Intelligent micro-factory
By designing a fully enclosed protective cabinet and dust collection system, the existing industrial robot training platform is solved, and the problems of insufficient functions and major safety hazards are achieved, efficient dust management and full offline operation are achieved, which is suitable for the personalized and customized needs of the education industry.
Patent Information
- Application Number
- CN202421758689.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-24
- Publication Date
- 2025-05-02
- Estimated Expiration
- 2034-07-24
AI Technical Summary
The existing industrial robot training platform is not complete enough, has great safety risks, and cannot meet the personalized and customized needs of the education industry.
An intelligent microfactory was designed, using a fully enclosed protective cabinet and dust collection system, combined with a chip control system, to achieve full offline operation and efficient dust management.
It improves safety and environmental performance during processing, realizes convenience of completely offline operation and efficient dust management, which is suitable for personalized and customized needs of the education industry.
Smart Images

Figure CN222826008U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to an intelligent micro-factory, belonging to the product field of educational equipment industry. Background Art
[0002] At present, there are few similar products developed and designed specifically for the field of educational equipment in the market. Most of them directly use similar industrial products or hand-made products at home for use in the field of educational equipment. With the gradual fragmentation of the market and the diversification of consumer demand, personalized and customized products have become a new trend. Smart micro factories can meet these highly personalized needs through flexible production methods and the ability to quickly respond to market changes.
[0003] According to the simulated intelligent factory micro-teaching platform disclosed in Chinese invention patent CN114267238A, the present invention discloses a simulated intelligent factory micro-teaching platform, including a workbench, an engraving component is fixedly installed on one side of the upper surface of the workbench, a parallel four-axis robot is installed on the engraving component, a solenoid valve group is arranged on one side of the engraving component, an assembly plate is fixedly installed on the other side of the engraving component, a transplanting component is fixedly installed on the side of the assembly plate away from the engraving component, a fixture parking component is arranged on the top of the transplanting component, and a stacking component is arranged on one side of the fixture parking component. The simulated intelligent factory micro-teaching platform of the present invention solves the problem that the existing industrial robot training platform is not fully functional or not close enough to the actual production of intelligent factories. The equipment adopts a modular design, and various functional modules can be freely combined according to the teaching task needs at different stages. It is flexible and convenient, has good usage diversity, and is suitable for use in teaching activities of intelligent manufacturing.
[0004] Disadvantages of traditional equipment:
[0005] 1. Industrial products are large in size and heavy in weight, which are not convenient for spatial layout and transportation; the education industry does not pursue a large processing range like industrial production; the education industry is mainly used for teaching practice, and they often focus on processing models or smaller products, and the use sites are often limited by space. The area of a classroom is mostly around 96 square meters, so such a comprehensive practice space can only be equipped with small products.
[0006] 2. Industrial products are not adequately protected and have a low safety factor. Industrial products are affected by the large size of the equipment, and their processing areas are open structures. During equipment operation, its beams and spindles are in a high-speed moving state, and the spindle cutter head will produce debris flying during the cutting process. During teaching, students usually have to stand next to the equipment to study, so this open structure poses a greater safety hazard.
[0007] 3. Although handmade products at home are small in size, they have low precision, poor convenience and low safety factor; DIY products are cheap, have low precision, cannot be operated offline, need to be connected to a computer, are cumbersome to operate, and can only meet the low-frequency use needs of individual enthusiasts.
[0008] 4. Similar products on the market are poorly designed in terms of dust and noise pollution during processing, and there is no very effective integrated solution. Utility Model Content
[0009] The technical problems to be solved by the utility model are:
[0010] 1. The built-in dust collection system of this product can collect the dust and debris generated during the processing into the dust storage bag simultaneously, which greatly reduces the dust pollution and debris splashing problems during the processing and improves the environmental protection and safety performance.
[0011] 2. The control system with the chip as the core realizes completely offline operation, does not require a computer, and is simple and easy to use.
[0012] 3. The original fully enclosed protective cabinet integrates the dust collection system and lighting system, and is designed with movable casters at the bottom, which has very ideal effects in terms of safety, environmental protection and convenience.
[0013] The utility model discloses an intelligent micro-factory, comprising an installation protection frame, wherein the installation protection frame comprises a base cabinet and a protection installation bin;
[0014] The engraving components are installed in the protective installation chamber;
[0015] A vacuum cleaner is arranged in the bottom cabinet. The vacuum cleaner comprises a vacuum cleaner body and a vacuum pipe. The suction end of the vacuum pipe is located at the working end of the engraving component.
[0016] Furthermore, the protective installation bin includes a support frame, and the four sides of the support frame are connected to transparent door panels;
[0017] A reinforced support column is installed in the middle of the transparent door panel on one side.
[0018] Further, the base cabinet includes an electrical layout layer and a main storage layer;
[0019] The dust collection control switch, engraving control switch and lighting control switch are installed on the outside of the electrical layout layer.
[0020] Furthermore, adjustable LED lighting panels are installed on both sides of the top of the protective installation bin, and a supporting beam is provided on the top of the protective installation bin.
[0021] Furthermore, two transparent door panels located at the front and rear sides are hinged to the support frame on the left and right sides;
[0022] The transparent door panel on the left is hinged at the top to the supporting frame.
[0023] Further, the engraving assembly includes a frame, Y-axis tracks are installed on both sides of the frame, and a work surface is provided between the Y-axis tracks;
[0024] The top of the Y-axis track is slidably connected to the gantry, the X-axis track is installed on one side of the gantry, and the control box is installed on the other side of the gantry;
[0025] The Z-axis track is installed outside the X-axis track, and the machine head is installed on the Z-axis track. The machine head can move along the length direction of the Z-axis track.
[0026] Compared with the prior art, the beneficial effects of the utility model are:
[0027] The utility model discloses an intelligent micro-factory, wherein a protective frame is installed to provide an installation structure for the engraving component, and at the same time, the debris generated by the engraving component is prevented from causing damage to external operators. The engraving component is used to engrave wooden engraving materials; the bottom cabinet is used to place the vacuum cleaner body, and the vacuum duct is used to absorb and discharge the debris generated by the engraving component. The dust collection system of the utility model can synchronously collect the dust and debris generated during the processing into the dust storage bag, and prevent the engraving debris from injuring the observer. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 It is a three-dimensional diagram of the first embodiment of the utility model;
[0029] Figure 2 This is a front view of the first embodiment of the present utility model;
[0030] Figure 3 It is a top view of the first embodiment of the utility model;
[0031] Figure 4 It is a left side view of the first embodiment of the utility model;
[0032] Figure 5 It is a right side view of the first embodiment of the utility model;
[0033] Figure 6 It is a rear view of the first embodiment of the utility model;
[0034] Figure 7 It is a bottom view of the first embodiment of the present utility model.
[0035] In the picture: 1. Install the protective frame; 2. Carving components; 3. Vacuum cleaner; 4. Adjustable LED lighting panel; 5. Support beam;
[0036] 11. Base cabinet; 12. Protective installation compartment; 13. Support frame; 14. Transparent door panel; 15. Support column;
[0037] 111. Electrical layout layer; 112. Main storage layer; 113. Vacuum control switch; 114. Engraving control switch; 115. Lighting control switch;
[0038] 21. Frame; 22. Y-axis track; 23. Work surface; 24. Gantry; 25. X-axis track; 26. Control box; 27. Z-axis track; 28. Machine head;
[0039] 31. Vacuum cleaner body; 32. Dust collection duct. DETAILED DESCRIPTION
[0040] Embodiment 1
[0041] like Figures 1 to 7 As shown, a smart micro-factory described in the utility model includes an installation protection frame 1, and the installation protection frame 1 includes a base cabinet 11 and a protection installation bin 12;
[0042] The engraving assembly 2 is installed in the protective installation chamber 12;
[0043] A vacuum cleaner 3 is arranged in the bottom cabinet 11 . The vacuum cleaner 3 comprises a vacuum cleaner body 31 and a vacuum pipe 32 . The suction end of the vacuum pipe 32 is located at the working end of the engraving component 2 .
[0044] The installation protection frame 1 provides a mounting structure for the carving component 2 and prevents debris generated by the carving component 2 from causing damage to external operators. The carving component 2 is used to carve wooden carving materials;
[0045] The bottom cabinet 11 is used to place the vacuum cleaner body 31 , and the vacuum duct 32 is used to absorb and discharge the debris generated by the engraving component 2 .
[0046] like Figures 1 to 7 As shown, as an optimization, the protective installation bin 12 includes a support frame 13, and the four sides of the support frame 13 are connected to transparent door panels 14;
[0047] A reinforcing support column 15 is installed in the middle of the transparent door panel 14 on one side.
[0048] The support frame 13 is used to hinge the transparent door panel 14, which plays a role in protecting the internal engraving component 2. At the same time, the transparent door panel 14 can facilitate real-time observation of the internal engraving component 2;
[0049] The reinforcing support columns 15 are used to structurally reinforce the transparent door panels 14 on both sides. At the same time, the reinforcing support columns 15 play the role of binding the dust collection duct 32 .
[0050] like Figures 1 to 7 As shown, as an optimization, the bottom cabinet 11 includes an electrical layout layer 111 and a main storage layer 112;
[0051] A dust collection control switch 113 , a carving control switch 114 and a lighting control switch 115 are respectively installed on the outer side of the electrical arrangement layer 111 .
[0052] The electrical layout layer 111 is used to seal and protect the electronic components of the vacuum control switch 113, the engraving control switch 114 and the lighting control switch 115 to avoid damage during use;
[0053] The dust control switch 113 is used to control the start and stop of the dust collector 3, thereby controlling whether the working end of the engraving component 2 absorbs impurities after engraving;
[0054] The engraving control switch 114 is used to control the start and stop of the engraving assembly 2, thereby controlling the start and stop of the engraving process;
[0055] The lighting control switch 115 is used to control the start and stop of the adjustable LED lighting panel 4 located on the top of the supporting frame 13 .
[0056] like Figures 1 to 7 As shown, as an optimization, adjustable LED lighting panels 4 are installed on both sides of the top of the protective installation compartment 12, and a supporting beam 5 is provided on the top of the protective installation compartment 12.
[0057] The adjustable LED lighting panel 4 can rotate the lighting panel along the X-axis to control the lighting range and brightness.
[0058] like Figures 1 to 7 As shown, as an optimization, two transparent door panels 14 located at the front and rear sides are hinged to the support frame 13;
[0059] The top of the transparent door panel 14 on the left side is hinged on the supporting frame 13 .
[0060] The two transparent door panels 14 on the left and right sides are hinged at the top, and the transparent door panels 14 can be opened and closed up and down for the installation of the carving component 2 itself; the two transparent door panels 14 on the front and back sides can be pushed open and closed, so as to be used for the installation and removal of the wood to be carved on the carving component 2.
[0061] like Figures 1 to 7 As shown, as an optimization, the engraving assembly 2 includes a frame 21, Y-axis rails 22 are installed on both sides of the frame 21, and a work surface 23 is provided between the Y-axis rails 22;
[0062] The top of the Y-axis track 22 is slidably connected to the gantry 24, an X-axis track 25 is installed on one side of the gantry 24, and a control box 26 is installed on the other side of the gantry 24;
[0063] A Z-axis track 27 is installed outside the X-axis track 25 , and a machine head 28 is installed on the Z-axis track 27 . The machine head 28 can move along the length direction of the Z-axis track 27 .
[0064] The frame 21 is used to install the work table 23. The Y-axis tracks 22 installed on both sides of the work table 23 can enable the head 28 to move in the Y-axis direction; the gantry 24 is used to support and install the control box 26, the X-axis track 25, the Z-axis track 27 and the head 28; the X-axis track 25 can enable the head 28 to move along the X-axis, and the Z-axis track 27 can enable the head 28 to move along the Z-axis. The head 28 assembly is used to carve the wooden material to be carved into a specified shape.
[0065] Working process or working principle:
[0066] Open the transparent door panels 14 on the left and right sides of the installation protection frame 1, put the engraving assembly 2 into the protection installation bin 12, and install the engraving assembly 2; open the transparent door panels 14 on the front and back sides, install the wood material to be engraved on the work surface 23, and close the transparent door panels 14 on the front, back, left and right sides;
[0067] The vacuum cleaner body 31 at the bottom is turned on through the vacuum control switch 113, and the lighting switch is turned on while the vacuum cleaner 3 system is turned on. Finally, the engraving process begins. The suction wind generated by the vacuum cleaner body 31 sucks the debris generated by the engraving component 2 into the vacuum cleaner body 31 through the vacuum pipe 32; the transparent door body plays a protective role to prevent the wood debris generated by the engraving from splashing and injuring the operator.
[0068] The description of the direction and relative position relationship of the structure in the present invention, such as the description of front, back, left, right, up, and down, does not constitute a limitation of the present invention, but is only for the convenience of description.
Claims
1. A smart micro-factory, characterized in that: It comprises an installation protection frame (1), wherein the installation protection frame (1) comprises a base cabinet (11) and a protection installation compartment (12); The engraving assembly (2) is installed in the protective installation chamber (12); A vacuum cleaner (3) is arranged in the bottom cabinet (11), and the vacuum cleaner (3) comprises a vacuum cleaner body (31) and a vacuum duct (32), wherein the suction end of the vacuum duct (32) is located at the working end of the engraving component (2).
2. The smart micro-factory according to claim 1, characterized in that: The protective installation bin (12) comprises a support frame (13), and the four sides of the support frame (13) are connected to transparent door panels (14); A strengthening support column (15) is installed in the middle of the transparent door panel (14) on one side.
3. The smart micro-factory according to claim 2, characterized in that: The base cabinet (11) includes an electrical storage layer (111) and a main storage layer (112); A dust collection control switch (113), a carving control switch (114) and a lighting control switch (115) are respectively installed on the outer side of the electrical arrangement layer (111).
4. The smart micro-factory according to claim 3, characterized in that: Adjustable LED lighting panels (4) are installed on both sides of the top of the protection installation bin (12), and a supporting crossbeam (5) is provided on the top of the protection installation bin (12).
5. The smart micro-factory according to claim 4, characterized in that: Two transparent door panels (14) located at the front and rear sides are hinged to the support frame (13) on the left and right sides; The top of the transparent door panel (14) on the left side is hinged on the supporting frame (13).
6. The smart micro-factory according to claim 1, characterized in that: The engraving assembly (2) comprises a frame (21), Y-axis rails (22) are installed on both sides of the frame (21), and a working table (23) is provided between the Y-axis rails (22); The top of the Y-axis track (22) is slidably connected to the gantry (24), an X-axis track (25) is installed on one side of the gantry (24), and a control box (26) is installed on the other side of the gantry (24); A Z-axis track (27) is installed outside the X-axis track (25), and a machine head (28) is installed on the Z-axis track (27). The machine head (28) can move along the length direction of the Z-axis track (27).
Citation Information
Patent Citations
Simulation intelligent factory miniature teaching platform
CN114267238A