A device for removing sediment from Gracilaria lemaneiformis for aquaculture feed processing
By using a rotating drum and a telescopic frame to tear apart the entangled Gracilaria, and combining the effects of bubbles and water flow, the problem of difficult removal of mud and sand caused by the entanglement of Gracilaria is solved, and an efficient mud and sand cleaning effect is achieved.
Patent Information
- Application Number
- CN202510958602.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-11
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2045-07-11
AI Technical Summary
When the existing sediment removal equipment is used to clean the agaricus, the agaricus easily becomes tangled into a ball, resulting in the entrapment of sediment that is difficult to remove, resulting in poor cleaning effect and inadequate cleaning.
A sediment removal device for Agaricus lemaneiformis used in aquaculture feed processing was designed. The device uses a rotating cylinder and a telescopic frame to tear apart the entangled Agaricus lemaneiformis. Combined with the effects of bubbles and water flow, solid-liquid separation is achieved, ensuring that the Agaricus lemaneiformis is fully contacted and the sediment is removed.
It effectively prevents the accumulation of mud and sand, significantly improves the cleaning effect of Gracilaria, ensures the complete removal of mud and sand, and improves the cleaning efficiency and thoroughness.
Smart Images

Figure CN120436339B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of livestock feed preparation, in particular to a device for removing sediment from Gracilaria lemaneiformis used in aquaculture feed processing. Background Art
[0002] In aquaculture, asparagus is an important and commonly used feed source, and its quality directly impacts the growth and health of aquatic animals. Because large amounts of sediment often accumulate during harvesting, specialized sediment removal equipment is required to ensure its safety and effectiveness in aquaculture. To remove sediment adhering to the surface of asparagus, these devices typically rely on the impact force of water flow and bubbles to lift the sediment from the asparagus.
[0003] However, current sediment removal equipment faces some problems during actual use. During the cleaning process, the asparagus often entangles with each other, causing sediment to be trapped between the asparagus and difficult to completely remove. This entanglement phenomenon makes it difficult to peel off the sediment, resulting in a significant reduction in the cleaning effect; in addition, due to the accumulation of asparagus, their contact with bubbles and water flow during cleaning is not sufficient, which further reduces the cleaning efficiency, thereby affecting the thoroughness and effectiveness of the asparagus cleaning. Summary of the Invention
[0004] In order to overcome the above-mentioned shortcomings, the present invention provides a device for removing sediment from asparagus for aquaculture feed processing, which can tear apart the entangled asparagus so that sediment is not easily trapped between the asparagus and spread the asparagus flat in the cleaning pool so that the asparagus can be fully contacted with bubbles and water flow in the subsequent process, thereby improving the cleaning effect of the asparagus.
[0005] The technical implementation scheme of the present invention is: a device for removing sediment from asparagus used in aquaculture feed processing, comprising a frame, a cleaning tank fixedly connected to the frame, a feed hopper fixedly connected to the cleaning tank, a collection hopper fixedly connected to one end of the cleaning tank away from the feed hopper, an inspection port opened on one side of the cleaning tank, an inspection plate fixedly connected to the inspection port of the cleaning tank, a shell fixedly connected to one side of the cleaning tank, a salvage mechanism provided on the cleaning tank, and a flow mechanism provided on the cleaning tank.
[0006] Optionally, the salvage mechanism includes a support base, which is fixedly connected to the cleaning pool, and a rotating cylinder in contact with the collecting bucket is rotatably connected in the cleaning pool. A reduction motor is fixedly connected to the support base, and a gear is fixedly connected to the output shaft of the reduction motor. A ring gear is fixedly connected to one end of the rotating cylinder close to the reduction motor, and the ring gear is engaged with the gear. Two guide plates are fixedly connected to the support base, and guide grooves are provided on both guide plates. Several telescopic frames are slidably connected to the rotating cylinder, and the two ends of each telescopic frame are slidably connected to the guide grooves of the two guide plates.
[0007] Optionally, the flow mechanism includes a water pump, which is fixed to the bottom of the cleaning tank, a first connecting pipe is connected between the output port of the water pump and the feed hopper, a separation pipe is connected to the bottom of the cleaning tank, a second connecting pipe is connected between the separation pipe and the input port of the water pump, an interception plate is installed in the cleaning tank, and a separation component is provided on the separation pipe.
[0008] Optionally, the separation component includes a filter plate, which is fixed to one side of the separation tube close to the second connecting tube. The middle of the separation tube is rotatably connected to a separation cylinder, which has three grooves and a crank fixed to the separation cylinder that is rotatably connected to the separation tube.
[0009] Optionally, a dispersion mechanism is also included, which is arranged on the reduction motor, and the dispersion mechanism includes a guide wheel, which is fixedly connected to the output shaft of the reduction motor, and a guide groove is opened on the guide wheel, a guide sleeve is fixedly connected to the cleaning pool, and a sliding arm is slidably connected to the guide sleeve, one end of the sliding arm is slidably connected to the guide groove of the guide wheel, and a straight groove is opened on the other end of the sliding arm, a shielding frame is fixed to the cleaning pool, and a crankshaft is rotatably connected between the cleaning pool and the shielding frame, one end of the crankshaft is slidably connected to the straight groove of the sliding arm, and three first telescopic rods and three second telescopic rods are slidably connected to the shielding frame, the three first telescopic rods and the three second telescopic rods are all provided with strip grooves, the strip grooves of the three first telescopic rods and the three second telescopic rods are all slidably connected to the crankshaft, the three first telescopic rods are in contact with the rotating cylinder, and a flushing assembly is provided on the shielding frame.
[0010] Optionally, the flushing assembly includes a spray rack, which is fixed to the shielding rack, and a third connecting pipe is connected between the spray rack and the first connecting pipe.
[0011] Optionally, a toggle mechanism is provided on the cleaning pool, and the toggle mechanism includes a support frame, the support frame is fixedly connected to one side of the cleaning pool, a space cam is rotatably connected to the support frame, a guide groove is provided on the space cam, a slider is slidably connected to the support frame, the slider is slidably connected to the guide groove of the space cam, a toggle frame is slidably connected to the cleaning pool, one end of the toggle frame is rotatably connected to the slider, a first synchronous wheel rotatably connected to the support frame is fixedly connected to the space cam, a second synchronous wheel is fixedly connected to the output shaft of the reduction motor, a synchronous belt is wound around the first synchronous wheel and the second synchronous wheel, and a lifting component is provided on the shielding frame.
[0012] Optionally, the lifting assembly includes a sliding frame, which is slidably connected to the shielding frame, the sliding frame is in contact with the second telescopic rod, a connecting frame is fixed to the toggle frame, a sliding groove is opened on the connecting frame, the sliding groove of the connecting frame is slidably connected to the sliding frame, and a pressure spring is connected between the sliding frame and the shielding frame.
[0013] Optionally, a bubble assembly is also included, which is arranged on the cleaning pool. The bubble assembly includes an air pump, which is fixed to the bottom of the cleaning pool. Several bubble stones are installed in the cleaning pool, and a shunt pipe is connected between the several bubble stones and the air pump.
[0014] The present invention has the following advantages: 1. When the water in the cleaning pool is circulated, solid-liquid separation is achieved through the filter plate and the separation cylinder, and then the mud and sand in the cleaning pool are discharged, thereby effectively preventing the mud and sand from accumulating and contaminating the agaricus, and significantly improving the cleaning effect of the agaricus.
[0015] 2. When the cleaned asparagus is salvaged, the telescopic frame will tear the asparagus together with the first telescopic rod and the second telescopic rod that alternately press against the rotating cylinder, thereby tearing apart the asparagus that are entangled with each other, so that mud and sand are not easily trapped between the asparagus, further improving the cleaning effect of the asparagus; at the same time, part of the water in the first connecting pipe will enter the spray frame through the third connecting pipe, so that the spray frame sprays water from the top towards the torn asparagus, thereby washing the torn asparagus, thereby effectively removing the mud and sand trapped between the asparagus.
[0016] 3. When the asparagus flows downward with the water, the toggle rack will press against the raised asparagus and drive it to move back and forth. At the same time, the toggle rack will intermittently lift up to release the asparagus, and then spread the asparagus flat in the cleaning pool, so that the asparagus can fully contact with bubbles and water flow in the future, further improving the cleaning effect of the asparagus. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0018] Figure 2 It is a partial three-dimensional structural schematic diagram of the present invention.
[0019] Figure 3 It is a schematic diagram of the three-dimensional structure of the salvage mechanism of the present invention.
[0020] Figure 4 It is a schematic diagram of the cross-sectional three-dimensional structure of the salvage mechanism of the present invention.
[0021] Figure 5 It is a schematic diagram of the disassembled three-dimensional structure of the salvage mechanism of the present invention.
[0022] Figure 6 It is a schematic diagram of the three-dimensional structure of the flow mechanism of the present invention.
[0023] Figure 7 It is a partial three-dimensional structural schematic diagram of the flow mechanism of the present invention.
[0024] Figure 8 It is a schematic diagram of the cross-sectional three-dimensional structure of the flow mechanism of the present invention.
[0025] Figure 9 It is a schematic diagram of the three-dimensional structure of the dispersion mechanism of the present invention.
[0026] Figure 10 It is a partial three-dimensional structural schematic diagram of the dispersion mechanism of the present invention.
[0027] Figure 11 It is a schematic diagram of the split three-dimensional structure of the dispersion mechanism of the present invention.
[0028] Figure 12 It is a schematic diagram of the three-dimensional structure of the flushing component of the present invention.
[0029] Figure 13 It is a schematic diagram of the three-dimensional structure of the toggle mechanism and the lifting assembly of the present invention.
[0030] Figure 14 It is a schematic diagram of the disassembled three-dimensional structure of the toggle mechanism of the present invention.
[0031] Figure 15 It is a schematic diagram of the three-dimensional structure of the lifting assembly of the present invention.
[0032] Figure 16 It is a schematic diagram of the three-dimensional structure of the bubble assembly of the present invention.
[0033] The meanings of the reference numerals in the figure are: 1: frame, 2: cleaning tank, 3: feed hopper, 4: collecting hopper, 5: inspection plate, 6: casing, 7: salvage mechanism, 71: support seat, 72: rotating cylinder, 73: reduction motor, 74: gear, 75: ring gear, 76: guide plate, 77: telescopic frame, 8: flow mechanism, 81: water pump, 82: first connecting pipe, 83: second connecting pipe, 84: separation pipe, 85: intercepting plate, 86: filter disc, 87: separation cylinder, 88: crank, 9: dispersion mechanism, 91: guide wheel, 92: guide sleeve, 93: sliding arm, 94: crankshaft, 95: shielding frame, 961: first telescopic rod, 962: second telescopic rod, 10: flushing assembly, 101: spray frame, 102: third connecting pipe, 11: toggle mechanism, 111: support frame, 112: space cam, 113: slider, 114: toggle frame, 115: first synchronous wheel, 116: synchronous belt, 117: second synchronous wheel, 12: lifting assembly, 121: sliding frame, 122: connecting frame, 123: pressure spring, 13: bubble assembly, 131: air pump, 132: diverter pipe, 133: bubble stone. DETAILED DESCRIPTION
[0034] To make the objectives, technical solutions, and advantages of the present invention more apparent, the present invention will be further described in detail below with reference to the accompanying drawings. It is hereby stated that any directional terms such as "up," "down," "left," "right," "front," "back," "inside," and "outside" that appear or will appear herein are based solely on the accompanying drawings and are not intended to limit the present invention.
[0035] Example 1: A device for removing sediment from aquaculture feed processing Gracilaria lemaneiformis, such as Figures 1-16 As shown, it includes a frame 1, a cleaning tank 2 for cleaning asparagus is connected to the frame 1 by bolts, a feeding hopper 3 for adding asparagus is connected to the cleaning tank 2 by bolts, a collecting hopper 4 for collecting asparagus is connected to the end of the cleaning tank 2 away from the feeding hopper 3 by bolts, an inspection port is opened on one side of the cleaning tank 2, an inspection plate 5 for closing the inspection port is connected to the inspection port of the cleaning tank 2 by bolts, a casing 6 for protecting parts is connected to one side of the cleaning tank 2 by bolts, a salvaging mechanism 7 for salvaging asparagus is provided on the cleaning tank 2, and a flow mechanism 8 for flushing asparagus is provided on the cleaning tank 2.
[0036] The salvage mechanism 7 includes a support base 71, which is connected to the cleaning pool 2 by bolts. A rotating drum 72 in contact with the collecting bucket 4 is rotatably connected to the support base 71, and a reduction motor 73 is connected to the support base 71 by bolts. The output shaft of the reduction motor 73 is connected to a gear 74 through a keyway. The end of the rotating drum 72 close to the reduction motor 73 is connected to a ring gear 75 by bolts. The ring gear 75 meshes with the gear 74. Two guide plates 76 are connected to the support base 71 by a keyway. Guide grooves are provided on both guide plates 76. Several telescopic frames 77 are slidably connected to the rotating drum 72. The rotating drum 72 salvages the asparagus through the telescopic frames 77. The two ends of each telescopic frame 77 are respectively slidably connected to the guide grooves of the two guide plates 76. The guide plates 76 drive the telescopic frames 77 to extend and retract on the rotating drum 72 through the guide grooves of the guide plates 76.
[0037] The flow mechanism 8 includes a water pump 81, which is connected to the bottom of the cleaning pool 2 by bolts. A first connecting pipe 82 is connected between the output port of the water pump 81 and the feed hopper 3. A separation pipe 84 is connected to the bottom of the cleaning pool 2. A second connecting pipe 83 is connected between the separation pipe 84 and the input port of the water pump 81. An interception plate 85 for intercepting Gracilaria is installed in the cleaning pool 2, and a separation component for separating mud and sand from water is provided on the separation pipe 84.
[0038] The separation assembly includes a filter plate 86 for filtering mud and sand. The filter plate 86 is connected to the side of the separation tube 84 near the second connecting tube 83 by bolts. The middle of the separation tube 84 is rotatably connected to a separation cylinder 87. The separation cylinder 87 has three grooves for storing mud and sand. The separation cylinder 87 is connected to a crank handle 88 rotatably connected to the separation tube 84 through a keyway. The separation cylinder 87 is driven by rotating the crank handle 88 to discharge the mud and sand from the separation tube 84.
[0039] It also includes a bubble component 13 for generating bubbles, which is arranged on the cleaning pool 2. The bubble component 13 includes an air pump 131, which is connected to the bottom of the cleaning pool 2 by bolts. Several bubble stones 133 for generating bubbles are installed in the cleaning pool 2, and a diversion pipe 132 is connected between the several bubble stones 133 and the air pump 131.
[0040] Initially, a certain amount of water is contained in the cleaning pool 2. First, the operator starts the reduction motor 73, the water pump 81 and the air pump 131. The reduction motor 73 is started so that the output shaft of the reduction motor 73 drives the rotating drum 72 to rotate clockwise through the gear 74 and the ring gear 75. The rotation of the rotating drum 72 drives several telescopic frames 77 to rotate together. When the telescopic frames 77 rotate to the intercepting plate 85, the guide groove of the guide plate 76 squeezes the telescopic frames 77 to extend out of the rotating drum 72. The extended telescopic frames 77 continue to rotate. When the telescopic frames 77 are about to approach the collecting bucket 4, the guide groove of the guide plate 76 squeezes the telescopic frames 77 to retract into the rotating drum 72, and then the water in the cleaning pool 2 is adjusted by the telescopic frames 77. The asparagus is salvaged; the water pump 81 is started, so that the water in the cleaning pool 2 enters the water pump 81 through the intercepting plate 85, the separation pipe 84, the filter plate 86 and the second connecting pipe 83, and then the water entering the water pump 81 will flow out from the feed hopper 3 through the first connecting pipe 82, thereby causing the water in the cleaning pool 2 to circulate; after the air pump 131 is started, it will transport air to several bubble stones 133 through the diversion pipe 132, so that the bubble stones 133 generate a large number of tiny bubbles in the water in the cleaning pool 2, and then the operator will put the asparagus into the feed hopper 3 in a quantitative manner. The asparagus entering the feed hopper 3 will be flushed by the water flow out of the feed hopper 3 and enter the cleaning pool 2, and then the asparagus will move toward the bottom of the cleaning pool 2 with the water flow. When the asparagus enters the bottom of the cleaning pool 2, it will come into contact with a large number of tiny bubbles, which make the bubbles drive the asparagus to roll in the water and produce a local impact force on the asparagus, thereby stripping off the mud and sand attached to the asparagus. The asparagus entering the bottom of the cleaning pool 2 will be intercepted by the interception plate 85, and then the rotating cylinder 72 will salvage the asparagus accumulated on the interception plate 85 through the telescopic frame 77. When the telescopic frame 77 is about to approach the collecting bucket 4, it will retract into the rotating cylinder 72, and then the collecting bucket 4 will scrape the asparagus attached to the rotating cylinder 72 into the collecting bucket 4, thereby completing the cleaning of the asparagus. Then the operator collects the asparagus on the collecting bucket 4; the mud and sand separated from the asparagus will pass through the interception plate with the water flow 85 continues to flow, and then the filter plate 86 will block the silt. The silt blocked by the filter plate 86 will settle downward and accumulate in the groove of the separation cylinder 87. The operator can drive the separation cylinder 87 to rotate by intermittently turning the crank 88, so that the silt deposited in the groove of the separation cylinder 87 is discharged through the opening at the bottom of the separation tube 84. In this way, when the water in the cleaning tank 2 circulates, solid-liquid separation is achieved through the filter plate 86 and the separation cylinder 87, and then the silt in the cleaning tank 2 is discharged, thereby effectively preventing the silt accumulation from polluting the asparagus, and significantly improving the cleaning effect of the asparagus. After all the asparagus is cleaned, the operator empties the water in the cleaning tank 2 and removes the inspection plate 5, and then rinses the inside of the cleaning tank 2.
[0041] Example 2: Based on Example 1, Figures 1-16As shown, it also includes a dispersion mechanism 9, which is arranged on the reduction motor 73 and is used to tear apart the mutually entangled asparagus. The dispersion mechanism 9 includes a guide wheel 91, which is connected to the output shaft of the reduction motor 73 through a keyway, and a guide groove is provided on the guide wheel 91. A guide sleeve 92 is connected to the cleaning pool 2 by bolts, and a sliding arm 93 is slidably connected to the guide sleeve 92. One end of the sliding arm 93 is slidably connected to the guide groove of the guide wheel 91, and a straight groove is provided on the other end of the sliding arm 93. The guide wheel 91 drives the sliding arm 93 to move back and forth intermittently through the guide groove of the guide wheel 91, and a shielding frame 95 is connected to the cleaning pool 2 by bolts. A crankshaft 94 is rotatably connected between the blocking frame 95, and one end of the crankshaft 94 is slidably connected to the straight groove of the sliding arm 93. Three first telescopic rods 961 and three second telescopic rods 962 are slidably connected to the blocking frame 95. The three first telescopic rods 961 and the three second telescopic rods 962 are all provided with strip grooves, and the strip grooves of the three first telescopic rods 961 and the three second telescopic rods 962 are all slidably connected to the crankshaft 94. The sliding arm 93 drives the three first telescopic rods 961 and the three second telescopic rods 962 to move intermittently and alternately through the crankshaft 94. The three first telescopic rods 961 are in contact with the rotating cylinder 72. A washing component 10 for secondary washing of the asparagus is provided on the blocking frame 95.
[0042] The flushing assembly 10 includes a spray frame 101, which is connected to the shielding frame 95 by bolts. The spray frame 101 is used to spray water from the top toward the torn asparagus. A third connecting pipe 102 is connected between the spray frame 101 and the first connecting pipe 82.
[0043] At first, the three first telescopic rods 961 are against the rotating cylinder 72. When the reduction motor 73 is started, the output shaft of the reduction motor 73 drives the guide wheel 91 to rotate. After the guide wheel 91 rotates a certain angle, it squeezes the sliding arm 93 through the guide groove of the guide wheel 91 to move toward the crankshaft 94, so that the straight groove of the sliding arm 93 drives the crankshaft 94 to rotate ninety degrees, so that the crankshaft 94 drives the three first telescopic rods 961 to move a certain distance toward the feed hopper 3. After the three first telescopic rods 961 move a certain distance, they no longer press against the rotating cylinder 72. At the same time, the crankshaft 94 squeezes the three second telescopic rods 962 to move toward the rotating cylinder 72 and press against the rotating cylinder 72. After the guide wheel 91 continues to rotate a certain angle, it pulls the sliding arm 93 to reset, so that the crankshaft 94 and the three second telescopic rods 962 are reset, and the three first telescopic rods 961 The guide wheel 91 rotates and drives the three first telescopic rods 961 and the three second telescopic rods 962 to alternately press against the rotating cylinder 72 through the sliding arm 93 and the crankshaft 94. In this way, the telescopic frame 77 will tear the asparagus after cleaning together with the first telescopic rod 961 and the second telescopic rod 962 that alternately press against the rotating cylinder 72, thereby tearing apart the asparagus that are entangled with each other, so that mud and sand are not easily trapped between the asparagus, further improving the cleaning effect of the asparagus; at the same time, part of the water in the first connecting pipe 82 will enter the spray rack 101 through the third connecting pipe 102, so that the spray rack 101 sprays water from the top towards the torn asparagus, thereby flushing the torn asparagus, thereby effectively removing the mud and sand trapped between the asparagus.
[0044] Example 3: Based on Example 2, Figures 1-16 As shown, it also includes a toggle mechanism 11, which is provided on the cleaning pool 2 and is used to flatten the asparagus entering the cleaning pool 2. The toggle mechanism 11 includes a support frame 111, which is connected to one side of the cleaning pool 2 by bolts, and a space cam 112 is rotatably connected to the support frame 111. A guide groove is provided on the space cam 112, and a slider 113 is slidably connected to the support frame 111. The slider 113 is slidably connected to the guide groove of the space cam 112, and the space cam 112 is guided by the guide of the space cam 112. The groove drives the slider 113 to move back and forth, and a toggle frame 114 for laying the asparagus is slidably connected to the cleaning pool 2. One end of the toggle frame 114 is rotatably connected to the slider 113. The space cam 112 is connected to a first synchronous wheel 115 rotatably connected to the support frame 111 by bolts, and a second synchronous wheel 117 is connected to the output shaft of the reduction motor 73 through a keyway. A synchronous belt 116 is wound around the first synchronous wheel 115 and the second synchronous wheel 117, and a lifting component 12 for lifting the toggle frame 114 is provided on the shielding frame 95.
[0045] The lifting assembly 12 includes a sliding frame 121, which is slidably connected to the shielding frame 95. The sliding frame 121 is in contact with the second telescopic rod 962. The toggle frame 114 is connected to a connecting frame 122 by bolts. The connecting frame 122 is provided with a sliding groove. The sliding groove of the connecting frame 122 is slidably connected to the sliding frame 121. The sliding frame 121 is pressed against the toggle frame 114 through the connecting frame 122. A pressure spring 123 is connected between the sliding frame 121 and the shielding frame 95.
[0046] At first, one of the second telescopic rods 962 presses against the sliding frame 121, so that the pressure spring 123 is in a compressed state, and the sliding frame 121 presses against the toggle frame 114 through the connecting frame 122, so that the toggle frame 114 maintains a certain distance from the bottom of the cleaning tank 2. When the reduction motor 73 is started, the output shaft of the reduction motor 73 drives the space cam 112 to rotate through the second synchronous wheel 117, the synchronous belt 116 and the first synchronous wheel 115. The rotation of the space cam 112 drives the slider 113 to reciprocate on the support frame 111 through the guide groove of the space cam 112. The reciprocating movement of the slider 113 drives the toggle frame 114 to reciprocate. At the same time, the first telescopic rod 961 and the second telescopic rod 962 move alternately intermittently. When the three second telescopic rods 962 move toward the rotating cylinder 72, the second telescopic rod 962 no longer presses against the sliding frame 121, and the pressure spring 123 resets, so that the sliding frame 121 passes through the connecting frame 122 The sliding groove drives the connecting frame 122 to rotate toward the rotating cylinder 72, and the rotation of the connecting frame 122 drives the toggle frame 114 to lift up, and then the first telescopic rod 961 moves toward the sliding frame 121. After one of the first telescopic rods 961 moves a certain distance, it pushes the sliding frame 121 to reset, and the pressure spring 123 returns to its initial state. The sliding frame 121 resets so that the toggle frame 114 maintains a certain distance from the bottom of the cleaning tank 2 again. Repeat this process, and the slider 113 drives the toggle frame 114 to move back and forth. At the same time, the sliding frame 121 will intermittently drive the toggle frame 114 to lift up through the connecting frame 122. In this way, when the water flows downward with the water, the toggle frame 114 will resist the raised water and drive it to move back and forth. At the same time, the toggle frame 114 will intermittently lift and release the water, and then spread the water flat in the cleaning tank 2, so that the water can be fully contacted with bubbles and water flow in the future, further improving the cleaning effect of the water.
[0047] The above embodiments are intended only to illustrate the technical concepts and features of the present invention. Their purpose is to enable those skilled in the art to understand the contents of the present invention and implement them accordingly. They are not intended to limit the scope of protection of the present invention. Any equivalent changes or modifications made in accordance with the spirit of the present invention are intended to be covered by the scope of protection of the present invention.
Claims
1. A device for removing sediment from Gracilaria lemaneiformis for aquaculture feed processing, characterized by: The invention comprises a frame (1), a cleaning pool (2) fixedly connected to the frame (1), a feed hopper (3) fixedly connected to the cleaning pool (2), a collecting hopper (4) fixedly connected to one end of the cleaning pool (2) away from the feed hopper (3), an inspection port opened on one side of the cleaning pool (2), an inspection plate (5) fixedly connected to the inspection port of the cleaning pool (2), a housing (6) fixedly connected to one side of the cleaning pool (2), a salvaging mechanism (7) provided on the cleaning pool (2), and a flow mechanism (8) provided on the cleaning pool (2); The salvaging mechanism (7) includes a support base (71), the support base (71) is fixedly connected to the cleaning tank (2), and a reduction motor (73) is fixedly connected to the support base (71); The invention also includes a dispersion mechanism (9), the dispersion mechanism (9) is provided on the reduction motor (73), the dispersion mechanism (9) includes a guide wheel (91), the guide wheel (91) is fixedly connected to the output shaft of the reduction motor (73), a guide groove is provided on the guide wheel (91), a guide sleeve (92) is fixedly connected to the cleaning tank (2), a sliding arm (93) is slidably connected to the guide sleeve (92), one end of the sliding arm (93) is slidably connected to the guide groove of the guide wheel (91), the other end of the sliding arm (93) is provided with a straight groove, a shielding frame (95) is fixedly connected to the cleaning tank (2), and the cleaning tank (2) and the shielding frame are connected. A crankshaft (94) is rotatably connected between (95), one end of the crankshaft (94) is slidably connected to the straight groove of the sliding arm (93), three first telescopic rods (961) and three second telescopic rods (962) are slidably connected to the shielding frame (95), the three first telescopic rods (961) and the three second telescopic rods (962) are all provided with strip grooves, the strip grooves of the three first telescopic rods (961) and the three second telescopic rods (962) are all slidably connected to the crankshaft (94), the three first telescopic rods (961) are in contact with the rotating cylinder (72), and a flushing assembly (10) is provided on the shielding frame (95).
2. The device for removing sediment from Gracilaria lemaneiformis for aquaculture feed processing according to claim 1, characterized in that: A rotating cylinder (72) in contact with the collecting bucket (4) is rotatably connected in the cleaning tank (2), a gear (74) is fixedly connected to the output shaft of the reduction motor (73), a ring gear (75) is fixedly connected to one end of the rotating cylinder (72) close to the reduction motor (73), the ring gear (75) is engaged with the gear (74), two guide plates (76) are fixedly connected to the support seat (71), and guide grooves are provided on the two guide plates (76), and a plurality of telescopic frames (77) are slidably connected to the rotating cylinder (72), and the two ends of each telescopic frame (77) are respectively slidably connected to the guide grooves of the two guide plates (76).
3. The device for removing sediment from Gracilaria lemaneiformis for aquaculture feed processing according to claim 2, characterized in that: The flow mechanism (8) includes a water pump (81), which is fixed to the bottom of the cleaning tank (2). A first connecting pipe (82) is connected between the output port of the water pump (81) and the feed hopper (3). A separation pipe (84) is connected to the bottom of the cleaning tank (2). A second connecting pipe (83) is connected between the separation pipe (84) and the input port of the water pump (81). An interception plate (85) is installed in the cleaning tank (2), and a separation component is provided on the separation pipe (84).
4. The device for removing sediment from Gracilaria lemaneiformis for aquaculture feed processing according to claim 3, characterized in that: The separation assembly includes a filter plate (86), which is fixedly connected to a side of the separation tube (84) near the second connecting tube (83). The middle of the separation tube (84) is rotatably connected to a separation cylinder (87), and the separation cylinder (87) is provided with three grooves. The separation cylinder (87) is fixedly connected to a crank handle (88) rotatably connected to the separation tube (84).
5. The device for removing sediment from Gracilaria lemaneiformis for aquaculture feed processing according to claim 4, characterized in that: The flushing assembly (10) comprises a spray rack (101), the spray rack (101) is fixed to the shielding rack (95), and a third connecting pipe (102) is connected between the spray rack (101) and the first connecting pipe (82).
6. The device for removing sediment from Gracilaria lemaneiformis for aquaculture feed processing according to claim 5, characterized in that: The invention also includes a toggle mechanism (11), the toggle mechanism (11) is provided on the cleaning pool (2), the toggle mechanism (111) includes a support frame (111), the support frame (111) is fixed to one side of the cleaning pool (2), a space cam (112) is rotatably connected to the support frame (111), a guide groove is provided on the space cam (112), a slider (113) is slidably connected to the support frame (111), and the slider (113) is slidably connected to the guide groove of the space cam (112). A toggle frame (114) is slidably connected to the cleaning tank (2), one end of the toggle frame (114) is rotatably connected to the slider (113), a first synchronous wheel (115) rotatably connected to the support frame (111) is fixedly connected to the spatial cam (112), a second synchronous wheel (117) is fixedly connected to the output shaft of the reduction motor (73), a synchronous belt (116) is wound between the first synchronous wheel (115) and the second synchronous wheel (117), and a lifting component (12) is provided on the shielding frame (95).
7. The device for removing sediment from Gracilaria lemaneiformis for aquaculture feed processing according to claim 6, characterized in that: The lifting assembly (12) includes a sliding frame (121), the sliding frame (121) is slidably connected to the shielding frame (95), the sliding frame (121) is in contact with the second telescopic rod (962), a connecting frame (122) is fixed to the toggle frame (114), a sliding groove is provided on the connecting frame (122), the sliding groove of the connecting frame (122) is slidably connected to the sliding frame (121), and a pressure spring (123) is connected between the sliding frame (121) and the shielding frame (95).
8. The device for removing sediment from Gracilaria lemaneiformis for aquaculture feed processing according to claim 7, characterized in that: The cleaning tank (2) further comprises a bubble assembly (13), wherein the bubble assembly (13) is arranged on the cleaning tank (2), and the bubble assembly (13) comprises an air pump (131), wherein the air pump (131) is fixedly connected to the bottom of the cleaning tank (2), and a plurality of bubble stones (133) are installed in the cleaning tank (2), and a shunt pipe (132) is connected between the plurality of bubble stones (133) and the air pump (131).
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