A zanthoxylum bungeanum seed oil squeezing device

By designing linkage and pressing components, the bio-enzymatic hydrolysate is supplied synchronously at multiple points and in multiple directions during the pressing of Sichuan pepper seeds. This solves the problems of low pretreatment efficiency and poor energy efficiency in Sichuan pepper seed pressing, and improves pretreatment efficiency and subsequent pressing effect.

CN121571229BActive Publication Date: 2026-05-08SHAANXI WEIKANG BIOTECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SHAANXI WEIKANG BIOTECHNOLOGY CO LTD
Filing Date
2026-01-21
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Sichuan pepper seeds require pretreatment with biological enzymatic hydrolysis during pressing, but existing technologies have low efficiency and poor energy saving in the pretreatment of Sichuan pepper seeds during pressing, and it is difficult to supply biological enzymatic hydrolysate at the same time.

Method used

Using a linkage component and a pressing component, the moving tooth cavity block is driven to move by the power unit through the meshing of the moving tooth cavity block and the fixed tooth cavity block. The linkage component simultaneously opens the tooth gap and the supply hole of the plug plate, realizing the multi-point and multi-directional supply of biological enzymatic hydrolysate, which simultaneously contacts the crushed position of the pepper seeds.

Benefits of technology

It improves the efficiency of pepper seed pressing pretreatment, significantly saves energy, shortens the enzymatic hydrolysis reaction time, and enhances the subsequent pressing effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a pepper seed oil squeezing device, and particularly relates to the technical field of squeezing pretreatment, which comprises a pretreatment box, a movable tooth cavity block, a plurality of tooth gaps, a power unit, a tooth baffle and a linkage assembly. The movable tooth cavity block is slidably arranged in the pretreatment box. The plurality of tooth gaps are arranged on one side of the movable tooth cavity block. The power unit is arranged on the other side of the movable tooth cavity block. The tooth baffle is slidably arranged on the inner wall of the movable tooth cavity block. The tooth baffle is provided with the linkage assembly. The device can simultaneously crush the pepper seeds according to the pre-squeezing extrusion, and synchronously supply the pepper seeds with the biological enzyme solution at different positions according to the crushing power. The device can improve the biological squeezing pretreatment efficiency, and significantly save the energy consumption of the additional driving components, thereby solving the problems of low squeezing pretreatment efficiency and poor energy saving.
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Description

Technical Field

[0001] This invention relates to the field of pressing and pretreatment technology, and more specifically, to a pressing device for Sichuan pepper seed oil. Background Technology

[0002] The core use of the Sichuan pepper seed oil pressing device in other bio-industries is to make multiple uses of the waste residue after pressing. In the development of bio-feed, the Sichuan pepper seed residue after pressing is rich in protein, dietary fiber and minerals, and can be directly used as a feed additive for livestock and poultry to improve the nutritional value of the feed. It not only yields Sichuan pepper seed oil, but also allows for full bio-industrial conversion and processing.

[0003] Patent publication number CN113999723A discloses a rapeseed pressing device. This technology filters the oil multiple times, eliminating the need for separate filtration after pressing, thus reducing cumbersome steps. Multiple filtrations result in cleaner, purer oil, preventing impurities and ensuring food safety. However, this technology still has the following problems.

[0004] When pressing Sichuan pepper seeds, they need to undergo biological enzymatic hydrolysis pretreatment. Generally, they are crushed first and then mixed with biological enzymatic hydrolysate. This process is time-consuming and energy-intensive. Furthermore, during the pretreatment process, it is difficult to simultaneously supply biological enzymatic hydrolysate to different parts of the seeds while the seeds are being crushed by the pre-pressing process. This results in low efficiency of Sichuan pepper seed pressing pretreatment and poor energy conservation. Summary of the Invention

[0005] In order to overcome the above-mentioned defects of the prior art, the present invention provides the following technical solution: a pepper seed oil pressing device, including a pretreatment box, wherein a movable toothed cavity block is slidably installed inside the pretreatment box;

[0006] Multiple tooth gaps are all opened on one side of the moving tooth cavity block, and a power unit is installed on the other side of the moving tooth cavity block;

[0007] A toothed baffle slides on the inner wall of the moving tooth cavity block, and a linkage component is provided on one side of the toothed baffle;

[0008] A tooth-fixing cavity block is fixed to the inner wall of the pretreatment box and located on one side of the tooth gap. Multiple supply holes are opened on one side of the tooth-fixing cavity block.

[0009] A blocking plate is slidably installed on the inner wall of the fixed tooth cavity block, and a pressing component is provided on one side of the blocking plate;

[0010] The liquid supply unit is installed on the other side of the fixed tooth cavity block;

[0011] The liquid supply component simultaneously supplies the bio-enzymatic hydrolysate to both the solid tooth cavity and the movable tooth cavity. The power unit drives the movable tooth cavity to move closer to the solid tooth cavity, compressing the pepper seeds to form a pre-crushed state. When the movable tooth cavity moves, the linkage component also drives the tooth baffle to open the tooth gap, allowing the bio-enzymatic hydrolysate inside the movable tooth cavity to be supplied from the tooth gap to the left side of the pepper seed pre-crushed area. At the same time, the linkage component also drives the pressing component to open the supply hole, allowing the bio-enzymatic hydrolysate inside the solid tooth cavity to be supplied from the supply hole to the right side of the pepper seed pre-crushed area.

[0012] In a preferred embodiment, the power unit includes:

[0013] An electric cylinder is installed on the other side of the moving gear cavity block. The electric cylinder is fixedly connected to the pretreatment box. The output end of the electric cylinder is slidably connected to the pretreatment box. The output end of the electric cylinder is fixedly connected to the moving gear cavity block. A switch is provided on one side of the electric cylinder. The switch is electrically connected to the electric cylinder.

[0014] In a preferred embodiment, the linkage component includes:

[0015] An inclined groove block is fixed to one side of a toothed baffle. A pressure block is slidably connected to the inclined inner wall surface of the inclined groove block. The lower inclined surface of the pressure block is parallel to the inclined inner wall surface of the inclined groove block.

[0016] A pressure rod is fixed to the upper surface of the pressure block. The pressure rod is slidably connected to the moving tooth cavity block. A first spring plate is provided on both sides of the inclined groove block. The moving tooth cavity block and the tooth baffle are fixedly connected to the first spring plate.

[0017] A limiting ring is fixed to the top of the pressure rod. An inclined pressure block is fixed on the upper surface of the limiting ring. The outer diameter of the limiting ring is larger than the outer diameter of the pressure rod.

[0018] An inclined support block is fixed to the top of the pretreatment box. The lower inclined surface of the inclined support block is parallel to one side inclined surface of the inclined pressure block. The inclined pressure block and the inclined support block are slidably connected.

[0019] In a preferred embodiment, the upper surface of the pressure block is arranged parallel to the upper surface of the groove block, and the two first spring pieces are arranged symmetrically about the pressure rod.

[0020] In a preferred embodiment, a sleeve block is fixedly connected to the bottom end of the inclined slot block, and a guide post is installed on the inner wall of the sleeve block. The guide post is used to guide the sliding of the sleeve block, and the guide post is fixedly connected to the moving tooth cavity block.

[0021] In a preferred embodiment, the pressing assembly includes:

[0022] An inclined groove plate is fixed to one side of the blocking plate, and a slider is fixed at the bottom end of the inclined groove plate. The slider is horizontally slidably connected to the fixed tooth cavity block.

[0023] The pressure column slides on the inclined surface of the inner wall of the inclined groove plate. A linkage rod is fixed at the top of the outer wall of the pressure column. The linkage rod is slidably connected to the fixed tooth cavity block. A second spring is provided on both sides of the pressure column.

[0024] The linkage frame is fixedly connected to the top of the linkage rod, and the pressure rod and the limiting ring are slidably connected to the linkage frame.

[0025] In a preferred embodiment, the vertical cross-section of the pressure column is circular, and the two second spring plates are symmetrically arranged about the pressure column.

[0026] In a preferred embodiment, both the fixed tooth cavity block and the plug plate are fixedly connected to the second spring plate, which provides elastic force to the plug plate.

[0027] In a preferred embodiment, the liquid supply component includes:

[0028] A connecting pipe is connected to the other side of the fixed tooth cavity block. One end of the connecting pipe is connected to a receiving box, and one side of the receiving box is connected to a flexible hose. The flexible hose is connected to the moving tooth cavity block.

[0029] The booster fan is installed at the top of the housing.

[0030] In a preferred embodiment, both the hose and the connecting pipe are fixedly connected to the housing, and the output end of the booster fan is connected to the housing.

[0031] The technical effects and advantages of the present invention.

[0032] 1. This invention employs a linkage component, combining the sliding compression of the inclined pressing block and the inclined support block during the movement of the moving tooth cavity block. This causes the pressure rod to drive the inclined pressing block downwards, and the downward inclined surface of the inclined pressing block presses against the inclined inner wall surface of the inclined groove block. The inclined groove block drives the tooth baffle to move to the left, simultaneously opening multiple tooth gaps. Utilizing the single force of the moving tooth cavity block moving to the right, the moving tooth cavity block automatically supplies the bio-enzymatic hydrolysate from the tooth gaps to multiple tooth points on the left side of the pepper seed pre-crushing area while simultaneously crushing the pepper seeds. This achieves synchronization between pre-crushing and the supply of bio-enzymatic hydrolysate to multiple tooth points on the left side. By simultaneously crushing the pepper seeds during pre-pressing, the bio-enzymatic hydrolysate is supplied to different locations of the pepper seeds using the crushing force. This not only improves the efficiency of the bio-pressing pretreatment but also significantly saves the energy required for additional drive components.

[0033] 2. This invention employs a pressing assembly. When the pressing rod and the limiting ring move with the moving toothed cavity block and press down on the linkage frame, the linkage rod will drive the pressing column to move downward, causing the inclined groove plate to drive the blocking plate to squeeze the second spring piece to move, thereby opening multiple supply holes on the solid toothed cavity block. This allows the bio-enzymatic hydrolysate inside the solid toothed cavity block to be simultaneously supplied to multiple tooth points on the right side of the pepper seed crushing area. By utilizing the same power of the moving toothed cavity block, the precise and synchronous supply of bio-enzymatic hydrolysate to multiple tooth points on the right side of the pepper seed is achieved, which not only improves the efficiency of bio-pressing pretreatment but also significantly improves energy efficiency.

[0034] 3. In this invention, at the instant the moving toothed cavity block and the fixed toothed cavity block engage and crush the pepper seeds, the linkage component and the pressing component simultaneously drive the toothed baffle and the blocking plate, so that the bio-enzymatic hydrolysate is supplied from multiple points and the supply hole to the newly formed crushed surface of the pepper seeds. This method of supplying the bio-enzymatic hydrolysate at the same time as crushing allows the bio-enzymatic hydrolysate to come into full contact with the fresh, highly active crushed pepper seed tissue immediately, which greatly shortens the time of penetration and diffusion of the bio-enzymatic hydrolysate, effectively enhances the speed and depth of the enzymatic reaction, and thus significantly improves the pretreatment efficiency and the oil extraction effect of subsequent pressing. Attached Figure Description

[0035] Figure 1 This is a schematic diagram of the main structure of the pepper seed oil pressing device of the present invention.

[0036] Figure 2 This is a schematic diagram of the vertical cross-section of the pepper seed oil pressing device of the present invention.

[0037] Figure 3 For the present invention Figure 2 Enlarged structural diagram at point A in the middle.

[0038] Figure 4 This is a partial structural diagram of the connection between the pressure rod and the inclined block of the present invention.

[0039] Figure 5 This is a partial structural diagram of the connection between the linkage rod and the linkage frame of the present invention.

[0040] Figure 6 This is a partial structural diagram of the connection between the inclined pressure block and the limiting ring of the present invention, viewed from below.

[0041] Figure 7 This is a partial structural diagram of the vertical cross-section at the connection between the linkage rod and the pressure column of the present invention.

[0042] Figure 8 This is a schematic diagram of the vertical cross-sectional planar structure of the connection between the inclined groove plate and the slider of the present invention.

[0043] Figure 9 This is a partial structural diagram of the vertical cross-section of the connection between the fixed tooth cavity block and the connecting pipe of the present invention.

[0044] Figure 10 This is a top view schematic diagram of the pepper seed oil pressing device of the present invention.

[0045] The attached figures are labeled as follows: 1. Pretreatment box; 2. Moving tooth cavity block; 3. Tooth gap; 4. Tooth baffle; 5. Fixed tooth cavity block; 6. Supply hole; 7. Blocking plate; 8. Inclined groove block; 9. Inclined pressure block; 10. Pressure rod; 11. First spring piece; 12. Sleeve block; 13. Guide post; 14. Limiting ring; 15. Inclined pressure block; 16. Inclined support block; 17. Inclined groove plate; 18. Slider; 19. Pressure post; 20. Second spring piece; 21. Linkage rod; 22. Linkage frame; 23. Electric cylinder; 24. Switch; 25. Hoses; 26. Connecting pipe; 27. Loading box; 28. Booster fan. Detailed Implementation

[0046] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention.

[0047] The present invention will be further described in detail below with reference to the accompanying drawings.

[0048] Example 1:

[0049] like Figure 1 - Figure 3 The device shown is a pepper seed oil pressing device, including a pretreatment box 1, a movable toothed cavity block 2 slidably installed inside the pretreatment box 1; multiple tooth gaps 3, all opened on one side of the movable toothed cavity block 2, and a power unit installed on the other side of the movable toothed cavity block 2; a tooth baffle 4, sliding on the inner wall of the movable toothed cavity block 2, and a linkage component is provided on one side of the tooth baffle 4; a fixed toothed cavity block 5, fixed on the inner wall of the pretreatment box 1 and located on one side of the tooth gaps 3, and multiple supply holes 6 are opened on one side of the fixed toothed cavity block 5; a blocking plate 7, slidably installed on the inner wall of the fixed toothed cavity block 5, and a pressing component is provided on one side of the blocking plate 7; and a liquid supply component is installed on the other side of the fixed toothed cavity block 5.

[0050] The operating principle of the pepper seed oil pressing device in this embodiment is as follows: During the pre-treatment of pepper seeds, the pepper seeds are poured into the pre-treatment tank 1. Under the action of gravity, the pepper seeds enter the gap between the moving toothed cavity block 2 and the fixed toothed cavity block 5. The bio-enzymatic hydrolysate is simultaneously supplied to the fixed toothed cavity block 5 and the moving toothed cavity block 2 through the liquid supply device. In this way, the interiors of the moving toothed cavity block 2 and the fixed toothed cavity block 5 are filled with bio-enzymatic hydrolysate. The moving toothed cavity block 2 is driven to move closer to the fixed toothed cavity block 5 through the power unit. This creates a tooth gap between the moving toothed cavity block 2 and the fixed toothed cavity block 5, which compresses the pepper seeds to form a pre-crushed state. At the same time as the moving toothed cavity block 2 moves, the tooth baffle 4 is driven by the linkage component to open the tooth gap 3. The bio-enzymatic hydrolysate inside the moving toothed cavity block 2 is supplied from the tooth gap 3 to the left side of the pepper seed pre-crushing area. This ensures that the bio-enzymatic hydrolysate fully contacts and penetrates the crushed pepper seed. Simultaneously, the linkage component drives the pressing component, causing the blocking plate 7 to open the supply hole 6, allowing the bio-enzymatic hydrolysate inside the fixed toothed cavity block 5 to be supplied from the supply hole 6 to the right side of the pepper seed pre-crushing area. Utilizing the crushing force of the moving toothed cavity block 2, the bio-enzymatic hydrolysate can be supplied to different tooth points on the right and left sides of the pepper seed simultaneously. This not only increases the efficiency of pepper seed pressing pre-treatment but also enhances energy conservation, ensuring that the pepper seed waste residue after pressing can be converted into new energy sources or feed for continued use in the bio-industry.

[0051] In this embodiment, as Figures 1-2 As shown, the power unit includes an electric cylinder 23, installed on the other side of the movable tooth cavity block 2. The electric cylinder 23 is fixedly connected to the pretreatment box 1, and its output end is slidably connected to the pretreatment box 1. A switch 24 is also fixedly connected to the movable tooth cavity block 2 on one side of the electric cylinder 23, and the switch 24 is electrically connected to the electric cylinder 23. When the electric cylinder 23 is activated by the switch 24, its output end moves to the right along the interior of the pretreatment box 1, simultaneously driving the movable tooth cavity block 2 to move to the right. The movable tooth cavity block 2 can then compress against the tooth gap 3, thus providing pre-pressing power to the movable tooth cavity block 2. Furthermore, the output end of the electric cylinder 23 can also drive the movable tooth cavity block 2 to move to the left, allowing the movable tooth cavity block 2 to reciprocate to the right and left.

[0052] Example 2, based on Example 1, discloses a pepper seed oil pressing device.

[0053] In this embodiment, as Figures 3-6As shown, the linkage assembly includes: a sloping groove block 8, fixed to one side of the toothed baffle 4, with a pressure block 9 slidably connected to the inclined inner wall surface of the sloping groove block 8, the lower inclined surface of the pressure block 9 being parallel to the inclined inner wall surface of the sloping groove block 8; a pressure rod 10, fixed to the upper surface of the pressure block 9, slidably connected to the moving toothed cavity block 2, with first spring pieces 11 on both sides of the sloping groove block 8, and the moving toothed cavity block 2 and the toothed baffle 4 being fixedly connected to the first spring pieces 11; a limiting ring 14, fixed to the top of the pressure rod 10, with a sloping pressure block 15 fixed to the upper surface of the limiting ring 14, the outer diameter of the limiting ring 14 being larger than the outer diameter of the pressure rod 10; and a sloping support block 16, fixed to the top of the pretreatment box 1, the lower inclined surface of the sloping support block 16 being parallel to one side inclined surface of the sloping pressure block 15, and slidably connected to the sloping pressure block 15. The upper surface of the pressure block 9 is arranged parallel to the upper surface of the inclined groove block 8, and the two first spring plates 11 are arranged symmetrically about the pressure rod 10.

[0054] The operating principle of this embodiment is as follows: when the moving tooth cavity block 2 moves to the right, the moving tooth cavity block 2 will drive the pressure rod 10 to move to the right. The pressure rod 10 will drive the limiting ring 14 to move to the right. The limiting ring 14 will cause the inclined pressure block 15 to move to the right. The inclined surface of the inclined pressure block 15 will press against the downward inclined surface of the inclined support block 16. The pretreatment box 1 supports the inclined support block 16, and the inclined support block 16 remains stationary. As the inclined surface of the inclined pressure block 15 contacts and presses against the downward inclined surface of the inclined support block 16, the inclined pressure block 15 moves downward while moving to the right. This causes the inclined pressure block 15 to drive the limiting ring 14 to move downward. The limiting ring 14 drives the pressure rod 10 to move downward. The pressure rod 10 moves downward along the internal guide of the moving tooth cavity block 2. The pressure rod 10 drives the inclined pressure block 9 to move downward. The downward inclined surface of the inclined pressure block 9 presses against the inclined surface of the inner wall of the inclined groove block 8. The inclined groove block 8 is pressed and moves to the left.

[0055] Simultaneously, the inclined groove block 8 drives the toothed baffle 4 to move to the left, and the toothed baffle 4 squeezes the two first spring pieces 11. The two first spring pieces 11 form a compressive force, and the toothed baffle 4 opens multiple tooth gaps 3. At this time, the bio-enzyme hydrolysate inside the moving toothed cavity block 2 overflows along the multiple tooth gaps 3. The bio-enzyme hydrolysate is supplied from inside the tooth gaps 3 to the left side of the pepper seed pre-crushing area. The tooth gaps 3 present a toothed supply operation. The extrusion force of the moving toothed cavity block 2 is used to simultaneously realize the supply operation of the bio-enzyme hydrolysate. Not only does the bio-enzyme hydrolysate come into contact with the crushing process, but there is also only one power source, eliminating the need for multiple power sources, which is more energy-efficient.

[0056] When the moving tooth cavity block 2 moves to the left, the moving tooth cavity block 2 drives the pressure rod 10 to move to the left. The pressure rod 10 drives the limiting ring 14 to make the inclined pressure block 15 move to the left. The inclined pressure block 15 no longer contacts the inclined support block 16. In this way, the first spring plate 11 provides a rebound force to the tooth baffle 4. The tooth baffle 4 moves to the right. The tooth baffle 4 drives the inclined groove block 8 to move to the right. The inclined inner wall of the inclined groove block 8 presses the downward inclined surface of the pressure inclined block 9. Thus, the pressure inclined block 9 drives the pressure rod 10 to move upward and reset. The tooth baffle 4 moves to the right to continue to seal the multiple tooth gaps 3. The tooth baffle 4 is divided into two layers, one is a rubber layer and the other is a metal layer. The rubber layer of the tooth baffle 4 contacts the inner wall of the moving tooth cavity block 2 to form a sealed state, while the metal layer of the tooth baffle 4 is firmly connected to the inclined groove block 8.

[0057] Specifically, in this embodiment, such as Figures 3-4 As shown, a sleeve block 12 is fixedly connected to the bottom end of the inclined slot block 8, and a guide post 13 is installed on the inner wall of the sleeve block 12. The guide post 13 is used to guide the sliding of the sleeve block 12, and the guide post 13 is fixedly connected to the moving tooth cavity block 2. When the inclined slot block 8 moves to the left, the inclined slot block 8 will drive the sleeve block 12 to move to the left. The sleeve block 12 moves to the left along the outer wall of the guide post 13, ensuring that the inclined slot block 8 moves under guidance.

[0058] Example 3: Based on Example 2, this example discloses a pepper seed oil pressing device.

[0059] In this embodiment, as Figures 3-8 As shown, the pressing assembly includes: a sloping groove plate 17, fixed to one side of the blocking plate 7, with a slider 18 fixed to the bottom end of the sloping groove plate 17, the slider 18 being horizontally slidably connected to the fixed tooth cavity block 5; a pressing column 19, sliding on the inclined surface of the inner wall of the sloping groove plate 17, with a linkage rod 21 fixed to the top of the outer wall of the pressing column 19, the linkage rod 21 being slidably connected to the fixed tooth cavity block 5, and second spring pieces 20 on both sides of the pressing column 19; and a linkage frame 22, fixedly connected to the top of the linkage rod 21, with the pressing rod 10 and the limiting ring 14 being slidably connected to the linkage frame 22. The vertical cross-section of the pressing column 19 is circular, and the two second spring pieces 20 are symmetrically arranged about the pressing column 19. The fixed tooth cavity block 5 and the blocking plate 7 are both fixedly connected to the second spring pieces 20, which provide elastic force to the blocking plate 7.

[0060] In this embodiment, when the limiting ring 14 moves to the right, it drives the pressure rod 10 to move to the right. Simultaneously, both the pressure rod 10 and the limiting ring 14 slide along the linkage frame 22. When the limiting ring 14 moves downward, it drives the pressure rod 10 downward. Since the outer diameter of the limiting ring 14 is larger than the outer diameter of the pressure rod 10, the limiting ring 14 will press downward against the linkage frame 22. Under this force, the linkage frame 22 will drive the linkage rod 21 downward. The linkage rod 21 is guided downward along the inner wall of the fixed tooth cavity block 5, and the linkage rod 21 drives the pressure column 19 downward. The pressure column 19 presses against the inclined slot plate 17. On the inclined inner wall surface, the inclined groove plate 17 begins to move to the right. The inclined groove plate 17 drives the slider 18 to move to the right along the cavity inside the fixed toothed cavity block 5, and the inclined groove plate 17 drives the blocking plate 7 to move to the right. The blocking plate 7 squeezes the two second spring pieces 20, and the second spring pieces 20 are compressed on the fixed toothed cavity block 5. In this way, the blocking plate 7 opens multiple supply holes 6, so that the bio-enzymatic hydrolysate inside the fixed toothed cavity block 5 flows out from the supply holes 6, thereby supplying it to the right side of the pepper seed pre-crushing area. The bio-enzymatic hydrolysate fully contacts the right side of the pepper seed pre-crushing area, realizing the bio-enzymatic hydrolysis treatment of pepper seeds. At the same time, the power source of the moving toothed cavity block 2 is used to supply the bio-enzymatic hydrolysate, which not only has higher pretreatment efficiency, but also saves more power.

[0061] When the pressure rod 10 moves upward and resets, the rebound force of the second spring 20 causes the blocking plate 7 to move to the left. The blocking plate 7 drives the inclined groove plate 17 to move to the left. The inclined surface of the inner wall of the inclined groove plate 17 presses against the pressure column 19, causing the pressure column 19 to drive the linkage rod 21 to move upward. The linkage rod 21 drives the linkage frame 22 to move upward and reset. At the same time, the blocking plate 7 presses and seals multiple supply holes 6. The blocking plate 7 has two sides, one layer is a rubber sealing layer and the other layer is a metal layer. The layer in contact with the inner wall of the fixed tooth cavity block 5 is a rubber sealing layer. Therefore, it can form a compression sealing operation on the inner wall of the fixed tooth cavity block 5. The metal layer of the blocking plate 7 is firmly connected to the inclined groove plate 17.

[0062] Example 4: Based on Example 3, this example discloses a pepper seed oil pressing device.

[0063] In this embodiment, as Figures 9-10 As shown, the liquid supply component includes: a connecting pipe 26, connected to the other side of the fixed tooth cavity block 5, one end of the connecting pipe 26 connected to a housing 27, and a flexible hose 25 connected to one side of the housing 27, the flexible hose 25 being connected to the movable tooth cavity block 2; and a booster fan 28, installed at the top of the housing 27. Both the flexible hose 25 and the connecting pipe 26 are fixedly connected to the housing 27, and the output end of the booster fan 28 is connected to the housing 27.

[0064] The operating principle of this embodiment is as follows: The container 27 is filled with a bio-enzymatic hydrolysate, and the lid of the container 27 is screwed shut. The lid is a publicly available technical method and will not be described in detail. Then, the booster fan 28 is activated, creating pressure in the bio-enzymatic hydrolysate inside the container 27. This allows the bio-enzymatic hydrolysate to flow through the hose 25 into the cavity inside the moving toothed cavity 2, while another portion flows through the connecting pipe 26 into the cavity inside the fixed toothed cavity 5. The bio-enzymatic hydrolysate is simultaneously supplied to both the fixed toothed cavity 5 and the moving toothed cavity 2. The hose 25, being made of a soft material, is connected to the moving toothed cavity 2, ensuring that the moving toothed cavity 2 can move to the right or left.

[0065] All contents not described in detail in the specification are existing technologies known to those skilled in the art, and the model parameters of each electrical appliance are not specifically limited; conventional equipment can be used. Electrical control components not mentioned in this technical solution are not shown in the figures because they are existing technologies, and will not be described here.

[0066] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A pepper seed oil pressing device, comprising a pretreatment box (1), characterized in that: The pretreatment box (1) has a movable tooth cavity block (2) that is slidably installed inside. Multiple tooth gaps (3) are all opened on one side of the moving tooth cavity block (2), and a power unit is installed on the other side of the moving tooth cavity block (2); The toothed baffle (4) slides on the inner wall of the moving tooth cavity block (2), and a linkage component is provided on one side of the toothed baffle (4); The tooth-fixing cavity block (5) is fixed on the inner wall of the pretreatment box (1) and located on one side of the tooth gap (3). Multiple supply holes (6) are opened on one side of the tooth-fixing cavity block (5). A blocking plate (7) is slidably installed on the inner wall of the fixed tooth cavity block (5), and a pressing component is provided on one side of the blocking plate (7); The liquid supply component is installed on the other side of the fixed tooth cavity block (5); The liquid supply component simultaneously supplies the bio-enzymatic hydrolysate to the interior of the solid tooth cavity block (5) and the movable tooth cavity block (2). The power unit drives the movable tooth cavity block (2) to move closer to the solid tooth cavity block (5) to compress the pepper seeds and form a pre-crushed state. When the movable tooth cavity block (2) moves, the linkage component also drives the tooth baffle (4) to open the tooth gap (3), so that the bio-enzymatic hydrolysate inside the movable tooth cavity block (2) is supplied from the tooth gap (3) to the left side of the pepper seed pre-crushed area. At the same time, the linkage component also drives the pressing component to open the supply hole (6) of the blocking plate (7), so that the bio-enzymatic hydrolysate inside the solid tooth cavity block (5) is supplied from the supply hole (6) to the right side of the pepper seed pre-crushed area.

2. The pepper seed oil pressing device according to claim 1, characterized in that: The power unit includes: An electric cylinder (23) is installed on the other side of the moving gear cavity block (2). The electric cylinder (23) is fixedly connected to the pretreatment box (1). The output end of the electric cylinder (23) is slidably connected to the pretreatment box (1). The output end of the electric cylinder (23) is fixedly connected to the moving gear cavity block (2). A switch (24) is provided on one side of the electric cylinder (23). The switch (24) is electrically connected to the electric cylinder (23).

3. The pepper seed oil pressing device according to claim 2, characterized in that: The linkage component includes: The inclined groove block (8) is fixed on one side of the toothed baffle (4). The inclined inner wall of the inclined groove block (8) is slidably connected to the inclined pressure block (9). The lower inclined surface of the inclined pressure block (9) is parallel to the inclined inner wall of the inclined groove block (8). The pressure rod (10) is fixed on the upper surface of the pressure block (9). The pressure rod (10) is slidably connected to the moving tooth cavity block (2). The two sides of the inclined groove block (8) are provided with first spring pieces (11). The moving tooth cavity block (2) and the tooth baffle (4) are fixedly connected to the first spring pieces (11). A limiting ring (14) is fixed to the top of the pressure rod (10). An inclined pressure block (15) is fixed on the upper surface of the limiting ring (14). The outer diameter of the limiting ring (14) is larger than the outer diameter of the pressure rod (10). An inclined support block (16) is fixed to the top of the pretreatment box (1). The lower inclined surface of the inclined support block (16) is parallel to the one side inclined surface of the inclined pressure block (15). The inclined pressure block (15) and the inclined support block (16) are slidably connected.

4. The pepper seed oil pressing device according to claim 3, characterized in that: The upper surface of the pressure block (9) is arranged parallel to the upper surface of the inclined groove block (8), and the two first spring pieces (11) are arranged symmetrically about the pressure rod (10).

5. The pepper seed oil pressing device according to claim 4, characterized in that: The bottom end of the inclined slot block (8) is fixedly connected to a sleeve block (12), and a guide post (13) is installed on the inner wall of the sleeve block (12). The guide post (13) is used to guide the sliding of the sleeve block (12), and the guide post (13) is fixedly connected to the moving tooth cavity block (2).

6. The pepper seed oil pressing device according to claim 5, characterized in that: The pressing assembly includes: A sloping groove plate (17) is fixed to one side of the blocking plate (7). A slider (18) is fixed at the bottom end of the sloping groove plate (17). The slider (18) is horizontally slidably connected to the tooth cavity block (5). The pressure column (19) slides on the inclined surface of the inner wall of the inclined groove plate (17). A linkage rod (21) is fixed at the top of the outer wall of the pressure column (19). The linkage rod (21) is slidably connected to the fixed tooth cavity block (5). A second spring plate (20) is provided on both sides of the pressure column (19). The linkage frame (22) is fixedly connected to the top of the linkage rod (21), and the pressure rod (10) and the limiting ring (14) are slidably connected to the linkage frame (22).

7. The pepper seed oil pressing device according to claim 6, characterized in that: The vertical cross-section of the pressure column (19) is circular, and the two second spring pieces (20) are symmetrically arranged about the pressure column (19).

8. The pepper seed oil pressing device according to claim 7, characterized in that: The fixed tooth cavity block (5) and the plug plate (7) are both fixedly connected to the second spring plate (20), which is used to provide elastic force to the plug plate (7).

9. The pepper seed oil pressing device according to claim 8, characterized in that: The liquid supply component includes: A connecting pipe (26) is connected to the other side of the fixed tooth cavity block (5). One end of the connecting pipe (26) is connected to a housing (27), and one side of the housing (27) is connected to a flexible hose (25). The flexible hose (25) is connected to the moving tooth cavity block (2). A booster fan (28) is installed on top of the housing (27).

10. A pepper seed oil pressing device according to claim 9, characterized in that: The hose (25) and the connecting pipe (26) are both fixedly connected to the housing (27), and the output end of the booster fan (28) is connected to the housing (27).

Citation Information

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