Conducting rod machining device
The dual-head processing system for conductive rods addresses the inefficiency of multiple processing heads by allowing simultaneous end and circumferential processing, enhancing overall processing efficiency.
Patent Information
- Application Number
- CN202421711645.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-19
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-07-19
AI Technical Summary
The two ends of the conductive rod need to be processed separately, resulting in low machining efficiency.
A conductive rod processing device is designed, including an end machining center and a transfer center. The two ends of the conductive rod are simultaneously processed using a rotary clamping assembly and multiple tools. The peripheral machining center is combined to realize the machining of the outer circumference of the conductive rod, and the automatic sample feeding device is used to realize continuous sample feeding.
Simultaneous processing at both ends and outer periphery of the conductive rod is achieved, improving processing efficiency.
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Figure CN223098545U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of conductive rod processing devices, and particularly relates to a conductive rod processing device. Background Art
[0002] A conductive rod is a metal rod or similar conductor used to transmit current in electrical or electronic devices. In the power system, conductive rods are often used as a medium for transmitting current to ensure that the current can flow smoothly from one place to another.
[0003] The structural features of the conductive rod include hole structures, thread structures, chamfer structures, etc. at both ends in the length direction. Then, during the processing, relevant drilling structures, reaming structures, tapping structures, chamfering structures, etc. are required, which leads to the problem of having many processing heads. In particular, both ends of the conductive rod need to be processed. Generally, the lathe structure can only process one end and then process the other end, thereby reducing the overall processing efficiency. Summary of the Utility Model
[0004] The main purpose of the utility model is to provide a conductive rod processing device, aiming to solve the problems that the structural features of the conductive rod include hole structures, thread structures, chamfer structures, etc. at both ends in the length direction, which require more processing heads, and both ends of the conductive rod need to be processed, resulting in lower processing efficiency.
[0005] To achieve the above purpose, the utility model provides a conductive rod processing device, including:
[0006] An end processing center, with a first feeding window arranged at the top. Two first wide driving parts and a first rotary clamping assembly located between the two first wide driving parts are arranged in the length direction of the end processing center. A rotatable clamping part is arranged in the middle of the first rotary clamping assembly along the length direction of the end processing center. The first wide driving parts complete driving in the length direction and width direction of the end processing center. A rotary assembly is arranged on the first wide driving parts, and a plurality of end tools are arranged in the circumferential direction of the rotary assembly. Among them, when the rotary assembly rotates, the plurality of end tools in the circumferential direction of the rotary assembly respectively align with the clamping part;
[0007] A transfer center, including a truss and a grasping assembly driven to be arranged on the truss. The grasping assembly is telescopically arranged in the vertical direction, and a grasping hand is arranged at the bottom end;
[0008] An automatic sample feeding device, arranged corresponding to the transfer center and completing linear sample feeding.
[0009] Further, the conductive rod processing device further includes a peripheral processing center corresponding to the transfer center and having a second feeding window arranged at the top. The peripheral processing center includes:
[0010] The second rotary clamping assembly is used to complete the clamping action in the length direction;
[0011] The second wide driving part completes the driving in the length direction and the width direction of the peripheral machining center;
[0012] The peripheral machining part is arranged laterally on the second wide driving part corresponding to the length direction of the second rotary clamping assembly.
[0013] Furthermore, the number of the peripheral machining parts is two and they are respectively located at both ends of the second rotary clamping assembly in the width direction.
[0014] Furthermore, the number of the grippers is two and they are arranged at intervals in the width direction of the end machining center.
[0015] Furthermore, a push rod assembly is arranged on the first wide driving part, and the push rod assembly completes the telescopic action in the length direction of the end machining center.
[0016] Furthermore, the length direction of the transfer center is consistent with the width direction of the end machining center.
[0017] Furthermore, an auxiliary machining head is also arranged on the first wide driving part, and the auxiliary machining head is arranged at intervals with the rotary assembly in the width direction of the end machining center.
[0018] Furthermore, the automatic sample feeding device is of the conveyor belt type.
[0019] Furthermore, the driving mode of the transfer center is a linear driving motor.
[0020] Furthermore, the clamping part includes a plurality of clamping positions distributed at intervals in the length direction of the end machining center.
[0021] For the conductive rod processing device provided by the present utility model, the transfer center can enter the interior of the end machining center through the first feeding window of the end machining center to complete the actions of picking and placing parts; the two first wide driving parts clamp the first rotary clamping assembly, so as to simultaneously complete the processing of both ends of the conductive rod blank. When the rotary assembly rotates, a plurality of end cutters on the circumference of the rotary assembly respectively align with the clamping part to complete different processing processes. Description of the Drawings
[0022] Figure 1 is a schematic diagram of the conductive rod processing device according to the first embodiment of the present utility model;
[0023] Figure 2 is Figure 1 a partial enlarged view of
[0024] Figure 3It is a schematic diagram of the conductive rod processing device according to the second embodiment of the present utility model;
[0025] Figure 4 It is a schematic diagram of the peripheral processing center in the conductive rod processing device according to the second embodiment of the present utility model;
[0026] Figure 5 It is Figure 4 The partial enlarged view of.
[0027] The realization of the purpose, functional features and advantages of the present utility model will be further described with reference to the embodiments and the accompanying drawings. Detailed implementation manners
[0028] It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.
[0029] Those skilled in the art of the present technology can understand that unless specifically stated otherwise, the singular forms "a", "an", "the", "above-mentioned" and "this" used herein may also include the plural forms. It should be further understood that the term "including" used in the specification of the present utility model means the presence of the described features, integers, steps, operations, elements, units, modules and / or components, but does not exclude the presence or addition of one or more other features, integers, steps, operations, elements, units, modules, components 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 may also be intermediate elements. In addition, the "connection" or "coupling" used herein may include wireless connection or wireless coupling. The phrase "and / or" used herein includes all or any unit and all combinations of one or more related listed items.
[0030] Those skilled in the art of the present technology can understand that unless otherwise defined, all terms (including technical terms and scientific terms) used herein have the same meaning as the general understanding of those of ordinary skill in the art to which the present utility model belongs. It should also be understood that terms such as those defined in a general dictionary should be understood to have a meaning consistent with the meaning in the context of the prior art, and will not be interpreted with an idealized or overly formal meaning unless specifically defined as here.
[0031] Referring to Figures 1 to 5 , in an embodiment of the present utility model, a conductive rod processing device includes:
[0032] End machining center 100 is provided with a first feeding window 110 at the top. Two first wide driving parts 120 are arranged in the length direction of the end machining center 100 and a first rotating clamping assembly 130 is arranged between the two first wide driving parts 120. A rotatable clamping part 131 is arranged in the middle of the first rotating clamping assembly 130 along the length direction of the end machining center 100. The first wide driving part 120 performs driving in the length direction and width direction of the end machining center 100. A rotating assembly 121 is arranged on the first wide driving part 120. A plurality of end tools 122 are arranged in the circumferential direction of the rotating assembly 121. Wherein, when the rotating assembly 121 rotates, the plurality of end tools 122 in the circumferential direction of the rotating assembly 121 are respectively aligned with the clamping part 131;
[0033] Transfer center 200 includes a truss 210 and a grasping assembly 220 driven to be arranged on the truss 210. The grasping assembly 220 is telescopically arranged in the vertical direction and a grasping hand is arranged at the bottom end;
[0034] An automatic sample feeding device is arranged corresponding to the transfer center 200 and performs linear sample feeding.
[0035] In the prior art, the structural features of the conductive rod include hole structures, thread structures, chamfer structures, etc. at both ends in the length direction; then, in the process of machining, relevant drilling structures, reaming structures, tapping structures, chamfer structures, etc. are also required, and there is a problem of having many machining heads; especially, machining is required at both ends of the conductive rod. Generally, the structure of a lathe can only achieve machining at one end and then machining at the other end, thereby reducing the overall machining efficiency.
[0036] In the present utility model, a first feeding window 110 is arranged at the top of the end machining center 100. The transfer center 200 includes a truss 210 and a grasping assembly 220 driven to be arranged on the truss 210. The grasping assembly 220 is telescopically arranged in the vertical direction and a grasping hand is arranged at the bottom end. The grasping assembly 220 of the transfer center 200 can enter the inside of the end machining center 100 through the first feeding window 110 of the end machining center 100 to complete the actions of picking and placing parts.
[0037] Two first wide driving parts 120 are arranged in the length direction of the end machining center 100 and a first rotating clamping assembly 130 is arranged between the two first wide driving parts 120. A rotatable clamping part 131 is arranged in the middle of the first rotating clamping assembly 130 along the length direction of the end machining center 100. The clamping part 131 is used to fix the conductive rod blank and can drive the conductive rod blank to rotate. At this time, the action of the conductive rod blank entering the clamping part 131 can be completed by the driving of the first wide driving part 120 in the length direction or a telescopic rod is arranged separately.
[0038] Two first wide driving parts 120 clamp the first rotary clamping assembly 130, so that the processing of both ends of the conductive rod blank can be completed simultaneously. The first wide driving part 120 performs driving in the length direction and width direction of the end processing center 100. A rotary assembly 121 is arranged on the first wide driving part 120, and a plurality of end tools 122 are arranged in the circumferential direction of the rotary assembly 121. The rotary assembly 121 can be hinged to the first wide driving part 120, and the rotary driving effect is completed through a telescopic functional part. The specific degree of rotary driving is determined according to the distribution of the plurality of end tools 122. When the rotary assembly 121 rotates, the plurality of end tools 122 in the circumferential direction of the rotary assembly 121 are respectively aligned with the clamping part 131, so as to complete different processing processes. For example, the plurality of end tools 122 respectively perform operations such as punching, reaming, tapping and chamfering.
[0039] The automatic sample feeding device is arranged corresponding to the transfer center 200 and completes linear sample feeding. The automatic sample feeding device can be powered or utilize the self-weight rolling of the conductive rod blank. Specifically, as long as linear sample feeding can be realized.
[0040] In summary, the transfer center 200 can enter the interior of the end processing center 100 through the first feeding window 110 of the end processing center 100, and complete the actions of picking and placing parts; two first wide driving parts 120 clamp the first rotary clamping assembly 130, so that the processing of both ends of the conductive rod blank can be completed simultaneously. When the rotary assembly 121 rotates, the plurality of end tools 122 in the circumferential direction of the rotary assembly 121 are respectively aligned with the clamping part 131, so as to complete different processing processes.
[0041] Refer to Figures 3 to 5 , in an embodiment, the conductive rod processing device further includes a circumferential processing center 300 corresponding to the transfer center 200 and having a second feeding window 310 at the top. The circumferential processing center 300 includes:
[0042] A second rotary clamping assembly 320, which is used to complete the clamping action in the length direction;
[0043] A second wide driving part 330, which performs driving in the length direction and width direction of the circumferential processing center 300;
[0044] A circumferential processing part 340, which is arranged on the second wide driving part 330 and laterally arranged corresponding to the length direction of the second rotary clamping assembly 320.
[0045] In the foregoing embodiments, the end machining center 100 completes the operations of punching, reaming, and tapping at both ends of the conductive rod blank. Due to the presence of the first rotary clamping assembly 130, it is impossible to operate on the outer periphery of the conductive rod blank, especially the circumferential direction in the middle of the length direction of the conductive rod blank. In this embodiment, in order to achieve circumferential machining, a circumferential machining center 300 is further provided corresponding to the transfer center 200 and the end machining center 100. The top of the circumferential machining center 300 is a second feeding window 310, thereby providing a basis for the operation of the transfer center 200. The second rotary clamping assembly 320 of the circumferential machining center 300 includes two sub-assemblies distributed in the length direction. At least one of the two sub-assemblies can move in the length direction of the circumferential machining center 300, and thus can complete the clamping action in the length direction. At the same time, the second rotary clamping assembly 320 itself can be rotationally driven, so as to drive the conductive rod blank to rotate. The second wide driving part 330 performs driving in the length direction and the width direction of the circumferential machining center 300. The driving method of the second wide driving part 330 can be various, and preferably motor driving, so as to achieve a more precise driving action. Through the driving of the second wide driving part 330 in the length direction, the machining of different positions in the length direction of the conductive rod blank can be adjusted. Through the driving of the second wide driving part 330 in the width direction, the circumferential structures of different shapes are machined. A circumferential machining part 340 is provided on the second wide driving part 330, and the circumferential machining part 340 is arranged laterally corresponding to the length direction of the second rotary clamping assembly 320, so that the tool on the circumferential machining part 340 can complete the circumferential machining of the rotating conductive rod blank.
[0046] Referring to Figures 3 to 5 , in one embodiment, the number of the circumferential machining parts 340 is two and they are respectively located at both ends in the width direction of the second rotary clamping assembly 320.
[0047] In this embodiment, while increasing the number of the circumferential machining parts 340 and arranging the two circumferential machining parts 340 oppositely, greater flexibility is provided for the machining of the outer periphery of the conductive rod blank.
[0048] In one embodiment, the number of the grippers is two and they are spaced apart in the width direction of the end machining center 100.
[0049] In this embodiment, by adding one gripper and arranging the two grippers at intervals, the gripping assembly 220 can continuously complete the operations of picking and placing materials during a transfer process, improving the efficiency of the entire machining process.
[0050] In one embodiment, a push rod assembly is provided on the first wide driving part 120, and the push rod assembly completes the telescopic action in the length direction of the end machining center 100.
[0051] In the foregoing embodiments, the pushing action can be achieved through the driving of the first wide driving part 120 in the length direction and through the end cutter 122 on the rotating assembly 121. In this embodiment, a push rod assembly is arranged on the first wide driving part 120 to achieve the pushing action through the specifically arranged push rod assembly, so as to improve the pushing effect. For example, the push rod assembly is a pneumatic telescopic rod, and through the work of the push rod assembly, the driving range of the first wide driving part 120 can be reduced.
[0052] Referring to Figure 1 , in one embodiment, the length direction of the transfer center 200 is consistent with the width direction of the end machining center 100.
[0053] In the foregoing embodiments, the matching direction between the transfer center 200 and the end machining center 100 is not limited. In this embodiment, by making the length direction of the transfer center 200 consistent with the width direction of the end machining center 100, the compactness of the overall combination is improved, and the moving range of the transfer center 200 is reduced.
[0054] Referring to Figures 1 to 2 , in one embodiment, the first wide driving part 120 is further provided with an auxiliary machining head 123, and the auxiliary machining head 123 and the rotating assembly 121 are arranged at intervals in the width direction of the end machining center 100.
[0055] In this embodiment, by adding the auxiliary machining head 123 on the first wide driving part 120, when the number of end cutters 122 on the rotating assembly 121 is not enough to complete the machining process, it is completed by the auxiliary machining head 123. The auxiliary machining head 123 and the rotating assembly 121 are arranged at intervals in the width direction of the end machining center 100. Through the work of the first wide driving part 120, it can be selected to use the rotating assembly 121 or the auxiliary machining head 123 to machine the conductive rod blank.
[0056] In one embodiment, the automatic sample feeding device is of the conveyor belt type.
[0057] In this embodiment, the automatic sample feeding device is set as the simplest and practical conveyor belt type, which is matched with the blocking device and the detection head, so that the intermittent work of the automatic sample feeding device can be realized. Specifically, the automatic sample feeding device works continuously until the signal of the detection head is blocked, which indicates that the conductive rod blank on the automatic sample feeding device has been conveyed to the position of the blocking device.
[0058] In one embodiment, the driving mode of the transfer center 200 is a linear driving motor.
[0059] In this embodiment, the form of the transfer center 200 is limited, so as to achieve precise driving, and further make the sample feeding process precise, reducing the possibility of abnormalities.
[0060] In one embodiment, the clamping portion 131 includes a plurality of clamping positions spaced apart in the length direction of the end machining center 100.
[0061] First, the structural form of the first rotary clamping assembly 130 is similar to that of the current lathe headstock, that is, a chuck structure is added to the rotating shaft to achieve the effects of rotation and clamping simultaneously. In this embodiment, the clamping positions of the clamping portion 131 are set to be multiple, so the fixing effect of the blank of the conductive rod is relatively superior. Specifically, it can be realized that there are multiple clamping positions in the length direction on a chuck, or multiple chucks can be directly provided to achieve multiple clamping positions. The preferred fixing method of the chuck is pneumatic, and specifically, the compressed air path at the processing site can be utilized.
[0062] In summary, for the conductive rod processing device provided by the present invention, the transfer center 200 can enter the interior of the end machining center 100 through the first feeding window 110 of the end machining center 100 to complete the actions of picking and placing parts; the two first wide driving portions 120 clamp the first rotary clamping assembly 130, so that the processing of both ends of the blank of the conductive rod can be completed simultaneously. When the rotating assembly 121 rotates, the plurality of end tools 122 on the circumference of the rotating assembly 121 are respectively aligned with the clamping portion 131 to complete different processing processes.
[0063] The above are only the preferred embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structure or equivalent process transformation made by using the specification and drawings of the present invention, or directly or indirectly applied to other related technical fields, shall be equally included in the patent protection scope of the present invention.
Claims
1. A conductive rod processing device, characterized in that, Including: An end machining center (100) is provided with a first feeding window (110) at the top. Two first wide driving parts (120) are arranged in the length direction of the end machining center (100), and a first rotary clamping assembly (130) is located between the two first wide driving parts (120). A rotatable clamping part (131) is arranged in the middle of the first rotary clamping assembly (130) along the length direction of the end machining center (100). The first wide driving part (120) performs driving in the length direction and width direction of the end machining center (100). A rotary assembly (121) is arranged on the first wide driving part (120), and a plurality of end cutting tools (122) are arranged on the circumference of the rotary assembly (121). Wherein, when the rotary assembly (121) rotates, the plurality of end cutting tools (122) on the circumference of the rotary assembly (121) are respectively aligned with the clamping part (131); A transfer center (200) includes a truss (210) and a grasping assembly (220) driven to be arranged on the truss (210). The grasping assembly (220) is telescopically arranged in the vertical direction, and a grasping hand is arranged at the bottom end; An automatic sample feeding device is arranged corresponding to the transfer center (200) and performs linear sample feeding.
2. The conductive rod processing device according to claim 1, wherein, The conductive rod processing device further includes a peripheral machining center (300) corresponding to the transfer center (200) and provided with a second feeding window (310) at the top. The peripheral machining center (300) includes: A second rotary clamping assembly (320) for performing a clamping action in the length direction; A second wide driving part (330) for performing driving in the length direction and width direction of the peripheral machining center (300); A peripheral machining part (340) is arranged on the second wide driving part (330) on the side corresponding to the length direction of the second rotary clamping assembly (320).
3. The conductive rod processing device according to claim 2, wherein The number of the peripheral machining parts (340) is two and they are respectively located at both ends in the width direction of the second rotary clamping assembly (320).
4. The conductive rod processing device according to any one of claims 1 to 3, characterized in that, The number of the grasping hands is two, and they are arranged at intervals in the width direction of the end machining center (100).
5. The conductive rod processing device according to any one of claims 1 to 3, characterized in that, A push rod assembly is arranged on the first wide driving part (120), and the push rod assembly performs telescopic movement in the length direction of the end machining center (100).
6. The conductive rod processing device according to any one of claims 1 to 3, characterized in that The length direction of the transfer center (200) is consistent with the width direction of the end machining center (100).
7. The conductive rod processing device according to any one of claims 1 to 3, characterized in that, The first wide driving part (120) is further provided with an auxiliary machining head (123), and the auxiliary machining head (123) is arranged at intervals with the rotary assembly (121) in the width direction of the end machining center (100).
8. The conductive rod processing device according to any one of claims 1 to 3, characterized in that, The automatic sample feeding device is of the conveyor belt type.
9. The conductive rod processing device according to any one of claims 1 to 3, characterized in that, The driving mode of the transfer center (200) is a linear driving motor.
10. The conductive rod processing device according to any one of claims 1 to 3, characterized in that, The clamping part (131) includes a plurality of clamping positions distributed at intervals in the length direction of the end machining center (100).