Laser engraving machine with material storage function
By integrating storage structures and height adjustment components on the laser engraving machine, the problem of low efficiency in manual material transfer is solved, automatic storage and efficient material management are achieved, and the needs of different materials are met.
Patent Information
- Application Number
- CN202422648226.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-31
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2034-10-31
AI Technical Summary
Existing laser engraving machines require manual material transfer after engraving, which increases the amount of manual operation and reduces work efficiency, especially in mass production.
Integrating a storage structure into the laser engraving machine, including a storage slot and storage height adjustment components, enables automatic storage and height adjustment of materials, reducing transit time.
It improves production efficiency, reduces the time of manual material transfer, keeps the working environment clean and tidy, and adapts to the storage needs of different types of materials.
Smart Images

Figure CN223301064U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of laser engraving machines, and in particular relates to a laser engraving machine with a material storage function. Background Art
[0002] A laser engraver is a device that uses laser technology to engrave, cut, and mark. It achieves the desired effect by focusing a laser beam on the surface of a material, generating high temperatures that vaporize or melt the material. Laser engravers are widely used in a variety of industries, including manufacturing, advertising, art, crafts, clothing, and electronics.
[0003] For example, a Chinese patent publication numbered CN205309569U discloses an embedded laser engraving machine. The cited document includes a laser engraving machine body, which is composed of a concave base, a vertical plate, and a circuit box.
[0004] After the laser engraving machine in the cited document has engraved the material, it is necessary to manually remove the material and transfer and store it in a storage rack or storage box. However, this type of laser engraving machine does not have a material storage mechanism, so the material needs to be transferred manually. However, manual removal of the material takes time, especially for mass production. This will significantly increase the workload of manual operation and reduce work efficiency. Therefore, in order to solve the above problem, a laser engraving machine with a material storage function is proposed. Utility Model Content
[0005] In response to one or more of the above-mentioned defects or improvement needs of the prior art, the utility model provides a laser engraving machine with a material storage function, which has the advantages of integrating a storage structure on the laser engraving machine to realize material storage, reduce the labor of workers in transporting materials, and improve production efficiency.
[0006] To achieve the above object, the utility model provides a laser engraving machine with a material storage function, comprising four supporting brackets distributed in a rectangular shape; a laser engraving platform is commonly supported on the four supporting brackets;
[0007] A storage slot is provided on the side of the laser engraving platform; an extension base plate is vertically installed between two adjacent support brackets;
[0008] Two sets of storage height adjustment components are mounted on the extended bottom plate, and a mounting frame is mounted on the two sets of storage height adjustment components. A plurality of storage buckets are mounted on the mounting frame. The plurality of storage buckets are arranged horizontally and distributed in the storage tank.
[0009] The two groups of storage height adjustment components each include a reciprocating rotary motor disposed on an extended bottom plate, the reciprocating rotary motor being sheathed with a motor housing and a height adjustment frame being mounted above the motor housing, the height adjustment frame being vertically disposed and having two linear rails disposed parallel to its sides, guide rail sliders being provided on the two linear rails that are engaged and slidably provided thereon;
[0010] The mounting frame includes a frame crossbeam arranged on the side of the guide rail slider, and both ends of the frame crossbeam are integrally protruded with a bracket plate, and a clamping beam is installed between the two bracket plates.
[0011] As a further improvement of the present invention, the storage barrel has a rectangular barrel structure and two side ear plates are integrally provided on its side. The side ear plates are arranged in an inverted U shape with the storage barrel and the side ear plates are embedded in the clamping beam.
[0012] As a further improvement of the present invention, the sides of several side ear plates on the storage barrel are threadedly connected with positioning bolts, and the ends of the positioning bolts pass through the side ear plates and extend to abut against the sides of the clamping beams; several of the storage barrels are horizontally arranged and distributed in the storage tank.
[0013] As a further improvement of the present invention, the storage height adjustment assembly also includes two bearing seats arranged on the side of the height adjustment frame, and a threaded screw is rotatably arranged between the two bearing seats. The threaded screw is engaged with a screw nut on the outside, and the screw nut passes through the guide rail slider and is connected to it; the output end of the reciprocating rotating motor passes through one of the bearing seats and extends to be connected to the bottom end of the threaded screw.
[0014] As a further improvement of the present invention, the upper end surface of the laser engraving platform is provided with a laser engraving machine body, and a plurality of storage barrels are provided on the side of the laser engraving machine body.
[0015] In general, the above technical solutions conceived by the present invention have the following beneficial effects compared with the prior art:
[0016] The laser engraving machine with material storage function of the present invention can be used in actual use. After the user drives the laser engraving machine body to perform laser engraving on the material, the material can be removed and then quickly placed in the storage bucket. The setting of the storage bucket allows the user to quickly store the material, reduce the transportation time, and improve the overall processing efficiency. Moreover, through the detachable installation of the storage bucket on the mounting frame, the user can also match and replace the storage bucket according to the size and storage requirements of the material, so as to adapt to different types of materials and workpieces, thereby better storing the material. Compared with the body setting in the cited document, the present application provides a storage slot on the laser engraving platform, thereby utilizing the storage slot to realize the placement of the storage bucket. Through the opening of the storage slot, the present application can effectively utilize the space next to the engraving body, avoid occupying too much working area, and keep the working environment clean and tidy.
[0017] The laser engraving machine with material storage function of the utility model can also drive two sets of storage height adjustment components during the material storage period. Through the installation between the storage height adjustment components and the mounting frame, the installed mounting frame can perform reciprocating lifting and lowering motion within the travel range of the storage height adjustment components, so that the free height lifting of the storage barrel can be achieved through the installation of the mounting frame and the storage barrel. Through the lifting control, the operator can easily adjust the storage height of the storage barrel, thereby facilitating the taking and placing of materials, reducing the need to bend over or climb, and improving the convenience of storage operations. At the same time, through height lifting, larger storage barrels can be installed in a limited space, thereby making more effective use of vertical space and increasing the storage capacity of the storage barrel. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 This is a schematic diagram of the overall installation structure of the utility model;
[0019] Figure 2 This is a schematic diagram of the structure of the storage tank of the utility model on the support bracket;
[0020] Figure 3 This is a schematic diagram of the installation structure of the storage bucket and the mounting frame of the utility model;
[0021] Figure 4 This is a schematic diagram of the overall installation structure of the storage height adjustment component of the present utility model.
[0022] In all the drawings, the same figure marks represent the same technical features, specifically: 10. Support bracket; 1. Laser engraving platform; 2. Storage tank; 3. Extended base plate; 4. Storage height adjustment assembly; 41. Reciprocating rotating motor; 42. Height adjustment frame; 43. Linear rail; 44. Guide rail slider; 45. Bearing seat; 46. Threaded screw; 47. Screw nut; 5. Mounting frame; 51. Frame crossbeam; 52. Bracket plate; 53. Clamping beam; 6. Storage bucket; 61. Side ear plate; 62. Positioning bolt; 7. Laser engraving machine body. DETAILED DESCRIPTION
[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0024] Example
[0025] Depend on Figure 1-4 A laser engraving machine with a material storage function is provided, comprising four supporting brackets 10 distributed in a rectangular shape; a laser engraving platform 1 is commonly supported on the four supporting brackets 10;
[0026] A storage tank 2 is provided on the side of the laser engraving platform 1; an extension base plate 3 is vertically installed between two adjacent support brackets 10;
[0027] Two sets of storage height adjustment components 4 are mounted on the extended bottom plate 3. A mounting frame 5 is mounted on the two sets of storage height adjustment components 4. A plurality of storage buckets 6 are mounted on the mounting frame 5. The plurality of storage buckets 6 are arranged horizontally and distributed in the storage tank 2.
[0028] The two storage height adjustment assemblies 4 each include a reciprocating rotary motor 41 disposed on the extended base plate 3. The reciprocating rotary motor 41 is provided with a motor housing, and a height adjustment frame 42 is mounted above the motor housing. The height adjustment frame 42 is vertically arranged, and two linear rails 43 are provided parallel to the sides of the height adjustment frame 42. A guide rail slider 44 is provided on the two linear rails 43 to slide together.
[0029] The mounting frame 5 includes a frame crossbeam 51 disposed on the side of the guide rail slider 44 . Both ends of the frame crossbeam 51 are integrally protruded with support plates 52 , and a clamping beam 53 is installed between the two support plates 52 .
[0030] In this embodiment, after the user drives the laser engraving machine body 7 to complete the laser engraving process on the material, the material can be removed and then quickly placed in the storage bucket 6. Through the setting of the storage bucket 6, the user can quickly store the material, reduce the transportation time, and improve the overall processing efficiency. Moreover, through the detachable installation of the storage bucket 6 on the mounting frame 5, the user can also match and replace the storage bucket 6 according to the size and storage requirements of the material to adapt to different types of materials and workpieces, thereby better storing the material. Compared with the body setting in the cited document, this application provides a storage slot 2 on the laser engraving platform 1, thereby utilizing the storage slot 2 to realize the placement of the storage bucket 6. Through the opening of the storage slot 2, the present application can effectively utilize the space next to the engraving body, avoid occupying too much working area, and keep the working environment clean and tidy.
[0031] Furthermore, during the storage of materials, the user can also drive two sets of storage height adjustment components 4. Through the installation between the storage height adjustment components 4 and the mounting frame 5, the installed mounting frame 5 can be lifted and lowered in a reciprocating manner within the travel range of the storage height adjustment component 4. Therefore, through the installation of the mounting frame 5 and the storage bucket 6, the free height lifting of the storage bucket 6 is achieved. Through the lifting control, the operator can easily adjust the storage height of the storage bucket 6, thereby facilitating the taking and placing of materials, reducing the need to bend or climb, and improving the convenience of storage operations. At the same time, through height lifting, a larger storage bucket 6 can be installed in a limited space, thereby making more effective use of the vertical space and increasing the storage capacity of the storage bucket 6.
[0032] Specifically, refer to Figure 1-3 The storage bucket 6 has a rectangular barrel structure and two side ear plates 61 are integrally provided on its side. The side ear plates 61 and the storage bucket 6 are arranged in an inverted U shape and the side ear plates 61 are embedded in the clamping beam 53.
[0033] In this embodiment, during use, the storage barrel 6 provided can be used to store materials. At the same time, through the installation between the side ear plate 61 and the storage barrel 6, the storage barrel 6 can also be detachably installed on the clamping beam 53.
[0034] Furthermore, the user can match and replace the storage barrel 6 according to the size and storage requirements of the material to adapt to different types of materials and workpieces, thereby better storing the materials.
[0035] Specifically, refer to Figure 1-3 The sides of the several side ear plates 61 on the storage bucket 6 are all threadedly connected with positioning bolts 62, and the ends of the positioning bolts 62 pass through the side ear plates 61 and extend to abut against the sides of the clamping beam 53; the several storage buckets 6 are horizontally arranged and distributed in the storage tank 2.
[0036] In this embodiment, after the storage bucket 6 is installed on the clamping beam 53 through the side ear plate 61, the user rotates the positioning bolt 62 so that the end of the positioning bolt 62 passes through the side ear plate 61 and is tightly against the clamping beam 53. At this time, under the limitation of the positioning bolt 62, the storage bucket 6 can be more stably installed on the mounting frame 5.
[0037] Furthermore, when the user needs to remove the storage bucket 6, he only needs to loosen the positioning bolt 62. At this time, the positioning bolt 62 is released from the tight contact limit on the clamping beam 53, and the installed storage bucket 6 can be directly removed from the clamping beam 53.
[0038] Specifically, refer to Figure 4 The storage height adjustment assembly 4 also includes two bearing seats 45 arranged on the side of the height adjustment frame 42, and a threaded screw 46 is rotatably arranged between the two bearing seats 45. A screw nut 47 is engaged with the outside of the threaded screw 46, and the screw nut 47 passes through the guide rail slider 44 and is connected to it; the output end of the reciprocating rotating motor 41 passes through one of the bearing seats 45 and extends to be connected to the bottom end of the threaded screw 46.
[0039] In this embodiment, the reciprocating rotating motor 41 is used to drive the linear track 43 to rotate; when the linear track 43 is rotating, the two height adjustment frames 42 on the side of the reciprocating rotating motor 41 are engaged and limited on the linear track 43, so that the screw nut 47 engaged with the outside of the threaded screw 46 can drive the guide rail slider 44 to move back and forth along the travel range of the threaded screw 46.
[0040] Furthermore, the power supply connection method of the threaded screw 46 is the existing technology, and the control circuit can be implemented by simple programming by technicians in this field. It is common knowledge in this field and is only used without modification. Therefore, the control method and circuit connection will not be described in detail.
[0041] Specifically, refer to Figure 4 The upper end surface of the laser engraving platform 1 is supported by a laser engraving machine body 7 , and a plurality of storage barrels 6 are arranged on the side of the laser engraving machine body 7 .
[0042] In this embodiment, the user uses the laser engraving machine body 7 to perform laser engraving processing on the material.
[0043] The laser engraving machine with material storage function of this utility model:
[0044] Step 1: After the user drives the laser engraving machine body 7 to complete the laser engraving process on the material, the material can be removed and then placed in the storage bucket 6. The storage bucket 6 is detachably mounted on the mounting frame 5, and the user can also replace the storage bucket 6 according to the size and storage requirements of the material, thereby better storing the material.
[0045] Step 2: During the storage of materials, the user can also drive the two sets of storage height adjustment components 4. Through the installation between the storage height adjustment components 4 and the mounting frame 5, the installed mounting frame 5 can be lifted and lowered in a reciprocating manner within the travel range of the storage height adjustment components 4. Thus, through the installation of the mounting frame 5 and the storage bucket 6, the storage bucket 6 can be freely lifted and lowered. Through the lifting control, the operator can easily adjust the storage height of the storage bucket 6, thereby facilitating the taking and placing of materials, reducing the need to bend over or climb, and improving the convenience of storage operations.
[0046] Step 3: When the user drives the storage height adjustment component 4, by connecting the reciprocating rotating motor 41 to a power source, the reciprocating rotating motor 41 set at this time can drive the threaded screw 46 to reciprocate. When the threaded screw 46 rotates back and forth, the two height adjustment frames 42 on the side of the reciprocating rotating motor 41 are engaged with the linear rail 43, so that the screw nut 47 engaged with the outside of the threaded screw 46 can drive the guide rail slider 44 to move back and forth along the stroke range of the threaded screw 46. The height lifting and lowering adjustment of the mounting frame 5 and the storage bucket 6 can be achieved through the connection between the guide rail slider 44 and the frame crossbeam 51.
[0047] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A laser engraving machine with material storage function, characterized in that ; It comprises four supporting brackets (10) distributed in a rectangular shape; a laser engraving platform (1) is commonly supported and arranged on the four supporting brackets (10); A storage slot (2) is provided on the side of the laser engraving platform (1); an extension base plate (3) is vertically installed between two adjacent support brackets (10); Two groups of storage height adjustment components (4) are mounted on the extended bottom plate (3); a mounting frame (5) is mounted on the two groups of storage height adjustment components (4); a plurality of storage barrels (6) are mounted on the mounting frame (5); the plurality of storage barrels (6) are arranged horizontally and distributed in the storage tank (2); The two groups of storage height adjustment components (4) each include a reciprocating rotary motor (41) disposed on the extended bottom plate (3), the reciprocating rotary motor (41) being provided with a motor housing on the outside and a height adjustment frame (42) being installed above the motor housing, the height adjustment frame (42) being vertically arranged and having two linear rails (43) disposed parallel to its side, and a guide rail slider (44) being provided on the two linear rails (43) for mutual engagement and sliding. The mounting frame (5) includes a frame crossbeam (51) arranged on the side of the guide rail slider (44), and both ends of the frame crossbeam (51) are integrally provided with a bracket plate (52) protruding therefrom, and a clamping beam (53) is installed between the two bracket plates (52).
2. The laser engraving machine with material storage function according to claim 1, characterized in that: The storage bucket (6) is in a rectangular barrel structure and has two side ear plates (61) integrally provided on its side. The side ear plates (61) and the storage bucket (6) are arranged in an inverted U shape and the side ear plates (61) are embedded in the clamping beam (53).
3. The laser engraving machine with material storage function according to claim 1, characterized in that: The side surfaces of the plurality of side ear plates (61) on the storage barrel (6) are all threadedly connected with positioning bolts (62), and the ends of the positioning bolts (62) pass through the side ear plates (61) and extend to abut against the side surfaces of the clamping beam (53); the plurality of storage barrels (6) are horizontally arranged and distributed in the storage tank (2).
4. The laser engraving machine with material storage function according to claim 1, characterized in that: The storage height adjustment assembly (4) further comprises two bearing seats (45) arranged on the side of the height adjustment frame (42), a threaded screw (46) is rotatably arranged between the two bearing seats (45), a screw nut (47) is engaged with the outside of the threaded screw (46), and the screw nut (47) passes through the guide rail slider (44) and is connected thereto; the output end of the reciprocating rotary motor (41) passes through one of the bearing seats (45) and extends to be connected to the bottom end of the threaded screw (46).
5. The laser engraving machine with material storage function according to claim 1, characterized in that: The upper end surface of the laser engraving platform (1) is provided with a laser engraving machine body (7), and a plurality of storage barrels (6) are provided on the side of the laser engraving machine body (7).
Citation Information
Patent Citations
Embedded laser engraving machine
CN205309569U