Scallion braised sea cucumber processing and sampling equipment

By designing the sampling equipment for onion roasted sea, the problem of inconvenience in sampling ingredients is solved, multi-point time-dividing sampling and solid-liquid separation are achieved, sampling efficiency is improved, and the quality control requirements of pre-made dishes are met.

CN120293573AInactive Publication Date: 2025-07-11YANTAI TIANYUEWAN MARINE BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510386919.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-31
Publication Date
2025-07-11
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, sampling of food ingredients is inconvenient to separate and multi-point time-dividing sampling cannot be achieved, resulting in low sampling efficiency of food ingredients.

Method used

A sampling equipment for onion scallion sea-related engineering is designed, including a height control mechanism, a rotational displacement ring mechanism, an installation ring mechanism, a deflection installation mechanism, a sampling cylinder mechanism, a liquid separation mechanism and a driving ring mechanism. Through the coordinated work of these mechanisms, the multi-point time-dividing sampling of food ingredients and solid-liquid separation are realized.

Benefits of technology

The sampling efficiency of food materials is improved, and the sampling and solid-liquid separation of materials at different heights of liquid levels is achieved, meeting the quality control needs of pre-made dishes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses scallion braised sea cucumber processing and sampling equipment, and relates to the technical field of sampling, the scallion braised sea cucumber processing and sampling equipment comprises a fixed bottom table, the fixed bottom table is provided with a height control mechanism, the height control mechanism is connected with a lifting round block, the lifting round block is provided with a rotary displacement ring mechanism, and the outer side of the rotary displacement ring mechanism is provided with a mounting ring mechanism; the mounting ring mechanism is provided with a plurality of sampling assemblies, each sampling assembly comprises a deflection mounting mechanism, a sampling barrel mechanism and a liquid separation mechanism, the rotary displacement ring mechanism is provided with a driving ring mechanism, and a lifting circular block is fixedly connected with a deflection pressing plate mechanism. And the positions of the sampling assemblies can be adjusted by rotating the displacement ring mechanism, and the sampling assemblies meeting the required number can be mounted through the mounting ring mechanism, so that the material extraction efficiency is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of sampling, and specifically to a sampling device for processing sea cucumbers with scallions Background Art

[0002] Food processing refers to the process of processing various raw materials through certain processing and treatment to make finished food that meets people's tastes and eating habits. Food processing can be divided into two types: primary processing and deep processing. And prefabricated dishes are also the general trend. Prefabricated dishes are semi-finished or finished dishes that have been pre-processed, conditioned or cooked. Usually, they are made from agricultural, livestock, poultry, and aquatic products as raw materials, with seasonings and other auxiliary materials, and processed through processes such as pre-selection and modulation. It needs to be stored or transported under cold chain conditions and is for consumers or the catering industry to simply heat or cook before eating. At the same time, the most basic requirement for prefabricated dishes is to ensure the unity of their ingredients and flavors.

[0003] In the prior art, sampling of food materials is usually carried out manually. However, in the prior art, it is not convenient to directly sample and separate food materials, and at the same time, multi-point and multi-time sampling cannot be achieved. Therefore, there is a large room for improvement in the prior art. Summary of the Invention

[0004] The present invention provides a sampling device for processing sea cucumbers with scallions, which solves the problems raised in the above background art.

[0005] To achieve the above object, the present invention provides the following technical solutions:

[0006] A sampling device for processing sea cucumbers with scallions includes a fixed base. A height control mechanism is provided on the fixed base. The height control mechanism is connected to a lifting circular block. A rotation and displacement ring mechanism is provided on the lifting circular block. An installation ring mechanism is provided outside the rotation and displacement ring mechanism. A number of sampling components are provided on the installation ring mechanism. The sampling component includes a deflection installation mechanism, a sampling cylinder mechanism, and a liquid separation mechanism. The deflection installation mechanism is provided on the installation ring mechanism. The sampling cylinder mechanism is provided on the deflection installation mechanism. The liquid separation mechanism is provided on the sampling cylinder mechanism. A driving ring mechanism is provided on the rotation and displacement ring mechanism. The lifting circular block is fixedly connected to a deflection pressing plate mechanism; the height control mechanism is used to control the height of the lifting circular block, the rotation and displacement ring mechanism is used to adjust the position of the installation ring mechanism, the deflection pressing plate mechanism is used to control the states of the deflection installation mechanism and the sampling cylinder mechanism, and the driving ring mechanism is used to drive the deflection installation mechanism.

[0007] As a preferred technical solution of the present invention, the height control mechanism includes a fixed slide bar fixed to the fixed base platform. One end of the fixed slide bar away from the fixed base platform is fixedly connected to the top plate. A first motor is provided on the fixed base platform. The output shaft of the first motor is fixedly connected to a lifting threaded rod. The lifting threaded rod is rotatably connected to the top plate. A lifting round block is threadedly connected to the lifting threaded rod. The fixed slide bar passes through the lifting round block, and the fixed slide bar is slidably connected to the lifting round block.

[0008] As a preferred technical solution of the present invention, the rotation and displacement ring mechanism includes a second motor fixed to the lifting round block. The output shaft of the second motor is fixedly connected to a first gear. The first gear meshes with a second gear. The second gear is fixedly connected to a displacement ring. The displacement ring is rotatably connected to the lifting round block.

[0009] As a preferred technical solution of the present invention, the mounting ring mechanism includes a mounting rod fixed to the outer side of the displacement ring. The mounting rod is fixedly connected to a mounting ring. A plurality of mounting threaded holes are provided on the outer side of the mounting ring.

[0010] As a preferred technical solution of the present invention, the deflection mounting mechanism includes a mounting column. A threaded groove is provided on the outer side of the mounting column. The mounting column is threadedly connected to the mounting threaded hole. The mounting column is fixedly connected to a mounting frame. The mounting frame is rotatably connected to a deflection shaft. The deflection shaft is rotatably connected to a deflection sleeve. The inner side of the deflection sleeve is rotatably connected to a rotating sleeve. A mounting jack is provided at the top of the rotating sleeve. A rotating disk is fixedly connected to the outer side of the rotating sleeve.

[0011] As a preferred technical solution of the present invention, the sampling cylinder mechanism includes a storage cylinder mechanism. A top cover is threadedly connected to the storage cylinder mechanism. One side of the top cover close to the rotating disk is fixedly connected to a plug rod. The diameter of the plug rod is the same as the inner diameter of the mounting jack. The top cover is fixedly connected to a main rod. The main rod is rotatably connected to a top ball.

[0012] As a preferred technical solution of the present invention, the storage cylinder mechanism includes a cylinder body. A spiral auger blade is fixedly connected to the inner side of the cylinder body. Two mounting slider shells are fixedly connected to the inner side of the cylinder body. The two mounting slider shells are symmetrically arranged in the cylinder body. An elastic member is fixedly connected in the mounting slider shell. The elastic member is fixedly connected to a wedge-shaped slider. The wedge-shaped slider is slidably connected to the mounting slider shell. A mounting threaded groove is provided on the cylinder body. The mounting threaded groove is located above the mounting slider shell.

[0013] As a preferred technical solution of the present invention, the liquid separation mechanism includes a connecting pipe threadedly connected to the mounting threaded groove. A filter screen is provided in the connecting pipe. The connecting pipe is fixedly connected to a liquid storage tank. A liquid discharge port is provided on the liquid storage tank.

[0014] As a preferred technical solution of the present invention, the driving ring mechanism includes a motor base fixed to the outside of the displacement ring. The motor base is connected to a third motor. The output shaft of the third motor is fixedly connected to a third gear. The third gear meshes with a fourth gear. The fourth gear is fixedly connected to the driving ring. The driving ring is rotatably connected to the displacement ring.

[0015] As a preferred technical solution of the present invention, the deflecting pressure plate mechanism includes a linear motor fixed to the lifting round block. The end of the linear motor is fixedly connected to an inclined plate housing. The inclined plate housing is provided with an inclined plate chute. An inclined plate is arranged in the inclined plate chute. The inclined plate is slidably connected to the inclined plate housing.

[0016] The present invention has the following beneficial effects:

[0017] By setting the height control mechanism, the height of the sampling cylinder mechanism can be adjusted, so as to sample the materials at different liquid levels. By rotating the displacement ring mechanism, the position of the sampling assembly can be adjusted. By the mounting ring mechanism, the required number of sampling assemblies can be installed. By the deflecting pressure plate mechanism, the states of the deflecting mounting mechanism and the sampling cylinder mechanism can be regulated, so as to control the contact state between the deflecting mounting mechanism and the driving ring mechanism. By the driving ring mechanism, the deflecting mounting mechanism can be driven, and then the sampling cylinder mechanism can be driven, so as to realize the sampling of the materials. By the liquid separation mechanism, the solid-liquid separation treatment of the materials can be realized, and the efficiency of material extraction is improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for the description of the specific embodiments or the prior art. Obviously, the following drawings are some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0019] Figure 1 It is a schematic structural diagram of a processing and sampling device for sea cucumber with scallions from the first perspective.

[0020] Figure 2 It is a schematic structural diagram of a processing and sampling device for sea cucumber with scallions from the second perspective.

[0021] Figure 3 It is a schematic structural diagram of a processing and sampling device for sea cucumber with scallions from the third perspective.

[0022] Figure 4 It is a schematic structural diagram of the first perspective of the sampling assembly in a processing and sampling device for sea cucumber with scallions.

[0023] Figure 5 It is a schematic structural diagram of the second perspective of the sampling assembly in a processing and sampling device for sea cucumber with scallions.

[0024] Figure 6 It is a cross-sectional view of a storage cylinder mechanism in a scallion-braised sea cucumber processing sampling device.

[0025] In the figure: 1. Fixed bottom platform; 2. Height control mechanism; 201. Fixed sliding rod; 202. Top plate; 203. First motor; 204. Lifting screw rod; 3. Lifting round block; 4. Rotating displacement ring mechanism; 401. Second motor; 402. First gear; 403. Second gear; 404. Displacement ring; 5. Installation ring mechanism; 501. Installation rod; 502. Installation ring; 503. Installation threaded hole; 6. Deflection installation mechanism; 601. Installation column; 602. Installation frame; 603. Deflection shaft; 604. Deflection sleeve; 605. Rotating sleeve; 606. Installation jack; 607. Rotating disk; 7. Sampling cylinder mechanism; 701. Storage cylinder mechanism; 7011. Cylinder body; 7012. Spiral auger blade; 7013. Installation slider shell; 7014. Elastic member; 7015. Wedge-shaped slider; 7016. Installation threaded groove; 702. Top cover; 703. Plug rod; 704. Main rod; 705. Top ball; 8. Liquid separation mechanism; 801. Connecting pipe; 802. Liquid storage tank; 803. Drainage port; 9. Driving ring mechanism; 901. Motor base; 902. Third motor; 903. Third gear; 904. Fourth gear; 905. Driving ring; 10. Deflection pressing plate mechanism; 1001. Linear motor; 1002. Inclined plate shell; 1003. Inclined plate chute; 1004. Inclined plate. Specific embodiments

[0026] The following describes the preferred embodiments of the present invention with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are only for the purpose of illustrating and explaining the present invention, and are not used to limit the present invention.

[0027] Example 1, please refer to Figures 1-6 , a scallion-braised sea cucumber processing sampling device, including a fixed bottom platform 1, a height control mechanism 2 is provided on the fixed bottom platform 1, the height control mechanism 2 is connected to a lifting round block 3, a rotating displacement ring mechanism 4 is provided on the lifting round block 3, an installation ring mechanism 5 is provided outside the rotating displacement ring mechanism 4, and a plurality of sampling components are provided on the installation ring mechanism 5. The sampling components include a deflection installation mechanism 6, a sampling cylinder mechanism 7 and a liquid separation mechanism 8. The deflection installation mechanism 6 is provided on the installation ring mechanism 5, the sampling cylinder mechanism 7 is provided on the deflection installation mechanism 6, the liquid separation mechanism 8 is provided on the sampling cylinder mechanism 7, a driving ring mechanism 9 is provided on the rotating displacement ring mechanism 4, and the lifting round block 3 is fixedly connected to a deflection pressing plate mechanism 10; the height control mechanism 2 is used to control the height of the lifting round block 3, the rotating displacement ring mechanism 4 is used to adjust the position of the installation ring mechanism 5, the deflection pressing plate mechanism 10 is used to control the states of the deflection installation mechanism 6 and the sampling cylinder mechanism 7, and the driving ring mechanism 9 is used to drive the deflection installation mechanism 6.

[0028] The height control mechanism 2 includes a fixed slide bar 201 fixed to the fixed base 1. One end of the fixed slide bar 201 away from the fixed base 1 is fixedly connected to a top plate 202. A first motor 203 is provided on the fixed base 1. The output shaft of the first motor 203 is fixedly connected to a lifting threaded rod 204. The lifting threaded rod 204 is rotationally connected to the top plate 202. The lifting circular block 3 is threadedly connected to the lifting threaded rod 204. The fixed slide bar 201 passes through the lifting circular block 3, and the fixed slide bar 201 is slidably connected to the lifting circular block 3.

[0029] Specifically, when the first motor 203 is turned on, the rotation of the output shaft of the first motor 203 will drive the lifting threaded rod 204 to rotate, and then drive the lifting circular block 3 to lift along the axis direction of the fixed slide bar 201.

[0030] The rotation and displacement ring mechanism 4 includes a second motor 401 fixed to the lifting circular block 3. The output shaft of the second motor 401 is fixedly connected to a first gear 402. The first gear 402 meshes with a second gear 403. The second gear 403 is fixedly connected to a displacement ring 404. The displacement ring 404 is rotationally connected to the lifting circular block 3. The mounting ring mechanism 5 includes a mounting rod 501 fixed to the outside of the displacement ring 404. The mounting rod 501 is fixedly connected to a mounting ring 502. A plurality of mounting threaded holes 503 are provided on the outside of the mounting ring 502.

[0031] Specifically, when the second motor 401 is turned on, the rotation of the output shaft of the second motor 401 will drive the first gear 402 to rotate. The rotation of the first gear 402 will drive the second gear 403 to rotate. The rotation of the second gear 403 will drive the displacement ring 404 to rotate, thereby driving the mounting rod 501 to rotate, so as to drive the mounting ring 502 to rotate, and realize the rotational displacement of the mounting ring 502.

[0032] The deflection mounting mechanism 6 includes a mounting post 601. A threaded groove is provided on the outer side of the mounting post 601. The mounting post 601 is threadedly connected to the mounting threaded hole 503. The mounting post 601 is fixedly connected to a mounting frame 602. The mounting frame 602 is rotatably connected to a deflection shaft 603. The deflection shaft 603 is rotatably connected to a deflection sleeve 604. The inner side of the deflection sleeve 604 is rotatably connected to a rotating sleeve 605. The top of the rotating sleeve 605 is provided with a mounting jack 606. The outer side of the rotating sleeve 605 is fixedly connected to a rotating disk 607. The sampling cylinder mechanism 7 includes a storage cylinder mechanism 701. A top cover 702 is threadedly connected to the storage cylinder mechanism 701. A plug rod 703 is fixedly connected to one side of the top cover 702 close to the rotating disk 607. The diameter of the plug rod 703 is the same as the inner diameter of the mounting jack 606. The top cover 702 is fixedly connected to a main rod 704. The main rod 704 is rotatably connected to a top ball 705. The storage cylinder mechanism 701 includes a cylinder body 7011. A spiral auger blade 7012 is fixedly connected to the inner side of the cylinder body 7011. Two mounting slider housings 7013 are fixedly connected to the inner side of the cylinder body 7011. The two mounting slider housings 7013 are symmetrically arranged inside the cylinder body 7011. An elastic member 7014 is fixedly connected inside the mounting slider housing 7013. The elastic member 7014 is fixedly connected to a wedge-shaped slider 7015. The wedge-shaped slider 7015 is slidably connected to the mounting slider housing 7013. A mounting threaded groove 7016 is provided on the cylinder body 7011. The mounting threaded groove 7016 is located above the mounting slider housing 7013. The drive ring mechanism 9 includes a motor base 901 fixed to the outer side of the displacement ring 404. The motor base 901 is connected to a third motor 902. The output shaft of the third motor 902 is fixedly connected to a third gear 903. The third gear 903 meshes with a fourth gear 904. The fourth gear 904 is fixedly connected to a drive ring 905. The drive ring 905 is rotatably connected to the displacement ring 404. The deflection pressing plate mechanism 10 includes a linear motor 1001 fixed to the lifting round block 3. The end of the linear motor 1001 is fixedly connected to an inclined plate housing 1002. An inclined plate chute 1003 is provided on the inclined plate housing 1002. An inclined plate 1004 is arranged in the inclined plate chute 1003. The inclined plate 1004 is slidably connected to the inclined plate housing 1002.

[0033] Specifically, the mounting column 601 is screwed into the mounting threaded hole 503 to realize the installation of the mounting column 601. When sampling is required, the storage barrel mechanism 701 is inserted into the rotating sleeve 605, and the insertion rod 703 is inserted into the mounting socket 606. At this time, according to the number of samples required to be sampled, the length of the inclined plate 1004 sliding out of the inclined plate slot 1003 is controlled, and the linear motor 1001 is turned on at this time, thereby driving the inclined plate shell 1002 and the inclined plate 1004 to descend, so that the inclined plate shell 1002 and the inclined plate 1004 contact with the top ball 705, thereby driving the top ball 705 to deflect, and then driving the storage barrel mechanism 701, the rotating sleeve 605 and the deflection sleeve 604 to deflect, so that the rotating The disk 607 contacts the drive ring 905, and the third motor 902 is turned on. The rotation of the output shaft of the third motor 902 drives the third gear 903 to rotate, and the rotation of the third gear 903 drives the drive ring 905 to rotate. The rotation of the drive ring 905 drives the rotating disk 607 to rotate, and the rotation of the rotating disk 607 drives the installation socket 606 to rotate, thereby driving the insertion rod 703 to rotate, so that the rotating sleeve 605 and the cylinder 7011 rotate, thereby driving the spiral auger blade 7012 to rotate. At this time, the material will enter the cylinder 7011, and the material will push open the wedge-shaped slider 7015, so that the elastic member 7014 is compressed, and the material will enter the upper part of the cylinder 7011 to realize the sampling of the material.

[0034] Example 2, continue to refer to Figures 1-5 In the embodiment of the present invention, the liquid separation mechanism 8 includes a connecting pipe 801 threadedly connected to the mounting thread groove 7016, a filter screen is provided inside the connecting pipe 801, the connecting pipe 801 is fixedly connected to the liquid storage tank 802, and a drain port 803 is provided on the liquid storage tank 802.

[0035] Specifically, when the material enters the cylinder 7011 , the liquid material enters the liquid storage tank 802 through the connecting pipe 801 , and the filter screen can block the solid material so that the solid material is in the cylinder 7011 .

[0036] During the implementation of the present invention, first, the overall device is placed at the position where sampling is required. At this time, a specified number of sampling components are installed on the mounting ring mechanism 5 according to the actual situation. When it is necessary to sample the material, the rotating displacement ring mechanism 4 is activated, which drives the displacement of the sampling components. Then, the height control mechanism 2 is activated, which drives the lifting circular block 3 to descend, and further drives the sampling cylinder mechanism 7 to descend. At this time, activating the deflection pressing plate mechanism 10 can adjust the states of the sampling cylinder mechanism 7 and the deflection mounting mechanism 6, so that the deflection mounting mechanism 6 contacts the drive ring mechanism 9. By controlling the deflection pressing plate mechanism 10, the states of different numbers of sampling cylinder mechanisms 7 can be adjusted. Therefore, synchronous sampling of a single or multiple sampling cylinder mechanisms 7 can be achieved, that is, activating the drive ring mechanism 9 can drive the deflection mounting mechanism 6, and the deflection mounting mechanism 6 can drive the sampling cylinder mechanism 7, thereby realizing sampling of the material. After sampling is completed, the rotating displacement ring mechanism 4 is activated, which drives the sampling cylinder mechanism 7 to rotate, realizing the separation of solids and liquids, facilitating the analysis of the solid-liquid ratio of the material, and at the same time enabling the subsequent detection of the separated solid and liquid materials.

[0037] The present invention can adjust the height of the sampling cylinder mechanism 7 by setting the height control mechanism 2, so as to sample the materials at different liquid levels. The position of the sampling components can be adjusted by the rotating displacement ring mechanism 4. The mounting ring mechanism 5 can install the required number of sampling components. The deflection pressing plate mechanism 10 can regulate the states of the deflection mounting mechanism 6 and the sampling cylinder mechanism 7, thereby controlling the contact state between the deflection mounting mechanism 6 and the drive ring mechanism 9. The drive ring mechanism 9 can drive the deflection mounting mechanism 6, and then drive the sampling cylinder mechanism 7, thereby realizing the sampling of the material. The liquid separation mechanism 8 can realize the solid-liquid separation treatment of the material, improving the efficiency of material extraction.

[0038] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A processing sampling device for scallions braised with sea cucumbers, comprising a fixed base platform, characterized in that, A height control mechanism is provided on the fixed base platform. The height control mechanism is connected to a lifting circular block. A rotating displacement ring mechanism is provided on the lifting circular block. An installation ring mechanism is provided outside the rotating displacement ring mechanism. A number of sampling components are provided on the installation ring mechanism. The sampling component includes a deflection installation mechanism, a sampling cylinder mechanism, and a liquid separation mechanism. The deflection installation mechanism is provided on the installation ring mechanism. The sampling cylinder mechanism is provided on the deflection installation mechanism. The liquid separation mechanism is provided on the sampling cylinder mechanism. A driving ring mechanism is provided on the rotating displacement ring mechanism. The lifting circular block is fixedly connected to a deflection pressing plate mechanism. The height control mechanism is used to control the height of the lifting circular block. The rotating displacement ring mechanism is used to adjust the position of the installation ring mechanism. The deflection pressing plate mechanism is used to control the states of the deflection installation mechanism and the sampling cylinder mechanism. The driving ring mechanism is used to drive the deflection installation mechanism.

2. The scallion-braised sea cucumber processing sampling device according to claim 1, wherein The height control mechanism includes a fixed sliding rod fixed to the fixed base platform. One end of the fixed sliding rod away from the fixed base platform is fixedly connected to a top plate. A first motor is provided on the fixed base platform. The output shaft of the first motor is fixedly connected to a lifting threaded rod. The lifting threaded rod is rotationally connected to the top plate. The lifting circular block is threadedly connected to the lifting threaded rod. The fixed sliding rod passes through the lifting circular block, and the fixed sliding rod is slidably connected to the lifting circular block.

3. The scallion-braised sea cucumber processing sampling device according to claim 1, characterized in that, The rotating displacement ring mechanism includes a second motor fixed to the lifting circular block. The output shaft of the second motor is fixedly connected to a first gear. The first gear meshes with a second gear. The second gear is fixedly connected to a displacement ring. The displacement ring is rotationally connected to the lifting circular block.

4. The scallion-braised sea cucumber processing sampling device according to claim 3, characterized in that, The installation ring mechanism includes an installation rod fixed to the outside of the displacement ring. The installation rod is fixedly connected to an installation ring. A number of installation threaded holes are provided on the outside of the installation ring.

5. The scallion-braised sea cucumber processing sampling device according to claim 4, wherein, The deflection installation mechanism includes an installation column. A threaded groove is provided on the outside of the installation column. The installation column is threadedly connected to the installation threaded hole. The installation column is fixedly connected to an installation frame. The installation frame is rotationally connected to a deflection shaft. The deflection shaft is rotationally connected to a deflection sleeve. The inner side of the deflection sleeve is rotationally connected to a rotating sleeve. An installation jack is provided at the top of the rotating sleeve. A rotating disk is fixedly connected to the outside of the rotating sleeve.

6. The scallion-braised sea cucumber processing sampling device according to claim 5, characterized in that, The sampling cylinder mechanism includes a storage cylinder mechanism. A top cover is threadedly connected to the storage cylinder mechanism. One side of the top cover close to the rotating disk is fixedly connected to an insertion rod. The diameter of the insertion rod is the same as the inner diameter of the installation jack. The top cover is fixedly connected to a main rod. The main rod is rotationally connected to a top ball.

7. The scallions-braised sea cucumber processing sampling device according to claim 6, characterized in that, The storage cylinder mechanism includes a cylinder body. A spiral auger blade is fixedly connected to the inner side of the cylinder body. Two installation slider shells are fixedly connected to the inner side of the cylinder body. The two installation slider shells are symmetrically arranged in the cylinder body. An elastic member is fixedly connected inside the installation slider shell. The elastic member is fixedly connected to a wedge-shaped slider. The wedge-shaped slider is slidably connected to the installation slider shell. An installation threaded groove is provided on the cylinder body, and the installation threaded groove is located above the installation slider shell.

8. The scallion-braised sea cucumber processing sampling device according to claim 7, characterized in that, The liquid separation mechanism includes a connecting pipe threadedly connected to the installation threaded groove. A filter screen is provided inside the connecting pipe. The connecting pipe is fixedly connected to a liquid storage tank. A liquid discharge port is provided on the liquid storage tank.

9. The scallion-braised sea cucumber processing sampling device according to claim 5, characterized in that, The driving ring mechanism includes a motor seat fixed to the outside of the displacement ring. The motor seat is connected to a third motor. The output shaft of the third motor is fixedly connected to a third gear. The third gear meshes with a fourth gear. The fourth gear is fixedly connected to a driving ring. The driving ring is rotationally connected to the displacement ring.

10. The scallion-braised sea cucumber processing sampling device according to claim 9, characterized in that, The deflection pressing plate mechanism includes a linear motor fixed on a lifting circular block. The end of the linear motor is fixedly connected to an inclined plate housing. An inclined plate chute is provided on the inclined plate housing, and an inclined plate is arranged in the inclined plate chute. The inclined plate is slidably connected to the inclined plate housing.

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