This application claims priority from Korean Patent Application No. 10-2019-0059178, filed on May 21, 2019 in the Korean Intellectual Property Office, the disclosure of which is incorporated herein by reference in its entirety.
The present disclosure relates to a cutting insert for groove machining, and a cutting tool having the same mounted thereon.
Generally, a cutting insert is fastened to a cutting tool mounted on a machine tool and is used for cutting a workpiece such as a machine part and so on that is made of iron, non-ferrous metal, non-metal material, and so on.
Such a cutting insert includes an upper surface, a lower surface oriented in the opposite direction, a side surface connecting the upper surface and the lower surface to each other, and a cutting edge for cutting the workpiece.
Meanwhile, compared to general turning machining, for groove machining, the space for discharging the chips generated during the machining is considerably insufficient. Therefore, without a reduction of the chip width by the chip breaker or a proper adjustment of the chip curl radius, chip blockage can occur, resulting in breakage of the cutting insert, and also abnormal chip generation can occur, resulting in scratches on the machined surface.
In the cutting insert 1 described above, as the chips generated at the leading cutting edge 2 hit the four shoulder portions 10b and 10d in the rear direction, the chips are deformed in shape and reduced in the chip width.
However, the cutting insert 1 has a problem in that the chip width cannot be effectively reduced because the chips are deformed upon hitting the four shoulder potions 10b and 10d positioned in the rear direction of the insert where the principal force is hardly applied during cutting.
The present disclosure has been made to solve the problems described above, and an object of the present disclosure is to provide a cutting insert which is capable of effectively reducing a width of the chips generated during cutting process, and inducing stable chip curling, thus enabling smooth discharge of the chips from the inside of the processed groove to the outside without causing damages to the machined surface.
In order to achieve the objectives mentioned above, a cutting insert for groove machining is provided, which may include a front cutting edge, a chip breaker groove extending from a rear direction of the front cutting edge in a lengthwise direction of the cutting insert, land portions formed on both sides of the chip breaker groove, and inclined surfaces in continuity with the land portions and extending from the land portions to a rear direction of the cutting insert, in which a distance in a transverse direction between left and right walls of the chip breaker groove may gradually increase from an entrance of the chip breaker groove toward a boundary between the land portions and the inclined surfaces, and then gradually decrease upon passing the boundary, and the cutting insert may be symmetrical about a longitudinal center line thereof.
In addition, the left wall may include two-step surfaces in continuity with each other at the boundary, in which a first surface of the two-step surfaces located in a front direction of the boundary may have a smaller slope than a slope of a second surface located in a rear direction of the boundary.
In addition, a protrusion may be formed in a rear direction of the inclined surfaces and higher than the inclined surfaces.
In addition, a protrusion groove may be formed in the chip breaker groove and the protrusion, in which the protrusion groove may be symmetric about the lengthwise center line, may be in continuity with the chip breaker groove without passing through the protrusion, and may have a greater depth than the chip breaker groove.
In addition, when the cutting insert is fastened to a cutting tool, the land portions and the inclined surfaces may form positive angles with a virtual horizontal line parallel to a lower edge of the cutting tool.
In addition, an angle formed by the land portions may be greater than an angle formed by the inclined surfaces.
In addition, the cutting insert may include a groove or a protrusion formed on an upper surface, a lower surface, and a rear surface to be engaged with a corresponding protrusion or groove formed on the cutting tool for fastening.
The cutting insert according to the embodiment of the present disclosure having the configuration described above has the following effects.
In the cutting insert according to the present disclosure, because the transverse distance between the left and right walls of the chip breaker groove, that is, the width is narrower in the front direction of the boundary than in the rear direction of the boundary, during cutting of the workpiece, when the workpiece chips generated from the front cutting edge are discharged to the rear direction of the cutting insert, the generated chips are first compressed between the left and right walls located in the front direction of the boundary, and then compressed secondly between the left and right walls located in the rear direction of the boundary, and accordingly, there is an effect that chips are smaller than when processed by the related cutting insert.
In addition, as the chip width is reduced, scratches on the cutting surface can be reduced, and the chips can be smoothly discharged from the chip break groove.
In addition, because the land portions and the inclined surfaces form the positive angles in two-stages, the chips passed the land portions can be curled once again so that the chip radius is reduced and the chips are lifted upwards. For this reason, there is an effect that the chips are effectively discharged to the outside of the workpiece even in the narrow groove, and also the unnecessary friction of the chips in the chip breaker groove is prevented.
In addition, according to the cutting insert of the present disclosure, grooves or protrusions are formed on the upper surface, the lower surface, and the rear surface to be engaged with corresponding protrusions or grooves formed on the tool holder (e.g., cutting tool), thereby minimizing the occurrence of vibration and movement during machining.
Meanwhile, it goes without saying that the present disclosure includes other effects, although not explicitly stated, that can be expected from the configuration described above.
The above and other objects, features and advantages of the present disclosure will become more apparent to those of ordinary skill in the art by describing in detail exemplary embodiments thereof with reference to the accompanying drawings, in which:
Hereinafter, preferred embodiments of the present disclosure will be described in detail with reference to the accompanying drawings, that will be readily apparent to those skilled in the art to which the present disclosure pertains. However, the description proposed herein is just a preferable example for the purpose of illustrations only, not intended to limit the scope of the disclosure, so it should be understood that other equivalents and modifications could be made thereto without departing from the scope of the disclosure.
As shown in
In addition, the cutting insert 100 according to the present disclosure may be mirror symmetric about a lengthwise center line C1 thereof.
For reference, throughout the Detailed Description, referring to
In particular, in the cutting insert 100 according to the present disclosure, a distance in a transverse direction W between a left wall 21 and a right wall 22 of the chip breaker groove 2 is gradually increased from an entrance 23 of the chip breaker groove 2 to a boundary B between the land portions 3 and the inclined surfaces 4, and then gradually decreased upon passing the boundary B.
In addition, the left wall 21 includes two-step surfaces 211 and 212 in continuity with each other with reference to the boundary B between the land portions 3 and the inclined surfaces 4, in which a first surface 211 of the two-step surfaces which is located in the front direction of the boundary B may have a smaller slope than that of a second surface 212 located in the rear direction of the boundary B (see
For reference,
As described above, according to the cutting insert 100 according to the present disclosure, the transverse distance between the left wall 21 and the right wall 22 of the chip breaker groove 2, that is, the width is narrower in the front direction of the boundary B than that in the rear direction of the boundary B. Accordingly, during cutting of the workpiece, when the workpiece chips generated from the front cutting edge 1 are discharged to the rear direction of the cutting insert 100, the workpiece chips are first compressed between the left and right walls 21 and 22, that is, compressed at the first surface 211 located in the front direction of the boundary B, and then secondly compressed between the left and right walls 21 and 22, that is, secondly compressed at the second surface 212 located in the rear direction of the boundary B, so that an effect that the chips become smaller than those of the related cutting insert can be obtained.
In addition, as the chip width is reduced, scratches on the cutting surface can be reduced, and the chips can be smoothly discharged from the chip break groove 2.
In addition, according to the cutting insert 100 according to the present disclosure, as compared to the related cutting inserts, the chip width can be effectively reduced at the early stage of the chip generation, by the interaction of the large principle force generated when the workpiece is sheared at the front cutting edge 1 and the reaction forces of the left and right walls 21 and 22 of the chip brake groove 2 (for reference, the principle force, the feed force, and the back force act as three force of cutting resistance during the cutting process). That is, referring to
Meanwhile, in the related cutting insert, the chips hit four points (10b and 10d in
Meanwhile, as shown in
Accordingly, as shown in of
As shown in
In addition, as shown in
Referring to
Further, the cutting insert 100 may have grooves such as V-shaped grooves 7 (71, 72, 73) formed on the upper surface, the lower surface, and the rear surface, respectively, which may be engaged with the protrusions such as V-shaped protrusions 40 (41, 42, and 43) of the tool holder shown in
As described above, with the two-step configurations on both sides of the chip breaker groove 2, the configuration of the land portions 3 and the inclined surfaces 4 forming positive angles in two steps, the protrusion 6 in the rear direction, and the protrusion groove 5, the cutting insert 100 for groove machining according to the present disclosure is capable of providing stable chip processing performance in groove machining of not only small workpieces, but also large workpieces with which chip processing is not easy. Further, compared to the related cutting insert for groove machining, the cutting insert 100 for groove machining according to the present disclosure is capable of effectively reducing the chip width for various workpieces and under various processing conditions, thus providing excellent chip discharge effect.
The test conditions included the cutting speed Vc of 90 to 180 m/min, the feed rate fn of 0.07 to 0.18 mm/rev, and the workpiece of material SCM440 and with a diameter of 100 mm. As can be seen from the chip map results, it can be seen that the better curling of the chips and subsequently reduced chip width were obtained when cutting was performed with the cutting insert of the present disclosure than with the related cutting insert.
The present disclosure has been described in detail. However, it should be understood that the detailed description and specific examples, while indicating preferred embodiments of the disclosure, are given by way of illustration only, since various changes and modifications within the scope of the disclosure will become apparent to those skilled in the art from this detailed description.
Number | Date | Country | Kind |
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10-2019-0059178 | May 2019 | KR | national |