Cutting edge protection member and coating removal method
The cutting edge protection member shields the cutting edge from plasma ions, preventing wear and enabling efficient coating removal on cutting tools by alternately exposing the surface between cutting edges, using materials resistant to ion collisions and heat.
Patent Information
- Application Number
- JP2024056169
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-29
- Publication Date
- 2025-10-10
AI Technical Summary
The sharp cutting edge of cutting tools wears away faster than the coating during plasma treatment, leading to dulling of the cutting edge during coating removal processes.
A cutting edge protection member with a plasma shielding portion is used to cover the cutting edge, preventing ion incidence and wear during plasma processing, while exposing the surface between cutting edges for efficient coating removal.
The cutting edge is protected from wear, allowing for effective coating removal without dulling, using materials like stainless steel, molybdenum, and quartz that resist ion collisions and heat.
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Figure 2025153610000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a cutting edge protection member that protects the cutting edge of a tool during plasma processing, and a coating removal method using the cutting edge protection member. [Background technology]
[0002] Conventionally, there have been so-called coated tools, in which a coating treatment (coating treatment) is applied to the surface of a substrate made of tool steel or cemented carbide to impart additional properties such as wear resistance and heat resistance to the original properties of the substrate. With use, the coating formed on the surface of such tools wears and peels off, reaching the end of their service life. While such used tools have traditionally been discarded without being reused, in recent years, they have been recycled by thoroughly removing (de-coating) the coating from the surface of used tools and then coating them again.
[0003] As an apparatus for removing a coating from the surface of a tool using plasma, for example, the coating removal apparatus shown in Patent Document 1 is known. This coating removal apparatus is configured to place a drill, which is the workpiece, on a disk-shaped stage installed inside a vacuum chamber, introduce argon gas into the vacuum chamber, generate inductively coupled plasma inside the vacuum chamber using an antenna installed outside the vacuum chamber, and apply a bias voltage to the stage, causing positive ions in the plasma to be incident on the coating on the surface of the drill, thereby removing the coating. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Publication No. 2023-004296 Summary of the Invention [Problem to be solved by the invention]
[0005] However, when a coating removal device such as that described above is used to remove coatings from cutting tools such as drills by plasma treatment, the sharp cutting edge may wear away faster than the coating on the tool surface, resulting in dulling of the cutting edge.
[0006] The present invention has been made to solve such problems, and its main object is to suppress wear of the cutting edge of a tool during a film removal process using plasma. [Means for solving the problem]
[0007] In other words, the cutting edge protection member of the present invention is used in conjunction with a coating removal device that generates plasma in a vacuum chamber in which a cutting tool is placed and removes a coating formed on the surface of the cutting tool by plasma processing using the plasma, and is characterized by having a plasma shielding portion that is placed in the vacuum chamber so as to cover the cutting edge of the cutting tool and that suppresses the incidence of ions in the plasma on the cutting edge.
[0008] With this configuration, the cutting edge of the cutting tool is covered by the plasma shielding portion, and ions in the plasma can be prevented from entering the cutting edge, thereby preventing wear of the cutting edge during plasma processing.
[0009] The cutting edge protection member is attached to the tip of the cutting tool and is preferably configured so that, when viewed from the axial direction of the cutting tool, the plasma shielding portions and exposed portions that expose the surface between the cutting edges of the cutting tool to plasma are arranged alternately around the axis. In this way, the cutting edge of the tool is shielded from the plasma by the plasma shielding portion while the surface between the cutting edges is exposed to the plasma, so that the film on the surface between the cutting edges can be removed while suppressing wear of the cutting edge of the tool.
[0010] It is preferable that the cutting tool is a drill, and the cutting edge protection member is formed so that the inner wall surface of the plasma shielding portion is inclined at approximately the same angle as the point angle of the drill. In this way, the inner wall surface of the plasma shielding portion and the tip angle of the drill are inclined at approximately the same angle, so the plasma shielding portion can be fitted and attached to the tip of the drill, further suppressing the incidence of ions in the plasma on the cutting edge.
[0011] A specific configuration of the cutting edge protection member is one that is roughly cylindrical, and the exposed portion is configured by a groove formed on the side peripheral surface so as to open to the upper and lower surfaces. In this way, ions in the plasma can be made incident on the surface between the cutting edges of the tool from above, the sides, and below, and the surface between the cutting edges can be efficiently delaminated.
[0012] The cutting edge protection member is preferably formed so that the grooves constituting the exposed portion correspond to the shape of the grooves between the cutting edges of the drill. This makes it easier for ions in the plasma to flow into the drill grooves, allowing for more efficient film removal.
[0013] It is preferable that the cutting tool is a hob, and the cutting edge protection member has a shape in which the plasma shielding portion extends straight along the axial direction of the tool. In this way, a plurality of cutting edges of the hob aligned along the axial direction can be collectively protected by a single plasma shielding portion.
[0014] In a specific embodiment of the cutting edge protection member, the plasma shielding portion is made of one or more materials selected from stainless steel, molybdenum, tungsten, and quartz. These materials allow the plasma shielding portion to exhibit sufficient resistance to ion collisions and heat during film removal processing using plasma.
[0015] Furthermore, the coating removal method of the present invention is a coating removal method in which plasma is generated in a vacuum chamber in which a cutting tool is placed, and a coating formed on the surface of the cutting tool is removed by performing plasma treatment using the plasma, and is characterized in that a plasma shielding section is installed in the vacuum chamber to cover the cutting edge of the cutting tool and suppress the incidence of ions in the plasma on the cutting edge, and the coating on the cutting tool is removed. Such a coating removal method of the present invention can achieve the same effects as the cutting edge protection member of the present invention described above. [Effects of the Invention]
[0016] According to the present invention configured in this manner, it is possible to suppress wear of the cutting edge of the tool during the film removal treatment using plasma. [Brief explanation of the drawings]
[0017] [Figure 1] 1 is a vertical cross-sectional view schematically showing the configuration of a coating removal device according to an embodiment of the present invention; [Figure 2] FIG. 2 is a top view schematically showing the configuration of the coating removal device of the embodiment. [Figure 3] FIG. 2 is a top perspective view schematically showing the configuration of the cutting edge protection member of the embodiment. [Figure 4] FIG. 2 is a top perspective view showing the configuration of the cutting edge protection member of the embodiment, with the structure of the underside thereof visible; [Figure 5] FIG. 2 is a top view schematically showing the configuration of the cutting edge protection member of the embodiment. [Figure 6] FIG. 2 is a cross-sectional view schematically showing the configuration of the cutting edge protection member of the embodiment. [Figure 7] FIG. 10 is a top view schematically showing the configuration of a cutting edge protection member according to another embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0018] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS A coating removal device according to an embodiment of the present invention will be described below with reference to the drawings.
[0019] <Device configuration> The coating removal device of this embodiment removes a coating formed on the surface of a tool by plasma treatment using inductively coupled plasma.
[0020] 1 and 2, the coating removal apparatus 100 includes a vacuum vessel 1 that forms a processing chamber S that is evacuated and into which a gas is introduced, an antenna 2 provided outside the vacuum vessel 1, and a high-frequency power supply 3 that applies high-frequency power to the antenna 2. In this configuration, when high-frequency power is applied to the antenna 2 from the high-frequency power supply 3, a high-frequency current flows through the antenna 2, generating an inductive electric field within the vacuum vessel 1 and generating inductively coupled plasma. In this embodiment, the antenna 2 and the high-frequency power supply 3 that applies high-frequency power thereto constitute a plasma source.
[0021] The tool T to be processed by the coating removal device 100 of this embodiment is a so-called coated tool, which is a tool having a coating (also called a coating film) formed on the surface of a base material made of, for example, tool steel or cemented carbide. Specifically, the tool T is a cutting tool having one or more blades, such as a drill, a hob, or an end mill, and in particular a cutting tool having a honed cutting edge. The tool T of this embodiment is a drill having multiple cutting edges.
[0022] The vacuum vessel 1 is, for example, a metal vessel. The vacuum vessel 1 is electrically grounded here, and the processing chamber S therein is evacuated by a vacuum pumping device 4.
[0023] A plasma generating gas is introduced into the vacuum chamber 1 through a gas supply port (not shown). This plasma generating gas is, for example, a rare gas such as argon gas, a halogen gas, or a mixture thereof, and may be changed as appropriate depending on the material of the coating to be removed.
[0024] 1 and 2, the antennas 2 are arranged so as to face the side walls of the vacuum vessel 1. In this embodiment, two antennas 2 are provided so as to face each of a pair of opposing side walls of the vacuum vessel 1, but the number of antennas 2 is not limited to this and may be one or three or more. The antennas 2 in this embodiment are rod-shaped and are provided standing along the axial direction (vertical direction) of the vacuum vessel 1.
[0025] One end of the antenna 2, which is a power supply end, is connected to a high frequency power supply 3 via a matching circuit 31, and the other end, which is a termination end, is directly grounded. The termination end may also be grounded via a capacitor, a coil, or the like.
[0026] The high frequency power supply 3 can supply a high frequency current to the antenna 2 via a matching circuit 31. The frequency of the high frequency is, for example, a general 13.56 MHz, but is not limited to this and may be changed as appropriate.
[0027] This coating removal device 100 has a magnetic field transmission window W that allows the magnetic field generated from the antenna 2 to pass through. Specifically, the coating removal device 100 is provided with a dielectric plate that closes an opening formed in the wall of the vacuum vessel 1 from the outside of the vacuum vessel 1, and this dielectric plate forms the magnetic field transmission window W.
[0028] The dielectric plate is a flat plate made entirely of a dielectric material, such as ceramics such as alumina, silicon carbide, or silicon nitride, inorganic materials such as quartz glass or non-alkali glass, or resin materials such as fluororesin (e.g., Teflon). A sealing member such as an O-ring or gasket is interposed between the dielectric plate and the vacuum vessel 1, creating a vacuum seal between them.
[0029] The coating removal apparatus 100 includes a tool holder 5 that holds a tool T within the vacuum chamber 1. The tool holder 5 is configured to hold a plurality of tools T and to rotate and move the plurality of tools T within the vacuum chamber 1. Specifically, the tool holder 5 includes a disk-shaped rotary table 51 that rotates within the vacuum chamber 1, and an actuator (not shown) that rotates the rotary table 51.
[0030] The rotary table 51 is provided near the bottom wall of the vacuum vessel 1. On the upper surface of the rotary table 51, a plurality of (six in this example) holders 511 are provided, which hold the tools T upright with their tips facing upward. The plurality of holders 511 are circular when viewed from above and below, and are provided so as to be rotationally symmetrical with respect to one another about the central axis of the rotary table 51. The respective holders 511 hold the plurality of tools T in an arrangement which is rotationally symmetrical with one another.
[0031] In this embodiment, the rotary table 51 is rotated by driving the actuator, and as a result, the plurality of tools T held by the plurality of holders 511 of the rotary table 51 rotate around the center of the rotary table 51 as the rotation axis. Note that in this embodiment, each holder 511 itself is configured to rotate (spin on its own axis) on the rotary table 51.
[0032] The coating removal apparatus 100 includes a bias power supply 6 that applies a bias voltage to the tool holder 5. The bias voltage may be, for example, but is not limited to, a negative DC voltage. This bias voltage controls the energy of positive ions in the plasma when they are incident on the coating on the surface of the tool T, thereby controlling the rate at which the coating is removed.
[0033] With this configuration, when a high frequency is applied to the antenna 2 from the high frequency power supply 3, the high frequency magnetic field generated by the antenna 2 passes through the magnetic field transmission window W made of the dielectric plate 8 and is formed (supplied) inside the vacuum chamber 1. This generates an inductive electric field in the space inside the vacuum chamber 1, generating inductively coupled plasma. Then, by applying a bias voltage to the tool holder 5, positive ions in the plasma are incident on the coating on the surface of the tool T, thereby making it possible to remove the coating formed on the surface of the tool T.
[0034] In the coating removal apparatus 100 of this embodiment, in order to suppress wear of the cutting edge of the tool T during the coating removal process, a cutting edge protection member 7 is placed in the vacuum vessel 1, which covers the cutting edge of the cutting tool and has a plasma shielding portion 71 that suppresses the incidence of ions in the plasma on the cutting edge.
[0035] The cutting edge protection member 7 of this embodiment has a cap shape that is attached to the tip of the tool T. Specifically, as shown in FIGS. 3 to 5, the cutting edge protection member 7 has a substantially cylindrical shape. The cutting edge protection member 7 includes a plasma shielding portion 71 that shields the cutting edge of the tool T from plasma, and an exposed portion 72 that exposes the surface between the cutting edges of the tool T to plasma. The cutting edge protection member 7 includes a plurality of plasma shielding portions 71 and exposed portions 72 (two in this example), and is configured so that the plasma shielding portions 71 and exposed portions 72 are arranged alternately around the axis when viewed from the axial direction.
[0036] Grooves that open to the upper and lower surfaces are formed on the side peripheral surface of the cutting edge protection member 7, and these grooves form an exposed portion. The grooves formed on the side peripheral surface of the cutting edge protection member 7 are formed to correspond to the shape of the grooves formed between the cutting edges of the tool T, which is a drill. Specifically, the cutting edge protection member 7 is configured so that, when the cutting edge protection member 7 is attached to the tip of the tool T, the surface formed by the grooves formed on the side peripheral surface is approximately flush with the rake face formed by the grooves of the tool T.
[0037] The plasma shielding portion 71 is formed by the area other than the grooves in the cutting edge protection member 7. The plasma shielding portion 71 is formed so that its inner wall surface facing the outer surface of the tool T is inclined at approximately the same angle as the tip angle of the tool T. When attached to the tip of the tool T, the distance between the inner wall surface of the plasma shielding portion 71 and the cutting edge of the tool T is preferably 0 mm or more and 10 mm or less, and more preferably 0 mm or more and 3 mm or less. In this embodiment, the inner wall surface of the plasma shielding portion 71 is in contact with the cutting edge of the tool T, more specifically, in surface contact.
[0038] At least the plasma shielding portion 71 or the entire cutting edge protection member 7 is made of a material that exhibits sufficient ion collision resistance and heat resistance during plasma removal processing, and is made of, for example, one or more materials selected from stainless steel, molybdenum, tungsten, and quartz.
[0039] <Effects of this embodiment> According to the film removal process performed by the film removal device 100 using the cutting edge protection member 7 of this embodiment configured as described above, The cutting edge protection member 7 is attached to the tip of the tool T and is configured so that, when viewed from the axial direction of the tool T, plasma shielding portions 71 that shield the cutting edge of the tool T from plasma and exposed portions 72 that expose the surface between the cutting edges of the tool T to plasma are arranged alternately around the axis.Therefore, while the plasma shielding portions 71 shield the cutting edge of the tool from plasma, the surface between the cutting edges is exposed to plasma, so that it is possible to remove the film from the surface between the cutting edges while suppressing wear of the cutting edge of the tool. Furthermore, since the inner wall surface of the plasma shielding portion 71 and the tip angle of the drill are inclined at approximately the same angle, the plasma shielding portion 71 can be fitted and attached to the tip of the drill, further suppressing the incidence of ions in the plasma on the cutting edge. Furthermore, the exposed portion 72 of the cutting edge protection member 7 is configured with grooves formed on the side surface so as to open to the upper and lower surfaces, and the grooves are formed to correspond to the groove shape between the cutting edges of the tool. Therefore, ions in the plasma can be made incident on the surface between the cutting edges of the tool T from above, the side, and below, and the surface between the cutting edges can be efficiently delaminated.
[0040] <Other Modified Embodiments> The present invention is not limited to the above-described embodiment. For example, although the cutting edge protection member 7 in the above embodiment is attached to the tip of the tool T, this is not limiting. In other embodiments, as long as the cutting edge protection member 7 has a structure including a plasma shielding portion 71 that covers the cutting edge of the tool T, the cutting edge protection member 7 may be attached to a portion other than the tip of the tool T, or may be installed in the vicinity of the tool T without being attached to the tool T.
[0041] Furthermore, although the cutting edge protection member 7 in the above embodiment is attached to the tool T, which is a drill, the cutting edge protection member 7 in other embodiments may be attached to a hob, which has multiple cutting edges arranged around a rotation axis and multiple rows of the cutting edges along the rotation axis direction. In this case, as shown in FIG. 7 , the cutting edge protection member 7 may have, for example, a ring-shaped mounting portion 73 attached to the hub of the tool T, and the plasma shielding portion 71 may have a plate-like shape extending radially outward from the mounting portion 73 in a top view. In addition, in a top view, the radial tip of the plasma shielding portion 71 may be bent in a hook shape to surround the cutting edge of the tool T. In this case, the plasma shielding portion 71 may extend straight along the axial direction of the tool T and have a shape that covers the multiple cutting edges arranged in the axial direction.
[0042] Furthermore, the coating removal apparatus 100 in the above embodiment is of a so-called external antenna type, in which high frequency waves are applied to the antenna 2 provided outside the vacuum chamber 1 to generate plasma inside the vacuum chamber 1, but is not limited to this. In other embodiments, the coating removal apparatus 100 may be of a so-called internal antenna type, in which the antenna 2 is installed inside the vacuum chamber 1 to generate plasma.
[0043] In the above embodiment, the plasma processing is performed using inductively coupled plasma, but this is not limiting. In other embodiments, the plasma processing may be performed using plasma generated by other methods, such as capacitively coupled plasma. That is, in other embodiments, the plasma source does not have to be configured using an antenna and a high-frequency power source.
[0044] Furthermore, the present invention is not limited to the above-described embodiment, and it goes without saying that various modifications are possible without departing from the spirit of the present invention. [Explanation of symbols]
[0045] 100...Film removal equipment 1...vacuum container 7 Cutting edge protection member 71 Plasma shielding section T...cutting tool
Claims
1. The present invention is used together with a coating removal device that generates plasma in a vacuum chamber in which a cutting tool is placed, and removes a coating formed on the surface of the cutting tool by performing plasma processing using the plasma, a cutting edge protection member disposed in the vacuum chamber so as to cover the cutting edge of the cutting tool, the cutting edge protection member including a plasma shielding portion that suppresses incidence of ions in the plasma onto the cutting edge;
2. The cutting tool is attached to a tip end of the cutting tool, The cutting edge protection member according to claim 1 , wherein the plasma shielding portions and the exposed portions that expose the surface between the cutting edges of the cutting tool to the plasma are arranged alternately around the axis when viewed in the axial direction of the cutting tool.
3. the cutting tool is a drill; 3. The cutting edge protection member according to claim 2, wherein the inner wall surface of the plasma shielding portion is formed so as to be inclined at an angle substantially the same as the point angle of the drill.
4. It has a generally cylindrical shape, 4. The cutting edge protection member according to claim 3, wherein the exposed portion is formed by a groove formed on the circumferential side surface so as to open to the upper and lower surfaces.
5. The cutting edge protection member according to claim 4 , wherein the grooves constituting the exposed portion are formed to correspond to the shape of the grooves between the cutting edges of the drill.
6. the cutting tool is a hob, The cutting edge protection member according to claim 2 , wherein the plasma shielding portion has a shape extending straight along the axial direction of the tool.
7. 2. The cutting edge protection member according to claim 1, wherein the plasma shielding portion is made of one or more materials selected from the group consisting of stainless steel, molybdenum, tungsten, and quartz.
8. 1. A coating removal method for removing a coating formed on a surface of a cutting tool by generating plasma in a vacuum chamber in which a cutting tool is placed and performing plasma treatment using the plasma, the method comprising: A coating removal method for removing a coating from a cutting tool by installing a plasma shielding part in the vacuum chamber that covers the cutting edge of the cutting tool and suppresses incidence of ions in the plasma onto the cutting edge.
Citation Information
Patent Citations
Film removal device
JP2023004296A