Automatic forming and quality inspection integrated equipment for air spring aluminum skeleton air chamber upper cover

By introducing intelligent production units with machine vision and closed-loop temperature control, the problems of inaccurate angle positioning, lack of coordination in process connection, and lagging quality inspection in traditional production have been solved. This has enabled efficient, precise, and automated production of air spring aluminum frame air chamber covers, improving product consistency and yield.

CN121946759BActive Publication Date: 2026-07-24NINGBO YONGJIN AUTO PARTS CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
NINGBO YONGJIN AUTO PARTS CO LTD
Filing Date
2026-04-01
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

In traditional production processes, the aluminum frame air chamber cover of air springs has low angular positioning accuracy, poor process coordination, unstable injection molding quality, and delayed quality inspection feedback, resulting in low production efficiency and poor product consistency.

Method used

By employing a high-precision angle pre-adjustment mechanism based on machine vision, a closed-loop temperature-controlled workpiece preheating mechanism, and an intelligent linkage process of automated injection molding and online weighing quality inspection, combined with intelligent sensing and real-time feedback control technology, a digital production unit is constructed to achieve accurate prediction and real-time control of process parameters and integrate online quality inspection.

Benefits of technology

It has achieved high-precision and high-speed automated production, significantly improved product consistency and yield, reduced non-value-added operation time, and lowered quality costs and supply chain risks.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121946759B_ABST
    Figure CN121946759B_ABST
Patent Text Reader

Abstract

The present application relates to injection molding technical field, specifically to air spring aluminum framework air chamber upper cover automatic forming and quality inspection integrated equipment, for the surface of air chamber upper cover injection molding coating plastic layer, including injection molding mechanism;Workbench, set up in one side of the injection molding mechanism;Feeding system, including setting up on the workbench feeding conveyor belt, angle pre-adjustment mechanism, workpiece preheating mechanism, transfer table, quality inspection mechanism and first mechanical arm and setting between the injection molding mechanism and the workbench second mechanical arm, through setting high accuracy angle pre-adjustment mechanism, workpiece preheating mechanism, automatic injection molding and online weighing quality inspection integrated process, solved the problem of low precision of manual positioning, poor process connection efficiency, injection molding combination and quality detection lag in traditional production mode.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of injection molding technology, specifically to an automated molding and quality inspection integrated equipment for the aluminum frame air chamber cover of an air spring. Background Technology

[0002] In current industrial production, the surface treatment of the air spring aluminum frame chamber cover often involves injection molding a layer of plastic onto its outer surface to improve the product's sealing performance, corrosion resistance, or to meet specific functional requirements. Traditional production processes typically rely on manual or semi-automated methods to complete multiple steps such as cover conveying, angle adjustment, preheating, injection molding, and quality inspection. These steps are carried out separately and independently, resulting in low production efficiency and difficulty in ensuring process consistency and product precision.

[0003] Specifically, traditional methods have significant shortcomings in workpiece angle positioning. Since the screw holes on the air chamber cover need to precisely correspond to the cavity of the injection mold, any angular deviation can easily lead to uneven plastic layers after injection molding or affect assembly accuracy. Current technologies typically rely on manual visual inspection or simple mechanical positioning, which makes it difficult to achieve high-precision, repeatable angle correction, thus affecting product yield. Furthermore, if the workpiece temperature is not effectively controlled before injection molding, the cold workpiece surface is prone to premature solidification of the molten plastic, resulting in insufficient bonding strength of the plastic layer or surface defects.

[0004] Furthermore, in traditional production processes, the connection between each process relies on manual transfer or single mechanical devices, lacking integrated material flow and coordinated control. This not only increases production cycle time but also makes it prone to errors due to human factors. Quality inspection is usually carried out independently at the end of production, lacking real-time linkage with the molding process. This makes it difficult to detect and handle defective products in a timely manner, increasing production costs and wasting resources.

[0005] Therefore, the industry urgently needs an integrated device that can combine precise angle positioning, workpiece temperature control, automated injection molding, and online quality inspection to achieve efficient, accurate, and stable continuous production, while improving product consistency and yield. Summary of the Invention

[0006] To address the problems existing in the current technology, an automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover is provided. By integrating a high-precision angle pre-adjustment mechanism based on machine vision, a workpiece preheating mechanism with closed-loop temperature control, and an intelligent linkage process of automated injection molding and online weighing quality inspection, a complete digital production unit is constructed. Combined with intelligent sensing and real-time feedback control technology, it solves the problems of low manual positioning accuracy, poor process coordination, unstable injection molding quality, and delayed quality inspection feedback in traditional production methods.

[0007] To address the problems of existing technologies, this invention provides an automated molding and quality inspection integrated device for an air spring aluminum frame chamber cover, used for injection molding a plastic layer onto the surface of the chamber cover. The device includes: an injection molding mechanism with a moving mold and a fixed mold, the moving mold and fixed mold closing to form a cavity on the surface of the chamber cover; a worktable disposed on one side of the injection molding mechanism; and a loading and unloading system including a loading conveyor belt, an angle pre-adjustment mechanism, a workpiece preheating mechanism, a transfer table, a quality inspection mechanism, and a first robotic arm disposed on the worktable, and a second robotic arm disposed between the injection molding mechanism and the worktable. The working area of ​​the first robotic arm covers the end and angle of the loading conveyor belt. The system comprises a pre-adjustment mechanism, a workpiece preheating mechanism, a transfer platform, and a quality inspection mechanism; the working area of ​​the second robotic arm covers the transfer platform, the workpiece preheating mechanism, and the injection molding mechanism; wherein, the pre-adjustment mechanism includes a horizontally rotating adjustment ring and a servo motor driving the adjustment ring, and a vision sensor with an upward-facing lens is installed at the bottom of the adjustment ring to acquire an image of the air chamber cover placed on the adjustment ring, and to control the servo motor to adjust the angle of the air chamber cover according to the image; the quality inspection mechanism includes a weighing platform for weighing the air chamber cover after it is covered with a plastic layer, and when the weighing data is lower than the preset standard weight, it is judged as a defective product.

[0008] Preferably, the loading and unloading system further includes an angle correction mechanism disposed on the workbench; the angle correction mechanism includes a correction table and conical heads distributed on the correction table, the conical heads being distributed in correspondence with the threaded holes of the air chamber cover.

[0009] Preferably, the workpiece preheating mechanism includes: an electric heating coil disposed on the worktable; a rotary motor disposed at the bottom of the electric heating coil, with a support tray extending into the electric heating coil on its output shaft; and a temperature sensor disposed on the worktable, with its detection end facing the air chamber cover on the support tray.

[0010] Preferably, the end of the first robotic arm is provided with a first gripper cylinder.

[0011] Preferably, the feeding conveyor belts are arranged in parallel on the worktable.

[0012] Preferably, the second robotic arm is a bull-head robotic arm, with two second gripper cylinders and two sets of suction cup fixtures distributed on both sides of its end.

[0013] Preferably, the quality inspection mechanism further includes a linear module set on the workbench and a coding device set on one side of the linear module. The linear module is provided with a holding platform for holding good products, and the good products are coded from the side when they pass through the coding device.

[0014] Preferably, a defective product box is also provided on the workbench.

[0015] Preferably, the workpiece preheating mechanism further includes a heat insulation box disposed on the worktable, wherein the heating coil and the rotary motor are both located inside the heat insulation box.

[0016] Preferably, the angle correction mechanism further includes a frame with an opening at the bottom end. The adjusting ring is rotatably mounted on the frame and coaxial with the opening. The servo motor is mounted on the frame, and a pulley is mounted on its output shaft. A transmission belt is mounted on the pulley and the adjusting ring. A groove coaxial with the top end of the adjusting ring is provided, and the air chamber cover is coaxially placed in the groove.

[0017] The advantages of this application compared to the prior art are:

[0018] This application introduces a machine vision-based angle pre-adjustment mechanism and a closed-loop control workpiece preheating mechanism, achieving accurate prediction and real-time control of key process parameters before injection molding. This fundamentally eliminates injection molding defects caused by positioning deviations and temperature fluctuations resulting from manual intervention. Through the collaborative scheduling algorithm of the first and second robotic arms and the integrated system layout, an intelligent connection mechanism between processes is constructed, achieving zero waiting time and zero backlog in material flow, significantly reducing non-value-added operation time.

[0019] Meanwhile, the integrated online weighing and quality inspection unit has real-time data acquisition capabilities, enabling continuous monitoring of quality indicators during production. Based on preset rules, it automatically identifies, alarms in real-time, and quickly isolates non-conforming products, forming a feedforward and feedback control loop for quality anomalies. This systematically reduces quality costs and supply chain risks. It provides a high-precision, high-efficiency, and high-reliability intelligent manufacturing solution with adaptive optimization capabilities for the plastic coating production of the air spring aluminum frame chamber cover. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the injection molding process for the air chamber cover.

[0021] Figure 2 This is a schematic diagram of the automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover of the present invention from a first perspective.

[0022] Figure 3 This is a top view of the automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover of the present invention.

[0023] Figure 4 This is a schematic diagram of the automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover of the present invention from a second perspective.

[0024] Figure 5 yes Figure 4 A magnified view of part A.

[0025] Figure 6 yes Figure 4 A magnified view of section B.

[0026] Figure 7 yes Figure 4 A magnified view of a portion of point C.

[0027] Figure 8 This is a schematic diagram of the injection molding mechanism and the second robotic arm in the automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover of the present invention.

[0028] Figure 9 This is a schematic diagram of the feeding conveyor belt in the automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover of the present invention.

[0029] Figure 10 yes Figure 9 A magnified view of a portion of point D.

[0030] Figure 11 This is a system flowchart of the automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover of the present invention.

[0031] The diagram is labeled as follows: 11. Air chamber cover; 12. Plastic layer; 21. Moving mold; 22. Fixed mold; 3. Workbench; 31. Defective product box; 41. Feeding conveyor belt; 42. Angle pre-adjustment mechanism; 421. Adjusting ring; 422. Servo motor; 423. Vision sensor; 424. Frame; 425. Pulley; 426. Transmission belt; 43. Workpiece preheating mechanism; 431. Heating coil; 432. Rotary motor; 433. Temperature sensor; 434. Insulation box; 44. Transfer platform; 451. Weighing platform; 452. Linear module; 453. Coding device; 454. Container platform; 46. First robotic arm; 461. First gripper cylinder; 47. Second robotic arm; 471. Second gripper cylinder; 472. Suction cup fixture; 48. Angle correction mechanism; 481. Correction platform; 482. Conical head. Detailed Implementation

[0032] To further understand the features, technical means, and specific objectives and functions achieved by the present invention, the present invention will be described in further detail below with reference to the accompanying drawings and specific embodiments.

[0033] like Figure 11As shown, the device operates according to the process shown in the figure. An automated forming and quality inspection integrated device for the air spring aluminum skeleton air chamber upper cover is used to inject a layer of plastic on the outer surface of the air chamber upper cover 11. It includes an injection mechanism and a loading and unloading system supporting the injection mechanism. The loading and unloading system includes a loading conveyor belt 41, an angle pre-adjustment mechanism 42, an angle correction mechanism 48, a workpiece preheating mechanism 43, a transfer table 44, a quality inspection mechanism, a first robotic arm 46, and a second robotic arm 47. The device is also equipped with a central control system that integrates a PLC and an industrial control computer to achieve coordinated control of each mechanism, data acquisition, and real-time adjustment of process parameters.

[0034] The device can output production data (such as weight, temperature, yield rate) to the host computer system and interface with the MES system to achieve traceability of production data.

[0035] The working area of the first robotic arm 46 covers the loading conveyor belt 41, the angle pre-adjustment mechanism 42, the angle correction mechanism 48, the workpiece preheating mechanism 43, the transfer table 44, and the quality inspection mechanism. The working area of the second robotic arm 47 covers the transfer table 44, the workpiece preheating mechanism 43, and the injection mechanism. The air chamber upper cover 11 is conveyed by the loading conveyor belt 41 and is clamped by the first robotic arm 46 at the end of the loading conveyor belt 41 and sent into the angle pre-adjustment mechanism 42.

[0036] The angle pre-adjustment mechanism 42 includes an adjustment ring 421 driven by a servo motor 422. A high-resolution vision sensor 423 (such as a 5-million-pixel CMOS) is provided at the bottom of the adjustment ring 421. After the air chamber upper cover 11 is placed in the adjustment ring 421, the servo motor 422 adjusts the angle of the air chamber upper cover 11 through the feedback of the vision sensor 423, and the positioning accuracy can reach ±0.1°, so as to ensure that after the air chamber upper cover 11 is sent into the mold, the position of the upper cover screw hole corresponds to the position in the mold cavity. After the adjustment of the angle pre-adjustment mechanism 42 is completed, there is still a certain angle error in the air chamber upper cover 11, and the first robotic arm 46 sends the upper cover into the angle correction mechanism 48.

[0037] The angle correction mechanism 48 includes a correction table and conical heads 482 distributed on the correction table 481. The conical heads 482 correspond to the screw holes of the air chamber upper cover 11. After the air chamber upper cover 11 is placed on the correction table, the conical heads 482 are docked with the screw holes to achieve precise positioning of the air chamber upper cover 11, and then the first robotic arm 46 clamps the air chamber upper cover 11 and sends it into the workpiece preheating mechanism 43 to prevent the plastic from directly solidifying on the surface of the air chamber upper cover 11 when it is too cold during injection molding.

[0038] After the air chamber cover 11 is heated to the set temperature, the second robotic arm 47 sends the heated air chamber cover 11 into the injection molding mechanism, and then the mold is closed for injection molding, injecting a layer of plastic onto the surface of the air chamber cover 11. After injection molding is completed, the mold is separated, and the second robotic arm 47 sends it to the transfer table 44, and then the first robotic arm 46 sends it to the quality inspection mechanism. The quality inspection mechanism has a weighing platform 451 and a coding machine 453. Only products that pass the weighing are coded.

[0039] like Figures 1 to 4 , Figure 9 and Figure 10 As shown, an automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover is used to injection mold a plastic layer 12 onto the surface of the air chamber cover 11. It includes: an injection molding mechanism with a moving mold 21 and a fixed mold 22, the moving mold 21 and fixed mold 22 closing to form a cavity on the surface of the air chamber cover 11; a worktable 3 disposed on one side of the injection molding mechanism; and a loading and unloading system including a loading conveyor belt 41, an angle pre-adjustment mechanism 42, a workpiece preheating mechanism 43, a transfer table 44, a quality inspection mechanism, and a first robotic arm 46 disposed on the worktable 3, and a second robotic arm 47 disposed between the injection molding mechanism and the worktable 3. The working area of ​​the first robotic arm 46 covers the end of the loading conveyor belt 41 and the angle pre-adjustment mechanism 42. The system comprises a workpiece preheating mechanism 43, a transfer platform, and a quality inspection mechanism. The working area of ​​the second robotic arm 47 covers the transfer platform 44, the workpiece preheating mechanism 43, and the injection molding mechanism. The angle pre-adjustment mechanism 42 includes a horizontally rotating adjustment ring 421 and a servo motor 422 driving the adjustment ring 421. A vision sensor 423 with an upward-facing lens is installed at the bottom of the adjustment ring 421. The vision sensor 423 acquires an image of the air chamber cover 11 placed on the adjustment ring 421, and the servo motor 422 is controlled to adjust the angle of the air chamber cover 11 based on the image. The quality inspection mechanism includes a weighing platform 451, employing a high-precision weighing sensor (accuracy ±0.01g), with data uploaded to the control system in real time. This platform is used to weigh the air chamber cover 11 after it is covered with a plastic layer 12, and the data is uploaded to the control system in real time. Qualified workpieces are coded by a coding device 453 (supporting QR codes, dates, batch numbers, etc.) and automatically sorted to the good product area. Defective products automatically fall into defective product box 31. The system records the reason for the defect (such as insufficient weight) and can issue a real-time alarm on the touch screen.

[0040] The injection molding mechanism has a moving mold 21 and a fixed mold 22, which are used to close the mold on the surface of the precisely positioned air chamber cover 11 to form an injection cavity. Its core innovation lies in the matching loading and unloading system, which is located on the worktable 3 on one side of the injection molding mechanism and achieves efficient connection and flexible flow between processes through two robotic arms.

[0041] The loading and unloading system integrates a loading conveyor belt 41, an angle pre-adjustment mechanism 42, a workpiece preheating mechanism 43, a transfer station 44, and a quality inspection mechanism. The first robotic arm 46 is responsible for covering the pre-treatment and quality inspection process from the end of the conveyor belt to the preheating stage, while the second robotic arm 47 is specifically responsible for transferring the air chamber cover 11 between the preheating, injection molding, and transfer processes, forming a seamless automated production line.

[0042] The angle pre-adjustment mechanism 42 serves as a preliminary positioning unit. Its core is an adjustment ring 421 driven by a servo motor 422, capable of horizontal rotation. A vision sensor 423 with its lens facing upwards is mounted at the bottom of the ring. When the air chamber cover 11 is placed on it, the vision system quickly identifies its features and drives the adjustment ring 421 to rotate, performing coarse pre-positioning of the air chamber cover 11 and laying the foundation for subsequent steps. To address the issues of insufficient or excessive preheating, the workpiece preheating mechanism 43 is integrated into a key process node, ensuring that the air chamber cover 11 reaches and maintains its optimal temperature before injection molding, promoting good flow and bonding of the plastic melt. To prevent missed inspections and achieve real-time quality assessment, the quality inspection mechanism employs an online weighing scheme, using a high-precision weighing platform 451 to instantly weigh the coated air chamber cover 11. If the weight is lower than the preset standard, the system automatically identifies it as a defective product with incomplete coating, achieving immediate and objective judgment and triage of product quality.

[0043] The equipment operation begins with the feeding conveyor belt 41 sequentially feeding the air chamber cover 11. The first robotic arm 46 grabs the air chamber cover 11 from the end of the feeding conveyor belt 41 and first places it into the angle pre-adjustment mechanism 42. The vision sensor 423 captures an image of the bottom of the air chamber cover 11, identifies its orientation, and then the servo motor 422 drives the adjustment ring 421 to rotate, so that the air chamber cover 11 completes the initial angle pre-adjustment. Subsequently, the first robotic arm 46 transfers the pre-adjusted air chamber cover 11 to the workpiece preheating mechanism 43 for uniform heating.

[0044] Once the air chamber cover 11 reaches the preset temperature, the second robotic arm 47 removes it and precisely places it into the fixed mold 22 of the injection molding mechanism. The moving mold 21 and the fixed mold 22 close, and plastic is injected onto the outer surface of the air chamber cover 11 to form a coating layer. After injection molding is completed and the mold is opened, the second robotic arm 47 removes the coated air chamber cover 11 and places it on the transfer platform 44.

[0045] The first robotic arm 46 picks up the injection-molded air chamber cover 11 from the transfer station 44 and transfers it to the weighing platform 451 of the quality inspection agency for online weighing. The system automatically determines whether the product is qualified by comparing the weighing data with the standard value, and codes qualified products or sends them to the next process, while defective products are separated, thus completing a fully automated work cycle.

[0046] like Figure 4 and Figure 7As shown, the loading and unloading system also includes an angle correction mechanism 48 disposed on the workbench 3; the angle correction mechanism 48 includes a correction table 481 and a conical head 482 distributed on the correction table 481, the conical head 482 being distributed corresponding to the threaded hole position of the air chamber cover 11.

[0047] The first robotic arm 46 picks up the workpiece from the end of the conveyor belt and first places it in the angle pre-adjustment mechanism 42 for preliminary angle adjustment under visual guidance. Then, the first robotic arm 46 moves the pre-adjusted air chamber cover 11 to the angle correction mechanism 48, where the tapered head 482 engages with the threaded hole to complete the final precise positioning. The precisely positioned workpiece is then transferred to the workpiece preheating mechanism 43 and heated to the required process temperature.

[0048] Once the predetermined temperature is reached, the second robotic arm 47 removes the preheated workpiece and precisely places it into the fixed mold 22 of the injection molding mechanism. After mold closing and injection molding, the second robotic arm 47 removes the wrapped workpiece and places it on the transfer table 44. Next, the first robotic arm 46 picks up the workpiece from the transfer table 44 and transfers it to the weighing table 451 of the quality inspection mechanism for online inspection. The system automatically sorts qualified and defective products based on the weighing results, thus forming a fully automated and high-precision production cycle.

[0049] like Figure 5 As shown, the workpiece preheating mechanism 43 includes: an electric heating coil 431, which is disposed on the worktable 3; a rotary motor 432, which is disposed at the bottom of the electric heating coil 431, and a support tray extending into the electric heating coil 431 is disposed on its output shaft; and a temperature sensor 433, which is disposed on the worktable 3, with its detection end facing the air chamber cover 11 on the support tray.

[0050] The workpiece preheating mechanism 43 includes an electric heating coil 431 disposed on the worktable 3, which radiates heat to the workpiece placed in its heating area.

[0051] A rotary motor 432 is located at the bottom of the heating coil 431, and its output shaft drives a support tray extending into the heating coil 431 to rotate at a uniform speed. This ensures that the air chamber cover 11 placed on the support tray is heated evenly, avoiding localized overheating or underheating. Simultaneously, a temperature sensor 433 mounted on the worktable 3 monitors the workpiece surface temperature in real time and feeds the data back to the control system, achieving dynamic closed-loop control of the preheating process and ensuring that each workpiece reaches and stabilizes within the optimal process temperature window before injection molding.

[0052] like Figure 5 As shown, the first robotic arm 46 is provided with a first gripper cylinder 461 at its end.

[0053] The first robotic arm 46's end effector is equipped with a first gripper cylinder 461. The design of the first gripper cylinder 461 ensures stability, reliability, and rapid response when gripping the air chamber cover 11, providing a fundamental guarantee for the precise and non-destructive transfer of workpieces between the conveyor belt, the dual-stage positioning mechanism, the preheating mechanism, the transfer table 44, and the quality inspection mechanism. The second robotic arm 47 is responsible for the efficient connection between the preheating, injection molding, and transfer processes.

[0054] like Figure 2 and Figure 4 As shown, there are two feeding conveyor belts 41 arranged in parallel on the workbench 3.

[0055] The design of the dual parallel feeding conveyor belts 41 enables the equipment to handle a variety of workpieces or achieve efficient continuous feeding. This not only reduces downtime caused by single-line feeding intervals or changes in workpiece type, but also optimizes the motion path and cycle time of the first robotic arm 46 by providing more optional gripping sources, thereby significantly improving the overall output and adaptability of the equipment.

[0056] like Figure 8 As shown, the second robotic arm 47 is a bull-head robotic arm, with two second gripper cylinders 471 and two sets of suction cup fixtures 472 distributed on both sides of its end.

[0057] The second robotic arm 47 adopts a bull-head robotic arm structure, with two second gripper cylinders 471 and two sets of suction cup fixtures 472 symmetrically distributed on both sides of its end. This allows the robotic arm to simultaneously perform two actions, "picking up" and "loading," in one reciprocating stroke: one gripper or suction cup grabs the already formed hot part in the injection molding machine, while the other gripper or suction cup holds a preheated cold blank to be processed. When the second robotic arm 47 moves to the mold position, it can first remove the finished product and then put in the blank within a very short time window, realizing the completely parallel processing of loading and unloading actions within the injection molding cycle and minimizing the mold waiting time.

[0058] like Figure 3 and Figure 6 As shown, the quality inspection mechanism also includes a linear module 452 set on the workbench 3 and a coding device 453 set on one side of the linear module 452. The linear module 452 is provided with a holding platform 454 for holding good products. When the good products pass through the coding device 453, they are coded from the side.

[0059] The quality inspection mechanism includes a linear module 452 disposed on the workbench 3, and a placing table 454 for holding the workpieces determined to be qualified after weighing is provided on the linear module 452. After the weighing table 451 determines that the workpieces are qualified, the first robotic arm 46 places the workpieces on the placing table 454. Subsequently, the linear module 452 drives the placing table 454 and the workpieces to move along a preset path. A coding machine 453 is fixedly arranged on one side of the path. When the placing table 454 passes by with the workpieces, the coding machine 453 automatically completes a permanent identification (such as production batch, date, serial number, etc.) on the side of the workpieces. After the identification is completed, the workpieces are conveyed to the designated qualified product collection area, completing automatic sorting.

[0060] As Figure 3 shown, a defective product box 31 is also arranged on the workbench 3.

[0061] The quality inspection mechanism not only realizes online inspection and identification of qualified products, but also realizes automatic identification, separation and collection of unqualified products by presetting the defective product box 31. This avoids the mixing of defective products into the qualified product line or relying on manual intervention to remove them, ensures that 100% of the output products are verified qualified products, and at the same time makes the waste treatment standardized and automated, truly realizing the full closed-loop of the quality control process.

[0062] As Figure 5 shown, the workpiece preheating mechanism 43 further includes a heat insulation box 434 arranged on the workbench 3, and both the electric heating coil 431 and the rotary motor432 are located inside the heat insulation box 434.

[0063] After the workpieces enter the workpiece preheating mechanism 43, the workpiece preheating mechanism 43 not only includes an electric heating coil 431, a bearing tray driven by a rotary motor 432, and a temperature sensor 433, but the entire heating unit is placed in a heat insulation box 434 arranged on the workbench 3. The electric heating coil 431 and the rotary motor 432 are both located in this heat insulation box 434. This structure effectively reduces the unnecessary loss of heat to the working environment and concentrates the heat field. It not only significantly improves the heating efficiency and reduces energy consumption, but more importantly, creates a preheating environment for the workpieces with less interference from the outside world and a more uniform and stable temperature distribution, ensuring the consistency of the preheating process. After preheating, the workpieces are subjected to efficient synchronous picking and placing injection molding operations by the second robotic arm 47 (a bull robotic arm with a composite end). Finally, the products are transferred by the first robotic arm 46 to the quality inspection mechanism integrating weighing, coding, and automatic sorting of qualified and unqualified products, completing the quality closed-loop.

[0064] As Figure 5As shown, the angle correction mechanism 48 also includes a frame 424 with an opening at the bottom. The adjusting ring 421 is rotatably mounted on the frame 424 and coaxial with the opening. The servo motor 422 is mounted on the frame 424, and a pulley 425 is mounted on its output shaft. A transmission belt 426 is mounted on the pulley 425 and the adjusting ring 421. The top of the adjusting ring 421 is provided with a groove coaxial with it, and the air chamber cover 11 is placed coaxially in the groove.

[0065] The angle pre-adjustment mechanism 42 includes a frame 424, a servo motor 422, and a rotatable adjustment ring 421. The frame 424 is fixed to the worktable 3, and has an opening at its bottom end. The adjustment ring 421 is rotatably mounted on the frame 424 via a bearing assembly, and its rotation axis is coaxial with the center line of the opening at the bottom end of the frame 424. The servo motor 422 is fixedly mounted on the frame 424, and its output shaft is connected to a pulley 425.

[0066] The adjusting ring 421 has a circumferentially connected transmission belt 426 corresponding to the pulley 425. The transmission belt 426 is wrapped around the pulley 425 and the adjusting ring 421 to transmit the rotational motion of the servo motor 422 to the adjusting ring 421. The top of the adjusting ring 421 has an annular groove coaxial with it, which is used to position and support the air chamber cover 11, so that the air chamber cover 11 remains coaxial with the adjusting ring 421 when placed in the groove. A vision sensor 423 with its lens facing upward is provided below the opening at the bottom of the frame 424. It is used to acquire image information of the air chamber cover 11 placed in the groove of the adjusting ring 421, and control the servo motor 422 to drive the adjusting ring 421 to rotate according to the image information, thereby pre-adjusting the angle of the air chamber cover 11.

[0067] The above embodiments only illustrate one or more implementations of the present invention, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of protection of the present invention. 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 scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the appended claims.

Claims

1. An automated molding and quality inspection integrated equipment for the aluminum frame air chamber cover of an air spring, used for injection molding a plastic layer onto the surface of the air chamber cover, characterized in that, include: The injection molding mechanism has a moving mold and a fixed mold, which close together to form a cavity on the surface of the air chamber cover. A workbench is located on one side of the injection molding mechanism; The loading and unloading system includes a loading conveyor belt, an angle pre-adjustment mechanism, a workpiece preheating mechanism, a transfer platform, a quality inspection mechanism, and a first robotic arm mounted on the worktable, as well as a second robotic arm positioned between the injection molding mechanism and the worktable. The working area of ​​the first robotic arm covers the end of the loading conveyor belt, the angle pre-adjustment mechanism, the workpiece preheating mechanism, the transfer platform, and the quality inspection mechanism; the working area of ​​the second robotic arm covers the transfer platform, the workpiece preheating mechanism, and the injection molding mechanism. The angle pre-adjustment mechanism includes a horizontally rotating adjustment ring and a servo motor driving the adjustment ring. A vision sensor with an upward-facing lens is installed at the bottom of the adjustment ring. The vision sensor acquires an image of the air chamber cover placed on the adjustment ring, and the servo motor is controlled to adjust the angle of the air chamber cover based on the image. The quality inspection mechanism includes a weighing platform for weighing the air chamber cover after it is coated with a plastic layer. If the weight is lower than a preset standard weight, it is determined to be a defective product. The loading and unloading system also includes an angle correction mechanism mounted on the workbench. The angle correction mechanism includes a correction platform and conical heads distributed on the correction platform, the conical heads being distributed in a manner corresponding to the threaded holes on the air chamber cover.

2. The automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover according to claim 1, characterized in that, The workpiece preheating mechanism includes: An electric heating coil is disposed on the worktable; A rotary motor is located at the bottom of the heating coil, and a support tray extending into the heating coil is provided on its output shaft. A temperature sensor is mounted on the workbench, with its detection end facing the air chamber cover on the support tray.

3. The automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover according to claim 1, characterized in that, The first robotic arm is equipped with a first gripper cylinder at its end.

4. The automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover according to claim 1, characterized in that, The feeding conveyor belts are arranged in parallel on the worktable.

5. The automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover according to claim 1, characterized in that, The second robotic arm is a bull-head robotic arm, with two second gripper cylinders and two sets of suction cup fixtures distributed on both sides of its end.

6. The automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover according to any one of claims 1-5, characterized in that, The quality inspection mechanism also includes a linear module set on the workbench and a coding device set on one side of the linear module. The linear module is equipped with a holding platform for holding good products. When the good products pass through the coding device, they are coded from the side.

7. The automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover according to any one of claims 1-5, characterized in that, A defective product box is also set up on the workbench.

8. The automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover according to claim 2, characterized in that, The workpiece preheating mechanism also includes a heat insulation box set on the workbench, and the heating coil and the rotary motor are both located inside the heat insulation box.

9. The automated molding and quality inspection integrated equipment for the air spring aluminum frame air chamber cover according to claim 1, characterized in that, The angle correction mechanism also includes a frame with an opening at the bottom. The adjusting ring is rotatably mounted on the frame and coaxial with the opening. The servo motor is mounted on the frame, and a pulley is mounted on its output shaft. A transmission belt is mounted on the pulley and the adjusting ring. A groove coaxial with the top of the adjusting ring is provided, and the air chamber cover is coaxially placed in the groove.