Cutting and grooving tool

The cutting tool addresses trapped chip issues by incorporating a flushing channel to remove chips from grooves, enabling efficient chip removal and continuous grooving operations.

WO2025171996A1PCT designated stage Publication Date: 2025-08-21CERATIZIT AUSTRIA GES
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Patent Information

Application Number
PCT/EP2025/051287
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-02-15
Filing Date
2025-01-20
Publication Date
2025-08-21

AI Technical Summary

Technical Problem

Existing cutting tools face issues with trapped chips during grooving, which impair the functionality of machined workpieces, especially in narrow groove widths and large groove depths, requiring separate mechanical removal steps that may not fully clear all chips.

Method used

A cutting tool with a grooving insert and a channel structure that includes a flushing channel extending laterally next to the grooving insert, allowing a fluid flow to flush chips out of the groove without colliding with the cutting edge, using flushing openings strategically positioned to maintain the fluid flow's cross-sectional shape and direction.

Benefits of technology

Effectively removes chips from grooves by flushing them out with a fluid flow, ensuring the cutting area can continue creating grooves without interference, particularly suited for grooves with defined widths and depths.

✦ Generated by Eureka AI based on patent content.

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    Figure EP2025051287_21082025_PF_FP_ABST
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Abstract

A cutting and grooving tool (1, 61, 65) comprising a grooving plate (5), a main body (3) and a channel structure (10) extending at least in portions of the main body (3), wherein the grooving plate (5) is mounted on the main body (3) and has a blade region (6) having a free end cutting edge (7) and a rake face (29) and end-side flank (19) associated therewith, wherein the main body (3) extends from the front on the side of the flank (19) to the rear, along the end cutting edge (7) laterally and from the top on the side of the rake face (29) downwards, wherein the channel structure (10) has a flushing channel (11) which extends so as to be directed laterally next to the grooving plate (5) and extends towards the liquid outlet which is directed forwards at least in terms of components, and which flushing channel is open through a flushing opening (12) laterally next to the grooving plate (5).
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Description

[0001] Cutting tool

[0002] The present invention relates to a cutting tool and its use.

[0003] EP 2 691 202 A1 shows a tool for machining a workpiece with a cutting insert having a cutting edge and a holder with a cutting insert receptacle arranged in the region of the workpiece-side end face of the holder, in which the cutting insert is arranged, wherein a coolant bore is arranged in the holder, which opens into a coolant outlet which is arranged on the workpiece-side end face of the holder laterally next to the cutting insert receptacle and is aligned such that coolant exits in the direction of the cutting insert.

[0004] The tool shown in EP 2 691 202 A1 can be used to create multiple offset grooves in a workpiece rotating relative to the tool. However, a problem arises. During grooving, chips are generated that typically become trapped in the grooves, thus impairing the functionality of the machined workpiece. These trapped chips must therefore be mechanically removed from the grooves in a separate step. This remains a risk that not all chips will be detected and / or the surface of the groove will be damaged, especially with narrow groove widths and / or large groove depths.

[0005] The object of the present invention is therefore to provide a cutting tool with an improved chip removal function and its use for improved chip removal.

[0006] The object is achieved by a cutting tool according to claim 1. Advantageous further developments can be found in the claims dependent on claim 1, which can be freely combined with one another.

[0007] The cutting tool comprises a grooving insert, a base body and a channel structure extending at least partially in the base body, wherein the grooving insert is held on the base body and has a cutting area with a free-standing front cutting edge and a chip surface and front flank associated therewith, wherein the base body extends from the front on the flank side to the rear, laterally along the front cutting edge and downwards from the top on the chip surface, wherein the channel structure has a flushing channel which extends laterally next to the grooving insert and towards the fluid outlet which is directed at least component-wise towards the front and is opened by a flushing opening laterally next to the grooving insert.

[0008] The cutting tool is designed to produce a groove by usually radial grooving with the grooving insert on the cutting area side into a shaft rotating relative to the cutting tool with respect to a rotational axis.

[0009] The base body is usually made of steel, can be constructed in one piece or in multiple parts, and usually has a clamping head, whereby the clamping head usually has a receiving pocket, a clamping gap opening into the receiving pocket, which usually extends lengthwise to the front cutting edge and thus laterally, a lower clamping part and an upper clamping part and a base body web, whereby the grooving insert is then usually clamped in the receiving pocket and thus arranged between the upper clamping part and the lower clamping part and is thus held. The upper clamping part is usually pivotally connected to the lower clamping part by the base body web and separated from the lower clamping part by the clamping gap and the receiving pocket. If the clamping gap is widened, the upper clamping part pivots upwards, usually elastically, so that once it has pivoted out a certain distance, the grooving insert can be removed from the receiving pocket.If the clamping gap is narrowed, the upper clamping part usually pivots downwards elastically, so that from a certain pivoting inwards the grooving plate is held pre-tensioned, after which the grooving plate rests on the lower clamping part and is pressed by the upper clamping part against the lower clamping part.

[0010] The flushing channel can be formed directly in the base body and opened through the flushing opening to the side next to the piercing plate.

[0011] By holding the grooving plate on the base body, the grooving plate is usually reversibly detachably connected to the base body, usually by the grooving plate being clamped into the usually present receiving pocket.

[0012] The chip surface is designed to be in contact with the chips generated during grooving by the front cutting edge.

[0013] The front cutting edge is formed by a transition from the flank face to the rake face.

[0014] Typically, the cutting edge area has two secondary cutting edges, each connected to the front cutting edge by a cutting corner of the cutting edge area, which extend backwards, at least in terms of components. Thus, when viewed from top to bottom, the cutting edge area is usually U-shaped with respect to its cutting edges.

[0015] The cutting area usually projects along the front cutting edge on both sides of the latter over a rear area of ​​the grooving insert connected to the cutting area, so that only the cutting area, on the front side and to the side, contacts the shaft during grooving.

[0016] The cutting insert is usually made of cemented carbide.

[0017] Furthermore, the insert is typically extended lengthwise from front to back, widthwise along the front cutting edge, and heightwise from top to bottom. Typically, the lengthwise extension is greater than the width and height. Typically, the width is smaller than the lengthwise extension and height.

[0018] The insert is also typically assigned an upper side on the rake face side, a lower side opposite the upper side, a front side on the flank face side, a back side opposite the front side, and a right side and a left side on each side. The upper side is then connected to the lower side by the front side, back side, left side, and right side, respectively.

[0019] The grooving insert is analogous to the base body and extends from the front on the flank side to the rear, along the front cutting edge laterally and from the top on the chip surface side downwards.

[0020] Unless expressly disclosed otherwise, "along the front cutting edge" means an extension along a front cutting edge line that connects the two laterally outermost points of the front cutting edge, i.e. where the front cutting edge is connected to the cutting corners that are usually present. The front cutting edge usually follows the front cutting edge line essentially, and in the case of a completely straight extension, completely.

[0021] Unless expressly disclosed otherwise, "transverse to the front cutting edge" means an extension transverse to the front cutting edge line at an angle of 80° to 100°, usually 85° to 95°. Since the channel structure is formed to extend at least partially into the base body, the channel structure is at least to this extent not visible when viewed from the outside and outside of any openings associated with the channel structure. The channel structure can be formed to extend entirely into the base body.

[0022] As the base body extends downwards from the top on the side of the chip face, the base body is assigned an upper side on the side of the chip face and a lower side opposite the upper side.

[0023] As the base body extends from the front on the flank side to the rear, the base body is assigned a front side on the flank side and a rear side opposite the front side. A grooving movement can be assigned to the base body along a grooving axis which is oriented longitudinally transversely to the front cutting edge and usually passes through the middle of it, with the grooving axis extending from front to rear, and during the grooving movement the base body can be moved along the grooving axis with the cutting area at the front relative to a workpiece to be grooved. The base body usually has a shank for clamping in a tool holder, whereby the shank can be longitudinally or transversely to the grooving axis and usually has a rounded or angular cross-section.

[0024] Since the flushing channel extends to the liquid outlet, which is directed forward at least in terms of components, and is opened laterally next to the piercing plate through the flushing opening, a liquid flow emerging from the flushing opening and thus from the flushing channel can follow the piercing movement at least in terms of components.

[0025] As the base body is extended laterally along the front cutting edge, a left side and a right side can be assigned to the base body transversely to the grooving axis, whereby the grooving plate is arranged between the left and right sides and the flushing channel is thus opened to the right or left of the grooving plate through the flushing opening.

[0026] By aiming the flushing channel next to the grooving plate, a fluid flow emerging from the flushing channel and thus from the flushing opening will completely miss the grooving plate while maintaining its cross-sectional shape imposed by the flushing channel and can thus be used to flush the groove without any collision flow losses with respect to the grooving plate.By the flushing channel extending laterally next to the grooving plate and at least component-wise towards the front of the fluid outlet and being opened laterally next to the grooving plate through the flushing opening, a fluid flow that can emerge from the flushing opening and thus from the flushing channel is arranged and spaced apart from the cutting plate on the right or left side of the cutting plate while maintaining its cross-sectional shape imposed by the flushing channel, so that the fluid flow can enter a groove offset laterally next to the cutting area along its depth extension and in this way can flush the cutting area.

[0027] As the flushing channel is directed laterally next to the grooving insert and extends to the fluid outlet which is at least component-wise directed forwards and is opened laterally next to the grooving insert through the flushing opening, a fluid flow which can emerge from the flushing opening and thus from the flushing channel will completely miss the grooving insert while retaining its cross-sectional shape imposed by the flushing channel, will follow the direction of the grooving movement at least component-wise and, when viewed from above onto the chip surface, will run laterally next to the cutting area and at a distance from the grooving insert and will exit from the cutting tool or usually from the base body on the side of the grooving insert and, aligned in this way, will enter a groove which is laterally spaced from the cutting area.

[0028] The person skilled in the art understands the arrangement and orientation of the flushing channel to be such that a liquid flow emerging from the flushing channel and thus from the flushing opening can enter a groove created by the cutting area.

[0029] The technical effect of the flushing channel and the flushing opening is that a groove offset laterally next to the cutting area and thus laterally to the front cutting edge can be flushed on the side of the flushing opening with a liquid flow that can be discharged from the flushing channel, so that chips located in this groove can be removed from it by means of liquid, while the cutting area can simultaneously create a further groove compared to the flushed groove.

[0030] The cutting tool has a groove flushing function thanks to the flushing channel, which is particularly well suited for flushing a groove offset laterally next to the cutting edge, wherein the groove flushing function is activated by flowing water through the flushing channel in the direction of the flushing opening. According to a further development, the flushing opening is spaced laterally next to the cutting edge at an offset distance, wherein the offset distance is at least a grooving width defined by the cutting edge. By dimensioning the flushing opening laterally next to the cutting edge, i.e. along the front cutting edge, at a distance of the offset distance, grooves already created by the cutting edge can be flushed particularly well when the cutting tool is grooving, grooves whose web width, i.e. the wall thickness measured between two adjacent grooves transversely to their depth extension, corresponds in amount to the offset distance.

[0031] According to a further development, the mud channel is longitudinally extending transversely to the front cutting edge. By extending the mud channel longitudinally transversely to the front cutting edge, the mud channel can be manufactured particularly easily and thus cost-effectively through a bore, in particular a bore in the base body, and at the same time can be precisely aligned.

[0032] According to a further development, the flushing channel extends to the fluid outlet, which is directed forwards and upwards in terms of components, and is opened laterally next to the grooving insert through the flushing opening. The relative path speed of a relatively rotating shaft and the relative flow speed of the fluid stream exiting the flushing opening and thus the flushing channel can be aligned in opposite directions to each other if the flushing channel extends to the fluid outlet, which is directed forwards and upwards in terms of components, and is opened laterally next to the grooving insert through the flushing opening, whereby chips can be flushed out at a flushing speed that is greater than that of the groove.

[0033] According to a further development, the channel structure has an additional flushing channel that extends adjacent to the grooving insert and toward the fluid outlet, which is directed at least component-wise toward the front. It is opened laterally next to the grooving insert through an additional flushing opening. The additional flushing channel enlarges the area of ​​possible grooves that can be flushed by the cutting tool and / or supports the flushing channel when flushing a groove. Typically, the additional flushing channel is oriented longitudinally transversely to the front cutting edge.

[0034] According to a further development, the further flushing channel extends to the fluid outlet directed forwards and downwards in terms of components and is opened through the further flushing opening.By virtue of the fact that the flushing channel extends to the fluid outlet directed forwards and upwards in terms of components and is opened laterally next to the grooving plate through the flushing opening, and the further flushing channel extends to the fluid outlet directed forwards and downwards in terms of components and is opened laterally next to the grooving plate through the further flushing opening, the fluid flows with regard to the upward and downward components are oriented opposite to one another with regard to the flushing channel and the further flushing channel, so that chips which are jammed in a groove in a way which is unfavorable with regard to flushing through the flushing channel can be released by flushing through the further flushing channel, or vice versa.

[0035] According to a further development, the cutting area is arranged between the flushing opening and the additional flushing opening. This allows for flushing of leading and trailing grooves relative to this offset movement during a lateral offset movement of the cutting tool, which allows the cutting tool to be brought into a new grooving position.

[0036] According to a further development, the additional flushing opening is spaced laterally from the cutting area by a further offset distance, wherein the additional offset distance amounts to at least the cutting width. Thus, the additional offset distance equally realizes the effects and advantages described with regard to the offset distance.

[0037] According to a further development, the offset distance and the further offset distance are different in magnitude. The cutting tool can therefore be used equally for flushing grooves between which there are webs with a web width corresponding to the offset distance or the further offset distance.

[0038] According to a further development, the channel structure has an additional flushing channel that extends adjacent to the grooving insert and toward the fluid outlet, which is directed forwards and upwards or downwards in terms of components. It is opened laterally next to the grooving insert through an additional flushing opening. The additional flushing channel further enhances the flushing functionality of the cutting tool, for example, with regard to the width, position, depth, and / or land width of flushable grooves. The additional flushing channel is typically oriented longitudinally transversely to the face cutting edge. According to a further development, the orientation of the flushing channel is irreversibly fixed to the base body.As a result, the flushing channel is fixed with respect to the advantageous flushing function it provides against manual manipulation or manipulation involving a component, usually by the flushing channel being extended entirely within the base body.

[0039] According to a further development, the channel structure has a rake face straightening channel, which is arranged above the rake face and extends and is open for flushing the rake face at least in part. The rake face straightening channel can ensure that the rake face is flushed with a liquid during grooving in order to cool the grooving insert in this area. The rake face straightening channel is directed toward the grooving insert.

[0040] According to a further development, the channel structure has a flank guide channel, which is arranged below the rake face and extends and is open for flushing the flank at least in part. The flank guide channel can ensure that the flank is flushed with a fluid during grooving in order to cool the grooving insert in this area. The flank guide channel is directed toward the grooving insert.

[0041] According to a further development, the flushing opening is arranged above or below the additional flushing opening. The flushing opening and the additional flushing opening are thus offset in height from one another.

[0042] The object is achieved by using a cutting tool according to the appended claims and its described developments, in that the cutting tool is used to flush a shaft groove of a shaft offset laterally next to the cutting area. The shaft groove is located on the side of the flushing opening and is flushed with a fluid flow emerging from the flushing channel and thus the flushing opening.

[0043] According to a further development of the use, the cutting area penetrates radially and relatively into the shaft during the flushing of the shaft groove to create another shaft groove.

[0044] Further advantages and benefits of the invention will become apparent from the following description of embodiments with reference to the accompanying figures.

[0045] Of the figures, Fig. 1 shows a representation of a front area of ​​a cutting tool in

[0046] Viewing direction from top to bottom;

[0047] Fig. 2: a representation of the cutting tool shown in Fig. 1 in

[0048] Viewing direction from front to back;

[0049] Fig. 3: a representation of the cutting tool shown in Fig. 1 in a lateral view;

[0050] Fig. 4: a sectional view of the cutting tool shown in Fig. 1 according to the section line AA shown in Fig. 2;

[0051] Fig. 5: a sectional view of the cutting tool shown in Fig. 1 according to the section line BB shown in Fig. 2;

[0052] Fig. 6: a sectional view of the cutting tool shown in Fig. 1 according to the section line CC shown in Fig. 2;

[0053] Fig. 7: a sectional view of the cutting tool shown in Fig. 1 according to the section line DD shown in Fig. 2;

[0054] Fig. 8: a sectional view of the cutting tool shown in Fig. 1 according to the section line EE shown in Fig. 2;

[0055] Fig. 9: a perspective view of the device shown in Fig. 1

[0056] Cutting tool viewed from below;

[0057] Fig. 10: a perspective view of the device shown in Fig. 1

[0058] Cutting tool viewed from above;

[0059] Fig. 11: a perspective view of a grooving plate shown in Fig. 1 in

[0060] View from above;

[0061] Fig. 12: a representation of a front area of ​​the grooving plate shown in Fig. 11 in the direction of view from top to bottom;

[0062] Fig. 13: a perspective view of another cutting tool in

[0063] View from above;

[0064] Fig. 14: a representation of yet another cutting tool in lateral view

[0065] direction of view;

[0066] Fig. 15: a representation of the cutting tool shown in Fig. 1 in

[0067] View from top to bottom when piercing and rinsing;

[0068] Fig. 16: a representation of the cutting tool shown in Fig. 1 in a lateral view during grooving and flushing; Fig. 17: a perspective representation of the cutting tool shown in Fig. 1

[0069] Cutting tool viewed diagonally from below with an inserted prying tool;

[0070] Fig. 18: a sectional view of the cutting tool shown in Fig. 17 transverse to a front cutting edge shown in Fig. 1.

[0071] Figure 1 shows a view from top to bottom of a front area of ​​a cutting tool 1 for generating grooves by a grooving movement along a grooving axis 2.

[0072] The cutting tool 1 comprises a base body 3 with a front side 4. The front side 4 is moved towards a workpiece during cutting with the cutting tool 1, wherein the base body 3 extends longitudinally along the cutting axis 2 from the front on the side of the front side 4 to the rear, so that the cutting axis 2 can thus also be referred to as the longitudinal axis of the base body 3.

[0073] A grooving insert 5 is clamped to the base body 3 in the area of ​​the end face 4. The grooving insert 5 has a cutting area 6 with a free-standing front cutting edge 7 aligned transversely to the grooving axis 2 and secondary cutting edges 8 connected to the front cutting edge 7 on both sides, which extend backwards and of which, for reasons of clarity, only the right-hand one in Fig. 1 is provided with the reference number 8. The base body 3 extends laterally along the front cutting edge 7 from left to right, i.e. laterally transversely to the grooving axis 2. The front cutting edge 7 is pierced centrally and transversely by the grooving axis 2.

[0074] The piercing movement is assigned direction 9, which is aligned parallel to the piercing axis 2 and points forwards away from the piercing plate 5.

[0075] Extending within the base body 3 is a channel structure 10 having a flushing channel 11. The flushing channel 11 is oriented longitudinally transversely to the front cutting edge 7, directed adjacent to the grooving plate 5 and extending toward the fluid outlet, which is at least component-wise directed forward, i.e., along the direction 9, and is opened through a flushing opening 12 laterally adjacent to the grooving plate 5, i.e., to the left of the grooving plate 5 in Fig. 1, for example. The flushing channel 11 is oriented adjacent to the grooving plate 3, so that a fluid flow emerging from the flushing opening 12, while maintaining its cross-sectional shape imposed by the flushing channel 11, completely misses the grooving plate 5, i.e., flows adjacent to it at a distance from it.

[0076] The flushing opening 12 is arranged laterally next to the cutting area 6, i.e. spaced from the cutting area 6 along the front cutting edge 7, specifically at an offset distance 13 along a direction 12a aligned longitudinally to the front cutting edge 7 and dimensioned as the shortest distance between the flushing opening 12 and the cutting area 6 along the front cutting edge 7, i.e. transversely to the grooving axis 2. The offset distance 13 is, for example, 1.75 times the grooving width 14 defined by the cutting area 6, i.e. the maximum width of a groove that can be produced by the cutting area 6, measured along the direction 12a.

[0077] The channel structure 10 has a further flushing channel 15 and a further flushing opening 16 arranged in the region of the front side 4 on the side of the flushing opening 12, i.e. with respect to Fig. 1 and the flushing opening 12 further to the left of the grooving plate 5. The flushing channel 15 is aligned longitudinally transversely to the front cutting edge 7, analogous to the flushing channel 12, aimed next to the grooving plate 5 and extends to the fluid outlet which is directed forward at least in terms of components, and is opened laterally next to the grooving plate 5 through the flushing opening 16.

[0078] The further flushing opening 16 is spaced from the cutting area 6, analogous to the flushing opening 12, along the front cutting edge 7, i.e., along the direction 12a, by a further offset distance 17 analogous to the offset distance 13. The further offset distance 17 is 3.75 times the grooving width 14 and is thus greater than the offset distance 13. The offset distances 13 and 17 can also have other values, but they are at least equal to the grooving width 13.

[0079] In Fig. 1 it is further evident that the channel structure 10 has a flank directional channel 18 which is directed towards the front flank 19 of the grooving insert 5 shown in Fig. 11 and is directed from a flank directional opening 18a transverse to the front cutting edge 7 towards the flank 19 and thus also towards the grooving insert 5. Fig. 2 shows a representation of the cutting tool 1 shown in Fig. 1 in

[0080] View from front to back along the piercing axis 2 and to the front side 4.

[0081] In Fig. 2 it can be seen that the channel structure 10 has two further flushing channels 20 and 21, which are each aligned transversely to the front cutting edge 7 in a similar way to the flushing channel 11, directed next to the grooving plate 5 and extending to the fluid outlet which is directed forwards at least in terms of components, and are opened laterally next to the grooving plate 5 through a flushing opening 22 or 23, specifically on the right side of the grooving plate 5 with respect to Fig. 2.

[0082] The flushing opening 22 is spaced from the cutting area 6 by an offset distance 24 along the front cutting edge 5, which is analogous to the offset distance 13 and which is greater than the grooving width 14 and, for example, greater than each of the offset distances 13 and 17.

[0083] The flushing opening 23 is spaced from the cutting area 6 by an offset distance 25 along the front cutting edge 5, which is analogous to the offset distance 13 and is greater than the grooving width 14 and, for example, greater than the offset distance 24 and greater than each of the offset distances 13 and 17.

[0084] In Fig. 2, in conjunction with Fig. 1, it can be seen that the piercing plate 5 is arranged between the flushing opening 22 and the flushing opening 11. With respect to the direction 12a shown in Fig. 1, the flushing openings 12 and 16 are thus arranged leading and the flushing openings 22 and 23 lagging.

[0085] In Fig. 2 it can be seen that the flushing opening 22 is arranged closer to an upper side 26 of the base body 3 than the flushing opening 23 and, in conjunction with Fig. 1, that the flushing opening 12 is arranged closer to the upper side 26 than the flushing opening 16. The base body 3 extends downwards from the top on the side of the chip surface 29 of the cutting area 6 shown in Fig. 12, whereby the upper side 26 is arranged above the chip surface 29.

[0086] The upper side 26 is arranged opposite a lower side 27 of the base body 3, and the lower side 27 is arranged below the rake face 29. The end face 4 extends between the upper side 26 and the lower side 27, i.e., from top to bottom. Fig. 2 also shows that the channel structure 10 has a rake face alignment channel 28 directed toward the rake face 29. The rake face alignment channel 28 extends from a rake face alignment opening 30, is directed toward the rake face 29, and is oriented transversely to the end cutting edge 7.

[0087] In Fig. 2 it can also be seen that the base body 3, which is designed as a single piece, has a clamping gap 32, for example, to the right of the piercing plate 5, wherein the clamping gap 32 extends laterally and opens into a receiving pocket 33 on the side of the piercing plate 5, wherein the piercing plate 5 is arranged clamped in the receiving pocket 33.

[0088] Fig. 3 shows a lateral view of the cutting tool 1 in the direction of the arrows assigned to the section line AA in Fig. 2, i.e. on the left side of the base body 3 with respect to Fig. 2.

[0089] In Fig. 3 it can be seen that the base body 3 has an exemplary square shaft 31 and a clamping head 300, wherein the clamping head 300 projects upwards and downwards beyond the shaft 31 transversely to the piercing axis 2 and the shaft 31 is designed to be elongated along the piercing axis 2.

[0090] The clamping head 300 has the clamping gap 32, the receiving pocket 33, an upper clamping part 34, a lower clamping part 35 and, behind the grooving plate 5, a base body web 301. The upper clamping part 34 is pivotally connected to the lower clamping part 34 by the base body web 301 and is separated from the lower clamping part 34 by the clamping gap 32 and the receiving pocket 33. If the clamping gap 32 is widened, the upper clamping part 34 pivots upwards and outwards so that, once it has pivoted out to a certain extent, the grooving plate 5 can be removed from the receiving pocket 33. If the clamping gap 32 is narrowed, the upper clamping part 34 pivots downwards and inwards so that, once it has pivoted in to a certain extent, the grooving plate 5 is held in a pre-tensioned manner, i.e. as shown in Figs. 1, 2, 3, 4, 5, 6, 9 and 10, according to which the grooving plate 5 rests on the lower clamping part 35 and is pressed against the lower clamping part 35 by the upper clamping part 34.

[0091] The upper clamping part 34 has a front clamping part projection 34a.

[0092] Clamping part projection 34a contacts the grooving insert 5 at the front on the side of the chip surface 29. The lower clamping part 35a has a front clamping part projection 35a. The clamping part projection 35a contacts the grooving insert 5 on the underside opposite the chip surface 29, so that the grooving insert 5 is supported in the longitudinal extension area of ​​the cutting area 6 by the lower clamping part 35.

[0093] Fig. 4 shows a cross-section oriented transversely to the front cutting edge 7 through the cutting tool 1 according to the section line AA according to Fig. 2.

[0094] Fig. 4 shows that the flushing channel 15 extends to the component-wise forward and component-wise downward directed liquid outlet and is opened through the flushing opening 16, so that the flushing channel 15 in the cross section of Fig. 4 defines a flow outlet direction 39 which has a component 40 which points downwards transversely to the piercing axis 2, and a component 40a which, aligned with the direction 9, points accordingly forwards.

[0095] In the cross section of Fig. 4, the flow outlet direction 39 forms with the piercing axis 2 a flushing angle 41 on the side of the underside 27 which is less than 90° and greater than 0°.

[0096] Fig. 5 shows a cross-section oriented transversely to the front cutting edge 7 through the cutting tool 1 according to the section line BB according to Fig. 2.

[0097] The mud channel 11 is connected to a feed channel 42 of the channel structure 10. The feed channel 42 is designed to extend along the piercing axis 2 in the front-to-back direction and is connected to a distribution transverse channel 38 oriented along the front cutting edge 7, thus extending laterally longitudinally.

[0098] Fig. 5 shows that the flushing channel 11 extends to the component-wise forward and component-wise upward directed liquid outlet and is opened through the flushing opening 12, so that the flushing channel 11 in the cross section of Fig. 5 defines a flow outlet direction 43 which has a component 44 which points upwards transversely to the piercing axis 2, and a component 44a which, aligned with the direction 9, points accordingly forwards.

[0099] In the cross section of Fig. 5, the flow outlet direction 43 forms with the piercing axis 2 a flushing angle 45 which is smaller than 90° and greater than 0° on the side of the upper side 26 and is different in amount from the flushing angle 41, so that the gradients under which the flushing channels 15 and 11 extend are different from one another and, due to the opposing flow direction components 40 and 44, are also opposite to one another.

[0100] The flushing channel 11 is connected to a feed channel 42. The feed channel 42 extends along the piercing axis 2 and is connected to the distribution transverse channel 38.

[0101] Fig. 6 shows a cross-section oriented transversely to the front cutting edge 7 through the cutting tool 1 according to the section line CC according to Fig. 2.

[0102] Fig. 6 shows that the flank directing channel 18 in the cross section according to Fig. 6 extends to the upwardly directed liquid outlet and is opened through the flank directing opening 18a, and that the rake face directing channel 28 extends to the component-wise forward and component-wise downwardly directed liquid outlet and is opened through the rake face directing opening 30.

[0103] The free-surface directional channel 18 is connected to a feed channel 46, wherein the feed channel 46 is connected to the cross-distribution channel 38 and extends from the latter, directed toward the free-surface directional channel 18, in a forward and downward direction. The chip-surface directional channel 28 is connected to the cross-distribution channel 38 by feed channels 46a and 47.

[0104] Fig. 7 shows a cross-section oriented transversely to the front cutting edge 7 through the cutting tool 1 according to the section line DD according to Fig. 2.

[0105] Fig. 7 shows that the flushing channel 20 extends for component-wise forward and component-wise upward liquid outlet and is opened through the flushing opening 22, so that the flushing channel 20 in the cross section of Fig. 7 defines a flow outlet direction 49 which has a component 50 which points upwards transversely to the piercing axis 2 and a component 50a which, aligned with the direction 9, points accordingly forwards.

[0106] In the cross-section of Fig. 7, the flow outlet direction 49 forms a flushing angle 51 with the piercing axis 2 on the side of the upper side 26, which is less than 90° and greater than 0°. The gradients under which the flushing channels 20 and 15 extend are opposite to each other due to the opposing flow direction components 40 and 50.

[0107] Fig. 7 further shows that a main channel 52 extends along the piercing axis 2 in the shaft 31 and is connected to the distribution transverse channel 38.

[0108] Fig. 7 also shows that the feed channel 52 exits the rear of the shaft 3.

[0109] Fig. 8 shows a cross-section oriented transversely to the front cutting edge 7 through the cutting tool 1 according to the section line EE according to Fig. 2.

[0110] Fig. 8 shows that the flushing channel 21 extends for component-wise forward and component-wise downward liquid outlet and is opened through the flushing opening 24, so that the flushing channel 21 in the cross section of Fig. 8 defines a flow outlet direction 53 which has a component 54 which points downwards transversely to the piercing axis 2 and a component 54a which, aligned with the direction 9, points accordingly forwards.

[0111] In the cross section of Fig. 8, the flow outlet direction 53 forms with the piercing axis 2 a flushing angle 55 measured on the underside 27, which is less than 90° and greater than 0°, so that the gradients under which the flushing channels 20 and 21 extend are different from one another and, due to the opposing flow direction components 50 and 55, are also opposite to one another.

[0112] Fig. 9 and Fig. 10 each show a perspective view of the cutting tool 1 from obliquely below and from obliquely above, respectively. Fig. 9 shows that a threaded bore 56 extending from bottom to top for screwing in a screw opens into the underside 27, wherein the clamping gap 32 is narrowed by tightening the screw and can be locked in this narrowed state, and Fig. 10 shows that the threaded bore 56 also opens into the top side 26, wherein the flushing channels 11, 15, 20 and 21 are each arranged outside the threaded bore 56.

[0113] In Fig. 10, it can be clearly seen that the clamping gap 32 has a lever-opening section 32a on the side of the flushing openings 22 and 23, and that the distribution transverse channel 38 exits laterally from the base body 3. Y1

[0114] Fig. 11 shows the grooving insert 5 in isolation and in a perspective view obliquely from above. Fig. 11 makes it clear that an analogously designed cutting area 57 is assigned to the rear opposite the cutting area 6, so that the grooving insert 6 is designed to be indexable, and that the grooving insert 5, in conjunction with Fig. 1, is traversed along the grooving axis 2 by a V-shaped groove 58 up to the cutting areas 6 and 57 and has a laterally thickened contact area 59 between the cutting areas 6 and 57 along the front cutting edge 7 opposite the cutting areas 6 and 57, which ensures stable contact in the receiving pocket 33, the grooving insert 5 being contacted by the clamping part projection 34a in the area between the chip surface 29 and the contact area 59.

[0115] Fig. 12 represents the cutting area 6 in the direction of view from top to bottom and shows in detail that the cutting area 6 is assigned the chip surface 29 and that the cutting area 6 has two rounded cutting corners 60, through which the secondary cutting edges 8 are each connected to the front cutting edge 7 and extend backwards, i.e. opposite to the direction 9. Fig. 12 further shows that the cutting area 6 is laterally thickened along the front cutting edge 7 compared to an area 61 adjoining the cutting area 6, so that lateral groove wall contact of the grooving insert 5 when grooving outside the cutting area 6 can be avoided.

[0116] Fig. 12 further shows that the front cutting edge 7 has two laterally outermost points 60a and 60b, at which it is connected to the cutting corners 60. The points 60a and 60b are connectable to a front cutting edge line 60c, which is shown unconnected in Fig. 12 only for reasons of clarity. Upon closer inspection, the flushing channels 11, 15, 20, and 21 each extend transversely to the front cutting edge 7, extending perpendicularly to the front cutting edge line 60c. Given the only slight indentation of the front cutting edge 7 relative to the front cutting edge line 60c, this will be understood by those skilled in the art as "transversely to the front cutting edge 7."Rather, what is crucial is that the flushing channels 11, 15, 20, and 21, due to their transverse extension to the front cutting edge 7, are suitable for flushing grooves created by grooving with the grooving insert 5 with the cutting area 6 and the front cutting edge 7 in front. Thus, Fig. 12 also clarifies that "along" the front cutting edge 7, when viewed in detail, means along the front cutting edge line 60c. Fig. 13 shows a cutting tool 61 designed analogously to the cutting tool 1 in an exploded view with the only difference compared to the cutting tool 1 that the base body 3 is designed in two parts and not in one part, in that a lower clamping part 350 otherwise designed analogously to the lower clamping part 35 is designed in two parts and has a fastening hole 62 and a fastening hole 63 for the reversibly detachable assembly.

[0117] Fig. 14 shows a cutting tool 65 designed analogously to the cutting tool 1 with the only difference compared to the cutting tool 1 that the upper clamping part 34 does not have a clamping part projection 34a and that the lower clamping part 35 does not have a clamping part projection 35a, so that the grooving plate 5 forms a front-outermost projection of the base body 3.

[0118] Fig. 15 shows a use of the cutting tool 1 in the direction of view from top to bottom according to Fig. 1 during radial grooving into a shaft 64. Fig. 15 shows that shaft grooves 65 and 66 of the shaft 64 can be flushed through the flushing channel 11 and that at least the shaft groove 66 can be flushed through the flushing channel 15, while the cutting area 6 with the front cutting edge 7 creates a shaft groove 67 in the shaft 64; analogously, shaft grooves of the shaft 64 spaced to the right of and from the cutting area 6 are flushed through the flushing channels 20 and 21.

[0119] The shaft grooves 65 and 66 are arranged offset to the left laterally relative to the cutting area as shown in Fig. 15. The shaft grooves 65 and 66 are spaced apart from each other by a web 68. The width of the web 68 is measured along the rotation axis 69. The shaft 64 is rotated relative to the grooving tool 1 during grooving.

[0120] Fig. 16 shows the grooving situation shown in Fig. 15 in the direction of view along the axis of rotation 69 onto the left side of the base body 3 with respect to Fig. 1 and in a cross-section transverse to the front cutting edge 7 and through the shaft 64, wherein the base body 3 is shown partially transparent.

[0121] Fig. 16 schematically shows that a liquid stream 70 emerging from the flushing channel 11, i.e., a liquid outlet, is directed forwards and upwards in terms of components and thus flows tangentially along a groove base 71 of the groove 65, while the shaft 64 is rotated counterclockwise in the direction of rotation 72, so that the shaft 64 has a path speed at the groove base 71 opposite to that of the liquid stream 70; a liquid stream directed analogously to that of the liquid stream 70 can emerge from the flushing channel 20.

[0122] Fig. 16 schematically shows that a liquid stream 73 emerging from the flushing channel 15 is directed forward and downward in terms of components and thus flows tangentially along the groove base 71 of the groove 65, while the shaft 69 is rotated counterclockwise in the direction of rotation 72, so that the shaft 64 has a path speed at the groove base 71 following the liquid stream 73; a liquid stream directed analogously to the liquid stream 73 can emerge from the flushing channel 21.

[0123] Fig. 17 shows the cutting tool 1 in a perspective view obliquely from below with a lever-opening tool 74 inserted into the lever-opening section 32a.

[0124] Fig. 18 shows, in a cross-section transverse to the front cutting edge 7 in the region of the lever-opening section 32a, that the lever-opening tool 74 is inserted into the lever-opening section 32a and thus into the clamping gap 32 with a gripped section 75. In the cross-section according to Fig. 18, the section 75 is inserted on the side of the upper clamping part 34 with a region 75 following the semicircular region 320a of the lever-opening section 32a on the side of the upper clamping part 34, wherein a circle center 321a can be assigned to the region 320a. On the side of the lower clamping part 35, the lever-opening tool 74 rests flat with a region 76 chamfered relative to the region 320a and was previously inserted flat into the gap 32 with the region 77 chamfered relative to the region 320a and consequently rotated into the widening position shown in Fig. 18.

[0125] Because the distance to the area 77 measured radially to the circle center 321a in the cross section according to Fig. 18 is shorter than the distance to the area 76 measured radially to the circle center 321a in the cross section according to Fig. 18, the clamping gap 32 is widened by rotating the prying tool 74 from a position in which the area 77 just contacts the lower clamping part 35 in the area of ​​the clamping gap 32, to the position shown in Fig. 18, where the area 76 just contacts the lower clamping part 35 in the area of ​​the clamping gap 32.

[0126] The present invention is not limited to the embodiments of a cutting tool 1, 61, 65 shown in Figures 1 to 18. It is thus conceivable and also possible for the channel structure 10 to have at least one flushing channel to implement the groove flushing function, for example the flushing channel 11, to the right or left of the grooving plate 5, and at least for the component-wise forward-directed liquid outlet, wherein the flushing channel 11 can extend at a different flushing angle 45, but preferably also extends and is open in terms of components for the upward-directed liquid outlet and in any case continues to be directed laterally next to the grooving plate 5 and is open laterally next to the grooving plate 5 through a flushing opening analogous to the flushing opening 12 and preferably continues to be completely in the base body 3, which is in one piece, or as in Fig.13 shown by way of example, can be multi-part, so that the flushing channel 11 continues to be irreversibly fixed to the base body 3 with respect to the orientation of the flushing channel 11. The grooving plate 5 can also be clamped and / or shaped differently than in the embodiments shown in Figures 1 to 18, as long as the grooving plate 5 has at least one free-standing front cutting edge analogous to the front cutting edge 7.

Claims

CLAIMS 1. A cutting tool (1, 61, 65) comprising a grooving insert (5), a base body (3) and a channel structure (10) extending at least partially in the base body (3), wherein the grooving insert (5) is held on the base body (3) and has a cutting area (6) with a free-standing front cutting edge (7) and a chip surface (29) and front flank (19) associated therewith, wherein the base body (3) extends from the front on the flank (19) to the rear, laterally along the front cutting edge (7) and downwardly from the top on the chip surface (29), wherein the channel structure (10) has a flushing channel (11) which extends laterally next to the grooving insert (5) and towards the fluid outlet which is directed at least component-wise towards the front, and which is opened laterally next to the grooving insert (5) by a flushing opening (12).

2. Cutting tool (1, 61, 65) according to claim 1, wherein the flushing opening (12) is spaced laterally next to the cutting area (6) from the latter by an offset distance (13), wherein the Offset distance (13) is at least a cutting width (14) defined by the cutting area (7).

3. Cutting tool (1, 61, 65) according to one of the preceding claims, wherein the flushing channel (11) is formed longitudinally extending transversely to the front cutting edge (7).

4. Cutting tool (1, 61, 65) according to one of the preceding claims, wherein the flushing channel (11, 20) extends to the component-wise forward and component-wise upward liquid outlet and is opened through the flushing opening (12) laterally next to the grooving plate (5).

5. Cutting tool (1, 61, 65) according to one of the preceding claims, wherein the channel structure (10) has a further flushing channel (15, 20, 21) which extends next to the grooving plate (5) and towards the fluid outlet which is directed forwards at least in terms of components, and is opened by a further flushing opening (16, 22, 23) laterally next to the grooving plate (5).

6. Cutting tool (1, 61, 65) according to claim 4 and 5, wherein the further flushing channel (15, 21) extends to the component-wise forward and component-wise downward liquid outlet and is opened through the further flushing opening (23, 16).

7. Cutting tool (1, 61, 65) according to claim 5 or 6, wherein the cutting area (7) is arranged between the flushing opening (12, 16) and the further flushing opening (22, 23).

8. Cutting tool (1, 61, 65) according to claim 2 and one of claims 5 to 7, wherein the further flushing opening (16, 22, 23) is spaced laterally next to the cutting area (7) from the latter by a further offset distance (17, 24, 25), wherein the further offset distance (17, 24, 25) is at least the cutting width (14).

9. Cutting tool (1, 61, 65) according to claim 8, wherein the offset distance (13) and the further offset distance (17, 24, 25) are different in amount.

10. Cutting tool (1, 61, 65) according to one of claims 5 to 9, wherein the channel structure (10) has a still further flushing channel (15, 20, 21) which extends next to the grooving plate (5) and towards the component-wise forward and component-wise upward or downward directed liquid outlet and is opened by a still further flushing opening (15, 20, 21).

11. Cutting tool, wherein the flushing channel (11) is irreversibly fixed with respect to its orientation on the base body (3).

12. Cutting tool (1, 61, 65) according to one of the preceding claims, wherein the channel structure (10) has a chip surface straightening channel (28) which is arranged above the chip surface (29) and extends and is open for at least partially flushing the chip surface.

13. Cutting tool (1, 61, 65) according to one of the preceding claims, wherein the channel structure (10) has a flank directing channel (18) which is arranged below the chip surface (29) and extends for at least partial flank flushing and is open.

14. Use of a cutting tool (1, 61, 65) according to one of the preceding claims for flushing a shaft groove (65, 66) of a shaft (64) offset laterally next to the cutting area (7).

15. Use according to claim 14, wherein the cutting area (6) cuts radially and relatively into the shaft (64) during the flushing of the shaft groove (65, 66) to produce a further shaft groove (67).

Citation Information

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