Aquaculture oxygenation equipment

By designing components such as gears and toothed discs to drive the rotation of the storage bin and the filtration of the filter plate, the problem of feed not being able to be sprinkled onto the water surface in the storage bin was solved, achieving effective feeding and normal operation of the equipment, and reducing labor intensity.

CN223772842UActive Publication Date: 2026-01-09TANGSHAN YILIN AQUACULTURE CO LTD
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Patent Information

Application Number
CN202423162380.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2026-01-09
Estimated Expiration
2034-12-20

AI Technical Summary

Technical Problem

Existing aeration equipment for aquaculture cannot effectively ensure that the feed inside the storage tank is thrown to the inner wall of the storage tank and does not fall onto the surface of the fishpond, resulting in insufficient feeding area and increasing the labor intensity of the staff.

Method used

A feeding device including gears, a toothed disc, and a rotating rod was designed. The meshing of the gears and the toothed disc drives the feed cylinder and the storage hopper to rotate clockwise, preventing feed from being thrown onto the inner wall of the storage hopper and increasing the feeding area. The device also filters leaves and dust particles through components such as a limiting plate, a slider, and a filter plate, ensuring that the oxygenation work is carried out normally.

Benefits of technology

This method enables effective spreading of feed within the storage bins, increases the spreading area, reduces the workload of staff, ensures the normal operation of the aeration equipment, and avoids clogging by leaves and dust particles.

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Abstract

The utility model relates to the technical field of aquaculture, and provides oxygenation equipment for aquaculture, which comprises a base and an oxygenation component. Through mutual cooperation of a gear, a fluted disc, a rectangular groove, a rotating rod and other assemblies, when the feeding barrel rotates clockwise along with the rotating plate, the gear fixed to the circumferential face of the feeding barrel is meshed with the fluted disc, and therefore the feeding barrel can rotate clockwise while the rotating plate moves clockwise; when the feeding barrel rotates clockwise along with the rotating plate, the feeding barrel rotates clockwise, so that the situation that feed in the feed storage barrel is thrown to one end of the inner wall of the feed storage barrel and cannot fall to the water surface of a fishpond is avoided, the feed scattering area is increased, and when the machine body conducts oxygenation work, the feed scattering efficiency is improved. According to the aquaculture device, the effect of scattering feed can be achieved, the labor intensity of workers is reduced, and the aquaculture problem in the prior art is solved through the technical scheme.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the field of aquaculture, specifically, relate to an oxygenation equipment for aquaculture. BACKGROUND

[0002] When aquaculture, need regular oxygenation, the purpose of oxygenation is to increase the oxygen content in water, reduce the fish hypoxia death condition, improve tongue fish fry activity,

[0003] According to the oxygenation equipment for aquaculture (disclosed number: CN 212589692 U) of one public, including a casing, the upper end flange of casing is connected with a shell cover, the inside of casing is built in a motor, motor adopts commercial power supply, the power supply line of motor is outwardly worn out via the upper end of shell cover, the lower end of motor has output shaft;

[0004] But the above design, it is difficult to realize the feed in the storage barrel to be thrown to the inner wall one end of storage barrel and cannot fall to the fishpond water surface, cannot increase the spreading area, lead to the effect of spreading material when the machine body carries out oxygenation work, increase the labor intensity of staff, need to be improved. UTILITY MODEL CONTENT

[0005] The utility model provides an oxygenation equipment for aquaculture, solve the problem in above -mentioned document.

[0006] The utility model discloses a technical scheme as follows: including base and oxygenation assembly, the oxygenation assembly fixedly connected at the circumference of base, the top of base is fixedly connected with machine body, the circumference of machine body is provided with control system, the inside of machine body is provided with spreading device, the spreading device includes motor, the motor is fixedly penetrated in the top of base, the output shaft end of motor is fixedly connected with rotating shaft, the circumference of rotating shaft is fixedly connected with rotating plate, the top of rotating plate is penetrated with feeding cylinder, the circumference of feeding cylinder is provided with storage barrel.

[0007] According to the above design scheme, the circumference of feeding cylinder is fixedly connected with gear, the circumference of machine body is fixedly connected with toothed disc, the top of feeding cylinder is provided with rectangular groove, the inner wall of rectangular groove is penetrated with rotating rod, the circumference of rotating rod is fixedly connected with blocking plate, the circumference of rotating rod is fixedly connected with torsion spring, such design is favorable to when blocking plate is subjected to gravity and can make arc motion downward through rotating rod.

[0008] According to the above design scheme, the gear and toothed disc are engaged with each other, the rotating plate is located above the machine body, the rotating shaft is penetrated on the inner wall of machine body, such design is favorable to when the rotating shaft rotates clockwise, can drive the rotating plate to rotate clockwise.

[0009] According to the above design scheme, the inside of the machine body is provided with an oxygen increasing auxiliary device, the limiting plate is fixedly connected to the inner wall of the machine body, the sliding block is slidably connected to the inner wall of the machine body, and the filter plate is fixedly connected to the side surface of the sliding block, which is beneficial to the filter plate filtering the leaves and dust particles sucked into the inside of the machine body.

[0010] According to the above design scheme, the circumferential surface of the filter plate is fixedly connected with an action plate, the circumferential surface of the rotating shaft is fixedly connected with a fixed ring, the circumferential surface of the fixed ring is fixedly connected with a clamping block, and the bottom of the filter plate is fixedly connected with a stress rod, which is beneficial to the clockwise rotation of the fixed ring when the rotating shaft rotates clockwise.

[0011] According to the above design scheme, the side section of the limiting plate is hexagonal, the limiting plate is provided with two linear arrays on the inner wall of the machine body, which is beneficial to the limiting plate limiting the sliding of the sliding block and the filter plate.

[0012] According to the above design scheme, the side section of the action plate is a hollow hexagon, and the inner wall of the action plate is adapted to the inner wall of the limiting plate, one end of the inner wall of the action plate is provided with an adaptive arc surface, which is beneficial to the action plate blocking the leaves and dust particles sucked in.

[0013] According to the above design scheme, the side section of the clamping block is semicircular, the clamping block is provided with a plurality of circumferential arrays on the circumferential surface of the fixed ring, and one end of the stress rod close to the clamping block is provided with an adaptive arc surface, which is beneficial to the clockwise rotation of the clamping block when the fixed ring rotates clockwise.

[0014] According to the above design scheme, the sliding block is provided with a plurality of circumferential arrays on the circumferential surface of the filter plate, and the sliding block is located between the two limiting plates, which is beneficial to the sliding block sliding the filter plate between the two limiting plates.

[0015] According to the above design scheme, the control system is electrically connected with the motor, the rotating rod is provided with two linear arrays on the inner wall of the rectangular groove, and the bottom of the storage barrel is provided with a hollow shape, which is beneficial to the worker controlling the start of the motor through the control system.

[0016] The working principle and beneficial effects of the utility model are as follows:

[0017] 1. The utility model discloses a gear, toothed disc, rectangular slot, rotating rod etc. assembly mutual cooperation is realized when the feeding cylinder follows the rotation plate clockwise rotation, the gear fixed on the circumferential surface of feeding cylinder and toothed disc are mutually engaged, thereby force feeding cylinder to realize the clockwise rotation of itself when the rotation plate clockwise motion, thereby drive the storage bucket follows the clockwise rotation of feeding cylinder, make feeding cylinder realize the clockwise rotation of itself when following the rotation plate clockwise rotation, thereby avoid the feed in the storage bucket to be thrown to the inner wall one end of storage bucket and can't drop to the fishpond water surface, and increase the scattering area, make the machine body when carrying out the oxygen -enriched work, also can reach the effect of scattering, reduce the labor intensity of staff.

[0018] 2. The utility model discloses a limiting plate, sliding block, filter plate, action plate etc. assembly mutual cooperation is realized when the arc surface of force bar does not contact with the clamping block, and the force bar loses the power and drives the filter plate to move down, and the limiting plate can limit the sliding block, and the sliding block can only drive the filter plate to slide between the two limiting plates, thereby realized the intermittent up-and-down movement of filter plate, can make the filter plate when filtering the leaf, dust particle that is inhaled, and the filter plate still can normally work when not being blocked, when the filter plate moves, the action plate fixed on the top of filter plate can prevent the leaf, dust particle that is inhaled from falling to the bottom of the machine and affecting the normal operation of oxygen -enriched work, reaches the auxiliary effect of oxygen -enriched work, makes the machine body can normally complete the oxygen -enriched work. ACCURACY OF DRAWINGS

[0019] The utility model will be further explained in detail in connection with the drawings and specific embodiment.

[0020] Figure 1 It is three -dimensional appearance structure schematic diagram of the utility model;

[0021] Figure 2 It is three -dimensional sectional structure schematic diagram of the utility model rotation axis place;

[0022] Figure 3 It is the utility model Figure 2 A three -dimensional enlarged structure schematic diagram;

[0023] Figure 4 It is three -dimensional local sectional structure schematic diagram of the utility model limiting plate place;

[0024] Figure 5 It is the utility model Figure 4 B three -dimensional enlarged structure schematic diagram.

[0025] In the diagram: 1. Base; 2. Oxygenation component; 3. Machine body; 4. Control system; 5. Feeding device; 51. Motor; 52. Rotating shaft; 53. Rotating plate; 54. Feed cylinder; 55. Storage hopper; 56. Gear; 57. Gear disc; 58. Rectangular groove; 59. Rotating rod; 510. Baffle plate; 511. Torsion spring; 6. Oxygenation auxiliary device; 61. Limiting plate; 62. Sliding block; 63. Filter plate; 64. Action plate; 65. Fixing ring; 66. Locking block; 67. Force rod. Detailed Implementation

[0026] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this utility model.

[0027] Example 1

[0028] like Figures 1-3 As shown, this embodiment proposes an aeration device for aquaculture, including a base 1 and an aeration component 2. The aeration component 2 is fixedly connected to the circumferential surface of the base 1. An organic body 3 is fixedly connected to the top of the base 1. A control system 4 is provided on the circumferential surface of the organic body 3. A feeding device 5 is provided inside the organic body 3. The feeding device 5 includes a motor 51, which is fixedly inserted through the top of the base 1. A rotating shaft 52 is fixedly connected to the end of the output shaft of the motor 51. A rotating plate 53 is fixedly connected to the circumferential surface of the rotating shaft 52. A feeding cylinder 54 is inserted through the top of the rotating plate 53. A storage tank 55 is provided on the circumferential surface of the feeding cylinder 54.

[0029] A gear 56 is fixedly connected to the circumferential surface of the feed cylinder 54, and a gear disc 57 is fixedly connected to the circumferential surface of the machine body 3. A rectangular groove 58 is opened at the top of the feed cylinder 54, and a rotating rod 59 passes through the inner wall of the rectangular groove 58. A baffle plate 510 is fixedly connected to the circumferential surface of the rotating rod 59, and a torsion spring 511 is fixedly connected to the circumferential surface of the rotating rod 59. This design is beneficial for the baffle plate 510 to make an arc-shaped downward movement through the rotating rod 59 when subjected to gravity.

[0030] Gear 56 meshes with gear disc 57, rotating plate 53 is located above body 3, and rotating shaft 52 passes through the inner wall of body 3. This design is advantageous because when rotating shaft 52 rotates clockwise, it can drive rotating plate 53 to rotate clockwise.

[0031] In this embodiment, first, the staff needs to pour the feed into the feeding cylinder 54 through the rectangular groove 58, when the feed enters the feeding cylinder 54, the feed falls on the top of the blocking plate 510, so that the blocking plate 510 is subjected to gravity and makes an arc movement downward through the rotating rod 59, when the staff pours all the feed into the feeding cylinder 54, the feed is placed inside the storage barrel 55, the blocking plate 510 loses gravity and resets the blocking plate 510 and the rotating rod 59 by the torsion of the torsion spring 511, and closes the rectangular groove 58, when the staff needs to feed the tongue fish, the staff can control the motor 51 to drive the rotating shaft 52 to rotate clockwise through the control system 4, when the rotating shaft 52 rotates clockwise, the rotating plate 53 fixed on the circumferential surface of the rotating shaft 52 rotates clockwise, when the rotating plate 53 rotates clockwise, the feeding cylinder 54 is forced to rotate clockwise with the rotating plate 53, when the feeding cylinder 54 rotates clockwise with the rotating plate 53, the storage barrel 55 is forced to rotate clockwise with the rotating plate 53 by the centrifugal force, so that the feed inside the storage barrel 55 is thrown out, in order to prevent the feed inside the storage barrel 55 from being thrown to one end of the inner wall of the storage barrel 55 and unable to fall to the water surface of the fish pond when the storage barrel 55 is subjected to the centrifugal force, when the feeding cylinder 54 rotates clockwise with the rotating plate 53, the gear 56 fixed on the circumferential surface of the feeding cylinder 54 meshes with the toothed disc 57, so that the feeding cylinder 54 can rotate clockwise by itself while the rotating plate 53 rotates clockwise, thereby driving the storage barrel 55 to rotate clockwise with the feeding cylinder 54, so that the feeding cylinder 54 rotates clockwise by itself while rotating clockwise with the rotating plate 53, thereby avoiding the feed inside the storage barrel 55 from being thrown to one end of the inner wall of the storage barrel 55 and unable to fall to the water surface of the fish pond, and increasing the spreading area, so that the machine body 3 can also achieve the effect of spreading feed when performing oxygenation work, reducing the labor intensity of the staff.

[0032] Embodiment 2

[0033] As Figures 3-5 shown, on the premise of the same concept as the above embodiment 1, a second embodiment is also proposed, the machine body 3 is provided with an oxygenation auxiliary device 6, the oxygenation auxiliary device 6 includes a limiting plate 61, the limiting plate 61 is fixedly connected to the inner wall of the machine body 3, the inner wall of the machine body 3 is slidably connected with a sliding block 62, the side surface of the sliding block 62 is fixedly connected with a filter plate 63, such design is conducive to the filter plate 63 filtering the leaves and dust particles sucked into the machine body 3.

[0034] The circumferential surface of the filter plate 63 is fixedly connected with an acting plate 64, the circumferential surface of the rotating shaft 52 is fixedly connected with a fixed ring 65, the circumferential surface of the fixed ring 65 is fixedly connected with a clamping block 66, and the bottom of the filter plate 63 is fixedly connected with a force rod 67, such design is conducive to driving the fixed ring 65 to rotate clockwise when the rotating shaft 52 rotates clockwise.

[0035] The side section of the limiting plate 61 is hexagonal, and two limiting plates 61 are linearly arranged on the inner wall of the body 3, which facilitates the limiting plate 61 to limit the sliding of the sliding block 62 and the filter plate 63.

[0036] The side section of the action plate 64 is hollow hexagonal, and the inner wall of the action plate 64 is adaptively arc-shaped at one end, which facilitates the action plate 64 to block the sucked leaves and dust particles.

[0037] The side section of the clamping block 66 is semicircular, and a plurality of clamping blocks 66 are circumferentially arranged on the circumferential surface of the fixing ring 65, and the one end of the force rod 67 close to the clamping block 66 is adaptively arc-shaped, which facilitates the clamping block 66 to rotate clockwise when the fixing ring 65 rotates clockwise.

[0038] The sliding block 62 is circumferentially arranged on the circumferential surface of the filter plate 63, and the sliding block 62 is located between the two limiting plates 61, which facilitates the sliding block 62 to drive the filter plate 63 to slide between the two limiting plates 61.

[0039] The control system 4 is electrically connected with the motor 51, and the rotating rod 59 is linearly arranged on the inner wall of the rectangular groove 58, and the bottom of the storage barrel 55 is hollow, which facilitates the worker to control the start of the motor 51 through the control system 4.

[0040] In the scattering device 5, when the body 3 is working, in order to avoid the external air being sucked into the body 3 and entering the water, the leaves and dust particles of the external air being sucked in cause the oxygenation work to be unable to proceed smoothly, when the rotating shaft 52 rotates clockwise, the fixing ring 65 rotates clockwise, the clamping block 66 fixed on the circumferential surface of the fixing ring 65 intermittently contacts with the force rod 67 fixed on the bottom of the filter plate 63, when the arc surface of the force rod 67 contacts with the clamping block 66, the force rod 67 is forced to lift upward, thereby forcing the filter plate 63 to lift upward through the sliding block 62, when the arc surface of the force rod 67 does not contact with the clamping block 66, the force rod 67 loses the force to drive the filter plate 63 to move downward, the limiting plate 61 can limit the sliding block 62, so that the sliding block 62 can only drive the filter plate 63 to slide between the two limiting plates 61, thereby realizing the intermittent up-and-down movement of the filter plate 63, which can make the filter plate 63 filter the sucked leaves and dust particles, and the filter plate 63 can still work normally without being blocked, when the filter plate 63 moves, the action plate 64 fixed on the top of the filter plate 63 can prevent the sucked leaves and dust particles from falling through the circumferential surface of the filter plate 63 to the bottom of the body 3 to affect the normal operation of the oxygenation work, thereby achieving the auxiliary effect of the oxygenation work, and the body 3 can normally complete the oxygenation work.

[0041] The above merely preferred embodiments of the present application are not intended to limit the present application, and any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. An oxygenation apparatus for aquaculture, characterized by, The utility model provides an oxygen -increasing assembly (2) fixedly connected in the circumference surface of base (1), the top of base (1) is fixedly connected with organism (3), the circumference surface of organism (3) is provided with control system (4), the inside of organism (3) is provided with scattering device (5), The utility model discloses an oxygen -increasing assembly (2) fixedly connected in the circumference surface of base (1), the top of base (1) is fixedly connected with organism (3), the circumference surface of organism (3) is provided with control system (4), the inside of organism (3) is provided with scattering device (5), 2. The oxygenation apparatus for aquaculture according to claim 1, characterized by The circumference surface of gear (56) is fixedly connected with gear (57), the top of feed cylinder (54) is provided with rectangular groove (58), the inner wall of rectangular groove (58) is penetrated with rotating rod (59), the circumference surface of rotating rod (59) is fixedly connected with blocking plate (510), the circumference surface of rotating rod (59) is fixedly connected with torsion spring (511).

3. The oxygenation apparatus for aquaculture according to claim 2, characterized by The circumference surface of gear (56) is fixedly connected with gear (57), the top of feed cylinder (54) is provided with rectangular groove (58), the inner wall of rectangular groove (58) is penetrated with rotating rod (59), the circumference surface of rotating rod (59) is fixedly connected with blocking plate (510), the circumference surface of rotating rod (59) is fixedly connected with torsion spring (511).

4. The oxygenation apparatus for aquaculture according to claim 3, characterized by The inside of organism (3) is provided with oxygen -increasing auxiliary device (6), and the oxygen -increasing auxiliary device (6) includes limiting plate (61), the limiting plate (61) is fixedly connected on the inner wall of organism (3), the inner wall of organism (3) is slidably connected with sliding block (62), and the side of sliding block (62) is fixedly connected with filter plate (63).

5. The oxygenation apparatus for aquaculture according to claim 4, characterized by The circumference surface of gear (56) is fixedly connected with gear (57), the top of feed cylinder (54) is provided with rectangular groove (58), the inner wall of rectangular groove (58) is penetrated with rotating rod (59), the circumference surface of rotating rod (59) is fixedly connected with blocking plate (510), the circumference surface of rotating rod (59) is fixedly connected with torsion spring (511).

6. The oxygenation apparatus for aquaculture according to claim 5, wherein The side section of limiting plate (61) is hexagonal, the limiting plate (61) is provided with two, and linear array is on the inner wall of organism (3).

7. The oxygenation apparatus for aquaculture according to claim 6, wherein The side section of limiting plate (61) is hexagonal, the limiting plate (61) is provided with two, and linear array is on the inner wall of organism (3).

8. The oxygenation apparatus for aquaculture according to claim 7, characterized by The side section of limiting plate (61) is hexagonal, the limiting plate (61) is provided with two, and linear array is on the inner wall of organism (3).

9. The oxygenation apparatus for aquaculture according to claim 8, characterized by The side section of limiting plate (61) is hexagonal, the limiting plate (61) is provided with two, and linear array is on the inner wall of organism (3).

10. The oxygenation apparatus for aquaculture according to claim 9, wherein The side section of limiting plate (61) is hexagonal, the limiting plate (61) is provided with two, and linear array is on the inner wall of organism (3). The control system (4) is electrically connected with motor (51), the rotating rod (59) is provided with two, and linear array is on the inner wall of rectangular groove (58), and the bottom of storage barrel (55) is hollow. The control system (4) is electrically connected with motor (51), the rotating rod (59) is provided with two, and linear array is on the inner wall of rectangular groove (58), and the bottom of storage barrel (55) is hollow.

Citation Information

Patent Citations

  • Oxygenation equipment for aquaculture

    CN212589692U