An integrated trap device for underwater fishing
The integrated trapping device design solves the problem of fixed placement of bait and fish-attracting lights, enabling continuous flow and quantitative discharge of bait. Combined with drive and cleaning components, it improves the trapping efficiency and success rate of underwater fishing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- ZHOUSHAN NIPPON PUSNES SHIP MASCH CO LTD
- Filing Date
- 2025-02-27
- Publication Date
- 2026-07-24
AI Technical Summary
In existing technologies, the fixed setting of bait and fish-attracting lights results in poor attraction, bait is prone to failure, fish-attracting lights are prone to attracting impurities, and the design of the collection frame affects the trapping effect, making it easy for aquatic organisms to escape or not enter the fish cage.
An integrated underwater fishing trap was designed, comprising an aquatic organism capture component, a drive component, a cleaning component, and a trapping mechanism. The bait is kept flowing by a stirring component, a spiral blade discharges the bait in a quantitative manner, the drive component controls the opening and closing of the fishing cage, and the hydraulic component cleans the fish-attracting light, simulating the movement of prey to improve the trapping effect.
It improves trapping efficiency, prevents aquatic organisms from escaping, extends the effectiveness of bait, enhances attraction, automatically cleans fish-attracting lights, and increases the success rate of catching fish.
Smart Images

Figure CN119969355B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of fishing technology, and in particular to an integrated trapping device for underwater fishing. Background Technology
[0002] The purpose of using fish-attracting lights in fishing operations is to gather as many target organisms as possible from the wider sea area around the vessel into the operating range of the fishing gear for fishing. The fishing operation process consists of the process of detecting target organisms (fish detection), the process of attracting and gathering them (fish gathering), and the process of catching them (fish fishing). The light of the fish-attracting lights is an important factor affecting the efficiency of fishing.
[0003] Currently, existing technologies often use fish-attracting lights or bait to attract aquatic organisms underwater, and then collect them with fishing nets. However, bait and fish-attracting lights are generally fixed in place, resulting in poor attraction capabilities. Furthermore, bait loses its attraction effect after being left underwater for extended periods. Fish-attracting lights also tend to accumulate impurities on their surface after prolonged underwater exposure, affecting their ability to attract aquatic organisms. Additionally, existing collection frames typically have a small opening to allow aquatic organisms to enter, but some organisms are sensitive and may perceive danger upon touching the frame and not enter. Even if organisms do enter the fish trap, they may find an exit, affecting the trapping effect. To address these problems, this invention proposes an integrated trapping device for underwater fishing. Summary of the Invention
[0004] The purpose of this invention is to address the shortcomings of existing technologies where bait and fish-attracting lights are generally fixed, resulting in poor induction ability. When bait is left for a long time, it easily loses its induction effect. Furthermore, after the fish-attracting lights have been underwater for a long time, their surface easily absorbs a lot of impurities, affecting their ability to attract aquatic organisms. In addition, existing collection frames generally have a small opening to facilitate the entry of aquatic organisms, but some aquatic organisms do not crawl into the cage, and even if they do, they may find an exit, affecting the trapping effect. Therefore, this invention proposes an integrated trapping device for underwater fishing.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: An integrated trapping device for underwater fishing includes an aquatic organism catching mechanism, on which a trapping mechanism is mounted. The aquatic organism catching mechanism includes an aquatic organism catching component and four closed components, which form a fishing cage. A drive component is provided below the aquatic organism catching component and is connected to the four closed components. The opening and closing of the fishing cage is achieved through the drive component. At the same time, a cleaning component that can clean the aquatic organism catching component is also connected to the drive component. The trapping mechanism includes a feeding assembly and a hydraulic control assembly. The feeding assembly is positioned above the aquatic organism trapping assembly. The feeding assembly contains a stirring assembly, and a reciprocating moving assembly is connected to the stirring assembly. The reciprocating moving assembly is positioned above the feeding assembly. A cleaning assembly is positioned outside the feeding assembly. The cleaning assembly works in conjunction with the hydraulic control assembly to clean the fish-attracting lamp, which is positioned below the feeding assembly.
[0006] Preferably, the aquatic organism trapping assembly includes an upper grille and a lower grille, with four reinforcing rods fixedly connected between the upper and lower grilles. An underwater camera is installed in the middle of the upper part of the lower grille to observe whether aquatic organisms enter the fishing cage. A hanging ring is fixedly connected above the upper grille for suspending the trapping device.
[0007] Preferably, the drive assembly includes a waterproof motor, which is installed below the lower grille. The output shaft of the waterproof motor is fixedly connected to a cross, which has four openings. A connecting shaft is provided in each opening, and a gear is fixedly connected to one end of the connecting shaft. A support seat is slidably arranged on the gear, and the support seat is fixedly connected to the lower grille. The waterproof motor drives the cross to rotate, thereby synchronously opening the four closing components.
[0008] Preferably, the cleaning component includes a horizontal bar, which is fixedly connected to one of the toothed rods. One end of the horizontal bar is fixedly connected to a movable frame, which is U-shaped and passes through a lower grille. A rubber strip is fixedly connected to the upper wall of the movable frame, which is located on one side of the underwater camera. The rotation of the crossbar drives the rubber strip on the movable frame to move and clean the underwater camera.
[0009] Preferably, the closing assembly includes a rotating rod and a side grille. A connector is fixedly connected to one side of the side grille. The connector is fixedly connected to the rotating rod. A gear is fixedly connected to the rotating rod. The gear meshes with a rack. The rotating rod is rotatably mounted with two fixing members through two first bearings. Both fixing members are fixedly connected to the lower grille.
[0010] Preferably, the hydraulic control component includes a connecting cylinder, which is fixedly connected to the lower part of the upper grille. A bracket is fixedly connected to one side of the connecting cylinder, and the middle part of the connecting cylinder is a retractable bellows structure. A first piston and a second piston are provided inside the connecting cylinder. A movable rod is fixedly connected to the lower part of the second piston. The movable rod passes through the connecting cylinder and is fixedly connected to a first ball bearing. A connecting rod is fixedly connected to one side of the first piston, and the connecting rod extends out from the other end of the connecting cylinder. A first spring is fixedly connected between the first piston and the end wall of the connecting cylinder. During the flipping process of the side grille, the side grille squeezes the connecting rod, which drives the first piston to move. The first piston squeezes the liquid to flow, causing the second piston to drive the movable rod and the first ball to move. The first ball controls the rotation of the annular ring through the arc groove, and the cleaning strip is used to clean the fish-attracting lamp.
[0011] Preferably, the feeding assembly includes a bait bin, an inlet is provided above the bait bin, an outlet is provided below the bait bin, the bracket is fixedly connected to the top of the bait bin, the fish attractant light is installed above the bait bin, an upper shell is fixedly connected to the top of the bait bin, and the upper shell is fixedly connected to the bottom of the upper grille.
[0012] Preferably, the cleaning component includes an annular ring and a third bearing. The annular ring is rotatably mounted on the bait bin via the third bearing. A cleaning strip is fixedly connected to the lower part of the annular ring, and the cleaning strip is located below the fish attractant light. An arc-shaped groove is provided on the outside of the annular ring, and the first ball slides in the arc-shaped groove.
[0013] Preferably, the stirring assembly includes a first motor, which is installed in the upper housing. The output shaft of the first motor is fixedly connected to a rotating shaft. The rotating shaft is rotatably mounted on the feed bin via a second bearing. Multiple stirring blades are fixedly connected to the outside of the rotating shaft and are located in the feed bin. A spiral blade is fixedly connected below the rotating shaft and is located in the discharge port.
[0014] Preferably, the reciprocating moving assembly includes multiple support rods, which are fixedly connected to a rotating shaft. One end of each support rod is fixedly connected to a petal cam. Multiple support plates are vertically fixed below the upper grille. A connecting rod is horizontally provided at the lower end of each support plate. The connecting rod is inserted into the upper shell and extends into the upper shell, with a second ball bearing at its end. The second ball bearing overlaps with the outer side of the petal cam. A second spring is fixedly connected to the support plate, with one end of the second spring fixedly connected to the upper shell. When the petal cam rotates, it generates a squeezing motion with the second ball bearing. Since the position of the second ball bearing is fixed, the upper shell is displaced. Combined with the second spring, the upper shell vibrates, causing the bait bin to vibrate. The vibration and downward baiting can simulate prey movement.
[0015] Compared with the prior art, the present invention provides an integrated trapping device for underwater fishing, which has the following beneficial effects: 1. This integrated underwater trapping device uses a rotating stirring component to agitate the bait, keeping it in a flowing state within the bait bin. This prevents the bait from being suspended in mid-air, which would affect the casting operation. Secondly, the spiral blades can evenly and quantitatively release the bait from top to bottom. By continuously providing bait, the scent and aroma signals emitted can travel further in the water, especially in flowing water, resulting in better trapping effects. Furthermore, the bait accumulates at the lower grid, creating a gathering effect for aquatic organisms. The combination of the stirring component and the reciprocating moving component allows the stirring component to vibrate. This vibration, combined with the downward bait casting, simulates prey movement, increasing the feeding appetite of aquatic organisms. The vibration also slows down the bait's descent, improving the trapping effect and creating a gathering signal. Moreover, the vibration combined with the fish-attracting light can generate an even more attractive signal. 2. This integrated underwater trapping device uses a waterproof motor to drive a cross to rotate, which in turn moves a connecting shaft through an opening. The connecting shaft then moves a gear, which in turn drives a rotating rod to flip the side grilles. This causes the four side grilles, along with the upper and lower grilles, to close and form a fish trap structure, preventing aquatic life from escaping. Simultaneously, during the flipping process, the side grilles press against the connecting rod, causing the first piston to move. The first piston compresses the liquid flow, causing the second piston to move a movable rod and a first ball bearing. The first ball bearing controls the rotation of a ring through an arc groove. The ring bearing then rotates a cleaning strip, which automatically cleans the fish-attracting light. 3. This integrated underwater fishing device uses a stirring component that rotates in conjunction with a reciprocating component to vibrate the upper shell, causing the upper shell to vibrate the bait bin. Then, the drive component drives the closing component and the aquatic organism trapping component to close and catch fish. At the same time, the closing component squeezes the hydraulic control component, which in turn drives the cleaning component to clean the fish-attracting light. The vibration further enhances the cleaning effect. Attached Figure Description
[0016] Figure 1 This is a three-dimensional view of an integrated underwater trapping device proposed in this invention after it has been unfolded. Figure 2 This is a perspective view taken from below after unfolding an integrated underwater trapping device proposed in this invention. Figure 3 This is a three-dimensional view of an integrated underwater trapping device proposed in this invention after it has been closed. Figure 4 This is a view showing the connection between the aquatic organism capture component and the drive component of an integrated underwater trapping device proposed in this invention. Figure 5 This is a perspective view of the drive component of an integrated underwater trapping device proposed in this invention; Figure 6 This is a perspective view of the closed assembly of an integrated underwater trapping device proposed in this invention; Figure 7 This is a three-dimensional view of the aquatic organism capture component of an integrated underwater trapping device proposed in this invention; Figure 8 This is a view showing the connection between the hydraulic control component and the cleaning component of an integrated underwater trapping device proposed in this invention. Figure 9 This is a perspective view of the hydraulic control component of an integrated underwater trapping device proposed in this invention. Figure 10 This is a perspective view of the feeding assembly of an integrated underwater trapping device proposed in this invention. Figure 11 This is a perspective view of the bait compartment of an integrated underwater trapping device proposed in this invention, taken from a bottom angle.
[0017] In the diagram: 100, Aquatic organism capture mechanism; 101, Aquatic organism capture component; 1011, Upper grille; 1012, Reinforcing rod; 1013, Hanging ring; 1014, Lower grille; 102, Closure component; 1021, Side grille; 1022, Connector; 1023, Rotating rod; 1024, Fixing component; 1025, Gear; 1026, First bearing; 103, Drive component; 1031, Waterproof motor; 1032, Cross; 1033, Opening; 1034, Connecting shaft; 1035, Toothed rod; 1036, Support base; 104, Underwater camera; 105, Cleaning component; 1051, Horizontal bar; 1052, Movable frame; 1053, Rubber strip; 200, Trapping mechanism; 201, Feeding component; 2011, Bait bin; 2012, Discharge port; 20 13. Upper shell; 2014. Feed inlet; 202. Hydraulic control assembly; 2021. Connecting cylinder; 2022. First piston; 2023. First spring; 2024. Connecting rod; 2025. Second piston; 2026. Movable rod; 2027. First ball bearing; 2028. Support; 203. Stirring assembly; 2031. Stirring blade; 2032. Spiral blade; 2033. Rotating shaft; 2034. First motor; 2035. Second bearing; 204. Fish attractant light; 205. Reciprocating motion assembly; 2051. Second spring; 2052. Support plate; 2053. Second ball bearing; 2054. Support rod; 2055. Petal cam; 206. Cleaning assembly; 2061. Annular ring; 2062. Arc groove; 2063. Third bearing; 2064. Cleaning strip. Detailed Implementation
[0018] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0019] Example 1, referring to Figures 1-4 and Figures 7-11 An integrated trapping device for underwater fishing includes an aquatic organism trapping mechanism 100, on which a trapping mechanism 200 is mounted. The aquatic organism capture mechanism 100 includes an aquatic organism capture component 101 and four closed components 102. A drive component 103 is provided below the aquatic organism capture component 101. The drive component 103 is connected to the four closed components 102. A cleaning component 105 is also connected to the drive component 103. The trapping mechanism 200 includes a feeding assembly 201 and a hydraulic control assembly 202. The feeding assembly 201 includes a bait bin 2011. An upper shell 2013 is fixedly connected to the top of the bait bin 2011. The upper shell 2013 is fixedly connected to the bottom of the upper grid 1011. An inlet 2014 is provided above the bait bin 2011. The bait bin 2011 can temporarily store the bait. At the same time, the inlet 2014 facilitates the injection of bait into the bait bin 2011. The inlet 2014 is equipped with a sealing plug to prevent the bait bin 2011 from being thrown into the water and discharged from the inlet 2014. An outlet 2012 is provided below the bait bin 2011. The bait can be easily thrown downwards through the outlet 2012, which is conducive to the operation of trapping aquatic organisms. The bracket 2028 is fixedly connected to the top of the bait bin 2011. The fish attractant light 204 is installed above the bait bin 2011. The fish attractant light 204 can emit light to attract aquatic organisms, thereby achieving the effect of aquatic organisms gathering. The feeding assembly 201 is positioned above the aquatic organism capture assembly 101. The feeding assembly 201 includes a stirring assembly 203, which comprises a first motor 2034. The first motor 2034 is mounted in the upper shell 2013, which protects the first motor 2034 and ensures its stable operation. A rotating shaft 2033 is fixedly connected to the output shaft of the first motor 2034. The rotating shaft 2033 is rotatably mounted on the feed bin 2011 via a second bearing 2035. The second bearing 2035 assists in the stable rotation of the rotating shaft 2033, thereby enabling the rotating shaft 2033 to drive the stirring blades. The spiral blades 2031 and 2032 rotate stably. Multiple stirring blades 2031 are fixedly connected to the outside of the rotating shaft 2033. The rotation of the rotating shaft 2033 can drive the stirring blades 2031 to rotate, so that the stirring blades 2031 can stir the bait and make it flow, preventing the bait from being suspended in the air. The stirring blades 2031 are located in the bait bin 2011. The spiral blades 2032 are fixedly connected to the bottom of the rotating shaft 2033 and are located in the discharge port 2012. The rotation of the rotating shaft 2033 can drive the spiral blades 2032 to rotate. The spiral blades 2032 can stably deliver the bait downward in a quantitative manner, delaying the throwing time, thereby improving the attraction to aquatic organisms. A reciprocating moving component 205 is connected to the stirring component 203. The reciprocating moving component 205 is positioned above the discharging component 201. The reciprocating moving component 205 includes multiple support rods 2054, which are fixedly connected to the rotating shaft 2033. One end of each support rod 2054 is fixedly connected to a petal cam 2055. The support rods 2054 connect the petal cam 2055 to the rotating shaft 2033, so that the rotation of the rotating shaft 2033 can drive the petal cam 2055 to rotate. Multiple second ball bearings 2053 are attached to the petal cam 2055. The convex surface of the petal cam 2055 can generate a squeezing motion with the second ball bearings 2053. Since the second ball bearings 2053 are connected to the support plate 2052 and kept in a fixed position, the second ball bearings 2053 can push the petal cam 2055 to move, thereby controlling the upper shell 2013. To achieve the purpose of the activity, the second ball bearing 2053 can reduce the frictional resistance with the petal cam 2055 and maintain the smooth movement of the petal cam 2055. The second ball bearing 2053 passes through the upper shell 2013 and is fixedly connected to the support plate 2052. The support plate 2052 is fixedly connected to the lower part of the upper grid 1011. A second spring 2051 is fixedly connected to one side of the support plate 2052. One end of the second spring 2051 is fixedly connected to the upper shell 2013. The restoring force of the second spring 2051 can drive the upper shell 2013 to return to its original position. The squeezing motion between the second cam and the second ball bearing 2053 can move the upper shell 2013. The second spring 2051, in conjunction with the second cam, can make the upper shell 2013 vibrate, causing the bait bin 2011 to vibrate. This enables the operation of vibrating bait throwing, increases the attractiveness to aquatic organisms, and facilitates the trapping effect of aquatic organisms. A cleaning component 206 is provided outside the feeding component 201. The cleaning component 206 works with the hydraulic control component 202 to clean the fish-attracting lamp 204, which is located below the feeding component 201.
[0020] In this embodiment, the first motor 2034 drives the rotating shaft 2033 to rotate, which in turn drives the stirring blade 2031 to rotate. This causes the stirring blade 2031 to rotate and agitate the bait, keeping it in a flowing state within the bait bin 2011. This prevents the bait from being suspended in mid-air, which would affect the baiting operation. Furthermore, the rotating shaft 2033 also drives the spiral blade 2032 to rotate. The spiral blade 2032, through rotation, can evenly and quantitatively release the bait from top to bottom. By continuously providing bait, the emitted scent and odor signals can travel further in the water, especially in flowing water, resulting in better trapping effects. Moreover, the bait accumulates at the lower grid 1014, forming an aggregation of aquatic organisms. Secondly, the rotation of the rotating shaft 2033 also drives the petal cam 2055 to rotate through the support rod 2054. The petal cam 2055 and the second ball bearing 2053 generate a squeezing motion. Since the position of the second ball bearing 2053 is fixed, the upper shell 2013 is displaced. With the cooperation of the second spring 2051, the upper shell 2013 can vibrate. The upper shell 2013 drives the bait bin 2011 to vibrate. The combination of vibration and downward baiting can simulate the movement of prey, which is conducive to increasing the appetite of aquatic organisms. Moreover, the vibration slows down the speed of baiting, improves the trapping effect, and forms a gathering signal. Furthermore, the vibration combined with the light of the fish attractant lamp 204 can generate a more attractive signal.
[0021] Example 2, refer to Figures 5-9 An integrated underwater trapping device includes a drive assembly 103, which includes a waterproof motor 1031. The waterproof motor 1031 is waterproof, thus preventing short-circuit damage and ensuring its operation. The waterproof motor 1031 is installed below a lower grille 1014. The output shaft of the waterproof motor 1031 is fixedly connected to a crossbar 1032. The crossbar 1032 has four openings 1033, which can be used to connect shafts 10... 34 provides a space for movement, allowing the cross 1032 to rotate smoothly and enabling the cross 1032 to smoothly drive the connecting shaft 1034 to move. The opening 1033 is provided with the connecting shaft 1034, and one end of the connecting shaft 1034 is fixedly connected to the rack 1035. The rack 1035 slides on the support seat 1036. The support seat 1036 can guide the rack 1035, so that the rack 1035 can stably contact the gear 1025. The support seat 1036 is fixedly connected to the bottom of the lower grille 1014. The cleaning component 206 includes an annular ring 2061 and a third bearing 2063. The third bearing 2063 can fix the position of the annular ring 2061, and the annular ring 2061 can maintain stable rotation through the third bearing 2063. The annular ring 2061 is rotatably mounted on the bait bin 2011 through the third bearing 2063. A cleaning strip 2064 is fixedly connected to the lower part of the annular ring 2061. The cleaning strip 2064 is located below the fish attractant lamp 204. An arc-shaped groove 2062 is provided on the outer side of the annular ring 2061. The arc surface of the arc-shaped groove 2062 is designed so that when the first ball bearing 2027 slides in the arc-shaped groove 2062, the rotation of the annular ring 2061 can be controlled by the arc surface of the arc-shaped groove 2062, thereby controlling the rotation of the cleaning strip 2064 to automatically clean the fish attractant lamp 204. The first ball bearing 2027 can reduce the movement resistance between itself and the arc-shaped groove 2062. The first ball bearing 2027 slides in the arc-shaped groove 2062. The aquatic organism capture assembly 101 includes an upper grille 1011 and a lower grille 1014. Four reinforcing rods 1012 are fixedly connected between the upper grille 1011 and the lower grille 1014. The reinforcing rods 1012 can connect the upper grille 1011 and the lower grille 1014 to maintain the stability of the upper grille 1011 and the lower grille 1014. An underwater camera 104 is installed in the middle of the upper part of the lower grille 1014 to facilitate observation of the internal conditions of the water. A hanging ring 1013 is fixedly connected to the upper part of the upper grille 1011. The hanging ring 1013 can be connected to a rope so that the device can be thrown into the water. The aquatic organism capture assembly 101 and the four closed components 102 form a fishing cage. The cleaning component 105 includes a horizontal bar 1051, which is fixedly connected to one of the toothed rods 1035. One end of the horizontal bar 1051 is fixedly connected to a movable frame 1052, which is U-shaped and can pass through the gap of the lower grille 1014, allowing the movable frame 1052 to move smoothly on the lower grille 1014. The movable frame 1052 can drive the rubber strip 1053 to move, and the rubber strip 1053 can clean the underwater camera 104. The movable frame 1052 passes through the lower grille 1014, and the upper wall of the movable frame 1052 is fixedly connected to the rubber strip 1053, which is located on one side of the underwater camera 104. The hydraulic control assembly 202 includes a connecting cylinder 2021, which is fixedly connected to the lower part of the upper grille 1011. A bracket 2028 is fixedly connected to one side of the connecting cylinder 2021. The middle part of the connecting cylinder 2021 is a retractable bellows structure, which allows the bait bin 2011 to perform vibration operations smoothly. A first piston 2022 and a second piston 2025 are arranged inside the connecting cylinder 2021. A movable rod 2026 is fixedly connected to the lower part of the second piston 2025. The movable rod 2026 passes through the connecting cylinder 2021 and is fixedly connected to a first ball bearing 2027. One side of the first piston 2022... A connecting rod 2024 is fixedly connected. After the first piston 2022 is reset by the first spring 2023, one end of the connecting rod 2024 extends out of the upper grille 1011, so that the side grille 1021 can be flipped and closed with the upper grille 1011, and the connecting rod 2024 can be smoothly pushed to move. The connecting rod 2024 passes through the other end of the connecting cylinder 2021. A first spring 2023 is fixedly connected between the first piston 2022 and the end wall of the connecting cylinder 2021. The first spring 2023 drives the first piston 2022 to reset, so that the first piston 2022 can drive the second piston 2025 to reset upward by hydraulic pressure. The closing assembly 102 includes a rotating rod 1023 and a side grille 1021. A connector 1022 is fixedly connected to one side of the side grille 1021. The connector 1022 is fixedly connected to the rotating rod 1023. A gear 1025 is fixedly connected to the rotating rod 1023. The gear 1025 meshes with a rack 1035. Through the meshing of the rack 1035 and the gear 1025, the gear 1025 can drive the rotating rod 1023 to perform a flipping motion. The rotating rod 1023 is rotatably mounted on two fixed members 1024 through two first bearings 1026. The first bearings 1026 can assist the rotating rod 1023 to rotate smoothly, so that the side grille 1021 can perform a smooth flipping operation. The fixed members 1024 are fixedly connected to the lower grille 1014.
[0022] In this embodiment, the waterproof motor 1031 drives the cross 1032 to rotate, causing the cross 1032 to move through the opening 1033 and drive the connecting shaft 1034 to move. The connecting shaft 1034 then drives the rack 1035 to move, causing the rack 1035 to transmit power to the gear 1025. This causes the rotating rod 1023 to rotate the side grilles 1021, closing the four side grilles 1021 with the upper grille 1011 and the lower grille 1014 to form a fish trap structure, thereby preventing aquatic life from escaping. During the flipping process of the side grille 1021, the side grille 1021 squeezes the connecting rod 2024, which drives the first piston 2022 to move. The first piston 2022 squeezes the liquid flow, causing the second piston 2025 to drive the movable rod 2026 and the first ball 2027 to move. The first ball 2027 controls the rotation of the annular ring 2061 through the arc groove 2062. The annular ring 2061 drives the cleaning strip 2064 to rotate, so that the cleaning strip 2064 can automatically clean the fish attractant lamp 204.
[0023] Example 3, referring to Figures 1-4 and Figures 7-8 An integrated underwater trapping device includes an aquatic organism trapping mechanism 100, which comprises an aquatic organism trapping component 101 and four closed components 102, forming a fishing cage between the aquatic organism trapping component 101 and the four closed components 102. A drive component 103 is disposed below the aquatic organism trapping component 101 and is connected to the four aquatic organism trapping components 101. A feeding component 201 is disposed above the aquatic organism trapping component 101, and a stirring component 203 is disposed in the feeding component 201. A reciprocating motion component 205 is connected to the stirring component 203 and is disposed above the feeding component 201. A cleaning component 206 is disposed outside the feeding component 201, and the cleaning component 206 cooperates with a hydraulic control component 202 to clean a fish-attracting lamp 204, which is disposed below the feeding component 201.
[0024] In this embodiment, the upper shell 2013 can be vibrated by the rotation of the stirring component 203 and the reciprocating moving component 205, which can drive the bait bin 2011 to vibrate. Secondly, the driving component 103 drives the closing component 102 and the aquatic organism capturing component 101 to close and catch fish. At the same time, the closing component 102 squeezes the hydraulic control component 202, which can drive the cleaning component 206 to clean the fish attractant light 204. Moreover, the vibration makes the cleaning effect better.
[0025] Working principle: During underwater fishing, this device is deployed into the water. The underwater motor drives the cross 1032 to rotate. The cross 1032 drives the connecting shaft 1034 to move through the opening 1033. The connecting shaft 1034 drives the rack 1035 to move. The rack 1035 drives the gear 1025 to rotate. The gear 1025 drives the rotating rod 1023 to rotate. The rotating rod 1023 drives the connecting piece 1022 to rotate. The connecting piece 1022 drives the side grille 1021 to flip downward, opening the side grille 1021. After the side grille 1021 is opened, the first spring 2023 drives the first piston 2022 to reset. The first piston 2022 pulls the second piston 2025 to move through the negative pressure of the liquid, causing the second piston 2025 to drive the movable rod 2026 and the first ball 2027 to reset upward. Then, the first motor 2034 is controlled to drive the rotating shaft 2033 to reverse, which in turn drives the stirring blade 2031 to rotate. The stirring blade 2031 agitates the bait flow, and the rotating shaft 2033 also drives the spiral blade 2032 to rotate. The spiral blade 2032 conveys the bait downward, causing it to be thrown downward. The rotating shaft 2033 also drives the support rod 2054 and the petal cam 2055 to rotate. Since the position of the support plate 2052 is fixed, the convex surface of the petal cam 2055 is squeezed by the second ball bearing 2053. The upper shell 2013 moves, causing the second spring 2051 to deform. When the convex surface of the petal cam 2055 moves away from the second ball bearing 2053, the second spring 2051 causes the upper shell 2013 to return to its original position until the petal cam 2055 and the second ball bearing 2053 compress each other again. This allows the petal cam 2055 to work with the second spring 2051 to vibrate the upper shell 2013, thereby vibrating and throwing bait to facilitate the trapping of aquatic organisms. It can also be used in conjunction with the fish-attracting lamp 204 for trapping. After a period of time, or after observing the gathering of aquatic organisms through the underwater camera 104, the waterproof motor 1031 drives the cross 1032 to rotate forward, causing the toothed rod 1035 to move the horizontal bar 1051 and the movable frame 1052. The movable frame 1052 drives the rubber strip 1053 to clean the underwater camera 104. At the same time, the side grille 1021 flips upward to close with the upper grille 1011 and the lower grille 1014, thus enabling the capture of aquatic organisms. When the side grille 1021 closes, it causes the connecting rod 2024 and the first piston 2022 to move, causing the first piston 2022 to squeeze the liquid flow. This causes the second piston 2025 to drive the movable rod 2026 and the first ball bearing 2027 to move downward, causing the first ball bearing 2027 to drive the annular ring 2061 to rotate through the arc groove 2062. The annular ring 2061 drives the cleaning strip 2064 to rotate, allowing the cleaning strip 2064 to clean the fish-attracting light 204.
[0026] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. An integrated trapping device for underwater fishing, comprising an aquatic organism trapping mechanism (100), characterized in that, The aquatic organism harvesting mechanism (100) is equipped with a trapping mechanism (200). The aquatic organism catching mechanism (100) includes an aquatic organism catching component (101) and four closed components (102), forming a fishing cage between the aquatic organism catching component (101) and the four closed components (102). A drive component (103) is provided below the aquatic organism catching component (101), and the drive component (103) is connected to the four closed components (102). A cleaning component (105) is also connected to the drive component (103). The aquatic organism catching component (101) includes an upper grille (1011) and a lower grille (1014). The closing assembly (102) includes a rotating rod (1023) and a side grille (1021). A connector (1022) is fixedly connected to one side of the side grille (1021). The connector (1022) is fixedly connected to the rotating rod (1023). A gear (1025) is fixedly connected to the rotating rod (1023). The gear (1025) meshes with a rack (1035). The rotating rod (1023) has two fixing parts (1024) rotatably mounted on it through two first bearings (1026). Both fixing parts (1024) are fixedly connected to the lower grille (1014). The trapping mechanism (200) includes a feeding assembly (201) and a hydraulic control assembly (202). The feeding assembly (201) is positioned above the aquatic organism trapping assembly (101). A stirring assembly (203) is installed within the feeding assembly (201), and a reciprocating motion assembly (205) is connected to the stirring assembly (203). The reciprocating motion assembly (205) is positioned above the feeding assembly (201). A cleaning assembly (206) is installed outside the feeding assembly (201). The cleaning of the fish-attracting lamp (204) is achieved in conjunction with the hydraulic control component (202). The fish-attracting lamp (204) is located below the feeding component (201). The feeding component (201) includes a bait bin (2011). The stirring component (203) includes a first motor (2034). An upper shell (2013) is fixedly connected above the bait bin (2011). The first motor (2034) is installed in the upper shell (2013). The output shaft of the first motor (2034) is fixedly connected to a rotating shaft (2033). The hydraulic control assembly (202) includes a connecting cylinder (2021), which is fixedly connected to the lower part of the upper grille (1011). A bracket (2028) is fixedly connected to one side of the connecting cylinder (2021). The middle part of the connecting cylinder (2021) is a retractable bellows structure. A first piston (2022) and a second piston (2025) are provided inside the connecting cylinder (2021). A movable rod (2026) is fixedly connected to the lower part of the second piston (2025). The movable rod (2026) passes through the connecting cylinder (2021) and is fixedly connected to the first ball bearing (2027). A connecting rod (2024) is fixedly connected to one side of the first piston (2022), and the connecting rod (2024) extends out from the other end of the connecting cylinder (2021). A first spring (2023) is fixedly connected between the end walls of the first piston (2022) and the connecting cylinder (2021). The cleaning component (206) includes an annular ring (2061) and a third bearing (2063). The annular ring (2061) is rotatably mounted on the bait bin (2011) via the third bearing (2063). A cleaning strip (2064) is fixedly connected to the lower part of the annular ring (2061). The cleaning strip (2064) is located below the fish attractant light (204). The annular ring (2061) has an arc-shaped groove (2062) on its outer side, and the first ball (2027) slides in the arc-shaped groove (2062); The reciprocating moving assembly (205) includes multiple support rods (2054), which are fixedly connected to the rotating shaft (2033). One end of each support rod (2054) is fixedly connected to a petal cam (2055). Multiple support plates (2052) are vertically fixed below the upper grille (1011). A connecting rod is horizontally provided at the lower end of the support plate (2052). The connecting rod is inserted into the upper shell (2013) and extends into the upper shell (2013) with a second ball bearing (2053) at its end. The second ball bearing (2053) overlaps with the outer side of the petal cam (2055). A second spring (2051) is fixedly connected to the support plate (2052), and one end of the second spring (2051) is fixedly connected to the upper shell (2013).
2. The integrated trapping device for underwater fishing according to claim 1, characterized in that, Four reinforcing rods (1012) are fixedly connected between the upper grille (1011) and the lower grille (1014). An underwater camera (104) is installed in the middle of the upper part of the lower grille (1014). A hanging ring (1013) is fixedly connected above the upper grille (1011).
3. The integrated trapping device for underwater fishing according to claim 2, characterized in that, The drive assembly (103) includes a waterproof motor (1031), which is installed below the lower grille (1014). The output shaft of the waterproof motor (1031) is fixedly connected to a cross (1032). The cross (1032) has four openings (1033). A connecting shaft (1034) is provided in each opening (1033). A rack (1035) is fixedly connected to one end of the connecting shaft (1034). A support seat (1036) is slidably provided on the rack (1035). The support seat (1036) is fixedly connected below the lower grille (1014).
4. The integrated trapping device for underwater fishing according to claim 3, characterized in that, The cleaning assembly (105) includes a horizontal bar (1051) which is fixedly connected to one of the toothed rods (1035). One end of the horizontal bar (1051) is fixedly connected to a movable frame (1052). The movable frame (1052) is U-shaped and passes through the lower grille (1014). A rubber strip (1053) is fixedly connected to the upper wall of the movable frame (1052). The rubber strip (1053) is located on one side of the underwater camera (104).
5. An integrated trapping device for underwater fishing according to claim 1, characterized in that, The bait bin (2011) has an inlet (2014) above it and an outlet (2012) below it. The bracket (2028) is fixedly connected to the top of the bait bin (2011). The fish attractant lamp (204) is installed above the bait bin (2011). The upper shell (2013) is fixedly connected to the bottom of the upper grille (1011).
6. An integrated trapping device for underwater fishing according to claim 5, characterized in that, The rotating shaft (2033) is rotatably mounted on the feed bin (2011) via the second bearing (2035). Multiple stirring blades (2031) are fixedly connected to the outside of the rotating shaft (2033). The stirring blades (2031) are located in the feed bin (2011). A spiral blade (2032) is fixedly connected to the bottom of the rotating shaft (2033). The spiral blade (2032) is located in the discharge port (2012).