Sawing device and sawing method
The sawing method and device address burr and chipping issues by using controlled cutting modes and blade positioning to minimize burr formation and reduce chipping during structural steel cutting.
Patent Information
- Application Number
- JP2021163640
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-10-04
- Publication Date
- 2025-11-13
- Estimated Expiration
- 2041-10-04
AI Technical Summary
Existing sawing methods for structural steel result in the formation of burrs and are prone to chipping during the cutting process.
A sawing method and device that utilizes a blade with sawtooth edges, employing a first mode of cutting to form a cut groove and a second mode of cutting to pull the uncut portion into the groove, minimizing burr formation and chipping, with controlled transitions between modes using displacement drive units.
Effectively suppresses burrs and reduces chipping while shortening the sawing time through controlled cutting modes and blade positioning within the cut groove.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a sawing device and a sawing method. [Background technology]
[0002] Patent Document 1 discloses a method for cutting structural steel using a saw blade, which is a method for cutting structural steel consisting of any one of H-shaped steel, I-shaped steel, angle steel, and channel steel, using a rotationally driven circular saw blade to eliminate or reduce the generation of cutting burrs, characterized in that a groove-shaped cut is made in the structural steel from the front side along a cutting line, and then the structural steel with the cut formed is cut from the back side along the cutting line. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2008-246666 Summary of the Invention [Problem to be solved by the invention]
[0004] The present disclosure provides a sawing method that is effective in suppressing burrs. [Means for solving the problem]
[0005] A sawing method according to one aspect of the present disclosure is a method for sawing a workpiece with a blade having sawtooth edges, and includes forming a cut groove in the workpiece by a first mode of cutting in which the blade is driven so that the sawtooth edges that have cut the workpiece immediately exit the workpiece, and sawing the workpiece by a second mode of cutting in which the blade is driven so that the sawtooth edges that have cut the workpiece exit the workpiece via the cut groove.
[0006] When cutting in the first mode leads to sawing of the workpiece, the uncut portion that has become thin in the final stage of cutting may be pulled by the saw teeth and escape outside the workpiece, leaving behind a burr. On the other hand, when cutting in the second mode leads to sawing of the workpiece, the saw teeth act to pull the uncut portion into the cut groove, preventing the uncut portion from escaping outside the workpiece until it is sawn. For this reason, a sawing method that forms a cut groove in the first mode and cuts in the second mode leads to sawing is effective in preventing burrs.
[0007] The method may further include transitioning from the first mode cutting to the second mode cutting while the blade is positioned within the cut groove. If the blade is moved out of the cut groove during the transition from the first mode cutting to the second mode cutting, chipping of the workpiece is likely to occur when the blade re-enters the cut groove. According to a sawing method in which the first mode cutting to the second mode cutting is transitioned while the blade is positioned within the cut groove, chipping of the workpiece can be further suppressed. Furthermore, by keeping the blade within the cut groove, the movement of the blade required to transition from the first mode cutting to the second mode cutting is reduced, so this sawing method is also effective in shortening the sawing time and reducing the footprint of the device.
[0008] In the first mode of cutting, the saw blades that cut the workpiece may enter the workpiece from the second surface of the workpiece and cut the workpiece until they exit from the first surface of the workpiece, and in the second mode of cutting, the saw blades may transition from entering the workpiece from the second surface and exiting the workpiece via the cut grooves to entering the workpiece from the first surface and exiting the workpiece via the cut grooves. In this case, the cutting period in the second mode can be extended to further suppress burrs.
[0009] A sawing device according to another aspect of the present disclosure includes a blade having sawtooth edges, a drive device for driving the blade, a first cutting control unit for controlling the drive device to form a kerf in the workpiece by cutting in a first mode in which the blade is driven so that the sawtooth cuts the workpiece and immediately exits the workpiece, a second cutting control unit for controlling the drive device to saw the workpiece by cutting in a second mode in which the blade is driven so that the sawtooth cuts the workpiece and exits the workpiece via the kerf, and a transition control unit for controlling the drive device to transition from the first mode cutting to the second mode cutting while the blade remains in the kerf. This sawing device makes it possible to easily suppress burrs by cutting in the first mode and the second mode with high reproducibility.
[0010] The drive device may include a rotation drive unit that rotates the blade about a rotation axis that passes through the center of the peripheral edge so as to circulate the sawtooth in a first circulation direction along the peripheral edge, a first displacement drive unit that moves the blade along a first traveling direction that is perpendicular to the rotation axis, and a second displacement drive unit that moves the blade along a second traveling direction that is perpendicular to the rotation axis and intersects the first traveling direction, wherein the first cutting control unit may move the blade by at least the first displacement drive unit in the first mode of cutting, and the second cutting control unit may move the blade by at least the second displacement drive unit in the second mode of cutting. In this case, burrs due to cutting in the first mode and cutting in the second mode can be easily suppressed by a simple configuration combining the first displacement drive unit and the second variation drive unit. [Effects of the Invention]
[0011] According to the present disclosure, it is possible to provide a sawing method that is effective in suppressing burrs. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 2 is a schematic diagram illustrating the configuration of a sawing device. [Figure 2] FIG. [Figure 3] FIG. 10 is a cross-sectional view illustrating the configuration of a second displacement driving unit. [Figure 4] 10 is a cross-sectional view illustrating the configuration of a height adjustment unit. FIG. [Figure 5] FIG. 10 is a schematic diagram illustrating a first mode of cutting. [Figure 6] FIG. 10 is a schematic diagram illustrating a transition from cutting in a first mode to cutting in a second mode. [Figure 7] FIG. 10 is a schematic diagram illustrating the state immediately after the start of cutting in the second mode. [Figure 8] FIG. 10 is a schematic diagram illustrating a state immediately before completion of cutting in a second mode. [Figure 9] 10 is a schematic diagram illustrating a case where sawing cannot be completed in cutting in the second mode because the cutting range in the first mode is inappropriate; FIG. [Figure 10] 10 is a schematic diagram illustrating a case where sawing cannot be completed in cutting in the second mode because the cutting range in the first mode is inappropriate; FIG. [Figure 11] 10 is a schematic diagram illustrating a case where sawing cannot be completed in cutting in the second mode because the cutting range in the first mode is inappropriate; FIG. [Figure 12] FIG. 2 is a block diagram illustrating a hardware configuration of a controller. [Figure 13] 10 is a flowchart illustrating a sawing procedure. DETAILED DESCRIPTION OF THE INVENTION
[0013] Hereinafter, the embodiments will be described in detail with reference to the drawings. In the description, the same elements or elements having the same functions are denoted by the same reference numerals, and redundant description will be omitted.
[0014] [Sawing device] The sawing device 1 shown in Fig. 1 is a device for sawing long steel materials. Specific examples of steel materials include shaped steel such as round steel and square steel. The sawing device 1 has a blade 10, a drive device 20, and a controller 100.
[0015] The blade 10 has sawtooth 11 on its periphery 12. For example, the blade 10 has a disk shape and a circular periphery 12. The blade 10 may have a plurality of sawtooth 11 arranged along its periphery (see FIG. 2).
[0016] The driving device 20 drives the blade 10. For example, the driving device 20 includes a movable support base 30, a fixed support base 40, a rotation driving unit 50, a first displacement driving unit 60, a second displacement driving unit 70, and a height changing unit 80.
[0017] The rotation drive unit 50 rotates the blade 10 around a rotation axis 51 passing through the center of the periphery 12 so as to circulate the saw teeth 11 in a first circulation direction RD1 along the periphery 12. For example, the rotation drive unit 50 rotates the blade 10 around the rotation axis 51 that is perpendicular to the blade 10 at the center of the periphery 12. As an example, the rotation drive unit 50 rotates the blade 10 around the rotation axis 51 using an electric rotary actuator.
[0018] The movable support base 30 supports the rotation drive unit 50 and the blade 10 so that the rotation axis 51 is horizontal. Therefore, the rotation drive unit 50 rotates the blade 10 around the horizontal rotation axis 51. The fixed support base 40 supports the movable support base 30 so that it can be displaced along a first traveling direction MD1 that is perpendicular to the rotation axis 51. For example, the fixed support base 40 supports the movable support base 30 so that it can be displaced along the horizontal first traveling direction MD1.
[0019] For ease of explanation, the first traveling direction MD1 will be referred to as the front-to-rear direction of the sawing device 1 below. The blade 10 is arranged near the front end of the movable support base 30. A work support base 90 is arranged in front of the fixed support base 40. The work support base 90 supports a workpiece 91 to be sawed. When the movable support base 30 advances relative to the fixed support base 40, the blade 10 advances relative to the workpiece 91. When the movable support base 30 retreats relative to the fixed support base 40, the blade 10 retreats relative to the workpiece 91.
[0020] The fixed support base 40 has a plurality of support rollers 41. The plurality of support rollers 41 includes at least two support rollers 41 arranged in front and behind each other. Each of the plurality of support rollers 41 is rotatable about a rotation axis 42 parallel to the rotation axis 51. The support rollers 41 are rotatable about the rotation axis 51, so that the movable support base 30 is displaceable along the first traveling direction MD1.
[0021] The first displacement drive unit 60 moves the blade 10 along the first traveling direction MD1. For example, the first displacement drive unit 60 has an advance / retract actuator 61. The advance / retract actuator 61 is provided on the fixed support base 40 so as to displace the movable support base 30 along the first traveling direction MD1. A specific example of the advance / retract actuator 61 is a hydraulic cylinder, but is not limited to this. For example, the advance / retract actuator 61 may be an electric linear actuator.
[0022] The second displacement drive unit 70 moves the blade 10 along a second traveling direction MD2 that is perpendicular to the rotation axis 51 and intersects the first traveling direction MD1. For example, the second displacement drive unit 70 raises and lowers the blade 10 along the second traveling direction MD2 that intersects a horizontal plane. As an example, the second displacement drive unit 70 raises and lowers the blade 10 along the second traveling direction MD2 that is perpendicular (vertical) to the horizontal plane. Note that the second traveling direction MD2 that intersects the horizontal plane is not limited to the vertical second traveling direction MD2. The second displacement drive unit 70 may be configured to raise and lower the blade 10 along the second traveling direction MD2 that is inclined with respect to the vertical direction.
[0023] For example, the sawing device 1 includes a plurality of second displacement drive units 70 respectively corresponding to the plurality of support rollers 41. Each of the plurality of second displacement drive units 70 raises and lowers the corresponding support roller 41. In response to the raising and lowering of the support roller 41, the movable support base 30 rises and lowers, and the blade 10 supported by the movable support base 30 also rises and lowers.
[0024] As shown in FIG. 3 , each of the multiple second displacement drive units 70 has a lifting rotation shaft 71 and a lifting actuator 72. The lifting rotation shaft 71 is fixed to the rotation shaft 42 of the support roller 41 and extends parallel to the rotation shaft 42. A central axis 74 of the lifting rotation shaft 71 is spaced apart from the central axis 43 of the rotation shaft 42. The lifting actuator 72 is, for example, an electric or hydraulic rotary actuator, and rotates the lifting rotation shaft 71 about its central axis 74. Because the central axis 74 of the lifting rotation shaft 71 is spaced apart from the central axis 43 of the rotation shaft 42, the rotation of the lifting rotation shaft 71 about the central axis 74 raises and lowers the central axis 43 of the rotation shaft 42.
[0025] The second displacement drive unit 70 may be configured in any manner as long as it can move the movable support base 30 at the required stroke. For example, the second displacement drive unit 70 may be an electric linear actuator that raises and lowers the support roller 41, or a hydraulic cylinder that raises and lowers the support roller 41.
[0026] The height change unit 80 changes the height of the blade 10 in the first cutting mode. The height change unit 80 may be configured to raise and lower the second displacement drive unit 70. This makes it possible to raise and lower the second displacement drive unit 70 relative to the height determined by the height change unit 80.
[0027] As shown in FIG. 4 , the height change unit 80 includes a plurality of lower wedges 81, a slide spacer 82, and a slide actuator 83. The plurality of lower wedges 81 correspond to the plurality of second displacement drive units 70, respectively. Each of the plurality of lower wedges 81 is provided below the corresponding second displacement drive unit 70 and has an upper surface 84 that gradually becomes higher from front to rear. The slide spacer 82 is interposed between the plurality of lower wedges 81 and the plurality of second displacement drive units 70. A plurality of upper wedges 85 are provided below the slide spacer 82, corresponding to the plurality of lower wedges 81, respectively. Each of the plurality of upper wedges 85 has a lower surface 86 that gradually becomes higher from front to rear. The lower surface 86 is in contact with the upper surface 84 of the corresponding lower wedge 81.
[0028] The slide actuator 83 is, for example, a hydraulic cylinder, and slides the slide spacer 82 in the front-to-rear direction. When the slide actuator 83 slides the slide spacer 82 rearward, each of the multiple upper wedges 85 slides up the upper surface 84 of the lower wedge 81 and rises. In response, the second displacement drive unit 70 above the upper wedge 85 rises. When the slide actuator 83 slides the slide spacer 82 forward, each of the multiple upper wedges 85 slides down the upper surface 84 of the lower wedge 81 and descends. In response, the second displacement drive unit 70 above the upper wedge 85 descends.
[0029] The height changing unit 80 may be configured in any manner as long as it can change the height of the blade 10. For example, the height changing unit 80 may be configured to slide the slide spacer 82 using an electric linear actuator. Alternatively, the height changing unit 80 may be configured to directly raise and lower the second displacement drive unit 70 using a hydraulic cylinder or an electric linear actuator, without using the slide spacer 82.
[0030] The controller 100 controls the drive unit 20. When the workpiece 91 is sawed in the first cutting mode described above, the uncut portion, which has become thin in the final stage of cutting, may be pulled by the saw blade 11 and escape outside the workpiece 91, leaving behind a burr. On the other hand, when the workpiece 91 is sawed in the second cutting mode, the saw blade 11 acts to pull the uncut portion into the cut groove, thereby preventing the uncut portion from escaping outside the workpiece 91 until it is sawed. Therefore, the controller 100 is configured to control the drive unit 20 to form a cut groove in the workpiece 91 by cutting in the first mode described above, and to control the drive unit 20 to saw the workpiece 91 by cutting in the second mode described above. This makes it possible to prevent burrs from being generated when the workpiece 91 is sawed.
[0031] As shown in FIG. 1 , the controller 100 has, as functional configurations (hereinafter referred to as "functional blocks"), a first cutting control unit 111, a second cutting control unit 112, and a transition control unit 113. The first cutting control unit 111 controls the drive unit 20 to form a cut groove in the workpiece 91 by cutting in a first mode, which drives the blade 10 so that the saw blade 11, which has cut the workpiece 91, immediately exits the workpiece 91. The saw blade 11, which has cut the workpiece 91, immediately exits the workpiece 91, means that the trajectory of the saw blade 11 that moves from inside the workpiece 91 to outside the workpiece 91 penetrates into the uncut portion of the workpiece 91 until it reaches the outer surface of the workpiece 91.
[0032] In the first mode of cutting, the first cutting control unit 111 controls the drive unit 20 to move the blade 10 while circulating the saw teeth 11 in a first circulation direction RD1 along the circumferential edge 12. For example, the first cutting control unit 111 controls the rotation drive unit 50 to rotate the blade 10 around a rotation axis 51 passing through the center of the circumferential edge 12 in order to circulate the saw teeth 11 in the first circulation direction RD1.
[0033] The first cutting control unit 111 controls the drive device 20 to move the blade 10 along a first traveling direction MD1 in the first mode of cutting. The first cutting control unit 111 controls the drive device 20 to move the blade 10 while positioning the rotation axis 51 on a first line ML1 that is along the first traveling direction MD1 and away from the workpiece 91. In this case, the first cutting control unit 111 positions the rotation axis 51 on the first line ML1 that is determined so that the entire cross section of the workpiece 91 falls within the movement range of the blade 10.
[0034] As an example, the first cutting control unit 111 controls the drive device 20 to advance the blade 10 along a horizontal first traveling direction MD1. For example, the first cutting control unit 111 moves the movable support base 30 using the first displacement drive unit 60, thereby moving the blade 10 along the first traveling direction MD1. The first cutting control unit 111 controls the drive device 20 to advance the blade 10 in a state where the rotation axis 51 is positioned above the workpiece 91 and the lower end of the blade 10 is positioned below the lower end of the workpiece 91. For example, the movable support base 30 is advanced by the first displacement drive unit 60 in a state where the height of the blade 10 is adjusted by the height change unit 80 so that the rotation axis 51 is positioned above the workpiece 91 and the lower end of the blade 10 is positioned below the lower end of the workpiece 91.
[0035] When the rotation axis 51 is located above the workpiece 91 and the lower end of the blade 10 is located below the underside of the workpiece 91, the above-mentioned first line ML1 is spaced above the workpiece 91, and the entire cross section of the workpiece 91 is within the movement range of the blade 10. When the first line ML1 is spaced above the workpiece 91, the first cutting control unit 111 controls the rotation drive unit 50 to circulate the saw teeth 11 in a first circulation direction RD1 in which the saw teeth 11 that cut the workpiece 91 descend. For example, the first cutting control unit 111 controls the rotation drive unit 50 to circulate the saw teeth 11 in the first circulation direction RD1 in which the front saw teeth 11 descend and the rear saw teeth 11 ascend.
[0036] The second cutting control unit 112 controls the drive device 20 to saw the workpiece 91 by a second mode of cutting in which the blade 10 is driven so that the saw blade 10, having cut the workpiece 91, passes through the cut groove and exits the workpiece 91. Sawing means that the workpiece 91 is divided into two pieces by cutting with the saw blade 11. The saw blade 11, having cut the workpiece 91, passes through the cut groove and exits the workpiece 91 means that the trajectory of the saw blade 11 that moves from entering the workpiece 91 to exiting the workpiece 91 passes through the uncut portion and then passes through the cut groove before reaching the outer surface of the workpiece 91.
[0037] The first cutting control unit 111 may complete cutting in the first mode by cutting the workpiece 91 until the saw blade 11 that cuts the workpiece 91 extends from the first surface of the workpiece 91 to the outside of the workpiece 91. In this case, the second cutting control unit 112 controls the drive device 20 so that, in cutting in the second mode, the sawing of the workpiece 91 is completed when the saw blade 11 that cuts the workpiece 91 enters the workpiece 91 from the first surface. The first cutting control unit 111 may complete cutting in the first mode by cutting the workpiece 91 until the saw blade 11 that cuts the workpiece 91 enters the workpiece 91 from the second surface of the workpiece 91 and extends from the first surface of the workpiece 91 to the outside of the workpiece 91. In this case, the second cutting control unit 112 controls the drive unit 20 so that, in the second mode of cutting, the saw blade 11 for cutting the workpiece 91 transitions from a state in which the saw blade 11 for cutting the workpiece 91 enters the workpiece 91 from the second surface and exits the workpiece 91 through the cut groove to a state in which the saw blade 11 for cutting the workpiece 91 enters the workpiece 91 from the first surface and exits the workpiece 91 through the cut groove.
[0038] The second cutting control unit 112 controls the drive unit 20 to move the blade 10 while circulating the saw teeth 11 in the first circulation direction RD1, even during cutting in the second mode. For example, the second cutting control unit 112 controls the rotation drive unit 50 to rotate the blade 10 around the rotation axis 51 passing through the center of the periphery 12, in order to circulate the saw teeth 11 in the first circulation direction RD1.
[0039] The second cutting control unit 112 may control the drive unit 20 to move the blade 10 along a second traveling direction MD2 that intersects the first traveling direction MD1 during cutting in the second mode. For example, the first cutting control unit 111 controls the drive unit 20 to advance the blade 10 along the horizontal first traveling direction MD1 during part of cutting in the first mode. The second cutting control unit 112 controls the drive unit 20 to move the blade 10 along the second traveling direction MD2 that intersects the horizontal plane during part of cutting in the second mode. As an example, the second cutting control unit 112 causes the second displacement drive unit 70 to raise and lower the movable support base 30 during cutting in the second mode.
[0040] The transition control unit 113 controls the drive unit 20 to transition from cutting in the first mode to cutting in the second mode while the blade 10 remains in the cut groove. The transition control unit 113 controls the drive unit 20 to move the blade 10 while circulating the saw teeth 11 in the first circulation direction RD1, even during the transition period from the first mode to the second mode (hereinafter simply referred to as the "transition period"). For example, the transition control unit 113 controls the rotation drive unit 50 to rotate the blade 10 around the rotation axis 51 passing through the center of the periphery 12 in order to circulate the saw teeth 11 in the first circulation direction RD1.
[0041] During the transition period, the transition control unit 113 causes the drive unit 20 to move the blade 10 so as to bypass the uncut portion of the workpiece 91. During the transition period, the transition control unit 113 moves the blade 10 until a second line ML2 that is along the second traveling direction MD2 and passes through the rotation axis 51 passes through the uncut portion of the workpiece 91. When the transition control unit 113 completes the movement of the blade 10, the position of the second line ML2 is determined. The second cutting control unit 112 controls the drive unit 20 to move the blade 10 while positioning the rotation axis 51 on the second line ML2 during cutting in the second mode. The transition control unit 113 may determine the second line ML2 at a position where the entire cross section of the workpiece 91 is within the movement range of the blade 10 during cutting in the second mode.
[0042] Even during the transition period, the transition control unit 113 controls the drive unit 20 to move the blade 10 while continuing to cut the uncut portion of the workpiece 91 with the saw teeth 11. For example, during the transition period, the transition control unit 113 controls the drive unit 20 to move the blade 10 along a trajectory that gradually cuts the saw teeth 11 into the uncut portion.
[0043] For example, when the first cutting control unit 111 controls the drive device 20 to advance the blade 10 along the horizontal first advance direction MD1 in cutting in the first mode, the transition control unit 113 controls the drive device 20 during the transition period to further advance the blade 10 while bypassing the uncut portion of the workpiece 91 in an upward direction. In this case, the second cutting control unit 112 may control the drive device 20 to lower the blade 10 along the second advance direction MD2 in cutting in the second mode.
[0044] As an example, during the transition period, the transition control unit 113 may cause the second displacement drive unit 70 to raise the movable support base 30 and the first displacement drive unit 60 to advance the movable support base 30. As a result, the blade 10 rises and advances during the transition period. After the ascent period in which the second displacement drive unit 70 raises the movable support base 30, the transition control unit 113 causes the first displacement drive unit 60 to advance the movable support base 30. The transition control unit 113 at least partially overlaps the ascent period in which the second displacement drive unit 70 raises the movable support base 30 with the advance period in which the first displacement drive unit 60 advances the movable support base 30. During the overlapping period between the ascent period and the advance period, the movable support base 30 advances diagonally upward.
[0045] The following provides more specific examples of the first-mode cutting, the transition from the first-mode cutting to the second-mode cutting, and the second-mode cutting that the first cutting control unit 111, the second cutting control unit 112, and the transition control unit 113 cause the drive device 20 to perform. FIG. 5 is a schematic diagram illustrating the first-mode cutting. In FIG. 5, the workpiece 91 has a generally rectangular cross-sectional shape and includes a first surface 92 facing downward, a second surface 93 facing forward, a third surface 94 facing upward, and a fourth surface 95 facing backward. The height of the blade 10 is determined so that the rotation axis 51 is positioned above the workpiece 91 and the lower end of the blade 10 is positioned below the lower surface (first surface 92) of the workpiece 91. At the start of first-mode cutting, the saw blade 11 cuts the portion where the third surface 94 and the fourth surface 95 intersect to form a cut groove 96. Thereafter, as the blade 10 advances, cutting in the first mode transitions to a state in which the saw teeth 11 cutting the workpiece 91 enter the workpiece 91 from the third surface 94 and exit the workpiece 91 from the fourth surface 95. Further thereafter, cutting in the first mode transitions to a state in which the saw teeth 11 cutting the workpiece 91 enter the workpiece 91 from the second surface 93 and exit the workpiece 91 from the first surface 92, as shown in FIG.
[0046] FIG. 6 is a schematic diagram illustrating a transition from cutting in the first mode to cutting in the second mode. The transition control unit 113 raises the blade 10 using the second displacement drive unit 70 and advances the blade 10 using the first displacement drive unit 60 so that the blade 10 detours above the uncut portion 97 of the workpiece 91. As shown in FIG. 6, the transition control unit 113 advances the blade 10 diagonally upward using a combination of the second displacement drive unit 70 and the first displacement drive unit 60. The transition control unit 113 also advances the blade 10 along a curved trajectory that detours around the uncut portion 97 using a combination of the second displacement drive unit 70 and the first displacement drive unit 60. The transition control unit 113 advances the blade 10 until a second line ML2 that runs along the vertical second moving direction MD2 and passes through the rotation axis 51 passes through the uncut portion 97 (see FIG. 7).
[0047] 7 is a schematic diagram illustrating the state immediately after the start of cutting in the second mode. The second cutting control unit 112 causes the second displacement drive unit 70 to lower the blade 10. This starts cutting in the second mode. At the start of cutting in the second mode, the saw blade 11 that cuts the workpiece 91 enters the workpiece 91 from the second surface 93, cuts the uncut portion 97, and then exits the workpiece 91 through the cut groove 96.
[0048] Thereafter, as the blade 10 descends, cutting in the second mode transitions to a state in which the saw blade 11 that cuts the workpiece 91 enters the workpiece 91 from the first surface 92, cuts the uncut portion 97, and then exits the workpiece 91 through the cut groove 96. FIG. 8 is a schematic diagram illustrating a state immediately before cutting in the second mode is completed. As is clear from FIG. 8, the state in which the saw blade 11 that cuts the workpiece 91 enters the workpiece 91 from the first surface 92, cuts the uncut portion 97, and then exits the workpiece 91 through the cut groove 96 is maintained until the workpiece 91 is sawn (until the entire uncut portion 97 is cut).
[0049] 9, 10, and 11, a case where sawing cannot be completed in cutting in the second mode due to an inappropriate cutting range in the first mode is also illustrated. FIG. 9 illustrates cutting in the first mode. In FIG. 9, the height of the blade 10 is set so that the lower end of the blade 10 is positioned above the lower surface (first surface 92) of the workpiece 91. In this state, the first cutting control unit 111 advances the blade 10 using the first displacement drive unit 60, thereby forming a cut groove 96 in the upper part of the workpiece 91 and an uncut portion 97 in the lower part of the workpiece 91.
[0050] 10 illustrates an example of transition from first-mode cutting to second-mode cutting. As shown in FIG. 10, the transition control unit 113 causes the second displacement drive unit 70 to lower the blade 10. This transition transitions from first-mode cutting to second-mode cutting. Upon completion of the transition, the saw blade 11, which cuts the workpiece 91, enters the workpiece 91 from the first surface 92, cuts the uncut portion 97, and then exits the workpiece 91 through the cut groove 96.
[0051] After the transition is complete, the second cutting control unit 112 causes the first displacement drive unit 60 to retract the blade 10. Thereafter, cutting in the second mode continues, but as the saw blade 11 cutting the workpiece 91 approaches the fourth surface 95, the second mode cutting returns to the first mode cutting, as shown in FIG. 11 . In cutting in the first mode, the saw blade 11 that has cut the workpiece 91 immediately moves out of the workpiece 91 from the fourth surface 95. In this way, because the second mode cutting returns to the first mode cutting before the workpiece 91 is sawed, the workpiece 91 cannot be sawed in the second mode cutting in the example shown in FIGS. 9 , 10 , and 11 .
[0052] While the first mode cutting, the transition from the first mode cutting to the second mode cutting, and the second mode cutting have been specifically exemplified above, the movement direction of the blade 10 in each period is merely an example.
[0053] The controller 100 may be further configured to adjust the height of the blade 10 by the height change unit 80. For example, the controller 100 further includes a height adjustment unit 114 as a functional block, as shown in Fig. 1. For example, the height adjustment unit 114 may control the height change unit 80 so as to adjust the height of the blade 10 to a target height input to an input device 196, which will be described later.
[0054] The height adjustment unit 114 may automatically set a target height based on the outer diameter of the blade 10, and control the height change unit 80 to adjust the height of the blade 10 to the set target height. In this case, the sawing device 1 may further include an outer diameter sensor 52 that detects the outer diameter of the blade 10, and the height adjustment unit 114 may automatically set the target height based on the detection result by the outer diameter sensor 52.
[0055] 12 is a block diagram illustrating an example of the hardware configuration of the controller 100. As shown in Fig. 12, the controller 100 includes a circuit 190. The circuit 190 includes one or more processors 191, a memory 192, a storage 193, an input / output port 194, a display device 195, and an input device 196.
[0056] The storage 193 stores a program for causing the controller 100 to control the drive device 20 so as to form a cut groove in the workpiece 91 by cutting in the first mode, and to control the drive device 20 so as to saw the workpiece 91 by cutting in the second mode. For example, the storage 193 stores a program for causing the controller 100 to configure each of the above-mentioned functional blocks.
[0057] The memory 192 temporarily stores a program loaded from the storage 193. One or more processors 191 execute the program stored in the memory 192 and configure the above-mentioned functional blocks. The one or more processors 191 store intermediate calculation results generated in the course of executing the program in the memory 192 as appropriate, and refer to these results in subsequent processing.
[0058] The input / output port 194 inputs and outputs information between the rotation drive unit 50, the first displacement drive unit 60, the second displacement drive unit 70, the height change unit 80, and the outer diameter sensor 52 in response to a request from one or more processors 191. The display device 195 displays information to the operator. A specific example of the display device 195 is an LCD monitor. The input device 196 acquires input from the operator. A specific example of the input device 196 is a mouse, a keyboard, etc. The input device 196 may be integrated with the display device 195 as a so-called touch panel. The display device 195 and the input device 196 may be connected to one or more processors 191 via a network line such as the Internet.
[0059] The hardware configuration of the controller 100 shown above is merely an example and can be modified as appropriate. For example, at least some of the functional blocks may be configured with dedicated logic circuit elements such as ASICs (Application Specific Integrated Circuits) instead of one or more processors 191.
[0060] [Sawing method] Next, as an example of a sawing method, a control procedure executed by the controller 100 will be illustrated. This procedure includes controlling the drive device 20 to form a cut groove in the workpiece 91 by cutting in the first mode, and controlling the drive device 20 to saw the workpiece 91 by cutting in the second mode.
[0061] 13, the controller 100 first executes steps S01 and S02. In step S01, the height adjustment unit 114 adjusts the height of the blade 10 in the first mode of cutting using the height change unit 80. In step S02, the first cutting control unit 111 starts rotation of the blade 10 by the rotation drive unit 50 so as to circulate the saw teeth 11 in the first circulation direction RD1.
[0062] Next, the controller 100 executes steps S03, S04, and S05. In step S03, the first cutting control unit 111 advances the rotating blade 10 using the first displacement drive unit 60, thereby forming a cut groove in the workpiece 91 by cutting in the first mode. In step S04, the transition control unit 113 moves the blade 10 using the second displacement drive unit 70 and the first displacement drive unit 60 so as to bypass the uncut portion 97 upward, thereby transitioning from the first mode cutting to the second mode cutting. In step S05, the second cutting control unit 112 lowers the blade 10 using the second displacement drive unit 70, thereby sawing the workpiece 91 by cutting in the second mode.
[0063] Next, the controller 100 executes steps S06 and S07. In step S06, the second cutting control unit 112 controls the second displacement drive unit 70 and the first displacement drive unit 60 to return the blade 10 to the position before the start of step S03. In step S07, the rotation drive unit 50 stops the rotation of the blade 10. With the above, sawing of the workpiece 91 is completed by the first mode cutting and the second mode cutting. Note that, although the procedure for when there is one sawing location has been exemplified, when there are multiple sawing locations, steps S03 to S06 may be repeated until all sawing locations have been sawed before step S07.
[0064] [Effects of this embodiment] The sawing method using the sawing device 1 described above is a method of sawing a workpiece with a blade 10 having saw teeth 11 on its periphery 12, and includes forming a cut groove in the workpiece by cutting in a first mode in which the blade 10 is driven so that the saw teeth 11 that have cut the workpiece immediately exit the workpiece, and sawing the workpiece by cutting in a second mode in which the blade 10 is driven so that the saw teeth 11 that have cut the workpiece exit the workpiece through the cut groove.
[0065] When the workpiece is sawed off in the first mode of cutting, the uncut portion that has become thin in the final stage of cutting may be pulled by the saw teeth 11 and escape outside the workpiece, leaving behind a burr. On the other hand, when the workpiece is sawed off in the second mode of cutting, the saw teeth 11 act to pull the uncut portion into the cut groove, preventing the uncut portion from escaping outside the workpiece until it is sawn off. For this reason, a sawing method in which a cut groove is formed in the first mode of cutting and the workpiece is sawn off in the second mode of cutting is effective in preventing burrs.
[0066] The method may further include transitioning from the first mode cutting to the second mode cutting while the blade 10 is positioned within the cut groove. If the blade 10 is moved out of the cut groove during the transition from the first mode cutting to the second mode cutting, chipping of the workpiece is likely to occur when the blade 10 re-enters the cut groove. A sawing method in which the first mode cutting is transitioned to the second mode cutting while the blade 10 is positioned in the cut groove can further prevent chipping of the workpiece. Furthermore, by keeping the blade 10 within the cut groove, the movement of the blade 10 required to transition from the first mode cutting to the second mode cutting is reduced, so this sawing method is also effective in shortening the sawing time.
[0067] In the first mode of cutting, the saw blades 11 that cut the workpiece enter the workpiece from the second surface of the workpiece and cut the workpiece until they exit from the first surface of the workpiece, and in the second mode of cutting, the saw blades 11 that cut the workpiece may transition from entering the workpiece from the second surface and exiting the workpiece via the cut groove to entering the workpiece from the first surface and exiting the workpiece via the cut groove. In this case, the cutting period in the second mode can be extended to further suppress burrs.
[0068] The sawing device 1 includes a blade 10 having sawtooth edges 11 on a periphery 12, a drive unit 20 that drives the blade 10, a first cutting control unit that controls the drive unit 20 to form a cut groove in the workpiece by cutting in a first mode that drives the blade 10 so that the sawtooth edges 11 that have cut the workpiece immediately exit the workpiece, a second cutting control unit that controls the drive unit 20 to saw the workpiece by cutting in a second mode that drives the blade 10 so that the sawtooth edges 11 that have cut the workpiece exit the workpiece via the cut groove, and a transition control unit that controls the drive unit 20 to transition from cutting in the first mode to cutting in the second mode while the blade 10 remains in the cut groove. This sawing device 1 makes it possible to easily suppress burrs by cutting in the first mode and cutting in the second mode with high reproducibility.
[0069] The drive device 20 includes a rotation drive unit 50 that rotates the blade 10 about a rotation axis passing through the center of the peripheral edge 12 so as to circulate the saw teeth 11 in a first circulation direction RD1 along the peripheral edge 12, a first displacement drive unit 60 that moves the blade 10 along a first advancement direction MD1 perpendicular to the rotation axis, and a second displacement drive unit 70 that moves the blade 10 along a second advancement direction MD2 perpendicular to the rotation axis and intersecting the first advancement direction MD1, wherein the first cutting control unit may move the blade 10 using the first displacement drive unit 60 in the first mode of cutting, and the second cutting control unit may move the blade 10 using the second displacement drive unit 70 in the second mode of cutting. In this case, a simple configuration combining the first displacement drive unit 60 and the second variation drive unit can easily suppress burrs in the first mode of cutting and the second mode of cutting.
[0070] Although the embodiments have been described above, the present invention is not necessarily limited to the above-described embodiments, and various modifications are possible without departing from the spirit of the present invention. [Explanation of symbols]
[0071] 1... sawing device, 10... blade, 11... sawtooth, 12... periphery, 20... drive device, 50... rotation drive unit, RD1... first circulation direction, MD1... first traveling direction, MD2... second traveling direction, 60... first displacement drive unit, ML1... first line, 70... second displacement drive unit, ML2... second line, 80... height change unit.
Claims
1. A method for sawing a workpiece with a blade having sawtooth on its periphery, comprising: forming a cut groove in the workpiece by cutting in a first mode in which the blade is driven so that the sawtooth that has cut the workpiece immediately exits the workpiece; sawing the workpiece by a second mode of cutting in which the blade is driven so that the saw blade that has cut the workpiece passes through the cutting groove and exits the workpiece; The workpiece has a second surface where the saw blades that cut the workpiece enter the workpiece in the first cutting mode, and a first surface where the saw blades that entered the workpiece exit the workpiece, In the second mode of cutting, the saw blades that cut the workpiece transition from a state in which they enter the workpiece from the second surface at the end of cutting in the first mode and exit the workpiece through the cut groove to a state in which they enter the workpiece from the first surface at the end of cutting in the first mode and exit the workpiece through the cut groove.
2. 2. The method of claim 1, further comprising transitioning from said first mode of cutting to said second mode of cutting with said blade positioned within said cut groove.
3. a blade having sawtooth on its periphery; a drive device that drives the blade; a first cutting control unit that controls the drive device to form a notch in the workpiece by cutting in a first mode that drives the blade so that the sawtooth that has cut the workpiece immediately moves out of the workpiece; a second cutting control unit that controls the drive device to saw the workpiece by a second mode of cutting that drives the blade so that the saw blade that has cut the workpiece passes through the cut groove and exits the workpiece; a transition control unit that controls the drive device to transition from the first mode cutting to the second mode cutting while the blade is held within the cut groove, The workpiece has a second surface where the saw blades that cut the workpiece enter the workpiece in the first cutting mode, and a first surface where the saw blades that entered the workpiece exit the workpiece, The second cutting control unit controls the drive device so that the saw blades cutting the workpiece transition from a state in which they enter the workpiece from the second surface at the end of cutting in the first mode and exit the workpiece through the cut groove to a state in which they enter the workpiece from the first surface at the end of cutting in the first mode and exit the workpiece through the cut groove.
4. The workpiece has a substantially rectangular cross-sectional shape, The drive device is a rotation drive unit that rotates the blade about a rotation axis that passes through a center of the periphery so as to circulate the sawtooth in a first circulation direction along the periphery; a first displacement drive unit that moves the blade along a first moving direction perpendicular to the rotation axis; a second displacement drive unit that moves the blade along a second traveling direction that is perpendicular to the rotation axis and intersects with the first traveling direction, the first cutting control unit moves the blade by the first displacement drive unit in the first mode of cutting; The sawing device according to claim 3 , wherein the second cutting control section moves the blade by the second displacement drive section in the second mode of cutting.
Citation Information
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