A sesame seed roasting device for sesame oil

By designing a device for sesame oil fried seeds, using the design of circulating flow and guiding mechanisms, the problems of uneven heating and scorching in the prior art are solved, and a more efficient and uniform sesame oil fried process is achieved.

CN118725959BActive Publication Date: 2025-06-24SHANDONG SHILIXIANG SESAME PROD CO LTD
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Patent Information

Application Number
CN202411219042.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-09-02
Publication Date
2025-06-24
Estimated Expiration
2044-09-02

AI Technical Summary

Technical Problem

The existing sesame oil fried seeds are directly placed and fried by stirring or shaking, which can easily lead to problems such as cracking of the seed material, uneven heating, bottom adhesion and fried scorching, affecting the oil yield and quality.

Method used

A sesame oil fried seed device is designed to ensure uniform heating and prevent scorching by circulating the raw materials in two heating areas.

Benefits of technology

The uniformity of raw materials is achieved, the phenomenon of scorching is avoided, the integrity and oil yield of the raw materials are improved, the risk of manual operation is reduced, and the processing efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a seed frying device for sesame oil, which relates to the technical field of fat extraction and processing. It includes a frying box, a driving mechanism, a heating component and a guiding mechanism. A support frame is welded to the bottom of the frying box, and a water injection mechanism is built on the top of the frying box. The water injection mechanism includes a water pump and a support plate. The two ends of the support plate are welded to the surface of the frying box, and a triangular groove is formed in the top of the frying box. A driving mechanism is inserted in the middle of the frying box, and a heating component is screwed to the bottom of the driving mechanism. The present invention can circulate the raw materials placed inside in two heating areas without the need for stirring, and can also fully exchange the raw materials at any position during the transposition process, making the raw materials at any position more evenly fried and heated. It can continuously scrape the heating area to avoid the phenomenon of scorching and improve the integrity of the raw materials during the frying process.
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Description

Technical Field

[0001] The present invention relates to the technical field of fat and oil extraction and processing, and specifically to a sesame seed frying device for sesame oil. Background Art

[0002] During the process of frying sesame seeds, by controlling an appropriate temperature, the fragrance components in sesame seeds can be fully released, thereby endowing sesame oil with a good aroma. Moderate frying of sesame seeds can control the formation of harmful substances that may be generated at high temperatures, such as benzo[a]pyrene, chloropropanol esters, etc., to ensure the safety and healthiness of sesame oil. In addition, frying sesame seeds also helps to adjust the moisture content of sesame seeds to reach an ideal moisture content range, which is crucial for ensuring the oil yield and the flavor of sesame oil. The ideal moisture content is 15% to 18%, and this step has a significant impact on improving the taste and oil yield of sesame oil.

[0003] In the prior art, the frying device used in the sesame oil extraction process directly puts a large amount of sesame seed raw materials into the interior of the frying pan, and after heating, stirring is carried out to perform continuous frying and processing. However, in this solution, due to the shearing force, some seed materials are easily broken during the stirring process, which affects the quality of the final product and reduces the oil yield of subsequent extraction. And only through the form of shaking, it is impossible to ensure the full exchange of raw materials at the top layer and the bottom layer, so that there are differences in the heating and frying effects of raw materials at different positions. During the frying process of a conventional frying device, adhesion is likely to occur at the bottom, and long-term adhesion will lead to the problem of scorching, reducing the final quality, and the feeding process and the discharging process cannot be carried out synchronously. Summary of the Invention

[0004] Aiming at the deficiencies of the prior art, the purpose of the present invention is to provide a sesame seed frying device for sesame oil to solve the problems raised in the above background art. The present invention can circulate and flow the raw materials placed inside in two heating areas, without the need for stirring treatment, and during the transposition process, the raw materials at any position can be fully exchanged, making the frying and heating of the raw materials at any position more uniform, and can continuously scrape the heating area to avoid the phenomenon of scorching, and also improve the integrity of the raw material frying process.

[0005] To achieve the above object, the present invention is realized through the following technical solutions: A sesame seed frying device includes a frying device body, and the frying device body includes a frying box, a driving mechanism, a heating component, and a guiding mechanism. A support frame is welded to the bottom of the frying box, and a water injection mechanism is built on the top of the frying box. The water injection mechanism includes a water pump and a support plate. The two ends of the support plate are welded to the surface of the frying box, and a triangular groove is opened at the top of the frying box. A driving mechanism is inserted in the middle of the frying box, a heating component is screwed to the bottom of the driving mechanism, a guiding mechanism is integrally formed inside the heating component, the outside of the heating component is in contact with the inner wall of the frying box, and the driving mechanism is used to control the heating component to rotate around the central axis of the frying box. An inlet slot and a discharge slot are opened inside the guiding mechanism, and a pick-up and placement opening is opened on one side of the surface of the frying box. The inlet slot and the discharge slot are rotationally aligned with the pick-up and placement opening in part.

[0006] Further, inner arc plates are welded to both ends of the inner wall of the frying box. Slots are opened between the inner arc plates and the inner wall of the frying box, and a scraping plate is provided at the end of each inner arc plate.

[0007] Further, the water pump is screwed to the surface of the support plate. A water pumping pipe is inserted into one end of the water pump, and a water supply pipe is inserted into the side of the water pump. The water supply pipe passes through the surface center position of the frying box inward.

[0008] Further, the slots and the inner arc plates are symmetrically arranged on both sides of the frying box. The top of the pick-up and placement opening is lower than the bottom end position of the scraping plate, and air holes are opened at the top end position of the slots.

[0009] Further, the heating component includes a surrounding plate and a heating plate. The heating plate is integrally arc-shaped, and electric heating wires are embedded in the inner wall of the heating plate. Two independent frying cavities are formed by enclosing between the heating plate and the surrounding plate. The driving mechanism includes a driving shaft and a motor.

[0010] Further, the outer shell of the motor is fixed to the middle position of the surface of the frying box with screws. The driving shaft is inserted into the output end of the motor, and water spraying holes are opened on the surface of the driving shaft.

[0011] Further, two rows of water spraying holes are opened. The inside of the driving shaft is hollow. The end of the water supply pipe is embedded into the inside of the driving shaft. The driving shaft is fixed as a whole with the guiding mechanism. The thickness of the heating plate is the same as the thickness of the slot, and the heating plate is rotationally embedded into the inside of the slot.

[0012] Further, the guiding mechanism includes a triangular base and guiding inclined plates. The guiding inclined plates are integrally formed on both sides of the triangular base. A column is welded to the top of the triangular base, and the column is welded to both ends of the driving shaft as a whole.

[0013] Further, both the feeding groove and the discharging groove are arranged inside the triangular base, and a partition board is inserted between the feeding groove and the discharging groove. The top of the partition board is integrally formed with the inner wall of the triangular base. A feeding port is formed on the inner wall of the feeding groove, and a discharging port is formed on the inner wall of the discharging groove.

[0014] Further, a first cover plate and a second cover plate are respectively hinged in the feeding port and the discharging port. Pulling rods are welded on the surfaces of the first cover plate and the second cover plate. An obtuse angle structure is formed between the guiding inclined plate and the heating plate. Clamping plates are installed at the ends of the first cover plate and the second cover plate.

[0015] Advantages of the present invention:

[0016] 1. The sesame seed frying device can circulate the internally placed raw materials in two heating areas without the need for stirring, and during the transposition process, the raw materials at any position can be fully exchanged, making the frying and heating of the raw materials at any position more uniform.

[0017] 2. During the frying process of the sesame seed frying device, during the reciprocating rotation of the heating component and the guiding mechanism, it can also cooperate with the internal structure of the frying box to continuously scrape the heating area, avoiding the phenomenon of scorching on the heating component and improving the integrity of the raw material frying process.

[0018] 3. The sesame seed frying device based on the guiding mechanism can directly discharge the fried raw materials. The whole process does not require manual contact with the internal space of the frying box, thus reducing the risk of scalding. It can also directly feed materials while taking materials, improving the efficiency of large-batch and multiple-time frying and processing. Description of the drawings

[0019] Figure 1 is a schematic structural diagram of the external shape of a sesame seed frying device of the present invention;

[0020] Figure 2 is a side cross-sectional view of a sesame seed frying device of the present invention;

[0021] Figure 3 is Figure 2 an enlarged view of area A in

[0022] Figure 4 is a schematic structural diagram of the heating component part of the present invention;

[0023] Figure 5 Schematic diagram of the structure of the guiding mechanism part of the present invention;

[0024] Figure 6 Internal structure diagram of the guiding mechanism of the present invention;

[0025] In the figure: 1, frying box; 2, support frame; 3, access opening; 4, driving mechanism; 5, motor; 6, support plate; 7, water pump; 8, water pumping pipeline; 9, water supply pipeline; 10, inner arc plate; 11, slot; 12, scraper; 13, heating component; 14, guiding mechanism; 15, feeding trough; 16, discharging trough; 17, discharging port; 18, first cover plate; 19, pull rod; 20, guiding inclined plate; 21, partition plate; 22, heating plate; 23, electric heating wire; 24, enclosing plate; 25, triangular base; 26, column; 27, driving shaft; 28, water spraying hole; 29, feeding port; 30, second cover plate; 31, engaging plate. Specific embodiments

[0026] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific embodiments.

[0027] Please refer to Figures 1 to 6 , the present invention provides the following technical solutions: A sesame seed frying device for sesame oil, including a sesame seed frying device body, the sesame seed frying device body includes a frying box 1, a driving mechanism 4, a heating component 13 and a guiding mechanism 14. A support frame 2 is welded to the bottom of the frying box 1, and a water injection mechanism is built on the top of the frying box 1. The water injection mechanism includes a water pump 7 and a support plate 6. Both ends of the support plate 6 are welded to the surface of the frying box 1, and a triangular groove is opened at the top of the frying box 1. A driving mechanism 4 is inserted in the middle of the frying box 1. The bottom of the driving mechanism 4 is screwed with a heating component 13. A guiding mechanism 14 is integrally formed inside the heating component 13. The outside of the heating component 13 is attached to the inner wall of the frying box 1, and the driving mechanism 4 is used to control the heating component 13 to rotate around the central axis of the frying box 1. Feeding trough 15 and discharging trough 16 are opened inside the guiding mechanism 14. An access opening 3 is opened on one side of the surface of the frying box 1. The feeding trough 15 and the discharging trough 16 are partially aligned with the access opening 3 through rotation. This sesame seed frying device for sesame oil is used for the heating and frying link in the extraction and processing of sesame raw materials, so as to better carry out the subsequent oil pressing process.

[0028] When the present invention is in use, the quantitatively measured sesame raw materials are directly put into the interior of the frying box 1 from the feeding tank 15 and are located on one side of the heating assembly 13. Then, the driving mechanism 4 can be started, and the entire heating assembly 13 and the guiding mechanism 14 inside the heating assembly 13 are driven to rotate by the driving mechanism 4. The rotation range is limited to the bottom area inside the frying box 1. The specific rotation range is: after one side of the guiding mechanism 14 rotates to abut against the inner arc plate 10 on this side, it can rotate in the reverse direction until the other side of the guiding mechanism 14 rotates to abut against the inner arc plate 10 on the other side. During this process, the sesame raw materials on one side can be rolled to the heating area on the other side along the guiding mechanism 14 after rotating to the highest point. By repeating this process until frying is completed, and during the frying process, external clear water is injected into the interior of the heating assembly 13 through the water injection mechanism at the top to uniformly mix the clear water with the sesame raw materials. After frying is completed, it can be discharged. When discharging, the guiding mechanism 14 is rotated until it is aligned with the access opening 3 in sequence. In this state, by opening the first cover plate 18 and the second cover plate 30 at the bottom, the sesame raw materials inside can be discharged outwards, and subsequent sesame raw materials can be put into the interior from the lower feeding port 29 to repeat the frying process.

[0029] In this embodiment, inner arc plates 10 are welded to both ends of the inner wall of the frying box 1. Slots 11 are formed between the inner arc plates 10 and the inner wall of the frying box 1, and a scraper 12 is provided at the end of each inner arc plate 10. The water pump 7 is screwed to the surface of the support plate 6. One end of the water pump 7 is inserted with a water pumping pipe 8, and a water supply pipe 9 is inserted on the side of the water pump 7. The water supply pipe 9 passes through the center position of the surface of the frying box 1 inwards. The slots 11 and the inner arc plates 10 are symmetrically arranged on both sides of the frying box 1. The top of the access opening 3 is lower than the bottom end position of the scraper 12, and air holes are provided at the top end position of the slots 11. During the frying process, during the reciprocating rotation of the heating assembly 13 and the guiding mechanism 14, it can also cooperate with the internal structure of the frying box 1 to continuously scrape the heating area, avoiding the phenomenon of scorching on the heating assembly 13 and improving the integrity during the raw material frying process.

[0030] Specifically, during the process of driving the heating assembly 13 to rotate by the driving mechanism 4, the heating plates 22 at both ends are periodically inserted into the slots 11. During this process, the sesame raw materials on the heating plate 22 at one end fall towards the heating plate 22 on the other side after being lifted. At the same time, the inner arc plate 10 is pressed against the surface of the heating plate 22 at a high position, and the sesame raw materials adhered to the surface of this heating plate 22 are scraped by means of the scraper 12, thereby avoiding some sesame raw materials adhering to the surface of the heating plate 22 for a long time and reducing the probability of scorching.

[0031] In this embodiment, the heating assembly 13 includes a surrounding plate 24 and a heating plate 22. The heating plate 22 is integrally in an arc structure, and an electric heating wire 23 is embedded in the inner wall of the heating plate 22. Two independent frying cavities are formed by enclosing between the heating plate 22 and the surrounding plate 24. The driving mechanism 4 includes a driving shaft 27 and a motor 5. The outer shell part of the motor 5 is fixed to the middle position on the surface of the frying box 1 by screws. The driving shaft 27 is inserted into the output end of the motor 5. Water spraying holes 28 are formed on the surface of the driving shaft 27. Two rows of water spraying holes 28 are provided. The inside of the driving shaft 27 is in a hollow structure. The end of the water supply pipe 9 is embedded into the inside of the driving shaft 27. The driving shaft 27 and the guiding mechanism 14 are fixed as a whole. The thickness of the heating plate 22 is the same as that of the slot 11, and the heating plate 22 is rotationally embedded into the inside of the slot 11. The raw materials placed inside can circulate in the two heating areas, without the need for stirring treatment, and during the transposition process, the raw materials at any position can be fully exchanged, making the frying and heating of the raw materials at any position more uniform.

[0032] Specifically, since there are two heating plates 22 and they are blocked by the guiding mechanism 14 in the middle, after the driving mechanism 4 drives the heating assembly 13 to rotate, the sesame raw materials on one end of the heating plate 22 will gradually roll towards the bottom due to being lifted until they are abutted against the inner arc plate 10 at a high position by the guiding mechanism 14. Then, all the sesame raw materials on this side will roll along the heating plate 22 and the inclined guiding inclined plate 20 towards the other side until they fall onto another heating plate 22 at a low position, realizing the process of pushing and transposing the materials. During this process, the clear water is conveyed along the water supply pipe 9 to the inside of the driving shaft 27 by the water pump 7 at the top, and finally sprayed from the spray holes onto the sesame raw materials passing by at the bottom. Thus, the water adding process can be evenly realized during the transposition process, and it is ensured that the sesame raw materials at any position can be fully and evenly contacted with the clear water.

[0033] In this embodiment, the guiding mechanism 14 includes a triangular base 25 and guiding inclined plates 20. The guiding inclined plates 20 are integrally formed on both sides of the triangular base 25. A column 26 is welded to the top of the triangular base 25, and the two ends of the column 26 are welded to the driving shaft 27 as a whole. Both the feed chute 15 and the discharge chute 16 are arranged inside the triangular base 25, and a partition plate 21 is inserted between the feed chute 15 and the discharge chute 16. The top of the partition plate 21 is integrally formed with the inner wall of the triangular base 25. A feed port 29 is formed in the inner wall of the feed chute 15, and a discharge port 17 is formed in the inner wall of the discharge chute 16. A first cover plate 18 and a second cover plate 30 are respectively hinged in the feed port 29 and the discharge port 17. Pull rods 19 are welded on the surfaces of the first cover plate 18 and the second cover plate 30. An obtuse angle structure is formed between the guiding inclined plate 20 and the heating plate 22. Based on the guiding mechanism 14, the raw materials after frying can be directly discharged. The whole process does not require manual contact with the inner space of the frying box 1, thus reducing the risk of scalding. Also, feeding can be directly carried out while taking materials, improving the efficiency of large-batch and multiple-time frying and processing.

[0034] Specifically, since the access opening 3 is only provided on one side, when the guiding mechanism 14 rotates to align the feed chute 15 and the discharge chute 16 with the access opening 3, at this time, the guiding inclined plate 20 at a higher position is still in a state where the outer end is at the lower side. Therefore, after the first cover plate 18 is opened, the sesame raw materials lifted to a higher position but not reaching the highest point can be directly dropped and discharged from the discharge port 17. And at the same time, the second cover plate 30 is opened during this process. At this time, the external sesame raw materials can be directly introduced from the feed port 29 and conveyed to the heating plate 22 at a lower position. During the process of feeding and discharging, the first cover plate 18 and the second cover plate 30 are directly closed through the pull rods 19, and are locked by means of the clamping plate 31, and then the driving mechanism 4 can be restarted for the subsequent frying process. The surface of the clamping plate 31 realizes the locking process by installing locks or using plastic buckles.

[0035] The above shows and describes the basic principles, main features and advantages of the present invention. For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or basic features of the present invention.

[0036] In addition, it should be understood that although this specification is described according to embodiments, not each embodiment only includes an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A sesame oil seed frying device, comprising a sesame oil seed frying device body, characterized in that: The main body of the seed frying device comprises a frying box (1), a driving mechanism (4), a heating component (13) and a guiding mechanism (14); a support frame (2) is welded to the bottom of the frying box (1); a water injection mechanism is built on the top of the frying box (1); the water injection mechanism comprises a water pump (7) and a support plate (6); a water supply pipe (9) is plugged into the side of the water pump (7); both ends of the support plate (6) are welded to the surface of the frying box (1); a triangular groove is provided on the top of the frying box (1); a driving mechanism (4) is plugged into the middle of the frying box (1); a heating component (13) is screwed to the bottom of the driving mechanism (4); a guiding mechanism (14) is integrally formed on the inner side of the heating component (13); and the heating component (13) is screwed to the bottom of the driving mechanism (4). The outer side of the component (13) is in contact with the inner wall of the frying box (1), and the driving mechanism (4) is used to control the heating component (13) to rotate around the central axis of the frying box (1). A feed groove (15) and a discharge groove (16) are provided inside the guide mechanism (14). A take-in and take-out opening (3) is provided on one side of the surface of the frying box (1). The feed groove (15) and the discharge groove (16) are aligned with the take-in and take-out opening (3) by rotation. Inner arc plates (10) are welded at both ends of the inner wall of the frying box (1). A slot (11) is provided between the inner arc plate (10) and the inner wall of the frying box (1), and a scraper (12) is provided at the end of each inner arc plate (10). The heating component (13) includes a surrounding plate ( 24) and a heating plate (22), the heating plate (22) being of an arc-shaped structure as a whole, and an electric heating wire (23) being embedded in the inner wall of the heating plate (22), the enclosure between the heating plate (22) and the enclosure (24) forming two independent frying cavities, the driving mechanism (4) comprising a driving shaft (27) and a motor (5), the outer shell of the motor (5) being fixed to the middle position of the surface of the frying box (1) by screws, the driving shaft (27) being inserted into the output end of the motor (5), the surface of the driving shaft (27) being provided with water spray holes (28), the water spray holes (28) being provided in two rows, the interior of the driving shaft (27) being of a hollow structure, the end of the water supply pipe (9) being embedded in the driving shaft (27), Inside, the driving shaft (27) and the guide mechanism (14) are fixed as a whole, the thickness of the heating plate (22) is the same as the thickness of the slot (11), and the heating plate (22) is inserted into the inside of the slot (11) by rotation, the guide mechanism (14) comprises a triangular base (25) and a guide inclined plate (20), the guide inclined plate (20) is integrally formed on both sides of the triangular base (25), a column (26) is welded to the top of the triangular base (25), and the column (26) and the two ends of the driving shaft (27) are welded as a whole, the feed trough (15) and the discharge trough (16) are both arranged inside the triangular base (25), and a partition plate (21) is inserted between the feed trough (15) and the discharge trough (16),The top of the partition (21) is integrally formed with the inner wall of the triangular base (25); a feed port (29) is provided on the inner wall of the feed trough (15); a discharge port (17) is provided on the inner wall of the discharge trough (16); a first cover plate (18) and a second cover plate (30) are hingedly connected in the feed port (29) and the discharge port (17), respectively; a pull rod (19) is welded to the surface of the first cover plate (18) and the second cover plate (30); an obtuse angle is formed between the guide inclined plate (20) and the heating plate (22); The ends of the first cover plate (18) and the second cover plate (30) are both provided with a snap-fit ​​plate (31), the water pump (7) is screwed onto the surface of the support plate (6), one end of the water pump (7) is plugged with a water pumping pipe (8), the water supply pipe (9) passes inward from the center of the surface of the stir-fry box (1), the slot (11) and the inner arc plate (10) are symmetrically arranged on both sides of the stir-fry box (1), the top of the access opening (3) is lower than the bottom end of the scraper (12), and an air hole is provided at the top end of the slot (11).

Citation Information

Patent Citations

  • Electric frying pan for processing stone-milled sesames

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