Red date surface seam cutting device for walnut sandwiched date production
By designing an automated red date surface scratching device, the problem of low manual scratching efficiency is solved, and the efficient and safe scratching processing of red dates is achieved, which is suitable for the mass production of date-to-date walnuts.
Patent Information
- Application Number
- CN202422743313.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-12
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-11-12
AI Technical Summary
In the prior art, artificial slit red dates are inefficient and difficult to meet the needs of mass production, and manual slits may affect food safety.
A red date surface scratching device for jujube-mixed walnut production is designed, including a chassis, processing table, transportation mechanism and sewing mechanism. Through the cooperation of the transportation mechanism and sewing mechanism, the continuous and automated sewing processing of red dates can be achieved to avoid manual contact.
It improves the efficiency and consistency of red date scratches, ensures food safety, and reduces the hygiene risks brought by artificial contact.
Smart Images

Figure CN223265769U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a surface scoring device, in particular to a surface scoring device for red dates used in the production of jujube sandwiched with walnuts. Background Art
[0002] Dates stuffed with walnuts, also known as red dates stuffed with walnut kernels or dates stuffed with walnut kernels, is a dish made by splitting dried red dates and stuffing them with walnut kernels. This dish is not only delicious and convenient, but also offers numerous health benefits.
[0003] The steps for making it are as follows: 1. Prepare the ingredients: red dates, walnuts, and honey. Wash and drain the red dates; peel the walnuts and remove the kernels. 2. Process the red dates: Cut the dates in half. 3. Fill the red dates with walnut kernels: Stuff the mixed walnut kernels into the red dates. 4. Bake: Place the filled red date and walnut mixture in a baking pan and bake. Processing the red dates is particularly challenging; the most common method is to manually score them with a knife.
[0004] When manual scoring is used to score large quantities of red dates, it is not suitable for large-scale production and processing due to its low efficiency and low production capacity. In addition, the scorers are in direct contact with the red date pulp, making it difficult to control the food safety of dates with walnuts. Utility Model Content
[0005] The purpose of the utility model is to provide a device for scoring the surface of red dates for use in the production of walnut-stuffed dates, so as to solve the problems raised in the above-mentioned background technology.
[0006] To achieve the above objectives, the present invention provides the following technical solutions:
[0007] A device for scoring the surface of red dates for producing walnut-stuffed dates, comprising a chassis and a processing table fixedly mounted on the chassis;
[0008] A discharge ramp is fixedly installed on the processing table; a plurality of scoring grooves are provided on the processing table;
[0009] The processing table is provided with multiple groups of loading racks;
[0010] The chassis is provided with a mounting plate, on which a plurality of blades are fixedly mounted, and the blades are slidably engaged with the slit grooves;
[0011] A transport mechanism is provided in the chassis, and the transport mechanism can drive the loading frame to rotate;
[0012] A notching mechanism cooperating with the transport mechanism is provided in the chassis. The notching mechanism can drive the mounting plate to move back and forth, thereby driving the blade to slide back and forth in the notching groove.
[0013] The red date surface scoring device used for the production of walnut-stuffed dates as described above: a driving wheel is rotatably installed in the chassis, and a first driven wheel and a second driven wheel that cooperate with the driving wheel are rotatably installed in the chassis; a first pulley is fixedly installed on the first driven wheel, and a second pulley is fixedly installed on the second driven wheel.
[0014] The red date surface scoring device for producing walnut-stuffed dates as described above: the transport mechanism includes a second rotating shaft rotatably mounted on the chassis, a fixed block rotatably engaged with the processing table is fixedly mounted on the second rotating shaft, multiple groups of loading racks are fixedly mounted on the fixed block, and multiple groups of loading racks are equidistantly distributed on the circumference of the fixed block; a fourth pulley is fixedly mounted on the second rotating shaft, and the fourth pulley is connected to the first pulley by a belt.
[0015] The red date surface scoring device for producing walnuts in date fillings as described above: the scoring mechanism includes a first rotating shaft rotatably mounted on the chassis; a third pulley is fixedly mounted on the first rotating shaft, and the second pulley is connected to the third pulley by a belt; a rotating rod is fixedly mounted on the first rotating shaft, a raised column is fixedly mounted on the rotating rod, and multiple groups of guide rods are slidably engaged on the processing table; multiple groups of guide rods are fixedly mounted on a connecting rod, and the connecting rod is connected to the mounting plate; a sliding groove is provided on the connecting rod to be slidably engaged with the raised column.
[0016] The red date surface scoring device for producing walnut-stuffed dates as described above: one rotation of the second pulley can drive four rotations of the third pulley.
[0017] The red date surface scoring device for producing walnut-stuffed dates as described above: a screw column is rotatably mounted on the mounting plate; an internal threaded sleeve that matches the thread of the screw column is fixedly mounted on the connecting rod.
[0018] The red date surface scoring device for producing walnut-stuffed dates as described above: the loading frame is provided with a notch for facilitating the sliding of the blade.
[0019] Compared with the prior art, the beneficial effects of the present invention are as follows: when the transport mechanism drives one loading rack to be transferred to the processing area, another loading rack will be rotated to the loading area; and when one loading rack is transferred from the processing area to the unloading ramp, another loading rack will be rotated to the processing area. Through the rotation of the transport mechanism, different loading racks are driven to cycle in an orderly manner from the loading area to the processing area, then from the processing area to the unloading ramp, and finally from the unloading ramp to the loading area, which is conducive to uninterrupted slitting processing and effectively improves the slitting efficiency; the slitting mechanism drives the blade to slide back and forth to slit the red dates in the loading rack, which can effectively improve the slitting efficiency, and the slit depth and width of the slitted red dates are relatively neat, which is convenient for the subsequent walnut stuffing process; the slitting process does not directly contact personnel, effectively improving the cleanliness of the walnut sandwich. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a schematic diagram of the structure of the device for scoring the surface of red dates used in the production of walnut-stuffed dates.
[0021] Figure 2 This is a structural schematic diagram from another perspective of the red date surface scoring device used in the production of red date sandwiches with walnuts.
[0022] Figure 3 This is a schematic diagram of the structure of the loading frame in the red date surface scoring device used in the production of red date sandwiches with walnuts.
[0023] Figure 4 for Figure 3 Schematic diagram of the structure at point A.
[0024] Figure 5 for Figure 3 Schematic diagram of the structure at point B.
[0025] Figure 6 This is a structural schematic diagram of the first rotating shaft and fixed block in the red date surface scoring device used in the production of red date sandwiches with walnuts.
[0026] Figure 7 This is a structural diagram of the connecting rod and mounting plate in the red date surface scoring device used in the production of red date sandwiches with walnuts.
[0027] In the figure: 1. Chassis;
[0028] 2. Processing table; 201. Unloading ramp; 202. Slotting groove;
[0029] 3. Driving wheel;
[0030] 4. First driven wheel; 401. First pulley;
[0031] 5. Second driven wheel; 501. Second pulley;
[0032] 6. First rotating shaft; 601. Third pulley;
[0033] 7. Rotating rod; 701. Raised column;
[0034] 8. Connecting rod; 801. Slideway; 802. Guide rod; 803. Internally threaded sleeve;
[0035] 9. Mounting plate; 901. Screw column;
[0036] 10. Blade;
[0037] 11. Second rotating shaft; 1101. Fourth pulley;
[0038] 12. Fixed block;
[0039] 13. Loading rack; 1301. Notch. DETAILED DESCRIPTION
[0040] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0041] See also Figures 1 to 7 As an embodiment of the present invention, the red date surface scoring device for producing walnut-stuffed dates comprises a chassis 1 and a processing table 2 fixedly mounted on the chassis 1;
[0042] The processing table 2 is fixedly provided with a discharge ramp 201; the processing table 2 is provided with a plurality of scoring grooves 202;
[0043] The processing table 2 is provided with multiple groups of loading racks 13;
[0044] The chassis 1 is provided with a mounting plate 9, on which a plurality of blades 10 are fixedly mounted, and the blades 10 are slidably engaged with the slit grooves 202;
[0045] A transport mechanism is provided in the chassis 1, and the transport mechanism can drive the loading frame 13 to rotate;
[0046] The chassis 1 is provided with a notching mechanism that cooperates with the transport mechanism. The notching mechanism can drive the mounting plate 9 to move back and forth, thereby driving the blade 10 to slide back and forth in the notching groove 202 .
[0047] In this embodiment, the loading rack 13 is a frame structure without a top or a bottom, and a plurality of partitions are distributed inside the loading rack 13 to divide the loading rack 13 into a plurality of loading areas.
[0048] On the loading area of the processing table 2, the red dates are placed in batches in a loading rack 13; the loading rack 13 is driven to rotate by the action of the transport mechanism to transfer the red dates to the processing area where the slitting groove 202 is located, and then the transport mechanism stops, and the mounting plate 9 is driven to reciprocate by the action of the slitting mechanism to drive the blade 10 to slide back and forth in the slitting groove 202 to perform slitting processing on the red dates in the loading rack 13; then the slitting mechanism stops, and the loading rack 13 is driven to rotate by the action of the transport mechanism to transfer the slit red dates away from the slitting groove 202. When passing through the unloading ramp 201, the red dates will automatically detach from the loading rack 13 and roll away from the processing table 2 by the unloading ramp 201.
[0049] When the transport mechanism drives one loading rack 13 to be transferred to the processing area, another loading rack 13 will be rotated to the loading area; and when one loading rack 13 is transferred from the processing area to the unloading ramp 201, another loading rack 13 will be rotated to the processing area. Through the rotation of the transport mechanism, different loading racks 13 are driven to cycle in an orderly manner from the loading area to the processing area, then from the processing area to the unloading ramp 201, and finally from the unloading ramp 201 to the loading area, which is conducive to uninterrupted scoring processing and effectively improves the scoring efficiency.
[0050] The slitting mechanism drives the blade 10 to slide back and forth to slit the red dates in the loading rack 13, which can effectively improve the slitting efficiency. The slit depth and width of the slit red dates are relatively uniform, which is convenient for the subsequent walnut stuffing process.
[0051] As a further solution of the present invention, a driving wheel 3 is rotatably installed in the chassis 1, and a first driven wheel 4 and a second driven wheel 5 that cooperate with the driving wheel 3 are rotatably installed in the chassis 1; a first pulley 401 is fixedly installed on the first driven wheel 4, and a second pulley 501 is fixedly installed on the second driven wheel 5.
[0052] In this embodiment, the driving wheel 3 and the first driven wheel 4, as well as the driving wheel 3 and the second driven wheel 5, all form a "Maltese cross movement" structure, that is, when the driving wheel 3 rotates one circle, it can cooperate with the first driven wheel 4 once, thereby driving the first driven wheel 4 to rotate a quarter of a circle; after the driving wheel 3 is disengaged from the first driven wheel 4, the driving wheel 3 will cooperate with the second driven wheel 5 once, also driving the second driven wheel 5 to rotate a quarter of a circle.
[0053] When the first driven wheel 4 rotates, it drives the first pulley 401 to rotate synchronously, thereby driving the transport mechanism to move.
[0054] When the second driven wheel 5 rotates, it will drive the second pulley 501 to rotate synchronously, thereby driving the slitting mechanism to operate.
[0055] As a further solution of the present invention, the transport mechanism includes a second rotating shaft 11 rotatably mounted on the chassis 1, a fixed block 12 rotatably engaged with the processing table 2 is fixedly mounted on the second rotating shaft 11, multiple groups of loading racks 13 are fixedly mounted on the fixed block 12, and multiple groups of loading racks 13 are equidistantly distributed around the circumference of the fixed block 12; a fourth pulley 1101 is fixedly mounted on the second rotating shaft 11, and the fourth pulley 1101 is connected to the first pulley 401 through a belt.
[0056] In this embodiment, when the first pulley 401 rotates, it drives the fourth pulley 1101 to rotate through the belt, thereby driving the first rotating shaft 11 to rotate; the rotating first rotating shaft 11 can drive the fixed block 12 to rotate, thereby driving the multiple groups of loading frames 13 to rotate synchronously.
[0057] When the transport mechanism drives one loading rack 13 to be transferred to the processing area, another loading rack 13 will be rotated to the loading area; and when one loading rack 13 is transferred from the processing area to the unloading ramp 201, another loading rack 13 will be rotated to the processing area. Through the rotation of the transport mechanism, different loading racks 13 are driven to cycle in an orderly manner from the loading area to the processing area, then from the processing area to the unloading ramp 201, and finally from the unloading ramp 201 to the loading area, which is conducive to uninterrupted scoring processing and effectively improves the scoring efficiency.
[0058] As a further solution of the present invention, the slitting mechanism includes a first rotating shaft 6 rotatably mounted on the chassis 1; a third pulley 601 is fixedly mounted on the first rotating shaft 6, and the second pulley 501 is connected to the third pulley 601 by a belt; a rotating rod 7 is fixedly mounted on the first rotating shaft 6, a raised column 701 is fixedly mounted on the rotating rod 7, and multiple groups of guide rods 802 are slidably engaged on the processing table 2; multiple groups of guide rods 802 are fixedly mounted on the connecting rod 8, and the connecting rod 8 is connected to the mounting plate 9; a sliding groove 801 is provided on the connecting rod 8 for sliding engagement with the raised column 701.
[0059] In this embodiment, when the second pulley 501 rotates, it will drive the third pulley 601 to rotate, thereby driving the second rotating shaft 6 to rotate, and thus driving the rotating rod 7 to rotate synchronously; the rotating rotating rod 7 will drive the raised column 701 to rotate synchronously; when the raised column 701 rotates, it will squeeze the inner wall of the slide groove 801, thereby driving the connecting rod 8 to slide, thereby driving the guide rod 802 to slide on the processing table 2; the raised column 701 will also slide in the slide groove 801 at the same time; the rotating rod 7 rotates one circle, and through the sliding engagement of the raised column 701 and the slide groove 801, it can drive the connecting rod 8 to slide back and forth once, thereby driving the mounting plate 9 to slide back and forth once, so that the blade 10 can slide back and forth once in the slitting groove 202. During the sliding process of the blade 10, the red dates will be cut and slit.
[0060] The slitting mechanism drives the blade 10 to slide back and forth to slit the red dates in the loading rack 13, which can effectively improve the slitting efficiency. The slit depth and width of the slit red dates are relatively uniform, which is convenient for the subsequent walnut stuffing process.
[0061] As a further solution of the present invention, one rotation of the second pulley 501 can drive the third pulley 601 to rotate four times.
[0062] In this embodiment, since the driving wheel 3 cooperates with the first driven wheel 4 and the second driven wheel 5 once during one rotation, the second driven wheel 5 drives the second pulley 501 to rotate a quarter of a circle, and then drives the second rotating shaft 6 to rotate one circle through the speed-increasing effect of the second pulley 501 and the third pulley 601, thereby driving the rotating rod 7 to rotate one circle, thereby driving the blade 10 to slide back and forth once in the slitting groove 202.
[0063] As a further solution of the present invention, a screw column 901 is rotatably mounted on the mounting plate 9 ; an internal threaded sleeve 803 threadedly matched with the screw column 901 is fixedly mounted on the connecting rod 8 .
[0064] In this embodiment, the screw column 901 is rotated and driven to slide in the internal threaded sleeve 803 through threaded engagement, thereby driving the mounting plate 9 to move closer to or away from the connecting rod 8, so that the blade 10 moves closer to or away from the connecting rod 8, thereby reducing or increasing the height of the blade 10 exposed outside the processing table 2, thereby reducing or increasing the depth of the slit.
[0065] By rotating the screw column 901, the blade 10 is driven to move closer to or away from the connecting rod 8, thereby reducing or increasing the height of the blade 10 exposed from the processing table 2, so as to score red dates of different sizes, thereby improving the practicality of the scoring device.
[0066] As a further solution of the present invention, a slot 1301 is provided on the loading frame 13 to facilitate the sliding of the blade 10 .
[0067] In this embodiment, the opening of the notch 1301 enables the blade 10 to pass through the loading rack 13 during the reciprocating sliding process to cut and score the red dates located at the edge of the loading rack 13, which can effectively avoid missing cuts and improve the scoring efficiency of the device.
[0068] The above embodiments are exemplary rather than restrictive, so any technical solution of the present invention that can be implemented in other specific forms without departing from the spirit or basic features of the present invention is included in the present invention.
Claims
1. A device for scoring the surface of red dates for use in the production of walnut-stuffed dates, comprising a chassis (1), and a processing table (2) fixedly mounted on the chassis (1); It is characterized by: A discharge ramp (201) is fixedly mounted on the processing table (2); a plurality of scoring grooves (202) are provided on the processing table (2); The processing table (2) is provided with multiple groups of loading racks (13); A mounting plate (9) is provided on the chassis (1), and a plurality of blades (10) are fixedly mounted on the mounting plate (9), wherein the blades (10) are slidably engaged with the slit grooves (202); A transport mechanism is provided in the chassis (1), and the transport mechanism is capable of driving the loading frame (13) to rotate; A notching mechanism cooperating with the transport mechanism is provided in the chassis (1), and the notching mechanism can drive the mounting plate (9) to reciprocate, thereby driving the blade (10) to slide back and forth in the notching groove (202).
2. The device for scoring the surface of red dates for producing walnut-stuffed dates according to claim 1, characterized in that: A driving wheel (3) is rotatably mounted in the chassis (1), and a first driven wheel (4) and a second driven wheel (5) that cooperate with the driving wheel (3) are rotatably mounted in the chassis (1); a first pulley (401) is fixedly mounted on the first driven wheel (4), and a second pulley (501) is fixedly mounted on the second driven wheel (5).
3. The device for scoring the surface of red dates for producing walnut-stuffed dates according to claim 2, characterized in that: The transport mechanism comprises a second rotating shaft (11) rotatably mounted on the chassis (1); a fixed block (12) rotatably engaged with the processing table (2) is fixedly mounted on the second rotating shaft (11); a plurality of groups of loading racks (13) are fixedly mounted on the fixed block (12), and the plurality of groups of loading racks (13) are equidistantly distributed on the circumference of the fixed block (12); a fourth pulley (1101) is fixedly mounted on the second rotating shaft (11); the fourth pulley (1101) is connected to the first pulley (401) via a belt.
4. The device for scoring the surface of red dates for producing walnut-stuffed dates according to claim 2, characterized in that: The slotting mechanism comprises a first rotating shaft (6) rotatably mounted on the chassis (1); a third pulley (601) is fixedly mounted on the first rotating shaft (6), and the second pulley (501) is connected to the third pulley (601) via a belt; a rotating rod (7) is fixedly mounted on the first rotating shaft (6), a raised column (701) is fixedly mounted on the rotating rod (7), and a plurality of guide rods (802) are slidably engaged on the processing table (2); the plurality of guide rods (802) are fixedly mounted on a connecting rod (8), and the connecting rod (8) is connected to the mounting plate (9); a sliding groove (801) is provided on the connecting rod (8) and is slidably engaged with the raised column (701).
5. The device for scoring the surface of red dates for producing walnut-stuffed dates according to claim 4, characterized in that: One rotation of the second pulley (501) can drive the third pulley (601) to rotate four times.
6. The device for scoring the surface of red dates for producing walnut-stuffed dates according to claim 4, characterized in that: A screw column (901) is rotatably mounted on the mounting plate (9); and an internal threaded sleeve (803) threadably matched with the screw column (901) is fixedly mounted on the connecting rod (8).
7. The device for scoring the surface of red dates for producing walnut-stuffed dates according to claim 1, characterized in that: The loading frame (13) is provided with a notch (1301) for facilitating the sliding of the blade (10).