drill
Patent Information
- Application Number
- JP2024566001
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-07-06
- Filing Date
- 2024-06-14
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2044-06-14
AI Technical Summary
Existing drills face challenges in improving chip evacuation while maintaining rigidity, leading to vibration and reduced quality of holes during deep hole machining.
The drill design includes a first and second discharge groove with specific phase and twist angle configurations, along with pocket portions, to enhance chip evacuation while minimizing rigidity loss.
The design effectively improves chip discharge performance and maintains rigidity, resulting in higher quality holes with reduced vibration and improved surface finish.
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Abstract
Description
[Technical field]
[0001] The present disclosure relates to a drill. This application claims priority to PCT / JP2023 / 025141, an international application filed on July 6, 2023. The entire contents of the application are incorporated herein by reference. [Background technology]
[0002] WO 2013 / 018764 (Patent Document 1) describes a cutting tool holder having a helical groove portion and a linear groove portion. The helical groove portion intersects with the central axis of rotation at a certain angle when viewed from the side. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] International Publication No. 2013 / 018764 Summary of the Invention
[0004] The drill according to the present disclosure is a drill that rotates around a central axis, and includes a first cutting insert, a second cutting insert, and a main body. The first cutting insert has a central blade. The second cutting insert has a peripheral blade. The first cutting insert and the second cutting insert are attached to the main body. The main body is provided with a first discharge groove and a second discharge groove. The first discharge groove discharges chips cut by the central blade. The second discharge groove discharges chips cut by the peripheral blade. When viewed along the central axis, the start phase of the first discharge groove is located in a range of +10° to +90° with respect to the central blade, the end phase of the first discharge groove is located in a range of -40° to 0° with respect to the central blade, the start phase of the second discharge groove is located in a range of +10° to +90° with respect to the peripheral blade, and the end phase of the second discharge groove is located in a range of -40° to 0° with respect to the peripheral blade. The first discharge groove has a first front groove portion and a first rear groove portion connected to the first front groove portion. The second discharge groove has a second front groove portion and a second rear groove portion connected to the second front groove portion. The twist angle of the first front groove portion decreases monotonically toward the first rear groove portion. The twist angle of the second front groove portion decreases monotonically toward the second rear groove portion. The twist angle of each of the first rear groove portion and the second rear groove portion is 0°. At the boundary between the first front groove portion and the first rear groove portion, a value obtained by dividing the amount of change in the twist angle of the first discharge groove by the amount of change in the position in the direction along the central axis is continuous. At the boundary between the second front groove portion and the second rear groove portion, a value obtained by dividing the amount of change in the twist angle of the second discharge groove by the amount of change in the position in the direction along the central axis is continuous. The main body portion is provided with a first pocket portion connected to the first discharge groove and located forward of the first cutting insert in the rotational direction. In the direction along the central axis, the distance from the front end of the first cutting insert to the rear end of the first pocket portion is 1.5 times or more the tool diameter. [Brief description of the drawings]
[0005] [Figure 1] FIG. 1 is a first perspective schematic view showing the configuration of a drill according to this embodiment. [Diagram 2] FIG. 2 is a second perspective schematic view showing the configuration of the drill according to the present embodiment. [Diagram 3] FIG. 3 is a schematic left side view showing the configuration of the drill according to the present embodiment. [Figure 4A] FIG. 4A is a first schematic front view showing the configuration of the drill according to the present embodiment. [Figure 4B] FIG. 4B is a second schematic front view showing the configuration of the drill according to the present embodiment. [Diagram 5] FIG. 5 is a schematic cross-sectional view taken along line VV in FIG. 4A. [Figure 6] FIG. 6 is a schematic cross-sectional view taken along line VI-VI in FIG. 4A. [Figure 7] FIG. 7 is a schematic cross-sectional view taken along line VII-VII in FIG. 4A. [Figure 8] FIG. 8 is a schematic cross-sectional view taken along line VIII-VIII in FIG. 4A. [Figure 9A] FIG. 9A is a first schematic rear view showing the configuration of the drill according to the present embodiment. [Figure 9B] FIG. 9B is a second rear schematic view showing the configuration of the drill according to the present embodiment. [Figure 10] FIG. 10 is a schematic cross-sectional view taken along line XX in FIG. 9A. [Figure 11] FIG. 11 is a schematic cross-sectional view taken along line XI-XI in FIG. 9A. [Figure 12] FIG. 12 is a virtual plane obtained by rotationally projecting each of the first cutting insert and the second cutting insert. [Figure 13] FIG. 13 is a virtual plane obtained by rotationally projecting each of the first cutting insert and the second cutting insert. [Figure 14] FIG. 14 is a diagram showing the amount of drill displacement for Samples 1 to 9. [Figure 15] FIG. 15 shows the wall height profile of the hole drilled using Sample 4 drill. [Figure 16] FIG. 16 shows the wall height profile of holes drilled using sample 10. [Figure 17]FIG. 17 is a schematic cross-sectional view showing the shapes of holes formed using the drills 100 of Samples 4, 11, and 12, respectively. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0006] [Problem that this disclosure aims to solve] An object of the present disclosure is to provide a drill that can improve chip discharge performance while suppressing a decrease in rigidity.
[0007] [Effects of this disclosure] According to the present disclosure, it is possible to provide a drill that can improve chip discharge performance while suppressing a decrease in rigidity.
[0008] [Description of the embodiments of the present disclosure] First, embodiments of the present disclosure will be listed and described.
[0009] (1) The drill 100 according to the present disclosure is a drill 100 that rotates around a central axis A, and includes a first cutting insert 10, a second cutting insert 20, and a body portion 9. The first cutting insert 10 has a central cutting edge 11. The second cutting insert 20 has a peripheral cutting edge 21. The first cutting insert 10 and the second cutting insert 20 are attached to the body portion 9. The body portion 9 is provided with a first discharge groove 1 and a second discharge groove 2. The first discharge groove 1 discharges chips cut by the central cutting edge 11. The second discharge groove 2 discharges chips cut by the peripheral cutting edge 21. When viewed along the central axis A, the start phase of the first discharge groove 1 is located in the range of +10° to +90° relative to the central blade 11, the end phase of the first discharge groove 1 is located in the range of -40° to 0° relative to the central blade 11, the start phase of the second discharge groove 2 is located in the range of +10° to +90° relative to the peripheral blade 21, and the end phase of the second discharge groove 2 is located in the range of -40° to 0° relative to the peripheral blade 21. The first discharge groove 1 has a first front groove portion 51 and a first rear groove portion 52 connected to the first front groove portion 51. The second discharge groove 2 has a second front groove portion 61 and a second rear groove portion 62 connected to the second front groove portion 61. The twist angle of the first front groove portion 51 monotonically decreases toward the first rear groove portion 52. The twist angle of the second front groove portion 61 monotonically decreases toward the second rear groove portion 62. The twist angle of each of the first rear groove portion 52 and the second rear groove portion 62 is 0°. At the boundary between the first front groove portion 51 and the first rear groove portion 52, the value obtained by dividing the amount of change in the twist angle of the first discharge groove 1 by the amount of change in the position in the direction along the central axis A is continuous. At the boundary between the second front groove portion 61 and the second rear groove portion 62, the value obtained by dividing the amount of change in the twist angle of the second discharge groove 2 by the amount of change in the position in the direction along the central axis A is continuous. The main body portion 9 is provided with a first pocket portion 32 that is continuous with the first discharge groove 1 and is located forward of the first cutting insert 10 in the rotational direction. In the direction along the central axis A, the distance from the front end of the first cutting insert 10 to the rear end of the first pocket portion 32 is 1.5 times or more the tool diameter.
[0010] (2) According to the drill 100 according to (1) above, the length of each of the first discharge groove 1 and the second discharge groove 2 in the direction along the central axis A may be not less than two times and not more than eight times the tool diameter.
[0011] (3) According to the drill 100 of either (1) or (2) above, when, in a direction along the central axis A, the length of the first front groove portion 51 is defined as a first front length, the length of the first rear groove portion 52 is defined as a first rear length, the length of the second front groove portion 61 is defined as a second front length, and the length of the second rear groove portion 62 is defined as a second rear length, the value obtained by dividing the first front length by the first rear length may be 0.3 or more and 3.0 or less, and the value obtained by dividing the second front length by the second rear length may be 0.3 or more and 3.0 or less.
[0012] (4) According to the drill 100 of any of (1) to (3) above, in a cross section perpendicular to the central axis A, when the cross-sectional area of the first front groove portion 51 is defined as a first front area, the cross-sectional area of the first rear groove portion 52 is defined as a first rear area, the cross-sectional area of the second front groove portion 61 is defined as a second front area, and the cross-sectional area of the second rear groove portion 62 is defined as a second rear area, the value obtained by dividing the first front area by the first rear area may be greater than or equal to 1.01 and less than or equal to 1.02, and the value obtained by dividing the second front area by the second rear area may be greater than or equal to 1.01 and less than or equal to 1.02.
[0013] (5) In the drill 100 according to any one of (1) to (4) above, in a cross section perpendicular to the central axis A, the cross-sectional area of the first discharge groove 1 may be larger than the cross-sectional area of the second discharge groove 2.
[0014] (6) According to the drill 100 relating to any of (1) to (5) above, in a virtual plane formed by rotating and projecting each of the first cutting insert 10 and the second cutting insert 20, if the forward end position of the central cutting edge 11 is defined as a first position 71, the intersection of the central axis A and the central cutting edge 11 is defined as a second position 72, and the intersection of a virtual line segment extended from the second position 72 in a direction perpendicular to the central axis A and the peripheral cutting edge 21 is defined as a third position 73, the distance from the central axis A to the first position 71 in the radial direction extending radially from the central axis A may be 30% or more and 40% or less of half the tool diameter, and the distance from the central axis A to the third position 73 in the radial direction may be 80% or more and 100% or less of half the tool diameter.
[0015] (7) According to the drill 100 relating to (6) above, when the intersection of the central cutting edge 11 and the peripheral cutting edge 21 in an imaginary plane is defined as the fourth position 74, the radial distance from the central axis A to the fourth position 74 may be greater than the radial distance from the fourth position 74 to the outermost end of the peripheral cutting edge 21.
[0016] (8) In the drill 100 according to either (6) or (7) above, the sine of the angle between a line perpendicular to the central axis A and a tangent to the central cutting edge 11 at the second position 72 in a virtual plane may be equal to or smaller than the tool diameter multiplied by 0.0070 / mm. The unit of the angle is degrees, and the unit of the tool diameter is mm.
[0017] (9) According to the drill 100 according to any one of (1) to (8) above, the body portion 9 may be provided with a second pocket portion 42 that is continuous with the second discharge groove 2 and is located forward in the rotational direction relative to the second cutting insert 20. In the direction along the central axis A, the rear end of the first pocket portion 32 may be located axially rearward of the rear end of the second pocket portion 42.
[0018] [Details of the embodiment of the present disclosure] Next, details of an embodiment of the present disclosure (hereinafter also referred to as the present embodiment) will be described with reference to the drawings. In the following drawings, the same or corresponding parts are given the same reference symbols, and overlapping descriptions will not be repeated.
[0019] First, the configuration of the drill 100 according to this embodiment will be described. FIG. 1 is a first perspective schematic diagram showing the configuration of a drill 100 according to this embodiment. FIG. 2 is a second perspective schematic diagram showing the configuration of the drill 100 according to this embodiment. As shown in FIG. 1 and FIG. 2, the drill 100 according to this embodiment includes a first cutting insert 10, a second cutting insert 20, a body portion 9, a central cutting edge mounting screw 19, and a peripheral cutting edge mounting screw 29. The first cutting insert 10 has a central cutting edge 11. The second cutting insert 20 has a peripheral cutting edge 21. The first cutting insert 10 and the second cutting insert 20 are attached to the body portion 9. The first cutting insert 10 is attached to the body portion 9 using the central cutting edge mounting screw 19. The second cutting insert 20 is attached to the body portion 9 using the peripheral cutting edge mounting screw 29.
[0020] The drill 100 is rotatable around a central axis A. A first discharge groove 1 and a second discharge groove 2 are provided in a main body 9. The first discharge groove 1 discharges chips cut by a central blade 11. The second discharge groove 2 discharges chips cut by a peripheral blade 21.
[0021] As shown in FIG. 1, the main body portion 9 has a first body region 3, a second body region 6, and a shank 5. A front end surface 101 of the main body portion 9 is formed by the first body region 3. The front end surface 101 of the main body portion 9 is a portion facing a workpiece. The second body region 6 is continuous with each of the first body region 3 and the shank 5. The second body region 6 is located between the first body region 3 and the shank 5. A rear end surface 102 of the main body portion 9 is located on the opposite side to the front end surface 101. The rear end surface 102 of the main body portion 9 is formed by the shank 5. The shank 5 is a portion that is attached to a device that rotates the drill 100.
[0022] In this specification, the direction parallel to the central axis A and from the rear end face 102 toward the front end face 101 is referred to as the axially forward direction. Conversely, the direction parallel to the central axis A and from the front end face 101 toward the rear end face 102 is referred to as the axially rearward direction. In a plane perpendicular to the central axis A, a direction extending radially from the central axis A is referred to as the radial direction.
[0023] As shown in FIG. 1, the first body region 3 is provided with a first insert placement surface portion 31 and a first pocket portion 32. A first insert placement groove 33 is formed in the first insert placement surface portion 31. The first cutting insert 10 is placed in the first insert placement groove 33. The first pocket portion 32 is located forward of the first cutting insert 10 in the rotational direction. The first pocket portion 32 is continuous with the first discharge groove 1. At least a portion of the first pocket portion 32 is located forward of the first discharge groove 1 in the axial direction. The first pocket portion 32 is continuous with a front end face 101.
[0024] As shown in FIG. 2, the first body region 3 is provided with a second insert placement surface portion 41 and a second pocket portion 42. A second insert placement groove 43 is formed in the second insert placement surface portion 41. The second cutting insert 20 is placed in the second insert placement groove 43. The second pocket portion 42 is located forward of the second cutting insert 20 in the rotational direction. The second pocket portion 42 is continuous with the second discharge groove 2. At least a portion of the second pocket portion 42 is located forward of the second discharge groove 2 in the axial direction. The second pocket portion 42 is continuous with the front end face 101.
[0025] 1 and 2, the first body region 3 has a first outer peripheral surface 4. The first discharge groove 1 and the second discharge groove 2 are each exposed to the outside at the first outer peripheral surface 4. The first insert placement surface portion 31 and the first pocket portion 32 may each be continuous with the first outer peripheral surface 4. Similarly, the second insert placement surface portion 41 and the second pocket portion 42 may each be continuous with the first outer peripheral surface 4.
[0026] FIG. 3 is a left side schematic view showing the configuration of the drill 100 according to the present embodiment. As shown in FIG. 3, the first outer peripheral surface 4 is arc-shaped when viewed in a direction along the central axis A. The outer peripheral surface of the second body region 6 surrounds the first outer peripheral surface 4. When viewed in a direction along the central axis A, the outer peripheral surface of the second body region 6 is substantially circular. Two coolant supply holes 7 may be formed in the main body portion 9. The two coolant supply holes 7 are exposed to a front end surface 101 of the main body portion 9.
[0027] The first cutting insert 10 is disposed at a position closer to the central axis A than the second cutting insert 20. When viewed in a direction along the central axis A, the first cutting insert 10 may intersect with the central axis A. More specifically, when viewed in a direction along the central axis A, the central cutting edge 11 of the first cutting insert 10 may intersect with the central axis A. The second cutting insert 20 is disposed at a position farther from the central axis A than the first cutting insert 10. When viewed in a direction along the central axis A, the second cutting insert 20 is farther from the central axis A. More specifically, when viewed in a direction along the central axis A, the peripheral cutting edge 21 of the second cutting insert 20 does not intersect with the central axis A.
[0028] As shown in FIG. 3, when viewed in a direction along the central axis A, a half line that connects the central axis A and the outermost end of the central blade 11 and extends radially from the central axis A is defined as a thirteenth half line D13. When viewed in a direction along the central axis A, the angle between the thirteenth half line D13 and the ridge line between the first pocket portion 32 and the front end face 101 is, for example, 45° or more and 120° or less. Similarly, when viewed in a direction along the central axis A, a half line that connects the central axis A and the outermost end of the peripheral blade 21 and extends radially from the central axis A is defined as a 23rd half line D23. When viewed in a direction along the central axis A, the angle between the 23rd half line D23 and the ridge line between the second pocket portion 42 and the front end face 101 is, for example, 45° or more and 120° or less.
[0029] 4A and 4B are front schematic views showing the configuration of the drill 100 according to the present embodiment. As shown in FIG. 4A and FIG. 4B, the first discharge groove 1 has a first front groove portion 51 and a first rear groove portion 52. The first rear groove portion 52 is continuous with the first front groove portion 51. The first rear groove portion 52 is located axially rearward of the first front groove portion 51. The twist angle θ3 of the first front groove portion 51 decreases monotonically toward the first rear groove portion 52. The twist angle θ3 of the first rear groove portion 52 is 0°. From another perspective, the first rear groove portion 52 extends along the central axis A.
[0030] At the boundary (first boundary 57) between the first front groove portion 51 and the first rear groove portion 52, the value obtained by dividing the amount of change in the twist angle θ3 of the first discharge groove 1 by the amount of change in the position in the direction along the central axis A is continuous. At the boundary (first boundary 57) between the first front groove portion 51 and the first rear groove portion 52, the twist angle θ3 changes gradually. Specifically, in the region from the boundary (first boundary 57) between the first front groove portion 51 and the first rear groove portion 52 to a position axially forward away from the boundary (first boundary 57) by a tool diameter×1.0, the value obtained by dividing the amount of change in the twist angle θ3 of the first discharge groove 1 by the amount of change in the position in the direction along the central axis A (i.e., tool diameter×1.0) is (2.0)° / mm or less.
[0031] In the direction along the central axis A, the length of the first front groove portion 51 is a first front length B11, and the length of the first rear groove portion 52 is a first rear length B12. The value obtained by dividing the first front length B11 by the first rear length B12 is, for example, 0.3 to 3.0. The value obtained by dividing the first front length B11 by the first rear length B12 may be, for example, 0.5 to 2.0, or 0.7 to 1.5.
[0032] FIG. 5 is a schematic cross-sectional view taken along line VV in FIG. 4A. The cross-sectional view shown in FIG. 5 is perpendicular to the central axis A. In the cross section perpendicular to the central axis A, the cross-sectional area of the first discharge groove 1 may be larger than the cross-sectional area of the second discharge groove 2. The cross-sectional area of the first discharge groove 1 is the area of an area surrounded by the surface of the main body 9 constituting the first discharge groove 1 and a first virtual arc F1 along the first outer peripheral surface 4. Similarly, the cross-sectional area of the second discharge groove 2 is the area of an area surrounded by the surface of the main body 9 constituting the second discharge groove 2 and a second virtual arc F2 along the first outer peripheral surface 4. The radius of curvature of each of the first virtual arc F1 and the second virtual arc F2 is substantially the same as the radius of curvature of the first outer peripheral surface 4.
[0033] Fig. 6 is a schematic cross-sectional view taken along line VI-VI in Fig. 4A. The cross-sectional view shown in Fig. 6 is perpendicular to the central axis A. As shown in Figs. 1 and 6, the main body 9 is provided with a first front end groove 91 and a second front end groove 92. The first front end groove 91 is provided in the first insert placement surface 31. The second front end groove 92 is provided in the first pocket 32. The second front end groove 92 is spaced apart from the first front end groove 91.
[0034] 1 and 4A, the first front end groove portion 91 and the second front end groove portion 92 are each located forward of the first front groove portion 51 in the axial direction. The first front end groove portion 91 and the second front end groove portion 92 are each continuous with the first front groove portion 51. The position where the first front end groove portion 91 and the second front end groove portion 92 join together is defined as the boundary between the first front end groove portion 91 and the second front end groove portion 92 and the first front groove portion 51. In other words, the boundary between the position where the first front end groove portion 91 and the second front end groove portion 92 join together and the first front groove portion 51 is defined as the start position of the first discharge groove 1.
[0035] FIG. 7 is a schematic cross-sectional view taken along line VII-VII in FIG. 4A. The cross-sectional view shown in FIG. 7 is perpendicular to the central axis A. The position in the axial direction of the cross-sectional view shown in FIG. 7 corresponds to the start position (first start position 55) of the first discharge groove 1. The eleventh half line D11 is a half line passing through the bottom of the first discharge groove 1 and the central axis A at the first start position 55. The bottom of the first discharge groove 1 is a point on the first discharge groove 1 that is closest to the central axis A in a cross section perpendicular to the central axis A. The start phase of the first discharge groove 1 corresponds to the phase of the eleventh half line D11. The phase of the central blade 11 corresponds to the phase of the thirteenth half line D13. The phase of the central blade 11 is set to 0°.
[0036] As shown in FIG. 7, the start phase (first start phase θ11) of the first discharge groove 1 is located in the range of +10° to +90° relative to the central blade 11 when viewed along the central axis A. The first start phase θ11 may be located in the range of +20° to +80° relative to the central blade 11, or may be located in the range of +30° to +70° relative to the central blade 11 when viewed along the central axis A. In this specification, the forward direction of rotation is defined as a positive phase. Conversely, the backward direction of rotation is defined as a negative phase. In addition, the phase when the same phase is obtained after N revolutions in the rotation direction is defined as N×360° (where N is an integer). For example, the phase when the same phase is obtained after one revolution in the forward direction of rotation is defined as +360°, and the phase when the same phase is obtained after two revolutions in the rotation direction is defined as +720°.
[0037] Fig. 8 is a schematic cross-sectional view taken along line VIII-VIII in Fig. 4A. The cross-sectional view shown in Fig. 8 is perpendicular to the central axis A. The position in the axial direction of the cross-sectional view shown in Fig. 8 corresponds to the end position (first end position 56) of the first discharge groove 1. The twelfth half line D12 is a half line that passes through the bottom of the first discharge groove 1 and the central axis A at the first end position 56. The end phase of the first discharge groove 1 corresponds to the phase of the twelfth half line D12.
[0038] 7 and 8, when viewed along the central axis A, the end phase of the first discharge groove 1 (first end phase θ12) is located in the range of -40° or more and 0° or less with respect to the central blade 11. When viewed along the central axis A, the first end phase θ12 may be located in the range of -30° or more and 0° or less with respect to the central blade 11, or may be located in the range of -20° or more and 0° or less with respect to the central blade 11.
[0039] In the axial direction, the first end position 56 may be the same as the end position (second end position 66) of the second discharge groove 2. The 22nd half line D22 is a half line that passes through the bottom of the second discharge groove 2 and the central axis A at the second end position 66. The bottom of the second discharge groove 2 is a point on the second discharge groove 2 that is closest to the central axis A in a cross section perpendicular to the central axis A. The end phase of the second discharge groove 2 corresponds to the phase of the 22nd half line D22.
[0040] As shown in FIG. 8, the 22nd half line D22 and the 12th half line D12 may be located on the same line when viewed along the central axis A. From another perspective, the phase of the 22nd half line D22 may be rotated +180° relative to the 12th half line D12. As shown in FIG. 8, at the end position of the first discharge groove 1, the distance between the bottom of the second discharge groove 2 and the central axis A is greater than the distance between the bottom of the first discharge groove 1 and the central axis A. From another perspective, at the end position of the first discharge groove 1, the cross-sectional area of the second discharge groove 2 is smaller than the cross-sectional area of the first discharge groove 1.
[0041] 9A and 9B are schematic rear views showing the configuration of the drill 100 according to the present embodiment. As shown in FIG. 9A and FIG. 9B, the second discharge groove 2 has a second front groove portion 61 and a second rear groove portion 62. The second rear groove portion 62 is continuous with the second front groove portion 61. The second rear groove portion 62 is located axially rearward of the second front groove portion 61. The twist angle θ3 of the second front groove portion 61 decreases monotonically toward the second rear groove portion 62. The twist angle θ3 of the second rear groove portion 62 is 0°. From another perspective, the second rear groove portion 62 extends along the central axis A.
[0042] At the boundary (second boundary 67) between the second front groove portion 61 and the second rear groove portion 62, the value obtained by dividing the amount of change in the twist angle θ3 of the second discharge groove 2 by the amount of change in the position in the direction along the central axis A is continuous. At the boundary (second boundary 67) between the second front groove portion 61 and the second rear groove portion 62, the twist angle θ3 changes gradually. Specifically, in the region from the boundary (second boundary 67) between the second front groove portion 61 and the second rear groove portion 62 to a position axially forward away from the boundary (second boundary 67) by ...
[0043] In the direction along the central axis A, the length of the second front groove portion 61 is a second front length B21, and the length of the second rear groove portion 62 is a second rear length B22. The value obtained by dividing the second front length B21 by the second rear length B22 is, for example, 0.3 to 3.0. The value obtained by dividing the second front length B21 by the second rear length B22 may be, for example, 0.5 to 2.0, or 0.7 to 1.5.
[0044] Fig. 10 is a schematic cross-sectional view taken along line XX in Fig. 9A. The cross-sectional view shown in Fig. 10 is perpendicular to the central axis A. As shown in Figs. 2 and 10, the main body 9 is provided with a third front end groove 93 and a fourth front end groove 94. The third front end groove 93 is provided in the second insert placement surface 41. The fourth front end groove 94 is provided in the second pocket 42. The fourth front end groove 94 is spaced apart from the third front end groove 93.
[0045] 2, the third front end groove portion 93 and the fourth front end groove portion 94 are each located forward of the second discharge groove 2 in the axial direction. The third front end groove portion 93 and the fourth front end groove portion 94 are each connected to the second front groove portion 61. The position where the third front end groove portion 93 and the fourth front end groove portion 94 join together is defined as the boundary between the third front end groove portion 93 and the fourth front end groove portion 94 and the second front groove portion 61. In other words, the boundary between the position where the third front end groove portion 93 and the fourth front end groove portion 94 join together and the second front groove portion 61 is defined as the start position of the second discharge groove 2.
[0046] The axial position of the cross-sectional view shown in FIG. 6 corresponds to the start position of the second discharge groove 2 (second start position 65). The 21st half line D21 is a half line that passes through the bottom of the second discharge groove 2 and the central axis A at the second start position 65. The start phase of the second discharge groove 2 corresponds to the phase of the 21st half line D21. The phase of the peripheral blade 21 corresponds to the phase of the 23rd half line D23. The phase of the peripheral blade 21 is set to 0°.
[0047] 6, when viewed along the central axis A, the start phase of the second discharge groove 2 (second start phase θ21) is located in the range of +10° to +90° relative to the peripheral cutting edge 21. The second start phase θ21 may be located in the range of +20° to +80° relative to the peripheral cutting edge 21, or in the range of +30° to +70° relative to the peripheral cutting edge 21.
[0048] 6 and 8, the end phase of the second discharge groove 2 (second end phase θ22) is located in the range of -40° or more and 0° or less with respect to the peripheral cutting edge 21. The second end phase θ22 may be located in the range of -30° or more and 0° or less with respect to the peripheral cutting edge 21, or may be located in the range of -20° or more and 0° or less with respect to the peripheral cutting edge 21.
[0049] FIG. 11 is a schematic cross-sectional view taken along line XI-XI in FIG. 9A. The cross-sectional view shown in FIG. 11 is perpendicular to the central axis A. The main body portion 9 is provided with a first rear end groove portion 54 and a second rear end groove portion 64. More specifically, as shown in FIG. 9A, each of the first rear end groove portion 54 and the second rear end groove portion 64 is provided in the second body region 6. The diameter of the second body region 6 is larger than the diameter of the first body region 3. The second body region 6 has a portion whose diameter widens toward the rear in the axial direction.
[0050] The first rear end groove portion 54 is continuous with the first rear groove portion 52. The first rear end groove portion 54 is located axially rearward of the first rear groove portion 52. As shown in Figs. 8 and 11, in a cross section perpendicular to the central axis A, the cross-sectional area of the first rear end groove portion 54 is smaller than the cross-sectional area of the first rear groove portion 52. The cross-sectional area of the first rear end groove portion 54 in a cross section perpendicular to the central axis A decreases toward the axial rear.
[0051] The second rear end groove portion 64 is connected to the second rear groove portion 62. The second rear end groove portion 64 is located axially rearward of the second rear groove portion 62. As shown in Figures 8 and 11, in a cross section perpendicular to the central axis A, the cross-sectional area of the second rear end groove portion 64 is smaller than the cross-sectional area of the second rear groove portion 62. In a cross section perpendicular to the central axis A, the cross-sectional area of the second rear end groove portion 64 decreases toward the axial rear.
[0052] In a cross section perpendicular to the central axis A, when the cross-sectional area of the first front groove portion 51 is defined as a first front area and the cross-sectional area of the first rear groove portion 52 is defined as a first rear area, the first front area may be larger than the first rear area. The value obtained by dividing the first front area by the first rear area may be 1.01 or more and 1.02 or less. The value obtained by dividing the first front area by the first rear area may be 1.012 or more and 1.018 or less, or 1.014 or more and 1.016 or less.
[0053] In a cross section perpendicular to the central axis A, if the cross-sectional area of the second front groove portion 61 is defined as the second front area, and the cross-sectional area of the second rear groove portion 62 is defined as the second rear area, the second front area may be larger than the second rear area. The value obtained by dividing the second front area by the second rear area may be 1.01 or more and 1.02 or less. The value obtained by dividing the second front area by the second rear area may be 1.012 or more and 1.018 or less, or 1.014 or more and 1.016 or less.
[0054] 12 and 13 are imaginary planes obtained by rotating and projecting each of the first cutting insert 10 and the second cutting insert 20 around the central axis A. As shown in FIG. 12, an imaginary plane 150 includes the central axis A. In the imaginary plane 150, the foremost end position of the central cutting edge 11 is defined as a first position 71. The first position 71 is located most forward in the axial direction. In the imaginary plane 150, an intersection of the central axis A and the central cutting edge 11 is defined as a second position 72.
[0055] As shown in FIG. 13, on the imaginary plane 150, the intersection of an imaginary line segment extending from the second position 72 in a direction perpendicular to the central axis A and the peripheral blade 21 is defined as a third position 73. The tool radius is the distance from the central axis A to the outermost end of the peripheral blade 21 in the radial direction. The outermost end of the peripheral blade 21 is defined as a fifth position 75. In other words, the tool diameter E is twice the distance from the central axis A to the fifth position 75 in the radial direction. The radial direction is the direction extending radially from the central axis A. The radial direction is perpendicular to the central axis A.
[0056] 12, the radial distance from the central axis A to the first position 71 is 30% to 40% of the tool radius. The radial distance from the central axis A to the first position 71 may be 23% to 37% of the tool radius, or may be 26% to 34% of the tool radius.
[0057] 13, the radial distance from the central axis A to the third position 73 is 80% or more and 100% or less of the tool radius. The radial distance from the central axis A to the third position 73 may be 84% or more and 96% or less of the tool radius, or may be 88% or more and 92% or less of the tool radius.
[0058] On the imaginary plane 150, the intersection of the central blade 11 and the peripheral blade 21 is defined as a fourth position 74. The distance from the central axis A to the fourth position 74 in the radial direction may be greater than the distance from the fourth position 74 to the fifth position 75 in the radial direction. The distance from the central axis A to the fourth position 74 in the radial direction corresponds to the effective length of the central blade 11 in the radial direction. The distance from the fourth position 74 to the fifth position 75 in the radial direction corresponds to the effective length of the peripheral blade 21 in the radial direction.
[0059] The distance from the center axis A to the fourth position 74 in the radial direction may be 1.05 times or more, or 1.1 times or more, of the distance from the fourth position 74 in the radial direction to the fifth position 75 of the peripheral cutting edge 21. The distance from the center axis A to the fourth position 74 in the radial direction may be 2 times or less, or 1.8 times or less, of the distance from the fourth position 74 to the fifth position 75 in the radial direction.
[0060] 4A, the length of the first discharge groove 1 in the direction along the central axis A is a first overall length B13. The first overall length B13 may be two times or more and eight times or less the tool diameter. The first overall length B13 is the sum of the length of the first front groove portion 51 and the length of the first rear groove portion 52. In the direction along the central axis A, the first overall length B13 may be two times or more and seven times or less the tool diameter.
[0061] 4A, the distance from the front end of the first cutting insert 10 to the rear end of the first pocket portion 32 in the direction along the central axis A is defined as a first pocket length C1. The first pocket length C1 is 1.5 times or more the tool diameter. The front end of the first cutting insert 10 corresponds to the front end position of the central cutting edge 11. The rear end of the first pocket portion 32 is a boundary between the surface of the first pocket portion 32, the first outer peripheral surface 4 of the first body region 3, and the surface of the first front groove portion 51.
[0062] In the direction along the central axis A, the first pocket length C1 may be 1.8 times or more the tool diameter, or may be 2 times or more the tool diameter. In the direction along the central axis A, the first pocket length C1 may be 3 times or less the tool diameter, or may be 2.5 times or less the tool diameter.
[0063] 9A, the length of the second discharge groove 2 in the direction along the central axis A is a second total length B23. The second total length B23 may be two or more times and eight or less times the tool diameter. The second total length B23 is the sum of the length of the second front groove portion 61 and the length of the second rear groove portion 62. In the direction along the central axis A, the second total length B23 may be two or more times and seven or less times the tool diameter.
[0064] As shown in FIG. 9A, the distance from the front end of the second cutting insert 20 to the rear end of the second pocket portion 42 in the direction along the central axis A is the second pocket length C2. The second pocket length C2 may be smaller than the first pocket length C1. The front end of the second cutting insert 20 corresponds to the front end position of the peripheral cutting edge 21. The rear end of the second pocket portion 42 is the boundary between the surface of the second pocket portion 42, the first outer peripheral surface 4 of the first body region 3, and the surface of the fourth front end groove portion 94. In the direction along the central axis A, the rear end of the first pocket portion 32 may be located axially rearward of the rear end of the second pocket portion 42.
[0065] As shown in FIG. 13, the straight line perpendicular to the central axis A is the third straight line D3. The tangent of the central blade 11 at the second position 72 is the fourth straight line D4. The third straight line D3 passes through the second position 72. The angle between the third straight line D3 and the fourth straight line D4 is the fourth angle θ4. The fourth angle θ4 may be 8° or less, 6° or less, or 4° or less. The fourth angle θ4 may be 1° or more, or 2° or more. The sine of the fourth angle θ4 (i.e., sinθ4) may be equal to or less than the value obtained by multiplying the tool diameter by 0.0070 / mm. The sine of the fourth angle θ4 may be equal to or less than the value obtained by multiplying the tool diameter by 0.0060 / mm, or may be equal to or less than the value obtained by multiplying the tool diameter by 0.0050 / mm. The sine of the fourth angle θ4 may be equal to or greater than the tool diameter multiplied by 0.0010 / mm, or may be equal to or greater than the tool diameter multiplied by 0.0020 / mm. The unit of the fourth angle θ4 is degrees. The unit of the tool diameter is mm.
[0066] Next, the effects of the drill 100 according to this embodiment will be described. In deep hole drilling, chips generated during drilling tend to stagnate inside the hole, which can easily cause chip clogging. Increasing the twist angle θ3 of the discharge flute is effective for improving chip discharge. However, when the twist angle θ3 is increased, the capacity of the discharge flute increases, which reduces the rigidity of the main body 9 of the drill 100. As a result, the drill 100 vibrates significantly during drilling, which deteriorates the quality of the hole formed in the workpiece.
[0067] According to the drill 100 of this embodiment, the main body 9 is provided with a first discharge groove 1 and a second discharge groove 2. The first discharge groove 1 discharges chips cut by the central blade 11. The second discharge groove 2 discharges chips cut by the peripheral blade 21. When viewed along the central axis A, the start phase of the first discharge groove 1 is located in a range of +10° to +90° with respect to the central blade 11, the end phase of the first discharge groove 1 is located in a range of -40° to 0° with respect to the central blade 11, the start phase of the second discharge groove 2 is located in a range of +10° to +90° with respect to the peripheral blade 21, and the end phase of the second discharge groove 2 is located in a range of -40° to 0° with respect to the peripheral blade 21. The first discharge groove 1 has a first front groove portion 51 and a first rear groove portion 52 connected to the first front groove portion 51. The second discharge groove 2 has a second front groove portion 61 and a second rear groove portion 62 connected to the second front groove portion 61. The twist angle θ3 of the first front groove portion 51 monotonically decreases toward the first rear groove portion 52. The twist angle θ3 of the second front groove portion 61 monotonically decreases toward the second rear groove portion 62. The twist angle θ3 of each of the first rear groove portion 52 and the second rear groove portion 62 is 0°. This makes it possible to improve the discharge performance of chips while suppressing a decrease in the rigidity of the main body portion 9. As a result, it is possible to improve the quality of the hole formed in the workpiece.
[0068] According to the drill 100 of this embodiment, at the boundary between the first front groove portion 51 and the first rear groove portion 52, the value obtained by dividing the amount of change in the twist angle θ3 of the first discharge groove 1 by the amount of change in the position in the direction along the central axis A is continuous. At the boundary between the second front groove portion 61 and the second rear groove portion 62, the value obtained by dividing the amount of change in the twist angle θ3 of the second discharge groove 2 by the amount of change in the position in the direction along the central axis A is continuous. As a result, the first front groove portion 51 and the first rear groove portion 52 are smoothly connected to each other, so that it is possible to prevent chips from stagnating in the first discharge groove 1. Similarly, the second front groove portion 61 and the second rear groove portion 62 are smoothly connected to each other, so that it is possible to prevent chips from stagnating in the second discharge groove 2.
[0069] Since the central blade 11 is located radially closer to the central axis A than the peripheral blade 21, the cutting speed of the central blade 11 is lower than the cutting speed of the peripheral blade 21. Therefore, chips cut by the central blade 11 are more difficult to discharge than chips cut by the peripheral blade 21. In other words, the chip discharge ability of the first discharge groove 1 is lower than that of the second discharge groove 2.
[0070] According to the drill 100 of this embodiment, the main body 9 is provided with a first pocket portion 32 that is connected to the first discharge groove 1 and is located forward of the first cutting insert 10 in the rotational direction. In the direction along the central axis A, the distance from the front end of the first cutting insert 10 to the rear end of the first pocket portion 32 is 1.5 times or more the tool diameter. The chips cut by the central cutting edge 11 in the first pocket curl. By setting the distance from the front end of the first cutting insert 10 to the rear end of the first pocket portion 32 to 1.5 times or more the tool diameter, a sufficient space for the chips to curl can be secured. This can improve the dischargeability of the chips cut by the central cutting edge 11.
[0071] According to the drill 100 of this embodiment, the length of each of the first discharge groove 1 and the second discharge groove 2 may be two or more and eight or less times the tool diameter in the direction along the central axis A. This makes it possible to form a deep hole in the workpiece.
[0072] According to the drill 100 of this embodiment, when the length of the first front groove portion 51 is the first front length B11, the length of the first rear groove portion 52 is the first rear length B12, the length of the second front groove portion 61 is the second front length B21, and the length of the second rear groove portion 62 is the second rear length B22, the value obtained by dividing the first front length B11 by the first rear length B12 may be 0.3 to 3.0, and the value obtained by dividing the second front length B21 by the second rear length B22 may be 0.3 to 3.0. This makes it possible to improve the dischargeability of chips while suppressing a decrease in rigidity.
[0073] The first front groove 51 has a greater effect on chip dischargeability than the first rear groove 52. Similarly, the second front groove 61 has a greater effect on chip dischargeability than the second rear groove 62.
[0074] According to the drill 100 of this embodiment, in a cross section perpendicular to the central axis A, when the cross-sectional area of the first front groove portion 51 is the first front area, the cross-sectional area of the first rear groove portion 52 is the first rear area, the cross-sectional area of the second front groove portion 61 is the second front area, and the cross-sectional area of the second rear groove portion 62 is the second rear area, the value obtained by dividing the first front area by the first rear area may be 1.01 to 1.02, and the value obtained by dividing the second front area by the second rear area may be 1.01 to 1.02. This makes it possible to further improve the dischargeability of chips while suppressing a decrease in rigidity.
[0075] According to the drill 100 of this embodiment, the cross-sectional area of the first discharge groove 1 may be larger than the cross-sectional area of the second discharge groove 2 in a cross section perpendicular to the central axis A. This makes it possible to improve the chip discharge performance of the first discharge groove 1 while suppressing a decrease in rigidity.
[0076] According to the drill 100 of this embodiment, in a virtual plane 150 obtained by rotating and projecting each of the first cutting insert 10 and the second cutting insert 20, the front end position of the central cutting edge 11 is the first position 71, the intersection point of the central axis A and the central cutting edge 11 is the second position 72, and the intersection point of a virtual line segment extending from the second position 72 in a direction perpendicular to the central axis A and the peripheral cutting edge 21 is the third position 73. In this case, the distance from the central axis A to the first position 71 in the radial direction extending radially from the central axis A may be 30% to 40% of half the tool diameter, and the distance from the central axis A to the third position 73 in the radial direction may be 80% to 100% of half the tool diameter. This reduces the cutting resistance when the drill 100 bites into the workpiece. Therefore, the variation in the diameter of the hole formed in the workpiece is reduced. In addition, the quality of the surface of the hole is improved.
[0077] According to the drill 100 of this embodiment, when the intersection of the central cutting edge 11 and the peripheral cutting edge 21 on the virtual plane 150 is defined as the fourth position 74, the distance from the central axis A to the fourth position 74 in the radial direction may be greater than the distance from the fourth position 74 to the outermost peripheral end of the peripheral cutting edge 21 in the radial direction. This balances the cutting force of the peripheral cutting edge 21 and the cutting force of the central cutting edge 11 during cutting. This reduces the variation in the diameter of the hole formed in the workpiece.
[0078] When the drill 100 bites into the workpiece, a large force is generated in the drill 100, which tends to cause the drill 100 to vibrate. By reducing the angle between the line perpendicular to the central axis A and the tangent to the central cutting edge 11, the force applied to the cutting insert when the central cutting edge 11 comes into contact with the workpiece can be reduced. This reduces the vibration of the drill 100. As a result, the hole diameter enlargement allowance at the entrance of the hole formed in the workpiece can be reduced.
[0079] In addition, if the ratio of the holder projection length to the tool diameter is constant, the amount of displacement of the hole diameter corresponding to the hole diameter enlargement margin is proportional to (sinθ) / (tool diameter). The proportionality constant here is a value determined by the holder material, etc., and is 2 mm 2 ~200mm 2 where θ is the angle between a line perpendicular to the central axis A and a tangent to the central cutting edge 11. In other words, the smaller the tool diameter, the greater the hole diameter enlargement allowance at the hole entrance. In a drill with a small tool diameter, the hole diameter enlargement allowance can be reduced by reducing the angle between the line perpendicular to the central axis A and a tangent to the central cutting edge 11.
[0080] The amount of hole diameter displacement (δ) can be calculated by the following formula 1. Here, Fsinθ is the cutting resistance. θ is the central cutting edge angle. L is the projection length. E is Young's modulus. E depends on the material. I is the second moment of area. I is a constant x tool diameter. 4 I depends on the cross-sectional shape.
[0081]
number
[0082] The amount of deviation of the hole diameter (δ s ) can be calculated using the following formula 2. The tool diameter is D S The protruding length is L S The ratio of the projection length to the tool diameter is, for example, 5. The central cutting edge angle is θ S The cutting resistance is Fsinθ S The Young's modulus is E. The second moment of area is I S It is. S is (constant) x (tool diameter) 4 That is, I S is (constant) × (D S ) 4 It is.
[0083]
number
[0084] The amount of hole diameter displacement (δ) when the tool diameter is the development diameter (e.g., 25.0 mm, 15.0 mm, etc.) d ) can be calculated using the following formula 3. The tool diameter is D d The protruding length is L d When the tool diameter is the reference diameter and when it is the developed diameter, the ratio of the projection length to the tool diameter is considered to be constant. That is, L d / D d L S / D S The central cutting edge angle is θ d The cutting resistance is Fsinθ d The Young's modulus is E. The second moment of area is I d It is. d is (constant) x (tool diameter) 4 That is, I d is (constant) × (D d ) 4 That is, I d (D d ) 4 / (Ds ) 4 ×I s As shown in Equation 3, the amount of holder displacement is proportional to (sinθ) / (tool diameter). Note that C is a proportionality constant. Therefore, by measuring the amount of holder displacement, which is the reference diameter, it is possible to calculate the amount of displacement for different tool diameters (developed diameters).
[0085]
number
[0086] According to the drill 100 of this embodiment, the sine of the angle between a line perpendicular to the central axis A and a tangent to the central cutting edge 11 at the second position 72 on the virtual plane 150 may be equal to or less than the tool diameter multiplied by 0.0070 / mm. This can reduce the vibration of the drill 100 when biting into the workpiece. Therefore, even if the tool diameter is small, the hole diameter enlargement allowance can be reduced.
[0087] According to the drill 100 of this embodiment, the main body 9 may be provided with a second pocket portion 42 that is connected to the second discharge groove 2 and is located forward of the second cutting insert 20 in the rotational direction. In the direction along the central axis A, the rear end of the first pocket portion 32 may be located axially rearward of the rear end of the second pocket portion 42. Chips cut by the peripheral cutting edge 21 need to be curled with a small curvature, while chips cut by the central cutting edge 11 desirably curl with a large curvature. By adjusting the pocket width according to each chip, chip disposal can be stabilized.
[0088] <Example 1> (Sample preparation) First, the drills 100 of Samples 1 to 9 were prepared. The drills 100 of Samples 3 to 8 are examples. In the examples, each of the first end point phase and the second end point phase was set to be greater than or equal to -40° and less than or equal to 0°. The drills 100 of Samples 1 to 9 are comparative examples. In the comparative examples, each of the first end point phase and the second end point phase was set to be an angle smaller than -40° or greater than 0°. The first end point phase and the second end point phase in each sample are as shown in Table 1.
[0089] [Table 1]
[0090] As shown in Table 1, in the drill 100 of Sample 1-9, each of the first start phase and the second start phase was set to 45°. The cross-sectional area of the second front groove portion 61 was made smaller than the cross-sectional area of the first front groove portion 51. The cross-sectional area of the second rear groove portion 62 was made smaller than the cross-sectional area of the first rear groove portion 52. The cross-sectional area of the first front groove portion 51 was made larger than the cross-sectional area of the first rear groove portion 52. The cross-sectional area of the second front groove portion 61 was made larger than the cross-sectional area of the second rear groove portion 62.
[0091] The length of the first pocket portion 32 was set to 1.58 times the tool diameter. The cutting edge length of the central blade 11 was set to 6.7 mm. The length of the first front groove portion 51 was set to 49 mm. The length of the first rear groove portion 52 was set to 45 mm. The length of the second pocket portion 42 was set to 0.91 times the tool diameter. The cutting edge length of the peripheral blade 21 was set to 6.23 mm. The length of the second front groove portion 61 was set to 49 mm. The length of the second rear groove portion 62 was set to 45 mm.
[0092] (Evaluation conditions) Next, an external stress was applied to each of the cutting edge of the central blade 11 and the cutting edge of the peripheral blade 21. The external stress in the direction perpendicular to the cutting face was set to 600 N. The external stress in the direction along the central axis A was set to 720 N. The external stress in the direction from the outer periphery of the cutting edge toward the central axis A was set to 100 N. For each sample, the amount of displacement at the tip of the holder center was measured. The amount of displacement at the tip is the distance from the three-dimensional coordinates of the measurement point before the application of the external stress to the three-dimensional coordinates of the measurement point after the application of the external stress.
[0093] (Evaluation Results) Fig. 14 is a diagram showing the displacement amount of the drill 100 of Samples 1 to 9. As shown in Fig. 14, when each of the first end point phase and the second end point phase was -40° or more and 15° or less, the displacement amount was small. On the other hand, when each of the first end point phase and the second end point phase was greater than 0°, it was difficult to discharge the chips.
[0094] From the above results, it was confirmed that when the first end point phase and the second end point phase are each between -40° and 0°, the holder displacement is small and high chip removal performance can be achieved.
[0095] <Example 2> (Sample preparation) Next, the drills 100 of Samples 4 and 10 were prepared. The drill 100 of Sample 4 is an example. In the example, the first pocket length C1 (the length of the pocket portion on the central cutting edge side) was set to 1.5 times or more the tool diameter. Specifically, the first pocket length C1 was set to 1.58 times the tool diameter. The drill 100 of Sample 10 is a comparative example. In the comparative example, the first pocket length C1 was set to less than 1.5 times the tool diameter. Specifically, the first pocket length C1 was set to 1.01 times the tool diameter.
[0096] As shown in Table 2, in each of the drills 100 of samples 4 and 10, the first start phase and the second start phase were each set to 45°. The first end phase and the second end phase were each set to -5°. The second pocket length C2 (the length of the pocket portion on the peripheral cutting edge side) was set to 0.91 times the tool diameter. The cutting edge length of the central cutting edge 11 was set to 6.7 mm. The length of the first front groove portion 51 was set to 49 mm. The length of the first rear groove portion 52 was set to 45 mm. The cutting edge length of the peripheral cutting edge 21 was set to 6.23 mm. The length of the second front groove portion 61 was set to 49 mm. The length of the second rear groove portion 62 was set to 45 mm.
[0097] [Table 2]
[0098] (Evaluation conditions) Next, the drills 100 of samples 4 and 10 were used to drill holes in the workpiece. The vertical machining center used was NVX5080 manufactured by DGM Mori Seiki Co., Ltd. The workpiece was JIS G 4051 S50C. The peripheral speed Vc was 150 m / min. The feed rate f was 0.08 mm / revolution. Coolant was supplied from inside the drill 100. The oil supply pressure was 2 MPa. The wall height profile was measured on the surface of the hole formed in the workpiece.
[0099] (Evaluation Results) FIG. 15 is a diagram showing the height profile of the wall surface of a hole formed using the drill 100 of sample 4. The horizontal axis of FIG. 15 is the position in the depth direction of the hole. The horizontal axis of FIG. 15 is the height of the wall surface of the hole. The arithmetic mean roughness Ra of the hole wall surface was 1.496 μm. The root mean square roughness Rq of the hole wall surface was 1.858 μm. The maximum height roughness Rz of the hole wall surface was 9.477 μm.
[0100] FIG. 16 is a diagram showing the height profile of the wall surface of a hole formed using the drill 100 of sample 10. The horizontal axis of FIG. 16 is the position in the depth direction of the hole. The horizontal axis of FIG. 16 is the height of the wall surface of the hole. The arithmetic mean roughness Ra of the hole wall surface was 2.259 μm. The root mean square roughness Rq of the hole wall surface was 2.885 μm. The maximum height roughness Rz of the hole wall surface was 13.18 μm.
[0101] 15 and 16, it was confirmed that the surface roughness (Ra, Rq, Rz) of the wall surface of the hole was reduced by increasing the first pocket length C1. When the surface roughness of the wall surface of the hole is reduced, the chips are easily discharged. Therefore, by using the drill 100 of sample 4, the chip discharge performance is improved.
[0102] <Example 3> (Sample preparation) Next, the drills 100 of Samples 4, 11, and 12 were prepared. The drills 100 of Samples 4 and 12 are examples. In Sample 4, the tool diameter was 20 mm, and the angle between the central cutting edge 11 and a line perpendicular to the central axis A was 8°. In Sample 12, the tool diameter was 18.5 mm, and the angle θ between the central cutting edge 11 and a line perpendicular to the central axis A was 4°. As shown in Table 3, in each of the drills 100 of Samples 4 and 12, the sine of the angle θ between the central cutting edge 11 and a line perpendicular to the central axis A (i.e., sinθ) is equal to or less than the tool diameter (mm) multiplied by 0.0070 / mm.
[0103] The drill 100 of sample 11 is a comparative example. In sample 11, the tool diameter was 18.5 mm, and the angle between the central cutting edge 11 and a line perpendicular to the central axis A was 8°. In the drill 100 of sample 11, the sine of the angle θ (i.e., sin θ) between the central cutting edge 11 and a line perpendicular to the central axis A was greater than the tool diameter (mm) multiplied by 0.0070 / mm.
[0104] As shown in Table 3, in each of the drills 100 of samples 4, 11, and 12, the first start phase and the second start phase were each set to 45°. The first end phase and the second end phase were each set to -5°. The second pocket length C2 (length of the pocket portion on the peripheral cutting edge side) was set to 0.91 times the tool diameter. The length of the first pocket portion 32 was set to 1.58 times the tool diameter.
[0105] [Table 3]
[0106] (Evaluation conditions) Next, the drills 100 of Samples 4, 11, and 12 were used to drill holes in the workpiece 80. The vertical machining center used was NVX5080 manufactured by DGM Mori Seiki Co., Ltd. The workpiece was JIS G 4051 S50C. The peripheral speed Vc was 150 m / min. The feed rate f was 0.06 mm / revolution. Coolant was supplied from inside the drill 100. The oil supply pressure was 2 MPa.
[0107] (Evaluation Results) FIG. 17 is a cross-sectional schematic diagram showing the shape of a hole formed using each of the drills 100 of samples 4, 11, and 12. As shown in FIG. 17, the diameter of the hole is enlarged at the entrance of the hole formed in the workpiece 80. The hole diameter at the back is a first diameter W1. The first diameter W1 is substantially the same as the tool diameter. The hole diameter at the entrance is a third diameter W3. The third diameter W3 is larger than the first diameter W1.
[0108] As shown in Table 1, the first diameter W1 at the depth of the hole formed using each of the drills 100 of samples 4, 11, and 12 was 20.1 mm, 18.8 mm, and 18.8 mm, respectively. The third diameter W3 at the entrance of the hole formed using each of the drills 100 of samples 4, 11, and 12 was 20.2 mm, 20.0 mm, and 18.8 mm, respectively. The hole diameter enlargement W2, which is the difference between the third diameter W3 and the first diameter W1, was 0.1 mm, 1.2 mm, and 0.0 mm, respectively. The cutting resistance at the entrance of the hole formed using each of the drills 100 of samples 4, 11, and 12 was 550 N, 750 N, and 500 N, respectively.
[0109] From the above results, it was confirmed that it is possible to reduce the cutting resistance at the entrance of the hole and the hole diameter enlargement allowance W2 by setting the sine of the angle θ (i.e., sinθ) between the central cutting edge 11 and a straight line perpendicular to the central axis A to a value equal to or less than the tool diameter multiplied by 0.0070 / mm.
[0110] The embodiments and examples disclosed herein are illustrative in all respects and should not be considered as limiting. The scope of the present invention is defined by the claims, not the above description, and is intended to include the meaning equivalent to the claims and all modifications within the scope. [Explanation of symbols]
[0111] 1 first discharge groove, 2 second discharge groove, 3 first body region, 4 first outer peripheral surface, 5 shank, 6 second body region, 7 coolant supply hole, 9 body portion, 10 first cutting insert, 11 central cutting edge, 19 central cutting edge mounting screw, 20 second cutting insert, 21 peripheral cutting edge, 29 peripheral cutting edge mounting screw, 31 first insert placement surface portion, 32 first pocket portion, 33 first insert placement groove, 41 second insert placement surface portion, 42 second pocket portion, 43 second insert placement groove, 51 first front groove portion, 52 first rear groove portion, 54 first rear end groove portion, 55 first start position, 56 first end position, 57 first boundary, 61 second front groove portion, 62 second rear groove portion, 64 second rear end groove portion, 65 second start position, 66 second end position, 67 second boundary, 71 first position, 72 second position, 73 3rd position, 74 4th position, 75 5th position, 80 workpiece, 91 1st front end groove, 92 2nd front end groove, 93 3rd front end groove, 94 4th front end groove, 100 drill, 101 front end face, 102 rear end face, 150 imaginary plane, A central axis, B11 1st front length, B12 1st rear length, B13 1st overall length, B21 2nd front length, B22 2nd rear length, B23 2nd overall length, C1 1st pocket length, C2 2nd pocket length, D11 11th half line, D12 12th half line, D13 13th half line, D21 21st half line, D22 22nd half line, D23 23rd half line, D3 3rd line, D4 4th line, E tool diameter, F1 1st imaginary arc, F2 2nd imaginary arc.
Claims
1. A drill that rotates around a central axis, a first cutting insert having a central edge; A second cutting insert having a peripheral cutting edge; a body portion to which the first cutting insert and the second cutting insert are attached; The main body portion includes: A first discharge groove for discharging chips cut by the central blade; A second discharge groove is provided to discharge chips cut by the peripheral cutting edge, As viewed along the central axis, a start point phase of the first discharge groove is located in a range of +10° to +90° with respect to the central blade, an end phase of the first discharge groove is located in a range of −40° or more and 0° or less with respect to the central blade, a start point phase of the second discharge groove is located in a range of +10° to +90° with respect to the peripheral cutting edge, an end phase of the second discharge groove is located in a range of -40° or more and 0° or less with respect to the peripheral cutting edge, The first discharge groove has a first front groove portion and a first rear groove portion connected to the first front groove portion, The second discharge groove has a second front groove portion and a second rear groove portion connected to the second front groove portion, the twist angle of the first front groove portion monotonically decreases toward the first rear groove portion, the twist angle of the second front groove portion monotonically decreases toward the second rear groove portion, The twist angle of each of the first rear groove portion and the second rear groove portion is 0°, a value obtained by dividing a change in a twist angle of the first discharge groove by a change in a position in a direction along the central axis at a boundary between the first front groove portion and the first rear groove portion is continuous, a value obtained by dividing an amount of change in a twist angle of the second discharge groove by an amount of change in a position in a direction along the central axis at a boundary between the second front groove portion and the second rear groove portion is continuous, The main body portion is provided with a first pocket portion that is connected to the first discharge groove and is located forward of the first cutting insert in a rotational direction, A drill, wherein a distance from a front end of the first cutting insert to a rear end of the first pocket portion in a direction along the central axis is 1.5 times or more of a tool diameter.
2. The drill according to claim 1 , wherein a length of each of the first discharge flute and the second discharge flute in a direction along the central axis is not less than two times and not more than eight times the tool diameter.
3. 3. The drill according to claim 1 or 2, wherein, in a direction along the central axis, a length of the first front groove portion is a first front length, a length of the first rear groove portion is a first rear length, a length of the second front groove portion is a second front length, and a length of the second rear groove portion is a second rear length, a value obtained by dividing the first front length by the first rear length is greater than or equal to 0.3 and less than or equal to 3.0, and a value obtained by dividing the second front length by the second rear length is greater than or equal to 0.3 and less than or equal to 3.
0.
4. 3. The drill according to claim 1 or 2, wherein, in a cross section perpendicular to the central axis, a cross-sectional area of the first front groove portion is a first front area, a cross-sectional area of the first rear groove portion is a first rear area, a cross-sectional area of the second front groove portion is a second front area, and a cross-sectional area of the second rear groove portion is a second rear area, a value obtained by dividing the first front area by the first rear area is greater than or equal to 1.01 and less than or equal to 1.02, and a value obtained by dividing the second front area by the second rear area is greater than or equal to 1.01 and less than or equal to 1.
02.
5. The drill according to claim 1 or 2, wherein a cross-sectional area of the first discharge groove is larger than a cross-sectional area of the second discharge groove in a cross section perpendicular to the central axis.
6. 3. The drill according to claim 1 or 2, wherein, in a virtual plane formed by rotational projection of each of the first cutting insert and the second cutting insert, a front end position of the central blade is defined as a first position, an intersection point of the central axis and the central blade is defined as a second position, and an intersection point of a virtual line segment extending from the second position in a direction perpendicular to the central axis and the peripheral blade is defined as a third position, a distance from the central axis to the first position in a radial direction extending radially from the central axis is 30% or more and 40% or less of half the tool diameter, and a distance from the central axis to the third position in the radial direction is 80% or more and 100% or less of half the tool diameter.
7. The drill of claim 6, wherein, when an intersection point between the central cutting edge and the peripheral cutting edge is defined as a fourth position on the imaginary plane, the distance from the central axis to the fourth position in the radial direction is greater than the distance from the fourth position in the radial direction to the outermost end of the peripheral cutting edge.
8. a sine of an angle between a straight line perpendicular to the central axis and a tangent to the central blade at the second position on the imaginary plane is equal to or smaller than a value obtained by multiplying the tool diameter by 0.0070 / mm, The drill according to claim 6, wherein the angle is in degrees and the tool diameter is in mm.
9. The main body portion is provided with a second pocket portion that is connected to the second discharge groove and is located forward of the second cutting insert in a rotational direction, The drill according to claim 1 or 2, wherein a rear end of the first pocket portion is located axially rearward of a rear end of the second pocket portion in a direction along the central axis.