Jewelry processing lathe

By designing a superimposed moving mechanism on the jewelry processing lathe, flexible movement in three directions on the limited workbench is achieved, solving the problem of large footprint of traditional lathes and improving work efficiency and flexibility.

CN222944522UActive Publication Date: 2025-06-06SHENZHEN JINYI HERITAGE JEWELRY CO LTD
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Patent Information

Application Number
CN202421477464.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-25
Publication Date
2025-06-06
Estimated Expiration
2034-06-25

AI Technical Summary

Technical Problem

Traditional jewelry processing lathes are huge in size and cover a large area, which is difficult to meet the installation needs of small jewelry processing companies or studios. In addition, foldable or detachable structural designs require frequent assembly and disassembly during use, which increases operational complexity and time cost.

Method used

A superimposed moving mechanism is designed, including first, second and third moving components, through layer-by-layer connections of these components, the function of flexibly moving in three directions (width, length, height) on a limited workbench is realized.

Benefits of technology

It effectively solves the problem of insufficient installation area of ​​machining lathes, improves space utilization, and allows the lathe to cover a wider processing range without increasing the footprint, improving work efficiency and flexibility.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a jewelry processing lathe. The jewelry processing lathe comprises a workbench; the base is mounted on the workbench in the vertical direction; the processing mechanism is connected with one end, far away from the workbench, of the base; and a moving mechanism. The moving mechanism comprises a first moving assembly which is installed on the workbench and is in sliding connection with the workbench in the first direction with the width of the workbench as the first direction; the second moving assembly is connected with the end, deviating from the workbench, of the first moving assembly in the vertical direction and is in sliding connection in the second direction of the length of the workbench; the third moving assembly is connected with the end, deviating from the first moving assembly, of the second moving assembly in the vertical direction and is in sliding connection with the second moving assembly in the third direction of the height of the workbench; the moving mechanisms are connected in a stacked mode in the vertical direction to move in three directions so as to be close to the machining mechanism. Through the structure, the problem of insufficient mounting area of the machining lathe is solved.
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Description

Technical Field

[0001] The present application relates to the field of jewelry processing equipment, and in particular to a jewelry processing lathe. Background Art

[0002] With the continuous development of the jewelry industry, jewelry processing lathes, as key processing equipment, have great significance for improving the quality and output of jewelry processing due to their performance and efficiency. However, traditional jewelry processing lathes are often large in size and occupy a large area. For many small jewelry processing companies or studios, the lack of installation area has become a bottleneck restricting their development. Especially in the central areas of cities where every inch of land is valuable, the area occupied by processing equipment directly affects the operating costs and market competitiveness of the company.

[0003] In order to solve the problem of insufficient installation area of ​​jewelry processing lathes, the prior art adopts foldable and detachable structural designs, so that the lathe can be folded or disassembled when not in use, thereby reducing the floor space. However, although the above technical solutions have alleviated the problem of insufficient installation area to a certain extent, there are still many defects. Although the foldable or detachable structural design can reduce the floor space, it requires frequent assembly and disassembly during use, which increases the complexity and time cost of the operation. Therefore, a compact jewelry processing bed is needed. Utility Model Content

[0004] In view of this, it is necessary to provide a compact jewelry processing lathe to solve the above problems.

[0005] An embodiment of the present application provides a jewelry processing lathe, comprising:

[0006] Workbench;

[0007] A base, mounted on the workbench in a vertical direction;

[0008] A processing mechanism connected to an end of the base away from the workbench;

[0009] A moving mechanism, the moving mechanism comprising:

[0010] A first moving assembly is mounted on the workbench and is slidably connected along the width of the workbench in a first direction;

[0011] A second moving assembly is connected to an end of the first moving assembly away from the workbench in a vertical direction and is slidably connected along the length of the workbench in a second direction;

[0012] The third movable component is connected to the end of the second movable component away from the first movable component in the vertical direction, and is slidably connected along the height of the workbench in the third direction; wherein the movable mechanism is superimposed and connected in the vertical direction to move in three directions to approach the processing mechanism.

[0013] In at least one embodiment of the present application, the first moving component includes:

[0014] A fixing member connected to the workbench;

[0015] The first sliding member is fixedly connected to the fixing member and is located at an end of the fixing member away from the workbench.

[0016] In at least one embodiment of the present application, the first moving component further includes:

[0017] A first adjusting rod, arranged along a first direction and slidably connected with the first sliding member along the first direction;

[0018] The first support member has one end fixedly connected to the first adjusting rod in the vertical direction and the other end fixedly connected to the second moving assembly, and the first sliding member is located between the first support member and the fixing member.

[0019] In at least one embodiment of the present application, the first sliding member includes:

[0020] A sliding block, wherein a plurality of the sliding blocks are slidably connected to the first adjusting rod and fixedly connected to the fixing member;

[0021] The fixed plate is fixedly connected to the plurality of sliding blocks and is located between the first supporting member and the sliding blocks.

[0022] In at least one embodiment of the present application, the first support member includes:

[0023] A support portion, vertically connected to the second moving assembly;

[0024] The connecting portion has one end fixedly connected to one end of the supporting portion close to the first adjusting rod along the third direction, and the other end slidably connected to the first adjusting rod.

[0025] In at least one embodiment of the present application, the first adjustment rod is slidably connected to the first support member along a first direction to generate a first direction sliding area, and the first direction sliding area is located between the first support member and the first sliding member.

[0026] In at least one embodiment of the present application, the second moving component includes:

[0027] A second sliding member, vertically fixedly connected to the first moving member;

[0028] A second adjusting rod is slidably connected with the second sliding member along a second direction to generate a second direction sliding area;

[0029] The second support member has one end fixedly connected to the third movable assembly in the vertical direction and the other end slidably connected to the second adjusting rod. The second direction sliding area is located between the second support member and the second sliding member.

[0030] In at least one embodiment of the present application, the third moving component includes:

[0031] A cylinder, generating a force for sliding in a third direction;

[0032] A third sliding member connected to the cylinder, wherein the cylinder drives the third sliding member to move along a third direction and generates a sliding area in the third direction;

[0033] The adsorbent has one end fixedly connected to the third sliding member and the other end adsorbs the jewelry.

[0034] In at least one embodiment of the present application, the third sliding member includes:

[0035] A sliding portion connected to the cylinder;

[0036] The fixing part is integrally formed with the sliding part and is located near one end of the adsorbent and fixes the jewelry.

[0037] In at least one embodiment of the present application, the processing mechanism includes:

[0038] A rotating rod connected to a motor to generate a rotating force;

[0039] The accommodating cavity is rotatably connected to the rotating rod, and the accommodating cavity is fixedly connected to drill bits of different configurations and rotates.

[0040] The jewelry processing lathe provided above realizes the function of flexible movement in three directions on a limited workbench through the design of superimposed moving mechanism. Through the layer-by-layer connection of the first, second and third moving components, it can be freely adjusted in the first, second and third directions, thereby effectively solving the problem of insufficient installation area of ​​the processing lathe. BRIEF DESCRIPTION OF THE DRAWINGS

[0041] Figure 1 A three-dimensional diagram of the jewelry processing lathe described in this application;

[0042] Figure 2 A top view of the jewelry processing lathe described in this application;

[0043] Figure 3for Figure 2 Sectional view at AA;

[0044] Figure 4 for Figure 2 Cross-section at the middle BB;

[0045] Figure 5 for Figure 2 Cross-section at CC;

[0046] Figure 6 An exploded view of the mobile mechanism described in this application;

[0047] Figure 7 This is a schematic diagram of the sliding of the first moving component of the present application;

[0048] Figure 8 This is a sliding schematic diagram of the second moving component of the present application;

[0049] Fig. 9 This is a schematic diagram of the sliding of the third moving component described in this application.

[0050] Main component symbols

[0051] 100. jewelry processing lathe; 10. workbench; 11. base; 20. processing mechanism; 21. rotating rod; 22. accommodating chamber; 30. moving mechanism; 31. first moving assembly; 311. fixing member; 312. first sliding member; 3121. sliding block; 3122. fixing plate; 313. first adjusting rod; 314. first supporting member; 3141. supporting part; 3142. connecting part; 315. first direction sliding area; 32. second moving assembly; 321. second sliding member; 322. second adjusting rod; 323. second supporting member; 324. second direction sliding area; 33. third moving assembly; 331. cylinder; 332. third sliding member; 3321. sliding part; 3322. fixing part; 333. adsorption member; 334. third direction sliding area; 40. vertical direction; 50. first direction; 60. second direction; 70. third direction. DETAILED DESCRIPTION

[0052] The embodiments of the present application will be described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments.

[0053] It should be noted that when a component is considered to be "connected" to another component, it may be directly connected to the other component or there may be a central component at the same time. When a component is considered to be "located on" another component, it may be directly located on the other component or there may be a central component at the same time. The terms "top", "bottom", "upper", "lower", "left", "right", "front", "back", and similar expressions used herein are for illustrative purposes only.

[0054] The embodiment of the present application provides a jewelry processing lathe, comprising: a workbench; a base mounted on the workbench in a vertical direction; a processing mechanism connected to one end of the base away from the workbench; and a moving mechanism. The moving mechanism comprises: a first moving component mounted on the workbench and slidably connected along the width of the workbench in a first direction; a second moving component connected to the end of the first moving component away from the workbench in a vertical direction and slidably connected along the length of the workbench in a second direction; and a third moving component connected to the end of the second moving component away from the first moving component in a vertical direction and slidably connected along the height of the workbench in a third direction; wherein the moving mechanisms are superimposed and connected in the vertical direction to move in three directions to approach the processing mechanism. The above structure solves the problem of insufficient installation area of ​​the processing lathe.

[0055] The jewelry processing lathe provided above realizes the function of flexible movement in three directions on a limited workbench through the design of a superimposed moving mechanism. Through the layer-by-layer connection of the first, second and third moving components, it can be freely adjusted in the first, second and third directions, thereby effectively solving the problem of insufficient installation area of ​​the processing lathe. Considering the optimization of space utilization, the lathe can cover a wider processing range without increasing the floor space through layered superposition, thereby improving work efficiency and flexibility.

[0056] Some embodiments of the present application are described in detail below in conjunction with the accompanying drawings. In the absence of conflict, the following embodiments and features in the embodiments can be combined with each other.

[0057] See also Figure 1-Figure 9The embodiment of the present application provides a jewelry processing lathe 100, comprising: a workbench 10; a base 11 installed on the workbench 10 along a vertical direction 40; a processing mechanism 20 connected to an end of the base 11 away from the workbench 10; and a moving mechanism 30. The moving mechanism 30 comprises: a first moving assembly 31 installed on the workbench 10 and slidably connected along the width of the workbench 10 in a first direction 50; a second moving assembly 32 connected to an end of the first moving assembly 31 away from the workbench 10 in a vertical direction 40 and slidably connected along the length of the workbench 10 in a second direction 60; and a third moving assembly 33 connected to an end of the second moving assembly 32 away from the first moving assembly 31 in a vertical direction 40 and slidably connected along the height of the workbench 10 in a third direction 70; wherein the moving mechanism 30 is superimposed and connected in the vertical direction 40 to move in three directions to approach the processing mechanism 20. The above structure solves the problem of insufficient installation area of ​​the processing lathe.

[0058] Specifically, the workbench 10 serves as the basic support platform of the entire processing lathe. It provides a stable installation environment for other components, ensures the stability and accuracy of the processing process, and improves the reliability and consistency of the processing. During the jewelry processing process, the workbench 10 serves as a stable working environment to support the entire processing system.

[0059] Furthermore, the base 11 supports and fixes the processing mechanism 20, ensuring the stability of the processing mechanism 20 during operation. It prevents the processing mechanism 20 from shaking during the processing process, which affects the processing accuracy. The base 11 plays an important role in fixing the processing mechanism 20 in jewelry processing, especially in processing tasks with high precision requirements.

[0060] Furthermore, the processing mechanism 20 performs jewelry processing tasks, such as drilling, grinding, etc. It is equipped with drill bits with different functions. It realizes fast and efficient processing of jewelry and improves production efficiency. The processing mechanism 20 is suitable for various jewelry processing needs, such as fine processing of rings, necklaces, etc.

[0061] Furthermore, the moving mechanism 30 includes a first moving assembly 31, a second moving assembly 32 and a third moving assembly 33, which are slidably connected in three different directions. Through the moving mechanism 30, the distance and position between the processing mechanism 20 and the jewelry to be processed can be flexibly adjusted to achieve precise positioning. The flexibility and adaptability of processing are improved and the difficulty of operation is reduced. When processing jewelry of different shapes and sizes, the moving mechanism 30 can quickly adjust the position of the processing mechanism 20 to meet various processing requirements.

[0062] The operator places the jewelry to be processed on the fixing part 3322 and fixes it by adsorption of the adsorption part 333. Then, by controlling the moving mechanism 30, the first moving component 31 slides along the width direction of the workbench 10 to adjust the lateral distance between the processing mechanism 20 and the jewelry. The second moving component 32 is connected to the first moving component 31 in the vertical direction 40, slides along the length direction of the workbench 10, and further adjusts the longitudinal distance between the processing mechanism 20 and the jewelry. The third moving component 33 is connected to the second moving component 32 in the vertical direction 40, slides along the height direction of the workbench 10, and realizes the precise positioning of the processing mechanism 20 in the vertical direction. Through the above-mentioned actuation process, the moving mechanism 30 can accurately position the processing mechanism 20 to the appropriate position of the jewelry to be processed, ensuring the processing accuracy and efficiency.

[0063] In summary, the stacked moving mechanism 30 design realizes the function of flexible movement in three directions on the limited workbench 10. Through the layer-by-layer connection of the first, second and third moving components 33, it can be freely adjusted in the first, second and third directions 70. Considering the optimization of space utilization, the lathe can cover a wider processing range without increasing the floor space through layered stacking, thereby improving work efficiency and flexibility.

[0064] In a specific implementation example, the first moving assembly 31 includes a fixing member 311 and a first sliding member 312. The fixing member 311 is connected to the workbench 10. The first sliding member 312 is fixedly connected to the fixing member 311 and is located at one end of the fixing member 311 away from the workbench 10.

[0065] Specifically, the main function of the fixing member 311 is to ensure a stable connection between the first moving assembly 31 and the workbench 10. It provides a solid support base so that the first moving assembly 31 can slide accurately on the workbench 10. The existence of the fixing member 311 makes it difficult for the entire moving mechanism 30 to shake or deviate during operation, thereby ensuring the stability and accuracy of the processing process.

[0066] Furthermore, the first sliding member 312 is a key component for realizing the sliding of the first moving assembly 31 in the width direction (first direction 50) of the workbench 10. It is fixedly connected to the fixing member 311 to ensure the stability and reliability of the sliding. Through the sliding of the first sliding member 312, the lateral distance between the processing mechanism 20 and the jewelry to be processed can be conveniently adjusted to meet the processing requirements of jewelry of different sizes or shapes. This flexibility improves processing efficiency and reduces the difficulty of operation.

[0067] Furthermore, during the jewelry processing, the operator first ensures that the fixing member 311 is firmly connected to the workbench 10. Then, the first adjusting rod 313 is used to adjust the sliding in the width direction of the workbench 10. Since the first sliding member 312 is fixedly connected to the fixing member 311, the sliding process is stable and reliable. By adjusting the position of the first sliding member 312, the lateral distance between the processing mechanism 20 and the jewelry to be processed can be accurately controlled.

[0068] In a specific implementation example, the first moving assembly 31 further includes a first adjusting rod 313 and a first supporting member 314. The first adjusting rod 313 is arranged along the first direction 50, and the first adjusting rod 313 is slidably connected to the first sliding member 312 along the first direction 50. One end of the first supporting member 314 is fixedly connected to the first adjusting rod 313 in the vertical direction 40, and the other end is fixedly connected to the second moving assembly 32. The first supporting member 314 and the first sliding member 312 are located between the first supporting member 314 and the fixing member 311.

[0069] Specifically, the main function of the first adjustment rod 313 is to provide a sliding track along the first direction 50 and adjust the sliding area, so that the first sliding member 312 can move freely in the width direction of the workbench 10. By adjusting the position or length of the first adjustment rod 313, the lateral position of the first sliding member 312 and the second moving assembly 32 connected thereto can be precisely controlled.

[0070] Furthermore, the main function of the first support member 314 is to connect the first adjustment rod 313 and the second moving assembly 32 to ensure a stable connection between them and support in the vertical direction 40. At the same time, since the first sliding member 312 is located between the first support member 314 and the fixing member 311, this design helps to enhance the stability and load-bearing capacity of the entire moving mechanism 30.

[0071] Furthermore, during the jewelry processing, the operator first adjusts the position or length of the first adjustment rod 313 to achieve precise control of the lateral position of the moving mechanism 30. Then, the first sliding member 312 slides along the first adjustment rod 313, driving the first support member 314 and the second moving assembly 32 to move together. Due to the stable support of the first support member 314, the second moving assembly 32 can remain stable and precise during the movement process.

[0072] In a specific implementation example, the first sliding member 312 includes a sliding block 3121 and a fixed plate 3122. The plurality of sliding blocks 3121 are slidably connected to the first adjusting rod 313, and the sliding block 3121 is fixedly connected to the fixed member 311. The fixed plate 3122 is fixedly connected to the plurality of sliding blocks 3121, and the fixed plate 3122 is located between the first supporting member 314 and the sliding block 3121.

[0073] Specifically, the main function of the sliding block 3121 is to provide a sliding connection with the first adjustment rod 313, so that the first moving assembly 31 can move freely along the first direction 50 (i.e., the width direction of the workbench 10). At the same time, the sliding block 3121 is fixedly connected to the fixing member 311 to ensure the stability and position accuracy of the entire first moving assembly 31. This makes the jewelry processing lathe 100 more flexible and accurate when moving horizontally, improving work efficiency and processing quality. In addition, the design of multiple sliding blocks 3121 also enhances the stability and load-bearing capacity of the sliding connection, making the entire mechanism more durable.

[0074] Furthermore, the function of the fixing plate 3122 is to connect the plurality of sliding blocks 3121 to form an integral structure. Meanwhile, the fixing plate 3122 is located between the first support member 314 and the sliding block 3121 to play a supporting and reinforcing role, ensuring that the connection between the sliding block 3121 and the first support member 314 is stable and reliable.

[0075] Furthermore, the design of the fixing plate 3122 enhances the overall structural strength of the first sliding member 312, and improves its deformation resistance and pressure resistance. This helps to ensure the stability and durability of the jewelry processing lathe 100 under long-term, high-load operation. In addition, the fixing plate 3122 also makes the installation and removal of the sliding block 3121 more convenient, improving maintenance efficiency.

[0076] In summary, during the jewelry processing, the operator adjusts the position of the first adjustment rod 313. At this time, the sliding connection between the plurality of sliding blocks 3121 and the first adjustment rod 313 plays a role, ensuring that the first moving assembly 31 moves smoothly along the first direction 50. At the same time, the presence of the fixed plate 3122 ensures that the connection between the sliding blocks 3121 is stable, preventing them from falling off or deforming during the movement. As the first adjustment rod 313 moves, the first support member 314 also moves, thereby driving the entire moving mechanism 30 to move in the first direction 50, so as to approach the processing mechanism 20 for jewelry processing.

[0077] In a specific implementation example, the first support member 314 includes a support portion 3141 and a connection portion 3142. In the vertical direction 40, the support portion 3141 is connected to the second moving assembly 32. One end of the connection portion 3142 is fixedly connected to one end of the support portion 3141 close to the first adjustment rod 313 along the third direction 70, and the other end is slidably connected to the first adjustment rod 313.

[0078] Specifically, the main function of the support portion 3141 is to connect the first moving assembly 31 and the second moving assembly 32 to ensure the structural stability and force transmission between the two. Since it is the connecting portion 3142 in the vertical direction 40, it can withstand the weight and force from the second moving assembly 32, ensuring the stability and load-bearing capacity of the entire moving mechanism 30.

[0079] Furthermore, the arrangement of the support portion 3141 makes the connection between the first moving assembly 31 and the second moving assembly 32 more reliable, reducing errors and failures caused by unstable connection. At the same time, the strength and stability of the support portion 3141 also improve the working performance and life of the entire machining lathe.

[0080] Furthermore, one end of the connecting portion 3142 is fixedly connected to the supporting portion 3141, and the other end is slidably connected to the first adjusting rod 313, thereby realizing the sliding adjustment of the first moving assembly 31 in the horizontal direction (first direction 50). This design enables the first moving assembly 31 to move precisely along the first adjusting rod 313 to meet the position adjustment requirements of different processing.

[0081] Furthermore, the sliding connection design of the connection part 3142 makes the movement of the first moving component 31 more flexible and accurate, improving the processing accuracy and efficiency. At the same time, the stability of the sliding connection also ensures the safety during the processing, reducing the processing errors or dangers caused by unstable movement.

[0082] In summary, during the jewelry processing, when the relative position between the processing mechanism 20 and the jewelry to be processed needs to be adjusted, the operator can adjust the position of the first adjustment rod 313 to drive the first moving assembly 31 to slide along the first direction 50. At this time, the sliding connection between the connecting portion 3142 and the first adjustment rod 313 plays a role, ensuring the smooth movement of the first moving assembly 31. As the first moving assembly 31 moves, the supporting portion 3141 also moves, and drives the second moving assembly 32 connected thereto to make corresponding adjustments.

[0083] In a specific implementation example, the first adjustment rod 313 is slidably connected to the first support member 314 along the first direction 50 to generate a first direction 50 sliding area 315 , and the first direction 50 sliding area 315 is located between the first support member 314 and the first sliding member 312 .

[0084] Specifically, the first adjustment rod 313 serves as a sliding track, allowing the first support member 314 to slide and adjust along the first direction 50. This design allows the entire moving mechanism 30 to have high flexibility in the first direction 50 (the width direction of the workbench 10), and can accurately adjust the position according to processing requirements.

[0085] Furthermore, the first support member 314, as a connecting member, not only connects the first moving assembly 31 and the second moving assembly 32, but also interacts with the first adjusting rod 313 through a sliding connection to achieve position adjustment in the first direction 50. The provision of the first support member 314 enhances the stability and load-bearing capacity of the moving mechanism 30, while ensuring the accuracy and reliability of the position adjustment.

[0086] Furthermore, the sliding area 315 in the first direction 50 is the result of the sliding connection between the first adjustment rod 313 and the first support member 314, which provides a sliding range so that the first support member 314 can move freely along the first direction 50 within a certain range.

[0087] In a specific implementation example, the second moving assembly 32 includes: a second sliding member 321, a second adjusting rod 322, and a second supporting member 323. In the vertical direction 40, the second sliding member 321 is fixedly connected to the first moving member. The second adjusting rod 322 and the second sliding member 321 are slidably connected along the second direction 60 to generate a second direction 60 sliding area 324. In the vertical direction 40, one end of the second supporting member 323 is fixedly connected to the third moving assembly 33, and the other end is slidably connected to the second adjusting rod 322. The second direction 60 sliding area 324 is located between the second supporting member 323 and the second sliding member 321.

[0088] Specifically, the second sliding member 321 connects the first moving assembly 31 and the second moving assembly 32 to ensure the continuity and stability of the entire moving mechanism 30 in the vertical direction 40. The integrity and structural rationality of the moving mechanism 30 are enhanced, so that the jewelry processing lathe 100 can be moved and positioned smoothly.

[0089] Furthermore, the second adjusting rod 322 provides a sliding track for the second moving assembly 32, allowing it to flexibly move in the second direction 60. The processing range and flexibility of the jewelry processing lathe 100 are improved, making the processing process more efficient and convenient.

[0090] Furthermore, the second support member 323 supports and fixes the third moving assembly 33 to ensure the accuracy and stability of its position. The processing accuracy and reliability of the jewelry processing lathe 100 are improved, and errors and deviations in the processing process are avoided. The second direction 60 sliding area 324 is the sliding area of ​​the second moving assembly 32 in the second direction 60.

[0091] Furthermore, during the jewelry processing, when the position of the second moving assembly 32 needs to be adjusted to meet different processing requirements, the operator can adjust the relative position of the second adjusting rod 322. As the second adjusting rod 322 slides along the second direction 60, a sliding area 324 in the second direction 60 is generated.

[0092] In a specific implementation example, the third sliding member 332 includes: a sliding portion 3321 and a fixing portion 3322. The sliding portion 3321 is connected to the cylinder 331. The fixing portion 3322 is integrally formed with the sliding portion 3321, and the fixing portion 3322 is located near one end of the adsorbent 333 and fixes the jewelry.

[0093] Specifically, the sliding portion 3321 is the connecting portion 3142 between the third sliding member 332 and the cylinder 331, and is responsible for receiving the driving force generated by the cylinder 331 along the third direction 70 (ie, the high direction of the workbench 10) and driving the entire third sliding member 332 to slide.

[0094] Furthermore, the fixing portion 3322 is integrally formed with the sliding portion 3321 and is located at one end close to the adsorbent 333 to fix the jewelry. The design of the fixing portion 3322 needs to take into account factors such as the shape, size, and fixing stability of the jewelry.

[0095] Furthermore, the sliding part 3321 serves as a connecting bridge between the cylinder 331 and the third sliding member 332, and can effectively transmit the driving force generated by the cylinder 331 to the third sliding member 332, so that it can slide along the third direction 70. The design of the sliding part 3321 enables the third sliding member 332 to stably and accurately receive the driving force of the cylinder 331, thereby ensuring the precise positioning and stable movement of the jewelry during the processing.

[0096] Furthermore, the main function of the fixing part 3322 is to fix the jewelry, ensure the stability of the jewelry during the processing, and prevent the jewelry from falling off or shifting due to vibration or misoperation. The design of the fixing part 3322 can effectively fix jewelry of various shapes and sizes, improve the accuracy and safety of processing, and also reduce the potential risks during the processing.

[0097] In summary, during the jewelry processing, the cylinder 331 starts working after receiving the command, generating a driving force along the third direction 70. The driving force is transmitted to the third sliding member 332 through the sliding portion 3321, so that it slides along the preset track in the third direction 70. At the same time, the fixing portion 3322 firmly fixes the jewelry to ensure its stability during the sliding process. With the movement of the third sliding member 332, the jewelry is accurately positioned near the processing mechanism 20, which provides convenience for subsequent processing operations.

[0098] In a specific implementation example, the processing mechanism 20 includes: a rotating rod 21 and a receiving chamber 22. The rotating rod 21 is connected to a motor to generate a rotating force; the receiving chamber 22 is rotatably connected to the rotating rod 21, and the receiving chamber 22 is fixedly connected to drill bits of different configurations and rotates.

[0099] Specifically, it is connected to a motor to generate a rotational force, thereby driving the drill bit to perform rotational processing. The accommodating cavity 22 is rotationally connected to the rotating rod 21, and is used to fix drill bits of different configurations, so that the drill bit can rotate synchronously with the rotating rod 21 to complete the processing operation.

[0100] Furthermore, the rotating rod 21, as the power source of the processing mechanism 20, is connected to the motor to transmit the rotational force of the motor to the drill bit, so that the drill bit can rotate at high speed, thereby achieving fine processing of jewelry. The design of the rotating rod 21 enables the processing mechanism 20 to provide rotational power stably and continuously, ensuring the stability and efficiency of the processing process. At the same time, the connection method between the rotating rod 21 and the motor is simple and reliable, and easy to maintain and replace.

[0101] Furthermore, the accommodating chamber 22, as a fixing device for the drill bit, can firmly fix the drill bits of different configurations, so that the drill bits can rotate synchronously with the rotating rod 21. In addition, the accommodating chamber 22 also has the function of replacing the drill bit, which is convenient for replacing the drill bits of different configurations according to the processing requirements. The design of the accommodating chamber 22 enables the processing mechanism 20 to flexibly adapt to different processing requirements, thereby improving the versatility and flexibility of the processing mechanism 20. At the same time, the firm fixation of the drill bit by the accommodating chamber 22 also ensures the stability and accuracy of the processing process.

[0102] Furthermore, during the jewelry processing, after the motor is started, the rotating rod 21 starts to rotate. At the same time, the drill bit fixed in the accommodating cavity 22 rotates synchronously with the rotating rod 21. As the rotating rod 21 rotates at high speed, the drill bit performs fine processing on the jewelry, such as drilling and engraving. When the drill bit needs to be replaced, it is only necessary to take the current drill bit out of the accommodating cavity 22 and then install a new drill bit. The entire operation process is simple and fast, which improves the processing efficiency.

[0103] Thus, the jewelry processing lathe 100 provided above realizes the function of flexible movement in three directions on the limited workbench 10 through the design of the superimposed moving mechanism 30. Through the layer-by-layer connection of the first, second and third moving components 33, it can be freely adjusted in the first, second and third directions 70, thereby effectively solving the problem of insufficient installation area of ​​the processing lathe. Considering the optimization of space utilization, the lathe can cover a wider processing range without increasing the floor space through the layered superposition method, thereby improving work efficiency and flexibility.

[0104] The above is only an implementation method of the present application. It should be pointed out that a person skilled in the art can make improvements without departing from the inventive concept of the present application, but these improvements are within the scope of protection of the present application.

Claims

1. A jewelry processing lathe, characterized in that: include: Workbench; A base, mounted on the workbench in a vertical direction; A processing mechanism connected to an end of the base away from the workbench; A moving mechanism, the moving mechanism comprising: A first moving assembly is mounted on the workbench and is slidably connected along the width of the workbench in a first direction; A second moving assembly is connected to an end of the first moving assembly away from the workbench in a vertical direction and is slidably connected along the length of the workbench in a second direction; The third movable component is connected to the end of the second movable component away from the first movable component in the vertical direction, and is slidably connected along the height of the workbench in the third direction; wherein the movable mechanism is superimposed and connected in the vertical direction to move in three directions to approach the processing mechanism.

2. A jewelry processing lathe according to claim 1, characterized in that: The first moving component comprises: A fixing member connected to the workbench; The first sliding member is fixedly connected to the fixing member and is located at an end of the fixing member away from the workbench.

3. A jewelry processing lathe according to claim 2, characterized in that: The first moving component also includes: A first adjusting rod, arranged along a first direction and slidably connected with the first sliding member along the first direction; The first support member has one end fixedly connected to the first adjusting rod in the vertical direction and the other end fixedly connected to the second moving assembly, and the first sliding member is located between the first support member and the fixing member.

4. A jewelry processing lathe according to claim 3, characterized in that: The first sliding member comprises: Sliding blocks, a plurality of the sliding blocks are slidably connected to the first adjusting rod and fixedly connected to the fixing member; The fixed plate is fixedly connected to the plurality of sliding blocks and is located between the first supporting member and the sliding blocks.

5. A jewelry processing lathe according to claim 4, characterized in that: The first support member comprises: A support portion, vertically connected to the second moving assembly; The connecting portion has one end fixedly connected to one end of the supporting portion close to the first adjusting rod along the third direction, and the other end slidably connected to the first adjusting rod.

6. A jewelry processing lathe according to claim 5, characterized in that: The first adjusting rod is slidably connected to the first supporting member along a first direction to generate a first direction sliding area, and the first direction sliding area is located between the first supporting member and the first sliding member.

7. A jewelry processing lathe according to claim 1, characterized in that: The second moving component comprises: A second sliding member, vertically fixedly connected to the first moving member; A second adjusting rod is slidably connected with the second sliding member along a second direction to generate a second direction sliding area; The second support member has one end fixedly connected to the third movable assembly in the vertical direction and the other end slidably connected to the second adjusting rod. The second direction sliding area is located between the second support member and the second sliding member.

8. The jewelry processing lathe according to claim 1, characterized in that: The third moving component comprises: A cylinder, generating a force for sliding in a third direction; A third sliding member connected to the cylinder, wherein the cylinder drives the third sliding member to move along a third direction and generates a sliding area in the third direction; The adsorbent has one end fixedly connected to the third sliding member and the other end adsorbs the jewelry.

9. A jewelry processing lathe according to claim 8, characterized in that: The third sliding member comprises: A sliding portion connected to the cylinder; The fixing part is integrally formed with the sliding part and is located near one end of the adsorbent and fixes the jewelry.

10. A jewelry processing lathe according to claim 1, characterized in that: The processing mechanism comprises: A rotating rod connected to a motor to generate a rotating force; The accommodating cavity is rotatably connected to the rotating rod, and the accommodating cavity is fixedly connected to drill bits of different configurations and rotates.