Quantitative section cutting device for gastrodia elata
By designing a quantitative cutting device for Gastrodia elata, and utilizing the combination of a worm gear transmission mechanism and a sliding baffle, the problem of feed blockage in the Gastrodia elata cutting machine was solved, achieving quantitative feeding and cutting, reducing the difficulty of operation, and improving cutting efficiency.
Patent Information
- Application Number
- CN202423200379.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2034-12-25
AI Technical Summary
The existing Gastrodia elata segmenting machine is prone to clogging during the feeding process, resulting in poor cutting effect. It requires highly skilled operators, which is time-consuming and increases the difficulty of operation.
A quantitative segmentation device for Gastrodia elata was designed, including a slitting machine body, a discharge port, a feeding bin, a drive motor, a transmission box, a sliding baffle, an auxiliary feeding component, and a partitioning component. The drive motor drives the worm gear and worm wheel transmission mechanism to make the feeding plate vibrate and quantitatively feed the material, and quantitative segmentation is achieved by the up and down movement of the sliding baffle.
This technology enables smooth feeding and quantitative cutting of Gastrodia elata raw materials, reduces operational difficulty, minimizes manual intervention, and improves cutting efficiency.
Smart Images

Figure CN223763341U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of medicinal material cutting technology, and more specifically, it relates to a quantitative cutting device for Gastrodia elata. Background Technology
[0002] After mature harvesting, Gastrodia elata has a relatively short shelf life and is prone to moisture, mold, or spoilage. By slicing and drying it, the shelf life of Gastrodia elata can be greatly extended, making it easier to store and package. Herb slicing machines are commonly used devices for slicing Gastrodia elata. They generally consist of an outer shell, a feed inlet, a discharge outlet, and internal cutting blades.
[0003] Based on the above, if too much raw material is fed into the feed inlet of the cutting machine at one time during the process of cutting Gastrodia elata, it is very easy to cause the feed inlet to become blocked, which will have an adverse effect on the cutting effect. Therefore, for the feeding of Gastrodia elata, the staff needs to control the amount of material fed each time with a high degree of operational proficiency. This requirement not only increases the difficulty of operation, but also greatly consumes the staff's energy. Utility Model Content
[0004] To address the aforementioned technical problems, this utility model provides a quantitative segmentation device for Gastrodia elata, which solves the problem that in the existing process of cutting Gastrodia elata, if too much raw material is fed into the feed inlet of the segmentation machine at one time, it is very easy to cause blockage of the feed inlet, which will have an adverse effect on the cutting effect. Therefore, the feeding process of Gastrodia elata requires the operator to have a high level of operational skill to control the amount of material fed each time. This requirement not only increases the difficulty of operation, but also greatly consumes the operator's energy.
[0005] The purpose and effect of this utility model's quantitative segmentation device for Gastrodia elata are achieved through the following specific technical means:
[0006] A device for quantitatively slicing Gastrodia elata, comprising a slicing machine body;
[0007] The discharge port is fixedly connected to the right side of the slitting machine body;
[0008] The feeding hopper is fixedly connected to the main body of the slitting machine;
[0009] A drive motor is fixedly connected to the front of the slitting machine body;
[0010] A transmission box, which is fixedly connected to the front of the slitting machine body;
[0011] The first transmission worm gear is coaxially and fixedly connected to the end of the drive motor shaft;
[0012] Two sliding baffles are provided, and the two sliding baffles are slidably connected inside the feed hopper.
[0013] An auxiliary feeding assembly is disposed inside the feeding hopper and the transmission box;
[0014] A partition material distribution assembly is disposed inside and in front of the feed hopper.
[0015] Furthermore, the auxiliary feeding assembly includes:
[0016] A connecting shaft is rotatably connected inside the transmission box, and the left end of the connecting shaft is coaxially and fixedly connected to the right end of the first transmission worm.
[0017] The second transmission worm gear is coaxially and fixedly connected to the right end of the connecting shaft.
[0018] Furthermore, the auxiliary feeding assembly also includes:
[0019] The first drive shaft is provided in two parts, and the two parts of the first drive shaft are rotatably connected to the bottom of the feed hopper.
[0020] The transmission worm gear consists of two parts, which are coaxially fixedly connected to the front ends of two first transmission shafts. The two transmission worm gears mesh with the first transmission worm and the second transmission worm, respectively.
[0021] The transmission cam is provided in two sets, with two pieces in each set. The two sets of transmission cams are coaxially and fixedly connected to the outside of two first transmission shafts.
[0022] Furthermore, the auxiliary feeding assembly also includes:
[0023] A connecting spring is provided, and multiple connecting springs are distributed and fixedly connected to the bottom of the feed hopper at their bottoms;
[0024] A material placement plate, which is fixedly connected to multiple connecting springs.
[0025] Furthermore, the partition material distribution assembly includes:
[0026] A reciprocating lead screw, the upper and lower ends of which are respectively rotatably connected to the inside of the transmission box and the top of the slitting machine body;
[0027] A driving bevel gear, which is coaxially and fixedly connected to the right side of the second transmission worm;
[0028] The driven bevel gear is coaxially and fixedly connected to the top of the reciprocating lead screw, and the driven bevel gear meshes with the driving bevel gear.
[0029] Furthermore, the partition material distribution assembly also includes:
[0030] A connector, the upper end of which is fixedly connected to the front top of the upper sliding baffle, and the lower end of which is fixedly connected to the front bottom of the lower sliding baffle;
[0031] A transmission slider is fixedly connected to the bottom front of the connector and is threadedly connected to a reciprocating lead screw.
[0032] Compared with the prior art, the present invention has the following beneficial effects:
[0033] First, a long, inclined feeding hopper is provided. After the Gastrodia elata is placed into the feeding plate of the feeding hopper, the drive motor can drive the feeding plate to vibrate up and down through the auxiliary feeding component, so that the Gastrodia elata raw material can flow smoothly to the connection between the right feeding hopper and the main body of the slitting machine.
[0034] Secondly, driven by the partition material distribution component, the two sliding baffles can move up and down simultaneously. When they move upward, the Gastrodia elata raw material between the two sliding baffles will flow into the body of the slitting machine for slitting. When they move downward, the Gastrodia elata raw material on the left side of the left sliding baffle will flow to the right side into the space between the two sliding baffles, completing a quantitative feeding and storage process.
[0035] This invention only requires feeding material into the feeding hopper. The material can move smoothly to the right by the up and down vibration of the feeding plate. Furthermore, the feeding material can flow into the main body of the slitting machine in a quantitative manner through the separation of two sliding baffles. There is no need for manual quantitative feeding, which greatly reduces the difficulty of operation. Attached Figure Description
[0036] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0037] Figure 2 This is a schematic diagram of the feeding hopper structure of this utility model.
[0038] Figure 3 This is a schematic diagram of the material placement plate structure of this utility model.
[0039] Figure 4 This is a schematic diagram of the connector structure of this utility model.
[0040] Figure 5 This is a schematic diagram of the reciprocating lead screw structure of this utility model.
[0041] Figure 6 This is a schematic diagram of the structure of the two sliding baffles of this utility model in the raised state.
[0042] In the diagram, the correspondence between component names and drawing numbers is as follows:
[0043] 1. Slitting machine body; 101. Discharge port; 2. Feed hopper; 3. Drive motor; 4. Transmission box; 5. First transmission worm; 501. Connecting shaft; 502. Second transmission worm; 503. Driving bevel gear; 6. First transmission shaft; 601. Transmission worm wheel; 602. Transmission cam; 7. Connecting spring; 701. Material placement plate; 8. Reciprocating screw; 801. Driven bevel gear; 9. Sliding baffle; 10. Connecting part; 1001. Transmission slider. Detailed Implementation
[0044] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.
[0045] Example 1:
[0046] As attached Figure 1 To be continued Figure 6 As shown:
[0047] This utility model provides a quantitative segmentation device for Gastrodia elata, including a slicing machine body 1;
[0048] The discharge port 101 is fixedly connected to the right side of the slitting machine body 1;
[0049] Feeding bin 2 is fixedly connected to the main body 1 of the slitting machine;
[0050] Drive motor 3 is fixedly connected to the front of the slitting machine body 1;
[0051] Transmission box 4 is fixedly connected to the front of the slitting machine body 1;
[0052] The first transmission worm 5 is coaxially and fixedly connected to the end of the drive motor 3 shaft.
[0053] Two sliding baffles 9 are provided, and the two sliding baffles 9 are slidably connected inside the feed hopper 2.
[0054] An auxiliary feeding assembly is located inside the feeding hopper 2 and the transmission box 4.
[0055] The auxiliary feeding components include:
[0056] A connecting shaft 501 is rotatably connected inside the transmission box 4, and the left end of the connecting shaft 501 is coaxially fixedly connected to the right end of the first transmission worm 5.
[0057] The second transmission worm 502 is coaxially and fixedly connected to the right end of the connecting shaft 501. Its function is to drive the motor 3 to start, which can drive the first transmission worm 5, the connecting shaft 501 and the second transmission worm 502 to rotate synchronously.
[0058] The auxiliary feeding assembly also includes:
[0059] The first drive shaft 6 is provided in two parts, and the two first drive shafts 6 are rotatably connected to the bottom of the feed hopper 2.
[0060] Two transmission worm gears 601 are provided. The two transmission worm gears 601 are coaxially fixedly connected to the front end of the two first transmission shafts 6 respectively. The two transmission worm gears 601 mesh with the first transmission worm 5 and the second transmission worm 502 respectively.
[0061] The transmission cam 602 is provided in two sets, with two pieces in each set. The two sets of transmission cams 602 are coaxially fixedly connected to the outside of the two first transmission shafts 6. The function is that the rotation of the first transmission worm 5 and the second transmission worm 502 will drive the two first transmission shafts 6 to rotate through the worm gear transmission mechanism formed by meshing with the two transmission worm wheels 601, thereby driving the two sets of transmission cams 602 to rotate.
[0062] The auxiliary feeding assembly also includes:
[0063] Connecting spring 7, multiple connecting springs 7 are provided, and the bottom of the multiple connecting springs 7 are distributed and fixedly connected to the bottom of the feed hopper 2;
[0064] The material placement plate 701 is fixedly connected to multiple connecting springs 7. Its function is that when the transmission cam 602 rotates to contact the material placement plate 701, it will drive the material placement plate 701 to move up and down, so that the gastrodia elata raw material on the material placement plate 701 can move more smoothly to the right. The connecting springs 7 can ensure that when the transmission cam 602 is no longer in contact with the material placement plate 701, the material placement plate 701 can quickly move down and reset.
[0065] The specific usage and function of this embodiment are as follows:
[0066] In use, after placing the Gastrodia elata raw material in the feeding hopper 2, the raw material falls onto the placing plate 701. Start the slitting machine body 1 and drive motor 3. The drive motor 3 can drive the first transmission worm 5, the connecting shaft 501 and the second transmission worm 502 to rotate synchronously. The rotation of the first transmission worm 5 and the second transmission worm 502 will drive the two first transmission shafts 6 to rotate through the worm gear transmission mechanism formed by meshing with the two transmission worm wheels 601 respectively, thereby driving the two sets of transmission cams 602 to rotate. When the transmission cams 602 rotate to contact the placing plate 701, they will drive the placing plate 701 to move up and down, so that the Gastrodia elata raw material on the placing plate 701 can move more smoothly to the right. The connecting spring 7 can ensure that when the transmission cams 602 are no longer in contact with the placing plate 701, the placing plate 701 can quickly move downward and reset.
[0067] Example 2:
[0068] Based on Example 1, as shown in the appendix Figure 1 To be continued Figure 6 As shown, it also includes a partition material distribution component, which is located inside and in front of the feed hopper 2.
[0069] The partition material distribution component includes:
[0070] The reciprocating screw 8 is rotatably connected at its upper and lower ends to the inside of the transmission box 4 and the top of the slitting machine body 1, respectively.
[0071] The active bevel gear 503 is coaxially and fixedly connected to the right side of the second transmission worm gear 502.
[0072] Driven bevel gear 801 is coaxially fixedly connected to the top of reciprocating screw 8. Driven bevel gear 801 meshes with driving bevel gear 503. The effect is that when the drive motor 3 starts, it will also drive the driving bevel gear 503 to rotate. The rotation of driving bevel gear 503 will drive the reciprocating screw 8 to rotate through the bevel gear transmission mechanism formed together with driven bevel gear 801.
[0073] The partition material distribution assembly also includes:
[0074] Connector 10, the upper end of connector 10 is fixedly connected to the front top of the upper sliding baffle 9, and the lower end of connector 10 is fixedly connected to the front bottom of the lower sliding baffle 9;
[0075] The transmission slider 1001 is fixedly connected to the bottom front of the connector 10. The transmission slider 1001 is threadedly connected to the reciprocating screw 8. Its function is that, under the guidance of the sliding baffle 9, the rotation of the reciprocating screw 8 will drive the connector 10 to move up and down through the threaded transmission mechanism formed by the transmission slider 1001, thereby driving the two sliding baffles 9 to move synchronously.
[0076] The specific usage and function of this embodiment are as follows:
[0077] When the drive motor 3 starts, it also drives the active bevel gear 503 to rotate. The rotation of the active bevel gear 503 drives the reciprocating screw 8 to rotate through the bevel gear transmission mechanism formed together with the driven bevel gear 801. Under the sliding guide of the sliding baffle 9, the rotation of the reciprocating screw 8 drives the connecting piece 10 to move upward through the threaded transmission mechanism formed together with the transmission slider 1001. This causes the two sliding baffles 9 to move upward. The upward movement of the left sliding baffle 9 will block the gastrodia elata raw material on the left side, while the upward movement of the right sliding baffle 9 will allow the gastrodia elata raw material between the two sliding baffles 9 to flow smoothly into the body 1 of the slitting machine for slitting. After the transmission slider 1001 moves to the top, it moves downward again, which can drive the two sliding baffles 9 to move downward, so that the gastrodia elata raw material on the left side of the left sliding baffle 9 flows to the right side. When the right sliding baffle 9 moves downward back to its original position, it will block the gastrodia elata material again, completing one quantitative feeding process.
[0078] The following points should be noted in this article:
[0079] 1. The accompanying drawings of the embodiments disclosed herein only relate to the structures involved in the embodiments disclosed herein; other structures can be referred to in a general design.
[0080] 2. Where there is no conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0081] The above are merely specific embodiments of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. A ginseng quantitative cutting device, comprising a cutting machine main body, an outlet, an inlet bin, a driving motor, a transmission box, a first transmission worm, a sliding baffle, an auxiliary feeding assembly and a partitioned feeding assembly; the outlet is fixedly connected to the right side of the cutting machine main body; characterized in that: The feeding bin is fixedly connected above the slitting machine body; the driving motor is fixedly connected in front of the slitting machine body; the transmission box is fixedly connected in front of the slitting machine body; the first transmission worm is coaxially fixedly connected at the end of the driving motor shaft; the two sliding baffles are dispersively and slidingly connected inside the feeding bin; the auxiliary feeding assembly is arranged inside the feeding bin and the transmission box; and the partition and distributing assembly is arranged inside and in front of the feeding bin.
2. The quantitative segmentation device for Gastrodia elata as described in claim 1, characterized in that: The auxiliary feeding assembly comprises a connecting shaft and a second transmission worm; the connecting shaft is rotatably connected inside the transmission box, and the left end of the connecting shaft is coaxially fixedly connected with the right end of the first transmission worm; and the second transmission worm is coaxially fixedly connected with the right end of the connecting shaft.
3. The quantitative segmentation device for Gastrodia elata as described in claim 2, characterized in that: The auxiliary feeding assembly further comprises a first transmission shaft, a transmission worm and a transmission cam; the two first transmission shafts are dispersively and rotatably connected at the bottom of the feeding bin; the two transmission worms are coaxially fixedly connected with the front ends of the two first transmission shafts respectively, and the two transmission worms are engaged with the first transmission worm and the second transmission worm respectively; and the two groups of transmission cams are coaxially fixedly connected with the outer sides of the two first transmission shafts respectively.
4. The ginseng portioning and slicing apparatus of claim 3, wherein: The auxiliary feeding assembly further comprises connecting springs and a material placing plate; the multiple connecting springs are dispersively and fixedly connected at the bottom of the feeding bin; and the material placing plate is fixedly connected above the connecting springs.
5. The quantitative segmentation device for Gastrodia elata as described in claim 1, characterized in that: The partition and distributing assembly comprises a reciprocating screw, a driving bevel gear and a driven bevel gear; the reciprocating screw is rotatably connected with the transmission box inside and the slitting machine body top respectively; the driving bevel gear is coaxially fixedly connected with the right side of the second transmission worm; the driven bevel gear is coaxially fixedly connected with the top of the reciprocating screw, and the driven bevel gear is engaged with the driving bevel gear.
6. The ginseng portioning and slicing apparatus of claim 5, wherein: The partition and distributing assembly further comprises a connecting piece and a transmission sliding block; the upper end of the connecting piece is fixedly connected with the top of the upper sliding baffle in front, the lower end of the connecting piece is fixedly connected with the bottom of the lower sliding baffle in front, the transmission sliding block is fixedly connected with the bottom of the connecting piece in front, and the transmission sliding block is threadedly connected with the reciprocating screw.