A static device
By designing a settling device and using a locking mechanism and timer to ensure that the electronic pen components are settling in the settling chamber for a sufficient time, the problem of loosening caused by incomplete glue curing is solved, thereby improving product quality and production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-28
- Publication Date
- 2026-06-30
Smart Images

Figure CN224423427U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electronic pen manufacturing technology, and more particularly to a stationary device. Background Technology
[0002] In existing electronic pen products, components such as magnet assemblies and Hall magnets are typically fixed to the pen body using adhesive bonding. After attaching these components to the pen body, operators usually need to allow the assembled workpiece to stand for a period of time to ensure that the adhesive between the components and the pen body can fully cure.
[0003] The bonding and settling processes described above are usually performed manually by operators. If an operator makes a mistake and the workpiece is moved to the next production step before it has been settling for a sufficient period of time, it can easily cause the component to loosen from the electronic pen body, thus posing a quality risk to the finished product. Utility Model Content
[0004] To address the aforementioned problems, this utility model provides a static device.
[0005] The static device described in this embodiment of the utility model includes:
[0006] The frame has a settling cavity;
[0007] A support member, located within the stationary cavity, is used to support the workpiece;
[0008] A locking mechanism is connected to the frame; the locking mechanism includes a driving member and a locking member, the locking member being kinetically connected to the moving part of the driving member; the moving part of the driving member moves to connect or disconnect the locking member from the support member;
[0009] A timer is used to measure the time the carrier is stationary in the stationary cavity; the timer starts counting no earlier than the time when the locking member and the carrier begin to connect, and the timer ends counting no later than the time when the locking member and the carrier are disconnected.
[0010] Optionally, the stationary device further includes a controller;
[0011] The controller is electrically connected to the timer and the drive component respectively; the locking component is connected to the carrier component to trigger the controller to send a timing signal, the timer receives the timing signal and starts timing; when the timer finishes timing, it sends an end signal, the controller receives the end signal and controls the drive component to move, and the locking component is disconnected from the carrier component.
[0012] Optionally, the stationary device further includes a position detector;
[0013] The position detector is connected to the frame, and the controller is electrically connected to the position detector; the position detector has a detection part located in the stationary cavity; the position detector is used to detect the position of the carrier and send position data to the controller; the carrier is located at a position connected to the locking member, and the controller controls the movement of the moving part of the drive member.
[0014] Optionally, the position detector is a contact switch, and the detection part is a contact spring;
[0015] The carrier is located at the position connected to the locking member, the carrier abuts against the detection part, and the detection part deforms; the carrier disengages from the locking member, the detection part resets and pushes the carrier to move.
[0016] Optionally, the frame has a first connecting hole, and the support member has a second connecting hole; the support member is located at a position connected to the locking member, and the first connecting hole communicates with the second connecting hole;
[0017] The moving part of the drive member moves such that the locking member extends from the first connecting hole into the second connecting hole, or retracts from the second connecting hole into the first connecting hole.
[0018] Optionally, the frame includes guide rails;
[0019] The guide rail extends along a first direction, and the carrier is slidably connected to the guide rail; the first connecting hole and the second connecting hole extend along a second direction, and the first direction and the second direction intersect.
[0020] Optionally, at least two of the first connecting holes and the second connecting holes are provided; at least two of the first connecting holes are located on the same side of the frame, and at least two of the second connecting holes are located on the same side of the support member.
[0021] Optionally, at least two settling cavities are provided.
[0022] Optionally, at least two of the timer and the locking mechanism are provided, and each of the stationary cavities corresponds to at least one of the locking mechanisms and at least one of the timers.
[0023] Optionally, the timer includes an alert element, which is at least one of an alarm light, a buzzer, and a digital display panel.
[0024] In some embodiments of this application, the settling device includes a frame, a support member, a locking mechanism, and a timer. The support member is placed in the settling cavity of the frame and is used to support the workpiece. The locking mechanism includes a driving member and a locking member; the movement of the driving member causes the locking member to connect or disconnect from the support member. The timer can start timing when the locking member and the support member begin to connect or after connection is completed, and ends timing before the locking member and the support member disconnect or before disconnection occurs. During the settling operation, the support member is locked in the settling cavity due to the connection between the locking member and the support member. The timer can measure the settling time of the support member in the settling cavity to ensure that the support member can remain in the settling cavity for a sufficient amount of time.
[0025] Since the timer measures the settling time of the carrier component, which is less than or equal to the moment when the carrier component and locking component are initially connected and then disconnected, the settling device described in this application can ensure that the carrier component is settling for a sufficient amount of time within the device. Simultaneously, this reduces human intervention during the settling process, thus minimizing errors caused by manual operation and ensuring that all workpieces entering subsequent production steps are fully cured with the colloid. This reduces or even eliminates the problem of workpiece structural loosening due to incomplete colloid curing, which is beneficial for ensuring the quality of the final product.
[0026] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application. Attached Figure Description
[0027] The above and / or additional aspects and advantages of this application will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0028] Figure 1 This is a front view of the stationary device described in this application;
[0029] Figure 2 yes Figure 1 A cross-sectional view along AA;
[0030] Figure 3 yes Figure 2 A cross-sectional view along BB (rotated 90 degrees clockwise);
[0031] Figure 4 yes Figure 3 A magnified view of part C in the middle;
[0032] Figure 5 yes Figure 1 Electrical connection diagram;
[0033] Reference numerals: 1. Frame; 11. Settling chamber; 12. First connecting hole; 13. Guide rail; 13a. Guide groove; 2. Bearing member; 21. Second connecting hole; 22. Main body; 23. Handle; 24. Mounting slot; 3. Locking mechanism; 31. Driving member; 32. Locking member; 4. Timer; 41. Reminder element; 5. Controller; 6. Position detector; 61. Detection unit; X - First direction; Y - Second direction. Detailed Implementation
[0034] The embodiments of this utility model will now be described in detail. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model. All other embodiments obtained by those skilled in the art based on the embodiments in this application without inventive effort are within the scope of protection of this application.
[0035] Existing electronic pens generally incorporate components such as Hall effect magnets and magnetic assemblies. The Hall effect magnet in an electronic pen is a key component for achieving precise positioning, function control, and optimized user experience. For example, the Hall effect magnet can shift with the movement of the pen tip. When the Hall sensor inside the pen detects this shift, it outputs a corresponding electrical signal, thus enabling pressure sensitivity detection of the pen tip. Alternatively, bringing the Hall effect magnet close to the Hall sensor inside the pen can cause the sensor to output a corresponding electrical signal, activating certain functions of the pen and enabling quick operation. The magnetic assembly can be aligned with the magnetic structure of wireless charging devices, facilitating wireless charging and other functions of the electronic pen.
[0036] Typically, electronic pens have mounting slots on their main body for installing components such as Hall effect sensors and magnetic assemblies. These components are fixed in the mounting slots using adhesive. This process is usually done manually by the operator, who holds the electronic pen and then adheres the Hall effect sensors and magnetic assemblies into the mounting slots. The operator then applies pressure by pressing or other methods to allow the adhesive between the components and the pen body to fully cure.
[0037] Since both the bonding and settling processes are done manually by operators, if an operator makes a mistake and the workpiece is not left to stand for a sufficient period of time after bonding the component to the electronic pen body before proceeding to the next production step, it can easily lead to loosening between the component and the electronic pen body, thus posing a quality risk to the finished product.
[0038] To address the aforementioned problems, this application proposes a static device.
[0039] Example 1:
[0040] refer to Figure 1 Embodiment 1 of this application provides a stationary device, which specifically includes a frame 1, a support 2, a locking mechanism 3, and a timer 4.
[0041] refer to Figure 1 The frame 1 is the basic structure used to install other components of the stationary equipment and to provide stationary space for the load-bearing component 2 and the workpiece. In Embodiment 1 of this application, the specific structure of the frame 1 can be determined according to the actual structure. For example, the frame 1 can be a box structure assembled from plates, or a frame structure assembled from columns, beams, and other structures.
[0042] refer to Figure 1 The frame 1 is provided with a settling cavity 11. The settling cavity 11 is a hollow structure on the frame 1 used to place the carrier 2 and the workpiece. The settling cavity 11 usually has an opening so that the carrier 2 and the workpiece can be placed into or removed from the settling cavity 11. The shape and size of the settling cavity 11 are generally determined by the shape and size of the carrier 2. For example, when the carrier 2 is a flat plate structure, the settling cavity 11 can be a corresponding cubic hollow structure. When the carrier 2 is a cylindrical structure, the settling cavity 11 can be a corresponding cylindrical hollow structure.
[0043] The support member 2 is the structure used to support the workpiece. In Embodiment 1 of this application, the specific shape of the support member 2 can also be determined according to actual needs. For example, the support member 2 can be a flat plate structure, and the workpiece is placed on the surface of the flat plate structure. Alternatively, the support member 2 can also be a box structure, and the workpiece is placed in the inner cavity of the box structure. The specific type of workpiece depends on the actual processing needs. In Embodiment 1 of this application, the workpiece can be a workpiece formed by bonding elements such as Hall magnets and magnet assemblies to the electronic pen body, or it can be other workpieces that need to be statically cured after bonding.
[0044] refer to Figure 2 The locking mechanism 3 is installed on the frame 1, specifically including Figure 3 , Figure 4The driving component 31 and locking component 32 are shown. In Embodiment 1 of this application, the driving component 31 is fixed to the frame 1, and the locking component 32 is connected to the moving part of the driving component 31 via a transmission connection. Specifically, the locking component 32 and the driving component 31 can be directly fixedly connected, or a transmission connection can be achieved through a transmission component or transmission mechanism. When the moving part of the driving component 31 moves, the locking component 32 can move relative to the frame 1 and eventually connect with the support component 2, so that the support component 2 is locked in the stationary cavity 11. When unlocking, the moving part of the driving component 31 moves in another direction, so that the locking component 32 moves relative to the frame 1 and resets, thereby breaking the connection between the locking component 32 and the support component 2, so that the support component 2 is unlocked and can be removed from the stationary cavity 11.
[0045] In Embodiment 1 of this application, the driving component 31 and the locking component 32 can be configured according to actual needs. For example, the driving component 31 can be a cylinder, electric cylinder, hydraulic cylinder, etc., and the locking component 32 can be a pin. The driving component 31 drives the locking component 32 to insert into the corresponding hole on the carrier component 2 to achieve the connection between the locking component 32 and the carrier component 2. Alternatively, the driving component 31 can also be a motor, hydraulic motor, or pneumatic motor that outputs torque; in this case, the locking component 32 can be a locking hook. The driving component 31 drives the locking component 32 to rotate, so that the locking component 32 hooks onto the structure on the carrier component 2 to achieve the connection between the locking component 32 and the carrier component 2.
[0046] The timer 4 can be a timing module, or an electronic or mechanical timing device. In Embodiment 1 of this application, the timer 4 can be directly installed and integrated on the rack 4, or it can be set independently outside the rack 1.
[0047] Timer 4 starts timing when the locking member 32 begins to connect with the carrier member 2 or after the connection is completed. In other words, timer 4 starts timing no earlier than the moment when the locking member 32 and the carrier member 2 begin to connect. After the workpiece on the carrier member 2 has settled, the drive member 31 moves in the opposite direction, causing the locking member 32 to disengage from the carrier member 2. At this time, the carrier member 2 is in an unlocked state within the settling cavity 11. Timer 4 stops timing before the locking member 32 disengages from the carrier member 2 or before disengagement. This ensures that the settling time measured by timer 4 is less than or equal to the time when the locking member 32 and the carrier member 2 begin to connect and then disengage. In Embodiment 1 of this application, the control of timer 4 and drive member 31 can be based on manual operation or an automated control structure.
[0048] During the settling process, the carrier 2 is locked in the settling cavity 11 due to the connection between the locking member 32 and the carrier 2. The timer 4 measures the duration of the carrier 2's settling in the settling cavity 11. Since the settling time measured by the timer 4 is less than or equal to the actual time when the locking member 32 and the carrier 2 begin to connect and disconnect, the settling device can ensure that the carrier 2 can be settling in the settling cavity 11 for a sufficient amount of time. This reduces manual intervention during the settling process, thereby reducing errors caused by manual operation and ensuring that the workpieces entering subsequent production steps are all fully cured with the colloid. Therefore, using the settling device described in Embodiment 1 of this application can reduce or even eliminate the problem of workpiece structural loosening caused by incomplete colloid curing, which is beneficial to ensuring the quality of the final product.
[0049] Example 2:
[0050] Embodiment 2 of this application is a further improvement on the static device described in Embodiment 1 of this application. Compared with Embodiment 1 of this application, the static device described in Embodiment 2 of this application also has a frame 1, a support member 2, a locking mechanism 3, and a timer 4, and the structure and connection method of the frame 1, the support member 2, the locking mechanism 3, and the timer 4 are basically the same.
[0051] refer to Figure 5 In the second embodiment described in this application, the stationary device further includes a controller 5. The controller 5 can be a control module integrated on the rack 1, or it can be an industrial computer or similar device independently located outside the rack 1. The controller 5 is electrically connected to the timer 4 and the drive unit 31. When the locking member 32 is connected to the carrier member 2, the controller 5 can detect the connection and send a timing signal. The timer 4 is triggered and begins timing after receiving the timing signal from the controller 5. When the timer 4 finishes timing, it sends an end signal. After receiving the end signal from the timer, the controller 5 controls the drive unit 31 to move in the opposite direction, causing the locking member 32 to disengage from the carrier member 2, thereby unlocking the carrier member 2 within the stationary cavity 11.
[0052] Since both timer 4 and drive component 31 are electrically connected to controller 5, timer 4 can measure the duration of time the carrier component 2 remains in the settling chamber 11. When timer 4 finishes timing, locking component 32 disengages from carrier component 2 to ensure that carrier component 2 can remain in the settling chamber 11 for a sufficient time. This reduces manual intervention during the settling process, thus reducing errors caused by manual operation and ensuring that all workpieces entering subsequent production steps are fully cured. Simultaneously, carrier component 2 automatically unlocks after a certain time, further reducing manual operation, increasing the automation level of the settling equipment, and ultimately improving the efficiency and convenience of the settling operation.
[0053] In the second embodiment of this application, the controller 5 can be set independently, or it can be integrated into the timer 4, or integrated into the driver 31.
[0054] Alternatively, in Embodiment 2 of this application, the controller 5 may not be provided. In this case, the drive unit 31 and the timer 4 can be directly electrically connected. After the carrier 2 is placed in position, the drive unit 31 is activated to connect the locking member 32 to the carrier 2. At this time, the drive unit 31 generates a high-level signal and transmits the high-level signal to the timer 4. The timer 4 starts timing after receiving the high-level signal. After the timer 4 finishes timing, it generates a high-level signal, which is fed back to the drive unit 31. The drive unit 31 moves in the opposite direction, causing the locking member 32 to disengage from the carrier 2.
[0055] refer to Figure 2 In the second embodiment described in this application, the stationary device further includes a position detector 6 electrically connected to the controller 5. The position detector 6 can specifically be a contact switch, photoelectric sensor, infrared displacement sensor, or other structure capable of detecting object displacement. The position sensor can be fixedly mounted on the frame 1 by means of fastener connection, bonding, or other methods. The detection part 61 of the position sensor for detecting displacement is arranged inside the stationary cavity 11 to detect the position of the carrier 2 within the stationary cavity 11 and send the position data of the carrier 2 to the controller 5.
[0056] When the position detector 6 detects that the carrier 2 is in the position connected to the locking member 32, the controller 5 controls the movement of the moving part of the drive member 31 according to the position data fed back by the position detector 6, so that the locking member 32, which is connected to the drive member 31, can be connected to the carrier 2, thereby realizing the locking of the carrier 2 in the stationary cavity 11.
[0057] The position detector 6 and controller 5 are configured to automatically lock the carrier 2 after it is placed in position. This facilitates the rapid alignment of the locking element 32 and the carrier 2, improving the efficiency of their connection. Furthermore, it ensures timely connection between the locking element 32 and the carrier 2, preventing connection failure due to human error. Finally, the automatic locking of the carrier 2 after placement reduces manual operation, increases the automation level of the stationary equipment, and thus improves the efficiency and convenience of stationary operations.
[0058] In Embodiment 2 of this application, when the stationary device is not equipped with a controller 5, the position detector 6 can be electrically connected to at least one of the drive unit 31 and the timer 4. For example, the position detector 6 can be electrically connected to the drive unit 31, and the drive unit 31 can be electrically connected to the timer 4. After the carrier 2 is placed in position, the position detector 6 detects the placement of the carrier 2 and generates a high-level signal. The high-level signal of the position detector 6 is transmitted to the drive unit 31, which moves and connects the locking member 32 to the carrier 2. The drive unit 31 generates a corresponding high-level signal and transmits it to the timer 4. The timer 4 starts timing after receiving the high-level signal from the drive unit 31. After the timer 4 finishes timing, it generates a high-level signal, which is fed back to the drive unit 31, causing the drive unit 31 to move in the opposite direction, disengaging the locking member 32 from the carrier 2. Alternatively, the position detector 6 can be electrically connected to both the drive unit 31 and the timer 4 simultaneously, with the drive unit 31 electrically connected to the timer 4. After the carrier 2 is placed in position, the position detector 6 detects the placement of the carrier 2 and generates a high-level signal. A high-level signal from position detector 6 is transmitted to drive component 31, causing drive component 31 to move and connect locking component 32 to carrier component 2. Simultaneously, the high-level signal from position detector 6 is transmitted to timer 4, which starts timing upon receiving the signal. After timer 4 finishes timing, it generates a high-level signal, which is fed back to drive component 31, causing drive component 31 to move in the opposite direction, disengaging locking component 32 from carrier component 2.
[0059] In the second embodiment described in this application, the position detector 6 is a contact switch, and the detection part 61 of the position detector 6 is as follows: Figure 2 The contact spring is shown. When the carrier 2 moves to a position where it can connect with the locking member 32 under the action of external force, the carrier 2 abuts against the detection part 61, and the detection part 61 deforms, causing a corresponding electrical signal to be generated in the position detector 6. The position detector 6 transmits the electrical signal to the controller 5, and the controller 5 controls the movement of the drive member 31 to connect the locking member 32 with the carrier 2. When the carrier 2 is disengaged from the locking member 32, since there is no external force acting on the carrier 2, the detection part 61 can push the carrier 2 to move when it resets. In other words, after standing for a certain period of time, the carrier 2 is disengaged from the locking member 32. At this time, the detection part 61 resets and pushes the carrier 2 out a certain distance. This can remind the operator to transfer the workpiece and carrier 2 that have completed the standing in time, which is conducive to the operator to replenish the empty standing cavity 11 with new workpieces and carrier 2 in a timely manner, thereby improving the overall efficiency during batch production.
[0060] refer to Figure 3 , Figure 4In the second embodiment described in this application, the frame 1 has a first connecting hole 12, and the carrier 2 has a second connecting hole 21. When the carrier 2 is in the stationary cavity 11 and can be connected to the locking member 32, the first connecting hole 12 and the second connecting hole 21 are opposite and connected. At this time, the moving part of the drive member 31 moves to drive the locking member 32 to extend from the first connecting hole 12 into the second connecting hole 21, so that the locking member 32 is connected to the carrier 2, thereby locking the carrier 2 in that position. After the carrier 2 and the workpiece have been stationary for a certain period of time, the moving part of the drive member 31 can move in the opposite direction, so that the locking member 32 retracts from the second connecting hole 21 into the first connecting hole 12, so that the locking member 32 is disconnected from the carrier 2. At this time, the operator can move the carrier 2 out of the stationary cavity 11. This simplifies the locking mechanism 3 while ensuring a reliable locking effect.
[0061] For reference Figure 4 Specifically, in Embodiment 3 of this application, the driving component 31 can be a cylinder, electric cylinder, hydraulic cylinder, etc., and the locking component 32 can be a pin fixedly connected to the moving part of the driving component 31. When the moving part of the driving component 31 extends, the locking component 32 can move relative to the frame 1 and be inserted from the first connecting hole 12 into the second connecting hole 21 to achieve the connection between the locking component 32 and the carrier component 2. When the moving part of the driving component 31 retracts, the locking component 32 can move relative to the frame 1 and retract from the second connecting hole 21 back into the first connecting hole 12 to release the connection between the locking component 32 and the carrier component 2. To reduce friction, a self-lubricating copper sleeve can be provided in the first connecting hole 12 and / or the second connecting hole 21, and the locking component 32 passes through the self-lubricating copper sleeve to reduce the frictional resistance experienced by the locking component 32 during movement.
[0062] The driving component 31 can also be a motor, hydraulic motor, pneumatic motor, etc., and the locking component 32 can be a threaded cylinder with internal threads. The moving part of the driving component 31 is fixedly connected to a screw for transmission, and the screw is threadedly engaged with the threaded cylinder. A guide block is provided on the outer wall of the threaded cylinder, and a guide groove 13a is provided on the inner wall of the first connecting hole 12. The guide block and the guide groove 13a are engaged to prevent the threaded cylinder from rotating relative to the first connecting hole 12. When the moving part of the driving component 31 rotates, under the threaded engagement of the screw and the locking component 32, the locking component 32 can move relative to the frame 1 and insert into the second connecting hole 21 to achieve the connection between the carrier component 2 and the locking component 32. When the moving part of the driving component 31 rotates in the opposite direction, the locking component 32 can move relative to the frame 1 and exit the second connecting hole 21 to release the connection between the locking component 32 and the carrier component 2.
[0063] It should be noted that the driving component 31 can be selected according to actual needs. Based on this, various transmission methods can be used between the driving component 31 and the locking component 32, so that the torque or linear motion output by the driving component 31 can drive the locking component 32 to extend from the first connecting hole 12 into the second connecting hole 21. The transmission method between the driving component 31 and the locking component 32 can be determined according to actual needs. For example, when the driving component 31 adopts a structure that outputs torque such as a motor, hydraulic motor, or pneumatic motor, a transmission gear set can be added between the aforementioned screw and the driving component 31. When the driving component 31 adopts a structure that outputs linear motion such as an electric cylinder, pneumatic cylinder, or hydraulic cylinder, the locking component 32 and the driving component 31 can be connected and transmitted through a structure such as a rod.
[0064] refer to Figure 2 In the second embodiment described in this application, the frame 1 includes a guide rail 13. The guide rail 13 extends along a first direction X, and the support member 2 is slidably connected to the guide rail 13. When the support member 2 is installed on the guide rail 13, all degrees of freedom of the support member 2 except for the first direction X are constrained by the guide rail 13.
[0065] The first connecting hole 12 and the second connecting hole 21 extend along the second direction Y. The first direction X intersects the second direction Y, meaning the first direction X and the second direction Y are two different directions. The included angle between the first direction X and the second direction Y can be an acute angle, an obtuse angle, or a right angle. In the second embodiment of this application, preferably, the first direction X and the second direction Y are orthogonal. When the moving part of the driving member 31 moves, the locking member 32 extends from the first connecting hole 12 into the second connecting hole 21 along the second direction Y, so that the locking member 32 is connected to the carrier member 2. At this time, the degree of freedom of the carrier member 2 in the first direction X is constrained by the locking member 32. With the cooperation of the locking member 32 and the guide rail 13, the carrier member 2 is completely locked in this position.
[0066] The guide rail 13 helps to ensure the complete positioning of the carrier 2. During stationary operation, the carrier 2 can be reliably locked in the stationary cavity 11, thus ensuring that the workpiece on the carrier 2 can remain stationary in the stationary cavity 11 for a sufficient time. In addition, the guide rail 13 reduces the friction between the carrier 2 and the stationary cavity 11 when the carrier 2 moves, thus facilitating the insertion and removal of the carrier 2 and improving the efficiency of the stationary operation.
[0067] In this application, the guide rail 13 can specifically be as follows: Figure 2Two guide rails are arranged at intervals as shown. Guide grooves 13a extending along the first direction X are provided on the two guide rails 13, and the two guide grooves 13a are arranged opposite each other. The carrier 2 is specifically a plate-shaped structure. When the carrier 2 is placed in the stationary cavity 11, the opposite two side edges of the carrier 2 can respectively engage with a guide groove 13a to achieve a sliding connection between the carrier 2 and the guide rail 13.
[0068] In the second embodiment described in this application, at least two first connecting holes 12 and two second connecting holes 21 are provided, specifically two, three, four, or even more. At least two first connecting holes 12 are located on the same side of the frame 1; correspondingly, at least two second connecting holes 21 are located on the same side of the carrier 2. When the carrier 2 is placed into the stationary cavity 11, the second connecting holes 21 on the carrier 2 need to be aligned with the corresponding first connecting holes 12 to allow the locking member 32 to connect with the carrier 2. Since the first connecting holes 12 and second connecting holes 21 are all located on one side of the structure, if the carrier 2 is placed backwards or incorrectly during alignment, all the first connecting holes 12 and second connecting holes 21 cannot be aligned simultaneously, and the locking member 32 cannot connect with the carrier 2, thus preventing mistaken insertion of the carrier 2.
[0069] To prevent mistaken insertion of the carrier 2, multiple first connecting holes 12 and multiple second connecting holes 21 can be provided. Multiple first connecting holes 12 are grouped on the frame 1, with each group including one, two, three, or even more first connecting holes 12. In the groups formed by the first connecting holes 12, at least two groups have a different number of first connecting holes 12. For example, the first connecting holes 12 can be divided into two groups, spaced apart along the first direction X, with one group including three first connecting holes 12 and the other group including two first connecting holes 12.
[0070] Alternatively, the distribution of the first connecting holes 12 between at least two groups can be different. For example, the first connecting holes 12 can be divided into two groups, spaced apart along the first direction X. One group includes three first connecting holes 12 arranged in a circumferential direction, and the other group includes four first connecting holes 12 arranged in an array. Because the distribution of the two groups of first connecting holes 12 is different, if the carrier 2 is placed backwards or incorrectly during alignment, all the first connecting holes 12 and the second connecting holes 21 cannot be aligned simultaneously, and the locking member 32 cannot connect with the carrier 2. That is, the different number of first connecting holes 12 in the two groups helps to prevent mistaken insertion of the carrier 2. The different distribution of the first connecting holes 12 between at least two groups can also be reflected in the sparseness or density of the distribution of the first connecting holes 12 in each group. For example, the first connecting holes 12 can be divided into two groups, spaced apart along the first direction X. In both groups, the number of first connecting holes 12 is the same and they are arranged in the same direction. In one group, the spacing between two adjacent first connecting holes 12 is small, while in the other group, the spacing between two adjacent first connecting holes 12 is large. The number and distribution of the first connecting holes 12 can remain different between at least two groups. Further details are omitted here.
[0071] Corresponding to the first connecting hole 12, a plurality of second connecting holes 21 are grouped and disposed on the carrier 2. Specifically, when the number of first connecting holes 12 in at least two groups is different, there are correspondingly at least two groups with different numbers of second connecting holes 21 on the carrier 2, so as to ensure that the first connecting holes 12 and the second connecting holes 21 can maintain a one-to-one corresponding and connected positional relationship after the carrier 2 is placed in place. When the distribution pattern of the first connecting holes 12 in at least two groups is different, there are correspondingly at least two groups with different distribution patterns of second connecting holes 21 on the carrier 2, so as to ensure that the first connecting holes 12 and the second connecting holes 21 can maintain a one-to-one corresponding and connected positional relationship after the carrier 2 is placed in place.
[0072] It should be noted that, in Embodiment 2 of this application, the specific number of groups of the plurality of first connecting holes 12 and the plurality of second connecting holes 21 can be determined according to actual needs. The number of first connecting holes 12 and second connecting holes 21 in each group, as well as the distribution of the first connecting holes 12 and second connecting holes 21, are also set according to specific error prevention needs, and will not be elaborated here.
[0073] Example 3:
[0074] Embodiment 3 of this application is a further improvement on the static device described in Embodiment 1 of this application. Compared with Embodiment 1 of this application, the static device described in Embodiment 3 of this application also has a frame 1, a support member 2, a locking mechanism 3 and a timer 4, and the structure and connection method of the frame 1, the support member 2, the locking mechanism 3 and the timer 4 are basically the same.
[0075] refer to Figure 1 In Embodiment 3 of this application, at least two stationary cavities 11 are provided on the frame 1. Specifically, the number of stationary cavities 11 can be two, three, four, or even more. The distribution of the at least two stationary cavities 11 on the frame 1 can be determined according to actual needs. The stationary cavities 11 can be arranged in an array, for example, eight stationary cavities 11 are provided on the frame 1, arranged in two columns and four rows. Alternatively, six stationary cavities 11 are provided on the frame 1, arranged in three columns and two rows. Or, the stationary cavities 11 can also be arranged in a circular or irregular pattern, which will not be elaborated here. Since at least two stationary cavities 11 are provided on the frame 1, the stationary device can simultaneously accommodate at least two carriers 2. This allows for batch stationary processing of workpieces, thereby improving the overall efficiency of batch workpiece processing.
[0076] refer to Figure 1 In Embodiment 3 of this application, correspondingly, at least two timers 4 and locking mechanisms 3 are also provided, and each stationary cavity 11 corresponds to at least one locking mechanism 3 and at least one timer 4. In other words, for any stationary cavity 11, there is one, two, three, or even more locking mechanisms 3 corresponding to it. After the carrier 2 is placed in a predetermined position in the stationary cavity 11, the locking member 32 of the locking mechanism 3 corresponding to the same stationary cavity 11 is connected to the carrier 2, so that the carrier 2 is locked in the stationary cavity 11. For any stationary cavity 11, there is one, two, three, or even more timers 4 corresponding to it. The timer 4 and the driving member 31 of the locking mechanism 3 corresponding to the same stationary cavity 11 are electrically connected to each other so that the timer 4 can time the stationary time of the workpiece and the carrier 2 in the corresponding stationary cavity 11.
[0077] Each stationary cavity 11 is associated with at least one locking mechanism 3 and at least one timer 4, so that each stationary cavity 11 can independently lock the carrier 2 and independently time, that is, each stationary cavity 11 can independently complete the stationary operation, and there will be no mutual interference between the stationary cavities 11.
[0078] refer to Figure 1 In Embodiment 3 of this application, the timer 4 includes an alert element 41. The alert element 41 can be at least one of an alarm light, a buzzer, or a digital display panel.
[0079] Specifically, during the stationary operation, the operator places the carrier 2, on which the workpiece is mounted, into the stationary cavity 11. When the carrier 2 is in the position connected to the locking member 32, the operator controls the movement of the driving member 31 to connect the locking member 32, which is connected to the driving member 31, with the carrier 2, thereby locking the carrier 2 within the stationary cavity 11. At the same time, the timer 4 starts and begins counting.
[0080] When the reminder element 41 is a digital display panel, the panel can display timing information via countdown or countdown, allowing the operator to determine the duration of the stationary operation. When the countdown on the digital display panel reaches zero, or the countdown reaches a preset time, the timer 4 stops, and the drive component 31 reverses its direction, disengaging the locking component 32 from the carrier component 2. The operator then removes the carrier component 2 from the corresponding stationary cavity 11 based on the information on the digital display panel.
[0081] The reminder element 41 can also be a buzzer. After the set time has elapsed, the buzzer can sound an alarm to prompt the technician to remove the carrier 2 from the corresponding settling cavity 11.
[0082] The reminder element 41 can also be a warning light. After the set time has elapsed, the warning light can change from a normally lit state to a normally dark state, or from a normally dark state to a normally lit state, or flash, or change color, to prompt technicians to remove the carrier 2 from the corresponding settling cavity 11.
[0083] refer to Figure 2 In Embodiment 3 of this application, the carrier 2 includes a main body 22 and a handle 23. The main body 22 can specifically be a plate structure, with multiple mounting slots 24 provided on it to simultaneously mount multiple workpieces. This allows multiple workpieces to be mounted using a single carrier 2, enabling batch processing and improving the efficiency of batch workpiece processing. The shape of the mounting slots 24 is typically the same as the shape of the workpiece to prevent it from shifting within the slots. After the workpiece is mounted in the mounting slot 24, a weight or pressure cap can be placed on top of the workpiece to ensure sufficient pressure between the two bonded parts of the workpiece.
[0084] The handle 23 can be a handle-shaped handle 23, or a U-shaped handle 23 or other shapes of handle 23. The handle 23 makes it convenient for the operator to hold the carrier 2, providing convenience for placing and taking out the carrier 2, thereby improving the work efficiency of stationary operations.
[0085] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs; the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit this application.
[0086] The terms "first" and "second" in the specification and claims of this application may explicitly or implicitly include one or at least two of the features. In the description of this utility model, unless otherwise stated, "at least two" means two or more. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.
[0087] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "left", "right", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0088] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0089] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or at least two embodiments or examples.
[0090] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention.
Claims
1. A standing apparatus, characterized by, include: A frame (1) having a stationary cavity (11); The support member (2) is located in the stationary cavity (11) and is used to support the workpiece; A locking mechanism (3) is connected to the frame (1); the locking mechanism (3) includes a driving member (31) and a locking member (32), the locking member (32) is connected to the moving part of the driving member (31) in a transmission manner; the moving part of the driving member (31) moves so that the locking member (32) is connected to or disconnected from the bearing member (2); A timer (4) is used to measure the time the carrier (2) is stationary in the stationary cavity (11); the timer (4) starts timing no earlier than the time when the locking member (32) and the carrier (2) begin to connect, and the timer (4) ends timing no later than the time when the locking member (32) and the carrier (2) disconnect.
2. The rest device according to claim 1, characterized in that The stationary device also includes a controller (5); The controller (5) is electrically connected to the timer (4) and the drive (31) respectively; the locking member (32) is connected to the carrier (2) to trigger the controller (5) to send a timing signal, the timer (4) receives the timing signal and starts timing; when the timer (4) finishes timing, it sends an end signal, the controller (5) receives the end signal and controls the drive (31) to move, and the locking member (32) is disconnected from the carrier (2).
3. The static settling device according to claim 2, characterized in that, The stationary device also includes a position detector (6); The position detector (6) is connected to the frame (1), and the controller (5) is electrically connected to the position detector (6); the position detector (6) has a detection part (61), which is located in the stationary cavity (11); the position detector (6) is used to detect the position of the carrier (2) and send position data to the controller (5); the carrier (2) is located in a position connected to the locking member (32), and the controller (5) controls the movement of the moving part of the drive member (31).
4. The static settling device according to claim 3, characterized in that, The position detector (6) is a contact switch, and the detection part (61) is a contact spring; The support member (2) is located at the position connected to the locking member (32), the support member (2) abuts against the detection part (61), and the detection part (61) deforms; the support member (2) disengages from the locking member (32), the detection part (61) resets and pushes the support member (2) to move.
5. The static device according to claim 1, characterized in that, The frame (1) has a first connecting hole (12), and the support member (2) has a second connecting hole (21); the support member (2) is located at a position connected to the locking member (32), and the first connecting hole (12) communicates with the second connecting hole (21); The moving part of the drive member (31) moves so that the locking member (32) extends from the first connecting hole (12) into the second connecting hole (21), or retracts from the second connecting hole (21) into the first connecting hole (12).
6. The static settling device according to claim 5, characterized in that, The frame (1) includes guide rails (13); The guide rail (13) extends along the first direction (X), and the carrier (2) is slidably connected to the guide rail (13); the first connecting hole (12) and the second connecting hole (21) extend along the second direction (Y), and the first direction (X) and the second direction (Y) intersect.
7. The static device according to claim 5, characterized in that, At least two of the first connecting hole (12) and the second connecting hole (21) are provided; at least two of the first connecting holes (12) are located on the same side of the frame (1), and at least two of the second connecting holes (21) are located on the same side of the support member (2).
8. The stationary device according to any one of claims 1-7, characterized in that, The static chamber (11) is provided in at least two.
9. The static device according to claim 8, characterized in that, At least two of the timer (4) and the locking mechanism (3) are provided, and each of the stationary cavities (11) corresponds to at least one of the locking mechanisms (3) and at least one of the timers (4).
10. The stationary device according to any one of claims 1-7, characterized in that, The timer (4) includes an alert element (41), which is at least one of an alert light, a buzzer, and a digital display panel.