Hardware cutting waste collecting device

By using a motor-driven slide rail structure and connection structure, the problem of difficult position adjustment of existing hardware cutting waste collection devices when multiple devices are operating in parallel has been solved, realizing accurate and flexible collection of waste and improving the automation and efficiency of the production line.

CN223889552UActive Publication Date: 2026-02-10ZHAOQING DA MING MING PLASTIC METAL PROD CO LTD
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Patent Information

Application Number
CN202520114374.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-16
Publication Date
2026-02-10
Estimated Expiration
2035-01-16

AI Technical Summary

Technical Problem

Existing metal cutting waste collection devices cannot quickly and accurately adjust their positions when multiple cutting devices are operating in parallel, resulting in low waste collection efficiency and increased complexity of manual intervention and scheduling.

Method used

The collection device, driven by a motor, can slide on the electric base through a sliding rail structure and a connecting structure, achieving precise and flexible waste collection, reducing manual intervention, and improving stability and adaptability.

Benefits of technology

It enables efficient centralized collection of waste from multiple machines, improves the automation level of the production line and the efficiency of waste treatment, and reduces manual intervention and operational errors.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a hardware cutting waste collecting device which is used for collecting pipe materials of two hardware cutting devices arranged side by side, the device comprises an electric base, a collecting device and a horizontal moving device, the electric base is placed in the vertical direction, the collecting device and the electric base are arranged side by side, and the collecting device can be driven by a motor to slide on the base; the horizontal moving device is connected with the collecting device and the electric base, smooth movement of the horizontal moving device in the horizontal direction is guaranteed through a sliding rail structure, the collecting device can flexibly move through the design, the collecting device is suitable for centralized collection of waste of multiple devices, manual intervention is reduced, and the waste collecting efficiency and stability are improved; according to the system, the automation level of a production line is greatly improved, the high efficiency and accuracy of waste treatment are ensured, and the risks of operation errors and equipment failures are reduced.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of hardware, in particular to a hardware cutting waste collecting device. BACKGROUND

[0002] At present, hardware cutting waste collecting devices are commonly used to collect waste generated from cutting equipment. Traditional waste collecting devices are usually fixed in one position and mainly rely on manual or mechanical means to collect and process waste generated during the cutting process. Most of these devices can only adapt to the waste collection needs of a single cutting equipment and cannot flexibly adapt to the waste processing needs of different machines and production lines, resulting in poor waste collection effect when multiple cutting equipment are operating in parallel and increasing the complexity of manual intervention and scheduling.

[0003] In the prior art, some hardware cutting waste collecting devices collect waste from multiple equipment by configuring movable collecting devices. For example, some designs use sliding rails and driving mechanisms to enable the collecting device to slide along a specific track, thereby covering the waste collection area of multiple cutting equipment. Through motor drive, sliding rail and guide rail system, the prior art can adjust the position of the waste collecting device within a certain range to adapt to the waste processing needs of multiple equipment. These solutions mostly focus on moving or electrically driving the waste collecting device from one cutting equipment to another, but the existing technical solutions have some limitations in actual application, especially in stability, accuracy and operation simplicity.

[0004] Although the prior art can move the waste collecting device through sliding rails and driving mechanisms, most existing devices rely on manual adjustment or complex scheduling programs and cannot quickly and accurately collect waste from multiple equipment during actual production. For example, existing waste collecting devices often cannot accurately switch positions between multiple equipment, resulting in waste from some equipment not being collected in time and even causing waste overflow and pollution. In addition, most existing technical solutions lack effective control over the sliding range and direction of the waste collecting device, resulting in low efficiency of centralized waste collection in large-scale production and failing to fully meet the needs of multiple cutting equipment operating in parallel. CONTENT OF THE UTILITY MODEL

[0005] Therefore, it is necessary to provide a solution to the above problems.

[0006] The embodiments of the present application provide a hardware cutting waste collecting device for collecting pipe material of two parallel hardware cutting devices, which comprises:

[0007] An electric base is placed on the ground in the vertical direction;

[0008] The collecting device is arranged parallel to the base and can face the hardware cutting device at both ends of the length direction of the electric base;

[0009] The horizontal moving device is connected between the base and the collecting device and is electrically connected with the base, and in the horizontal direction, the horizontal moving device is in sliding connection with the base;

[0010] In the vertical direction, the collecting device is located at one end of the electric base, and the motor can drive the collecting device to slide along the other end of the electric base.

[0011] In at least one embodiment of the present application, the horizontal moving device includes a sliding rail structure and a connecting structure;

[0012] In the horizontal direction, the connecting structure is arranged parallel to the base, the sliding rail structure is connected between the connecting structure and the electric base, and one end of the sliding rail structure is fixedly connected with the electric base, and the other end is in sliding connection with the connecting structure.

[0013] In at least one embodiment of the present application, the sliding rail structure includes a sliding rod group and a support plate;

[0014] In the horizontal direction, the sliding rod group is arranged on the contact surface between the sliding rail structure and the electric base, and the support plate is connected between the sliding rod group and abuts against the connecting structure.

[0015] In the horizontal direction, the connecting structure is in sliding connection with the sliding rod group.

[0016] In at least one embodiment of the present application, the collecting device includes a bottom plate and a pipe material containing structure;

[0017] In the vertical direction, the bottom plate is arranged on the contact surface between the collecting device and the connecting structure, and the pipe material containing structure is arranged away from the contact surface of the bottom plate, and the pipe material containing structure allows the pipe material to slide in the length direction thereof.

[0018] In at least one embodiment of the present application, the connecting device includes a motor and a sliding block;

[0019] In the vertical direction, the motor and the sliding block are arranged adjacent to each other, the sliding block is arranged on the contact surface between the connecting device and the collecting device, and the sliding block is in sliding connection with the sliding rod group.

[0020] In the horizontal direction, the motor drives the sliding block to slide in the length direction of the sliding rod group, and the motor is electrically connected with the electric base.

[0021] In at least one embodiment of this application, the receiving structure includes a plurality of receiving boxes, each receiving box having an opening facing the sliding direction of the tubular material;

[0022] Viewed along the vertical direction, the plurality of accommodating boxes are arranged side by side along the width direction of the base plate, and the plurality of openings form receiving ends along the width direction of the base plate;

[0023] Viewed along the length of the base plate, the tube slides into the bottom end of the receiving structure along the receiving end.

[0024] In at least one embodiment of this application, the electric base is provided with a control console, the control console is electrically connected to the motor, and the control console can periodically drive the motor to drive the slider to slide periodically in the length direction of the slider group.

[0025] In at least one embodiment of this application, the electrical base is provided with a support structure at the contact end with the ground;

[0026] Viewed along the vertical direction, the support structure includes multiple casters arranged side by side, with one end of each caster fixedly connected to the electric base and the other end slidably connected to the ground.

[0027] In at least one embodiment of this application, the collecting device further includes a side plate;

[0028] Viewed along the vertical direction, the two side plates are located at both ends of the collecting device along the width direction of the collecting device, and the side plates abut against the collecting device along the horizontal direction.

[0029] In at least one embodiment of this application, the receiving box is made of stainless steel.

[0030] The aforementioned metal cutting waste collection device is driven by a motor to slide along the other end of the electric base. This design enables more precise and flexible waste collection, ensuring centralized collection of waste from multiple devices, improving the stability and adaptability of the collection device, reducing human intervention, and significantly enhancing the automation level and waste processing efficiency of the production line. Attached Figure Description

[0031] Figure 1 This is a front view of a hardware cutting waste collection device;

[0032] Figure 2 An exploded view of a hardware cutting waste collection device;

[0033] Figure 3 This is a rear view of an exploded view of a hardware cutting waste collection device;

[0034] Figure 4It is a pipe housing structure.

[0035] Explanation of main component symbols

[0036] 1. Electric base; 2. Collection device; 3. Horizontal moving device; 5. Connecting structure; 6. Slide rail structure; 7. Slide rod assembly; 8. Support plate; 9. Motor; 10. Slider; 11. Containing structure; 12. Base plate; 13. Tube material containing structure; 14. Containing box; 16. Caster wheel; 17. Side plate; 100. A hardware cutting waste collection device. Detailed Implementation

[0037] The embodiments of this application will now be described with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.

[0038] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or may also have an intervening component. When a component is considered to be "placed" on another component, it can be directly placed on the other component or may also have an intervening component. The terms "top," "bottom," "upper," "lower," "left," "right," "front," "back," and similar expressions used in this article are for illustrative purposes only.

[0039] An embodiment of this application provides a hardware cutting waste collection device for collecting pipe material from two parallel hardware cutting devices. The hardware cutting waste collection device includes:

[0040] The electrical base is placed vertically on the ground;

[0041] A collection device is arranged side by side with the base and can be directly opposite the hardware cutting devices located at both ends of the electric base along its length.

[0042] A horizontal moving device is connected between the base and the collecting device and electrically connected to the base. In the horizontal direction, the horizontal moving device is slidably connected to the base.

[0043] Viewed along the vertical direction, the collecting device is located at one end of the electric base, and the motor can drive the collecting device to slide along the other end of the electric base.

[0044] The aforementioned metal cutting waste collection device is driven by a motor to slide along the other end of the electric base. This design enables more precise and flexible waste collection, ensuring centralized collection of waste from multiple devices, improving the stability and adaptability of the collection device, reducing human intervention, and significantly enhancing the automation level and waste processing efficiency of the production line.

[0045] The following is in conjunction with the appendix Figures 1-4 The following describes some embodiments of this application in detail. Unless otherwise specified, the embodiments and features described below can be combined with each other.

[0046] An embodiment of this application provides a hardware cutting waste collection device 1002 for collecting pipe materials from two hardware cutting devices arranged side by side. The hardware cutting waste collection device 2 includes:

[0047] Electric base 1 is placed vertically on the ground;

[0048] The collecting device 2 is arranged in parallel with the base and can be directly opposite the hardware cutting devices located at both ends of the electric base 1 along its length.

[0049] A horizontal moving device 3 is connected between the base and the collecting device 2 and is electrically connected to the base. In the horizontal direction, the horizontal moving device 3 is slidably connected to the base.

[0050] Viewed along the vertical direction, the collecting device 2 is located at one end of the electric base 1, and the motor 9 can drive the collecting device 2 to slide along the other end of the electric base 1.

[0051] Specifically, the combination of the electric base 1, the collecting device 2, and the horizontal moving device 3, through the sliding rail structure 6 and the drive mechanism of the motor 9, enables the collecting device 2 to slide along the sliding rail on the electric base 1. The most significant feature of this structure is that the collecting device 2 is not fixed but can move along the entire length of the electric base 1. The electric base 1, as the basic support surface, provides a stable platform, ensuring the smooth sliding of the collecting device 2. The addition of the horizontal moving device 3 allows the collecting device 2 to quickly connect to different hardware cutting devices for waste collection when needed. Driven by the motor 9, the collecting device 2 can precisely slide to the other end of the electric base 1, ensuring that the waste is collected centrally. The beneficial effects of this solution are a significant improvement in waste collection efficiency, no need for manual intervention, saving time and labor costs. It is particularly suitable for the automated waste processing of multiple hardware cutting devices arranged in parallel, ensuring the stability and efficiency of waste collection, and avoiding the errors and inconveniences of traditional manual collection.

[0052] Furthermore, the horizontal moving device 3 includes a slide rail structure 6 and a connecting structure 5;

[0053] Viewed along the horizontal direction, the connecting structure 5 is arranged side by side with the base, the slide rail structure 6 is connected between the connecting structure 5 and the electric base 1, and one end of the slide rail structure 6 is fixedly connected to the electric base 1, while the other end is slidably connected to the connecting structure 5.

[0054] Specifically, the horizontal moving device 3, through the combined design of the slide rail structure 6 and the connecting structure 5, enables the collecting device 2 to slide smoothly along the electric base 1. One end of the slide rail structure 6 is fixedly connected to the electric base 1, while the other end is slidably connected to the connecting structure 5, which bears and guides the movement of the collecting device 2. This design ensures that the collecting device 2 can slide precisely in the horizontal direction, avoiding the problem of the collecting device 2 deviating from the track. The use of the slide rail structure 6 effectively improves the stability of the entire collecting device 2, avoiding unstable movement caused by excessive friction or improper design. At the same time, the parallel arrangement of the connecting structure 5 and the electric base 1 also helps to balance the load of the structure, avoiding tilting or uneven movement caused by excessive load on one side. This design not only enhances the stability and smoothness of the system, but also optimizes the accuracy of waste collection, enabling waste to be quickly and accurately introduced into the receiving structure 11, avoiding missed collection or accumulation.

[0055] Furthermore, the slide rail structure 6 includes a slide rod assembly 7 and a support plate 8;

[0056] Viewed along the horizontal direction, the slide bar assembly 7 is disposed on the contact surface between the slide rail structure 6 and the electric base 1, and the support plate 8 is connected between the slide bar assembly 7 and abuts against the connecting structure 5;

[0057] In the horizontal direction, the connecting structure 5 is slidably connected to the slide rod assembly 7.

[0058] Specifically, the slide rail structure 6 consists of a slide rod assembly 7 and a support plate 8. The slide rod assembly 7 is installed on the surface of the electric base 1 that contacts the slide rail, while the support plate 8 connects the slide rod assemblies 7 and supports the entire structure. This design effectively enhances the load-bearing capacity of the slide rail structure 6, allowing the collection device 2 to move smoothly and bear the weight of waste without deformation. The slide rod assembly 7 acts as a sliding guide, ensuring that the collection device 2 moves smoothly in the horizontal direction with low friction, reducing energy consumption and wear. The support plate 8, while connecting the slide rod assembly 7, further enhances the stability of the structure, preventing the collection device 2 from tilting due to imbalance or external forces. Through this precise structural design, the collection device 2 can slide smoothly and reliably on the slide rail of the electric base 1, not only extending its service life but also improving the equipment's working efficiency and stability. For industrial environments with long-term operation, this design makes the waste collection process more efficient, reduces the risk of mechanical failure, and avoids the inaccuracies and inefficiencies of manual operation.

[0059] Furthermore, the collecting device 2 includes a base plate 12 and a pipe receiving structure 1311;

[0060] Viewed along the vertical direction, the base plate 12 is disposed on the contact surface between the collecting device 2 and the connecting structure 5, and the tube receiving structure 1311 is disposed on the base plate 12 away from the contact surface, and the tube receiving structure 1311 allows the tube to slide along its length direction.

[0061] Specifically, the design between the base plate 12 of the collection device 2 and the pipe material receiving structure 1311 enables effective waste collection. The base plate 12 provides a stable support surface, ensuring the stability of the receiving structure 11 and allowing waste to flow smoothly within it. The pipe material receiving structure 1311 is positioned away from the contact surface, allowing the pipe material to slide freely along its length without clogging or accumulating due to space constraints. The receiving structure 11 can not only accommodate large volumes of waste but also adapt to different shapes and sizes of waste, especially pipe material waste. Its design fully considers the sliding characteristics of the waste, thereby improving waste collection efficiency. This solution, through its rational structural design, makes waste collection more orderly, effectively improving the automation level of the production line, reducing manual intervention, increasing the flexibility and efficiency of waste collection, and reducing equipment failures or environmental pollution caused by excessive waste accumulation.

[0062] Furthermore, the connecting device includes a motor 9 and a slider 10;

[0063] Viewed along the vertical direction, the motor 9 and the slider 10 are arranged adjacent to each other, the slider 10 is located on the contact surface between the connecting device and the collecting device 2, and the slider 10 is slidably connected to the slide rod group 7;

[0064] In the horizontal direction, the motor 9 drives the slider 10 to slide in the length direction of the slide bar group 7, and the motor 9 is electrically connected to the electric base 1.

[0065] Specifically, the combined design of the motor 9 and slider 10 in the connecting device allows the collecting device 2 to slide precisely within the slide rail structure 6. The motor 9 drives the slider 10 to move along the slide rail, thereby driving the collecting device 2 to collect waste. The adjacent and precisely matched arrangement of the motor 9 and slider 10 not only ensures that the motor 9 can accurately drive the slider 10 but also ensures that the slider 10 remains stable while moving on the slide rail. Through the connection between the slider 10 and the slide rail assembly, the movement of the motor 9 can be directly transmitted to the collecting device 2, ensuring high efficiency and accuracy in the waste collection process. The timing control function of the motor 9 eliminates the need for manual labor in waste collection, allowing the equipment to automatically complete waste cleaning according to a preset program. The beneficial effect of this design is that, driven by the motor 9, the entire waste collection process is significantly automated, avoiding the inefficiency and errors caused by manual operation, improving work efficiency, and reducing operational risks.

[0066] Furthermore, the accommodating structure 11 includes a plurality of accommodating boxes 14, each accommodating box 14 having an opening facing the sliding direction of the tubular material;

[0067] Viewed along the vertical direction, the plurality of accommodating boxes 14 are arranged side by side along the width direction of the base plate 12, and the plurality of openings form receiving ends along the width direction of the base plate 12;

[0068] Viewed along the length of the base plate 12, the tube slides into the bottom end of the receiving structure 11 along the receiving end.

[0069] Specifically, the accommodating structure 11, through the arrangement of multiple accommodating boxes 14, can hold more waste material. Each accommodating box 14 has its opening facing the sliding direction of the pipe, effectively guiding the waste material into the accommodating structure 11. The parallel arrangement of multiple accommodating boxes 14 not only significantly increases the waste collection capacity but also allows for the rational distribution of waste, ensuring that each accommodating box 14 can accommodate different types or sizes of waste material, avoiding waste accumulation. The design of the accommodating box 14 opening towards the sliding direction ensures that waste material can smoothly enter the accommodating box 14, reducing accumulation and obstruction during the collection process. The beneficial effects of this design are that it improves the processing capacity of the collection device 2, increases the waste material capacity collected each time, improves work efficiency, and prevents waste overflow due to insufficient accommodating space.

[0070] Furthermore, the electric base 1 is equipped with a control console, which is electrically connected to the motor 9. The control console can periodically drive the motor 9 to drive the slider 10 to slide periodically along the length direction of the slide bar group 7.

[0071] Specifically, the integrated design of the control console and motor 9 enables automated control of the waste collection process. The control console, through its timing function, precisely controls the operation of motor 9, allowing slider 10 to slide along the guide rail as planned and effectively collect waste. Through adjustments on the control console, operators can flexibly set the waste collection time and frequency without manual adjustments each time, greatly improving the level of automation. This design not only enhances the system's convenience but also reduces errors that may arise from human operation, optimizes the waste collection workflow, and ensures a more efficient and accurate collection process.

[0072] Furthermore, the electrical base 1 has a support structure at the end that contacts the ground;

[0073] Viewed along the vertical direction, the support structure includes multiple casters 16 arranged side by side, with one end of each caster 16 fixedly connected to the electric base 1 and the other end slidably connected to the ground.

[0074] Specifically, the support structure on the electrical base 1 provides flexible mobility through the installation of casters 16. The casters 16 can rotate freely in all directions, allowing the equipment to move easily within the workshop. The design of the casters 16 not only enhances the mobility of the electrical base 1 but also allows the equipment to be repositioned according to work requirements, avoiding space waste caused by fixed positions. The caster 16 design of the support structure effectively improves the flexibility of the equipment, making the internal space layout of the workshop more flexible, facilitating the movement and adjustment of the equipment, and improving the overall utilization rate of the working environment.

[0075] Furthermore, the collecting device 2 also includes a side plate 17;

[0076] Viewed along the vertical direction, the two side plates 17 are disposed at both ends of the collecting device 2 along the width direction of the collecting device 2, and the side plates 17 abut against the collecting device 2 along the horizontal direction.

[0077] Specifically, the side plate 17 of the collection device 2 is designed to provide additional stability for the collection device 2. Both ends of the side plate 17 are fixed in the width direction of the collection device 2, abutting against the collection device 2 horizontally, ensuring the stability of the collection device 2 during waste collection and preventing tilting caused by the impact force of waste during collection. The design of the side plate 17 also effectively prevents waste leakage, ensuring the sealing of the collection device 2. The beneficial effects of this design are improved safety and stability of the collection device 2, prevention of waste overflow, and ensuring a clean and tidy workshop environment.

[0078] Furthermore, the container 14 is made of stainless steel.

[0079] Specifically, the container 14 is made of stainless steel, giving it strong corrosion resistance and wear resistance. Since chemical substances and high temperatures may be generated during metal cutting, the choice of material for the container 14 is crucial. The use of stainless steel ensures that the container 14 will not be affected by corrosion during long-term use, and it is not easily worn, enabling it to continuously and efficiently perform its waste collection function. The beneficial effects of this design are that it greatly extends the service life of the container 14, reduces the frequency of replacement and maintenance costs, and improves the long-term efficiency and stability of the waste collection device 2.

[0080] The above description is merely an embodiment of this application. It should be noted that those skilled in the art can make improvements without departing from the inventive concept of this application, but these improvements all fall within the protection scope of this application.

Claims

1. A hardware cutting waste collection device for collecting pipe material from two parallel hardware cutting devices, characterized in that, The hardware cutting waste collection device includes: The electrical base is placed vertically on the ground; A collection device is arranged side by side with the base and can be directly opposite the hardware cutting devices located at both ends of the electric base along its length. A horizontal moving device is connected between the base and the collecting device and is electrically connected to the electric base. In the horizontal direction, the horizontal moving device is slidably connected to the base. Viewed along the vertical direction, the collecting device is located at one end of the electric base, and the motor can drive the collecting device to slide along the other end of the electric base.

2. The hardware cutting waste collection device according to claim 1, characterized in that, The horizontal moving device includes a slide rail structure and a connecting structure; Viewed along the horizontal direction, the connecting structure and the base are arranged side by side, the slide rail structure is connected between the connecting structure and the electric base, and one end of the slide rail structure is fixedly connected to the electric base, while the other end is slidably connected to the connecting structure.

3. The hardware cutting waste collection device according to claim 2, characterized in that, The slide rail structure includes a slide rod assembly and a support plate; Viewed along the horizontal direction, the slide bar assembly is located on the contact surface between the slide rail structure and the electric base, and the support plate is connected between the slide bar assemblies and abuts against the connecting structure; In the horizontal direction, the connecting structure is slidably connected to the slide rod assembly.

4. The hardware cutting waste collection device according to claim 2, characterized in that, The collection device includes a base plate and a tubular material receiving structure; Viewed along the vertical direction, the base plate is located on the contact surface between the collecting device and the connecting structure, the tube receiving structure is located on the base plate away from the contact surface, and the tube receiving structure allows the tube to slide along its length.

5. The hardware cutting waste collection device according to claim 3, characterized in that, The connection structure includes a motor and a slider; Viewed along the vertical direction, the motor and the slider are arranged adjacent to each other, the slider is located on the contact surface between the connecting structure and the collecting device, and the slider is slidably connected to the slide rod assembly; In the horizontal direction, the motor drives the slider to slide in the length direction of the slide bar assembly, and the motor is electrically connected to the electric base.

6. The hardware cutting waste collection device according to claim 4, characterized in that, The accommodating structure includes multiple accommodating boxes, each accommodating box having an opening facing the sliding direction of the tubular material; Viewed along the vertical direction, the plurality of accommodating boxes are arranged side by side along the width direction of the base plate, and the plurality of openings form receiving ends along the width direction of the base plate; Viewed along the length of the base plate, the tube slides into the bottom end of the receiving structure along the receiving end.

7. The hardware cutting waste collection device according to claim 5, characterized in that, The electric base is equipped with a control console, which is electrically connected to the motor. The control console can periodically drive the motor to move the slider along the length of the slide bar assembly.

8. The hardware cutting waste collection device according to claim 1, characterized in that, The electric base is provided with a support structure at the contact end with the ground; Viewed along the vertical direction, the support structure includes multiple casters arranged side by side, with one end of each caster fixedly connected to the electric base and the other end slidably connected to the ground.

9. The hardware cutting waste collection device according to claim 4, characterized in that, The collection device also includes a side plate; Viewed along the vertical direction, the two side plates are located at both ends of the collecting device along the width direction of the collecting device, and the side plates abut against the collecting device along the horizontal direction.

10. The hardware cutting waste collection device according to claim 6, characterized in that, The container is made of stainless steel.