Processing apparatus
The metal induction module automatically controls the removal of waste by induction metal buttons, solving the problem of low waste treatment efficiency in the existing technology, achieving efficient and accurate waste removal, and improving processing efficiency and product quality.
Patent Information
- Application Number
- CN202421909839.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-07
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-08-07
AI Technical Summary
In the prior art, the residual waste material on metal buttons is inefficient in handling, and the manual operation button opening and removal assembly is inefficient, which affects processing efficiency and product quality.
The metal induction component is used to induce the metal button to generate an induction signal, and the material removal component is controlled to automatically remove waste, including electromagnetic induction and jet removal, and the metal button generation signal is used to induce the metal button generation signal to control the opening of the material removal component to remove waste.
It improves the efficiency and accuracy of waste removal, reduces manual operation, and improves processing efficiency and product quality.
Smart Images

Figure CN223070866U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of waste treatment, in particular to a treatment device. Background Art
[0002] During the process of installing metal buttons on fabrics, a small part of the fabric will be punched and separated to form waste. After the metal button is connected to the fabric, the waste will remain on the metal button. If the waste is not treated, on the one hand, the waste may break away during subsequent processing, thus affecting the progress of subsequent processes; on the other hand, if the waste breaks away after the product is formed, it will affect the aesthetics of the product and reduce the quality of the product.
[0003] In related technologies, in one solution, manual tools are used to remove the waste. For example, manual tweezers are used to clamp out and remove the waste. This solution has low efficiency. In another solution, equipment is used to remove the waste. In this operation mode, an operator needs to press a button, and after the material removal component in the equipment receives the opening signal, it removes the waste remaining on the metal button. In the above solutions, since an operator needs to manually operate the button to activate the material removal component, the operation efficiency is low. Summary of the Utility Model
[0004] The main object of the utility model is to propose a treatment device that can improve the treatment efficiency of the waste remaining on the metal button.
[0005] To achieve the above object, the utility model proposes a treatment device for removing the waste remaining on the metal button. The treatment device includes:
[0006] A control component;
[0007] A material removal component, connected to the control component, and the material removal component is controlled by the control component to remove the waste remaining on the metal button;
[0008] A metal induction component, electrically connected to the control component. The metal induction component is used to sense the metal button and generate an induction signal, and the control component controls the material removal component to open in response to the induction signal.
[0009] In the above embodiment, the processing device includes a control component, a material removal component and a metal sensing component. When the operator places the metal button within the sensing range of the metal sensing component, the metal sensing component generates a sensing signal after sensing the metal button. The control component controls the material removal component to open in response to the sensing signal, so that the material removal component removes the waste remaining on the metal button. In this scheme, compared with the scheme of manually operating the control button to open the material removal component in the related art, this scheme fully considers the material properties of the metal button. By setting the metal sensing component to sense the metal button, it is determined whether to open the material removal component. The operator does not need to manually operate the switch button to remove the waste, and the efficiency of removing the waste is higher. And, further, since the waste remains in the metal button, the material removal action is more accurate by sensing the metal button to open the material removal component. Compared with the scheme of using other sensors (such as infrared sensors) to control the opening of the material removal component, the success rate of removing the waste is higher.
[0010] In some embodiments, the metal induction component includes an electromagnetic generating device and an electromagnetic receiving device, the electromagnetic generating device is used to generate an electromagnetic field, and the electromagnetic receiving device is used to receive an electromagnetic signal and generate an induction signal according to the received electromagnetic signal.
[0011] In the above embodiment, the metal sensing component can sense the metal buttons in the target area through air without direct contact with the metal buttons, and the sensing process is more convenient.
[0012] In some embodiments, the metal sensing component includes an electrical connection contact, and the metal sensing component is configured to generate a sensing signal after the electrical connection contact contacts contact metal.
[0013] In the above embodiment, the metal sensing component generates a sensing signal by contacting the metal button, so that the sensing position of the metal button is clearer (the position of the electrical connection contact is the sensing position), and the operator can quickly place the metal button at the corresponding sensing position, thereby improving the efficiency of removing waste.
[0014] In some embodiments, the material removal assembly includes an air jet portion configured to remove waste material remaining on the metal button by directing an air flow.
[0015] In the above embodiment, the removal efficiency of waste materials is higher.
[0016] In some embodiments, the material removal assembly further includes a driving portion, which is connected to the jetting portion to drive the gas to be directed to the jetting portion.
[0017] In the above embodiment, a high-speed airflow is generated by the driving part, and the duration of the airflow can be longer, thereby improving the efficiency of waste cleaning.
[0018] The material removal component further includes a storage container for storing compressed gas. The storage container is in communication with the jetting part and is used to direct the stored compressed gas to the jetting part.
[0019] In the above embodiments, only by setting the storage container for storing compressed gas can a high-speed air flow be generated. The structure of the material removal component is simpler and the cost is lower.
[0020] In some embodiments, the control component includes an electromagnetic valve, which is respectively connected to the material removal component and the metal induction component to obtain an induction signal and control the opening of the material removal component according to the induction signal.
[0021] In the above embodiments, the induction of the electromagnetic valve is more accurate.
[0022] In some embodiments, the control component further includes a transformer, which is electrically connected to the electromagnetic valve, the material removal component and the metal induction component respectively. The transformer is used to step down the voltage to a preset voltage and then supply power to the electromagnetic valve, the material removal component and the metal induction component respectively.
[0023] In the above embodiments, compared with the scheme of separately supplying power to the three components, the structure is simpler by using a transformer to supply power to the three components simultaneously.
[0024] In some embodiments, the processing device further includes a protective shell that defines a receiving cavity. The material removal component and the metal induction component are both disposed in the receiving cavity and are spaced apart from each other or connected to each other. The protective shell further includes an operation window that communicates with the receiving cavity.
[0025] In the above embodiments, by providing the protective shell, it is convenient to collect the waste materials.
[0026] In some embodiments, both the material removal component and the metal induction component are disposed at the upper end in the receiving cavity. The operation window is disposed at the side position of the protective shell and is vertically below the metal induction component and the material removal component.
[0027] In some embodiments, a material taking port is further provided below the protective shell. The material taking port is adapted to export the waste materials removed from the metal buttons. The processing device further includes a collection component having a collection cavity. The collection component is adapted to be disposed below the material taking port and collect the waste materials in the collection cavity;
[0028] The collection component is detachably connected to the protective shell and the collection cavity communicates with the material taking port; or the collection component is fixedly connected to the protective shell and the collection cavity communicates with the material taking port. The collection device is provided with a guide port communicating with the collection cavity. The collection component has a collection state in which the guide port is closed and a material guiding state in which the guide port is opened; or the collection component is adapted to be disposed below the material taking port and is spaced apart from the protective shell. A collection port opposite to the material taking port is provided above the collection component.
[0029] In the above embodiments, it is convenient for centralized treatment of waste materials. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on the structures shown in these drawings.
[0031] Figure 1 It is a partial cross-sectional schematic diagram of the combination of a mold and a button assembly in an embodiment of the present invention; wherein, the first button body and the second button body are in the state before buckling;
[0032] Figure 2 It is a partial cross-sectional schematic diagram of the combination of a mold and a button assembly in an embodiment of the present invention; wherein, the first button body and the second button body are in the state after buckling;
[0033] Figure 3 It is a structural schematic diagram of a processing device in an embodiment of the present invention;
[0034] Figure 4 It is a three-dimensional schematic diagram of the combination of a protective shell, a jet part and a metal induction component of a processing device in another embodiment of the present invention;
[0035] Figure 5 For Figure 4 a partial enlarged schematic diagram at position A in
[0036] Description of the reference numerals in the drawings:
[0037] Processing device 10;
[0038] Control component 100; solenoid valve 110;
[0039] Material removal component 200; jet part 210; storage container 220;
[0040] Metal induction component 300; electromagnetic generating device 310; electromagnetic receiving device 320;
[0041] Transformer 400;
[0042] Protective shell 500; operation window 510; material taking port 520;
[0043] Button assembly 600; connecting layer 610; metal button 620; first button body 621; buckling part 6211; second button body 622; waste material 630;
[0044] Mold 700;
[0045] Collection component 800.
[0046] The realization, functional features, and advantages of the present utility model will be further described in conjunction with embodiments with reference to the accompanying drawings. Specific embodiments
[0047] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments in the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the present utility model.
[0048] Refer to Figures 1 - 2 , the female buckle of the metal button 620 includes a first buckle body 621 and a second buckle body 622. The first buckle body 621 includes a tubular buckling part 6211, and the second buckle body 622 has an opening that cooperates with the buckling part 6211. During the buckling process of the first buckle body 621 and the second buckle body 622, the fabric is clamped between the first buckle body 621 and the second buckle body 622. A small part of the fabric will be punched and separated by the buckling part 6211 of the female buckle to form waste 630. After the buckling part 6211 passes through the opening of the second buckle body 622, it is squeezed and deformed by the mold 700, so that a buckling cavity for buckling the male buckle is formed on the inner side, and the outer side is bent and connected to the second buckle body 622 to jointly clamp the fabric with the second buckle body 622. The waste 630 separated from the fabric will remain in the buckling cavity of the buckling part 6211 due to the stamping of the mold 700.
[0049] In the related art, equipment is used to remove the waste 630. The equipment for removing the waste 630 includes a material removal component and a button for turning on the material removal component. The material removal component can include a mechanically driven fine needle or tweezers. By driving the fine needle to be inserted into the buckling cavity, the waste 630 can be picked out, or by driving the tweezers to extend into the buckling cavity to clamp out the waste 630. When an operator presses the button manually, after the material removal component in the equipment receives the signal to turn on, it starts to work to remove the waste 630 remaining on the metal button 620. In the above solution, on the one hand, since it is necessary to manually operate the button to turn on the material removal component, the operation efficiency is low; on the other hand, when an operator operates the button with one hand, only the other hand holds the fabric and the button. Since the fabric is a flexible material, when held with one hand, it is difficult to match the relative position of the waste 630 and the material removal component, resulting in a low success rate of removing the waste 630. When using a foot pedal to turn on the button, the wiring harness layout is relatively troublesome.
[0050] In order to achieve automated processing and improve processing efficiency, the applicant subsequently sets an infrared sensor to generate an induction signal to control the opening of the material removal component. However, the infrared sensor needs to be used for hand induction. On the one hand, additional induction actions of the user's hand are still required, which is troublesome to operate; on the other hand, the induction accuracy is poor and the material removal success rate is low.
[0051] In view of this, referring to Figures 1 - 5 , this embodiment provides a processing device 10 for separating the waste material 630 remaining on the metal button 620 from the metal button 620. Among them, the button assembly 600 includes a connection layer 610, a metal button 620 connected to the connection layer 610, and a waste material 630 separated from the connection layer 610 when the metal button 620 is connected to the connection layer 610. It should be noted that, on the one hand, the button in the button assembly 600 in this embodiment is a metal button 620, that is, the button is made of metal; on the other hand, the material of the connection layer 610 connected to the metal button 620 in this embodiment is not limited to cloth material, and the material of the connection layer 610 can also be plastic material or other materials; on the third hand, the waste material 630 in this embodiment is separated from the connection layer 610, specifically formed by being separated from the connection layer 610 during the process of connecting the metal button 620 to the connection layer 610, that is, before the connection layer 610 connects the metal button 620, the connection layer 610 and the waste material 630 are an integral structure.
[0052] Referring to Figure 3 , the processing device 10 includes a control component 100, a material removal component 200, and a metal induction component 300. The material removal component 200 is used to remove the waste material 630 remaining on the metal button 620. Specifically, when the waste material 630 is stuck in the buckling cavity of the metal button 620, the material removal component 200 is configured to be able to remove the waste material 630 stuck in the buckling cavity of the metal button 620. In other embodiments, the waste material 630 may also be stuck in other places of the metal button 620, and the material removal component 200 can be specifically adjusted according to the specific position where the waste material 630 is stuck, so as to facilitate the removal of the waste material 630. The specific structure of the material removal component 200 depends on actual needs, and only needs to be able to remove the waste material 630. In some embodiments, the material removal component 200 may include an electrically driven needle-like member, which is driven to pick the waste material 630 off the metal button 620. In other embodiments, the material removal component 200 may include an electrically driven tweezer-like member, which is driven to clip the waste material 630 off the metal button 620. Referring to Figure 3 , in yet another embodiment, the material removal component 200 may include a jet part 210, and the jet part 210 blows the waste material 630 off the metal button 620 by spraying high-pressure gas. The specific structure and working principle of the jet part 210 will be described in detail below.
[0053] Refer to Figure 3 , the material removing component 200 is connected to the control component 100, and the material removing component 200 is controlled by the control component 100 to remove the waste material 630 remaining on the metal button 620. In other words, the control component 100 is used to control the material removing component 200 to start working or end working. The connection manner between the control component 100 and the material removing component 200 can be diverse. In some embodiments, the control component 100 is electrically connected to the material removing component 200, and the control component 100 controls the material removing component 200 to start working or end working through an electrical signal. In other embodiments, the control component 100 can be mechanically connected to the material removing component 200. For example, when the material removing component 200 includes a jetting part 210, the control component 100 can include a valve, and the valve controls the export and cut-off of the air flow of the jetting part 210 by opening and closing, thereby controlling the jetting part 210 to start working and end working. Specifically, refer to Figure 3 , in some embodiments, the control component 100 includes a solenoid valve 110, and the solenoid valve 110 is respectively connected to the material removing component 200 and the metal induction component 300 to obtain an induction signal and control the material removing component 200 to start according to the induction signal.
[0054] After the control component 100 obtains the induction signal, it controls the material removing component 200 to start working or end working. In the related art, the above induction signal is generated by an operator pressing a button. Differently, in this embodiment, the processing device 10 uses the metal induction component 300 to generate the above induction signal. The metal induction component 300 is electrically connected to the control component 100. The metal induction component 300 is used to sense metal and generate an induction signal, and the control component 100 controls the material removing component 200 to start in response to the induction signal generated by the metal induction component 300. Specifically, the metal induction component 300 is used to sense metal components, and can specifically be used to sense whether there are metal components in the corresponding area position. During the actual operation process, when the operator places the metal button 620 of the button component 600 in the above corresponding area, the metal induction component 300 generates an induction signal after sensing the metal button 620, and the control component 100 controls the material removing component 200 to start in response to the induction signal to remove the waste material 630 in the corresponding area.
[0055] The control component 100 controls the blanking component 200 to start working by obtaining the induction signal of the metal induction component 300. For the control of the blanking component 200 to end working, the control component 100 can control the blanking component 200 to end working by obtaining the induction signal of the metal induction component 300, or can control the blanking component 200 to end working by other means. Specifically, in some embodiments, after the metal induction component 300 senses that the metal button 620 in the corresponding area has left, another induction signal is generated, and the control component 100 controls the blanking component 200 to end working in response to the above induction signal. In other embodiments, when the metal induction component 300 senses the metal button 620, an induction signal is generated, and the control component 100 controls the blanking component 200 to start working in response to the induction signal. And when the control component 100 controls the blanking component 200 to start working, timing is carried out. When the timing time exceeds the preset time, the control component 100 controls the blanking component 200 to end working. In this embodiment, the control of the blanking component 200 to end working does not require the participation of the metal induction component 300.
[0056] Compared with the solution in the related art that manually operates the control button to start the blanking component 200, the solution in this embodiment fully considers the material characteristics of the metal button 620, sets the metal induction component 300 to sense the metal button 620, so as to judge whether to start the blanking component 200. The operator does not need to manually operate the switch button for the action of removing the waste 630, and the efficiency of removing the waste 630 is higher. And further, since the waste 630 remains in the metal button 620, starting the blanking component 200 by sensing the metal button 620 makes the blanking action more accurate. Compared with the solution that uses other sensors (such as infrared sensors) to control the blanking component 200 to start, the success rate of removing the waste 630 is higher.
[0057] See Figure 3, in some embodiments, the metal induction component 300 includes an electromagnetic generating device 310 and an electromagnetic receiving device 320. The electromagnetic generating device 310 is used to generate an electromagnetic field, and the electromagnetic receiving device 320 is used to receive electromagnetic signals and generate induction signals according to the received electromagnetic signals. During the specific working process, the electromagnetic generating device 310 emits electromagnetic waves towards the target area, the electromagnetic receiving device 320 acquires the reflected electromagnetic waves, and the electromagnetic receiving device 320 can achieve the induction of metal components by analyzing the data of the acquired electromagnetic waves. Specifically, when there is no metal component in the target area, the electromagnetic waves received by the electromagnetic receiving device 320 have a certain waveform. When there is a metal component in the target area, due to the interaction between the metal component and the electromagnetic waves emitted by the electromagnetic transmitting unit, the waveform of the electromagnetic waves received by the electromagnetic receiving device 320 will change significantly, thereby generating an induction signal. In this embodiment, the metal induction component 300 can inductively sense metal components in the target area without direct contact with the metal components, making the induction process more convenient.
[0058] In other embodiments, the metal induction component 300 includes electrical connection contacts, and the metal induction component 300 is configured to generate induction signals when the electrical connection contacts come into contact with metal. In a specific implementation, the metal induction component 300 includes two electrical connection contacts, and the two electrical connection contacts are respectively connected to the two poles of a power supply and are set to be open between the two electrical connection contacts so that there is no current conduction between the two electrical connection contacts. The two electrical connection contacts are connected to the upper wall of the carrier platform. When the metal button 620 is placed on the upper wall of the carrier platform, the metal button 620 electrically connects the two electrical connection contacts respectively, thereby forming a path between the two electrical connection contacts, and current can be transmitted between the two electrical connection contacts, thereby generating an induction signal. In another specific embodiment, the metal induction component 300 may include one electrical connection contact, and one electrical connection contact is arranged on the upper wall of the carrier platform. When the metal button 620 is placed on the upper wall of the carrier platform, the metal button 620 electrically connects the electrical connection contact, thereby causing a change in the resistance at the electrical connection contact, and then generating an induction signal. In this solution, the metal induction component 300 generates an induction signal by contacting the metal button 620, making the induction position of the metal button 620 clearer (the position where the electrical connection contact is located is the induction position), and the operator can quickly place the metal button 620 at the corresponding induction position, improving the efficiency of removing the waste material 630.
[0059] See Figure 3, in some embodiments, the material removal component 200 includes a jetting portion 210 configured to remove the waste material 630 remaining on the metal button 620 by discharging an air flow. The jetting portion 210 is used to discharge a high-speed flowing air flow, and the waste material 630 is separated from the metal button 620 by the impact of the air flow on the waste material 630. In order to increase the flow rate of the air flow, in some embodiments, the jetting portion 210 includes a nozzle, and along the flow direction of the air flow, the cross-sectional area of the inner hole of the nozzle gradually decreases. See Figures 4 - 5 , in a further embodiment, when the material removal component 200 includes a jetting portion 210 and the metal induction component includes an electromagnetic generating device 310 and an electromagnetic receiving device 320, in order to improve the accuracy of waste material 630 removal, both the electromagnetic generating device 310 and the electromagnetic receiving device 320 are annular, and the two are jointly sleeved on the jetting portion 210. In this solution, the position where the metal button 620 is sensed and the position where the jetting occurs are more unified, and the success rate of waste material 630 removal is higher. Further, the inner diameter of the electromagnetic generating device 310 can be greater than the inner diameter of the electromagnetic receiving device 320, the outer diameter of the electromagnetic generating device 310 can be greater than the outer diameter of the electromagnetic receiving device 320, and the electromagnetic generating device 310 is sleeved on the portion with a larger outer diameter above the jetting portion 210, and the electromagnetic receiving device 320 is sleeved on the portion with a smaller inner diameter below the jetting portion 210. This solution can reduce the interference between the electromagnetic generating device 310 and the electromagnetic receiving device 320. In other embodiments, the coils of the electromagnetic generating device 310 and the electromagnetic receiving device 320 can also be distributed on both sides of the jetting portion 210 in the radial direction and are respectively arranged around the jetting portion 210 for half a turn.
[0060] In order to direct the high-speed air flow through the jetting portion 210 to the metal button 620, in some embodiments, the material removal component 200 further includes a driving portion connected to the jetting portion 210 to drive the gas to be directed to the jetting portion 210. Specifically, the driving portion can include a driving motor and a fan blade, and the driving motor drives the fan blade to rotate, thereby driving the air flow to move toward the jetting portion 210 and finally be discharged from the jetting portion 210. In this solution, the high-speed air flow is generated by the motor driving the fan blade, and the duration of the air flow can be longer, improving the efficiency of waste material 630 cleaning. See Figure 3, in other embodiments, the material removing assembly 200 further includes a storage container 220 for storing compressed gas. The storage container 220 is in communication with the jetting portion 210 and is configured to direct the stored compressed gas to the jetting portion 210. In this embodiment, the material removing assembly 200 may not include a drive motor and a fan blade. By previously compressing air into the storage container 220, when the jetting portion 210 needs to discharge air flow, the compressed gas in the storage container 220 can be directed to the jetting portion 210. Compared with the structure provided with a drive motor and a fan blade, only the storage container 220 for storing compressed gas is provided in this embodiment to generate high-speed air flow, and the structure of the material removing assembly 200 is simpler and the cost is lower.
[0061] Refer to Figure 3 , in some embodiments, the control assembly 100 further includes a transformer 400. The transformer 400 is electrically connected to the solenoid valve 110, the material removing assembly 200, and the metal induction assembly 300 respectively, and is configured to supply power to the solenoid valve 110, the material removing assembly 200, and the metal induction assembly 300 after stepping down or stepping up the voltage to a preset voltage. The transformer 400 can be used for stepping down or stepping up the voltage. When the input voltage is higher than the preset voltage, the transformer 400 can be used for stepping down the voltage. When the input voltage is lower than the preset voltage, the transformer 400 can be used for stepping up the voltage. In a specific embodiment, the input voltage of the processing device 10 is 22V, the transformer 400 is used for stepping up the voltage, and the transformer 400 steps up the voltage to 24V and then supplies power to the solenoid valve 110, the material removing assembly 200, and the metal induction assembly 300. In this solution, on the one hand, by supplying power to the solenoid valve 110, the material removing assembly 200, and the metal induction assembly 300 after stepping up the voltage, the safety can be improved; on the other hand, compared with the solution of separately supplying power to the three, the structure is simpler by using the transformer 400 to supply power to the three at the same time.
[0062] After the waste material 630 is separated from the metal button 620, in order to facilitate the collection of the waste material 630, refer to Figure 3 , in some embodiments, the processing device 10 further includes a protective housing 500 that defines an accommodation cavity. The material removing assembly 200 and the metal induction assembly 300 are both disposed in the accommodation cavity. Refer to Figure 3 , in one embodiment, the material removing assembly 200 and the metal induction assembly 300 are arranged at intervals from each other in the accommodation cavity. Refer to Figures 4 - 5, in another embodiment, the material removing component 200 and the metal induction component 300 are connected to each other within the accommodation cavity. The protective shell 500 further includes an operation window 510 communicating with the accommodation cavity. During use, an operator can hold the button component 600 and insert it into the accommodation cavity through the operation window 510, and move the metal button 620 of the button component 600 to a position where it can be sensed by the metal induction component 300. After the waste material 630 is separated from the metal button 620, the waste material 630 remains within the protective shell 500, and the button component 600 after removing the waste material 630 is taken out through the operation window 510.
[0063] Referring to Figure 3 , in some embodiments, both the material removing component 200 and the metal induction component 300 are provided at the upper end within the accommodation cavity, the operation window 510 is provided at the side position of the protective shell 500, and is vertically located below the metal induction component 300 and the material removing component 200. This solution enables the waste material 630 to fall to the bottom of the accommodation cavity under the action of the airflow of the air jet part 210 after being removed, facilitating the collection of the waste material 630.
[0064] For the convenience of centralized cleaning of the waste material 630, referring to Figure 3 , a material taking port 520 is further provided below the protective shell 500. The material taking port 520 is adapted to discharge the waste material 630 separated from the metal button 620. The processing device 10 further includes a collection component 800. The collection component 800 is provided with a collection cavity. The collection component 800 is adapted to be disposed below the material taking port 520 and enable the collection cavity to collect the waste material 630. In one embodiment, the collection component 800 is detachably connected to the protective shell 500 and the collection cavity communicates with the material taking port 520. After the waste material 630 in the collection component 800 is full, the collection component 800 can be detached from the protective shell 500. After the waste material 630 collected in the collection component 800 is centrally processed, it is assembled to the protective shell 500 again for subsequent collection of the waste material 630. In another embodiment, the collection component 800 is fixedly connected to the protective shell 500 and the collection cavity communicates with the material taking port 520. The collection device is provided with a material guiding port communicating with the collection cavity. The collection component 800 has a collection state in which the material guiding port is closed and a material guiding state in which the material guiding port is opened. In this embodiment, the collection component 800 can be a cloth bag structure. The upper end of the cloth bag structure is connected to the protective shell 500 and communicates with the material taking port 520. The lower end of the cloth bag structure is provided with a material guiding port. In the collection state, the lower end of the cloth bag is tied with a cord to close the material guiding port. In the material guiding state, the cord is unlocked to open the material guiding port. In yet another embodiment, the collection component 800 is adapted to be disposed below the material taking port 520 and is spaced apart from the protective shell 500. A collection port opposite to the material taking port 520 is provided above the collection component 800. After the waste material 630 is separated from the metal button 620, it falls from the material taking port 520 into the lower collection component 800.
[0065] It should be noted that if there are directional indications (such as up, down, left, right, front, back...) involved in the embodiments of the present utility model, the directional indications are only used to explain the relative positional relationship, movement conditions, etc. between components in a specific posture. If the specific posture changes, the directional indications will also change accordingly.
[0066] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present utility model, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one such feature. In addition, if "and / or", "and / or" or "and / or" appear throughout the text, their meanings include three parallel scenarios. Taking "A and / or B" as an example, it includes Scenario A, or Scenario B, or the scenario where both A and B are satisfied simultaneously. In addition, the technical solutions between the various embodiments can be combined with each other, but it must be based on the ability of those of ordinary skill in the art to implement. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection required by the present utility model.
[0067] The above are only the preferred embodiments of the present utility model, and do not limit the patent scope of the present utility model. Any equivalent structural transformation made under the inventive concept of the present utility model by using the content of the specification and drawings of the present utility model, or directly / indirectly applied in other related technical fields, is included in the patent protection scope of the present utility model.
Claims
1. A processing device, characterized in that, For removing the waste remaining on the metal button, the processing device includes: A control component; A material removal component, connected to the control component, and the material removal component is controlled by the control component to remove the waste remaining on the metal button; A metal induction component, electrically connected to the control component, the metal induction component is used to sense the metal button and generate an induction signal, and the control component controls the material removal component to start in response to the induction signal.
2. The processing device according to claim 1, wherein The metal induction component includes an electromagnetic generating device and an electromagnetic receiving device. The electromagnetic generating device is used to generate an electromagnetic field, and the electromagnetic receiving device is used to receive an electromagnetic signal and generate the induction signal according to the received electromagnetic signal.
3. The processing device according to claim 1, wherein The metal induction component includes an electrically connected contact, and the metal induction component is configured to generate the induction signal after the electrically connected contact contacts the metal.
4. The processing device according to claim 1, wherein The material removal component includes a jetting part, and the jetting part is configured to remove the waste remaining on the metal button by discharging air flow.
5. The processing device according to claim 4, wherein The material removal component further includes a driving part, and the driving part is connected to the jetting part to drive the gas to the jetting part; Or, The material removal component further includes a storage container, and the storage container is used to store compressed gas. The storage container is communicated with the jetting part and is used to direct the stored compressed gas to the jetting part.
6. The processing device according to claim 1, wherein The control component includes a solenoid valve, and the solenoid valve is respectively connected to the material removal component and the metal induction component to obtain the induction signal and control the material removal component to start according to the induction signal.
7. The processing device according to claim 6, wherein The control component further includes a transformer, and the transformer is respectively electrically connected to the solenoid valve, the material removal component and the metal induction component. The transformer is used to step down to a preset voltage and then supply power to the solenoid valve, the material removal component and the metal induction component respectively.
8. The processing device according to claim 1, wherein The processing device further includes a protective shell, and the protective shell defines an accommodation cavity. The material removal component and the metal induction component are both arranged in the accommodation cavity and are spaced apart from each other or connected to each other. The protective shell further includes an operation window communicated with the accommodation cavity.
9. The processing device according to claim 8, wherein Both the material removal component and the metal induction component are arranged at the upper end in the accommodation cavity, and the operation window is arranged at the side position of the protective shell and is vertically located below the metal induction component and the material removal component.
10. The processing device according to claim 9, wherein A material taking port is further provided below the protective shell. The material taking port is adapted to discharge the waste removed from the metal button. The processing device further includes a collection assembly. The collection assembly is provided with a collection chamber. The collection assembly is adapted to be disposed below the material taking port and enable the collection chamber to collect the waste; The collection assembly is detachably connected to the protective shell and the collection chamber communicates with the material taking port; or the collection assembly is fixedly connected to the protective shell and the collection chamber communicates with the material taking port. The collection assembly is provided with a material guiding port communicating with the collection chamber. The collection assembly has a collection state in which the material guiding port is closed and a material guiding state in which the material guiding port is opened; or the collection assembly is adapted to be disposed below the material taking port and is spaced apart from the protective shell. A collection port opposite to the material taking port is provided above the collection assembly.