The present application is a U.S. National Stage of International Patent Application No. PCT/AT2007/000069 filed Feb. 12, 2007 which published as WO 2007/101281 on Sep. 13, 2007, and claims priority of Austrian Patent Application No. A 379/2006 filed Mar. 7, 2006.
1. Field of the Invention
The invention relates to an indexable insert for a milling tool.
The invention relates to an indexable insert for a milling tool for machining crankshafts or camshafts wherein the insert includes at least one mounting surface having a bore for fixing the insert to a rotatable tool part and at least one cutting face forming cutting edges with the lateral surfaces.
Furthermore, the invention relates to a milling tool, in particular, a milling tool for machining crankshafts or camshafts.
2. Discussion of Background Information
Inserts for milling tools, in particular, milling tools for machining crankshafts, generally have a wedge angle of 90°, i.e., the angle on the cutting edge from the side face to the cutting face of the insert. When installed in the milling tool, the cutting angle of the insert is negative and has a value of approx. −8° to −12°. Such an arrangement is known in the art as “negative (insert) geometry.”
In use, the milling tool that utilizes a wedge angle of 90° produces a high edge-holding ability of the insert. However, the negative geometry causes strong cutting forces during cutting.
Furthermore, strong cutting forces on the milling tool subject the transmission drive of the milling cutter to high loads. However, this arrangement must be free from play and may not permit any chatter vibrations at all.
A reduction of the cutting forces acting on an insert and thus a reduction in the load on the milling cutter drive can be achieved, as one skilled in the art is aware, utilizing a so-called positive geometry of the cutting edge. With a cutting angle of less than 90°, a wedge angle of the insert on the cutting edge of 82° to 70° should be provided.
Attempts have been made to use indexable inserts utilizing a cutting cavity recessed from the cutting edge on all sides, and in this manner to create a positive geometry of the cutting edge of the milling tool. Although this geometry of the cutting edge of the insert can largely meet the expectations with respect to a reduction of the cutting forces, and thus cause a reduction of the load on the tool drive (working free from play), it has the disadvantage of being more complicated to produce, has a low cutting edge-holding ability and has an insert geometry associated with high dimensional tolerances and uneven or unmachined sintered bearing surfaces.
The invention relates to an indexable insert for a milling tool of the type mentioned at the outset, which causes a high chip removal and with reduced cutting forces in the tool, in particular, when used in the machining of crankshafts. The insert also has a largely positive geometry of the cutting edge, reduces the cutting pressure on the cutting faces in the area of the cutting edge, has a high manufacturing accuracy and ensures high cost effectiveness as well as insert quality in terms of manufacturing technology.
Furthermore, the invention relates to a milling tool which runs smoothly with reduced drive power consumption at a high cutting capacity.
The invention also provides for an indexable insert that has a centrically symmetrical cutting edge contour on at least one side, wherein, in plan view, the cutting face has a concave wedge shape or trough shape utilizing an angle “α” of the wedge base or trough base is defined relative to the mounting surface and, on the opening side of the angle “α”, the cutting edge formed by the mounting surface (or the lateral surface) and the cutting face is rounded.
The advantages attained with the invention are essentially that the cutting edge contour is adjusted to the criteria of a high chip removal during milling and for an indexing of the insert. The cutting face is thereby embodied such that, on the one hand, a desired geometry of the cutting edge is realized, and, on the other hand, can guarantee a secure non-displaceable support of the insert. In order to create a cutting contour shape that is favorable for milling, curvatures are provided on two corners lying opposite one another. A wedge angle, that is necessary for a positive geometry in the round areas of the insert, is obtained through an angular position of the concave cutting face base relative to the mounting surface.
According to a preferred embodiment of an insert according to the invention, the wedge angle “κ” (kappa) of the cutting edge, which is measured perpendicular to the wedge base or trough base, is between 50° and 85°.
A wedge angle of this type permits an advantageous positioning of the insert in the milling cutter and provides a high cutting edge-holding ability or a low risk of cutting edge chips in the highly stressed zones.
If, as can be advantageously provided, the insert has cutting faces which are identically spaced apart and identically shaped on both sides, based on the through bore, an indexing of the insert is possible so as to provide a total of four new cutting areas.
An embodiment of an indexable insert according to the invention, that is favorable in terms of production technology and excellent, in particular, for chip formation, can be obtained in that the cutting face has perpendicular on the wedge or trough base a flat wedge shape or a trough shape with a straight-line generatrix and is produced by machining, e.g., by grinding.
A chip flowing off from the cutting edge on the cutting face is subjected thereby to only a low pressure against the travel direction caused by a bending, so that wear and thermal loading are minimized. Furthermore, when the dimensional variations of the inserts are kept small and smooth cutting faces are created, the flow of chips occurs in a favorable manner during machining.
The invention also provides for a milling tool in that indexable inserts according to the above descriptions are arranged on at least one side of an essentially disk-shaped tool body such that their cutting angle has a value of zero or greater than zero.
The advantages attained with a milling tool according to the invention are essentially that the indexable insert is installed in a simple manner such that a positive geometry of the cutting edge is utilized in the areas where the greatest chip removal takes place. This has advantages, in particular, by providing an efficient cutting with low cutting pressure and chatter-free with reduced power.
Advantageously, the milling tool is embodied in an embodiment of the invention such that the cutting angle is no more than 20°, and preferably no more than 15°.
In this manner, fractures of the cutting edge can be effectively avoided.
The invention also provides for an indexable insert for a milling tool, which includes at least one mounting surface having a through bore for fixing the insert to a rotatable tool, a rounded cutting edge defined by at least one cutting face and a lateral surface, and the at least one cutting face being arranged on a lateral side of the insert and extending from a base. The base is angled with respect to the at least one mounting surface.
The insert may be structured and arranged to machine one of crankshafts and camshafts and the rounded cutting edge comprises a centrically symmetrical cutting edge contour. The at least one cutting face may comprise two cutting faces extending from the base. The two cutting faces may be one of concave wedge-shaped and concave trough shaped. The lateral side may comprise two oppositely arranged lateral sides each comprising one base and two cutting faces. The insert may comprise four rounded cutting edges. The at least one cutting face may comprise two cutting faces extending from the base and defining an angle that is obtuse. The at least one cutting face may comprise two flat cutting faces extending from the base and defining an angle that is obtuse. The base may form an acute angle with respect to the at least one mounting surface. The rounded cutting edge may be defined as a vertex of a wedge angle. The wedge angle may be an acute angle. The wedge angle may be between 50° and 85°. The insert may comprise four cutting faces which are identically spaced apart and identically shaped on each of two lateral sides. The at least one cutting face may be flat and the base may extend along a straight line. The at least one cutting face may be flat and may be structured and arranged to be formed by one of machining and grinding.
The invention also provides for a method of making the insert described above, wherein the method comprises machining the insert to form four rounded cutting edges, two lateral sides each having two cutting faces and a base, front and back sides, and two oppositely arranged mounting surfaces.
The invention also provides for a milling tool comprising at least one insert described above arranged on a body and defining a cutting angle that is zero or greater than zero.
The cutting angle may be one of no more than 20° and no more than 15°.
The invention also provides for an indexable insert for a milling tool, which comprises two oppositely arranged mounting surfaces, a through bore extending between the two oppositely arranged mounting surfaces, two oppositely arranged lateral sides, each lateral side comprising two cutting faces and a base extending a long a straight line, and each base forms an acute angle with respect to one of the mounting surfaces. The insert comprises four rounded cutting edges.
Each rounded cutting edge may be defined as a vertex of an acute wedge angle.
The invention also provides for an indexable insert for a milling tool, which comprises two oppositely arranged mounting surfaces defining a thickness of the insert, a through bore extending between the two oppositely arranged mounting surfaces, oppositely arranged front and back surfaces defining a length of the insert that is greater than the thickness, two oppositely arranged lateral sides defining a width of the insert, each lateral side comprising two cutting faces and a base extending a long a straight line, and each base forms an acute angle with respect to one of the mounting surfaces. The insert further comprises four rounded cutting edges such that two oppositely arranged cutting edges are defined by the first side, two oppositely arranged cutting faces, and one of the two mounting surfaces and such that two other oppositely arranged cutting edges are defined by the back side, two other oppositely arranged cutting faces, and another of the two mounting surfaces.
The invention is described in more detail below based on drawings showing an embodiment of the invention, wherein:
The wedge base 21 as noted above, runs at an angle “α” to the flat mounting surface 3′ and provides an optionally flat cutting face 2′, which is enlarged towards the curvature of the lateral surface. The cutting faces 2, 2′ and the cutting edges 4, 4′ are thereby embodied in a centrically symmetrical manner. In the plan view of the cutting faces 2, 2′ (
According to the invention, the cutting face region can also be embodied in a cylindrical or trough-shaped manner (i.e., the surfaces 2, 2′ can be inwardly curved instead of flat) with a straight-line generatrix, wherein a different wedge angle “K” optionally results in the curved area of the cutting edges 4, 4′, 4″, 4″′.
Number | Date | Country | Kind |
---|---|---|---|
A 379/2006 | Mar 2006 | AT | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/AT2007/000069 | 2/12/2007 | WO | 00 | 8/27/2008 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2007/101281 | 9/13/2007 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4074949 | Hochmuth et al. | Feb 1978 | A |
5071291 | Kaminski | Dec 1991 | A |
5193946 | Arai et al. | Mar 1993 | A |
5199827 | Pantzar | Apr 1993 | A |
6196770 | Astrom et al. | Mar 2001 | B1 |
6227772 | Heinloth et al. | May 2001 | B1 |
6374472 | Ramold et al. | Apr 2002 | B1 |
6921233 | Duerr et al. | Jul 2005 | B2 |
7073987 | Hecht | Jul 2006 | B2 |
7147407 | Satran | Dec 2006 | B2 |
20030170080 | Hecht | Sep 2003 | A1 |
20050063792 | Satran | Mar 2005 | A1 |
20050169716 | Smilovici et al. | Aug 2005 | A1 |
20060210365 | Hecht | Sep 2006 | A1 |
Number | Date | Country |
---|---|---|
1 602 795 | Apr 1970 | DE |
2 164 093 | Jul 1973 | DE |
196 26 608 | Jan 1998 | DE |
299 12 025 | Sep 1999 | DE |
0502541 | Sep 1992 | EP |
0 830 228 | Mar 1998 | EP |
55-055313 | Apr 1980 | JP |
09-136210 | May 1997 | JP |
2005-518949 | Jun 2005 | JP |
2005-34198 | Apr 2005 | KR |
2 284 249 | Sep 2006 | RU |
WO 9639269 | Dec 1996 | WO |
9803747 | Aug 1998 | WO |
03074218 | Sep 2003 | WO |
2005005084 | Jan 2005 | WO |
20050218149 | Mar 2005 | WO |
WO 2006128410 | Dec 2006 | WO |
Number | Date | Country | |
---|---|---|---|
20090047078 A1 | Feb 2009 | US |