Plankton in-situ monitoring structure

By designing a cylindrical in-situ plankton monitoring structure and securing it to the buoy instrument well using installation components, the problem of traditional instruments being too large to install was solved, thus achieving safe and reliable marine plankton monitoring.

CN223611368UActive Publication Date: 2025-11-28SHENZHEN OASIS LIGHT BIOTECHNOLOGY CO LTD +1
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Patent Information

Application Number
CN202423087174.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-13
Publication Date
2025-11-28
Estimated Expiration
2034-12-13

AI Technical Summary

Technical Problem

Traditional in-situ monitoring instruments are bulky and not suitable for installation inside buoy instrument wells.

Method used

An in-situ planktonic monitoring structure was designed, including an in-situ monitoring host and an installation component. The host is securely installed in a cage frame using a first fixing plate and a second fixing plate. The cage frame is fixedly connected to the buoy instrument well to achieve vertical installation.

Benefits of technology

The system enables safe and reliable installation of in-situ plankton monitoring structures, reduces external environmental interference, and improves monitoring quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a plankton in-situ monitoring structure which comprises an in-situ monitoring host and an installation assembly used for vertically installing the in-situ monitoring host in a buoy instrument well, and the in-situ monitoring host is arranged in a cylindrical shape and used for conducting in-situ monitoring on marine planktons. Wherein the installation assembly comprises a cage frame used for being fixedly connected with a buoy instrument well, a first fixing disc and a second fixing disc are fixedly installed in the cage frame, the first fixing disc is fixedly connected to one end of the in-situ monitoring host, and the second fixing disc is fixedly connected to the other end of the in-situ monitoring host. According to the in-situ monitoring device, the in-situ monitoring host is fastened and installed in the cage frame through the fixing effect of the first fixing disc and the second fixing disc; due to the fact that the cage frame is fixedly connected with the buoy instrument well, the in-situ monitoring host can be vertically installed in the buoy instrument well to conduct in-situ monitoring on the marine plankton. Therefore, the device is safe and reliable in structure and can be conveniently and adaptively mounted in a buoy instrument well.
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Description

TECHNICAL FIELD

[0001] The utility model relates to plankton monitoring technical field especially relates to a plankton in situ monitoring structure. BACKGROUND

[0002] The plankton in situ monitoring structure is a device for observing, recording and analyzing the biological state at the original position. The monitoring structure utilizes the optical imaging principle to monitor the original water body position where the plankton lives, and is generally installed on the carrier such as the floating body, the buoy, the pile foundation, etc.

[0003] In the prior art, the buoy is the main carrier of the in situ monitoring device, and the circular instrument well for installing the water quality monitoring instrument is arranged on the buoy and penetrates the buoy from the surface of the buoy body. However, the conventional in situ monitoring instrument structure is large in size and is not suitable for being installed on the buoy.

[0004] Therefore, how to provide a plankton in situ monitoring structure to be adapted and installed in the buoy instrument well becomes a technical problem to be solved urgently. SUMMARY

[0005] The utility model aims at providing a plankton in situ monitoring structure, which solves the technical problem that the conventional in situ monitoring instrument structure is large in size and is not adapted to be installed in the buoy instrument well.

[0006] To achieve the above purpose, the utility model adopts the following technical scheme:

[0007] A plankton in situ monitoring structure comprises an in situ monitoring host and a mounting assembly for vertically mounting the in situ monitoring host in the buoy instrument well, wherein the in situ monitoring host is cylindrically arranged and is used for in situ monitoring of marine plankton.

[0008] The mounting assembly comprises a cage for fixed connection with the buoy instrument well, and the first fixing disc and the second fixing disc are tightly mounted in the cage, the first fixing disc is fixedly connected to one end of the in situ monitoring host, and the second fixing disc is fixedly connected to the other end of the in situ monitoring host.

[0009] Optionally, the cage comprises a first mounting disc, a second mounting disc and a third mounting disc which are sequentially and spacedly arranged, and the first mounting disc, the second mounting disc and the third mounting disc are connected through a plurality of protection rods.

[0010] The first mounting disc is used for fixed connection with the buoy instrument well, the second mounting disc is connected with the first fixing disc, and the third mounting disc is connected with the second fixing disc.

[0011] Optionally, the in-situ monitoring host comprises a master cabin, one end of the master cabin is provided with a monitoring cabin coaxially arranged with the master cabin, one end of the monitoring cabin is provided with a light source cabin at intervals for providing light for the monitoring cabin, and the monitoring cabin is coaxially arranged with the light source cabin and connected through a plurality of first connecting rods.

[0012] Optionally, a wire tube is arranged between the monitoring cabin and the light source cabin for accommodating the wire.

[0013] Optionally, a first cleaning piece is rotatably connected to the end of the monitoring cabin relative to the master cabin, and the first cleaning piece is used for cleaning the window piece of the monitoring cabin.

[0014] Optionally, a second cleaning piece is rotatably connected to the light source cabin, and the second cleaning piece is used for cleaning the window piece of the light source cabin.

[0015] Optionally, a communication cable joint is arranged at one end of the master cabin relative to the monitoring cabin, and the communication cable joint is used for connecting the power supply and communication network equipment.

[0016] Optionally, a protection ring is arranged on one side of the master cabin for protecting the communication cable joint, and the protection ring is connected to the master cabin through a plurality of second connecting rods.

[0017] Compared with the prior art, the utility model has the following beneficial effects:

[0018] The in-situ monitoring host is cylindrical, and is fastened and installed in the cage through the fixing effect of the first fixing disc and the second fixing disc; the cage is fixedly connected with the buoy instrument well, and the in-situ monitoring host can be vertically installed in the buoy instrument well, and the marine plankton is in-situ monitored. BRIEF DESCRIPTION OF DRAWINGS

[0019] In order to more clearly illustrate the technical scheme in the embodiments of the utility model or the prior art, the drawings needed to be used in the embodiment or the prior art description will be briefly introduced, and obviously, the drawings in the following description are only some embodiments of the utility model, and for those skilled in the art, other drawings can be obtained without creative labor under the premise of the drawings.

[0020] The structure, proportion, size and the like shown in the drawings of the specification are only used to cooperate with the content disclosed in the specification, to be understood and read by those skilled in the art, and do not define the limiting conditions for the implementation of the utility model, so they do not have substantial technical significance. Any modification of the structure, change of the proportional relationship or adjustment of the size, without affecting the functions and purposes that can be achieved by the utility model, should still fall within the scope of the technical content disclosed by the utility model.

[0021] Figure 1 is a perspective structural schematic diagram of a phytoplankton in-situ monitoring structure disclosed by the embodiment;

[0022] Figure 2 is a partial structural schematic diagram of the phytoplankton in-situ monitoring structure from another viewing angle disclosed by the embodiment;

[0023] Figure 3 is a partial structural schematic diagram of the phytoplankton in-situ monitoring structure from another viewing angle disclosed by the embodiment;

[0024] Figure 4 is a partial front view structural schematic diagram of the phytoplankton in-situ monitoring structure disclosed by the embodiment;

[0025] Figure 5 is a partial bottom view structural schematic diagram of the phytoplankton in-situ monitoring structure disclosed by the embodiment;

[0026] Figure 6 is an application schematic diagram of the phytoplankton in-situ monitoring structure disclosed by the embodiment.

[0027] Illustration:

[0028] 10, in-situ monitoring host; 11, master control cabin; 111, airtight test port; 12, monitoring cabin; 121, first cleaning piece; 13, light source cabin; 131, second cleaning piece; 14, first connecting rod; 15, wire passing pipe; 16, communication cable joint; 17, protection ring; 18, second connecting rod;

[0029] 20, mounting assembly; 21, cage; 211, first mounting disc; 212, second mounting disc; 213, third mounting disc; 214, protection rod; 22, first fixing disc; 23, second fixing disc;

[0030] 30, buoy instrument well. DETAILED DESCRIPTION

[0031] In order to make the utility model more obvious and easy to understand, the technical solutions in the embodiments of the utility model will be clearly and completely described in the following with reference to the drawings in the embodiments of the utility model. Obviously, the embodiments described below are only a part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the utility model.

[0032] In the description of the utility model, it should be understood that the terms "upper", "lower", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the utility model and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the utility model. It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there can be a component disposed therebetween.

[0033] The technical solutions of the utility model will be further illustrated in the following with reference to the drawings and through specific embodiments.

[0034] The utility model discloses a kind of plankton in-situ monitoring structures, as shown in Figures 1-6 It includes: in-situ monitoring host 10 and the installation component 20 for being vertically installed in buoy instrument well 30 in-situ monitoring host 10, in-situ monitoring host 10 is cylindrically arranged and is used to carry out in-situ monitoring to marine plankton;

[0035] Among them, installation component 20 includes the cage 21 for being fixedly connected with buoy instrument well 30, the first fixed disc 22 and the second fixed disc 23 are tightly installed in cage 21, the first fixed disc 22 is fixedly connected to one end of in-situ monitoring host 10, and the second fixed disc 23 is fixedly connected to the other end of in-situ monitoring host 10.

[0036] It should be noted that the in-situ monitoring structure of the utility model is provided, because in-situ monitoring host 10 is cylindrically arranged, in-situ monitoring host 10 is tightly installed in cage 21 by the fixing effect of the first fixed disc 22 and the second fixed disc 23;Because cage 21 is fixedly connected with buoy instrument well 30, in-situ monitoring host 10 can be vertically installed in buoy instrument well 30, and in-situ monitoring to marine plankton is carried out.Therefore, the in-situ monitoring structure of the utility model is disclosed, which is safe and reliable in structure, and is conveniently and adaptively installed in buoy instrument well 30.

[0037] As Figures 1-4As shown, the cage 21 comprises a first mounting disc 211, a second mounting disc 212 and a third mounting disc 213 arranged in sequence and spaced, and the first mounting disc 211, the second mounting disc 212 and the third mounting disc 213 are connected through a plurality of guard rods 214; it should be noted that the guard rods 214 are respectively welded and fixed with the first mounting disc 211, the second mounting disc 212 and the third mounting disc 213, and the first mounting disc 211 is distributed with a plurality of mounting holes along the axial direction, and the screws are fastened and connected with the buoy instrument well 30 through the mounting holes;

[0038] The first mounting disc 211 is used for fixed connection with the buoy instrument well 30, the second mounting disc 212 is connected with the first fixed disc 22, and the third mounting disc 213 is connected with the second fixed disc 23. In the embodiment, the first mounting disc 211 is fastened and connected with the buoy instrument well 30 through screws, the second mounting disc 212 is fastened and connected with the first fixed disc 22 through screws, and the third mounting disc 213 is fastened and connected with the second fixed disc 23 through screws.

[0039] As shown in the figure, Figures 1-4 The in-situ monitoring host 10 comprises a main control cabin 11, one end of the main control cabin 11 is provided with a monitoring cabin 12 coaxially arranged with the main control cabin 11, one end of the monitoring cabin 12 is provided with a light source cabin 13 for providing light for the monitoring cabin 12, the monitoring cabin 12 and the light source cabin 13 are coaxially arranged and connected through a plurality of first connecting rods 14, and the main control cabin 11 is used for controlling the working state of the monitoring cabin 12 and the light source cabin 13. In the embodiment, the first fixed disc 22 is fastened and connected with the main control cabin 11 through screws, and the second fixed disc 23 is fastened and connected with the light source cabin 13 through screws; since the first fixed disc 22 and the second fixed disc 23 are both tray structures, they can better bear the weight of the equipment structure; compared with the traditional clamp fixing mode, the structure is more safe and reliable. The first connecting rod 14 is a stainless steel screw rod.

[0040] It should be noted that the vertically placed in-situ monitoring equipment has an open space between the monitoring cabin 12 and the light source cabin 13, has little influence on the plankton environment, and reduces the external environmental interference.

[0041] As shown in the figure, Figures 1-3 A wire passing pipe 15 is arranged between the monitoring cabin 12 and the light source cabin 13 for accommodating the electric wire. It should be noted that the wire passing pipe 15 is a stainless steel pipe; through the arrangement of the wire passing pipe 15, the electric wire can be protected, direct contact between seawater and the electric wire is avoided, and normal operation of the monitoring structure is ensured.

[0042] As shown in the figure, Figure 3As shown, the end of the monitoring cabin 12 relative to the main control cabin 11 is rotatably connected with a first cleaning member 121, and the first cleaning member 121 is used for cleaning the window of the monitoring cabin 12. It should be noted that the first cleaning member 121 can be manually actuated or driven by a motor, and the window of the monitoring cabin 12 is cleaned by swinging of the first cleaning member 121, thereby improving the picture acquisition quality. The first cleaning member 121 can be a cleaning sponge or a cleaning wiper.

[0043] As shown in the figure, Figure 2 The light source cabin 13 is rotatably connected with a second cleaning member 131, and the second cleaning member 131 is used for cleaning the window of the light source cabin 13. It should be noted that the second cleaning member 131 can be manually actuated or driven by a motor, and the window of the light source cabin 13 is cleaned by swinging of the second cleaning member 131, thereby ensuring sufficient light intensity for the monitoring cabin 12 and improving the picture acquisition quality. The second cleaning member 131 can be a cleaning sponge or a cleaning wiper.

[0044] As shown in the figure, Figures 1-5 The main control cabin 11 is provided with a communication cable joint 16 at one end relative to the monitoring cabin 12, and the communication cable joint 16 is used for connecting power supply and communication network equipment. In the specific implementation process, the main control cabin 11 is provided with an air tightness test port 111 adjacent to the communication cable joint 16. Through the arrangement of the air tightness test port 111, the air tightness of the main control cabin 11 can be tested.

[0045] As shown in the figure, Figures 2-4 One side of the main control cabin 11 is provided with a protection ring 17 for protecting the communication cable joint 16, and the protection ring 17 is connected with the main control cabin 11 through a plurality of second connecting rods 18. In this embodiment, the communication cable joint 16 is protected by the protection ring 17, one end of the second connecting rod 18 is fixedly connected with the protection ring 17, and the other end of the second connecting rod 18 is fixedly connected with the main control cabin 11; the protection ring 17 also serves as a handle, thereby facilitating the handling of the in-situ monitoring host 10.

[0046] Working principle: Figure 6 The application diagram of the in-situ monitoring structure of plankton is disclosed in this embodiment, and the in-situ monitoring structure of plankton is provided. The in-situ monitoring host 10 is fixedly installed in the cage 21 through the fixing effect of the first fixing disc 22 and the second fixing disc 23. Since the cage 21 is fixedly connected with the buoy instrument well 30, the in-situ monitoring host 10 can be vertically installed in the buoy instrument well 30, thereby monitoring the marine plankton in-situ. Therefore, the in-situ monitoring structure of plankton is safe and reliable in structure, and is conveniently and adaptively installed in the buoy instrument well 30.

[0047] The above-described above embodiments are only used to illustrate the technical solutions of the present application, and are not limited thereto; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that the technical solutions recorded in the foregoing embodiments can still be modified, or some technical features therein can be replaced by equivalents; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present application.

Claims

1. A phytoplankton in situ monitoring structure, characterized by, The utility model relates to a kind of in-situ monitoring host (10) and installation assembly (20) for installing the in-situ monitoring host (10) vertically in buoy instrument well (30), the in-situ monitoring host (10) is cylindrical and is used to monitor marine plankton in-situ; Wherein, the installation assembly (20) includes a cage (21) for fixed connection with buoy instrument well (30), the first fixed disc (22) and the second fixed disc (23) are tightly installed in the cage (21), the first fixed disc (22) is fixedly connected to one end of the in-situ monitoring host (10), and the second fixed disc (23) is fixedly connected to the other end of the in-situ monitoring host (10). The cage (21) includes a first mounting disc (211), a second mounting disc (212) and a third mounting disc (213) arranged in sequence, and the first mounting disc (211), the second mounting disc (212) and the third mounting disc (213) are connected by a plurality of protection rods (214).

2. Phytoplankton in situ monitoring structure according to claim 1, characterized in that Wherein, the first mounting disc (211) is used for fixed connection with buoy instrument well (30), the second mounting disc (212) is connected with the first fixed disc (22), and the third mounting disc (213) is connected with the second fixed disc (23). The in-situ monitoring host (10) includes a main control cabin (11), one end of the main control cabin (11) is provided with a monitoring cabin (12) coaxially arranged with the main control cabin (11), one end of the monitoring cabin (12) is provided with a light source cabin (13) for providing light for the monitoring cabin (12), and the monitoring cabin (12) and the light source cabin (13) are coaxially arranged and connected by a plurality of first connecting rods (14).

3. Phytoplankton in situ monitoring structure according to claim 1 or 2, characterized in that, A wire tube (15) is provided between the monitoring cabin (12) and the light source cabin (13) for accommodating the wire.

4. Phytoplankton in situ monitoring structure according to claim 3, characterized in that A first cleaning member (121) is rotatably connected to the end of the monitoring cabin (12) relative to the main control cabin (11), and the first cleaning member (121) is used for cleaning the window pane of the monitoring cabin (12).

5. The phytoplankton in situ monitoring structure of claim 3, wherein, A second cleaning member (131) is rotatably connected to the light source cabin (13), and the second cleaning member (131) is used for cleaning the window pane of the light source cabin (13).

6. The phytoplankton in situ monitoring structure of claim 3, wherein, A communication cable joint (16) is installed at one end of the main control cabin (11) relative to the monitoring cabin (12), and the communication cable joint (16) is used for connecting power supply and communication network equipment.

7. The phytoplankton in situ monitoring structure of claim 3, wherein, A protection ring (17) is provided on one side of the main control cabin (11) for protecting the communication cable joint (16), and the protection ring (17) and the main control cabin (11) are connected by a plurality of second connecting rods (18).

8. Phytoplankton in situ monitoring structure according to claim 7, characterized in that ​