A temperature-controllable embedded polymer structure

By using a temperature-controlled encapsulation polymerization structure, and utilizing a multi-stage hydraulic telescopic cylinder and slider system to drive the processing ball to shake, combined with temperature regulation and vibration mixing, the problem of poor material feeding in traditional mixing methods is solved, thus improving the encapsulation effect and stability.

CN224564599UActive Publication Date: 2026-07-28DPW (SHANGHAI) BIOTECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DPW (SHANGHAI) BIOTECHNOLOGY CO LTD
Filing Date
2025-08-28
Publication Date
2026-07-28

AI Technical Summary

Technical Problem

Traditional mixing methods are not conducive to the feeding of encapsulated raw materials, resulting in unsatisfactory encapsulation effects.

Method used

A temperature-controlled embedding polymerization structure is adopted. The connecting box and slider are driven by a multi-stage hydraulic telescopic cylinder to move the support rod in the corrugated hole, causing the processing ball to shake. Combined with the temperature-controlled embedding mechanism and the vibration placement plate, the biomass and the embedding raw material are effectively mixed.

Benefits of technology

It improved the material feeding efficiency of the embedding process, enhanced the stability and integrity of the embedding process, and ensured the integrity of subsequent cutting.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of embedding polymerization structures with controllable temperature, including base, the upper surface of the base is fixedly connected with connecting plate and fixed plate, the surface of the connecting plate is equipped with wave hole, the inside of the wave hole is provided with support rod, one end of the support rod is fixedly connected with processing ball, the inner wall of the processing ball is provided with temperature regulating embedding mechanism.The output end of the multistage hydraulic telescopic cylinder drives connecting box to move up and down in fixed plate, in the process of connecting box moving up and down, support rod is moved by slider, under the guidance of the movement of wave hole, processing ball is shaken in the process of moving up and down, in the rapid up-and-down movement of processing ball, drive the vibration of the vibration plate, embedding powder above the vibration plate is discharged through the vibration plate, and the biomass in processing ball is mixed and adhered better, the advantage of this is that embedding raw material is discharged, and embedding effect is improved.
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Description

Technical Field

[0001] This invention relates to the field of biological embedding technology, and in particular to a temperature-controllable embedding polymer structure. Background Technology

[0002] In biotechnology, embedding is used to immobilize enzymes or cells by forming microcapsule structures through gels or polymer membranes. In materials science, paraffin wax is a commonly used embedding agent. Its melting point needs to be adjusted according to the sample hardness, and sufficient wax must be ensured within the mold to prevent structural damage. Temperature stability must be controlled during embedding, and mixed samples must be processed in layers to ensure the integrity of subsequent cutting.

[0003] When encapsulating organisms, it is necessary to coat the surface of the organism with a thin film capsule. During encapsulation, the biomass and encapsulation material need to be mixed. Traditional mixing methods are not conducive to the feeding of the encapsulation material, resulting in unsatisfactory encapsulation effect. To address the above problems, a temperature-controllable encapsulation polymerization structure is needed. Utility Model Content

[0004] The purpose of this invention is to address the problems raised in the prior art by proposing a temperature-controllable embedded polymer structure.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] A temperature-controllable embedding polymerization structure includes a base, a connecting plate and a fixing plate fixedly connected to the upper surface of the base, a corrugated hole on the surface of the connecting plate, a support rod inside the corrugated hole, a processing ball fixedly connected to one end of the support rod, and a temperature-regulating embedding mechanism provided on the inner wall of the processing ball.

[0007] Preferably, the temperature-regulating embedding mechanism includes a placement plate fixedly connected to the inner wall of the processing ball, a threaded cap is threadedly connected to the inner wall of the processing ball, an inlet pipe and an outlet pipe are fixedly connected to the inner wall of the processing ball, and the diameter of the support rod is consistent with the inner wall width of the corrugated hole.

[0008] Furthermore, a temperature control knob is rotatably connected to the surface of the processing ball, multiple arc-shaped heating wires are fixedly connected to the inner wall of the processing ball, and sealing covers are rotatably connected to the surfaces of the discharge pipe and the feed pipe.

[0009] Preferably, an L-shaped rod is rotatably connected to the surface of both the discharge pipe and the feed pipe. A disc is fixedly connected to the surface of the L-shaped rod. A torsion spring is sleeved on the surface of the L-shaped rod. One end of the torsion spring is fixedly connected to the surface of the disc. The other end of one torsion spring is fixedly connected to the surface of the feed pipe, and the other end of the other torsion spring is fixedly connected to the surface of the discharge pipe.

[0010] Furthermore, a multi-stage hydraulic telescopic cylinder is fixedly installed on the upper surface of the fixed plate. The output end of the multi-stage hydraulic telescopic cylinder penetrates the inner wall of the fixed plate and is fixedly connected to a connecting box. The surface of the connecting box is slidably connected to the inner wall of the fixed plate.

[0011] Preferably, a slider is slidably connected to the inner wall of the connecting box, the surface of the slider is fixedly connected to one end of the support rod, and a controller is fixedly installed on the surface of the fixing plate.

[0012] The beneficial effects of this utility model are as follows:

[0013] The output end of the multi-stage hydraulic telescopic cylinder drives the connecting box to move up and down within the fixed plate. During the up-and-down movement of the connecting box, the slider drives the support rod to move. Under the guidance of the corrugated hole, the support rod causes the processing ball to sway during its up-and-down movement. During the rapid up-and-down movement of the processing ball, the placement plate vibrates, causing the encapsulation powder above the placement plate to be discharged into the processing ball through the placement plate, where it mixes and adheres better with the biomass inside the processing ball. The advantage of this is that it facilitates the feeding of encapsulation raw materials and improves the encapsulation effect. Attached Figure Description

[0014] Figure 1 This is a three-dimensional structural diagram of a temperature-controllable embedded polymer structure proposed in this utility model.

[0015] Figure 2 This is a cross-sectional view of the treatment sphere in a temperature-controllable embedded polymer structure proposed in this utility model.

[0016] Figure 3 This invention proposes a temperature-controllable encapsulation polymerization structure. Figure 2 Enlarged structural diagram at point A;

[0017] Figure 4 This is a three-dimensional structural diagram of the connecting box in a temperature-controllable embedded polymer structure proposed in this utility model.

[0018] In the diagram: 1. Base; 2. Connecting plate; 3. Fixing plate; 4. Controller; 5. Processing ball; 6. Temperature control knob; 7. Multi-stage hydraulic telescopic cylinder; 8. Threaded cap; 9. Placement plate; 10. Arc-shaped heating wire; 11. Discharge pipe; 12. Feed pipe; 13. Corrugated hole; 14. Support rod; 15. Sealing cover plate; 16. L-shaped rod; 17. Disc; 18. Slider; 19. Connecting box; 20. Torsion spring. Detailed Implementation

[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0020] Reference Figures 1-4 A temperature-controllable embedding polymerization structure includes a base 1. A connecting plate 2 and a fixing plate 3 are fixedly connected to the upper surface of the base 1. A corrugated hole 13 is opened on the surface of the connecting plate 2. A support rod 14 is arranged inside the corrugated hole 13. A processing ball 5 is fixedly connected to one end of the support rod 14. A temperature-regulating embedding mechanism is arranged on the inner wall of the processing ball 5.

[0021] By setting the corrugated hole 13, the support rod 14 is guided to move. When the support rod 14 moves within the corrugated hole 13, it causes the processing ball 5 to shake. By setting the processing ball 5, biomass is stored for encapsulation. By setting the temperature-regulating encapsulation mechanism, the temperature inside the processing ball 5 is adjusted to better encapsulate the biomass.

[0022] In this utility model, reference is made to Figure 2 The temperature-controlled embedding mechanism includes a placement plate 9 fixedly connected to the inner wall of the treatment ball 5, a threaded cap 8 threadedly connected to the inner wall of the treatment ball 5, a feed pipe 12 and a discharge pipe 11 fixedly connected to the inner wall of the treatment ball 5, and the diameter of the support rod 14 is consistent with the width of the inner wall of the corrugated hole 13.

[0023] By setting a placement plate 9, the embedding raw material powder is placed on top of it. When the placement plate 9 vibrates, the raw material powder can be discharged through the placement plate 9. By setting a threaded cap 8, the threaded cap 8 can be opened to place the embedding powder on top of the placement plate 9.

[0024] In this utility model, reference Figure 1 and Figure 2 A temperature control knob 6 is rotatably connected to the surface of the processing ball 5, and multiple arc-shaped heating wires 10 are fixedly connected to the inner wall of the processing ball 5. Sealing covers 15 are rotatably connected to the surfaces of the discharge pipe 11 and the feed pipe 12. Feeding and discharging operations are carried out by setting the feed pipe 12 and the discharge pipe 11.

[0025] By setting the temperature control knob 6, the current resistance value is adjusted by rotating it, thereby controlling the heat release temperature of multiple arc heating wires 10. By setting the sealing cover plate 15, a sealing operation is performed.

[0026] In this utility model, reference Figure 3Both the discharge pipe 11 and the feed pipe 12 are rotatably connected to an L-shaped rod 16. A disc 17 is fixedly connected to the surface of the L-shaped rod 16. A torsion spring 20 is sleeved on the surface of the L-shaped rod 16. One end of the torsion spring 20 is fixedly connected to the surface of the disc 17. The other end of one torsion spring 20 is fixedly connected to the surface of the feed pipe 12, and the other end of the other torsion spring 20 is fixedly connected to the surface of the discharge pipe 11.

[0027] By setting an L-shaped rod 16, the surface of the L-shaped rod 16 contacts and presses against the surface of the sealing cover plate 15, maintaining the sealing stability of the sealing cover plate 15. By setting a torsion spring 20, the L-shaped rod 16 is driven to reset.

[0028] In this utility model, reference Figure 4 A multi-stage hydraulic telescopic cylinder 7 is fixedly installed on the upper surface of the fixed plate 3. The output end of the multi-stage hydraulic telescopic cylinder 7 passes through the inner wall of the fixed plate 3 and is fixedly connected to a connecting box 19. The surface of the connecting box 19 is slidably connected to the inner wall of the fixed plate 3.

[0029] By setting up a multi-stage hydraulic telescopic cylinder 7, its output end drives the connecting box 19 to slide, and by setting up the connecting box 19, the sliding stability of the slider 18 is maintained.

[0030] In this utility model, reference Figure 4 A slider 18 is slidably connected to the inner wall of the connecting box 19. The surface of the slider 18 is fixedly connected to one end of the support rod 14. A controller 4 is fixedly installed on the surface of the fixing plate 3.

[0031] By setting the controller 4, an electrical signal is sent to control the operation of the multi-stage hydraulic telescopic cylinder 7. By setting the slider 18, the support rod 14 is supported to maintain stability.

[0032] Working principle: During use, rotating the L-shaped rod 16 opens the sealing cover 15, allowing biomass to be poured into the processing ball 5 through the feed pipe 12. After resetting the sealing cover 15, the L-shaped rod 16 is driven back to its original position by the torsion spring 20. The L-shaped rod 16 presses against the surface of the sealing cover 15 to maintain a seal. Rotating the temperature control knob 6 adjusts the current resistance, thereby controlling the heat release temperature of the multiple arc-shaped heating wires 10. The controller 4 sends an electrical signal to control the lifting and lowering of the output end of the multi-stage hydraulic telescopic cylinder 7, which in turn drives the connected... Box 19 moves up and down within the fixed plate 3. During the up and down movement of box 19, the slider 18 drives the support rod 14 to move. Under the guidance of the corrugated hole 13, the support rod 14 causes the processing ball 5 to shake during the up and down movement. During the rapid up and down movement of the processing ball 5, the placement plate 9 is driven to vibrate, causing the embedded powder above the placement plate 9 to be discharged into the processing ball 5 through the placement plate 9, and better mixed with the biomass inside the processing ball 5. The mixed material can be rotated to open the sealing cover 15 below the discharge pipe 11 for discharge.

[0033] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A temperature-controllable embedded polymerization structure, comprising a base (1), characterized in that, The upper surface of the base (1) is fixedly connected to a connecting plate (2) and a fixing plate (3). The surface of the connecting plate (2) is provided with a wave hole (13). A support rod (14) is provided inside the wave hole (13). One end of the support rod (14) is fixedly connected to a processing ball (5). The inner wall of the processing ball (5) is provided with a temperature regulating embedding mechanism.

2. The temperature-controllable embedded polymerization structure according to claim 1, characterized in that, The temperature-regulating embedding mechanism includes a placement plate (9) fixedly connected to the inner wall of the treatment ball (5), a threaded cap (8) is threadedly connected to the inner wall of the treatment ball (5), a feed pipe (12) and a discharge pipe (11) are fixedly connected to the inner wall of the treatment ball (5), and the diameter of the support rod (14) is consistent with the width of the inner wall of the corrugated hole (13).

3. The temperature-controllable embedded polymerization structure according to claim 2, characterized in that, The surface of the processing ball (5) is rotatably connected to a temperature control knob (6), and the inner wall of the processing ball (5) is fixedly connected to multiple arc-shaped heating wires (10). The surfaces of the discharge pipe (11) and the feed pipe (12) are both rotatably connected to sealing covers (15).

4. The temperature-controllable embedded polymerization structure according to claim 2, characterized in that, The surfaces of the discharge pipe (11) and the feed pipe (12) are rotatably connected to an L-shaped rod (16). A disc (17) is fixedly connected to the surface of the L-shaped rod (16). A torsion spring (20) is sleeved on the surface of the L-shaped rod (16). One end of the torsion spring (20) is fixedly connected to the surface of the disc (17). The other end of one torsion spring (20) is fixedly connected to the surface of the feed pipe (12), and the other end of the other torsion spring (20) is fixedly connected to the surface of the discharge pipe (11).

5. The temperature-controllable embedded polymerization structure according to claim 1, characterized in that, A multi-stage hydraulic telescopic cylinder (7) is fixedly installed on the upper surface of the fixed plate (3). The output end of the multi-stage hydraulic telescopic cylinder (7) passes through the inner wall of the fixed plate (3) and is fixedly connected to a connecting box (19). The surface of the connecting box (19) is slidably connected to the inner wall of the fixed plate (3).

6. The temperature-controllable embedded polymerization structure according to claim 5, characterized in that, The inner wall of the connecting box (19) is slidably connected to a slider (18), the surface of the slider (18) is fixedly connected to one end of the support rod (14), and the surface of the fixing plate (3) is fixedly installed with a controller (4).