Crystal oscillator production equipment and production system
The crystal oscillator production system automates the lead cutting process by using pulley and gear interactions for precise adjustment and cutting, addressing inefficiencies in handling different sizes and improving production efficiency.
Patent Information
- Application Number
- CN202510670233.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-23
- Publication Date
- 2025-07-15
AI Technical Summary
The existing crystal oscillator production equipment needs to replace the equipment and adjust the parameters when shearing the pins of different models of crystal oscillators, which makes the operation time-consuming and labor-intensive and inconvenient for adjustment of the feeding device.
A crystal oscillator production equipment and production system are designed. Through the combination of pulleys, threaded rods, bevel gears and motors, the stepwise movement and adjustment of the laser cutting knife can be realized, which can adapt to crystal oscillators of different sizes and directly complete pin shearing.
It realizes efficient shearing of different types of crystal oscillators, simplifies the operation process, improves production efficiency and equipment adaptability.
Smart Images

Figure CN120306842A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of crystal oscillator manufacturing, and particularly to a crystal oscillator production device and a production system. Background Art
[0002] A crystal oscillator is commonly known as a crystal oscillator, which is an electronic component that utilizes the piezoelectric effect of a quartz crystal to generate a high-precision oscillation frequency; a crystal oscillator mainly consists of components such as a quartz wafer, a base, a housing, and pins. The base and the housing cooperate to hermetically encapsulate the quartz wafer, and during the production and preparation process of the crystal oscillator, it is necessary to cut the entire crystal oscillator.
[0003] For existing crystal oscillator production equipment, it is necessary to process the pins on the crystal oscillator according to customer requirements. The crystal oscillator production equipment uses a precision vibratory bowl for automatic feeding, supplemented by gas propulsion to achieve high-speed feeding, and a cylinder drives a pin cutter to shear the pins on the crystal oscillator.
[0004] However, when using the pin cutter to shear the pins on the crystal oscillator, since the precision vibratory bowl cannot be adjusted, when shearing the pins of different models of crystal oscillators, it is necessary to change the equipment and adjust the parameters to achieve the pin shearing of different models of crystal oscillators. This process is not only time-consuming and laborious, but also not convenient for adjusting the feeding device of the crystal oscillator. Summary of the Invention
[0005] The present invention aims to solve at least one of the technical problems in the related art to some extent.
[0006] To this end, an object of the present invention is to provide a crystal oscillator production device and a production system. Therefore, when it is necessary to cut the crystal oscillator, different crystal oscillators of the same batch can be placed on the conveyor belt. Under the belt connection between pulley one and pulley two, the conveyor belt on the right side of the rotating shaft can be driven to move step by step. Therefore, the crystal oscillator can be moved directly below the laser cutting knife; then, motor one drives screw rod one to rotate; the threaded sleeve plate moves left and right along screw rod one, and the adjusting plate on the connecting plate approaches the middle of the conveyor belt, and two adjusting plates can be used to adjust crystal oscillators of different sizes; then, motor two drives the transmission shaft to rotate. Under the belt connection between pulley two and pulley one, the rotating shaft can be driven to move step by step; at the same time, under the meshing connection between bevel gear one and bevel gear four, the rotating rod rotates synchronously with the transmission shaft; and under the meshing connection between bevel gear three and bevel gear two, screw rod two rotates synchronously, so that the moving plate threadedly connected to screw rod two moves up and down along screw rod two; the laser cutting knife can be controlled to approach and move away from the crystal oscillator on the conveyor belt for shearing; during the up and down movement of the laser cutting knife, the conveyor belt can be driven to move step by step; the pins of the crystal oscillator can be directly sheared.
[0007] To achieve the above object, an embodiment of the first aspect of the present invention provides a crystal oscillator production device and a production system, including a workbench. Above the workbench, there is a cutting device for shearing the crystal oscillator. At the top of the workbench, there is a feeding device for driving the crystal oscillator close to the cutting device. Inside the feeding device, there is an adjusting device for shearing different crystal oscillators. At the top of the workbench, there is a driving device for driving the cutting device to move up and down; the feeding device includes a support component fixedly installed at the top of the workbench. Inside the support component, there is a feeding component for transporting the crystal oscillator below the cutting device, and the feeding component is connected to the driving device through a belt; the adjusting device includes two adjusting components one for adjusting different crystal oscillators arranged inside the support component. Inside the support component, there is a driving component one for driving the two adjusting components one to move in opposite directions; the cutting device includes a laser cutting knife arranged above the support component for shearing the crystal oscillator. At the top of the laser cutting knife, there is a fixing component for supporting the laser cutting knife; the driving device includes an adjusting component two arranged at the top of the workbench for driving the fixing component to move up and down. On the left side of the adjusting component two, there is a driving component two for driving the adjusting component two to drive the fixing component to move up and down. On the right side of the driving component two, there is a connecting component for connecting to the adjusting component two.
[0008] In addition, a crystal oscillator production device and a production system according to the above-mentioned aspect of the present invention may further have the following additional technical features: In an embodiment of the present invention, the support component includes a support frame fixedly installed at the top of the workbench. At the left end of the support frame, there is a collection hopper fixedly installed for collecting the crystal oscillator sheared by the cutting device.
[0009] In an embodiment of the present invention, the feeding component includes a rotating shaft arranged inside the support frame for rotation. At the right end of the rotating shaft, there is a conveyor belt for driving the crystal oscillator to move below the laser cutting knife. At the left end of the rotating shaft, there is a pulley one fixedly installed for connecting to the driving component two.
[0010] In an embodiment of the present invention, the driving component one includes a threaded rod one arranged inside the support frame for driving the two adjusting components one to move in opposite directions. At the right end of the threaded rod one, there is a motor one fixedly installed for driving the threaded rod one to rotate. At the rear side of the motor one, there is a guide rod for assisting the movement of the adjusting component one.
[0011] In an embodiment of the present invention, the adjusting component one includes a threaded sleeve plate arranged on the threaded rod one for moving left and right. At the left end of the threaded sleeve plate, there is a connecting plate fixedly installed. At the left end of the connecting plate, there is an adjusting plate for adjusting according to different crystal oscillators.
[0012] In an embodiment of the present invention, the fixing component includes a moving plate that is threadedly connected to the second adjusting component and is used for moving up and down. A fixing plate for supporting a laser cutting tool is fixedly installed at the right end of the moving plate.
[0013] In an embodiment of the present invention, the second adjusting component includes a fixing column fixedly installed at the top end of the workbench. A second threaded rod for driving the moving plate to move up and down is arranged in the cavity of the fixing column. A second bevel gear for meshingly connecting with the connecting component is fixedly installed at the top of the second threaded rod.
[0014] In an embodiment of the present invention, the connecting component includes a rotating rod that penetrates the fixing column and is used for rotation. A third bevel gear for meshingly connecting with the second bevel gear is fixedly installed at the rear end of the rotating rod. A fourth bevel gear for meshingly connecting with the second driving component is fixedly installed at the left end of the rotating rod.
[0015] In an embodiment of the present invention, the second driving component includes a transmission shaft arranged at the front side of the fixing column for rotation. A support plate for supporting the transmission shaft is fixedly installed at the front end of the fixing column. A second pulley for connecting with the first pulley through a belt is fixedly installed at the right end of the transmission shaft. A first bevel gear for meshingly connecting with the fourth bevel gear is fixedly installed on the shaft body of the transmission shaft. A second motor for driving the transmission shaft to rotate is fixedly installed at the left end of the transmission shaft.
[0016] In an embodiment of the present invention, a crystal oscillator production system, which is applicable to a crystal oscillator production device proposed above, includes the following steps: S1: Different crystal oscillators of the same batch can be placed on the conveyor belt. Under the belt connection between the first pulley and the second pulley, the conveyor belt on the right side of the rotating shaft can be driven to move step by step. Therefore, the crystal oscillators can be moved directly below the laser cutting tool. S2: When adjusting according to the sizes of different crystal oscillators, the first motor can be driven to drive the first threaded rod to rotate, so that the threaded sleeve plate moves left and right along the first threaded rod. Under the clamping of the adjusting plate on the connecting plate, different-sized crystal oscillators can be adjusted. S3: Then, drive the transmission shaft to rotate through the second motor. Under the belt connection between the second pulley and the first pulley, the rotating shaft can move step by step. At the same time, under the meshing connection between the first bevel gear and the fourth bevel gear, the rotating rod rotates synchronously following the transmission shaft. And under the meshing connection between the third bevel gear and the second bevel gear, the second threaded rod rotates synchronously. Therefore, the moving plate threadedly connected to the second threaded rod moves up and down along the second threaded rod. The laser cutting knife can be controlled to approach and move away from the crystal oscillator on the conveyor belt for shearing. During the up and down movement of the laser cutting knife, the conveyor belt can move step by step. The pins of the crystal oscillator can be directly sheared off.
[0017] Compared with the prior art, the beneficial effects of the present invention are as follows: By providing a feeding device, an adjusting device, a cutting device and a driving device, when it is necessary to cut a crystal oscillator, different crystal oscillators of the same batch can be placed on the conveyor belt. Under the belt connection between the first pulley and the second pulley, the conveyor belt on the right side of the rotating shaft can be driven to move step by step. Therefore, the crystal oscillator can be moved directly below the laser cutting knife. Then, drive the first threaded rod to rotate through the first motor. Make the threaded sleeve plate move left and right along the first threaded rod. And the adjusting plates on the connecting plate approach the middle of the conveyor belt, and different-sized crystal oscillators can be adjusted by using the two adjusting plates. Then, drive the transmission shaft to rotate through the second motor. Under the belt connection between the second pulley and the first pulley, the rotating shaft can move step by step. At the same time, under the meshing connection between the first bevel gear and the fourth bevel gear, the rotating rod rotates synchronously following the transmission shaft. And under the meshing connection between the third bevel gear and the second bevel gear, the second threaded rod rotates synchronously. Therefore, the moving plate threadedly connected to the second threaded rod moves up and down along the second threaded rod. The laser cutting knife can be controlled to approach and move away from the crystal oscillator on the conveyor belt for shearing. During the up and down movement of the laser cutting knife, the conveyor belt can move step by step. The pins of the crystal oscillator can be directly sheared off.
[0018] Additional aspects and advantages of the present invention will be given in part in the following description, become apparent in part from the following description, or be learned through the practice of the present invention. Description of the Drawings
[0019] The above and / or additional aspects and advantages of the present invention will become apparent and be readily understood from the following description of the embodiments in conjunction with the drawings, where: Figure 1 It is a schematic diagram of the overall structure of a crystal oscillator production device and production system according to an embodiment of the present invention; Figure 2 It is a front view of a crystal oscillator production device and production system according to an embodiment of the present invention; Figure 3Schematic structural diagram of a feeding device of a crystal oscillator production device and a production system according to an embodiment of the present invention; Figure 4 Schematic structural diagram of an adjusting device of a crystal oscillator production device and a production system according to an embodiment of the present invention; Figure 5 Schematic structural diagram of a cutting device of a crystal oscillator production device and a production system according to an embodiment of the present invention; Figure 6 Schematic structural diagram of a driving device of a crystal oscillator production device and a production system according to an embodiment of the present invention; Figure 7 Cooperating diagram of a second driving component and a second adjusting component of a crystal oscillator production device and a production system according to an embodiment of the present invention.
[0020] As shown in the figure: 100, workbench; 101, support leg; 102, display screen; 103, button; 200, feeding device; 210, support component; 211, support frame; 212, collection hopper; 220, feeding component; 221, pulley one; 222, rotating shaft; 223, conveyor belt; 300, adjusting device; 310, first driving component; 311, motor one; 312, first threaded rod; 313, guiding rod; 320, first adjusting component; 321, threaded sleeve plate; 322, connecting plate; 323, adjusting plate; 400, cutting device; 410, fixing component; 411, moving plate; 412, fixing plate; 420, laser cutting knife; 500, driving device; 510, second driving component; 511, motor two; 512, transmission shaft; 513, first bevel gear; 514, pulley two; 515, support plate; 520, second adjusting component; 521, fixing column; 522, second threaded rod; 523, second bevel gear; 530, connecting component; 531, third bevel gear; 532, rotating rod; 533, fourth bevel gear. Detailed implementation manners
[0021] The embodiments of the present invention will be described in detail below. The examples of the embodiments are shown in the 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 drawings are exemplary and are intended to explain the present invention and should not be construed as limiting the present invention.
[0022] A crystal oscillator production device and a production system according to an embodiment of the present invention will be described below in conjunction with the drawings.
[0023] As Figures 1-7As shown in the figure, a crystal oscillator production device and a production system according to an embodiment of the present invention may include a workbench 100. Above the workbench 100, there is a cutting device 400 for shearing the crystal oscillator. At the top of the workbench 100, there is a feeding device 200 for driving the crystal oscillator close to the cutting device 400. Inside the feeding device 200, there is an adjusting device 300 for shearing different crystal oscillators. At the top of the workbench 100, there is a driving device 500 for driving the cutting device 400 to move up and down. The feeding device 200 includes a support assembly 210 fixedly installed at the top of the workbench 100. Inside the support assembly 210, there is a feeding assembly 220 for conveying the crystal oscillator to below the cutting device 400, and the feeding assembly 220 is connected to the driving device 500 through a belt. The adjusting device 300 includes two first adjusting assemblies 320 arranged inside the support assembly 210 for adjusting different crystal oscillators. Inside the support assembly 210, there is a first driving assembly 310 for driving the two first adjusting assemblies 320 to move in opposite directions. The cutting device 400 includes a laser cutting tool 420 arranged above the support assembly 210 for shearing the crystal oscillator. At the top of the laser cutting tool 420, there is a fixing assembly 410 for supporting the laser cutting tool 420. The driving device 500 includes a second adjusting assembly 520 arranged at the top of the workbench 100 for driving the fixing assembly 410 to move up and down. On the left side of the second adjusting assembly 520, there is a second driving assembly 510 for driving the second adjusting assembly 520 to drive the fixing assembly 410 to move up and down. On the right side of the second driving assembly 510, there is a connecting assembly 530 for connecting to the second adjusting assembly 520.
[0024] Referring to the attached drawings of the specification Figure 2 and Figure 3 It can be known that at the bottom end of the workbench 100, there are support legs 101 fixedly installed for supporting the workbench 100, and there are four support legs 101, and the four support legs 101 are symmetrically distributed in a rectangle at the bottom end of the workbench 100. At the top of the workbench 100, there is a display screen 102, and the display screen 102 is a touch screen to facilitate adjusting the parameters of the device by using the display screen 102. Behind the display screen 102, there are buttons 103.
[0025] In an embodiment of the present invention, as Figure 3 and Figure 4 shown, the support assembly 210 includes a support frame 211 fixedly installed at the top of the workbench 100. At the left end of the support frame 211, there is a collection hopper 212 for collecting the crystal oscillator sheared by the cutting device 400. Therefore, the collection hopper 212 can be used to collect the pins of the sheared crystal oscillator uniformly.
[0026] Further, the feeding component 220 includes a rotating shaft 222 disposed within the support frame 211 for rotation. A conveyor belt 223 for driving the crystal oscillator to move below the laser cutting tool 420 is provided at the right end of the rotating shaft 222. A first pulley 221 for connecting with the second driving component 510 is fixedly installed at the left end of the rotating shaft 222. Therefore, when the driving device 500 drives the laser cutting tool 420 to approach and move away from the crystal oscillator on the conveyor belt 223 for cutting, the conveyor belt 223 can be moved step by step.
[0027] In an embodiment of the present invention, as Figure 4 and Figure 5 shown, the first driving component 310 includes a first threaded rod 312 disposed within the support frame 211 for driving two first adjusting components 320 to move in opposite directions. The left and right ends of the first threaded rod 312 are connected to the support frame 211 through bearings to facilitate the rotation of the first threaded rod 312. There are two symmetrically arranged threads on the rod body of the first threaded rod 312, and the thread directions of the two threads are opposite to facilitate controlling the two first adjusting components 320 to move in opposite directions along the two threads on the first threaded rod 312. A first motor 311 for driving the first threaded rod 312 to rotate is fixedly installed at the right end of the first threaded rod 312. A guide rod 313 for assisting the movement of the first adjusting component 320 is provided at the rear side of the first motor 311.
[0028] Further, the first adjusting component 320 includes a threaded sleeve plate 321 disposed on the first threaded rod 312 for moving left and right. A connecting plate 322 is fixedly installed at the left end of the threaded sleeve plate 321. An adjusting plate 323 for adjusting according to different crystal oscillators is fixedly installed at the left end of the connecting plate 322. The adjusting plate 323 can be received within the support frame 211. Therefore, when adjustment according to different crystal oscillators is required, the first motor 311 can be driven to drive the first threaded rod 312 to rotate, so that the threaded sleeve plate 321 moves closer to each other along the two threads of the first threaded rod 312, thereby enabling adjustment of the crystal oscillator on the conveyor belt 223.
[0029] In an embodiment of the present invention, as Figure 6 shown, the fixing component 410 includes a moving plate 411 threadedly connected to the second adjusting component 520 for moving up and down. A fixing plate 412 for supporting the laser cutting tool 420 is fixedly installed at the right end of the moving plate 411. The laser cutting tool 420 is a prior art.
[0030] In an embodiment of the present invention, as Figure 6 and Figure 7As shown in the figure, the second adjusting component 520 includes a fixed column 521 fixedly installed at the top end of the workbench 100. A second threaded rod 522 for driving the moving plate 411 to move up and down is arranged in the cavity of the fixed column 521, and the upper and lower ends of the second threaded rod 522 are connected to the column body of the fixed column 521 through bearings to facilitate the rotation of the second threaded rod 522; a second bevel gear 523 for meshing connection with the connection component 530 is fixedly installed at the top of the second threaded rod 522.
[0031] Furthermore, the connection component 530 includes a rotating rod 532 penetrating through the fixed column 521 for rotation, and the rotating rod 532 is connected to the fixed column 521 through a bearing to facilitate the rotation of the rotating rod 532; a third bevel gear 531 for meshing connection with the second bevel gear 523 is fixedly installed at the rear end of the rotating rod 532, and the third bevel gear 531 is located in the cavity of the fixed column 521; a fourth bevel gear 533 for meshing connection with the second driving component 510 is fixedly installed at the left end of the rotating rod 532.
[0032] Furthermore, the second driving component 510 includes a transmission shaft 512 arranged at the front side of the fixed column 521 for rotation. A support plate 515 for supporting the transmission shaft 512 is fixedly installed at the front end of the fixed column 521, and there are two support plates 515, and the two support plates 515 are welded to the column body of the fixed column 521 symmetrically left and right; a second pulley 514 for connection with the first pulley 221 through a belt is fixedly installed at the right end of the transmission shaft 512, a first bevel gear 513 for meshing connection with the fourth bevel gear 533 is fixedly installed on the shaft body of the transmission shaft 512, and a second motor 511 for driving the transmission shaft 512 to rotate is fixedly installed at the left end of the transmission shaft 512; therefore, when it is necessary to use the laser cutting knife 420 to cut the pins of the crystal oscillator on the conveyor belt 223, the second motor 511 can be used to drive the transmission shaft 512 to rotate; and under the meshing connection between the first bevel gear 513 and the fourth bevel gear 533, the rotating rod 532 rotates synchronously; at the same time, under the meshing connection between the third bevel gear 531 and the second bevel gear 523, the second threaded rod 522 can synchronously follow the rotating rod 532 to rotate, and the moving plate 411 moves up and down along the second threaded rod 522, so that the laser cutting knife 420 on the fixed plate 412 can approach and move away from the crystal oscillator on the conveyor belt 223 for cutting; and when the transmission shaft 512 rotates, under the belt connection between the second pulley 514 and the first pulley 221, the conveyor belt 223 can move step by step towards the laser cutting knife 420; therefore, it is convenient to cut the crystal oscillator on the conveyor belt 223.
[0033] As Figure 1 shown in the figure, the present invention provides a crystal oscillator production system, and this production system is applicable to a crystal oscillator production device proposed above; It includes the following steps: S1: Different crystal oscillators of the same batch can be placed on the conveyor belt 223. Under the belt connection between the first pulley 221 and the second pulley 514, the conveyor belt 223 on the right side of the rotating shaft 222 can be driven to move step by step. Therefore, the crystal oscillator can be moved directly below the laser cutting tool 420; S2: When adjusting according to the sizes of different crystal oscillators, the first motor 311 can be driven to rotate the first threaded rod 312; the threaded sleeve plate 321 can be moved left and right along the first threaded rod 312. Under the clamping of the adjusting plate 323 on the connecting plate 322, different-sized crystal oscillators can be adjusted; S3: Then, the second motor 511 is driven to rotate the transmission shaft 512. Under the belt connection between the second pulley 514 and the first pulley 221, the rotating shaft 222 can be moved step by step; at the same time, under the meshing connection between the first bevel gear 513 and the fourth bevel gear 533, the rotating rod 532 rotates synchronously with the transmission shaft 512; and under the meshing connection between the third bevel gear 531 and the second bevel gear 523, the second threaded rod 522 rotates synchronously. Therefore, the moving plate 411 threadedly connected to the second threaded rod 522 moves up and down along the second threaded rod 522; the laser cutting tool 420 can be controlled to approach and move away from the crystal oscillator on the conveyor belt 223 for shearing; during the up and down movement of the laser cutting tool 420, the conveyor belt 223 can be moved step by step; the shearing of the pins of the crystal oscillator can be directly completed.
[0034] In summary, a crystal oscillator production device and a production system according to an embodiment of the present invention. Therefore, when it is necessary to cut a crystal oscillator, different crystal oscillators of the same batch can be placed on the conveyor belt 223. Under the belt connection between the first pulley 221 and the second pulley 514, the conveyor belt 223 on the right side of the rotating shaft 222 can be driven to move step by step. Therefore, the crystal oscillator can be moved directly below the laser cutting knife 420. Then, the first motor 311 drives the first threaded rod 312 to rotate, so that the threaded sleeve plate 321 moves left and right along the first threaded rod 312, and the adjusting plate 323 on the connecting plate 322 approaches the middle of the conveyor belt 223. The two adjusting plates 323 can be used to adjust crystal oscillators of different sizes. Then, the second motor 511 drives the transmission shaft 512 to rotate. Under the belt connection between the second pulley 514 and the first pulley 221, the rotating shaft 222 can be driven to move step by step. At the same time, under the meshing connection between the first bevel gear 513 and the fourth bevel gear 533, the rotating rod 532 rotates synchronously with the transmission shaft 512. And under the meshing connection between the third bevel gear 531 and the second bevel gear 523, the second threaded rod 522 rotates synchronously. Therefore, the moving plate 411 threadedly connected to the second threaded rod 522 moves up and down along the second threaded rod 522. The laser cutting knife 420 can be controlled to approach and move away from the crystal oscillator on the conveyor belt 223 for shearing. During the up and down movement of the laser cutting knife 420, the conveyor belt 223 can be driven to move step by step, and the pins of the crystal oscillator can be directly sheared off.
[0035] In the description of this specification, the terms "first" and "second" are used for descriptive purposes only and cannot be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include at least one of these features. In the description of the present invention, the meaning of "a plurality" is at least two, such as two, three, etc., unless otherwise specifically and clearly defined.
[0036] In the description of this specification, the description with reference to terms such as "one embodiment", "some embodiments", "example", "specific example" or "some examples" means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. In addition, without conflict, those skilled in the art can combine and combine the different embodiments or examples described in this specification and the features of different embodiments or examples.
[0037] Although the embodiments of the present invention have been shown and described above, it can be understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those of ordinary skill in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of the present invention.
Claims
1. A crystal oscillator production device, characterized in that, It includes a workbench (100), above which a cutting device (400) for shearing crystal oscillators is provided. At the top of the workbench (100), a feeding device (200) for driving the crystal oscillator close to the cutting device (400) is provided. An adjusting device (300) for shearing different crystal oscillators is arranged inside the feeding device (200). At the top of the workbench (100), a driving device (500) for driving the cutting device (400) to move up and down is provided; the feeding device (200) includes a support component (210) fixedly installed at the top of the workbench (100). Inside the support component (210), a feeding component (220) for conveying the crystal oscillator to below the cutting device (400) is provided, and the feeding component (220) is connected to the driving device (500) through a belt; the adjusting device (300) includes two first adjusting components (320) arranged inside the support component (210) for adjusting different crystal oscillators. A first driving component (310) for driving the two first adjusting components (320) to move in opposite directions is arranged inside the support component (210); the cutting device (400) includes a laser cutting knife (420) arranged above the support component (210) for shearing the crystal oscillator. At the top of the laser cutting knife (420), a fixing component (410) for supporting the laser cutting knife (420) is provided; the driving device (500) includes a second adjusting component (520) arranged at the top of the workbench (100) for driving the fixing component (410) to move up and down. On the left side of the second adjusting component (520), a second driving component (510) for driving the second adjusting component (520) to drive the fixing component (410) to move up and down is provided. On the right side of the second driving component (510), a connecting component (530) for connecting to the second adjusting component (520) is provided.
2. The crystal oscillator production equipment according to claim 1, characterized in that The support component (210) includes a support frame (211) fixedly installed at the top of the workbench (100). At the left end of the support frame (211), a collecting hopper (212) for collecting the crystal oscillator sheared by the cutting device (400) is fixedly installed.
3. The crystal oscillator production equipment according to claim 2, characterized in that, The feeding component (220) includes a rotating shaft (222) arranged inside the support frame (211). At the right end of the rotating shaft (222), a conveyor belt (223) for driving the crystal oscillator to move below the laser cutting knife (420) is provided. At the left end of the rotating shaft (222), a first pulley (221) for connecting to the second driving component (510) is fixedly installed.
4. A crystal oscillator production device according to claim 2, characterized in that, The first driving component (310) includes a first threaded rod (312) disposed within the support frame (211) for driving two first adjusting components (320) to move in opposite directions. A first motor (311) for driving the rotation of the first threaded rod (312) is fixedly installed at the right end of the first threaded rod (312). A guide rod (313) for assisting the movement of the first adjusting component (320) is disposed at the rear side of the first motor (311).
5. The crystal oscillator production equipment according to claim 4, characterized in that The first adjusting component (320) includes a threaded sleeve plate (321) disposed on the first threaded rod (312) for moving left and right. A connecting plate (322) is fixedly installed at the left end of the threaded sleeve plate (321). An adjusting plate (323) for adjusting according to different crystal oscillators is fixedly installed at the left end of the connecting plate (322).
6. The crystal oscillator production equipment according to claim 3, characterized in that, The fixing component (410) includes a moving plate (411) threadedly connected to the second adjusting component (520) for moving up and down. A fixing plate (412) for supporting the laser cutting tool (420) is fixedly installed at the right end of the moving plate (411).
7. The crystal oscillator production equipment according to claim 6, wherein, The second adjusting component (520) includes a fixed column (521) fixedly installed at the top end of the workbench (100). A second threaded rod (522) for driving the moving plate (411) to move up and down is disposed within the cavity of the fixed column (521). A second bevel gear (523) for meshingly connecting with the connecting component (530) is fixedly installed at the top of the second threaded rod (522).
8. A crystal oscillator production device according to claim 7, characterized in that, The connecting component (530) includes a rotating rod (532) passing through the fixed column (521) for rotation. A third bevel gear (531) for meshingly connecting with the second bevel gear (523) is fixedly installed at the rear end of the rotating rod (532). A fourth bevel gear (533) for meshingly connecting with the second driving component (510) is fixedly installed at the left end of the rotating rod (532).
9. The crystal oscillator production equipment according to claim 8, characterized in that The second driving component (510) includes a transmission shaft (512) disposed at the front side of the fixed column (521) for rotation. A support plate (515) for supporting the transmission shaft (512) is fixedly installed at the front end of the fixed column (521). A second pulley (514) for connecting to the first pulley (221) through a belt is fixedly installed at the right end of the transmission shaft (512). A first bevel gear (513) for meshingly connecting with the fourth bevel gear (533) is fixedly installed on the shaft body of the transmission shaft (512). A second motor (511) for driving the rotation of the transmission shaft (512) is fixedly installed at the left end of the transmission shaft (512).
10. A crystal oscillator production system, which is applicable to a crystal oscillator production device as claimed in claims 1 - 9, comprising the following steps: S1: Different crystal oscillators of the same batch can be placed on the conveyor belt (223). Under the belt connection between the first pulley (221) and the second pulley (514), the conveyor belt (223) on the right side of the rotating shaft (222) can be driven to move step by step, so that the crystal oscillators can be moved directly below the laser cutting tool (420). S2: When adjusting according to the sizes of different crystal oscillators, the first motor (311) can be driven to rotate the first threaded rod (312); the threaded sleeve plate (321) can be moved left and right along the first threaded rod (312), and under the clamping of the adjusting plate (323) on the connecting plate (322), crystal oscillators of different sizes can be adjusted; S3: Then, the second motor (511) is driven to rotate the transmission shaft (512), and under the belt connection between the second pulley (514) and the first pulley (221), the rotating shaft (222) can be moved step by step; at the same time, under the meshing connection between the first bevel gear (513) and the fourth bevel gear (533), the rotating rod (532) rotates synchronously with the transmission shaft (512); and under the meshing connection between the third bevel gear (531) and the second bevel gear (523), the second threaded rod (522) rotates synchronously. Therefore, the moving plate (411) threadedly connected to the second threaded rod (522) moves up and down along the second threaded rod (522); the laser cutting knife (420) can be controlled to approach and move away from the crystal oscillator on the conveyor belt (223) for shearing; and during the up and down movement of the laser cutting knife (420), the conveyor belt (223) can be moved step by step; the pins of the crystal oscillator can be directly sheared.