Carving machine driving assembly and carving machine
By adopting a design that incorporates a housing, output function block, drive motor assembly, and transmission gear assembly in the engraving machine, the cost and control difficulties caused by the need to set up a drive motor for each clamping and rotating component are solved, thereby reducing the overall cost of the engraving machine and simplifying program control.
Patent Information
- Application Number
- CN202423266938.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2034-12-30
AI Technical Summary
In the existing technology, each clamping and rotating component of the engraving machine needs to be equipped with a drive motor, which increases the cost and the difficulty of program control. In particular, the increase in the number of motors is an important parameter in program design, which leads to an increase in the cost and difficulty of program control design. In particular, the increase in the number of motors in the program design process increases the development price of the control program.
A carving machine drive assembly is adopted, including a housing, multiple output function blocks, a drive motor assembly, and a transmission gear assembly. By setting up a reduction gear assembly, the output end of the entire carving machine drive assembly can provide strong torque. The output end of the motor assembly can provide strong torque, and the transmission gear assembly can connect the output gears that are not forming a transmission, thereby reducing the overall cost and the difficulty of program control.
This technology enables each output gear assembly to serve as an output end, providing rotational power to the raw material. This reduces the cost of the engraving machine's drive components and control program design, simplifies the program control process, and lowers the overall cost and complexity.
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Figure CN223718977U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of engraving machine, especially relates to a kind of engraving machine drive assembly and engraving machine. BACKGROUND
[0002] For the processing of some structural parts or appearance parts, engraving machine can be applied, and there are many types of engraving machines. A common engraving machine is in the form of a rotating shaft. The rotating shaft engraving machine mainly includes a clamping rotating assembly and an engraving function part. While the clamping rotating assembly completes the clamping action on the raw material, it can drive the raw material to rotate for adjustment. When the raw material is adjusted to the appropriate position, the engraving function part completes the engraving action. The work of the clamping rotating assembly and the engraving function part is coordinated through a program, so that the raw material is engraved into the set shape.
[0003] During processing, in order to improve the processing efficiency, a plurality of clamping rotating assemblies and engraving function parts are provided, and each clamping rotating assembly is correspondingly provided with a driving motor. At this time, not only the overall cost is increased, but also the difficulty of program control is increased. In particular, during the process of program control design quotation, the important parameter is the number of motor heads. At this time, the increase of the number of motors also increases the development cost of the control program. UTILITY MODEL CONTENTS
[0004] The main purpose of the utility model is to provide an engraving machine drive assembly and an engraving machine, which aims to solve the problem of increasing the overall cost and the difficulty and design quotation of program control by correspondingly providing a driving motor for each clamping rotating assembly.
[0005] In order to achieve the above-mentioned purpose, the utility model provides an engraving machine drive assembly, which comprises:
[0006] A box body is provided with a first mounting position and a second mounting position;
[0007] A plurality of output function blocks are arranged at intervals in the length direction of the box body, and the output function block comprises at least three output gear assemblies arranged at intervals in the length direction of the box body, and the output gear assembly comprises a shaft portion hinged to the thickness direction of the box body and a first gear fixed to the shaft portion;
[0008] A driving motor assembly is arranged corresponding to the output function block and mounted in the first mounting position, and the driving motor assembly comprises a motor and a speed reduction assembly matched with the motor, and the output end of the speed reduction assembly is connected with a second gear, and the driving motor assembly is driven to the first gears of two output gear assemblies in the output function block through the second gear;
[0009] A transmission gear assembly corresponding to the output function block is provided, and the transmission gear assembly comprises a mounting seat and a third gear rotatingly arranged on the mounting seat, the mounting seat is mounted on the second mounting position, and the transmission gear assembly forms transmission for the output gear assembly that is not formed with transmission in the output function block through the third gear.
[0010] Further, the shaft part is connected in the length direction.
[0011] Further, the output function block comprises four output gear assemblies.
[0012] Further, the two ends of the shaft part in the length direction are respectively hinged to the box body through a first bearing structure and a second bearing structure.
[0013] Further, the second gear and the third gear are made of hard alloy material.
[0014] Further, the first gear is made of polymer material.
[0015] Further, the box body comprises sub-structures spliced in the length direction, and the sub-structures are provided with four first gears.
[0016] Further, the first gear and the second gear are both helical gears.
[0017] Further, the first mounting position and the second mounting position are consistent in structure.
[0018] The utility model also provides a kind of engraving machine, comprising the engraving machine drive assembly of above.
[0019] The engraving machine drive assembly and the engraving machine provided by the utility model can provide rotating power for external raw materials by each output gear assembly as an output end, the working of drive motor assembly provides rotating power for all output gear assemblies in output function block, the output end of entire drive motor assembly can provide stronger torque by the setting of speed reducer assembly, drive motor assembly includes motor and matching motor speed reducer assembly, transmission gear assembly forms transmission for output gear assembly that is not formed with transmission in output function block;The cost of entire engraving machine drive assembly and the cost of control program design are reduced. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 is the schematic view of the box body in the first embodiment of the utility model engraving machine drive assembly;
[0021] Figure 2 is the matching schematic view of output function block, drive motor assembly and transmission gear assembly in the first embodiment of the utility model engraving machine drive assembly;
[0022] Figure 3 is the schematic view of the transmission gear assembly in the first embodiment of the engraving machine driving assembly of the utility model;
[0023] Figure 4 is the schematic view of the first embodiment of the engraving machine driving assembly of the utility model (the first view angle);
[0024] Figure 5 is the schematic view of the first embodiment of the engraving machine driving assembly of the utility model, one driving motor assembly and one transmission gear assembly are in the disengaged state (the first view angle);
[0025] Figure 6 is the schematic view of the first embodiment of the engraving machine driving assembly of the utility model (the second view angle);
[0026] Figure 7 is the schematic view of the first embodiment of the engraving machine driving assembly of the utility model (the third view angle);
[0027] Figure 8 is Figure 7 the local enlargement in the.
[0028] The realization, functional features and advantages of the utility model will be further explained by combining with embodiments and referring to the drawings. DETAILED DESCRIPTION
[0029] It should be understood that the specific embodiments described herein are merely intended to explain the utility model, and are not intended to limit the utility model.
[0030] Those skilled in the art can understand that, unless specifically stated, the singular form "a", "an", "said" "the above" and "the" used herein can also include the plural form. It should be further understood that the phrase "comprising" used in the specification of the utility model means that the features, integers, steps, operations, elements, units, modules and / or assemblies exist, but do not exclude the existence or addition of one or more other features, integers, steps, operations, elements, units, modules, assemblies and / or their groups. It should be understood that when we say that an element is "connected" or "coupled" to another element, it can be directly connected or coupled to other elements, or there can be intermediate elements. In addition, the "connection" or "coupling" used herein can include wireless connection or wireless coupling. The phrase "and / or" used herein includes all or any unit and all combinations of the associated listed items.
[0031] Those skilled in the art of the technology will understand that, unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
[0032] Referring to Figures 1 to 8 In an embodiment of the present application, a driving assembly of a carving machine comprises:
[0033] The box body 100 is provided with a first mounting position 110 and a second mounting position 120.
[0034] A plurality of output function blocks 200 are arranged at intervals in the length direction of the box body 100, and the output function block 200 comprises at least three output gear assemblies 210 arranged at intervals in the length direction of the box body 100, wherein the output gear assembly 210 comprises a shaft portion 211 hinged in the thickness direction of the box body 100 and a first gear 212 fixed to the shaft portion 211.
[0035] A driving motor assembly 300 is arranged corresponding to the output function block 200 and mounted on the first mounting position 110, wherein the driving motor assembly 300 comprises a motor and a speed reduction assembly matched with the motor, the output end of the speed reduction assembly is connected with a second gear 310, and the driving motor assembly 300 drives the first gear 212 of two output gear assemblies 210 in the output function block 200 through the second gear 310.
[0036] A transmission gear assembly 400 is arranged corresponding to the output function block 200, wherein the transmission gear assembly 400 comprises a mounting seat 410 and a third gear 420 rotatably arranged on the mounting seat 410, the mounting seat 410 is mounted on the second mounting position 120, and the transmission gear assembly 400 forms transmission for the output gear assembly 210 in the output function block 200 which is not formed with transmission through the third gear 420.
[0037] In the prior art, in order to improve the processing efficiency in the processing process, a plurality of pairs of clamping rotating assemblies and carving function parts are arranged, and each clamping rotating assembly is arranged with a driving motor, which not only increases the overall cost, but also increases the difficulty of program control; in particular, in the process of program control design bidding, the important parameter is the number of motor heads, and the increase of the number of motors also increases the development price of the control program.
[0038] In the utility model, the box 100 is used as the basis of installation and provides the basis for subsequent parts. The box 100 is provided with a first mounting position 110 and a second mounting position 120, and the number of the first mounting position 110 and the second mounting position 120 is respectively adapted to the subsequent driving motor assembly 300 and the transmission gear assembly 400.
[0039] The plurality of output function blocks 200 are arranged at intervals in the length direction of the box 100. The output function block 200 comprises at least three output gear assemblies 210 arranged at intervals in the length direction of the box 100, and each output gear assembly 210 can be used as an output end to provide rotating power for external raw materials. Specifically, the output gear assembly 210 comprises a shaft part 211 hinged in the thickness direction of the box 100 and a first gear 212 fixed to the shaft part 211, and the rotation of the shaft part 211 provides output power, and the first gear 212 is used to receive the transmission of external torque.
[0040] The driving motor assembly 300 is arranged corresponding to the output function block 200 and is installed on the first mounting position 110. The driving motor assembly 300 provides rotating power for all the output gear assemblies 210 in the output function block 200. Therefore, the driving motor assembly 300 comprises a motor and a speed reduction assembly matched with the motor, and the setting of the speed reduction assembly enables the output end of the entire driving motor assembly 300 to provide stronger torque, thereby driving all the output gear assemblies 210 in the output function block 200 to rotate. The output end of the speed reduction assembly is connected with a second gear 310, and the driving motor assembly 300 is driven to the first gears 212 of two output gear assemblies 210 in the output function block 200 through the second gear 310, that is, the second gear 310 is transmitted between the two first gears 212, thereby driving the two first gears 212 to rotate.
[0041] The transmission gear assembly 400 is arranged corresponding to the output function block 200. The number of the transmission gear assembly 400 is determined according to the number of the output gear assemblies 210 in the output function block 200. For example, if there are four output gear assemblies 210, the number of the transmission gear assembly 400 is two. The transmission gear assembly 400 comprises a mounting seat 410 and a third gear 420 rotatably arranged on the mounting seat 410. The mounting seat 410 is installed on the second mounting position 120, and the transmission gear assembly 400 forms transmission for the output gear assemblies 210 in the output function block 200 which are not formed transmission through the third gear 420. The third gear 420 is inserted between the two first gears 212, and the torque of one first gear 212 is transmitted to the rotation of the other first gear 212.
[0042] In conclusion, each output gear assembly 210 can serve as an output end to provide rotating power for external raw materials, the working of the driving motor assembly 300 provides rotating power for all output gear assemblies 210 in the output function block 200, the setting of the reduction assembly makes the output end of the entire driving motor assembly 300 provide stronger torque, the driving motor assembly 300 includes a motor and a reduction assembly matched with the motor, the transmission gear assembly 400 forms transmission for the output gear assemblies 210 in the output function block 200 that are not formed transmission; so that the cost of the entire driving assembly of the engraving machine and the cost of the control program design are both reduced.
[0043] In one embodiment, the shaft part 211 is a connecting structure in the length direction.
[0044] In this embodiment, due to the presence of the first gear 212, the installation process of the output gear assembly 210 on the box body 100 is not convenient. Then the shaft part 211 is broken and set as a connecting structure, so that the installation is convenient. In a specific implementation process, the shaft part 211 includes two rod structures, and the rod structures can form a circumferential limit and fixation.
[0045] Referring to Figure 2 In one embodiment, the output function block 200 includes four output gear assemblies 210.
[0046] In this embodiment, a suitable functional unit is given, which can reduce the structural cost and control cost while providing high-quality output effect. One driving motor assembly 300 directly drives two output gear assemblies 210, and through two transmission gear assemblies 400, the remaining two output gear assemblies 210 can be formed transmission.
[0047] In one embodiment, the two ends of the shaft part 211 in the length direction are respectively hinged to the box body 100 through the first bearing structure and the second bearing structure.
[0048] In this embodiment, the first bearing structure and the second bearing structure are added, so that the rotating process of the shaft part 211 is more smooth. According to the use state, the types of the first bearing structure and the second bearing structure can be designed and selected.
[0049] In one embodiment, the second gear 310 and the third gear 420 are made of hard alloy material.
[0050] In this embodiment, the second gear 310 is made of hard alloy material, so that stable and accurate power output can be provided, and the possibility of deformation is reduced.
[0051] In one embodiment, the first gear 212 is made of polymer material.
[0052] In the embodiment, considering that the first gear 212 has a large volume and the second gear 310 is made of hard alloy material, if the first gear 212 is also made of alloy material, the two gears can form good size engagement in use, but the size engagement accuracy is reduced after a period of service life, and finally affects the engraving effect. Therefore, the first gear 212 is made of polymer material, which reduces the initial cost and provides a basis for reducing the subsequent replacement cost.
[0053] In one embodiment, the box body 100 includes substructures spliced in the length direction, and four first gears 212 are arranged on the substructures.
[0054] In the embodiment, the box body 100 is arranged to be spliced in the length direction, and the substructures include four first gears 212, which also correspond to one driving motor assembly 300 and two transmission gear assemblies 400. The above parts form a subunit, and the number of subunits can be selected according to requirements to realize the use requirements.
[0055] Referring to Figure 2 In one embodiment, the first gear 212 and the second gear 310 are both helical gears.
[0056] In the embodiment, the types of the first gear 212 and the second gear 310 are both arranged as helical gears, which has higher structural strength under the condition of better transmission effect. Specifically, the inclination of the gears on the first gear 212 and the second gear 310 is adjusted according to the actual use effect.
[0057] Referring to Figure 1 In one embodiment, the first mounting position 110 and the second mounting position 120 have consistent structures.
[0058] In the embodiment, the first mounting position 110 is used for mounting the driving motor assembly 300, and the second mounting position 120 is used for mounting the transmission gear assembly 400. Although the functions of the two are different, the fixing structures of the driving motor assembly 300 and the transmission gear assembly 400 can be arranged, and then the first mounting position 110 and the second mounting position 120 are consistent in structure. At this time, it is beneficial for the adjustment and assembly process of the engraving machine driving assembly, such as expanding and adjusting the working state.
[0059] The utility model further provides an engraving machine which comprises the above-mentioned engraving machine driving assembly.
[0060] In the embodiment, the engraving machine has the engraving machine driving assembly, so that the number of output sources is reduced in the case that the entire engraving machine can complete multiple output heads, and the structural complexity and program control are reduced.
[0061] In summary, the engraving machine drive assembly and the engraving machine provided by the utility model can provide rotating power for the external raw materials by each output gear assembly 210 as an output end, the working of the drive motor assembly 300 provides rotating power for all the output gear assemblies 210 in the output function block 200, the setting of the speed reduction assembly enables the output end of the whole drive motor assembly 300 to provide stronger torque, the drive motor assembly 300 comprises a motor and a speed reduction assembly matched with the motor, the transmission gear assembly 400 forms transmission for the output gear assemblies 210 in the output function block 200 which do not form transmission, so that the cost of the whole engraving machine drive assembly and the cost of the control program design are both reduced.
[0062] The above merely describes the preferred embodiments of the utility model, and does not limit the patent range of the utility model, and any equivalent structure or equivalent flow transformation by using the contents of the utility model specification and drawings, or direct or indirect application in other related technical fields, are also included in the patent protection range of the utility model.
Claims
1. An engraver drive assembly, characterized by, The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine.
2. The engraver drive assembly of claim 1, wherein, The application relates to a driving assembly of a carving machine.
3. The engraver drive assembly of claim 1, wherein, The application relates to a driving assembly of a carving machine.
4. The engraver drive assembly of claim 1, wherein, The application relates to a driving assembly of a carving machine.
5. The engraver drive assembly of claim 1, wherein, The application relates to a driving assembly of a carving machine.
6. The engraver drive assembly of claim 5, wherein, The application relates to a driving assembly of a carving machine.
7. The engraver drive assembly of claim 1, wherein, The application relates to a driving assembly of a carving machine.
8. The engraver drive assembly of claim 1, wherein, The application relates to a driving assembly of a carving machine.
9. The engraver drive assembly of claim 1, wherein, The application relates to a driving assembly of a carving machine.
10. An engraver characterized by The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. The application relates to a driving assembly of a carving machine. 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