Shovel tooth radiator production line and production process thereof

By introducing a movable material conveying mechanism and a compact modular design into the shovel-tooth radiator production line, the problem of low material conveying efficiency has been solved, enabling efficient continuous processing and online sampling inspection, reducing labor and raw material costs, and improving production efficiency and yield.

CN117283314BActive Publication Date: 2026-05-19DONGGUAN XUNHAO ELECTRONIC TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
DONGGUAN XUNHAO ELECTRONIC TECH CO LTD
Filing Date
2023-11-01
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

The existing shovel-tooth radiator production lines are independent in each area, resulting in low material conveying efficiency, high labor costs, long production cycles, low production efficiency, decreased product yield, and increased raw material inventory, making it difficult to meet the requirements of lean production.

Method used

Design a toothed radiator production line, which connects the toothed module, the toothed module, the cutting module and the grinding and shaping module through a movable first feeding mechanism, and connects the drilling and tapping module and the tube rolling module through a second feeding mechanism, so as to achieve a compact layout and efficient material feeding.

Benefits of technology

It improved the continuous processing capacity of the production line, reduced the accumulation of workpieces between equipment, improved material conveying efficiency and online sampling inspection capabilities, reduced labor costs and raw material inventory, and enhanced production flexibility and cost controllability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a production line for a notched heat sink, which comprises a notching module, a hobbing module, a cutting module, a polishing and shaping module and a drilling and tapping module, wherein the notching module, the hobbing module, the cutting module, the polishing and shaping module and the drilling and tapping module are sequentially arranged and installed on a preset installation surface, the notching module, the hobbing module, the cutting module and the polishing and shaping module are connected through a plurality of first material conveying mechanisms, and the drilling and tapping module and the hobbing module are connected through a second material conveying mechanism; the output end of the notching module is arranged on one side of the input end of the hobbing module, and the output end of the notching module and the input end of the hobbing module are connected through the first material conveying mechanism for lateral material conveying. The production line for the notched heat sink is connected with the notching module, the hobbing module, the cutting module and the polishing and shaping module through the movable first material conveying mechanism, so that the organic compactness of the modules during actual installation is effectively improved.
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Description

Technical Field

[0001] This invention relates to the field of shovel-tooth radiator manufacturing technology, and in particular to a shovel-tooth radiator production line. Background Technology

[0002] A heatsink is a device or component used for heat dissipation, typically made of materials with good thermal conductivity, such as metals (commonly aluminum and copper). The main function of a heatsink is to transfer heat from one area to another, effectively reducing temperature and preventing overheating of equipment or systems. Most heatsinks have a finned structure; these elongated metal fins are fixed to the surface of the heatsink to increase surface area and improve heat dissipation efficiency. The design and arrangement of the fins affect the performance of the heatsink.

[0003] In the existing production of toothed radiators, the setup of the production line may vary depending on the manufacturer and the scale of production. However, in general, the production line usually includes a material supply area, a toothing area, a tooth hobbing area, a cutting area, a deburring area, a shaping area, and a CNC machining area. These areas are relatively independent of each other, and materials are usually transported by inefficient manual handling.

[0004] However, this type of shovel-tooth radiator production line results in a significant increase in labor costs, material accumulation between different areas, longer production cycles, and a larger product sampling base, leading to low production efficiency, low effective utilization of production space, decreased yield, increased raw material inventory, and low production flexibility, ultimately resulting in higher production costs. Therefore, it is clear that existing shovel-tooth radiator production lines and their processes are ill-suited to the core principles and key concepts of modern lean manufacturing.

[0005] Lean production is a production management method and philosophy aimed at optimizing the production process, improving efficiency, and reducing waste. It aims to achieve production advantages such as reducing production costs, shortening delivery cycles, improving product quality, reducing inventory, increasing production flexibility, and improving employee satisfaction. For the production of toothed radiators, a new toothed radiator production line and a new toothed radiator production process should be provided based on lean production principles. Summary of the Invention

[0006] Therefore, it is necessary to provide a new type of shovel-tooth radiator production line to address the technical problems of relatively independent production areas and low material conveying efficiency in existing shovel-tooth radiator production lines.

[0007] A toothed radiator production line includes a toothed module, a toothed hobbing module, a cutting module, a grinding and shaping module, and a drilling module. The toothed module, toothed hobbing module, cutting module, grinding and shaping module, and drilling module are arranged in sequence and installed on a preset mounting surface. The toothed module, toothed hobbing module, cutting module, and grinding and shaping module are connected by a number of first feeding mechanisms, and the drilling module and the tube rolling module are connected by a second feeding mechanism.

[0008] The output end of the tooth-shoveling module is located on one side of the input end of the tooth-hoveling module. The output end of the tooth-shoveling module and the input end of the tooth-hoveling module are fed laterally through the first feeding mechanism, which effectively reduces the feeding distance between the tooth-shoveling module and the tooth-hoveling module and makes the equipment more compact.

[0009] In one embodiment, the first feeding mechanism described above uses a movable material support mechanism to flexibly feed the shovel tooth radiator; the second feeding mechanism uses a conveyor wheel to feed the shovel tooth radiator in a fixed direction.

[0010] In one embodiment, the aforementioned drilling and tapping module includes a plurality of drilling and tapping centers, which are respectively disposed on both sides of the second feeding mechanism, so that after each toothed radiator has undergone surface treatment by the grinding and shaping module, it can be fed to the plurality of drilling and tapping centers on both sides of it through the second feeding mechanism.

[0011] In one embodiment, the aforementioned drilling and tapping center can be used to mill grooves on the shovel tooth radiator using a TC840 high-speed drilling and tapping center.

[0012] In one embodiment, the aforementioned toothed radiator production line includes two toothed modules, the output ends of which are respectively disposed on both sides of the input end of the gear hobbing module, and two first feeding mechanisms are respectively disposed between each toothed module and the gear hobbing module, so that each toothed module can feed material to the input end of the gear hobbing module through the corresponding first feeding mechanism.

[0013] In one embodiment, the aforementioned tooth-shaving module can be used to process the aluminum profile using an SQ350NC / SQ450NC CNC metal shaving machine.

[0014] In one embodiment, the first feeding mechanism is configured as a movable feeding mechanism, which is movably disposed between adjacent modules in the tooth-shoveling module, tooth-rolling module, cutting module, and grinding and shaping module, thereby further improving the utilization rate of the first feeding mechanism and reducing the feeding vacuum period of the first feeding mechanism.

[0015] In one embodiment, the output end of the gear hobbing module is connected to the input end of the cutting module via a first feeding mechanism; the output end of the cutting module is connected to the input end of the grinding and shaping module via the first feeding mechanism; and the output end of the grinding and shaping module is connected to the input end of the second feeding mechanism. This enables the aluminum profiles to be processed sequentially by the gear hobbing module, the gear hobbing module, the cutting module, and the grinding and shaping module in the actual production process and then transferred to the second feeding mechanism for subsequent processing.

[0016] In one embodiment, the aforementioned gear hobbing module can be used to perform gear hobbing on the shovel-tooth radiator using an XN-T600 CNC fully automatic gear hobbing machine.

[0017] In one embodiment, the above-mentioned grinding and shaping module includes a deburring machine and a shaping punch. The input end of the deburring machine is connected to the output end of the cutting module; the output end of the deburring machine is connected to the input end of the shaping punch; and the output end of the shaping punch is connected to the input end of the second feeding mechanism.

[0018] In one embodiment, the cutting module and the deburring machine, and the deburring machine and the forming punch, can be connected by a first feeding mechanism.

[0019] In one embodiment, the deburring machine described above can be a deburring machine with a maximum deburring width, length and height of 600*1000*200mm.

[0020] In one embodiment, the aforementioned forming punch press may be an MPA-45T punch press whose precision standard conforms to JB / T6580-93 [JIS Class 1].

[0021] In one embodiment, the above-mentioned toothed radiator production line also includes a rolling module, which is located at the downstream end of the second conveying mechanism. After a number of toothed radiators have completed milling through the drilling and tapping module, they are conveyed to the output end of the second conveying mechanism through the second conveying mechanism. After the toothed radiators have been cleaned and dried, they are fed to the rolling module for tube loading and rolling processing.

[0022] In one embodiment, the aforementioned rolling module can be used to perform rolling processing on the toothed radiator using a V8 machining center.

[0023] In one embodiment, the aforementioned toothed radiator production line further includes a fly surface module, which is located downstream of the rolling module. After several toothed radiators have completed rolling, they are transferred to the fly surface module for fly surface processing in preparation for subsequent processing.

[0024] In one embodiment, the aforementioned flyface module can be used to perform flyface machining on the spade-tooth heat sink using a V1165 machining center.

[0025] This invention also discloses a manufacturing process for a toothed radiator, which includes the following steps:

[0026] S1. Feed the aluminum profile of the preset size into the tooth-shaving module for tooth-shaving processing to form a toothed heat sink with several teeth.

[0027] S2. After the tooth cutting process in step S1 is completed, the toothed radiator is transferred to the tooth hobbing module for tooth hobbing through the first material conveying mechanism. The tooth thickness of the toothed radiator is 0.05-2.0mm and the tooth spacing is 0.1-14mm.

[0028] S3. After the hobbing process in step S2 is completed, the toothed radiator is transferred to the cutting module for cutting through the first feeding mechanism.

[0029] S4. After the cutting process in step S3 is completed, the toothed radiator is transferred to the deburring machine through the first material conveying mechanism for deburring.

[0030] S5. After the burring process in step S4 is completed, the toothed radiator is transferred to the forming punch press for stamping and forming through the first material conveying mechanism. The tooth height of the toothed radiator is 4-120mm.

[0031] S6. After the stamping and shaping process in step S5 is completed, the toothed radiator is transferred to the drilling and tapping module for milling through the second material conveying mechanism.

[0032] S7. After the milling of the groove in step S6 is completed, the shovel tooth radiator is cleaned and dried.

[0033] S8. After the cleaning and drying in step S7, the toothed radiator is fed into the rolling module for rolling processing.

[0034] S9. After the shovel tooth radiator completes the rolling process in step S8, it is sequentially filled with glue, cured, and fed to the fly surface module for fly surface processing.

[0035] S10. After the surface processing in step S9 is completed, the toothed radiator undergoes full inspection, grinding, and shaping in preparation for subsequent processing to obtain the finished toothed radiator.

[0036] In summary, the toothed radiator production line disclosed in this invention connects the toothed module, gear hobbing module, cutting module, and grinding and shaping module in series using a movable first feeding mechanism. This effectively improves the tightness of the organic connection between these modules during actual installation, reduces installation space, minimizes the feeding distance between adjacent devices, and enhances feeding flexibility. Consequently, it significantly improves the processing efficiency of any one of these modules, thereby increasing the continuous processing capacity of the toothed radiator production line and greatly reducing workpiece accumulation between adjacent devices. Simultaneously, the continuous operation of the toothed radiator production line facilitates online sampling inspection of each production stage, greatly improving the timeliness of quality problem detection and effectively preventing the batch occurrence of defective products during production, thus improving yield. Furthermore, after each toothed radiator undergoes surface treatment via a grinding and shaping module, it is fed to several drilling and tapping centers on both sides via a second feeding mechanism. During this process, several toothed radiators are transported to their respective drilling and tapping centers for surface milling, thereby significantly improving the utilization rate and feeding efficiency of the second feeding mechanism. Several drilling and tapping centers can operate simultaneously to batch process several toothed radiators, effectively coordinating with the feeding efficiency of the second feeding mechanism to complete the milling of the toothed radiators and further preventing the accumulation of toothed radiators. The production process of the toothed radiator of this invention can effectively improve the feeding efficiency between various equipment, streamline operators, and greatly reduce labor costs. At the same time, due to the continuous production of toothed radiators, the material turnover during the production process is accelerated, and enterprises can prepare materials according to the actual production needs based on product usage, thereby effectively improving the controllability of production costs, reducing risks, and lowering raw material costs. Attached Figure Description

[0037] Figure 1 This is a schematic diagram of the production line for the shovel-tooth radiator in one embodiment. Detailed Implementation

[0038] To make the above-mentioned objects, features, and advantages of the present invention more apparent and understandable, specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of the present invention. However, the present invention can be practiced in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0039] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.

[0040] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this invention, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0041] In this invention, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.

[0042] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "over," and "on top" of the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0043] It should be noted that when an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. When an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.

[0044] Please see Figure 1 This invention discloses a toothed radiator production line, which includes a toothed module 1, a toothed module 2, a cutting module 3, a grinding and shaping module 4, and a drilling and tapping module 5. The toothed module 1, toothed module 2, cutting module 3, grinding and shaping module 4, and drilling module are arranged in sequence and installed on a preset mounting surface. The toothed module 1, toothed module 2, cutting module 3, and grinding and shaping module 4 are connected by a plurality of first feeding mechanisms 6, and the drilling module and the tube rolling module are connected by a second feeding mechanism 7. Specifically, the output end of the tooth-shaving module 1 is located on one side of the input end of the tooth-hogging module 2. The output end of the tooth-shaving module 1 and the input end of the tooth-hogging module 2 are laterally fed through the first feeding mechanism 6. This effectively reduces the feeding distance between the tooth-shaving module 1 and the tooth-hogging module 2, making the equipment arrangement more compact. This improves the continuity of processing between the tooth-shaving module 1 and the tooth-hogging module 2, reduces the accumulation and handling of toothed radiators, and improves production efficiency. It also facilitates online inspection during product production, greatly improving the timeliness of detecting production problems and preventing batch quality issues. In this embodiment, the first feeding mechanism 6 uses a movable material-supporting mechanism for flexible feeding of the toothed radiators; the second feeding mechanism 7 uses conveyor wheels for fixed-direction feeding of the toothed radiators.

[0045] Furthermore, the drilling and tapping module 5 includes several drilling and tapping centers 51, which are respectively arranged on both sides of the second feeding mechanism 7. This allows each toothed radiator, after surface treatment by the grinding and shaping module 4, to be fed to the several drilling and tapping centers 51 on both sides via the second feeding mechanism 7. During this process, the several toothed radiators are respectively transported to the corresponding drilling and tapping centers 51 for surface milling, thereby greatly improving the utilization rate and feeding efficiency of the second feeding mechanism 7. The several drilling and tapping centers 51 can operate simultaneously to batch process several toothed radiators, thus effectively cooperating with the feeding efficiency of the second feeding mechanism 7 to complete the milling of the toothed radiators, further avoiding the accumulation of toothed radiators. In this embodiment, the drilling and tapping center 51 can be a TC840 high-speed drilling and tapping center 51 to perform milling of the toothed radiators.

[0046] Furthermore, the toothed radiator production line includes two toothed modules 1. The output ends of the two toothed modules 1 are respectively located on both sides of the input end of the gear hobbing module 2. Two first feeding mechanisms 6 are respectively located between each toothed module 1 and the gear hobbing module 2, so that each toothed module 1 can feed material to the input end of the gear hobbing module 2 through the corresponding first feeding mechanism 6, thereby increasing the processing capacity of the gear hobbing module 2 per unit time and further improving the processing efficiency of the gear hobbing module 2. At the same time, it makes reasonable use of the installation space on both sides of the gear hobbing module 2, thereby further improving the utilization rate of the installation space and enhancing the compactness of the toothed radiator production line layout. In this embodiment, the toothed module 1 can be processed by using an SQ350NC / SQ450NC CNC metal toothed cutting machine to tooth the aluminum profile.

[0047] Furthermore, the first feeding mechanism 6 is configured as a movable feeding mechanism. The first feeding mechanism 6 is movably arranged between adjacent modules in the tooth-shoveling module 1, tooth-rolling module 2, cutting module 3, and grinding and shaping module 4. This further improves the utilization rate of the first feeding mechanism 6 and reduces the feeding vacuum period of the first feeding mechanism 6. As a result, the number of first feeding mechanisms 6 can be reduced in actual application, and the installation space of the tooth-shoveling radiator production line can be further reduced.

[0048] Specifically, the output end of the gear hobbing module 2 is connected to the input end of the cutting module 3 via the first feeding mechanism 6; the output end of the cutting module 3 is connected to the input end of the grinding and shaping module 4 via the first feeding mechanism 6; and the output end of the grinding and shaping module 4 is connected to the input end of the second feeding mechanism 7. This ensures that in the actual production process, the aluminum profile is sequentially processed by the gear hobbing module 1, gear hobbing module 2, cutting module 3, and grinding and shaping module 4 before being transferred to the second feeding mechanism 7 for further processing. In this embodiment, the gear hobbing module 2 can use an XN-T600 CNC fully automatic gear hobbing machine to perform gear hobbing processing on the geared radiator.

[0049] Furthermore, the grinding and shaping module 4 includes a deburring machine 41 and a shaping punch 42. The input end of the deburring machine 41 is connected to the output end of the cutting module 3; the output end of the deburring machine 41 is connected to the input end of the shaping punch 42; and the output end of the shaping punch 42 is connected to the input end of the second feeding mechanism 7. Specifically, the cutting module 3 and the deburring machine 41, and the deburring machine 41 and the shaping punch 42, can be connected by the first feeding mechanism 6. In this embodiment, the deburring machine 41 can be selected with a maximum deburring width, length, and height of 600*1000*200mm; the shaping punch 42 can be an MPA-45T punch press with a precision standard conforming to JB / T6580-93 [JIS Class 1].

[0050] Furthermore, the toothed radiator production line also includes a rolling module 8, which is located downstream of the second conveying mechanism 7. After several toothed radiators have undergone milling processing via the drilling and tapping module 5, they are conveyed to the output end of the second conveying mechanism 7. After cleaning and drying, several toothed radiators are fed into the rolling module 8 for tube loading and rolling processing. In this embodiment, the rolling module 8 can use a V8 machining center to perform rolling processing on the toothed radiators.

[0051] Furthermore, the toothed radiator production line also includes a fly surface module (not shown). The fly surface module is located downstream of the rolling module 8. After several toothed radiators have completed rolling processing, they are transferred to the fly surface module for fly surface processing in preparation for subsequent processing. In this embodiment, the fly surface module can use a V1165 machining center to perform fly surface processing on the toothed radiators.

[0052] This invention also discloses a manufacturing process for a toothed radiator, which includes the following steps:

[0053] S1. Feed the aluminum profile of the preset size into the toothed module 1 for toothed processing to form a toothed heat sink with several teeth.

[0054] S2. After the toothed radiator completes the toothed processing in step S1, it is transferred to the toothed module 2 for toothed processing through the first material conveying mechanism 6. The tooth thickness of the toothed radiator is 0.05-2.0mm and the tooth spacing is 0.1-14mm.

[0055] S3. After the hobbing process in step S2 is completed, the toothed radiator is transferred to the cutting module 3 for cutting through the first material conveying mechanism 6.

[0056] S4. After the cutting process in step S3 is completed, the toothed radiator is transferred to the deburring machine 41 through the first material conveying mechanism 6 for deburring.

[0057] S5. After the burring process in step S4 is completed, the toothed radiator is transferred to the forming punch 42 through the first material conveying mechanism 6 for stamping and forming. The tooth height of the toothed radiator is 4-120mm.

[0058] S6. After the stamping and shaping process in step S5 is completed, the toothed radiator is transferred to the drilling and tapping module 5 for milling through the second material conveying mechanism 7.

[0059] S7. After the milling of the groove in step S6 is completed, the shovel tooth radiator is cleaned and dried.

[0060] S8. After the cleaning and drying in step S7, the toothed radiator is fed into the rolling module 8 for rolling processing.

[0061] S9. After the shovel tooth radiator completes the rolling process in step S8, it is sequentially filled with glue, cured, and fed to the fly surface module for fly surface processing.

[0062] S10. After the surface processing in step S9 is completed, the toothed radiator undergoes full inspection, grinding and shaping to prepare for subsequent processing to obtain the finished toothed radiator.

[0063] In summary, the toothed radiator production line disclosed in this invention connects the toothed module, gear hobbing module, cutting module, and grinding and shaping module in series using a movable first feeding mechanism. This effectively improves the tightness of the organic connection between these modules during actual installation, reduces installation space, minimizes the feeding distance between adjacent devices, and enhances feeding flexibility. Consequently, it significantly improves the processing efficiency of any one of these modules, thereby increasing the continuous processing capacity of the toothed radiator production line and greatly reducing workpiece accumulation between adjacent devices. Simultaneously, the continuous operation of the toothed radiator production line facilitates online sampling inspection of each production stage, greatly improving the timeliness of quality problem detection and effectively preventing the batch occurrence of defective products during production, thus improving yield. Furthermore, after each toothed radiator undergoes surface treatment via a grinding and shaping module, it is fed to several drilling and tapping centers on both sides via a second feeding mechanism. During this process, several toothed radiators are transported to their respective drilling and tapping centers for surface milling, thereby significantly improving the utilization rate and feeding efficiency of the second feeding mechanism. Several drilling and tapping centers can operate simultaneously to batch process several toothed radiators, effectively coordinating with the feeding efficiency of the second feeding mechanism to complete the milling of the toothed radiators and further preventing the accumulation of toothed radiators. The production process of the toothed radiator of this invention can effectively improve the feeding efficiency between various equipment, streamline operators, and greatly reduce labor costs. At the same time, due to the continuous production of toothed radiators, the material turnover during the production process is accelerated, and enterprises can prepare materials according to the actual production needs based on product usage, thereby effectively improving the controllability of production costs, reducing risks, and lowering raw material costs.

[0064] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0065] The embodiments described above are merely illustrative of several implementations of the present invention, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the invention patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present invention, and these all fall within the protection scope of the present invention. Therefore, the protection scope of this invention patent should be determined by the appended claims.

Claims

1. A production line for a spade-shaped radiator, characterized in that, include: The system includes a tooth-shaving module, a tooth-hogging module, a cutting module, a grinding and shaping module, a drilling and tapping module, a tube rolling module, and a fly surface module. The tooth-shaving module, the tooth-hogging module, the cutting module, the grinding and shaping module, and the drilling and tapping module are arranged sequentially and installed on a preset mounting surface. The tooth-shaving module, the tooth-hogging module, the cutting module, and the grinding and shaping module are connected by several first feeding mechanisms, and the drilling and tapping module and the tube rolling module are connected by second feeding mechanisms. The output end of the shovel tooth module is located on one side of the input end of the gear hobbing module. The output end of the shovel tooth module and the input end of the gear hobbing module are fed laterally through the first feeding mechanism, thereby effectively reducing the feeding distance between the shovel tooth module and the gear hobbing module and making the equipment more compact. The toothed radiator production line includes two toothed modules. The output ends of the two toothed modules are respectively located on both sides of the input end of the gear hobbing module. Two first feeding mechanisms are respectively located between each toothed module and the gear hobbing module, so that each toothed module can feed material to the input end of the gear hobbing module through the corresponding first feeding mechanism. The first feeding mechanism is configured as a movable feeding mechanism, which is movably disposed between adjacent modules in the shovel module, the hobbing module, the cutting module and the grinding and shaping module, thereby further improving the utilization rate of the first feeding mechanism and reducing the feeding vacuum period of the first feeding mechanism; The output end of the gear hobbing module is connected to the input end of the cutting module via the first feeding mechanism; the output end of the cutting module is connected to the input end of the grinding and shaping module via the first feeding mechanism; the output end of the grinding and shaping module is connected to the input end of the second feeding mechanism. The grinding and shaping module includes a deburring machine and a shaping punch. The input end of the deburring machine is connected to the output end of the cutting module; the output end of the deburring machine is connected to the input end of the shaping punch; and the output end of the shaping punch is connected to the input end of the second material feeding mechanism. The production process of the above-mentioned shovel-tooth radiator production line includes the following steps: S1. Feed the aluminum profile of the preset size into the toothed module for toothed processing to form a toothed heat sink with several teeth. S2. After the toothed radiator completes the toothed processing in step S1, it is transferred to the gear hobbing module through the first material conveying mechanism for gear hobbing processing. The tooth thickness of the toothed radiator is 0.05-2.0mm and the tooth spacing is 0.1-14mm. S3. After the hobbing process in step S2 is completed, the toothed radiator is transferred to the cutting module for cutting through the first material conveying mechanism. S4. After the cutting process in step S3 is completed, the toothed radiator is transferred to the deburring machine through the first material conveying mechanism for deburring. S5. After the burring process in step S4 is completed, the toothed radiator is transferred to the forming punch press for stamping and forming through the first material conveying mechanism. The tooth height of the toothed radiator is 4-120mm. S6. After the stamping and shaping process in step S5 is completed, the toothed radiator is transferred to the drilling and tapping module for milling through the second material conveying mechanism. S7. After the milling of the groove in step S6 is completed, the toothed radiator is cleaned and dried. S8. After the cleaning and drying in step S7 are completed, the toothed radiator is fed into the rolling module for rolling processing. S9. After the shovel tooth radiator completes the rolling process in step S8, it is sequentially filled with glue, cured, and fed to the flying surface module for flying surface processing. S10. After the surface processing in step S9 is completed, the toothed radiator undergoes full inspection, grinding, and shaping in preparation for subsequent processing to obtain the finished toothed radiator.

2. The shovel-tooth radiator production line according to claim 1, characterized in that, The drilling and tapping module includes several drilling and tapping centers, which are respectively arranged on both sides of the second material conveying mechanism, so that after each toothed radiator has undergone surface treatment by the grinding and shaping module, it can be conveyed to the several drilling and tapping centers on both sides of it through the second material conveying mechanism.

3. The shovel-tooth radiator production line according to claim 1, characterized in that, The cutting module and the deburring machine, and the deburring machine and the forming punch can be connected by the first feeding mechanism.

4. The shovel-tooth radiator production line according to claim 1, characterized in that, The shovel-tooth radiator production line also includes a rolling module, which is located at the downstream end of the second conveying mechanism. After several shovel-tooth radiators have completed milling through the drilling and tapping module, they are conveyed to the output end of the second conveying mechanism. After several shovel-tooth radiators have been cleaned and dried, they are fed to the rolling module for tube loading and rolling processing.

5. The shovel-tooth radiator production line according to claim 4, characterized in that, The fly surface module is located at the downstream end of the rolling tube module. After several toothed radiators have completed the rolling tube processing, they are transferred to the fly surface module for fly surface processing in preparation for subsequent processing.