Seawater storage device

Through the design of the first stirring component and the second stirring component, the problems of pH imbalance and oxygen deficiency during seawater transportation are solved, the rapid fusion of seawater and neutralizer is achieved, and the stability of seawater and oxygen supply during transportation are ensured.

CN120553282BActive Publication Date: 2025-09-30GUANGZHOU MARINE GEOLOGICAL SURVEY SANYA SOUTH CHINA SEA INST OF GEOLOGY +1
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Patent Information

Application Number
CN202511046161.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-07-29
Publication Date
2025-09-30
Estimated Expiration
2045-07-29

AI Technical Summary

Technical Problem

During the transportation of seawater, the seawater is prone to pH imbalance and oxygen deficiency problems, and existing equipment is unable to effectively stir the neutralizer and fully blend it with the seawater.

Method used

The combined design of the first stirring component and the second stirring component is adopted to achieve sufficient stirring of the seawater through rotation and reciprocating movement, thereby enhancing the fusion speed of the neutralizer and the seawater.

Benefits of technology

The fusion speed of the neutralizer and seawater in the seawater storage device is improved, ensuring that the pH of the seawater is stable and the oxygen is sufficient during transportation.

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Abstract

The present application discloses a seawater storage device, which includes a first stirring component and a second stirring component. The first stirring component is rotatable and includes a rotating shaft and a first stirring member fixedly mounted on the rotating shaft. The second stirring component includes a mounting seat and a second stirring member movably mounted on the mounting seat. The second stirring member is slidably connected to the first stirring member. A guide structure is provided between the mounting seat and the rotating shaft. When the first stirring component rotates, the first stirring component drives the second stirring member to rotate, and drives the mounting seat to drive the second stirring member to move back and forth through the guide structure. The rotating shaft can drive the first stirring member to rotate, thereby stirring the seawater inside the device. The first stirring member will also drive the second stirring member to rotate during the rotation process. At the same time, the first stirring component can drive the mounting seat and the second stirring member to move back and forth by rotating, thereby increasing the stirring amplitude of the seawater.
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Description

Technical Field

[0001] The present application relates to the technical field of marine equipment, and in particular to a seawater storage device. Background Art

[0002] Deep seawater is widely used in energy, aquaculture, agriculture and food and other fields. However, my country's continental shelf extends to the deep seawater in a gentle slope. The coast is far away from the deep seawater, and the extraction of deep seawater is more difficult.

[0003] The current process for extracting seawater often requires storage before transport. However, during this process, pH imbalances and oxygen deficiency can easily occur, affecting the subsequent use of the seawater. To alleviate this pH imbalance, a neutralizer must be added to the seawater and the water must be thoroughly stirred. However, current seawater storage equipment cannot meet this requirement. Summary of the Invention

[0004] The present application aims to solve at least one of the technical problems existing in the prior art. To this end, the present application proposes a seawater storage device that can fully stir seawater through a first stirring component and a second stirring component.

[0005] According to the seawater storage device of the first aspect embodiment of the present application, the seawater storage device includes a first stirring component and a second stirring component, the first stirring component is rotatable, the first stirring component includes a rotating shaft and a first stirring component fixedly arranged on the rotating shaft; the second stirring component includes a mounting seat and a second stirring component movably arranged on the mounting seat, the second stirring component is slidingly connected to the first stirring component, and a guide structure is provided between the mounting seat and the rotating shaft. When the first stirring component rotates, the first stirring component drives the second stirring component to rotate, and drives the mounting seat through the guide structure to drive the second stirring component to move back and forth.

[0006] The seawater storage device according to the embodiment of the present application has at least the following beneficial effects: the first stirring component is fixedly arranged on the rotating shaft, and the rotating shaft can drive the first stirring component to rotate, thereby stirring the seawater inside the device; the second stirring component is arranged on the mounting seat, and the second stirring component is slidably connected to the first stirring component, and the first stirring component also drives the second stirring component to rotate during the rotation process. At the same time, under the action of the guide structure, the first stirring component can drive the mounting seat and the second stirring component to move back and forth by rotation, thereby increasing the stirring amplitude of the seawater and accelerating the fusion speed of the neutralizer and seawater inside the seawater storage device.

[0007] According to some embodiments of the present application, the guide structure includes a guide groove provided on the side wall of the rotating shaft and a guide block provided on the mounting seat, and the guide block can be slidably embedded in the guide groove.

[0008] According to some embodiments of the present application, the guide groove includes a first movable guide portion and a second movable guide portion, and the first movable guide portion and the second movable guide portion are inclined to the axial direction of the rotating shaft. When the guide block slides along the first movable guide portion, the mounting seat is close to the first stirring component, and when the guide block slides along the second movable guide portion, the mounting seat is away from the first stirring component.

[0009] According to some embodiments of the present application, the guide groove also includes a first connecting portion and a second connecting portion, the first end of the first movable guide portion and the first end of the second movable guide portion are connected through the first connecting portion, and the second end of the first movable guide portion and the second end of the second movable guide portion are connected through the second connecting portion.

[0010] According to some embodiments of the present application, the first stirring member is provided with a guide hole, and the second stirring member is movably arranged in the guide hole.

[0011] According to some embodiments of the present application, the second stirring component is provided with a slider, and the mounting seat is provided with a slide groove. When the second stirring component rotates, the slider slides in the slide groove.

[0012] According to some embodiments of the present application, the seawater storage device further includes a shell, the first stirring assembly and the second stirring assembly are arranged inside the shell, the shell is provided with a guide rod, and the mounting seat is movably connected to the guide rod.

[0013] According to some embodiments of the present application, the seawater storage device further includes a gas input assembly, which includes a gas storage container and a connecting structure, and the connecting structure drives the gas storage container and the internal space of the shell to connect or isolate by rotation.

[0014] According to some embodiments of the present application, the shell is connected to the gas storage container through a connecting component, and the connecting structure includes a rotating component provided with a first hole and a fixed component provided with a second hole, the fixed component is fixedly connected to the connecting component, the rotating component is rotatably connected to the connecting component, and the rotating component can drive the first hole and the second hole to connect by rotation.

[0015] According to some embodiments of the present application, the gas input assembly further includes a transmission mechanism, and the rotating component is connected to the mounting seat via the transmission mechanism. When the mounting seat moves, the mounting seat drives the rotating component to rotate via the transmission mechanism.

[0016] Additional aspects and advantages of the present application will be given in part in the description below, and in part will become obvious from the description below, or will be learned through practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] The present application is further illustrated below with reference to the accompanying drawings and embodiments. It should be noted that the embodiments shown in the following drawings are exemplary and are only used to explain the present application, and should not be construed as limiting the present application.

[0018] Figure 1 This is a schematic structural diagram of a seawater storage device according to an embodiment of the present application;

[0019] Figure 2 This is a schematic structural diagram of the seawater storage device according to an embodiment of the present application, with one angle of the shell removed;

[0020] Figure 3 Schematic diagram of the structure of the first stirring assembly in the seawater storage device according to an embodiment of the present application;

[0021] Figure 4 Schematic diagram of the structure of the second stirring assembly in the seawater storage device of an embodiment of the present application;

[0022] Figure 5 This is a schematic structural diagram of an angle of the rotating shaft in the seawater storage device according to an embodiment of the present application;

[0023] Figure 6 This is a structural diagram of another angle of the rotating shaft in the seawater storage device according to an embodiment of the present application;

[0024] Figure 7 This is a structural schematic diagram of the seawater storage device according to an embodiment of the present application with the shell removed from another angle;

[0025] Figure 8 This is a structural diagram of the gas input assembly in the seawater storage device of an embodiment of the present application without the gas storage container;

[0026] Figure 9 This is a schematic structural diagram of the gas input assembly in the seawater storage device of an embodiment of the present application, excluding the gas storage container and the fixing components;

[0027] Figure 10 It is a cross-sectional view of the rotating components and the connecting components in the seawater storage device according to an embodiment of the present application.

[0028] Reference numerals:

[0029] 100. Rotating shaft; 102. First stirring member; 103. Bearing; 104. Driving member;

[0030] 201. Mounting seat; 202. Second stirring member; 203. Guide groove; 204. Guide block;

[0031] 301. First moving guide portion; 302. Second moving guide portion; 303. First connecting portion;

[0032] 401. Slider; 402. Slide;

[0033] 501. Guide sleeve; 502. Connecting plate; 503. Mounting ring;

[0034] 601. Housing; 602. Guide rod; 603. Water inlet; 604. Fixed pull ring; 605. Connecting component;

[0035] 701. Gas storage container; 702. First hole; 703. Rotating component; 704. Second hole; 705. Fixed component; 706. Limiting slider;

[0036] 801. Driving rod; 802. Positioning plate; 803. Sliding groove; 804. L-shaped connecting rod; 805. Sliding rod. DETAILED DESCRIPTION

[0037] The embodiments of the present application are described in detail below with reference to the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present application and are not to be construed as limiting the present application.

[0038] In the description of this application, it should be understood that if the terms "center", "middle", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "axial", "radial", "circumferential" and the like appear, the orientation or position relationship indicated is based on the orientation or position relationship shown in the accompanying drawings, which is only for the convenience of describing this application and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on this application.

[0039] In the description of this application, "several" means more than one, "plurality" means more than two, "greater than," "less than," and "exceed" are understood to exclude the number itself, while "above," "below," and "within" are understood to include the number itself. The use of "first" and "second" in the description is solely for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance, implicitly specifying the number of the indicated technical features, or implicitly specifying the order of the indicated technical features.

[0040] In the description of this application, unless otherwise specified or limited, the terms "disposed," "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed, detachable, or integral connections; they can refer to mechanical or electrical connections; they can refer to direct connections or indirect connections through an intermediate medium; and they can refer to internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in this application based on the specific circumstances.

[0041] In the description of this application, if the reference terms "one embodiment", "some embodiments", "one embodiment", "some examples", "some embodiments", "illustrative embodiment", "example", "specific example", "some examples", etc. appear, it means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present application. In this specification, the schematic representation of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any appropriate manner in any one or more embodiments or examples.

[0042] like Figure 1 and Figure 2 As shown, an embodiment of the present application provides a seawater storage device comprising a first stirring assembly and a second stirring assembly. When the pH of the seawater within the seawater storage device is unbalanced, a neutralizer needs to be added to the drainage storage device to adjust the pH of the seawater. It is understood that after the neutralizer is added to the seawater, the seawater needs to be thoroughly stirred to ensure that the neutralizer is quickly and evenly incorporated into the seawater.

[0043] The first stirring assembly and the second stirring assembly are both used to stir the seawater in the seawater storage device. The first stirring assembly is capable of rotating. During the rotation process, the first stirring assembly can stir the seawater in the seawater storage device, thereby initially stirring the seawater. At the same time, the first stirring assembly can also drive the second stirring assembly to rotate. During the rotation process, the second stirring assembly can also stir the seawater in the seawater storage device. It is worth noting that the second stirring assembly also reciprocates during the rotation process, thereby enhancing the stirring effect of the seawater.

[0044] Therefore, under the combined action of the rotation of the first stirring component, the rotation of the second stirring component and the reciprocating movement of the second stirring component, the seawater in the seawater storage device is fully stirred, greatly improving the speed at which the neutralizer is integrated into the seawater.

[0045] The contents of this application are described in detail below in conjunction with specific embodiments. It should be noted that the following description is only for illustrative purposes and is not a specific limitation to this application.

[0046] like Figure 3 As shown, in some examples, the first stirring assembly includes a rotating shaft 100 and a first stirring member 102. The rotating shaft 100 is formed into a rod-shaped structure, and the first stirring member 102 is also formed into a rod-shaped structure. The first stirring member 102 is fixedly disposed on a side wall of the rotating shaft 100 and extends outward from the side wall of the rotating shaft 100.

[0047] The first stirring assembly also includes several groups of stirring units, each group of stirring units including several first stirring members 102. Each group of stirring units is positioned at a different axial position on the rotating shaft 100. Each group of stirring units includes four first stirring members 102, each extending in different directions to form a diverging shape. Therefore, when the rotating shaft 100 rotates, the diverging first stirring members 102 are able to fully stir the seawater. Specifically, the first stirring assembly includes five stirring units, evenly spaced along the sidewalls of the rotating shaft 100.

[0048] Furthermore, the seawater storage device includes a driving component 104, which is used to drive the rotating shaft 100 to rotate. Specifically, the driving component 104 is a motor. It is understood that the output shaft of the motor is connected to the rotating shaft 100.

[0049] Furthermore, to ensure stable operation of the first agitation assembly, the rotating shaft 100 needs to be positioned. It is understood that the positioning of the rotating shaft 100 must not affect its free rotation. Therefore, a corresponding bracket is provided within the seawater storage device, and the bracket is equipped with a bearing 103. The rotating shaft 100 is connected to the bracket via the bearing 103, thereby ensuring the positioning of the rotating shaft 100 without affecting its free rotation.

[0050] like Figure 4 As shown, in some examples, the second stirring assembly includes a mounting seat 201 and a second stirring member 202 , and the second stirring member 202 can be movably mounted on the mounting seat 201 , that is, the second stirring member 202 can also perform a preset form of movement under the support of the mounting seat 201 .

[0051] Furthermore, the second stirring member 202 is slidably connected to the first stirring member 102. During the rotation of the first stirring member 102, it can drive the second stirring member to rotate at the same amplitude. During the rotation of the second stirring member 202, the second stirring member 202 can also move axially relative to the first stirring member 102. As the second stirring member 202 rotates and moves axially, the second stirring member 202 can enhance the stirring effect of the seawater, which is conducive to the fusion of the seawater and the neutralizer. Specifically, the side wall of the second stirring member 202 is provided with an extended stirring rod, and the extension direction of the extended stirring rod is tangential to the rotation direction of the second stirring member 202. When the second stirring member 202 rotates and moves axially, the extended stirring rod can further enhance the stirring effect of the seawater.

[0052] Furthermore, to facilitate axial movement of the second stirring member 202, a guide structure is provided between the mounting seat 201 and the rotating shaft 100. When the first stirring assembly rotates, the rotating shaft 100 can drive the mounting seat 201 to axially move via the guide structure. It is understood that, as the mounting seat 201 moves axially, the second stirring member 202 can also move axially. Specifically, when the first stirring assembly rotates, the guide structure of the present application can guide the mounting seat 201 to perform axial reciprocating movement, thereby driving the second stirring member 202 to perform axial reciprocating movement, thereby enhancing the stirring effect of the seawater.

[0053] In some examples, the guide structure includes a guide groove 203 and a guide block 204. The guide groove 203 is provided on the side wall of the rotating shaft 100, and the guide block 204 is provided on the mounting seat 201. It is understood that the guide block 204 is embedded in the guide groove 203 and can slide along the extension direction of the guide groove 203, thereby achieving axial reciprocating movement of the second stirring assembly.

[0054] like Figure 5 and Figure 6 As shown, in some examples, the rotation of the mounting base 201 is restricted so that the mounting base 201 can only move axially. Under this condition, when the rotating shaft 100 rotates, the guide block 204 on the mounting base 201 is embedded in the guide groove 203, and the guide block 204 can drive the mounting base 201 to move axially.

[0055] The guide groove 203 includes a first movable guide portion 301 and a second movable guide portion 302, which are inclined relative to the axial direction of the rotating shaft 100. When the guide block 204 slides within the range of the first guide portion, the mounting seat 201 gradually moves closer to the first stirring member 102 as the rotating shaft 100 rotates. When the guide block 204 slides within the range of the second guide portion, the mounting seat 201 gradually moves away from the first guide portion as the rotating shaft 100 rotates. As the guide block 204 continuously enters the first movable guide portion 301 and the second movable guide portion 302, the mounting seat 201 is able to perform axial reciprocating movement, thereby driving the second stirring member 202 to continuously perform axial reciprocating movement, thereby achieving sufficient stirring of the seawater.

[0056] In some examples, the guide groove 203 also includes a first connecting portion 303 and a second connecting portion, the first end of the first movable guide portion 301 and the first end of the second movable guide portion 302 are connected through the first connecting portion 303, and the second end of the first movable guide portion 301 and the second end of the second movable guide portion 302 are connected through the second connecting portion.

[0057] It is understood that when the guide block 204 slides to the first end of the first movable guide portion 301, as the rotating shaft 100 rotates, the guide block 204 enters the first connecting portion 303 and then enters the second movable guide portion 302; when the guide block 204 slides to the second end of the second movable guide portion 302, as the rotating shaft 100 rotates, the guide block 204 enters the second connecting portion and then enters the first movable guide portion 301. The above process is continuously repeated, thereby ensuring that the guide block 204 alternately enters the first movable guide portion 301 and the second movable guide portion 302, so that the guide block 204 can perform axial reciprocating movement, that is, the mounting seat 201 and the second guide component perform axial reciprocating movement.

[0058] In some examples, the first stirring member 102 is provided with a guide hole, the size of which corresponds to the size of the second stirring member 202, so that the second stirring member 202 can be inserted into the guide hole of the first stirring member 102. It is understood that the second stirring member 202 is slidably connected to the first stirring member 102 through the guide hole, so that the second stirring member 202 can perform axial reciprocating movement.

[0059] like Figure 7 As shown, in some examples, since the mounting base 201 cannot rotate, but the second stirring member 202 can rotate, the mounting base 201 and the second stirring member 202 are slidably connected.

[0060] The end of the second stirring member 202 is provided with a slider 401, and the mounting base 201 is provided with a slide groove 402. It is understood that the shape of the slider 401 corresponds to the shape of the slide groove 402, facilitating the slider 401's insertion into and sliding within the slide groove 402. Since the first stirring member 102 can drive the second stirring member 202 to rotate, the movement path of the second stirring member 202 during rotation is circular. To match the movement path of the second stirring member 202, the slide groove 402 is also circular.

[0061] When the rotating shaft 100 rotates, the first stirring member 102 rotates, driving the second stirring member 202 to rotate as well. Simultaneously, under the action of the guide groove 203 and the guide block 204, the mounting base 201 is able to reciprocate axially, thereby driving the second stirring member 202 to reciprocate axially. During this process, the mounting base 201 provides the second stirring member 202 with thrust and pull forces for axial reciprocation, and the second stirring member 202 and the mounting base 201 slide relative to each other.

[0062] In some examples, the mounting base 201 includes a guide sleeve 501, which is formed into a hollow structure to facilitate the passage of the rotating shaft 100. Specifically, the guide sleeve 501 is formed into a circular ring structure.

[0063] Furthermore, the mounting base 201 includes a connecting plate 502 and a mounting ring 503. The mounting ring 503 surrounds the outer side of the guide sleeve 501 and is spaced apart from the guide sleeve 501. The connecting plate 502 connects the mounting ring 503 to the guide sleeve 501, allowing the guide sleeve 501 and the mounting ring 503 to form a unit that moves together. Specifically, the mounting ring 503 is also formed into a circular ring structure, and the slide groove 402 is provided in the mounting ring 503.

[0064] like Figure 7 As shown, in some examples, the seawater storage device further includes a housing 601, and the first stirring assembly and the second stirring assembly are both disposed inside the housing 601. Meanwhile, the driving component 104 is disposed outside the housing 601. To protect the driving component 104, a sealing cover is provided on the outside of the driving component 104, and the sealing cover is connected to the housing 601.

[0065] Furthermore, a guide rod 602 is fixedly provided inside the housing 601 , and the guide rod 602 is used to limit the axial movement of the mounting seat 201 , thereby preventing the mounting seat 201 from rotating.

[0066] It will be appreciated that the guide rod 602 extends axially along the rotating shaft 100 and has a certain length. The length of the guide rod 602 is sufficient to define the limit of movement of the mounting seat 201. Specifically, when the mounting member moves to the end of the guide rod 602, the mounting seat 201 reaches the limit of movement. Specifically, since the mounting seat 201 is disposed within the housing 601, the guide rod 602 is fixedly connected to the inner wall of the housing 601.

[0067] In addition, to match the guide rod 602 , a corresponding hole structure is provided on the guide sleeve 501 of the mounting seat 201 , and the guide rod 602 is passed through the hole structure, thereby achieving a sliding connection between the guide sleeve 501 and the guide rod 602 .

[0068] In some examples, the housing 601 is provided with a water inlet 603 , and seawater can enter the interior of the housing 601 along the water inlet 603 , thereby achieving storage of seawater.

[0069] At the same time, the housing 601 is provided with a fixed pull ring 604, and the transport device can be connected to the fixed pull ring 604, so as to facilitate the transport device to lift the seawater storage device of the present application. It is understandable that the transport device here can be a crane.

[0070] Furthermore, a sliding door is provided at the end of the housing 601, and an operator can open or close the housing 601 through the sliding door. When the sliding door opens the housing 601, the operator can perform maintenance, repair or replacement on the internal structure of the housing 601.

[0071] In some examples, the seawater storage device further includes a gas input assembly, which can introduce gas from outside the housing 601 into the housing 601. Specifically, the gas input assembly of the present application can introduce oxygen into the housing 601 to ensure sufficient oxygen inside the housing 601.

[0072] The gas input assembly includes a gas storage container 701 and a connecting structure. It is understood that the gas storage container 701 is used to store oxygen. Furthermore, the connecting structure is rotatable. During this rotation, the gas storage container 701 is either connected to the housing 601 or isolated from the housing 601.

[0073] When the oxygen content in the shell 601 is sufficient, the connecting structure isolates the gas storage container 701 and the shell 601 by rotating; when the oxygen content in the shell 601 is insufficient, the connecting structure connects the gas storage container 701 and the shell 601 by rotating to facilitate oxygen to enter the shell 601.

[0074] like Figure 8 and Figure 9As shown, in some examples, the housing 601 is provided with a connecting component 605 , and the housing 601 and the gas storage container 701 are connected via the connecting component 605 .

[0075] The connecting structure is provided on the connecting member 605. Furthermore, the connecting structure includes a rotating member 703 and a fixed member 705, wherein the rotating member 703 is provided with a first hole 702 and the fixed member 705 is provided with a second hole 704. It is understood that the first hole 702 and the second hole 704 are both through holes. When the first hole 702 and the second hole 704 are aligned, the housing 601 and the gas storage container 701 are connected. When the first hole 702 and the second hole 704 are offset, the housing 601 and the gas storage container 701 are isolated.

[0076] Specifically, the fixed component 705 is fixedly connected to the connecting component 605, and the rotating component 703 is rotatably connected to the connecting component 605. Therefore, when the rotating component 703 rotates, the rotating component 703 and the fixed component 705 rotate relative to each other, so that the first hole 702 and the second hole 704 are connected or staggered.

[0077] like Figure 10 As shown, a limiting slider 706 is provided on the edge of the rotating component 703, and a limiting slot 402 is provided on the connecting component 605. The limiting slider 706 can be embedded in the limiting slot 402, thereby realizing the rotational connection between the rotating component 703 and the connecting component 605.

[0078] In some examples, of the fixed component 705 and the rotating component 703, the rotating component 703 is closer to the inner cavity of the housing 601, and the fixed component 705 is closer to the inner cavity of the gas storage container 701. Therefore, when the first hole 702 and the second hole 704 are connected, the gas in the gas storage container 701 passes through the second hole 704 and the first hole 702 in sequence to reach the inner cavity of the housing 601.

[0079] Furthermore, the gas input assembly further includes a transmission mechanism, through which the rotating member 703 is connected to the mounting base 201. When the mounting base 201 moves, the mounting base 201 drives the rotating member 703 to rotate via the transmission mechanism, thereby adjusting the relative positions of the first hole 702 and the second hole 704.

[0080] Specifically, the transmission mechanism includes a driving rod 801 fixedly connected to the rotating component 703 and a positioning plate 802 . When the positioning plate 802 rotates, the positioning plate 802 drives the rotating component 703 to rotate via the driving rod 801 .

[0081] Meanwhile, the transmission mechanism further includes an L-shaped connecting rod 804 and a sliding rod 805. The L-shaped connecting rod 804 is connected to the mounting base 201, and the L-shaped connecting rod 804 is slidably connected to the positioning plate 802 via the sliding rod 805. Specifically, the positioning plate 802 is provided with a sliding groove 803, and the sliding rod 805 is embedded in the sliding groove 803 and forms a sliding connection with the positioning plate 802.

[0082] Therefore, when the mounting base 201 moves axially, the mounting base 201 drives the positioning plate 802 to rotate through the L-shaped connecting rod 804 and the sliding rod 805, thereby adjusting the relative position of the first hole 702 and the second hole 704 to facilitate communication between the first hole 702 and the second hole 704.

[0083] During actual implementation, the operator opens the water inlet 603 provided on the housing 601 to inject seawater into the body. Then, the operator closes the water inlet 603 and pulls the fixed pull ring 604 by means of a crane to lift the seawater storage device and place it on a corresponding vehicle for easy transportation.

[0084] During transportation, the pH of the seawater in the housing 601 may become unbalanced. In this case, the pH of the seawater is measured by a detector installed on the sliding door, and the information is fed back to the main controller. Upon receiving this information, the main controller will alert the operator. In this case, the operator can reopen the water inlet 603 to inject an appropriate amount of neutralizer into the housing 601. After the neutralizer is injected, the water inlet 603 is closed again.

[0085] Then, the operator controls the motor operation through the controller. The driving component 104 of the present application adopts a servo motor, which can drive the rotating shaft 100 to rotate. When the rotating shaft 100 rotates, it can drive the first stirring component 102 to rotate, thereby stirring the seawater in the shell 601, so that the seawater and the neutralizer in the shell 601 react quickly. At the same time, when the rotating shaft 100 rotates, it can also drive the mounting seat 201 to move back and forth horizontally through the guide groove 203 and the guide block 204. The mounting seat 201 is moved and guided by the guide rod 602. Since the mounting ring 503 is provided with a slide groove 402, and the slide groove 402 is slidably installed with a slider 401, when the mounting seat 201 moves, it can ensure that the second stirring component 202 rotates and moves back and forth axially at the same time. The second stirring component 202 is provided with an extended stirring rod, which can drive the extended stirring rod to move back and forth when the second stirring component 202 moves back and forth axially. Under the combined action of the first stirring member 102 and the second stirring member 202 , the stirring area of ​​the seawater in the shell 601 is increased, thereby further improving the fusion rate of the seawater and the neutralizer in the shell 601 .

[0086] When the mounting base 201 reciprocates, the mounting base 201 can also drive the L-shaped connecting rod 804 to move. When the L-shaped connecting rod 804 moves, it can also drive the sliding rod 805 to move. Therefore, the sliding rod 805 can push the positioning plate 802 to rotate, thereby driving the rotating component 703 to rotate. During this process, the first hole 702 of the rotating component 703 can fit with the second hole 704 of the fixed component 705, facilitating the oxygen in the gas storage container 701 to enter the housing 601, ensuring that the oxygen in the housing 601 remains sufficient.

[0087] The embodiments of the present application have been described in detail above with reference to the accompanying drawings. However, the present application is not limited to the above embodiments. Various modifications can be made within the scope of knowledge possessed by ordinary technicians in the technical field without departing from the purpose of the present application. In addition, the embodiments of the present application and the features of the embodiments can be combined with each other unless there is a conflict.

Claims

1. A seawater storage device, characterized in that: include: case; a first stirring assembly, the first stirring assembly being rotatable and comprising a rotating shaft and a first stirring member fixedly disposed on the rotating shaft; a second stirring assembly, the second stirring assembly comprising a mounting seat and a second stirring member movably disposed on the mounting seat, the second stirring member being slidably connected to the first stirring member, a guide structure being provided between the mounting seat and the rotating shaft, such that when the first stirring assembly rotates, the first stirring assembly drives the second stirring member to rotate, and the guide structure drives the mounting seat to drive the second stirring member to reciprocate; A gas input component, the gas input component includes a gas storage container and a connecting structure, the connecting structure drives the gas storage container and the internal space of the shell to be connected or isolated by rotation, the shell is connected to the gas storage container through a connecting component, the connecting structure includes a rotating component with a first hole and a fixed component with a second hole, the fixed component is fixedly connected to the connecting component, the rotating component is rotatably connected to the connecting component, and the rotating component can drive the first hole and the second hole to be connected by rotation.

2. The seawater storage device according to claim 1, characterized in that The guide structure includes a guide groove provided on the side wall of the rotating shaft and a guide block provided on the mounting seat, and the guide block is slidably embedded in the guide groove.

3. The seawater storage device according to claim 2, characterized in that: The guide groove includes a first movable guide portion and a second movable guide portion, and the first movable guide portion and the second movable guide portion are inclined to the axial direction of the rotating shaft. When the guide block slides along the first movable guide portion, the mounting seat is close to the first stirring component, and when the guide block slides along the second movable guide portion, the mounting seat is away from the first stirring component.

4. The seawater storage device according to claim 3, characterized in that: The guide groove also includes a first connecting portion and a second connecting portion, the first end of the first movable guide portion and the first end of the second movable guide portion are connected through the first connecting portion, and the second end of the first movable guide portion and the second end of the second movable guide portion are connected through the second connecting portion.

5. The seawater storage device according to claim 1, characterized in that: The first stirring member is provided with a guide hole, and the second stirring member is movably arranged through the guide hole.

6. The seawater storage device according to claim 1, characterized in that: The second stirring component is provided with a slider, and the mounting seat is provided with a slide groove. When the second stirring component rotates, the slider slides in the slide groove.

7. The seawater storage device according to claim 1, characterized in that: The first stirring assembly and the second stirring assembly are arranged inside the shell. The shell is provided with a guide rod, and the mounting seat is movably connected to the guide rod.

8. The seawater storage device according to claim 1, characterized in that: The gas input assembly further includes a transmission mechanism, and the rotating component is connected to the mounting seat via the transmission mechanism. When the mounting seat moves, the mounting seat drives the rotating component to rotate via the transmission mechanism.

Citation Information

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