Litchi peeling machine
By automatically adjusting processing parameters through a visual monitoring camera and efficiently collecting dust with a dust collection component, the problems of material adaptability and environmental pollution in lychee noodle machines have been solved, achieving efficient and environmentally friendly lychee noodle processing.
Patent Information
- Application Number
- CN202521477331.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-15
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-07-15
AI Technical Summary
Existing lychee noodle machines rely on manual experience for setting processing parameters, resulting in uneven textures when processing different materials, poor consistency in finished product quality, and dust accumulation affecting processing accuracy and polluting the environment.
It uses a visual monitoring camera to identify the material in real time, automatically adjusts the processing parameters, and efficiently collects dust through a dust collection component design, including a dual dust inlet and a negative pressure chamber multi-pump structure.
It achieves uniform lychee-like texture on materials of different types, improves the consistency of finished product quality, reduces equipment maintenance difficulty and dust treatment costs, and balances production efficiency and environmental protection.
Smart Images

Figure CN224675221U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of stone processing technology, and in particular to a lychee flour making machine. Background Technology
[0002] The bush-hammered surface machine is a device used for surface processing of materials such as stone and concrete. It uses bush-hammered blades to create regular raised textures (i.e., "bush-hammered surface") on the surface of the material. It is widely used in building decoration, stone processing and other fields.
[0003] Traditional lychee noodle making machines typically include a processing box, a conveying roller, a processing surface, and a lifting mechanism. The conveying roller moves the material horizontally, and the processing surface drives the cutting tools to impact or rub the material surface, thereby achieving lychee noodle processing.
[0004] However, existing lychee noodle machines have the following shortcomings in actual use: First, processing parameters (such as material translation speed and cutting force) usually rely on manual experience for adjustment. For materials of different materials (such as marble, granite, ceramics, etc.), improper parameter settings can easily lead to uneven processing texture and poor consistency of finished product quality. Second, dust generated during processing can easily accumulate in the processing area, which may not only affect the contact accuracy between the cutting tool and the material and reduce the processing effect, but also pollute the working environment and increase the cost of equipment cleaning and maintenance. Utility Model Content
[0005] The technical problem to be solved by this utility model is to overcome the defects of the prior art and provide a lychee noodle machine.
[0006] To solve the above-mentioned technical problems, this utility model provides the following technical solution: This utility model discloses a lychee noodle making machine, comprising a machine body, which is composed of a processing box and a base. The base is equipped with a conveying roller and a conveying motor. The conveying motor is connected to the conveying roller through a transmission mechanism and drives it to rotate, thereby moving the material to be processed horizontally. The processing box is fixedly installed on the top of the base. It is equipped with a processing surface, a processing motor and a lifting screw inside. The processing surface is connected to the processing box through the lifting screw. The processing motor drives the lifting screw to rotate to adjust the vertical height of the processing surface. The bottom end of the processing surface is detachably equipped with a lychee-faced cutting tool for processing the material surface with a lychee-faced finish. An inspection bridge is provided on the front side of the processing box, and a visual monitoring camera is fixedly installed inside the inspection bridge. The camera faces the processing area and is used to monitor the processing status in real time. One end of the processing box is also equipped with a dust collection component for collecting dust generated during the processing.
[0007] As a preferred technical solution of this utility model, the top of the dust collection component is provided with a dust inlet pipe, the upper end of the dust inlet pipe extends into the interior of the processing box, and the pipe body has two symmetrically distributed dust inlets, which are located on both sides inside the processing box.
[0008] As a preferred technical solution of this utility model, the dust collection component is provided with a negative pressure chamber. The negative pressure chamber is a sealed cavity structure, and multiple air pumps are installed side by side inside it. The air inlet of the air pump is connected to the dust inlet pipe. By continuously working in the negative pressure chamber, negative pressure is generated, and the dust in the processing box is sucked into the negative pressure chamber through the dust inlet pipe.
[0009] As a preferred embodiment of this utility model, the conveying rollers are cylindrical rollers arranged in parallel, with both ends connected to the base via bearing seats; the conveying motor is connected to the conveying rollers via chain drive or belt drive to achieve synchronous rotation of multiple conveying rollers.
[0010] As a preferred technical solution of this utility model, the inspection bridge is a bridge-shaped structure arranged horizontally on the top front side of the processing box. A visual monitoring camera is fixedly installed on its internal top wall. The camera is connected to an external control system through a line to transmit real-time images of the processing area to the control terminal.
[0011] Compared with the prior art, the beneficial effects of this utility model are as follows: 1. This utility model achieves intelligent control of the processing process through a visual monitoring camera installed inside the inspection bridge. The camera can acquire images of the material surface in real time and accurately identify the material material (such as marble, granite, etc.) by analyzing features such as color and texture. The control system then automatically matches the optimal processing parameters (such as the translation speed of the conveyor rollers and the processing force of the bush-hammered blade), avoiding errors from manual adjustments and ensuring that materials of different textures can obtain a uniform and regular bush-hammered texture, significantly improving the consistency of finished product quality. 2. This utility model achieves highly efficient purification of the processing environment through a symmetrical layout of dual dust inlets and a multi-pump design within a negative pressure chamber in its dust collection component. The dual dust inlets cover the left and right sides of the processing area, respectively, and the strong suction generated by the multiple pumps within the negative pressure chamber can comprehensively adsorb the dust generated during processing, preventing dust accumulation from affecting the machining accuracy of the cutting tools or polluting the working environment. The centralized discharge design of the bottom exhaust pipe further simplifies the dust cleaning process, reduces equipment maintenance difficulty and dust treatment costs, and balances production efficiency with environmental protection. Attached Figure Description
[0012] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings: Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a cross-sectional view of the processing box structure of this utility model; Figure 3 This is a cross-sectional view of the dust collection component structure of this utility model; In the diagram: 1. Machine body; 2. Processing box; 201. Processing surface; 202. Lifting screw; 203. Dust inlet; 3. Base; 301. Inspection bridge; 302. Visual monitoring camera; 303. Feeding roller; 4. Dust collection assembly; 401. Negative pressure chamber; 402. Discharge pipe. Detailed Implementation
[0013] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0014] In the attached diagram, all identical reference numerals refer to the same components.
[0015] like Figure 1-3 As shown, this utility model provides a lychee noodle machine, the main body 1 of which consists of a processing box 2 and a base 3. The base 3 is a rectangular box structure, inside which multiple parallel cylindrical conveying rollers 303 are horizontally mounted via bearing seats. The two ends of the conveying rollers 303 are connected to the side wall of the base 3 via bearings. A conveying motor is fixedly installed on one side of the base 3. The output shaft of the conveying motor is connected to the roller shaft of each conveying roller 303 via a chain transmission mechanism. The chain enables the synchronous rotation of multiple conveying rollers 303, thereby driving materials such as stone and concrete placed on the conveying rollers 303 to move horizontally.
[0016] The processing box 2 is a vertically oriented box structure, with its bottom end welded and fixed to the top of the base 3. Inside the processing box 2 are a processing surface 201, a processing motor, and a lifting screw 202. The processing surface 201 is a horizontally oriented rectangular steel plate, with a bush-hammered cutting tool detachably mounted at its bottom end via bolts. The surface of the bush-hammered cutting tool has regularly arranged carbide protrusions. Nut seats are welded to the four corners of the processing surface 201. The lifting screw 202 vertically passes through the top wall of the processing box 2 and is threadedly connected to the nut seats. The top of the lifting screw 202 is connected to the output shaft of the processing motor via a coupling. The processing motor is fixedly mounted on the top wall of the processing box 2. By driving the lifting screw 202 to rotate, it causes the processing surface 201 to rise and fall vertically, thereby adjusting the processing distance between the bush-hammered cutting tool and the material surface.
[0017] A horizontal inspection bridge 301 is horizontally installed on the front side of the processing box 2. The inspection bridge 301 is a bridge-shaped steel structure, with both ends welded and fixed to the side wall of the processing box 2. A visual monitoring camera 302 is fixedly installed on the top wall inside the inspection bridge 301 via a bracket. The camera lens faces the processing area, and the signal output end is connected to the external control system via a data cable. The visual monitoring camera 302 has a built-in image sensor and recognition algorithm module, which can collect image data of the material surface in real time. By analyzing information such as the material's color, texture, and reflective properties, it can identify the material material, such as marble, granite, and ceramics; and transmit the recognition results to the control system. The control system automatically adjusts the rotation speed of the material conveying motor and the output torque of the processing motor according to a preset material parameter correspondence table to achieve the optimal processing effect for different materials.
[0018] A dust collection assembly 4 is installed at one end of the processing box 2. The dust collection assembly 4 is a vertically arranged box structure with a dust inlet pipe connected to the top via a flange. The upper end of the dust inlet pipe extends into the interior of the processing box 2, and two symmetrically distributed dust inlets 203 are opened along the material translation direction of the pipe body, located on the left and right sides of the processing area, respectively. A sealed negative pressure chamber 401 is set inside the dust collection assembly 4, and three air pumps are installed side by side in the negative pressure chamber 401. The air inlets of the air pumps are all connected to the lower end of the dust inlet pipe. When the air pumps are working, a negative pressure is generated in the negative pressure chamber 401, which draws the dust in the processing box 2 into the negative pressure chamber 401 through the dust inlet pipe. A discharge pipe 402 is set at the bottom of the dust collection assembly 4. The upper end of the discharge pipe 402 is connected to the bottom of the negative pressure chamber 401, and the lower end extends to the outside of the base 3. A manual control valve is installed in the middle of the pipe body. After processing is completed, the control valve is opened, and the dust collected in the negative pressure chamber 401 can be discharged to the outside of the machine for centralized treatment through the discharge pipe 402.
[0019] The workflow of this embodiment is as follows: The material conveying motor is started, and the material conveying roller 303 moves the material to be processed horizontally into the processing box 2; the visual monitoring camera 302 collects material images in real time, identifies the material, and the control system adjusts the speed of the material conveying motor and the torque of the processing motor; the processing motor drives the lifting screw 202 to rotate, causing the processing surface 201 to descend, and the lychee-faced cutting tool contacts the material surface for processing; simultaneously, the air pump starts, drawing the dust generated during processing into the negative pressure chamber 401 through the dust inlet pipe; after processing is completed, the processing surface 201 rises, the material conveying roller 303 removes the material, and the discharge pipe 402 valve is opened to discharge the dust. Through the above structure and process, adaptive processing of different materials and effective dust collection are achieved.
[0020] This utility model relates to a lychee-textured pasta machine. Through the collaborative design of a visual monitoring camera 302 installed in the inspection bridge 301 and a dust collection component 4, it achieves dual optimization of processing quality and environment. The visual monitoring camera 302 identifies the material material in real time and automatically adjusts processing parameters to ensure that different materials can achieve a uniform lychee-textured texture, significantly improving the consistency of finished product quality. Simultaneously, the dust collection component 4 adopts a symmetrical layout with dual dust inlets 203. Combined with the strong suction generated by multiple air pumps in the negative pressure chamber 401, it can efficiently cover dust on both sides of the processing area, preventing dust accumulation from affecting the machining accuracy of the cutting tools or polluting the working environment. The centralized discharge design of the bottom discharge pipe 402 further reduces the difficulty of equipment maintenance and dust treatment costs, balancing production efficiency and environmental protection.
[0021] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A lychee noodle machine, comprising a machine body (1), said machine body (1) being composed of a processing box (2) and a base (3), characterized in that: The base (3) is equipped with a conveying roller (303) and a conveying motor. The conveying motor is connected to the conveying roller (303) through a transmission mechanism and drives it to rotate, so as to drive the material to be processed to move horizontally. The processing box (2) is fixedly installed on the top of the base (3). Inside it are a processing surface (201), a processing motor and a lifting screw (202). The processing surface (201) is connected to the processing box (2) through the lifting screw (202). The processing motor drives the lifting screw (202) to rotate to adjust the vertical height of the processing surface (201). The bottom end of the processing surface (201) is detachably equipped with a lychee-faced cutting tool for processing the surface of the material with a lychee-faced finish. The front side of the processing box (2) is provided with an inspection bridge (301), and a visual monitoring camera (302) is fixedly installed inside the inspection bridge (301). The camera faces the processing area and is used to monitor the processing status in real time. One end of the processing box (2) is also provided with a dust collection component (4) for collecting dust generated during the processing.
2. The lychee flour machine according to claim 1, characterized in that, The dust collection component (4) is provided with a dust inlet pipe at its top end. The upper end of the dust inlet pipe extends into the processing box (2). The pipe body has two symmetrically distributed dust inlets (203), which are located on both sides inside the processing box (2).
3. The lychee flour machine according to claim 2, characterized in that, The dust collection component (4) is provided with a negative pressure chamber (401). The negative pressure chamber (401) is a sealed cavity structure. Multiple air pumps are installed side by side inside it. The air inlet of the air pump is connected to the dust inlet pipe. By continuously working in the negative pressure chamber (401), negative pressure is generated, and the dust in the processing box (2) is sucked into the negative pressure chamber (401) through the dust inlet pipe.
4. The lychee flour machine according to claim 1, characterized in that, The conveying rollers (303) are cylindrical rollers arranged in parallel, and their two ends are connected to the base (3) through bearing seats; the conveying motor is connected to the conveying rollers (303) through chain drive or belt drive to realize the synchronous rotation of multiple conveying rollers (303).
5. A lychee flour machine according to claim 1, characterized in that, The inspection bridge (301) is a bridge-shaped structure that is horizontally set on the top of the front side of the processing box (2). A visual monitoring camera (302) is fixedly installed on its internal top wall. The camera is connected to the external control system through a line and is used to transmit real-time images of the processing area to the control terminal.