The present invention relates to a method for producing a machining segment.
Machining tools, such as core drill bits, saw blades, abrasive disks and cut-off grinding chains, comprise machining segments that are attached to a tubular, disk-shaped or annular basic body, wherein the machining segments are connected to the basic body by welding, soldering or adhesive bonding. Depending on the machining method of the machining tool, machining segments that are used for core drilling are referred to as drilling segments, machining segments that are used for sawing are referred to as sawing segments, machining segments that are used for abrasive removal are referred to as abrading segments and machining segments that are used for cut-off grinding are referred to as cut-off grinding segments.
Machining segments for core drill bits, saw blades, abrasive disks and cut-off grinding chains are produced from a matrix material and hard material particles, where the hard material particles can be randomly distributed or arranged according to a defined particle pattern in the matrix material. In the case of machining segments with randomly distributed hard material particles, the matrix material and the hard material particles are mixed and the mixture is poured into a suitable mold and further processed to form the machining segment. In the case of machining segments with set hard material particles, a green body is built up in layers from matrix material, in which the hard material particles are placed according to the defined particle pattern. In the case of machining segments that are welded to the basic body of the machining tool, the structure comprising a machining zone and a neutral zone has proven to be successful. The machining zone is built up from a first matrix material and the neutral zone is built up from a second matrix material, which is different from the first matrix material.
Machining tools that are designed as a core drill bit, saw blade, abrasive disk or cut-off grinding chain and are intended for the wet machining of concrete materials are only suitable to a limited extent for the dry machining of concrete materials. In the wet machining of concrete materials, an abrasive concrete sludge is produced, which is conducive to the machining process and leads to a self-sharpening of the machining segments during the machining. The matrix material is removed by the abrasive drilling sludge and new hard material particles are exposed. In the dry machining of concrete materials, no abrasive drilling sludge that could be conducive to the drilling process can form. The hard material particles quickly become dull and the machining rate drops. Due to the lack of concrete sludge, the matrix material wears too slowly and deeper-lying hard material particles cannot be exposed. In the case of known machining tools for wet machining, the matrix material and the hard material particles have similar rates of wear.
The object of the present invention is to develop a method for producing a machining segment by which machining segments that are suitable for the dry machining of concrete materials can be produced. It is intended here that the machining segment should have a high machining rate and as long a service life as possible in the dry machining of concrete materials.
The method for producing a machining segment for a machining tool, wherein the machining segment is connected by an underside to a basic body of the machining tool, is characterized according to the invention in that a green body in which the first hard material particles have on the upper side a projection with respect to the first matrix material is produced. The fact that, already in the green body, the first hard material particles have a projection with respect to the first matrix material means that also in the finished machining segment the first hard material particles can have on the upper side a projection with respect to the first matrix material. The sharpening of the machining segments can be dispensed with completely, or at least is significantly reduced. However, the projection of the first hard material particles on the upper side must be preserved during the further processing of the green body to form the machining segment.
Machining segments that are produced by the method according to the invention are produced in a two-stage process: In a first stage, a green body is built up from the first matrix material and the first hard material particles and, in a second stage, the green body is further processed by hot pressing under the action of temperature and the action of pressure between a first press punch, which forms the underside of the machining segment, and a second press punch, which forms an upper side of the machining segment opposite from the underside, to form the machining segment.
The method according to the invention allows the production of machining segments with a projection of the first hard material particles with respect to the first matrix material, wherein the projection at least of a first hard material particle with respect to the first matrix material is greater than 400 μm. Machining segments in which at least one of the first hard material particles has a projection of over 400 μm with respect to the first matrix material are suitable for the dry machining of concrete materials. The greater the projection of the first hard material particles, the higher the machining rate that can be achieved with the machining tool.
Preferably, a second press punch, which has depressions in a pressing surface, is used when hot pressing the green body, the arrangement of the depressions corresponding to the defined particle pattern of the first hard material particles. The use of a second press punch, which has an arrangement of depressions for the first hard material particles in the pressing surface allows the green body to be further processed to form the machining segment without the projection of the first hard material particles with respect to the first matrix material that was created in the green body being removed. The depressions which correspond to the defined particle pattern of the first hard material particles are required in order that the projection of the first hard material particles on the upper side is preserved during the hot pressing. If the green body was formed on the upper side with a conventional second press punch without depressions, the projection of the first hard material particles would be destroyed during the hot pressing.
In a preferred variant, first hard material particles which are encased by a casing material that corresponds to the first matrix material are used. The use of encased first hard material particles has the advantage that the first hard material particles do not come into direct contact with the second press punch, and the wear of the second press punch can be reduced.
In an alternative preferred variant, first hard material particles which are encased by a casing material that is different from the first matrix material are used. The use of encased first hard material particles has the advantage that the first hard material particles do not come into direct contact with the second press punch, and the wear of the second press punch can be reduced. When a casing material that is different from the first matrix material is used, matrix materials with different wear properties can be used. The casing material serves for protecting the second press punch during hot pressing of the green body and should be able to be removed as quickly as possible from the finished machining segment in order to expose the first hard material particles that machine the base material. A matrix material with a higher wear rate than the first matrix material can be removed quickly.
In a further development, second hard material particles are admixed with the first matrix material, wherein an average particle diameter of the second hard material particles is less than an average particle diameter of the first hard material particles. Depending on the wear properties of the first matrix material, increased wear of the first matrix material on the side surfaces of the machining segment can occur during the machining of a base material with the machining tool as a result of friction with the base material. This wear can be reduced by the second hard material particles. The second hard material particles can be admixed with the first matrix material as randomly distributed particles, or the second hard material particles are placed in the first matrix material according to a defined second particle pattern. The second hard material particles are placed in particular in the region of the side surfaces of the machining segment.
Exemplary embodiments of the invention are described hereinafter with reference to the drawings. This is not necessarily to show the exemplary embodiments to scale; rather the drawings, where useful for explanation, are produced in a schematic and/or slightly distorted form. It should be taken into account here that various modifications and alterations relating to the form and detail of an embodiment may be undertaken without departing from the general concept of the invention. The general concept of the invention is not limited to the exact form or the detail of the preferred embodiment shown and described hereinafter or limited to subject matter that would be limited compared to the subject matter claimed in the claims. For given dimensioning ranges, values within the stated limits should also be disclosed as limit values and can be used and claimed as desired. For the sake of simplicity, the same reference numerals are used below for identical or similar parts or parts with identical or similar functions.
The first core drill bit 10A comprises a number of machining segments 11A, a tubular basic body 12A and a tool fitting 13A. The machining segments 11A, which are used for core drilling, are also referred to as drilling segments and the tubular basic body 12A is also referred to as a drilling shaft. The drilling segments 11A are fixedly connected to the drilling shaft 12A, for example by screwing, adhesive bonding, brazing or welding.
The second core drill bit 10B comprises an annular machining segment 11B, a tubular basic body 12B and a tool fitting 13B. The annular machining segment 11B, which is used for core drilling, is also referred to as a drilling ring, and the tubular basic body 12B is also referred to as a drilling shaft. The drilling ring 11B is fixedly connected to the drilling shaft 12B, for example by screwing, adhesive bonding, brazing or welding.
The core drill bit 10A, 10B is connected via the tool fitting 13A, 13B to a core drill and, in drilling operation, is driven by the core drill in a direction of rotation 14 about an axis of rotation 15. During the rotation of the core drill bit 10A, 10B about the axis of rotation 15, the core drill bit 10A, 10B is moved along a feed direction 16 into a workpiece to be machined, with the feed direction 16 running parallel to the axis of rotation 15. The core drill bit 10A, 10B creates a drill core and a borehole in the workpiece to be machined.
The drilling shaft 12A, 12B in the exemplary embodiment of
The first saw blade 20A comprises a number of machining segments 21A, a disk-shaped basic body 22A and a tool fitting. The machining segments 21A, which are used for sawing, are also referred to as sawing segments, and the disk-shaped basic body 22A is also referred to as a blade body. The sawing segments 21A are fixedly connected to the blade body 22A, for example by screwing, adhesive bonding, brazing or welding.
The second saw blade 20B comprises a number of machining segments 21B, an annular basic body 22B and a tool fitting. The machining segments 21B, which are used for sawing, are also referred to as sawing segments and the annular basic body 22B is also referred to as a ring. The sawing segments 21B are fixedly connected to the ring 22B, for example by screwing, adhesive bonding, brazing or welding.
The saw blade 20A, 20B is connected to a saw via the tool fitting and, in sawing operation, is driven by the saw in a direction of rotation 24 about an axis of rotation 25. During the rotation of the saw blade 20A, 20B about the axis of rotation 25, the saw blade 20A, 20B is moved along a feed direction, the feed direction running parallel to the longitudinal plane of the saw blade 20A, 20B. The saw blade 20A, 20B creates a sawing slit in the workpiece to be machined.
The abrasive disk 30 is connected via the tool fitting to a tool device and, in abrading operation, is driven by the tool device in a direction of rotation 34 about an axis of rotation 35. During the rotation of the abrasive disk 30 about the axis of rotation 35, the abrasive disk 30 is moved over a workpiece to be machined, the movement running perpendicular to the axis of rotation 35. The abrasive disk 30 removes the surface of the workpiece to be machined.
The driving links 38 are connected via the connecting links 39. In the exemplary embodiment, the connecting links 39 are connected to the driving links 38 via rivet bolts. The rivet bolts allow a rotation of the driving links 38 relative to the connecting links 39 about an axis of rotation which runs through the center of the rivet bolts. The machining segments 37 are fixedly connected to the driving links 38, for example by screwing, adhesive bonding, brazing or welding.
The cut-off grinding chain 36 is connected via a tool fitting to a tool device and, in operation, is driven by the tool device in a direction of rotation. During the rotation of the cut-off grinding chain 36, the cut-off grinding chain 36 is moved into a workpiece to be machined.
The machining segment 41 corresponds in structure and composition to the machining segments 11A, 21A, 21B, 31, 37; the machining segment 11B taking the form of a drilling ring differs from the machining segment 41 by its annular structure. The machining segments can differ from one another in the dimensions and in the curvatures of the surfaces. The basic structure of the machining segments according to the invention is explained on the basis of the machining segment 41 and applies to the machining segments 11A, 11B of
The machining segment 41 is built up from a machining zone 42 and a neutral zone 43. The neutral zone 43 is required if the machining segment 41 is intended to be connected to the basic body of a machining tool; in the case of machining segments which are connected to the basic body for example by brazing or adhesive bonding, the neutral zone 43 can be omitted. The machining zone 42 is built up from a first matrix material 44 and first hard material particles 45, and the neutral zone 43 is built up from a second matrix material 46 without hard material particles.
The term “hard material particles” covers all cutting means for machining segments; these especially include individual hard material particles, composite parts made up of multiple hard material particles, and coated or encapsulated hard material particles. The term “matrix material” covers all materials for building up machining segments in which hard material particles can be embedded. Matrix materials may consist of one material or be composed as a mixture of different materials.
Machining segments that are produced by the method according to the invention for producing a machining segment have one layer with first hard material particles 45; further layers with first hard material particles 45 are not provided. “First hard material particles” refer to those hard material particles of the machining segment 41 which, after the production of the machining segment, have on the upper side a projection with respect to the first matrix material 44. Hard material particles which are completely embedded in the first matrix material 44 in the machining segment 41 do not come under the definition of the first hard material particles.
The machining segment 41 is connected by an underside 47 to the basic body of the machining tool. In the case of machining segments for core drilling and in the case of machining segments for abrasive removal, the underside of the machining segments is generally formed as planar, whereas the underside in the case of machining segments for sawing has a curvature in order to be able to fasten the machining segments to the curved end face of the annular or disk-shaped basic body.
The first hard material particles 45 are arranged in the first matrix material 44 according to a defined particle pattern (
On account of the particle distribution of the first hard material particles 45 between the minimum and maximum diameter, the projections of the first hard material particles 45 can vary correspondingly. In the exemplary embodiment, all of the first hard material particles 45 have a projection of more than 400 μm with respect to the surrounding first matrix material 44.
The machining tools according to the invention that are shown in
The direction of rotation 14 of the core drill bit 10A defines a front-side region 51 and a rear-side region 52. The machining of concrete materials occurs in the front-side regions 51 of the first hard material particles 45, and the machining rate essentially depends on the size of the projection of the first hard material particles in the front-side regions 51. The first hard material particles 45 have in the front-side region 51 a front-side projection Tfront and in the rear-side region a rear-side projection Tback, which correspond in the exemplary embodiment. Alternatively, the first hard material particles 45 may have different front-side projections Tfront and rear-side projections Tback.
The machining segment 41 is produced by means of the method according to the invention in two stages: In a first stage, a green body 53 is produced and, in a second stage, the green body 53 is further processed to form the machining segment 41.
The green body 53 is built up in the die-plate 62 with a cross-sectional area that corresponds to the desired geometry of the green body 53. The die-plate 62 has on the underside a first opening, into which the lower punch 61 can be moved, and on the upper side a second opening, into which the upper punch 63 can be moved. The upper punch 63 has depressions 64 in the pressing surface, the arrangement of which corresponds to the defined particle pattern of the first hard material particles 45.
The green body 53 is built up from bottom to top. The first matrix material 44 is poured into the die-plate 62 by means of a filling shoe until the desired filling height is reached. The first hard material particles 45 are placed in the first matrix material 44, into the surface of the first matrix material 44, in a way corresponding to the defined particle pattern and are embedded into the first matrix material 44 to a desired embedding depth. The finished green body 53 is further processed under the action of temperature and action of pressure by means of the lower punch 61 and the upper punch 63 to form the machining segment 41.
With the method according to the invention, machining segments 41 in which the green bodies 53 already have a projection of the first hard material particles 45 with respect to the first matrix material 44 are produced. The green body 53 is hot press molded to form the machining segment 41 by means of the special upper punch 63 in a pressing direction perpendicular to the cross-sectional area of the green body 53. The depressions 64 in the pressing surface of the upper punch 63 have an arrangement which corresponds to the defined particle pattern of the first hard material particles 45. By means of the special upper punch 63, the machining segments 41 that are suitable for the dry machining of concrete materials can be produced. The depressions 64 are required, in order that the projection of the first hard material particles 45 on the upper side 48 is preserved during hot pressing.
With direct contact between the first hard material particles 45 and the depressions 64 of the upper punch 63, increased wear of the upper punch 63 may occur. In order to reduce the wear of the upper punch 63, direct contact of the first hard material particles 45 with the upper punch 63 should be avoided. A suitable measure is the use of encased first hard material particles 45.
The use of encased first hard material particles has the advantage that the first hard material particles 45 do not come into direct contact with the upper punch 63, and the wear of the upper punch 63 can be reduced. The first matrix material 44 can be used as the casing material for the first hard material particles 45. Alternatively, a second matrix material may be used as the casing material for the first hard material particles 45, the second matrix material being different from the first matrix material 44. When a casing material that is different from the first matrix material 44 is used, matrix materials with different wear properties can be used. The casing material serves for protecting the upper punch 63 during compaction and should be able to be removed as quickly as possible from the finished machining segment in order to expose the first hard material particles 45 that machine the concrete material.
Depending on the wear properties of the first matrix material 44, increased wear of the first matrix material 44 on the side surfaces of the machining segment can occur during the machining of a base material with the machining segment 41 as a result of friction with the base material. This wear can be reduced by second hard material particles. The second hard material particles may be admixed with the first matrix material 44 as randomly distributed particles, or the second hard material particles are placed in the first matrix material 44 according to a defined second particle pattern. The second hard material particles are placed in particular in the region of the side surfaces of the machining segment 41.
Number | Date | Country | Kind |
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18215798 | Dec 2018 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2019/086158 | 12/19/2019 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2020/127631 | 6/25/2020 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
5620489 | Tselesin | Apr 1997 | A |
6562288 | Park | May 2003 | B2 |
20030089364 | Kim | May 2003 | A1 |
20120005966 | Cleboski et al. | Jan 2012 | A1 |
20150151362 | Olofsson | Jun 2015 | A1 |
20170361388 | Mueller et al. | Dec 2017 | A1 |
20170368714 | Mueller et al. | Dec 2017 | A1 |
20180001512 | Mueller et al. | Jan 2018 | A1 |
20220055105 | Sonderegger | Feb 2022 | A1 |
20220055106 | Sonderegger | Feb 2022 | A1 |
20220055107 | Sonderegger | Feb 2022 | A1 |
20220055108 | Sonderegger | Feb 2022 | A1 |
20220055109 | Sonderegger | Feb 2022 | A1 |
20220055110 | Sonderegger | Feb 2022 | A1 |
20220055183 | Sonderegger | Feb 2022 | A1 |
20220055184 | Sonderegger | Feb 2022 | A1 |
20220055248 | Sonderegger | Feb 2022 | A1 |
Number | Date | Country |
---|---|---|
1 205 271 | May 2002 | EP |
2 745 965 | Jun 2014 | EP |
2 745 966 | Jun 2014 | EP |
Entry |
---|
PCT/EP2019/086158, International Search Report dated Jan. 23, 2020 (Four (4) pages). |
U.S. Patent Application, “Method for Producing a Machining Segment for the Dry Machining of Concrete Materials”, filed Jun. 17, 2021, first named inventor Marcel Sonderegger. |
U.S. Patent Application, “Machining Segment for a Machining Tool”, filed Jun. 17, 2021, first named inventor Marcel Sonderegger. |
U.S. Patent Application, “Machining Segment for the Dry Machining of Concrete Materials”, filed Jun. 17, 2021, first named inventor Marcel Sonderegger. |
U.S. Patent Application, “Method for Producing a Green Body and Method for Further Processing the Green Body Into a Machining Segment for the Dry Machining of Concrete Materials”, filed Jun. 17, 2021, first named inventor Marcel Sonderegger. |
Number | Date | Country | |
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20220023945 A1 | Jan 2022 | US |