Processing equipment

The processing device automates the recognition and setting of machining paths for deburring and chamfering, reducing workload and improving accuracy by using a camera and laser irradiator to adapt to different workpiece shapes.

JP7727323B2Active Publication Date: 2025-08-21IWATA KOKI
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Patent Information

Application Number
JP2022166860
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-10-18
Publication Date
2025-08-21
Estimated Expiration
2042-10-18

AI Technical Summary

Technical Problem

Existing deburring and chamfering processes require manual teaching and preparation of NC programs for each workpiece with different shapes, leading to a heavy workload.

Method used

A processing device that includes a processing unit, setting unit, and control unit, which uses an optical cutting method with a camera and laser irradiator to automatically recognize and set a processing path along the edge of a workpiece, allowing the tool to move accordingly to deburr or chamfer the workpiece.

Benefits of technology

Automatically sets the machining path, reducing the need for manual teaching and NC program preparation, improving accuracy, and enabling smooth deburring or chamfering around corners, even with varying workpiece shapes and sizes.

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Abstract

To reduce a work load when performing deburring and chamfering of a workpiece.SOLUTION: A processing device comprises a processing part, a setting part and a control part. The processing part is configured so as to move a processing tool to an X-axis direction and a Y-axis direction and a Z-axis direction along a placement surface. The setting part recognizes an edge part of a processed surface in an external surface of a workpiece which is fixed on the placement surface by an optical cutting method which uses a camera and a laser irradiation apparatus and at the same time sets a processing route along the edge part. The control part controls the processing part and performs deburring or chamfering of the edge part of the processed surface in the workpiece by moving the processing tool along the processing route.SELECTED DRAWING: Figure 5
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Description

[Technical Field]

[0001] The present disclosure relates to a processing device. [Background technology]

[0002] There are known techniques for deburring workpieces using articulated robots or NC processing devices (for example, see Patent Document 1). When deburring using a robot, it is necessary to teach the robot so that it recognizes the areas to be deburred and the processing path along which the processing tool should be moved. Furthermore, when deburring using an NC processing device, it is necessary to prepare an NC program in advance based on a 3D model of the workpiece or CAM data. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 7-104829 Summary of the Invention [Problem to be solved by the invention]

[0004] Therefore, when deburring multiple workpieces with different shapes, it was necessary to perform teaching work and prepare NC programs for each workpiece, which resulted in a heavy workload.

[0005] An object of one aspect of the present disclosure is to reduce the workload when deburring or chamfering a workpiece. [Means for solving the problem]

[0006] One aspect of the present disclosure is a processing device configured to process a workpiece fixed to a mounting surface, and includes a processing unit, a setting unit, and a control unit. The processing unit is configured to move a processing tool in an X-axis direction along the mounting surface, a Y-axis direction along the mounting surface and perpendicular to the X-axis direction, and a Z-axis direction perpendicular to the X-axis and Y-axis directions. The setting unit is configured to recognize the edge of the processing surface on the outer surface of the workpiece by an optical cutting method using a camera and a laser irradiator, and to set a processing path along the edge. The control unit is configured to control the processing unit and move the processing tool along the processing path to deburr or chamfer the edge of the processing surface of the workpiece.

[0007] According to the above configuration, the machining path along the edge of the workpiece surface is automatically set, and the tool is moved along the machining path to deburr or chamfer the workpiece, thereby reducing the workload when deburring or chamfering the workpiece.

[0008] In one aspect of the present disclosure, the edge of the processing surface may include first and second sections extending linearly in different directions and an intersection point between these sections. The first section may extend in a first direction toward the intersection point. The second section may extend in a second direction toward the intersection point. The end of a line obtained by extending the first section in the first direction may be a first turning point. The end of a line obtained by extending the second section in the second direction may be a second turning point. The processing path along the first and second sections may include a section extending from the intersection point to the first turning point, a section extending from the first turning point to the second turning point, and a section extending from the second turning point to the intersection point.

[0009] According to the above configuration, deburring or chamfering can be smoothly performed around the intersection of the first and second sections at the edge of the processed surface (in other words, around the corner). One aspect of the present disclosure may further include an adjustment unit that measures the height of the workpiece by the light-section method and determines a Z-axis measurement position, which is the position of the camera and the laser irradiator in the Z-axis direction, based on the height of the workpiece. The setting unit may move the camera and the laser irradiator to the Z-axis measurement position, and recognize the edge of the processing surface and set the processing path using the camera and the laser irradiator located at the Z-axis measurement position.

[0010] According to the above configuration, the accuracy in recognizing the edge of the processed surface is improved. [Brief explanation of the drawings]

[0011] [Figure 1] FIG. [Figure 2] FIG. [Figure 3] FIG. [Figure 4] FIG. [Figure 5] 10 is a flowchart of an automatic processing process. [Figure 6] FIG. 2 is a perspective view showing an example of a workpiece. [Figure 7] FIG. 10 is an explanatory diagram of a machining path provided at a corner of the machining surface. DETAILED DESCRIPTION OF THE INVENTION

[0012] Hereinafter, embodiments of the present disclosure will be described with reference to the accompanying drawings. Note that the embodiments of the present disclosure are not limited to the following embodiments, and various forms may be adopted as long as they fall within the technical scope of the present disclosure.

[0013] [1. Overview] The processing device 1 of this embodiment is configured to automatically deburr or chamfer the workpiece 6 (see FIGS. 1 to 4 and 6). That is, the processing device 1 functions as an NC processing device that deburrs or chamfers the workpiece 6 by moving a processing tool 34, which rotates around a main axis extending in the vertical direction, in the directions of the X-axis, Y-axis, and Z-axis that form a three-dimensional Cartesian coordinate system.

[0014] The processing device 1 also has a function of recognizing a processing surface 60, which is a portion located at the upper part of the outer surface of the workpiece 6, and an edge portion 60A of the processing surface 60 by an optical cutting method, and setting a processing path 61 along the edge portion 60A (see FIG. 6 ). In the present embodiment, as an example, the processing path 61 is set to correspond to the entire section of the edge portion 60A of the processing surface 60. However, this is not limited to this, and the processing path 61 may be set to correspond to a portion of the edge portion 60A of the processing surface 60. As an example, the processing surface 60 is a horizontal or approximately horizontal plane. However, this is not limited to this, and the processing surface 60 may be a non-horizontal plane or a curved surface. As an example, the processing surface 60 is not limited to the upper part of the outer surface of the workpiece 6, and a portion located at the side of the outer surface of the workpiece 6, for example, may be recognized as the processing surface.

[0015] The processing device 1 then moves the processing tool 34 along the processing path 61 and cuts the edge portion 60A of the processing surface 60 of the workpiece 6, thereby automatically deburring or chamfering the edge portion 60A. The processing device 1 includes a work table 2, a processing unit 3, a recognition unit 4, and a control unit 5.

[0016] [2. Workbench] The work table 2 constitutes the lower part of the processing device 1, and a processing unit 3 and a recognition unit 4 are fixed to the upper surface of the work table 2 (see FIGS. 1 to 4).

[0017] Furthermore, a fixing unit 20 configured to fix the workpiece 6 is arranged on the upper surface of the workbench 2. The fixing unit 20 has a mounting surface 21 that forms a horizontal plane. Furthermore, the mounting surface 21 is parallel to the X-axis and Y-axis and perpendicular to the Z-axis. As an example, the fixing unit 20 has an electromagnet, and fixes the workpiece 6 to the mounting surface 21 by magnetic force. However, other than this, the fixing unit 20 may fix the workpiece 6 to the mounting surface 21 by, for example, a positioning tool other than an electromagnet.

[0018] [3. Processing section] The processing unit 3 includes an X-axis guide unit 31, a Y-axis guide unit 30, a Z-axis guide unit 32, and a drive unit 33 (see FIGS. 1 to 4).

[0019] The X-axis guide unit 31 is fixed to the upper surface of the workbench 2, and has two first and second guides 31A and 31B extending in the X-axis direction above the upper surface. The first and second guides 31A and 31B are aligned with a gap in the Y-axis direction, and the fixed unit 20 is provided between the first and second guides 31A and 31B.

[0020] Y-axis guide unit 30 is located above workbench 2 and suspended from the top of first guide 31A to the top of second guide 31B of X-axis guide unit 31 while extending in the Y-axis direction. Y-axis guide unit 30 is configured to move in the X-axis direction on first and second guides 31A and 31B by a servo motor (not shown) built into Y-axis guide unit 30.

[0021] Z-axis guide section 32 is located above workbench 2, and is provided on the side surface of Y-axis guide section 30 while extending in the Z-axis direction. Z-axis guide section 32 is configured to move in the Y-axis direction on the side surface of Y-axis guide section 30 by a servo motor (not shown) built into Z-axis guide section 32.

[0022] The drive unit 33 is located above the work table 2 and is provided on the side of the Z-axis guide unit 32, extending in the Z-axis direction perpendicular to the mounting surface 21. The drive unit 33 is configured to move in the Z-axis direction on the side of the Z-axis guide unit 32 by a servo motor (not shown). A spindle is provided below the drive unit 33, and a processing tool 34 equipped with a cutting blade is attached to the lower end of the spindle. The processing tool 34 is rotated around a main shaft extending in the Z-axis direction by a spindle motor (not shown) provided inside the drive unit 33. Multiple types of processing tools 34 can be attached to the lower end of the spindle.

[0023] In other words, the processing unit 3 is configured to move the processing tool 34 attached to the lower end of the drive unit 33 in the X-axis direction, the Y-axis direction, and the Z-axis direction using the X-axis guide unit 31, the Y-axis guide unit 30, and the Z-axis guide unit 32.

[0024] [4. Recognition part] The recognition unit 4 includes a Y-axis guide unit 40, a Z-axis guide unit 41, a support unit 42, a laser irradiator 43, a camera 44, and an image processing unit 45 (see FIGS. 1 to 4).

[0025] The Y-axis guide unit 40 is fixed to the upper surface of the work table 2 and has a guide 40A extending in the Y-axis direction above the upper surface. The guide 40A is located above the X-axis guide unit 31 of the processing unit 3.

[0026] Z-axis guide unit 41 is located above workbench 2 and is provided on the side surface of guide 40A of Y-axis guide unit 40, extending in the Z-axis direction. Z-axis guide unit 41 is configured to move in the Y-axis direction on the side surface of guide 40A by a servo motor (not shown) built into Z-axis guide unit 41.

[0027] Support part 42 is located above workbench 2 and is provided so as to protrude in the X-axis direction from the side surface of Z-axis guide part 41. Support part 42 is configured to move in the Z-axis direction on the side surface of Z-axis guide part 41 by a servo motor (not shown).

[0028] Furthermore, a laser irradiator 43 is provided near the Z-axis guide portion 41 on the support portion 42, and a camera 44 is provided at the tip of the support portion 42. The laser irradiator 43 and the camera 44 are located above the workbench 2.

[0029] That is, the recognition unit 4 is configured to move the support unit 42 in the Y-axis direction and the Z-axis direction by the Y-axis guide unit 40 and the Z-axis guide unit 41. By moving the support unit 42, the positions of the camera 44 and the laser irradiator 43 change. Furthermore, the camera 44 and the laser irradiator 43 pass above the placement surface 21 when moving in the Y-axis direction.

[0030] The image processing unit 45 has a computer equipped with a CPU, memories such as ROM / RAM, and storage media such as a HDD or flash memory. The image processing unit 45 operates in accordance with a program stored in the memory to move the support unit 42 and control the laser irradiator 43 and the camera 44. Note that the various controls realized by the image processing unit 45 are not limited to those realized by executing a program, and some or all of them may be realized using one or more pieces of hardware.

[0031] [5. About the light-section method] As described above, the image processing unit 45 uses the optical cutting method to recognize the machining surface 60 and its edge 60A of the workpiece 6 fixed to the mounting surface 21, and sets a machining path 61 along the edge 60A (see Figure 6).

[0032] Specifically, the camera 44 located at the tip of the support part 42 faces downward along the Z-axis direction, and the orientation of the laser irradiator 43 is adjusted so that it irradiates a beam downward from the camera 44 (see Figures 1 to 4).

[0033] When measuring using the light-section method, the image processing unit 45 moves the support unit 42 (in other words, the camera 44 and the laser irradiator 43) located above the mounting surface 21 in the Y-axis direction so as to cross the mounting surface 21. At this time, the image processing unit 45 causes the laser irradiator 43 to irradiate a beam toward the workpiece 6, and receives the reflected beam with the light-receiving element of the camera 44. In this way, the image processing unit 45 measures the position of the outer surface of the workpiece 6, and recognizes the processed surface 60 of the workpiece 6 and its edge 60A based on the measurement results.

[0034] [6. Control Unit] The control unit 5 has a computer equipped with a CPU, memories such as ROM / RAM, and storage media such as HDD and flash memory, and operates according to a program stored in the memory (see FIG. 1). The control unit 5 is connected to the processing unit 3 and also to the image processing unit 45 of the recognition unit 4 via, for example, Ethernet (registered trademark), and controls these components. The control unit 5 also has a display unit and an operation unit (not shown), and accepts operations from the operator via the operation unit and displays various information to the operator via the display unit.

[0035] The control unit 5 also performs NC control to deburr or chamfer the workpiece 6. Specifically, the control unit 5 controls the servo motor of the processing unit 3 in accordance with the NC program stored in the memory to move the processing tool 34 in the X-axis, Y-axis, and Z-axis directions, and also controls the motor of the drive unit 33 to rotate the processing tool 34.

[0036] [7. Automatic processing] Next, an automatic processing process for automatically deburring or chamfering the workpiece 6 will be described (see FIG. 5).

[0037] In S100, the workpiece 6 is fixed to the mounting surface 21 of the fixing portion 20 of the work table 2 in the processing apparatus 1. In the next step S105, the control unit 5 receives an instruction from the operator via an operation unit (not shown) to start deburring or chamfering the workpiece 6. Specifically, the control unit 5 receives an operation from the operator via the operation unit to determine the amount of cutting of the workpiece 6. If the amount of cutting is small, deburring is performed, and if the amount of cutting is large, chamfering is performed. The control unit 5 then transmits a command to the image processing unit 45 of the recognition unit 4 to instruct it to recognize the machined surface 60 of the workpiece 6 using the light-section method.

[0038] In S110, the image processing unit 45, having received the above command, moves the position of the support unit 42 (in other words, the camera 44 and laser irradiator 43) in the Z-axis direction to a predetermined adjustment position, and then moves the support unit 42 so as to cross the placement surface 21 in the Y-axis direction. At this time, the image processing unit 45 recognizes the processing surface 60 of the workpiece 6 by the light-section method, and measures the position of the processing surface 60 in the Z-axis direction (in other words, the height of the workpiece 6) based on the recognition result. Then, based on the height of the workpiece 6, the image processing unit 45 calculates a Z-axis measurement position, which is the position of the support unit 42 in the Z-axis direction when the distance in the Z-axis direction between the support unit 42 and the workpiece 6 is a predetermined value.

[0039] In the next S115, the image processing unit 45 moves the support unit 42 to the Z-axis measurement position, and then moves the support unit 42 in the Y-axis direction so as to cross the placement surface 21. At this time, the image processing unit 45 recognizes the processing surface 60 and its edge portion 60A of the workpiece 6 by the optical section method, and proceeds to S120.

[0040] In S120, the image processing unit 45 sets a machining path 61 along the edge 60A of the machining surface 60 of the workpiece 6, and the process proceeds to S125. In S125, the image processing unit 45 performs a smoothing process on the machining path 61 set in S115. Specifically, the image processing unit 45 may smooth the machining path 61 by, for example, a moving average. This makes it possible to prevent the machining path 61 from being calculated in a shape different from the edge 60A of the machining surface 60 of the workpiece 6 due to the influence of burrs.

[0041] In S130, the image processing unit 45 converts the machining path 61 into NC control data by calculating parameters for NC control from the machining path 61, and then in S135, transmits the NC control data to the control unit 5.

[0042] In S140, the control unit 5 generates an NC program based on the data for NC control. At this time, tool diameter correction is performed to offset the machining path 61 indicated by the data in accordance with the size (e.g., diameter) of the machining tool 34 used for deburring or chamfering. The offset machining path 61 becomes the path along which the machining tool 34 actually moves when deburring or chamfering the edge 60A of the machining surface 60. Then, an NC program is generated to move the machining tool 34 along the offset machining path 61.

[0043] Of course, the method of generating the NC program is not limited to this, and for example, the image processing unit 45 or the control unit 5 may perform a similar offset on the machining path 61 generated by the image processing unit 45, and the machining path 61 after the offset may be converted into data for NC control. Then, the control unit 5 may generate an NC program based on the data.

[0044] In S145, the control unit 5 deburrs or chamfers the edge portion 60A of the machining surface 60 of the workpiece 6 based on the NC program. Specifically, the control unit 5 rotates the processing tool 34 using the drive unit 33 and moves the processing tool 34 along the machining path 61 indicated by the NC program to cut the edge portion 60A of the workpiece 6. Then, when the processing tool 34 reaches the end point of the machining path 61, the control unit 5 ends this process.

[0045] [8. Machining route around corners] It is assumed that a corner 60B exists at an edge 60A of a machining surface 60 of a workpiece 6 (see FIG. 7). That is, it is assumed that the edge 60A includes first and second sections 62, 63 extending linearly in different directions and an intersection 64 between these sections, and that a corner 60B is formed around the intersection 64. The first section 62 extends in a first direction toward the intersection 64, and the second section 63 extends in a second direction toward the intersection 64. Also, the angle between the first and second sections 62, 63 is 90° as an example in FIG. 7, but is not limited to this, and the angle may be less than 90° or greater than 90°, for example.

[0046] In such a case, an additional section 61A that passes through a position away from the edge 60A of the machining surface 60 may be provided around the corner 60B in the machining path 61. Specifically, the end of the line obtained by extending the first section 62 in the first direction is defined as a first turning point 65, and the end of the line obtained by extending the second section 63 in the second direction is defined as a second turning point 66. The first and second turning points 65, 66 are located near the corner 60B.

[0047] The auxiliary section 61A includes a section extending from an intersection 64 of the first and second sections 62, 63 to a first turning point 65, a section extending from the first turning point 65 to a second turning point 66, and a section extending from the second turning point 66 to the intersection 64. After passing through the first section 62, the processing tool 34 traveling along the auxiliary section 61A passes through the first turning point 65 and the second turning point 66 in sequence, and then enters the second section 63.

[0048] In the automatic machining process, the timing for providing the auxiliary section 61A in the machining path 61 can be selected as appropriate, but as an example, the auxiliary section 61A may be provided in S120. That is, the image processing unit 45 may detect a corner 60B of the edge 60A of the machining surface 60 based on the recognition result of the machining surface 60 of the workpiece 6, and provide the auxiliary section 61A around the corner 60B. Also, for example, the auxiliary section 61A may be provided at a stage after the smoothing process is performed in S125.

[0049] In addition, for example, the image processing unit 45 may detect a corner 60B of the edge 60A of the machining surface 60 based on the machining path 61 indicated by the data for NC control, and process the data to provide an additional section 61A around the corner 60B.

[0050] Furthermore, for example, the control unit 5 may detect a corner 60B of the edge 60A of the machining surface 60 based on the machining path 61 indicated by the NC program, and by machining the NC program, an additional section 61A may be provided around the corner 60B.

[0051] Furthermore, for example, the auxiliary section 61A may be provided for the machining path 61 before the offset described above is performed, or the auxiliary section 61A may be provided for the machining path 61 after the offset is performed.

[0052] [9. Effects] (1) According to the above embodiment, the machining path 61 along the edge 60A of the machining surface 60 of the workpiece 6 is automatically set, and the machining tool 34 is moved along the machining path 61, thereby deburring or chamfering the workpiece 6. This eliminates the need for teaching or preparing an NC program based on a 3D model or CAM data, thereby reducing the workload when deburring or chamfering the workpiece 6.

[0053] Furthermore, articulated robots have low rigidity, and when deburring or chamfering is performed using such a robot, if the chamfering depth becomes large (for example, if it becomes C1 or greater), there is a risk that the uniformity of the machined surface will decrease and the surface roughness and finish of the machined surface will deteriorate.

[0054] In contrast to this, in the above embodiment, the processing tool 34 is operated not by an articulated robot but by guide units 30 to 32 that are movable in the X-axis, Y-axis, and Z-axis directions. Therefore, even when the chamfering depth is large, the chamfering can be performed satisfactorily.

[0055] Furthermore, if the workpiece 6 has not been subjected to sufficient processing, or if it has a black surface formed by black scale, a fused surface formed by fusion cutting, or a cut surface formed by cutting with a band saw, there is a high possibility that the shape of the workpiece 6 will vary. In contrast, in the above embodiment, the processing path 61 is automatically set according to the shape of the workpiece 6. Therefore, even if the shape of the workpiece 6 varies, it is possible to perform good deburring and chamfering.

[0056] (2) Furthermore, when a corner 60B exists at the edge 60A of the processing surface 60, an additional section 61A is provided around the corner 60B in the processing path 61. When deburring or chamfering is performed, the processing tool 34 passes through the first section 62, then the first turning point 65 and the second turning point 66, and then enters the second section 63. Therefore, compared to when the processing tool 34 passes through the first section 62 and then immediately enters the second section 63, deburring or chamfering around the corner 60B at the edge 60A of the processing surface 60 can be performed more smoothly.

[0057] (3) In the automatic machining process, the height of the workpiece 6 is measured, and the Z-axis measurement position is calculated based on the measured height. Then, with the support 42 positioned at the Z-axis measurement position, the machining surface 60 and its edge 60A of the workpiece 6 are recognized by the optical cutting method, and the machining path 61 is set. This improves the accuracy in recognizing the machining surface 60 and its edge 60A.

[0058] 10. Other Embodiments In the above embodiments, multiple functions of one component may be realized by multiple components, or one function of one component may be realized by multiple components. Furthermore, multiple functions of multiple components may be realized by one component, or one function realized by multiple components may be realized by one component. Furthermore, part of the configuration of the above embodiments may be omitted. Furthermore, at least part of the configuration of the above embodiments may be added to or substituted for the configuration of another of the above embodiments.

[0059] [11. Correspondence of Wording] S110 of the automatic processing corresponds to an example of an adjustment unit, and S115 and S120 correspond to an example of a setting unit. [Explanation of symbols]

[0060] 1...machining device, 2...work table, 20...fixing portion, 21...mounting surface, 3...machining portion, 30...Y-axis guide portion, 31...X-axis guide portion, 31A, 31B...first and second guides, 32...Z-axis guide portion, 33...drive portion, 34...machining tool, 4...recognition portion, 40...Y-axis guide portion, 40A...guide, 41...Z-axis guide portion, 42...support portion, 43...laser irradiator, 44...camera, 45...image processing portion, 5...control portion, 6...workpiece, 60...machining surface, 60A...edge portion, 61...machining path, 61A...ancillary section, 62, 63...first and second sections, 64...intersection, 65, 66...first and second turning points.

Claims

1. A processing device configured to process a workpiece fixed to a mounting surface, a processing unit configured to move a processing tool in an X-axis direction along the mounting surface, a Y-axis direction along the mounting surface and perpendicular to the X-axis direction, and a Z-axis direction perpendicular to the X-axis direction and the Y-axis direction; A setting unit configured to recognize an edge of a processing surface on the outer surface of the workpiece by an optical cutting method using a camera and a laser irradiator, and to set a processing path along the edge; a control unit configured to control the processing unit and move the processing tool along the processing path to deburr or chamfer the edge of the processing surface of the workpiece; Equipped with the edge of the processing surface includes first and second sections that extend linearly in different directions and an intersection of these sections; the first section extends in a first direction toward the intersection; the second section extends in a second direction toward the intersection; an end of a line extending from the first section in the first direction is defined as a first turning point; an end of a line extending from the second section in the second direction is defined as a second turning point; The processing path along the first and second sections includes a section extending from the intersection point to the first turning point, a section extending from the first turning point to the second turning point, and a section extending from the second turning point to the intersection point. Processing equipment.

2. The processing device according to claim 1, An adjustment unit is further provided that measures the height of the workpiece by the light-section method and determines a Z-axis measurement position, which is the position of the camera and the laser irradiator in the Z-axis direction, based on the height of the workpiece, The setting unit moves the camera and the laser irradiator to the Z-axis measurement position, and recognizes the edge of the processing surface by the camera and the laser irradiator positioned at the Z-axis measurement position, and sets the processing path. Processing equipment.

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