![]() Cutting with radius section, tools and device for milling
专利摘要:
29 SAM | / IAN DRAG Insert insert (102; 202) for centrifugal milling of material (134), which insert is arranged to be arranged in a seat (114) defined by a milling body (112) which is located at a rotary axis (122 defined by the milling body). ), the milling body being connectable to a rotatable holder. The insert comprises a plurality of cutting edges (124, 136; 224), wherein at least one first cutting edge (124; 224) terminates in or adjacent to an enteric axis (120; 220) defined by the insert, the first cutting edge comprising a first edge portion ( 148; 228) with a first radius (F11) which is substantially large for each point on the first edge portion. The first cutting edge comprises at least one second edge portion (152; 252) which is flat or has at least one second radius (F12) for each point on the respective second edge portion, the at least one second radius being larger than the first radius. The at least one second edge portion is located between the first edge portion and the center axis, one of the at least one second edge portion adjoins the first edge portion, and one of the at least one second edge portion terminates in or adjacent to the center axis. Tools for centrifugal milling of materials, including said inserts. Device for centrifugal milling of material, comprising a milling body (312) which is connectable to a rotatable spindle or hopper and defines a axis of rotation (322), the milling body comprising a plurality of cutting edges (324, 325, 336, 337), where at least a first cutting edge (324) corresponds to the above-mentioned first cutting edge. (Fig. 3A) 公开号:SE1050877A1 申请号:SE1050877 申请日:2010-08-27 公开日:2012-02-28 发明作者:Ralf Lehto;Johan Bergquist;Rickard Sundstroem 申请人:Sandvik Intellectual Property; IPC主号:
专利说明:
15 20 25 30 2 body. During profile milling, the milling tool rotates in a direction of rotation around its axis of rotation at the same time as the workpiece is fed relative to the milling tool in a feeding direction. When finishing, it is common for the milling tool to be fed relative to the workpiece along and towards a surface of the workpiece. A full radius end mill is often used with a feed direction that forms a substantially perpendicular angle to the axis of rotation of the end mill, but other feed directions are also possible. US-A1-2009 / 0245946 describes a solid radius end mill of cubic boron nitride. WO-A1-OO / 29153 describes a solid full radius end mill. EP-B1-0 985 478 describes a radius cutter with indexable insert. EP-A1-1 252 955 describes an indexable insert intended for a radius cutter. US-A-5,632,576 and JP 2005-319558 describe a radius end mill with interchangeable inserts. US-B2-7,226,249 discloses a replaceable insert for a radius end mill. US-B1-6,497,54O discloses a radius end mill. Object of the invention The inventors of the present invention have found that in center-cutting milling with a radius end mill, the radius end mill is often used with only a small cutting edge portion, which is closest to the axis of rotation of the milling tool, in engagement with the work tool. The inventors have also realized that when milling with a radius end mill according to the prior art, it is required that the radius end mill passes the workpiece relatively many times in order to generate a satisfactorily finished and flat or smooth surface. This is due to the fact that the radius pin cutter generates a waveform or generates grooves / wave valleys that are separated by ridges / wave heights. These ridges or wave heights are often too high in relation to the wave valleys to achieve a satisfactorily flat / smooth surface and the radius cutter must thus be brought to pass the workpiece several times to process these wave heights and further smooth the machined surface. The object of the present invention is to provide an improved and more efficient milling of materials, such as titanium, steel, aluminum, castings or other material. A further object is to provide an improved and more efficient center-cutting milling of materials, such as titanium, steel, aluminum, castings or other material. SUMMARY OF THE INVENTION The above objects of the present invention are achieved by providing a cutting insert for center-cutting milling of material, which insert is arranged to be arranged in a seat defined by a milling body which is located at one of the milling carcasses. defined axis of rotation, the milling body being connectable to a rotatable spindle or holder, and the insert comprising a plurality of cutting edges, at least a first cutting edge of said plurality of cutting edges terminating in or adjacent to a center axis defined by the insert which when the insert is arranged in the seat is intended to coincide with the axis of rotation of the cutter body, the first cutting edge comprising a first edge portion having a first radius which is substantially equal to each point on the first edge portion, and wherein the first cutting edge comprises at least a second edge portion which is flat or has at least one second radius for each point on each second edge portion, turns the at least one second radius is greater than the first radius, the at least one second edge portion is located between the first edge portion and the center axis, one of the at least one second edge portion adjoins the first edge portion, and one of the at least one second edge portion terminates in or adjacent to the center axis. If one of the at least one second edge portion terminates in connection with the center axis, it is meant that it terminates near the center axis and with a small distance to the center axis. In full-radius end mills according to known technology, the respective cutting edge at the front part of the end mill, e.g. a cutting edge that reaches and terminates in the axis of rotation of the end mill, one and the same radius along the entire extent of the cutting edge. The insert according to the present invention provides at least a second edge portion closest to the axis of rotation whose radius deviates from the first edge portion of the cutting edge in that the second edge portion is flat or has a larger radius relative to the first edge portion. According to the present invention, a radius end cutter nose or front is thus flattened or made flatter in relation to full radius end mills according to the prior art whose cutting edge has one and the same radius. Compared to the prior art, wave valves generated by the present invention are shallower than in the prior art, and the wave valleys generated by the present invention are separated by wave heights which have a reduced height relative to the wave valleys, which gives a smoother machined surface. As a result of fewer passes of the milling tool over the workpiece, a machined surface is thus generated which is flatter and smoother by the present invention, whereby a faster finishing of the workpiece and an increased productivity is obtained. The present invention also provides an increased service life for the insert / cutting edge because thinner chips, i.e. Chips of reduced chip thickness, are separated from the workpiece by means of the insert according to the present invention, thereby reducing the load and wear on the insert. Alternatively, productivity can be increased by an increase in tooth feeding, e.g. by increasing the speed of the feed of the workpiece relative to the milling tool, or increasing the rotational speed. An increase in tooth feeding can occur at the expense of the life of the insert, ie. if the tooth feed is increased, the life of the insert can be reduced, and vice versa. By the present invention an improved surface quality of the surface generated by the cutting edges in the workpiece is achieved. The insert according to the present invention thus provides an improved and more efficient milling of materials such as titanium, steel, aluminum, castings or other material, and in particular an improved and more efficient center-cutting milling of materials such as titanium, steel, aluminum, castings. or other material. As stated above, the first edge portion has a first radius which is substantially equal for each point on the first edge portion. This means that the first radius is in principle equal to points on the first edge portion but taking into account any manufacturing tolerances / inaccuracies that may result in insignificant and acceptable deviations in the radius of the points on the first edge portion. If the intended radius for each point on the first edge portion is to be 10 mm, then the permissible range for the radius may be 9.95 to 10.05 mm with regard to manufacturing tolerances. The at least one other radius is outside such a range for manufacturing tolerances. The at least one second edge portion may be in the form of a second edge portion which is flat or has the at least one second radius. The at least one second edge portion may also comprise two or more other edge portions, one or more of which are flat and / or one or more having the at least one second radius. All of the at least one second edge portion may have the at least one second radius. A plurality of other edge portions of a cutting edge may have different other radii relative to each other, whereby a cutting edge may thus comprise a plurality of different other radii. If the at least one second edge portion comprises two or a plurality of second edge portions and comprises a flat second edge portion, the flat second edge portion may advantageously be the second edge portion terminating in or adjacent to the center axis and / or the axis of rotation. The at least one second edge portion may form / define a part of a circle, the second radius of which according to the present invention is larger than the first radius, or may define a part of an ellipse. As defined above, the center axis of the insert is intended and arranged to coincide with the axis of rotation of the cutter body when the insert is arranged in the seat of the cutter body. When the insert is arranged in the seat of the cutter body, the center axis of the insert thus forms a common line with the axis of rotation of the cutter body. l / led a plurality of cutting edges refers to two or more cutting edges. The fact that the edge portion has a radius means that the cutting edge in this portion has a substantially arcuate shape so that the edge portion during center-cutting machining can generate a partial spherical surface. Fladien as a cutting edge has in this context, e.g. the first or second radius of each edge portion is defined as the distance from a point on the cutting edge to an axis about which the cutting edge curves. Each point on the cutting edge, except in the axis of rotation itself, also has a radial distance to the axis of rotation of the cutting tool, said radial distance to the axis of rotation lying in a radial plane perpendicular to the axis of rotation. This radial distance to the axis of rotation does not correspond to the radius of the cutting edge or an edge portion as specified in the appended claims, but can also be used to define the cutting tool and its cutting edges in such a way that the at least one other edge portion has at least one second radius that is “larger” than the first radius is meant here that the at least one second radius is so larger than the first radius that the difference between the first and second radii has a qualitative, or noticeable, effect on the milling operation and on the machined the surface of the workpiece. The present invention is advantageous in precision profile milling and for finishing surfaces, for e.g. depths of about 0.2 mm, but other depths are also possible. The present invention is advantageous for machining relatively flat surfaces of workpieces. The insert can be indexable. The above-mentioned tooth feed is a term or quantity that indicates the feed per tooth / cutting edge / insert. If e.g. a workpiece is fed 1 mm in relation to the milling tool while the milling tool rotates an entire revolution, ie. 360 °, and the milling tool has ten cutting edges in the same radial plane, so the tooth feed is 0.10 mm / tooth. A normal tooth feed is 0.15 mm / tooth. The tooth feed can also be defined according to the following formula, where fz is the tooth feed, when the feed rate, n is the speed and z is the number of inserts in the cutter: According to an advantageous embodiment of the insert according to the present invention. The insert is arranged to be exchangeably arranged in the seat defined by the milling body. According to another advantageous embodiment of the insert according to the present invention, a second cutting edge is terminated by said plurality of cutting edges in or adjacent to the center axis defined by the insert, the second cutting edge comprising a first edge portion with a first radius which is substantially equal to each point on the first edge portion, the second cutting edge comprising at least one second edge portion which is flat or has at least a second radius for each point on the respective second edge portion of the second cutting edge, the at least one second radius of the second edge portion of the second cutting edge being greater than the first radius of the second edge portion of the second cutting edge, the at least one second edge portion of the second cutting edge is located between the first edge portion of the second cutting edge and the center axis, one of the second cutting edge at least one second edge portion adjoins the first edge portion, and one of the second cutting edge at least one second edge portion terminates in or adjacent t ill center axis. By having two cutting edges which reach and terminate the center axis and which have the at least one second edge portion, the above-described effects of the present invention are further enhanced. According to a further advantageous embodiment of the insert according to the present invention, the at least one second edge portion has the at least one second radius. Thus, in this embodiment, the at least one second edge portion is not flat but has a curvature as defined above. By giving the at least one other edge portion a curvature instead of being flat, milling of material is further improved and streamlined by obtaining a good milling and finishing of the workpiece, such as a smooth and flat generated surface, even if the angle between the feed direction of the milling tool, relative to the working styoket, and its axis of rotation deviates from 90 degrees. The milling tool may be mounted in the spindle so that its axis of rotation does not get the correct alignment and other parameters can contribute to the said angle not becoming 90 degrees. There will also be a naturally smooth transition between the at least one second edge portion and the first edge parity, which gives less load and wear on the insert and thus longer life of the insert. According to another embodiment of the insert according to the present invention, the second edge portion which terminates in or adjacent to the center axis forms a substantially right angle with the center axis. By this embodiment, cradle valleys are obtained in the workpiece which are even more flat and shallow, whereby a further improved and more efficient milling is achieved. According to yet another advantageous embodiment of the insert according to the present invention, the first edge portion curves about a first axis, the first radius being the distance from any point on the first edge portion to the first axis, the at least one second edge portion curves around at least one second axis, where the at least one second radius is the distance from any point on each second edge portion to the respective second axis, and the first axis and the at least one second axis intersect the center axis. This embodiment effectively ensures that the second edge portion terminating in or adjacent to the center axis forms a substantially right angle with the center axis, thereby providing wall valleys in the workpiece that are even more planar and shallow, thereby achieving further improved and more efficient milling. According to yet another embodiment of the insert according to the present invention, the length of the at least one second edge portion along the extent of the respective cutting edge is at least 1/100 of the first radius. The inventors of the present invention have found that a cutting edge with dimensions according to this embodiment further improves and streamlines the milling of the workpiece. According to yet another advantageous embodiment of the insert according to the present invention, the length of the at least one second edge portion along the extent of the respective cutting edge is less than 1/5 of the first radius. The inventors of the present invention have found that a cutting edge with dimensions according to this embodiment further improves and streamlines the milling of the workpiece. According to an advantageous embodiment of the insert according to the present invention, the length of the at least one second edge portion along the extent of the respective cutting edge is less than 1/10 of the first radius. The inventors of the present invention have found that a cutting edge with dimensions according to this embodiment further improves and streamlines the milling of the workpiece. According to a further advantageous embodiment of the insert according to the present invention, the at least one second radius is 10 percent larger than the first radius. The inventors of the present invention have found that the milling is further efficient and improved with a cutting edge with dimensions or geometry according to this embodiment. According to another advantageous embodiment of the insert according to the present invention, the at least one second radius is 30 percent larger than the first radius. The inventors of the present invention have found that a cutting edge with dimensions and geometry according to this embodiment even further improves and streamlines the milling of the workpiece. According to yet another advantageous embodiment of the insert according to the present invention, the at least one second radius is less than 1000 times the first radius. The inventors have found that through this embodiment wave valves are obtained in the workpiece which are even more flat and shallow, whereby a further improved and more efficient milling is achieved. Flat and shallower wave valleys in the workpiece consequently give wave heights in the workpiece that are lower in relation to the wave valleys. Flatter wave valleys and lower wave heights in the workpiece give a smoother surface of the workpiece. According to yet another advantageous embodiment of the insert according to the present invention, the at least one second radius is less than ten times the first radius. The inventors have found that through this embodiment wave valves are obtained in the workpiece which are even more flat and shallow, whereby a further improved and more efficient milling is achieved. According to an advantageous embodiment of the insert according to the present invention, the at least one second radius is less than four times the first radius. The inventors have found that by means of this embodiment, the wave dollar workpiece is obtained which is even more flat and shallow, whereby a further improved and more efficient milling is achieved. According to a further advantageous embodiment of the insert according to the present invention, the cutting edge has a tangent at each point on the cutting edge in a transition between the first edge portion and the adjacent second edge portion. Through this smooth transition between the first edge portion and the adjacent 10 15 20 25 30 9 the second edge portion reduces the load on the cutting edge and the insert and extends the life of the insert, especially in milling operations where the angle between the milling tool feed direction, relative to the workpiece, and its axis of rotation deviates from 90 degrees. According to another advantageous embodiment of the insert according to the present invention, at each point on the at least one second edge portion, the at least one second edge portion has a tangent which forms a right angle with the center axis or intersects the center axis outside a rotational surface defined by the first insert. the edge during its rotation about the center axis. By this embodiment there are no indentations in the at least one second edge portion or concave portions along the at least one second edge portion, whereby wall valleys in the workpiece which are even more flat and shallow are obtained and an even more improved and more efficient milling is achieved. According to yet another advantageous embodiment of the insert according to the present invention, at each point on the first edge portion the first edge portion has a tangent which forms a right angle with the center axis or intersects the center axis outside a rotational surface defined by the first cutting edge. during its rotation about the center axis. By this embodiment there are no dents in the first edge portion or concave portions along the first edge portion, whereby wall valleys which are even more flat and shallow are obtained and an even more improved and more efficient milling is achieved. According to yet another advantageous embodiment of the insert according to the present invention, the insert is in the form of a radius cutter insert. In this way, an efficient and improved radius cutter insert is obtained for the reasons stated in connection with the above-mentioned embodiments of the insert. According to an advantageous embodiment of the insert according to the present invention, the insert is in the form of a full-radius cutter insert. In this way, an efficient and improved full-radius end mill insert is obtained for the reasons stated in connection with the above-mentioned embodiments of the insert. The above objects of the present invention are also achieved by providing a tool for center-cutting milling of material, comprising a milling body which is connectable to a rotatable spindle or holder and defines a rotation axis, the milling body comprising a seat located at the axis of rotation for a insert, wherein the tool is further provided with an insert arranged in the seat, and the insert comprises the features specified in any of the appended claims 1 to 18 and / or the features of any of the inserts. the above-described embodiments of the insert according to the present invention. Positive technical effects of this tool according to the present invention and its embodiments correspond to the above-described technical effects mentioned in connection with the insert according to the present invention and its embodiments. The above objects of the present invention are further achieved by providing a device for center-cutting milling of material, comprising a milling body which is connectable to a rotatable spindle or holder and defines an axis of rotation, the milling body comprising a plurality of cutting edges, wherein at least a first cutting edge of said plurality of cutting edges terminating in or adjacent to the axis of rotation of the cutter body, the first cutting edge comprising a first edge portion having a first radius which is substantially equal to each point on the first edge portion, and wherein the first cutting edge comprises at least a second edge portion which is flat or has at least one second radius for each point on the respective second edge portion, the at least one second radius being greater than the first radius, the at least one second edge portion being located between the first edge portion and the axis of rotation, one of the at least one second edge portion being adjacent the first eggpa and one of the at least one other edge portion terminates in or adjacent to the axis of rotation. The positive effects of the device according to the present invention correspond to the effects stated in connection with the above description of the insert according to the present invention. The milling body for the device according to the present invention can also be supplemented and provided with conventional peripheral cutting edges which extend around and along the axis of rotation outside the front portion of the milling body. These so-called peripheral cutting edges can be designed in ways known to those skilled in the art. According to an advantageous embodiment of the device according to the present invention, a second cutting edge is terminated by said plurality of cutting edges in or adjacent to the axis of rotation of the milling body, the second cutting edge comprising a first edge portion having a first radius which is substantially equal to each point on the the first edge portion, the second cutting edge comprises at least a second edge portion which is flat or has at least a second radius for each point on the second edge portion of the second cutting edge, respectively, the at least one second radius of the second edge portion of the second cutting edge being greater than the first radius of the second edge portion of the second cutting edge, the at least one second edge portion of the second cutting edge is located between the first edge portion of the second cutting edge and the axis of rotation, one of the at least one second edge portion of the second cutting edge defines the first edge portion, and one of the at least one other edge portion of the second cutting edge ends in or in the ans slope to the axis of rotation. According to another advantageous embodiment of the device according to the present invention, the milling body has at least four cutting edges. According to a further advantageous embodiment of the device according to the present invention, the at least one second edge portion has the at least one second radius. According to another advantageous embodiment of the device according to the present invention, the second edge portion which terminates in or in connection with the axis of rotation forms a substantially right angle with the axis of rotation. According to yet another advantageous embodiment of the device according to the present invention, the first edge portion curves about a first axis, the first radius being the distance from any point on the first edge portion to the first axis, the at least one second edge portion curves around at least one second axis, where the at least one second radius is the distance from any point on each second edge portion to the respective second axis, and the first axis and the at least one second axis intersect the axis of rotation. According to yet another advantageous embodiment of the device according to the present invention, the length of the at least one second edge portion along the extent of the respective cutting edge is at least 1/100 of the first radius. According to yet another advantageous embodiment of the device according to the present invention, the length of the at least one second edge portion along the extent of the respective cutting edge is less than 1/5 of the first radius. According to an advantageous embodiment of the device according to the present invention, the length of the at least one second edge portion along the extent of the respective cutting edge is less than 1/10 of the first radius. According to a further advantageous embodiment of the device according to the present invention, the at least one second radius is 10 percent larger than the first radius. According to another advantageous embodiment of the device according to the present invention, the at least one second radius is 30 percent larger than the first radius. According to yet another advantageous embodiment of the device according to the present invention, the at least one second radius is less than 1000 times the first radius. According to yet another advantageous embodiment of the device according to the present invention, the at least one second radius is less than ten times the first radius. According to an advantageous embodiment of the device according to the present invention, the at least one second radius is less than four times the first radius. According to a further advantageous embodiment of the device according to the present invention, the cutting edge has a tangent at each point on the cutting edge in a transition between the first edge portion and the adjacent second edge portion. According to another advantageous embodiment of the device according to the present invention, at each point on the at least one second edge portion, the at least one second edge portion has a tangent which forms a right angle with the axis of rotation or intersects the axis of rotation outside a rotation surface defined by the first the cutting edge during its rotation about the axis of rotation. According to yet another advantageous embodiment of the device according to the present invention, at each point on the first edge portion the first edge portion has a tangent which forms a right angle with the axis of rotation or intersects the axis of rotation outside a rotation surface defined by the first cutting edge below it. rotation about the axis of rotation. According to an advantageous embodiment of the tool or device according to the present invention, the tool or device is in the form of a radius pin milling tool. According to an advantageous embodiment of the tool or device according to the present invention, the tool or device is in the form of a full radius milling tool. Positive technical effects of the above-described embodiments of the device according to the present invention correspond to the effects stated in connection with the above description of corresponding embodiments of the insert according to the present invention. According to an advantageous embodiment of the insert and the device according to the present invention, at each point on the respective cutting edge, which terminates in or adjacent to the center / rotation axis, the cutting edge has a tangent which forms a right angle with the center / rotation axis or the center axis. outside a rotation surface defined by the first cutting edge during its rotation about the center / rotation axis. By this embodiment there are no indentations in the respective cutting edge, which terminate in or adjacent to the center / rotation axis, or concave portions along the cutting edge, whereby wall valleys that are even more flat and shallow are obtained and an even more improved and more efficient milling is achieved. According to another advantageous embodiment of the insert and the device according to the present invention, respectively, the first cutting edge and / or the second cutting edge is terminated in the center / rotation axis. According to yet another advantageous embodiment of the insert and the device according to the present invention, one of the at least one second edge portion ends in the center / axis of rotation. The above-described embodiments of the insert, the tool and the device, respectively, can be combined in various possible ways in order to achieve further advantageous embodiments of the insert, the tool and the device, respectively, according to the present invention. The milling body, or tool body, may advantageously be made of a material which is softer than the material of the insert or cutting edge. The insert / cutting edge can e.g. be made of a cemented carbide, e.g. with coating, such as ceramic, while the milling body can be made of steel. Further advantageous embodiments of the insert, tool and device according to the present invention and further advantages of the present invention appear from the detailed description of embodiments. BRIEF DESCRIPTION OF THE DRAWINGS The present invention will now be described, by way of example only, by way of exemplary embodiment and with reference to the accompanying drawings, in which: Fig. 1 Fig. 2 Fig. 3A Fig. 3B Figs. Fig. 5 Fig. 6 Fig. 7A Fig. 7B Fig. 8 Fig. 9 Fig. 10 Fig. 11 Fig. 12 shows a schematic perspective view of a first embodiment of the insert according to the present invention, shows another schematic perspective view of the insert in Fig. 2, shows a schematic plan view of the insert in Figs. 1-2 seen from above, is a schematic enlargement of that portion of the insert in Fig. 3A, shows a schematic detail view of a second embodiment of the insert according to the present invention, is a schematic front view of the insert in Figs. 1-2 seen towards the front of the insert, schematically shows an enlargement of a part of Fig. 5, shows a schematic perspective view of a tool according to the present provided with the insert shown in Figs. 2, is a schematic side view of ver the fabric of Fig. 7 during machining of a workpiece, shows a schematic partial perspective view of an embodiment of the device according to the present invention, shows a schematic front view of the device of Fig. 8 seen towards the front of the device, shows a schematic side view of the device of Figs. Fig. 8 shows a schematic side view of the device of Fig. 10 rotated about 90 degrees about its axis of rotation in relation to Fig. 10, and shows a schematic side view of the device of Fig. 11 but with details removed for illustrative purposes. Detailed Description of Preferred Embodiments With reference to Figs. 1-2, Figs. 3A-B and Figs. 5-6, there is schematically shown a first embodiment of the insert 102 for center-cutting milling of materials according to the present invention. The insert 102 here is in the form of a full radius end mill insert and may be wholly or partly made of a cemented carbide or ceramic. The insert 102 comprises an upper side 104 and a lower side 106, between which sides 104, 106 a continuous mounting hole 108 passes through the insert 102, and thus the insert 102 defines said mounting heel 108. The mounting heel 108 is defined by an inner wall 110. The cross-section of the mounting hole 108 is circular in this embodiment, but other shapes of the mounting heel are possible. The insert 102 is arranged to be exchangeably or removably arranged in a seat 114 defined by a milling body 112 (see Fig. 7A) by means of mounting means 116 which comprise said mounting holes 108. The insert 102 has a rear side 118 arranged to abut the inner part of the milling body 112. seat 114 when the insert is mounted to the cutter body 112. Referring to Fig. 3A, the insert 102 defines a center axis 120 which when the insert 102 is provided in the seat 114 of the cutter body 112 is intended to coincide with the axis of rotation 122 of the cutter body 112 ( see Fig. 7A-B). The insert 102 has a first cutting edge 124 defined by a first chip surface 126 and a first clearance surface 128. The first clearance surface 128 extends between the underside 106 of the insert and the first chip surface 126, and the first clearance surface 128 forms an acute angle with the first the chip surface 126 and an obtuse angle with the underside 106. Between the first chip surface 126 and the top surface 104 of the insert 102 extends a first intermediate surface 130 which together with the first chip surface 126 defines a chip channel 132, or chute, which serves as a chip space. for chips separated from the workpiece 134, which constitutes the material being processed. The work piece 134 may comprise, for example, titanium, steel, aluminum, castings or other material. The insert 102 also has a second cutting edge 136 defined by a second chip surface 138 (see Fig. 5) and a second clearance surface 140 which extends between the top of the insert 104 and the second chip surface 138. The second clearance surface 140 forms an acute angle with the second the chip surface 138 and an obtuse angle with the upper side 104. Between the second chip surface 138 and the underside 106 of the insert 102 a second intermediate surface 142 extends which together with the second chip surface 138 defines a chip channel 144. The insert 102 according to this embodiment is not indexable. , but according to other aspects of the insert of the present invention, it is possible to design the insert 102 so that it is indexable. How the insert in Figs. 1-2 should be reshaped to become indexable will be readily apparent to those skilled in the art. The insert 102 has a front portion 146 through which the center axis 120 of the insert 102 intersects. In the front portion 146, the first and second cutting edges 124, 136 reach and terminate in the center axis 120 defined by the insert 102, the two cutting edges 124, 136 meeting in the center axis 120 and in the front portion 146 (see Figs. 5 and 6). . Referring to Figs. 3A and Fig. 3B, the first embodiment of the insert 102 is described with reference to the first cutting edge 124. In this embodiment, however, the second cutting edge 136 is similarly formed and the one described below is applicable. also for the second cutting edge 136. Each cutting edge 124 comprises a first edge portion 148 with a first radius Rj which is substantially equal for each point on the first edge portion 148. The first radius F1 is the distance from any point on the first edge portion 148 to a first shaft 150 about which the first edge portion 148 curves. Each cutting edge 124 comprises a second edge portion 152 (in Figs. 3B and 4 the corresponding second edge portion of the second cutting edge 136 is indicated by reference numeral 153). In other embodiments of the insert of the present invention, the cutting edge may include two or more other edge portions. The second edge portion 152 has at least a second radius H2 for each point on the second edge portion 152, the at least one second radius Rz being larger than the first radius Fn. The second radius H2 is the distance from any point on the second edge portion 152 to a second axis 154 about which the second edge portion 152 curves. The first shaft 150 and the second shaft 154 can both intersect the center axis 120. The second edge portion 152 is located between the first edge portion 148 and the center axis 120 of the insert 102 and abuts the first edge portion 148. The second edge portion 152 terminates in the center axis 120. and forms a substantially right angle with the center axis 120. In this embodiment, the first edge portion 148 extends from the second edge portion 152 to its meeting / intersection 156 with the intermediate surface 130. If the cutting edge 124 according to another embodiment of the present invention comprises three second edge portions, a second edge portion would adjoin the first edge portion, another of the second edge portions would be connected in the center axis, while the third of the second edge portions would be located between the other two the other edge portions. This is the case if the cutting edge includes more than three other edge portions. At each point on the cutting edge 124 in a transition 158 between the first edge portion 148 and the adjacent second edge portion 152, the cutting edge 124 may have a tangent, giving a smooth transition without any sharp corner between the first and second edge portions 148, 152 and reduced wear. on the insert 102. At each point on the at least one second edge portion 152 and the first edge portion 148, the respective edge portion 148, 152 may have a tangent which forms a right angle with center axis 120 or intersects center axis 120 outside a rotational surface which is defined by the first cutting edge 124 during its rotation about the center axis 120, whereby no indentations or concave portions occur in the edge portions 148, 152 along the extent of the respective edge portions 148, 152. The first radius F11 can e.g. be 5-32 mm. However, other dimensions are possible. The length of the at least one second edge portion 152 along the extent of the respective cutting edge 124 may be at least 1/100 of the first radius F11 and less than 1/5 of the first radius F11. The length of the at least one second edge portion 152 along the extent of the respective cutting edge 124 may even be less than 1/10 of the first radius F11. In the illustrated first embodiment of the insert 102 of the present invention, the second radius F12 is approximately two times larger than the first radius F11. If F11 is about 10 mm, then F12 is about 20 mm. However, other dimensions and conditions are possible. Advantageously, the at least one second radius F12 is thirty percent larger than the first radius F11. Advantageously, the at least one second radius F12 is less than four times the first radius F11. Referring to Fig. 4, a second embodiment of the insert 202 according to the present invention is shown. This embodiment substantially corresponds to the first embodiment of the insert 102 shown, but has a second cutting edge 224 with a different shaped second edge portion 252. Instead of having a radius and being curved about an axis, as is the case with the first insert 102, the cutting edge 202 second edge portion 252 flat. This second edge portion 252 also terminates in the center axis 220 of the insert 202 and forms a substantially right angle with the center axis. At each point on the cutting edge 224 in a transition 258 between the first edge portion 248 and the adjacent second edge portion 252, the cutting edge 224 has a tangent, which provides a smooth transition without any sharp corner between the first and second edge portions 248, 252. Referring to Figs. 5 and 6, it is shown how the first cutting edge 124 and the second cutting edge 136 meet in the center axis 120. The two cutting edges 124, 136 lie in principle in one and the same plane. The design of the front edge portion 160 where the two cutting edges 124, 136 meet may have different designs, and the front edge portion 160 may e.g. having a more prominent S-shape seen against the front portion 146 of the insert 102 in the direction of the center axis 120. Referring to Figs. 7A and 7B, a milling tool for center-cutting milling of materials according to the present invention is shown schematically, in the form 18 25 30 18 of a full radius end milling tool for chip removal metalworking. The milling tool has a mounted insert 102, 202 as described above in connection with Figs. 1-6. The milling tool comprises a milling body 112 which defines an axis of rotation 122. The cutter body 112 has a front main body 162 provided with a seat 114 for receiving and holding the insert 102 and the cutter body 112 has a rear part 164 for connection to, by attachment to, a rotatable spindle or tool holder (not shown) in a manner known to those skilled in the art. way. The front main part 162 of the milling cutter 112 comprises two spaced apart legs 166, 168 and the seat 114 is in the form of a pocket 114 defined by the two legs 166, 168 of the milling cutter 112. In the mounted position the back 118 of the insert 102 is arranged to abut a bottom surface 170 between the two legs 166, 168. The respective legs 166, 168 are provided with a through hole 172 which coincides with the mounting hole 108 of the insert when the insert is received in the seat 114. The tool mounting means 116 for mounting the insert 102 includes a mounting member 174, here in the form of a screw, arranged to engage the holes 172, 168 of the legs 166, 168 and the mounting holes 108 of the insert 102 to thereby lock the insert 102 in the seat 114. As As can be seen from Fig. 7A, the seat 114 is located at the axis of rotation 122 defined by the milling body 112. The mounting element 174 may be provided with at least one outer thread and the holes of the legs 166, 168 may each be provided with at least one inner thread. According to other aspects of the tool according to the present invention, one leg may be provided with a through hole while the other leg lacks such a hole, or the other leg may have only a recess which may be provided with at least one inner thread which opens. up against the other leg and which can receive a mounting element, such as a screw. However, additional alternative mounting means for arranging the insert at the milling body are possible, e.g. the hole for one of the legs may lack an internal thread so that only one leg hole is threaded. The mounting element 174 also does not need to be threaded but can be locked in other ways known to those skilled in the art. The mounting means may instead include a clamp for fixing the insert 102 in the seat 14, etc. Referring to Fig. 7B, the milling body 112 rotates in a direction of rotation 176 about its axis of rotation 122 while the workpiece 134 is fed relative to the milling body 112 of the milling tool. a feed direction 178 during profile milling. In finishing, it is common for the milling tool to be fed relative to the workpiece 134 along a surface of the workpiece 134. A full radius pin milling tool is often used with a feed direction 178 which forms a substantially perpendicular angle to the axis of rotation 122 of the milling tool, but other feed directions are also possible. As shown in Fig. 7B, the insert 102 is mounted to the rotating milling cutter 112 so that the cutting surface 126 of a cutting edge 124 leads before the clearing surface 128 of the cutting edge 124 in the direction of rotation 176. In the embodiments described above, the milling body is advantageously made of a material softer than the material of the insert. The inserts can e.g. be made of a cemented carbide while the milling body is made of steel. Referring to Figs. 8-12, there is schematically shown a device for centrifugal milling of materials according to the present invention in the form of a full-radius pin milling tool for prestressing metal machining, which unlike the tool in Figs. 7A-7B is not provided with interchangeable inserts but have cutting edges that are integrated with the milling cup. The device comprises a milling body 312 with a front main part 362 and a rear part 364. The rear part 364 can in a manner known to those skilled in the art be provided with mounting means, such as a threaded part, for arranging the milling body 312 at a coupling element (not shown). in turn is arranged for the attachment in a rotatable tool holder or arranged for attachment in another intermediate unit which in turn is arranged for the attachment in a rotatable tool holder / spindle. Alternatively, the milling body 312 may be integrated with such a coupling element. The mantle surface of the coupling element can have a substantially cylindrical basic shape. The front main part 362 defines in the example shown a rotating surface which has a substantially spherical basic shape. The cutter body 312 defines a axis of rotation 322 as well as a longitudinal center axis of the cutter body 312. The cutter body 312 is provided with four peripheral cutting edges 324, 325, 336, 337 which are integrated with the cutter body 312 and which each extend along a helical shape. A first cutting edge 324 and a second cutting edge 336 of the four cutting edges reach and terminate in the axis of rotation 322 of the cutter body 312, while the two second cutting edges 325, 337 terminate before the axis of rotation 322. The cutter body 312 includes four grooves 313, 315, 317. 319 each extending along a helical shape from the front portion 346 of the cutter body 312 toward the rear portion 364. The enemies 313, 315, 317, 319 serve as a chip space for chips separated from the workpiece. Respective cutting edges 324, 325, 336, 337 are arranged between two grooves 313, 315, 317, 319 and also extend from the front portion 346 of the milling body 312 towards the rear part 364. In the embodiments where the milling body 312 is integrated with a coupling element which is arranged to be connected to a spindle or other intermediate unit, the cutting edges 324, 325, 336, 337 can continue their extension in a manner known to the person skilled in the art and can extend along the axial extent of the coupling element and t. ex. along a helical shape around the periphery of the coupling element, wherein the circumferential surface of the coupling element may have a cylindrical basic shape. Similar to the cutting edges 124, 136 in Figs. 1-6, the first cutting edge 324 includes a first edge portion 348 having a first radius R, which is substantially equal to each point on the first edge portion 348, and the second the cutting edge 336 also comprises a first edge portion 349 with a first radius H1 which is substantially equal for each point the first edge portion 349 of the second cutting edge 336. The first cutting edge 324 comprises at least a second edge portion 352 which is flat or has at least a second radius H2 for each point on the second edge portion 352 of the first cutting edge 324. The second cutting edge 336 also comprises at least a second edge portion 353 which is flat or has at least one second radius H2 for each point on the second edge portion 356 of the second cutting edge 336. The at least one second radius Fïz is larger than the first radius H1. For each of the first and second cutting edges 324, 336, the at least one second edge portion 352, 353 is located between the first edge portion 348, 349 and the axis of rotation 322, the second edge portion 352, 353 defining the first edge portion 348, 349, and the the second edge portion 352, 353 terminates in the axis of rotation 322. The second edge portion 352, 353, which terminates in the axis of rotation 322, forms a substantially right angle with the axis of rotation 322. At each point on the first and second cutting edges 324, 336 in a transition 358, 359 between the first edge portion 348, 349 and the adjacent second edge portion 352, 353, the cutting edge 324, 336 may have a tangent. At each point on the at least one second edge portion 352, 353 and the first edge portion 348, 349, the respective edge portion 348, 349, 352, 353 may have a tangent which forms a right angle with axis of rotation 322 or intersects the axis of rotation 322 outside a rotation surface defined by the first cutting edge 324 during its rotation about the axis of rotation 322. Dimensions of the first radius Fn and the second radius H2 and the length of the at least one second edge portion 352, 353 along the extent of the respective cutting edges 324, 336 and the conditions between them for the device according to the present invention may correspond to the dimensions and conditions described Above the inserts of the present invention. However, other dimensions and dimensions are possible. In the above-described embodiments of the device according to the present invention, the milling body may be made of a material which is softer than the material of the cutting edges. The cutting edges can e.g. be made of a cemented carbide while the milling body is made of steel. Alternatively, the milling cutter and the cutting edges are made of the same material. The radius that each edge portion has in the embodiments described above is defined as the distance from a point on the cutting edge to an axis around which the edge portion curves. Each point on the cutting edge, except in the axis of rotation itself, also has a radial distance to the axis of rotation of the milling body, where said radial distance to the axis of rotation lies in a radial plane perpendicular to the axis of rotation. This radial distance to the axis of rotation does not correspond to the radius of the respective edge portion as stated in the embodiments described above. Respective milling bodies in the embodiments described above can be arranged for profile milling such as precision profile milling of materials, e.g. for finishing with a cutting depth of approx. 0.2 mm, but other cutting depths are also possible. Other details and surfaces of the inserts and devices described above and angles between them, in addition to those discussed above, can be arranged in ways known to those skilled in the art. The invention is not to be construed as limited to the embodiments illustrated above, but may be modified and modified in many ways within the scope of the appended claims. Each embodiment can, for example, be provided with more or fewer cutting edges, and the respective cutting edge which terminates in or adjacent to the center / rotation axis can be provided with a plurality of other edge portions which may have different other radii.
权利要求:
Claims (37) [1] A insert (102; 202) for center-cutting milling of material (134), the insert being arranged to be arranged in a seat (114) defined by a milling body (112) which is located at a rotation axis (122) defined by the milling body, wherein the milling body is connectable to a rotatable spindle or holder, and the insert comprises a plurality of cutting edges (124, 136; 224), where at least a first cutting edge (124; 224) of said plurality of cutting edges terminates in or adjacent to one defined by the insert center shaft (120; 220) which when the insert is arranged in the seat is intended to coincide with the axis of rotation of the milling body, the first cutting edge comprising a first edge portion (148; 228) with a first radius (H1) which is substantially equal to each point on the first edge portion, characterized in that the first cutting edge comprises at least a second edge portion (152; 252) which is flat or has at least a second radius (H2) for each point on the respective second edge portion, wherein the at least one second radius is larger than the first radius, in that the at least one second edge portion is located between the first edge portion and the center axis, in that one of the at least one second edge portion adjoins the first edge portion, and in that one of the at least one second edge portion terminates in or adjacent to the center axis. [2] Insert according to claim 1, characterized in that a second cutting edge (136) of said plurality of cutting edges (124, 136) terminates in or adjacent to the center axis (120) defined by the insert, in that the second cutting edge comprises a first edge portion with a first radius (H1) which is substantially equal for each point on the first edge portion, in that the second cutting edge comprises at least a second edge portion (153) which is flat or has at least a second radius (H2) for each point on the second cutting portion of the second cutting edge, respectively, the at least one second radius of the second cutting portion of the second cutting edge being larger than the first radius of the first cutting portion of the second cutting edge, in that the second cutting portion of the second cutting edge is located between the first cutting portion of the second cutting edge and the center axis, in that one of the at least one second edge portion of the second cutting edge adjoins the first edge portion, and in that one of the at least one second edge portion of the second cutting edge a ends in or adjacent to the center axis. 10 15 20 25 30 23 [3] Insert according to Claim 1 or 2, characterized in that the at least one second edge portion (152, 153) has the at least one second radius (H2). [4] Cutting according to one of Claims 1 to 3, characterized in that the second edge portion (152, 153) which terminates in or adjacent to the center axis (120) forms a substantially right angle with the center axis. [5] Cutting according to any one of claims 1 to 4, characterized in that the first edge portion (148) curves about a first axis (150), the first radius (H1) being the distance from any point on the first edge portion to the the first axis, that the at least one second edge portion (152, 153; 252, 253) curves around at least one second axis (154), the at least one second radius (H2) being the distance from any point on the respective second edge portion to and the second axis, and that the first axis and the at least one second axis intersect the center axis (120; 220). [6] Insert according to one of Claims 1 to 5, characterized in that the length of the at least one second edge portion (152, 153) along the extent of the respective cutting edge (124, 136) is at least 1/100 of the first radius (H1). [7] Insert according to one of Claims 1 to 6, characterized in that the length of the at least one second edge portion (152, 153) along the extent of the respective cutting edge (124, 136) is less than 1/5 of the first radius (H1). [8] Insert according to Claim 7, characterized in that the length of the at least one second edge portion (152, 153) along the extent of the respective cutting edge (124, 136) is less than 1/10 of the first radius (H1). [9] Insert according to one of Claims 1 to 8, characterized in that the at least one second radius (H2) is 10 per cent larger than the first radius (H1). [10] Insert according to Claim 9, characterized in that the at least one second radius (H2) is 30 per cent larger than the first radius (H1). 10 15 20 25 30 24 [11] Insert according to one of Claims 1 to 10, characterized in that the at least one second radius (F12) is less than 1000 times the first radius (Fäj). [12] Insert according to Claim 11, characterized in that the at least one second radius (H2) is less than ten times the first radius (F11). [13] Insert according to Claim 12, characterized in that the at least one second radius (H2) is less than four times the first radius (F11). [14] Insert according to one of Claims 1 to 13, characterized in that at each point on the cutting edge (124, 136; 224) in a transition (158; 258) between the first edge portion (148; 248) and the adjacent second edge portion (152 ; 252) the cutting edge has a key. [15] Cutting according to one of Claims 1 to 14, characterized in that at each point on the at least one second edge portion (152; 252), the at least one second edge portion has a tangent which forms a right angle with the center axis (120; 220) or cuts the center axis outside a rotational surface defined by the first cutting edge (124; 224) during its rotation about the center axis. [16] Cutting according to one of Claims 1 to 15, characterized in that at each point on the first edge portion (148; 248) the first edge portion has a tangent which forms a right angle with the center axis (120; 220) or cuts the center axis outside a surface of rotation defined by the first cutting edge (124; 224) during its rotation about the center axis. [17] Insert according to one of Claims 1 to 16, characterized in that the insert (102; 202) is in the form of a radius cutter insert. [18] Insert according to one of Claims 1 to 17, characterized in that the insert (102; 202) is in the form of a full-radius end mill insert. 10 15 20 25 30 25 [19] A tool for center-cutting milling of material (134), comprising a milling body (112) which is connectable to a rotatable spindle or holder and defines a rotation shaft (122), the milling body comprising a seat (114) located at the rotating shaft intended for a insert (102; 202), the tool further being provided with an insert provided in the seat, characterized in that the insert comprises the features stated in any one of claims 1 to 18. [20] A device for center-cutting milling of material, comprising a milling body (312) which is connectable to a rotatable spindle or holder and defines a axis of rotation (322), the milling body comprising a plurality of cutting edges (324, 325, 336, 337), wherein at least one first cutting edge (324) of said plurality of cutting edges terminates in or adjacent to the axis of rotation of the milling body, the first cutting edge comprising a first edge portion (348) having a first radius (F11) which is substantially equal to each point on the the first edge portion, characterized in that the first cutting edge comprises at least one second edge portion (352) which is flat or has at least a second radius (H2) for each point on the respective second edge portion, the at least one second radius being larger than the first radius, in that the at least one second edge portion is located between the first edge portion and the axis of rotation, in that one of the at least one second edge portion adjoins the first edge portion and in that one of the at least one second edge portion terminates in or adjacent to the axis of rotation. [21] Device according to claim 20, characterized in that a second cutting edge (336) of said plurality of cutting edges 324, 325, 336, 337) terminates in or adjacent to the axis of rotation (322) of the milling body (312), in that the second cutting edge comprises a first edge portion (349) having a first radius (Ri) which is substantially equal to each point on the first edge portion, in that the second cutting edge comprises at least a second edge portion (353) which is flat or has at least a second radius ( F12) for each point on the respective second edge portion of the second cutting edge, the at least one second radius of the second edge portion of the second cutting edge being greater than the first radius of the first edge portion of the second cutting edge, in that the at least one second edge portion of the second cutting edge is located between the first edge portion of the second cutting edge and the axis of rotation, in that one of the at least one second edge portion of the second cutting edge adjoins the first edge portion, and in that one of the second cutting edges at least one second edge portion of the shaft terminates in or adjacent to the axis of rotation. [22] Device according to claim 20 or 21, characterized in that the at least one second edge portion (352, 353) has the at least one second radius (H2). [23] Device according to any one of claims 20 to 22, characterized in that the second edge portion (352, 353) which terminates in or adjacent to the axis of rotation (322) forms a substantially right angle with the axis of rotation. [24] Device according to any one of claims 20 to 23, characterized in that the first edge portion (348, 349) curves about a first axis, the first radius (H1) being the distance from any point on the first edge portion to the first the axis, that the at least one second edge portion (352,353) curves about at least one second axis, the at least one second radius (H2) being the distance from any point on the respective second edge portion to the respective second axis, and that the first axis and the at least one other shaft intersects the axis of rotation (322). [25] Device according to any one of claims 20 to 24, characterized in that the length of the at least one second edge portion (352, 353) along the extent of the respective cutting edge (324, 336) is at least 1/100 of the first radius (H1). [26] Device according to any one of claims 20 to 25, characterized in that the length of the at least one second edge portion (352, 353) along the extent of the respective cutting edge (324, 336) is less than 1/5 of the first radius (H1). [27] Device according to claim 26, characterized in that the length of the at least one second edge portion (352, 353) along the extent of the respective cutting edge (324, 336) is less than 1/10 of the first radius (H1). [28] Device according to one of Claims 20 to 27, characterized in that the at least one second radius (H2) is 10 per cent larger than the first radius (H1). [29] Device according to claim 28, characterized in that the at least one second radius (H2) is 30 percent larger than the first radius (H1). [30] Device according to one of Claims 20 to 29, characterized in that the at least one second radius (H2) is less than 1000 times the first radius (H1). [31] Device according to claim 30, characterized in that the at least one second radius (H2) is less than ten times the first radius (H1). [32] Device according to claim 31, characterized in that the at least one second radius (H2) is less than four times the first radius (H1). [33] Device according to one of Claims 20 to 32, characterized in that at each point on the cutting edge (324, 336) in a transition (358, 359) between the first edge portion (348, 349) and the adjacent second edge portion (352, 353) ) the cutting edge has a key. [34] Device according to one of Claims 20 to 33, characterized in that at each point on the at least one second edge portion (352, 353) the at least one second edge portion has a tangent which forms a right angle with the axis of rotation (322) or intersects the axis of rotation outside a rotation surface defined by the first cutting edge (324) during its rotation about the axis of rotation. [35] Device according to any one of claims 20 to 34, characterized in that at each point on the first edge portion (348, 349) the first edge portion has a tangent which forms a right angle with the axis of rotation (322) or intersects the axis of rotation outside a rotational surface defined of the first cutting edge (324) during its rotation about the axis of rotation. [36] Tool or device according to one of Claims 19 to 35, characterized in that the tool or device is in the form of a radius pin milling tool. 28 [37] Tool or device according to one of Claims 19 to 36, characterized in that the tool or device is in the form of a full-radius pin milling tool.
类似技术:
公开号 | 公开日 | 专利标题 SE1050877A1|2012-02-28|Cutting with radius section, tools and device for milling JP5967330B1|2016-08-10|Cutting insert and cutting edge exchangeable rotary cutting tool JP5470478B2|2014-04-16|Face milling JP2011126008A|2011-06-30|Device for milling JP5855813B2|2016-02-09|Solid step drill US8123439B2|2012-02-28|Slotting milling cutter for machining with a high feed and a low pass depth US7063487B2|2006-06-20|Tool and cutting insert for the fine turning of grooves in workpieces US20100226726A1|2010-09-09|Shank drill JP4706284B2|2011-06-22|Insert detachable rolling tool WO2015037617A1|2015-03-19|Replaceable-cutting-edge rotary cutting tool and insert used in same WO2007013447A1|2007-02-01|Radius end mill and cutting method US20170274461A1|2017-09-28|Drill and drill head US20150258617A1|2015-09-17|Ball-end mill and insert CN109641293B|2020-10-20|Cutting insert and indexable insert type rotary cutting tool JP4816723B2|2011-11-16|insert JP2015100881A|2015-06-04|Insert and tip replaceable ball end mill fitted with insert JP2017080864A|2017-05-18|Cutting edge exchange-type reamer and reamer insert CN109414771B|2019-12-20|Cutting insert and indexable insert type rotary cutting tool JP4710858B2|2011-06-29|Insert detachable rolling tool JP5652540B2|2015-01-14|Guide pad, cutting tool body and cutting tool JPWO2018074542A1|2019-06-24|Cutting insert and cutting edge exchangeable rotary cutting tool RU158628U1|2016-01-20|END MILL WITH CHANGEABLE CUTTING PLATES WITH HIGH RESISTANCE JP7006179B2|2022-01-24|Cutting inserts and cutting tool with replaceable cutting edge EP3505284B1|2022-02-09|Cutting insert, and indexable rotational cutting tool JP2021160000A|2021-10-11|Cutting edge replaceable type formed end mill, and end mill body of cutting edge replaceable type formed end mill
同族专利:
公开号 | 公开日 CN102407370A|2012-04-11| CN102407370B|2017-03-01| KR20120026446A|2012-03-19| US8596934B2|2013-12-03| EP2422907B1|2015-03-18| EP2422907A1|2012-02-29| JP5848063B2|2016-01-27| KR101671534B1|2016-11-01| SE535282C2|2012-06-12| US20120051850A1|2012-03-01| JP2012045705A|2012-03-08|
引用文献:
公开号 | 申请日 | 公开日 | 申请人 | 专利标题 US4588332A|1982-11-03|1986-05-13|General Electric Company|Self-sharpening tool constructions having chip-grooves| JPH01228711A|1988-03-09|1989-09-12|Mitsubishi Heavy Ind Ltd|Ball end mill tool| JPH04152015A|1990-10-12|1992-05-26|Mitsubishi Heavy Ind Ltd|Ball end mill| US5348426A|1993-01-08|1994-09-20|Krupp Ernest E|Ball nose cutter having a single cutter insert| DE4312401A1|1993-04-16|1994-10-20|Widia Heinlein Gmbh|Insert| DE19624342C1|1996-06-19|1997-12-11|Walter Ag|Cutting insert and milling cutter, in particular ball end mill or copy milling cutter| US5915888A|1997-10-01|1999-06-29|Minicozzi; Alfonso|Rotary cutting tool assembly| US6497540B1|1998-02-05|2002-12-24|Kabushiki Kaisha Toshiba|Endmill and cutting method| JP2000141118A|1998-09-11|2000-05-23|Sumitomo Electric Ind Ltd|Ball end mill| KR100291563B1|1998-11-12|2001-07-12|송호근|Spheric rolling-cutting tool| IL132261A|1999-10-07|2003-09-17|Iscar Ltd|Cutting tool assembly and cutting insert therefor| US20020159846A1|2001-04-26|2002-10-31|Nobukazu Horiike|Indexable insert| JP2003251514A|2002-02-28|2003-09-09|Hitachi Tool Engineering Ltd|Cutting edge tip replacement type ball end mill| CN1732061B|2002-12-26|2010-04-28|三菱综合材料神户工具株式会社|Radius end mill| JP2005319558A|2004-05-11|2005-11-17|Hitachi Tool Engineering Ltd|Cutting edge replaceable-type finishing radius end mill| US7226249B2|2004-10-29|2007-06-05|Mitsubishi Materials Corporation|Ball nose cutting insert and ball end mill thereof| SE528710C2|2005-06-01|2007-01-30|Sandvik Intellectual Property|Indexable cutter with the coupling means arranged on a release surface| IL178813A|2006-10-23|2010-06-30|Iscar Ltd|Tangential cutting insert having a base protrusion seating arrangement| SE530527C2|2007-02-08|2008-07-01|Seco Tools Ab|Cutting tools with multiple channels that define different profiles and method| DE102007010163A1|2007-02-28|2008-09-04|Sandvik Intellectual Property Ab|Spherical-head milling cutter for producing any type of work-piece surfaces has a shank and a cutting part with a cutting edge lying on a sphere's surface| CN201151006Y|2007-08-08|2008-11-19|长禹工业有限公司|Improved milling cutter| JP5267556B2|2008-03-31|2013-08-21|三菱マテリアル株式会社|Radius end mill and cutting insert| JP2009241190A|2008-03-31|2009-10-22|Sumitomo Electric Hardmetal Corp|Cbn radius end mill| US8061396B2|2009-01-16|2011-11-22|Maclennan Charles|Tooth for a circular saw or mower drum| IL202196A|2009-11-17|2015-03-31|Kennametal Inc|Optimization of cutting edge geometry in rounded nose end mills|US8939683B1|2004-12-21|2015-01-27|Robert Alvin White|Inverse square tool form| EP2855060A2|2012-05-24|2015-04-08|Gershon System Ltd.|Method for designing a cutting edge of a cutting tool, cutting tools comprising the same, and cutting elements with multiple such cutting portions| US10265784B2|2012-10-29|2019-04-23|Kyocera Corporation|Ball end mill| US20140212227A1|2013-01-25|2014-07-31|Michael Bitner|Two sided milling tool cutter insert and holder| EP3046708A1|2013-09-17|2016-07-27|Gershon System Ltd.|Cutting element and a method of cutting using the same| JP5984777B2|2013-10-23|2016-09-06|三菱マテリアル株式会社|Ball end mill| US10850335B2|2016-10-21|2020-12-01|Mitsubishi Hitachi Tool Engineering, Ltd.|Cutting insert and cutting edge-interchangeable rotary cutting tool| JP2019104081A|2017-12-12|2019-06-27|三菱日立ツール株式会社|Cutting insert and blade edge replacing type rotary cutting tool| CN109262039B|2018-10-29|2020-10-16|株洲钻石切削刀具股份有限公司|Multifunctional profile milling cutter| CN109262038B|2018-10-29|2020-06-02|株洲钻石切削刀具股份有限公司|Multifunctional ball head milling cutter|
法律状态:
2016-03-29| NUG| Patent has lapsed|
优先权:
[返回顶部]
申请号 | 申请日 | 专利标题 SE1050877A|SE535282C2|2010-08-27|2010-08-27|Cutting with radius section, tools and device for milling|SE1050877A| SE535282C2|2010-08-27|2010-08-27|Cutting with radius section, tools and device for milling| US13/212,367| US8596934B2|2010-08-27|2011-08-18|Milling insert, a tool and a device for milling| EP11178058.1A| EP2422907B1|2010-08-27|2011-08-19|A milling insert, a tool and a device for milling| KR1020110085921A| KR101671534B1|2010-08-27|2011-08-26|A milling insert, a tool and a device for milling| JP2011184626A| JP5848063B2|2010-08-27|2011-08-26|Turning inserts, turning tools and equipment| CN201110261637.2A| CN102407370B|2010-08-27|2011-08-29|Milling cutting insert, the cutter for milling and device| 相关专利
Sulfonates, polymers, resist compositions and patterning process
Washing machine
Washing machine
Device for fixture finishing and tension adjusting of membrane
Structure for Equipping Band in a Plane Cathode Ray Tube
Process for preparation of 7 alpha-carboxyl 9, 11-epoxy steroids and intermediates useful therein an
国家/地区
|