the obstruction of ocean currents. The resulting disturbances interfere with multi-parameter detectors, thus affecting measurement accuracy.

[0040] The following description, in conjunction with the accompanying drawings and specific embodiments, further illustrates a multi-parameter detector mounting bracket and marine exploration device proposed in this application, but does not limit this application to the scope of the embodiments.

[0041] In one embodiment, such as Figures 1-3 As shown, the multi-parameter detector mounting bracket includes a first structural plate 200, a second structural plate 300, and a third structural plate 400. The first structural plate 200 is located at the top, the second structural plate 300 is located below and parallel to the first structural plate 200, and the third structural plate 400 is located below and parallel to the second structural plate 300. The three are interconnected by a first connecting column 10 and a second connecting column 20, forming a stable support frame from top to bottom.

[0042] Specifically, the first structural plate 200 has a first opening slot 210 on one side to accommodate the top shape of the multi-parameter detector 100. A first latch 50 is installed at the first opening slot 210 to clamp the top of the detector after placement, thereby limiting the upper displacement of the detector. The second structural plate 300 has a corresponding second opening slot 310 to accommodate the outer wall of the middle section of the multi-parameter detector 100, and is clamped by a second latch 60 installed at the second opening slot 310 to prevent the detector from swaying in the middle position. The third structural plate 400 has a corresponding third opening slot 410 to accommodate the outer wall of the bottom of the detector. A third latch 70 is installed at the third opening slot 410 to clamp the bottom of the detector, ensuring a stable fixed state for the entire detector under three-point clamping. This multi-layered latch clamping method achieves omnidirectional fixation from top to middle to bottom, significantly enhancing the stability of the detector under ocean current disturbances, thereby improving detection accuracy.

[0043] Specifically, the main bodies of the first structural plate 200, the second structural plate 300, and the third structural plate 400 are all circular plate structures. One side of the first structural plate 200 protrudes outwards, and a semi-circular first opening slot 210 is formed at the protruding position. Similarly, one side of the second structural plate 300 protrudes outwards, and a semi-circular second opening slot 310 is formed at the protruding position. The third structural plate 400 protrudes outwards, and a semi-circular third opening slot 410 is formed at the protruding position. The diameters of the first opening slot 210, the second opening slot 310, and the third opening slot 410 are all adapted to the shape of the multi-parameter detector 100. The first latch 50, the second latch 60, and the third latch 70 are all semi-circular saddle-shaped latches. The first latch 50 is fixed to both sides of the first opening slot 210 by bolts to clamp the upper part of the multi-parameter detector 100. The second latch 60 is fixed to both sides of the second opening slot 310 by bolts to clamp the upper middle part of the multi-parameter detector 100. The third latch 70 is fixed to both sides of the third opening slot 410 by bolts to clamp the bottom of the multi-parameter detector 100.

[0044] In a preferred embodiment, there are multiple first connecting posts 10 and multiple second connecting posts 20. Each first connecting post 10 is circumferentially spaced between the first structural plate 200 and the second structural plate 300. There are multiple second connecting posts 20, which are circumferentially spaced between the second structural plate 300 and the third structural plate 400.

[0045] Specifically, in the embodiments shown in this application, seven of each of the first connecting post 10 and the second connecting post 20 are provided. Bolts are provided at both ends of the first connecting post 10 and the second connecting post 20. A plurality of first bolt holes 220 are provided circumferentially at intervals on the first structural plate 200, a plurality of threaded holes 320 are provided circumferentially at intervals on the second structural plate 300, and a plurality of second bolt holes 420 are provided circumferentially at intervals on the third structural plate 400. The first bolt holes 220, threaded holes 320, and second bolt holes 420 are aligned one by one along the vertical direction. The bolt at the lower end of the first connecting post 10 is tightened into the upper half of the threaded hole 320, and the bolt at the upper end of the second connecting post 20 is tightened into the lower half of the threaded hole 320. The bolt at the upper end of the first connecting post 10 passes through the first through hole and is then locked by a nut, and the bolt at the lower end of the second connecting post 20 passes through the second bolt hole 420 and is then locked by a nut.

[0046] Multiple connecting columns not only provide sufficient connection strength for the connection of the first structural plate 200, the second structural plate 300, and the third structural plate 400, but also evenly distribute the external forces under the action of ocean currents. In addition, in order to adapt to the shape structure of the multi-parameter detector 100, the distance between the second structural plate 300 and the third structural plate 400 is greater than the distance between the first structural plate 200 and the second structural plate 300, so that the fixing frame can ensure a tight clamping at the top and middle while leaving room for the installation of the flow deflector 120 at the bottom, under the structural relationship of tight at the top and loose at the bottom.

[0047] Since the first structural plate 200, the second structural plate 300, and the third structural plate 400 are parallel to each other and arranged at intervals, ocean currents can pass parallel through the spaces between the three structural plates, reducing the generation of turbulence and thus reducing the interference of turbulence on the multi-parameter detector 100, thereby improving measurement accuracy. At the same time, since the length direction of the multi-parameter detector 100 is the same as the distribution direction of the first structural plate 200, the second structural plate 300, and the third structural plate 400, that is, the installation direction of the multi-parameter detector 100 is perpendicular to the horizontal direction of the three structural plates, this further reduces the obstruction of the three structural plates to the ocean currents to be detected by the multi-parameter detector 100, and further improves the detection accuracy of the multi-parameter detector 100.

[0048] The multi-parameter detector 100 includes a base 110, a multi-parameter probe, and a baffle 120. The base 110 is fixed to one end of the baffle 120. The multi-parameter probe is mounted on the base 110 and extends into the baffle 120. The base 110 of the multi-parameter probe is fixed in the first opening slot 210 and the second opening slot 310 by a first latch 50 and a second latch 60. The baffle 120 is fixed in the third opening slot 410 by a third latch 70. The baffle 120 can effectively change the flow field distribution when seawater flows through the detector, reduce the impact and disturbance effect of ocean currents on the detector body, and thus avoid deviations in measurement data due to external water flow interference.

[0049] In some embodiments, a first flange 30 and a second flange 40 are respectively provided on both sides of the second structural plate 300. Specifically, both the first flange 30 and the second flange 40 are provided with through holes for aligning threaded holes 320. During the connection process, the bolt at the lower end of the first connecting column 10 passes through the through hole of the first flange 30 and is threaded into the threaded hole 320. The upper end of the second connecting column 20 passes through the through hole of the second flange 40 and is threaded into the threaded hole 320. The provision of the first flange 30 and the second flange 40 increases the thickness of the second structural plate 300, ensuring that the first connecting column 10 and the second connecting column 20 are tightened in place in the threaded holes 320 of the second structural plate 300.

[0050] Reference Figure 4 This application also proposes a marine detection device. It includes the aforementioned multi-parameter detector mounting bracket and a buoy structure 500 mounted on the first structural plate 200. The buoy structure 500 provides buoyancy support for the entire detection system, enabling the detector to remain in the target waters for long-term monitoring.

[0051] Furthermore, a solar panel 510 is installed on the buoy structure 500. The solar panel 510 is electrically connected to the multi-parameter detector 100. The detector is powered by solar energy, which ensures that the device can work continuously for a long time in the sea far from land and reduces the frequency of manual maintenance.

[0052] In the preferred embodiment, the buoy structure 500 also integrates a BeiDou positioning system. This system is electrically connected to the multi-parameter detector 100 to acquire and upload the device's location information in real time, facilitating researchers to accurately determine the geographical location of the collected data. With the addition of the BeiDou positioning system, the detection device can still achieve precise positioning even when drifting or being propelled by ocean currents, improving the reliability of data acquisition.

[0053] In another embodiment, the buoy structure 500 is also equipped with a communication module, which is connected to the multi-parameter detector 100. This module transmits multi-dimensional marine data, such as water quality, temperature, salinity, and microbial distribution, collected by the detector to shore-based stations or research centers in real time. The communication module enables the device to perform remote monitoring and real-time data transmission, significantly improving detection efficiency and avoiding data lag issues caused by manual sampling or delayed data collection.

[0054] Specifically, the buoy structure 500 is connected to the first structural plate 200 via a connecting cylinder 600. The outer wall of the connecting cylinder 600 is covered with small holes. The lower end of the connecting cylinder 600 is vertically connected to the first structural plate 200, and the buoy structure 500 is installed at the upper end of the connecting cylinder 600.

[0055] In addition, a counterweight is placed inside the connecting tube 600, which lowers the center of gravity of the buoy structure 500, thereby improving the stability of the buoy structure 500.

[0056] In summary, the multi-parameter detector mounting bracket and marine detection device of this application achieve stable fixation of the multi-parameter detector 100 through multi-layer structural plates and circumferentially distributed connecting columns, while reducing the impact of turbulence on the multi-parameter detector 100. The inclusion of the flow deflector 120 effectively reduces ocean current interference, further ensuring detection accuracy. Furthermore, in conjunction with functional units such as the solar panel 510, BeiDou positioning, and communication module, the device possesses comprehensive performance characteristics including long-term power supply, precise positioning, and long-distance transmission.

[0057] The embodiments of this application have been described in detail above with reference to the accompanying drawings. However, this application is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of this application.

Claims

1. A multi-parameter detector mounting bracket, characterized in that, include: A first structural plate, wherein a first opening slot is provided on one side of the first structural plate, the first opening slot being used to mate with the top of a multi-parameter detector; A first latch is installed at the first opening slot to clamp the top of the multi-parameter detector; The second structural plate is arranged parallel to the first structural plate. The second structural plate is located below the first structural plate and is spaced apart from the first structural plate. A second opening slot is provided on the same side as the first structural plate. The second opening slot is used to cooperate with the outer wall of the middle part of the multi-parameter detector. The second latch is installed at the second opening slot to clamp the middle of the multi-parameter detector; The first connecting column connects the first structural plate and the second structural plate; The third structural plate is arranged parallel to the second structural plate. The third structural plate is located below the second structural plate and is spaced apart from the second structural plate. A third opening slot is provided on the same side as the second structural plate. The third opening slot is used to fit the outer side wall of the bottom of the multi-parameter detector. The second connecting column connects the second structural plate and the third structural plate; The third latch is installed at the third opening slot to clamp the bottom of the multi-parameter detector; The length direction of the multi-parameter detector is the same as the distribution direction of the first structural plate, the second structural plate, and the third structural plate.

2. The multi-parameter detector mounting bracket according to claim 1, characterized in that: The distance between the second structural plate and the third structural plate is greater than the distance between the first structural plate and the second structural plate.

3. The multi-parameter detector mounting bracket according to claim 2, characterized in that: Multiple first connecting columns are provided, and each first connecting column is distributed circumferentially between the first structural plate and the second structural plate.

4. The multi-parameter detector mounting bracket according to claim 3, characterized in that: Multiple second connecting columns are provided, and each second connecting column is distributed circumferentially between the second structural plate and the third structural plate.

5. The multi-parameter detector mounting bracket according to claim 1, characterized in that: A first flange and a second flange are respectively provided on both sides of the second structural plate. One end of the first connecting column is connected to the first flange and the second structural plate, and one end of the second connecting column is connected to the first flange and the second structural plate.

6. The multi-parameter detector mounting bracket according to claim 1, characterized in that: The multi-parameter detector includes a base, a multi-parameter probe, and a deflector. The base is fixed to one end of the deflector. The multi-parameter probe is mounted on the base and extends into the deflector. The base of the multi-parameter probe is fixed in the first opening slot and the second opening slot by the first latch and the second latch. The deflector is fixed in the third opening slot by the third latch.

7. A marine exploration device, characterized in that, include: The multi-parameter detector mounting bracket according to any one of claims 1 to 6; The buoy structure is mounted on the first structural plate of the multi-parameter detector mounting bracket.

8. The marine exploration device according to claim 7, characterized in that: A solar panel is installed on the buoy structure, and the solar panel is connected to the multi-parameter detector.

9. The marine exploration device according to claim 8, characterized in that: The buoy structure is also equipped with a BeiDou positioning system, which is connected to the multi-parameter detector.

10. The marine exploration device according to claim 9, characterized in that: The buoy structure is also equipped with a communication module, which is connected to the multi-parameter detector.