Processing equipment
Patent Information
- Application Number
- CN202521750409.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-15
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2035-08-15
AI Technical Summary
[0003]激光进入由钨钢制成的遮蔽件后,会与钨钢中的原子和电子相互作用,以对激光的能量进行消耗,与此同时激光也对钨钢造成了损耗,在遮蔽件被激光损耗至极限时,导致遮蔽效果降低,从而使激光损伤工件被遮蔽的区域,降低了加工质量,因此需及时地更换遮蔽件,进而导致使用成本增加
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Figure CN224701321U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of product processing technology, and in particular to a processing equipment. Background Technology
[0002] Nowadays, after a product is finished being processed, such as a mobile phone case, laser equipment is generally used to remove burrs from the walls of the through holes. To avoid the laser from damaging other parts of the product, a shielding part made of tungsten steel is used to cover other parts of the product.
[0003] When the laser enters the shielding component made of tungsten steel, it interacts with the atoms and electrons in the tungsten steel to consume the laser energy. At the same time, the laser also causes wear and tear on the tungsten steel. When the shielding component is worn down to its limit by the laser, the shielding effect is reduced, which causes the laser to damage the shielded area of the workpiece, reducing the processing quality. Therefore, the shielding component needs to be replaced in time, which in turn increases the operating cost. Utility Model Content
[0004] In view of the above situation, it is necessary to provide a processing equipment to improve processing quality at a low cost.
[0005] This application provides a processing device, including: The load-bearing component is configured to carry the workpiece; A processing component is disposed on one side of the supporting component, and the processing component is used to emit laser light toward the workpiece to process the processing area of the workpiece; A reflective component is configured to cover a predetermined area of the workpiece and reflect the laser light incident on the predetermined area to shield the predetermined area of the workpiece.
[0006] In operation, the aforementioned processing equipment first has a supporting component that carries the workpiece. Then, a reflective component is placed over a pre-defined area of the workpiece. Finally, the processing component emits laser light towards the workpiece to process its processing area. The reflective component directly reflects the laser light incident on the pre-defined area, thus shielding the workpiece from damage caused by the laser light. In this way, by directly reflecting the laser light incident on the pre-defined area, the reflective component shields the workpiece, preventing damage from the laser light. Simultaneously, it avoids direct interaction between the laser light and the reflective component, preventing wear and tear on the reflective component and eliminating the need for frequent replacements. This allows for improved processing quality at a low cost.
[0007] In some embodiments, the reflective assembly includes a movable member, a clamping member, and a reflective member. The movable member is connected to the carrier assembly, and the clamping member is connected to the movable member. The clamping member is configured to clamp the reflective member, and the reflective member is configured to move to the preset area of the workpiece under the drive of the movable member to reflect the laser beam.
[0008] In some embodiments, the clamping member includes: A fixed body is detachably connected to the movable part and has a storage slot. The opening of the storage slot is located on the upper surface of the fixed body, and the fixed body is configured to support the reflector. The supporting body is mounted above the storage slot and connected to the fixing body; A clamping body, slidably disposed in the storage slot; and A first elastic body is disposed in the receiving groove, with its two ends respectively abutting against the clamping body and the bottom of the receiving groove. The first elastic body is configured to provide elastic force to push the clamping body to clamp the reflector to the abutting body.
[0009] In some embodiments, the reflector includes a light-transmitting layer and a reflective layer stacked together, the light-transmitting layer having a frosted surface on the side opposite to the reflective layer, the light-transmitting layer being adjacent to the carrier component relative to the reflective layer, and the reflective layer being configured to reflect the laser light incident through the light-transmitting layer to the frosted surface.
[0010] In some embodiments, a protective layer is provided on the side of the reflective layer opposite to the light-transmitting layer.
[0011] In some embodiments, the number of both the clamping member and the reflector is two, with each of the two clamping members corresponding to one of the two reflectors. The moving member includes: A support plate is connected to the load-bearing component. The support plate is provided with a sliding groove and an assembly groove. The sliding groove and the assembly groove are perpendicular to each other and are connected. A first sliding body and a second sliding body, wherein the first sliding body is slidably disposed in the sliding groove and has a placement groove, the second sliding body is slidably disposed in the assembly groove and has an installation groove, and the second sliding body abuts against the first sliding body, and the first sliding body and the second sliding body are respectively connected to a clamping member; A cover plate body, which covers the first sliding body and the second sliding body onto the support plate and is detachably connected to the support plate; A first protrusion and a second protrusion, wherein the first protrusion is inserted into the mounting groove and connected to the support plate, and the second protrusion is inserted into the mounting groove and connected to the support plate; A second elastic body and a third elastic body are provided. The second elastic body is disposed in the placement groove, and its two ends elastically abut against the first protrusion and the groove wall of the placement groove, respectively. The third elastic body is disposed in the mounting groove, and its two ends elastically abut against the second protrusion and the groove wall of the mounting groove, respectively. A driving body is disposed on the bearing assembly and connected to the first sliding body. The driving body is configured to drive the first sliding body to push the second sliding body to move, so that the first sliding body and the second sliding body respectively drive the two reflectors to move to the preset area of the workpiece.
[0012] In some embodiments, the second sliding body is provided with a limiting groove, and the moving member further includes two limiting bodies. The two limiting bodies are spaced apart and inserted into the limiting groove. Each limiting body is connected to the support plate. The limiting body is configured to abut against the groove wall of the limiting groove to limit the movement distance of the second sliding body.
[0013] In some embodiments, the carrier assembly includes a carrier member and a reference member. The carrier member has a carrier position configured to carry the workpiece. The reference member is disposed adjacent to the carrier position on the carrier member and configured to abut against the workpiece. The processing equipment also includes a pushing component connected to the carrier, the pushing component being used to push the workpiece to the reference piece.
[0014] In some embodiments, the driving component includes: The drive component is connected to the carrier component; The linkage component is connected to the drive component; The support component is detachably connected to the linkage component; A pushing member, one end of which is movably inserted through and movably connected to the support member, and the other end of which is used to push the workpiece; and An elastic element is sleeved on the pushing element, and the two ends of the elastic element elastically abut against the pushing element and the supporting element, respectively.
[0015] In some embodiments, the processing equipment further includes: A transfer component is connected to the bearing assembly, and the transfer component is configured to drive the bearing assembly to move the workpiece along a preset trajectory. Attached Figure Description
[0016] Figure 1 This is a three-dimensional structural diagram of the processing equipment provided in the embodiments of this application.
[0017] Figure 2 for Figure 1 The diagram shows an exploded view of the clamping components in the processing equipment.
[0018] Figure 3 for Figure 1 A schematic diagram of the cross-sectional structure of the reflector in the processing equipment shown.
[0019] Figure 4 for Figure 1 An exploded view of the reflective component in the processing equipment shown.
[0020] Key component symbols: Processing equipment 100, bearing assembly 10, bearing component 11, bearing position 111, receiving groove 112, reference component 12, detection component 13, processing assembly 20, reflection assembly 30, moving component 31, support plate 311, sliding groove 3111, assembly groove 3112, first sliding body 312, placement groove 3121, second sliding body 313, mounting groove 3131, limiting groove 3132, cover plate 314, first protrusion 315, second protrusion 316, second elastic body 317, Third elastic body; 318, Driving body; 319, Limiting body; 310, Clamping member; 32, Fixing body; 321, Storage groove; 3211, Supporting body; 322, Clamping body; 323, First elastic body; 324, Reflective member; 33, Light-transmitting layer; 331, Reflective layer; 332, Frosted surface; 333, Protective layer; 334, Pushing assembly; 40, Pushing driving member; 41, Linking member; 42, Supporting member; 43, Pushing member; 44, Elastic member; 45, Pressing assembly; 50, Pressing driving member; 51, Pressing member; 52, Transfer member; 60. Detailed Implementation
[0021] The embodiments of this application are described in detail below. 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 application, and should not be construed as limiting this application.
[0022] In the description of this application, it should be understood that the terms indicating orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application 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, and therefore should not be construed as a limitation of this application. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of the stated features. In the description of this application, it should be noted that "a plurality of" means two or more, unless otherwise explicitly specified.
[0023] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the term "connection" should be interpreted broadly. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection, an electrical connection, or a connection that allows communication between the two components; it can be a direct connection or an indirect connection through an intermediate medium; it can be the internal communication between two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0024] The following will describe some embodiments of this application in detail with reference to the accompanying drawings.
[0025] This application provides a processing device 100, which includes a support component 10, a processing component 20 and a reflective component 30, for processing the processing area of a workpiece.
[0026] Please see Figure 1 The carrier component 10 is configured to carry the workpiece, and the processing component 20 is disposed on one side of the carrier component 10. The processing component 20 is used to emit laser light toward the workpiece to process the processing area of the workpiece. The reflector component 30 is configured to cover a preset area of the workpiece and reflect the laser light incident on the preset area to shield the preset area of the workpiece.
[0027] In use, the aforementioned processing equipment 100 firstly carries the workpiece on the supporting component 10; then, the reflective component 30 is placed over a predetermined area of the workpiece; finally, the processing component 20 emits laser light towards the workpiece to process the processing area of the workpiece. The reflective component 30 directly reflects the laser light incident on the predetermined area, thus shielding the predetermined area of the workpiece and preventing damage to the workpiece from the laser light. In this way, by directly reflecting the laser light incident on the predetermined area through the reflective component 30, the predetermined area of the workpiece is shielded, preventing damage from the laser light. Simultaneously, direct interaction between the laser light and the reflective component 30 is avoided, preventing wear and tear on the reflective component 30 and eliminating the need for frequent replacements. This achieves improved processing quality at a low cost.
[0028] Please see Figure 1 In some embodiments, the reflective component 30 includes a movable component 31, a clamping component 32, and a reflective component 33. The movable component 31 is connected to the support component 10, and the clamping component 32 is connected to the movable component 31. The clamping component 32 is configured to clamp the reflective component 33, and the reflective component 33 is configured to move to a preset area of the workpiece under the drive of the movable component 31 to reflect laser light.
[0029] Thus, by setting the specific structure of the above-mentioned reflective component 30, the clamping member 32 stably clamps the reflective component 33 to prevent the reflective component 33 from shaking or shifting during the shielding process, thereby improving the shielding stability; the moving member 31 drives the reflective component 33 to move to the preset area of the workpiece to quickly adjust the position of the reflective component 33, thereby quickly shielding the preset position of the workpiece, thereby improving the shielding efficiency.
[0030] Please see Figure 1 and Figure 2 In some embodiments, the clamping member 32 includes a fixing body 321, a supporting body 322, a clamping body 323, and a first elastic body 324. The fixing body 321 is detachably connected to the moving member 31 and has a receiving groove 3211. The opening of the receiving groove 3211 is located on the upper surface of the fixing body 321, and the fixing body 321 is configured to support the reflector 33. The supporting body 322 is mounted above the receiving groove 3211 and connected to the fixing body 321, and the clamping body 323 is slidably disposed in the receiving groove 3211. The first elastic body 324 is disposed in the receiving groove 3211, and its two ends abut against the clamping body 323 and the bottom of the receiving groove 3211, respectively. The first elastic body 324 is configured to provide elastic force to push the clamping body 323 to clamp the reflector 33 to the supporting body 322. Exemplarily, the first elastic body 324 can be a spring.
[0031] Thus, by setting the specific structure of the clamping member 32, the reflector 33 is placed between the fixing body 321 and the supporting body 322. The first elastic body 324 then provides elastic force to push the clamping body 323 closer to the supporting body 322, so that the clamping body 323 flexibly clamps the reflector 33 to the supporting body 322, realizing quick clamping of the reflector 33, improving the efficiency of assembly and disassembly, while avoiding damage to the reflector 33, improving the clamping quality of the clamping member 32. In addition, the clamping member 32 can also adaptably clamp reflectors 33 of different sizes, improving versatility.
[0032] Please see Figure 1 and Figure 3 In some embodiments, the reflector 33 includes a light-transmitting layer 331 and a reflective layer 332 stacked together. The side of the light-transmitting layer 331 facing away from the reflective layer 332 is provided with a frosted surface 333. The light-transmitting layer 331 is adjacent to the carrier component 10 relative to the reflective layer 332. The reflective layer 332 is configured to reflect laser light incident through the light-transmitting layer 331 to the frosted surface 333.
[0033] In this way, the light rays incident on the reflector 33 are diffusely reflected by the frosted surface 333, thereby diffusing the focused laser spot and reducing the laser energy density. The unscattered laser light then passes through the light-transmitting layer 331, achieving secondary diffusion of the laser spot to further reduce the laser energy density. Finally, the laser light that has penetrated the light-transmitting layer 331 is reflected back to the frosted surface 333 by the reflector 33, forming a secondary diffuse reflection. This makes the laser energy reaching the part of the workpiece that needs to be shielded approach zero, thereby achieving the function of non-absorption shielding of the workpiece, avoiding frequent replacement of the reflector 33, and reducing the cost of use.
[0034] It should be noted that the light-transmitting layer 331 can be made of quartz glass, heat-resistant glass, etc. In this embodiment, heat-resistant glass is preferred. Heat-resistant glass has the characteristic of high temperature resistance, which can prevent the light-transmitting layer 331 from cracking or deforming due to high heat load at the laser focusing point, thereby ensuring the structural stability and service life of the reflector 33. The material of the reflector 332 can be one or more of titanium dioxide, tantalum pentoxide, zirconium dioxide, hafnium dioxide, niobium pentoxide, niobium dioxide, and scandium trioxide, preferably composed of niobium dioxide, zirconium dioxide, and titanium dioxide. Titanium dioxide and zirconium dioxide form a high refractive index gradient film system, which can efficiently reflect the residual laser that penetrates the light-transmitting layer 331 back to the frosted surface 333 for secondary diffusion. The semiconductor properties of niobium dioxide can absorb part of the scattered laser and convert it into harmless heat energy, which can reduce the risk of secondary focusing of reflected light.
[0035] Please see Figure 3 In some embodiments, a protective layer 334 is provided on the side of the reflective layer 332 that is away from the light-transmitting layer 331.
[0036] Thus, through the above-mentioned arrangement, the protective layer 334 can enhance the structural strength of the reflector 33, prevent the reflector 33 from being damaged by the clamping force of the clamping member 32, and thereby improve the service life of the reflector 33.
[0037] Please see Figure 1 , Figure 2 and Figure 4In some embodiments, there are two clamping members 32 and two reflecting members 33, with each clamping member 32 corresponding to one of the two reflecting members 33. The moving member 31 includes a support plate 311, a first sliding body 312, a second sliding body 313, a cover plate 314, a first protrusion 315, a second protrusion 316, a second elastic body 317, a third elastic body 318, and a driving body 319. The support plate 311 is connected to the bearing assembly 10. The support plate 311 is provided with a sliding groove 3111 and an assembly groove 3112, which are perpendicular to each other and connected. The first sliding body 312 is slidably disposed in the sliding groove 3111 and has a placement groove 3121. The second sliding body 313 is slidably disposed in the assembly groove 3112 and has a mounting groove 3131. The second sliding body 313 abuts against the first sliding body 312. The first sliding body 312 and the second sliding body 313 are respectively connected to a clamping member 32. The cover plate 314 covers the first sliding body 312 and the second sliding body 313 to the support plate 311 and is detachably connected to the support plate 311. The first protrusion 315 is inserted into the placement groove 3121 and connected to the support plate 311. The second protrusion 316 is inserted into the mounting groove 3131 and connected to the support plate 311. A second elastic body 317 is disposed in the mounting groove 3121, with its two ends elastically abutting against the first protrusion 315 and the groove wall of the mounting groove 3121, respectively. A third elastic body 318 is disposed in the mounting groove 3131, with its two ends elastically abutting against the second protrusion 316 and the groove wall of the mounting groove 3131, respectively. A driving body 319 is disposed in the bearing assembly 10 and connected to the first sliding body 312. The driving body 319 is configured to drive the first sliding body 312 to push the second sliding body 313 to move, so that the first sliding body 312 and the second sliding body 313 respectively drive the two reflectors 33 to move to the preset area of the workpiece. Exemplarily, the second elastic body 317 and the third elastic body 318 can be springs, and the driving body 319 can be a cylinder.
[0038] Thus, through the above configuration, the driving body 319 drives the first sliding body 312 to slide relative to the support plate 311, so that the first sliding body 312 pushes against the second sliding body 313, causing the first sliding body 312 and the second sliding body 313 to respectively drive the two clamping members 32 and the two reflective members 33 to move to the preset area of the workpiece, thereby simultaneously moving the two reflective members 33 to the preset area of the workpiece; at the same time, the second elastic body 317 is compressed to the first protrusion 315 under the push of the groove wall of the mounting groove 3121 of the first sliding body 312, and the third elastic body 318 is compressed to the second protrusion 316 under the push of the groove wall of the mounting groove 3131 of the second sliding body 313, so that the second elastic body 317 provides elastic force when the first sliding body 312 is reset, and the third elastic body 318 provides elastic force when the second sliding body 313 is reset, which is beneficial for the connecting body to perform repeated operations.
[0039] It is understood that the preset area of the workpiece includes two shielding positions, and the two reflectors 33 shield the two shielding positions of the workpiece respectively.
[0040] Please see Figure 4 In some embodiments, the second sliding body 313 is provided with a limiting groove 3132, and the moving member 31 further includes two limiting bodies 310. The two limiting bodies 310 are spaced apart and are both inserted into the limiting groove 3132. Each limiting body 310 is connected to the support plate 311. The limiting body 310 is configured to abut against the groove wall of the limiting groove 3132 to limit the movement distance of the second sliding body 313.
[0041] Thus, with the above configuration, when the second sliding body 313 moves under the pushing of the first sliding body 312, the limiting body 310 adjacent to the clamping member 32 abuts against the groove wall of the limiting groove 3132 to limit the movement distance of the second sliding body 313, ensuring that the reflector 33 corresponds to the preset area of the workpiece, thereby improving the shielding stability; when the second sliding body 313 resets under the drive of the second elastic body 317, the limiting body 310 away from the clamping member 32 abuts against the groove wall of the limiting groove 3132 to limit the sliding distance of the second sliding body 313, thereby preventing the second sliding body 313 from detaching from the support plate 311.
[0042] Please see Figure 1 In some embodiments, the support assembly 10 includes a support member 11 and a reference member 12. The support member 11 has a support position 111 configured to support a workpiece. The reference member 12 is disposed adjacent to the support position 111 on the support member 11 and is configured to abut against the workpiece. The processing equipment 100 also includes a pushing assembly 40 connected to the support member 11 and used to push the workpiece to the reference member 12.
[0043] Thus, through the above settings, the push component 40 pushes the workpiece to the reference component 12 to position the workpiece to the bearing position 111 of the bearing component 11, ensuring that the workpiece maintains the preset orientation and placement position. This is beneficial for the reflector 33 to accurately shield the preset area of the workpiece under the drive of the moving component 31, thereby improving the shielding accuracy.
[0044] Please see Figure 1 In this embodiment, the carrier 11 is provided with a receiving groove 112, which extends through the carrier 11 along the direction from the reference member 12 to the carrier 11. The clamping member 32, the reflector 33 and part of the moving member 31 are provided in the receiving groove 112 so that the reflector 33 can be stably moved to the preset area of the workpiece.
[0045] Please see Figure 1In some embodiments, the pushing assembly 40 includes a pushing drive member 41, a linkage member 42, a support member 43, a pushing member 44, and an elastic member 45. The pushing drive member 41 is connected to the carrier member 11, the linkage member 42 is connected to the pushing drive member 41, and the support member 43 is detachably connected to the linkage member 42. One end of the pushing member 44 is movably inserted through and movably connected to the support member 43, and the other end of the pushing member 44 is used to push the workpiece. The elastic member 45 is sleeved on the pushing member 44, and both ends of the elastic member 45 elastically abut against the pushing member 44 and the support member 43, respectively. Exemplarily, the pushing drive member 41 can be a cylinder, and the elastic member 45 can be a spring.
[0046] Thus, through the above configuration, the driving component 41 drives the linkage component 42 to move the support component 43 and the pushing component 44 closer to the reference component 12, so that the pushing component 44 pushes the workpiece. At the same time, the pushing component 44 compresses the elastic component 45 to the support component 43 under the reaction force of the workpiece, so that the pushing component 44 flexibly pushes the workpiece, avoids damage to the workpiece, and improves the product quality and pushing stability of the workpiece.
[0047] Please see Figure 1 In some embodiments, the processing equipment 100 further includes a holding assembly 50, which includes a holding drive 51 and a holding member 52. The holding drive 51 is disposed on one side of the bearing position 111 and connected to the bearing 11, and the holding member 52 is connected to the holding drive 51. The holding member 52 is configured to hold the workpiece to the bearing position 111 under the drive of the holding drive 51. Exemplarily, the holding drive 51 may be a rotary telescopic cylinder.
[0048] Thus, through the above configuration, the pressing drive 51 drives the pressing member 52 to rotate above the workpiece and move close to the carrier 11, so that the pressing member 52 presses the workpiece to the carrier position 111, thereby stably fixing the workpiece to the carrier position 111, preventing the workpiece from shifting during laser processing, and thus improving the processing quality.
[0049] Please see Figure 1 In some embodiments, the processing equipment 100 further includes a transfer member 60, which is connected to the support assembly 10 and configured to drive the support assembly 10 to move the workpiece along a preset trajectory. For example, the transfer member 60 may be a robotic arm.
[0050] Thus, through the above settings, the transfer unit 60 can drive the carrier 11 to move the workpiece along a preset path according to the processing requirements, so that the laser beam can accurately remove burrs on the processing area of the workpiece and avoid the laser beam hitting other parts of the workpiece, thereby improving the processing quality and accuracy.
[0051] Please see Figure 1In some embodiments, the support assembly 10 further includes a detection element 13, which is disposed on one side of the support position 111 and electrically connected to the transfer member 60. The detection element 13 is used to detect the placement information of the workpiece. For example, the detection element 13 can be a photoelectric sensor, a proximity sensor, etc.
[0052] Thus, through the above settings, the detection component 13 can detect the placement information of the workpiece in real time, ensuring that the workpiece is stably placed on the workpiece, and preventing the transfer component 60 from moving the carrier component 11 when the workpiece is not placed in place, which would cause the laser beam to be shone on other positions of the processing equipment 100.
[0053] The working process of the aforementioned processing equipment 100 is roughly as follows: First, the reflector 33 is placed between the fixing body 321 and the supporting body 322. The first elastic body 324 then provides elastic force to drive the clamping body 323 to move closer to the supporting body 322, so that the clamping body 323 flexibly clamps the reflector 33 to the supporting body 322. Then, the workpiece is placed on the carrier 11, and the driving component 41 drives the linkage component 42 to move the support component 43 and the pushing component 44 closer to the reference component 12, so that the pushing component 44 pushes the workpiece and the pushing component 40 and the reference component 12 position the workpiece, so that the reflector 33 corresponds to the preset area of the workpiece. Finally, the processing component 20 emits laser light to the processing area of the workpiece to eliminate burrs on the processing area. The reflector 33 directly reflects the laser light emitted to the preset area, preventing the workpiece from being damaged by the laser. This also shields the preset area of the workpiece, preventing the preset area of the workpiece from being damaged by the laser light. At the same time, it avoids the laser light from directly reacting with the reflector 33, which would cause the reflector 33 to wear out. This eliminates the need for frequent replacement of the reflector 33, thereby improving processing quality at a low cost.
[0054] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application and are not intended to limit it. Although this application has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of this application without departing from the spirit and scope of the technical solutions of this application.
Claims
1. A processing equipment, characterized in that, include: The load-bearing component is configured to carry the workpiece; A processing component is disposed on one side of the supporting component, and the processing component is used to emit laser light toward the workpiece to process the processing area of the workpiece; A reflective component is configured to cover a predetermined area of the workpiece and reflect the laser light incident on the predetermined area to shield the predetermined area of the workpiece.
2. The processing equipment as described in claim 1, characterized in that, The reflective component includes a movable component, a clamping component, and a reflective component. The movable component is connected to the bearing component, and the clamping component is connected to the movable component. The clamping component is configured to clamp the reflective component, and the reflective component is configured to move to the preset area of the workpiece under the drive of the movable component to reflect the laser light.
3. The processing equipment as described in claim 2, characterized in that, The clamping element includes: A fixed body is detachably connected to the movable part and has a storage slot. The opening of the storage slot is located on the upper surface of the fixed body, and the fixed body is configured to support the reflector. The supporting body is mounted above the storage slot and connected to the fixing body; A clamping body, slidably disposed in the storage slot; and A first elastic body is disposed in the receiving groove, with its two ends respectively abutting against the clamping body and the bottom of the receiving groove. The first elastic body is configured to provide elastic force to push the clamping body to clamp the reflector to the abutting body.
4. The processing equipment as described in claim 2, characterized in that, The reflector includes a light-transmitting layer and a reflective layer stacked together. The light-transmitting layer has a frosted surface on the side opposite to the reflective layer. The light-transmitting layer is adjacent to the carrier component relative to the reflective layer. The reflective layer is configured to reflect the laser light incident through the light-transmitting layer to the frosted surface.
5. The processing equipment as described in claim 4, characterized in that, A protective layer is provided on the side of the reflective layer that is opposite to the light-transmitting layer.
6. The processing equipment as described in claim 2, characterized in that, The number of clamping members and the number of reflecting members are both two, with each clamping member corresponding to one of the two reflecting members. The moving member includes: A support plate is connected to the load-bearing component. The support plate is provided with a sliding groove and an assembly groove. The sliding groove and the assembly groove are perpendicular to each other and are connected. A first sliding body and a second sliding body, wherein the first sliding body is slidably disposed in the sliding groove and has a placement groove, the second sliding body is slidably disposed in the assembly groove and has an installation groove, and the second sliding body abuts against the first sliding body, and the first sliding body and the second sliding body are respectively connected to a clamping member; A cover plate body, which covers the first sliding body and the second sliding body onto the support plate and is detachably connected to the support plate; A first protrusion and a second protrusion, wherein the first protrusion is inserted into the mounting groove and connected to the support plate, and the second protrusion is inserted into the mounting groove and connected to the support plate; A second elastic body and a third elastic body are provided. The second elastic body is disposed in the placement groove, and its two ends elastically abut against the first protrusion and the groove wall of the placement groove, respectively. The third elastic body is disposed in the mounting groove, and its two ends elastically abut against the second protrusion and the groove wall of the mounting groove, respectively. A driving body is disposed on the bearing assembly and connected to the first sliding body. The driving body is configured to drive the first sliding body to push the second sliding body to move, so that the first sliding body and the second sliding body respectively drive the two reflectors to move to the preset area of the workpiece.
7. The processing equipment as described in claim 6, characterized in that, The second sliding body is provided with a limiting groove, and the moving member further includes two limiting bodies. The two limiting bodies are spaced apart and inserted into the limiting groove. Each limiting body is connected to the support plate. The limiting body is configured to abut against the groove wall of the limiting groove to limit the movement distance of the second sliding body.
8. The processing equipment as described in claim 1, characterized in that, The bearing assembly includes a bearing member and a reference member. The bearing member has a bearing position configured to bear the workpiece. The reference member is disposed adjacent to the bearing position on the bearing member and configured to abut against the workpiece. The processing equipment also includes a pushing component connected to the carrier, the pushing component being used to push the workpiece to the reference piece.
9. The processing equipment as described in claim 8, characterized in that, The actuating component includes: The drive component is connected to the carrier component; The linkage component is connected to the drive component; The support component is detachably connected to the linkage component; A pushing member, one end of which is movably inserted through and movably connected to the support member, and the other end of which is used to push the workpiece; and An elastic element is sleeved on the pushing element, and the two ends of the elastic element elastically abut against the pushing element and the supporting element, respectively.
10. The processing equipment as described in claim 1, characterized in that, The processing equipment also includes: A transfer component is connected to the bearing assembly, and the transfer component is configured to drive the bearing assembly to move the workpiece along a preset trajectory.