Raw material impurity removal and coarse crushing integrated equipment for sea cucumber feed processing
By designing an integrated equipment for impurity removal and coarse crushing in sea cucumber feed processing, using a fan to separate stones and pull ropes to remove impurities, the problem of cleaning impurities in sea cucumber feed raw materials has been solved, improving the quality of finished products and aquaculture results.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- QINGDAO HIFORD ECOLOGICAL TECH
- Filing Date
- 2026-02-04
- Publication Date
- 2026-04-10
AI Technical Summary
During the crushing and processing of sea cucumber feed raw materials, it is difficult to effectively remove stones and rope-like impurities, which affects the quality of the finished product and has a negative impact on sea cucumber farming.
Design an integrated equipment for impurity removal and coarse crushing. It uses a fan to guide airflow to separate stone particles, and a pulling and sticking removal mechanism to separate rope-like impurities. Combined with crushing rollers and decomposition components, it can achieve preliminary cleaning of raw materials such as kelp.
It effectively removes stones and ropes from sea cucumber feed ingredients, improves the quality of finished products, and ensures the health and safety of sea cucumber farming.
Smart Images

Figure CN121817354A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of sea cucumber feed processing technology, specifically to an integrated equipment for removing impurities and coarsely crushing raw materials for sea cucumber feed processing. Background Technology
[0002] Sea cucumber feed is a nutritional supplement specifically designed for sea cucumber farming, aiming to meet their growth, development, and health needs. It is generally divided into two main categories: artificial compound feed and natural feed. Artificial compound feed is made from a scientifically proportioned blend of various ingredients to ensure nutritional balance. Sea cucumber feed has a variety of ingredients, with common components including shrimp meal, fish meal, Sargassum, and kelp, and may also contain added vitamins, trace elements, or functional substances.
[0003] Currently, in the processing of sea cucumber feed, raw materials such as Sargassum and kelp need to be crushed and ground before they can be mixed with other raw materials to make sea cucumber feed. However, since Sargassum and kelp both grow on marine rocks, it is difficult to completely avoid the mixing of substrate stones during harvesting, whether mechanically or manually. This is especially true when working in the intertidal zone, where the algae easily carry debris when rubbing against the reefs. In addition, artificially cultivated kelp often uses ropes as an auxiliary substrate, and Sargassum may become entangled with impurities in the seawater during its growth. If it is not thoroughly cleaned during harvesting, the remaining ropes and stones will be mixed into the product and difficult to separate, which can affect the quality of the finished product and even affect the sea cucumber's feeding and digestion later on. Summary of the Invention
[0004] The purpose of this invention is to provide an integrated equipment for raw material impurity removal and coarse crushing in sea cucumber feed processing. When raw materials such as kelp are crushed and fall, airflow separates stones from the kelp and other raw materials. A decomposition unit then pulls apart large clumps of kelp and other raw materials. The crushed kelp and other raw materials pass through a sticking plate to separate rope-like impurities. This allows for the removal of impurities and facilitates subsequent fine processing. This solves the problem that currently, it is difficult to remove stones and rope-like impurities from some sea cucumber feed raw materials during crushing and processing, which can affect the quality of the finished product and sea cucumber farming operations.
[0005] To achieve the above objectives, the present invention provides the following technical solution: an integrated raw material impurity removal and coarse crushing device for sea cucumber feed processing, comprising a crushing section with internal crushing rollers, and further comprising: A processing frame is installed at the bottom of the crushing section, and a sealing element is detachably connected to the surface of the processing frame by bolts; A separation unit is installed on the surface of the processing frame and separates stones from kelp through airflow. The separation unit includes a correspondingly configured fan and filter. The disassembly assembly is installed on top of the processing frame. The disassembly assembly includes a horizontal plate welded to the inner wall of the processing frame and a pull-up part that can be raised and lowered inside the processing frame. The feeding group is located on the inner wall of the separation group. The feeding group includes a reinforcement member that fixes through the debris removal frame, a drive unit installed on the surface of the reinforcement member, and an adhesive removal mechanism installed inside the reinforcement member.
[0006] Preferably, the separation group further includes: A hollow cylinder is embedded in the surface of a processing frame. A cover plate is detachably connected to the surface of the hollow cylinder by bolts, and the fan is mounted on the surface of the cover plate. The inner frame is welded to the inner wall of the processing frame and has an arc-shaped design. A debris removal frame is welded to the bottom of the processing frame and is located below the inner frame. The partition is embedded in the inner wall of the inner frame; The barrier is welded to the bottom of the inner wall of the processing frame.
[0007] Preferably, the pulling part includes: The bare rod slides through the top of the processing frame; The misalignment component and the top plate are welded to both ends of the light rod, and extension rods are welded to the surfaces of both the misalignment component and the horizontal plate. The horizontal plate and the misalignment component are both arranged between the barrier component and the filter screen.
[0008] Preferably, the decomposition assembly further includes a cleaning section for cleaning the filter screen surface, the cleaning section comprising: L-shaped rods are welded to the surface of the top plate and slide through the treatment frame; The vertical component is welded to the bottom of the L-shaped rod and slidably connected to the inner wall of the processing frame; The scraper is welded between two adjacent vertical members and is designed at an angle, with the surface of the scraper in contact with the surface of the filter screen.
[0009] Preferably, the driving unit includes a power mechanism disposed on the surface of the reinforcing member, the power mechanism comprising: The motor is bolted to the surface of the reinforcement component; The rotating shaft is connected to the reinforcing member and fixedly connected to the motor output shaft. A gear disk and a gear ring, wherein the gear disk is fixedly sleeved on the surface of the rotating shaft and meshes with the gear ring.
[0010] Preferably, a protective component is welded to the surface of the reinforcing member, the rotating shaft rotates through the protective component, the gear disk is disposed inside the protective component, and the gear ring is rotatably connected to the inner wall of the protective component.
[0011] Preferably, the drive unit further includes a transmission mechanism disposed inside the processing frame, the transmission mechanism comprising: The positioning frame is welded inside the processing frame; A guide component is welded to the top of the positioning frame, and a force-bearing component is slidably sleeved on the surface of the guide component; The bracket is welded to the surface of the load-bearing component and to the bottom of the misaligned component; A cam is fixedly sleeved on the surface of the rotating shaft and set inside the positioning frame, and the surface of the cam is in contact with the top of the inner wall of the force-bearing component.
[0012] Preferably, the adhesive removal mechanism includes: A rotating cylinder is rotatably connected to the inner wall of the reinforcing member. The rotating cylinder rotates through the protective member, and the gear ring is fixedly sleeved on the surface of the rotating cylinder. An adhesive plate is detachably connected inside the rotating cylinder, and the inner wall of the adhesive plate is provided with a Velcro hook surface. The spiral component is embedded in the inner wall of the adhesive plate.
[0013] Preferably, a connector is welded to one end of the rotating cylinder, and the connector rotates through the processing frame.
[0014] Preferably, a clamping plate is welded to the surface of the adhesive plate, the clamping plate slides through the inner wall of the rotating cylinder, and a shielding component is detachably connected to the surface of the rotating cylinder by bolts.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: This invention, through the installation of a fan, separates stones from seaweed and other raw materials during the crushing and falling process using airflow. The stones fall under gravity, achieving an initial cleaning effect on the seaweed and other raw materials. Subsequently, large clumps of seaweed and other raw materials are pulled apart by the decomposition group, making it easier for the subsequent sticking plate to better separate rope-like impurities from the seaweed and other raw materials. In this way, impurities are cleaned during the crushing process, solving the problem that it is currently difficult to remove stones and rope-like impurities from some sea cucumber feed raw materials during crushing and processing, which easily affects the quality of the finished product and sea cucumber farming operations. Attached Figure Description
[0016] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a three-dimensional structural diagram of the present invention, showing the removal of the crushing section, cover plate, and fan, and the cutting open of the hollow cylinder and processing frame. Figure 3 This is a three-dimensional structural diagram of the present invention, showing the crushing section and processing frame cut open and the seal and filter screen removed. Figure 4 This is a three-dimensional structural diagram of the present invention with the crushing section, processing frame, and impurity removal frame cut apart. Figure 5 This is a three-dimensional structural diagram of the present invention with the processing frame, rotating cylinder and protective component cut apart. Figure 6 This is a three-dimensional structural diagram of the stress-bearing component of the present invention. Figure 7 This is a three-dimensional structural diagram of the present invention, showing the disassembly of the transmission mechanism and the separation of the positioning frame and the force-bearing component. Figure 8 This is a three-dimensional structural diagram of the present invention, showing the disassembly of the adhesive removal mechanism and the cutting apart of the rotating cylinder and the adhesive plate.
[0017] In the diagram: 100, Crushing section; 200, Processing frame; 300, Separation group; 310, Hollow cylinder; 320, Cover plate; 330, Fan; 340, Inner frame; 350, Separator; 360, Filter screen; 370, Barrier component; 380, Impurity removal frame; 400, Decomposition group; 410, Horizontal plate; 420, Pulling section; 421, Smooth rod; 422, Misalignment component; 423, Top plate; 430, Cleaning section; 431, L-shaped rod; 432, Vertical component; 433, Scraping component; 500, Feeding group; 510. Reinforcing component; 520. Drive unit; 521. Power mechanism; 5211. Motor; 5212. Rotating shaft; 5213. Gear disk; 5214. Gear ring; 522. Protective component; 523. Transmission mechanism; 5231. Positioning frame; 5232. Guide component; 5233. Force-bearing component; 5234. Bracket; 5235. Cam; 530. Adhesive removal mechanism; 531. Rotating cylinder; 532. Connector; 533. Adhesive plate; 534. Spiral component; 535. Clamping plate; 536. Covering component. Detailed Implementation
[0018] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0019] Please see Figures 1-8An integrated equipment for raw material impurity removal and coarse crushing in sea cucumber feed processing includes a crushing section 100. The crushing section 100 has crushing rollers inside, which crush raw materials such as kelp when rotating, thus achieving preliminary processing. A processing frame 200 is installed at the bottom of the crushing section 100. The crushed raw materials fall into the processing frame 200 under gravity. A separation group 300 is installed on the surface of the processing frame 200. The separation group 300 drives airflow and blows the crushed kelp and other raw materials with the airflow. At this time, impurities such as stones in the kelp and other raw materials fall off due to gravity, thus achieving the separation of stones. The crushing section 100 tears the kelp and other raw materials to crush them, and some stones fall through the gaps between the crushing rollers. The separation group 300 includes separate... Hollow cylinders 310 and filter screens 360 are embedded on both sides of the processing frame 200. A cover plate 320 is detachably connected to the surface of the hollow cylinder 310 by bolts. A fan 330 is installed on the surface of the cover plate 320. When the fan 330 is turned on, it drives the air to flow into the interior of the processing frame 200. The filter screen 360 is set in correspondence with the fan 330 to facilitate air flow. The filter screen 360 blocks the crushed kelp and other raw materials that move with the air flow. When the kelp and other raw materials approach the filter screen 360, the influence of the wind force is reduced. At this time, some of the kelp and other raw materials can fall downwards, and some of the kelp and other raw materials will adhere to the surface of the filter screen 360. An inner frame 340 is welded to the inner wall of the processing frame 200. The inner frame 340 has an arc-shaped design. Several equally spaced partitions 350 are embedded in the inner wall of the inner frame 340.
[0020] The separator 350 is made of an elastic material, allowing impurities such as stones to pass through adjacent separators 350 as they fall. The elasticity of the separator 350 reduces damage caused by hard compression. A waste removal frame 380 is welded to the bottom of the processing frame 200, located below the inner frame 340. Fallen stones are discharged through the waste removal frame 380, preventing accumulation inside the processing frame 200. A barrier 370 is welded to the bottom of the inner wall of the processing frame 200. The processing frame 200 can divide the internal space and block stones. A disassembly assembly 400 is installed on the top of the processing frame 200. The disassembly assembly 400 includes a horizontal plate 410 welded to the inner wall of the processing frame 200 and a pulling part 420 that can move up and down inside the processing frame 200. The pulling part 420 includes a smooth rod 421 that slides through the top of the processing frame 200. A misalignment member 422 and a top plate 423 are welded to both ends of the smooth rod 421. Extension rods are welded to the surfaces of both the misalignment member 422 and the horizontal plate 410. When the extension rod on the surface of the 422 moves, it can cooperate with the extension rod on the surface of the horizontal plate 410 to pull the crushed kelp and other raw materials again, reducing the occurrence of large-area clumping of the kelp and other raw materials. The decomposition assembly 400 also includes a cleaning part 430 for cleaning the surface of the filter screen 360. The cleaning part 430 includes an L-shaped rod 431 welded to the surface of the top plate 423 and sliding through the processing frame 200. A vertical member 432 is welded to the bottom of the L-shaped rod 431. The surface of the vertical member 432 is flush with the inner surface of the processing frame 200. The wall is slidably connected, and several scraping parts 433 are welded between two adjacent vertical parts 432. The surface of the scraping parts 433 is in contact with the surface of the filter screen 360. The scraping parts 433 are designed to be inclined, which can reduce the obstruction of the surface of the filter screen 360 and reduce the impact on airflow. When the light rod 421 drives the top plate 423 to rise and fall, the vertical parts 432 and the scraping parts 433 can move up and down inside the processing frame 200 through the connection of the L-shaped rod 431, so as to clean the raw materials such as seaweed attached to the surface of the filter screen 360.
[0021] Raw materials such as kelp fall onto the horizontal plate 410 and the misalignment component 422. As the misalignment component 422 moves up and down, it continuously misaligns with the horizontal plate 410, allowing the extension rod to pull apart large areas of clumped kelp and other raw materials. The inner wall of the separation group 300 is equipped with a feeding group 500. The feeding group 500 includes a reinforcement member 510 that fixes through the waste removal frame 380. A drive unit 520 is mounted on the surface of the reinforcement member 510. The drive unit 520 includes a power mechanism 521 mounted on the surface of the reinforcement member 510. The power mechanism 521 includes a motor 5211 bolted to the surface of the reinforcement member 510 and a rotating shaft 5212 that rotates through the reinforcement member 510 and is fixedly connected to the output shaft of the motor 5211. A gear disk 5213 is fixedly sleeved on the surface of the rotating shaft 5212. A protective component 522 is welded to the surface of the firmware 510. A rotating shaft 5212 rotatably passes through the protective component 522. A gear disk 5213 is disposed inside the protective component 522. A gear ring 5214 is rotatably connected to the inner wall of the protective component 522. The gear disk 5213 meshes with the gear ring 5214. When the motor 5211 starts and drives the rotating shaft 5212 to rotate, the gear disk 5213 rotates accordingly, driving the gear ring 5214 to rotate. The drive unit 520 also includes a transmission mechanism 523 disposed inside the processing frame 200. The transmission mechanism 523 includes a positioning frame 5231 welded inside the processing frame 200. A guide component 5232 is welded to the top of the positioning frame 5231. A force-bearing component 5233 is slidably sleeved on the surface of the guide component 5232. The surface of the transmission mechanism 523 is welded with a bracket 5234. The top of the bracket 5234 is welded to the bottom of the misaligned part 422. The transmission mechanism 523 also includes a cam 5235 fixedly sleeved on the surface of the rotating shaft 5212 and set inside the positioning frame 5231. The surface of the cam 5235 is in contact with the top of the inner wall of the force-bearing part 5233. When the rotating shaft 5212 rotates, it can not only drive the gear disk 5213 to rotate, but the cam 5235 can also rotate and intermittently squeeze the force-bearing part 5233 to lift. During this process, the guide 5232 can guide the lifting and lowering movement of the force-bearing part 5233. When the guide 5232 is lifted, it can also drive the misaligned part 422 to lift through the bracket 5234, so as to drive the pulling part 420 and the cleaning part 430 to move synchronously. This system separates large-area clumps of seaweed and other raw materials, cleans the seaweed and other materials on the surface of the filter screen 360, and ensures effective air circulation. The feeding assembly 500 also includes an adhesive removal mechanism 530 installed inside the reinforcement member 510. The adhesive removal mechanism 530 includes a rotating cylinder 531 rotatably connected to the inner wall of the reinforcement member 510. A connector 532 is welded to one end of the rotating cylinder 531. The connector 532 rotatably passes through the processing frame 200, and the rotating cylinder 531 rotatably passes through the protective member 522. A toothed ring 5214 is fixedly sleeved on the surface of the rotating cylinder 531. When the rotating shaft 5212 rotates and drives the pulling part 420 and the cleaning part 430 to move, it can also drive the rotating cylinder 531 to rotate. The connector 532 increases the stability of the rotating cylinder 531 during rotation.An adhesive plate 533 is detachably connected to the interior of the rotating cylinder 531.
[0022] The inner wall of the adhesive plate 533 is provided with Velcro hooks, and a spiral component 534 is embedded in the inner wall of the adhesive plate 533. After separation, raw materials such as kelp fall into the adhesive plate 533. When the adhesive plate 533 rotates with the rotating cylinder 531, the spiral component 534 inside it can continuously move the raw materials such as kelp forward. During this process, impurities such as ropes mixed in with the raw materials such as kelp are difficult to move forward due to the influence of the Velcro hooks inside the adhesive plate 533. The continuous forward movement of the raw materials such as kelp can achieve the separation of such impurities. The surface of the adhesive plate 533 is welded with... The clamping plate 535 slides through the inner wall of the rotating cylinder 531, which can increase the stability of the adhesive plate 533 installed inside the rotating cylinder 531, so that the adhesive plate 533 can rotate synchronously with the rotating cylinder 531 inside the rotating cylinder 531. The surface of the rotating cylinder 531 is detachably connected to the shielding member 536 by bolts, and the surface of the processing frame 200 is detachably connected to the sealing member by bolts. The staff can periodically remove the sealing member and the shielding member 536 to clean and inspect the inside of the processing frame 200 and remove the adhesive plate 533 for cleaning.
[0023] More preferably, a controller is mounted on the surface of the processing frame 200, and the crushing section 100, fan 330 and motor 5211 are all electrically connected to the controller. The technical features proposed in this technical solution, such as the crushing section 100, fan 330 and motor 5211, should be regarded as prior art. The specific structure, working principle and possible control methods of such technical features can all adopt conventional choices in the field, and this technical solution will not elaborate further.
[0024] Working principle: Workers place seaweed and other raw materials into the crushing section 100. The crushing rollers in the crushing section 100 can crush whole pieces of seaweed and other raw materials. The crushed seaweed and other raw materials fall into the processing frame 200. The fan 330 starts and drives airflow. The falling seaweed and other raw materials are affected by the wind and move towards the filter screen 360, where they are blocked. Some seaweed and other raw materials fall onto the horizontal plate 410 and the misalignment member 422. Stone particles that fall into the processing frame 200 along with the seaweed and other raw materials can fall through the gaps between the separators 350 and be discharged through the discharge frame 380. The motor 5211 starts and synchronously drives the gear disk 5213 and the cam 5235 to rotate via the rotating shaft 5212. When the cam 5235 rotates, it can intermittently apply force to the force-bearing member 5233 and lift it up. The bracket 5234 drives the misalignment member 422 to rise and fall synchronously with the force-bearing member 5233. The stones falling onto the horizontal plate 410 and the misalignment member 422 fall into the filter screen 360. Raw materials such as kelp on scraper 433 can fall into adhesive plate 533 through the gap between the misalignment part 422 and the horizontal plate 410 when the misalignment part 422 is raised and lowered. Some large-area clumps of raw materials such as kelp are separated by the misalignment and compression between the extension rods and then fall into adhesive plate 533. When the gear disk 5213 rotates, it drives the gear ring 5214 to rotate. The rotating cylinder 531 rotates with the gear ring 5214. The adhesive plate 533 inside the rotating cylinder 531 rotates synchronously. The spiral part 534 inside the adhesive plate 533 can drive the raw materials such as kelp to move forward and fall continuously. When the adhesive plate 533 rotates, the rope and other impurities mixed in the raw materials such as kelp are pulled by the hook and loop fastener and remain inside the adhesive plate 533. The rotating adhesive plate 533 can increase the time that the raw materials such as kelp stay inside it and prolong the time for cleaning the rope and other impurities. After the raw materials such as kelp are cleaned, they are discharged through the adhesive plate 533 to complete the crushing and cleaning operation.
[0025] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0026] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An integrated equipment for raw material impurity removal and coarse crushing in sea cucumber feed processing, comprising a crushing section (100) with internal crushing rollers, characterized in that, Also includes: A processing frame (200) is installed at the bottom of the crushing section (100), and the surface of the processing frame (200) is detachably connected to a seal by bolts; A separation unit (300) is installed on the surface of the processing frame (200) and separates stones in the kelp by airflow. The separation unit (300) includes a fan (330) and a filter screen (360) respectively. The disassembly assembly (400) is installed on top of the processing frame (200). The disassembly assembly (400) includes a horizontal plate (410) welded to the inner wall of the processing frame (200) and a pull part (420) that can be raised and lowered inside the processing frame (200). The feeding group (500) is disposed on the inner wall of the separation group (300). The feeding group (500) includes a reinforcement member (510) that fixes through the waste removal frame (380), a drive part (520) installed on the surface of the reinforcement member (510), and an adhesive removal mechanism (530) installed inside the reinforcement member (510).
2. The integrated equipment for raw material impurity removal and coarse crushing for sea cucumber feed processing according to claim 1, characterized in that, The separation group (300) also includes: A hollow cylinder (310) is embedded in the surface of the processing frame (200), and a cover plate (320) is detachably connected to the surface of the hollow cylinder (310) by bolts. The fan (330) is mounted on the surface of the cover plate (320). The inner frame (340) is welded to the inner wall of the processing frame (200) and has an arc-shaped design. The bottom of the processing frame (200) is welded with a waste removal frame (380), which is located below the inner frame (340). The partition (350) is embedded in the inner wall of the inner frame (340); The barrier (370) is welded to the bottom of the inner wall of the treatment frame (200).
3. The integrated equipment for raw material impurity removal and coarse crushing for sea cucumber feed processing according to claim 2, characterized in that, The pulling part (420) includes: The light rod (421) slides through the top of the processing frame (200); The misalignment component (422) and the top plate (423) are respectively welded to both ends of the light rod (421). The misalignment component (422) and the surface of the horizontal plate (410) are both welded with extension rods. The horizontal plate (410) and the misalignment component (422) are both arranged between the barrier component (370) and the filter screen (360).
4. The integrated equipment for raw material impurity removal and coarse crushing for sea cucumber feed processing according to claim 3, characterized in that, The disassembly assembly (400) further includes a cleaning unit (430) for cleaning the surface of the filter screen (360), the cleaning unit (430) comprising: L-shaped rod (431) is welded to the surface of the top plate (423) and slides through the treatment frame (200). The vertical component (432) is welded to the bottom of the L-shaped rod (431) and slidably connected to the inner wall of the processing frame (200); The scraper (433) is welded between two adjacent vertical members (432) and is designed at an angle. The surface of the scraper (433) is in contact with the surface of the filter screen (360).
5. The integrated equipment for raw material impurity removal and coarse crushing for sea cucumber feed processing according to claim 1, characterized in that: The drive unit (520) includes a power mechanism (521) disposed on the surface of the reinforcement member (510), the power mechanism (521) including: The motor (5211) is bolted to the surface of the reinforcement (510); The rotating shaft (5212) is rotatably connected to the reinforcing member (510) and fixedly connected to the output shaft of the motor (5211); The gear disk (5213) and the gear ring (5214) are fixedly sleeved on the surface of the rotating shaft (5212) and mesh with the gear ring (5214).
6. The integrated equipment for raw material impurity removal and coarse crushing for sea cucumber feed processing according to claim 5, characterized in that: The surface of the reinforcement (510) is welded with a protective component (522), the rotating shaft (5212) rotates through the protective component (522), the gear disk (5213) is disposed inside the protective component (522), and the gear ring (5214) is rotatably connected to the inner wall of the protective component (522).
7. The integrated equipment for raw material impurity removal and coarse crushing for sea cucumber feed processing according to claim 6, characterized in that, The drive unit (520) further includes a transmission mechanism (523) disposed inside the processing frame (200), the transmission mechanism (523) comprising: The positioning frame (5231) is welded inside the processing frame (200); A guide member (5232) is welded to the top of the positioning frame (5231), and a force-bearing member (5233) is slidably sleeved on the surface of the guide member (5232). The bracket (5234) is welded to the surface of the load-bearing component (5233) and to the bottom of the misaligned component (422); The cam (5235) is fixedly sleeved on the surface of the rotating shaft (5212) and set inside the positioning frame (5231). The surface of the cam (5235) is in contact with the top of the inner wall of the force-bearing component (5233).
8. The integrated equipment for raw material impurity removal and coarse crushing for sea cucumber feed processing according to claim 6, characterized in that, The adhesive removal mechanism (530) includes: The rotating cylinder (531) is rotatably connected to the inner wall of the reinforcing member (510), and the rotating cylinder (531) rotates through the protective member (522). The toothed ring (5214) is fixedly sleeved on the surface of the rotating cylinder (531). The adhesive plate (533) is detachably connected to the inside of the rotating cylinder (531), and the inner wall of the adhesive plate (533) is provided with a Velcro hook surface; The spiral component (534) is embedded in the inner wall of the adhesive plate (533).
9. The integrated equipment for raw material impurity removal and coarse crushing for sea cucumber feed processing according to claim 8, characterized in that: A connector (532) is welded to one end of the rotating cylinder (531), and the connector (532) rotates through the processing frame (200).
10. The integrated equipment for raw material impurity removal and coarse crushing for sea cucumber feed processing according to claim 8, characterized in that: The surface of the adhesive plate (533) is welded with a clamping plate (535), which slides through the inner wall of the rotating cylinder (531). The surface of the rotating cylinder (531) is detachably connected with a shielding member (536) by bolts.