CURVED FACE GROOVING BLADE AND FACE GROOVING HOLDER THEREFOR

20220097247 · 2022-03-31

    Inventors

    Cpc classification

    International classification

    Abstract

    A curved face grooving blade having a curved grooving portion and a clamping portion connected thereto. The grooving portion having an insert seat defining upward and downward directions. The clamping portion has a bottom wedge surface located in an inward and downward direction relative to the remainder of the clamping portion.

    Claims

    1. A face grooving blade (10) having a blade longitudinal axis (A1) establishing a forward-to-rearward direction (DF, DR), and comprising: a grooving portion (12) and a clamping portion (14) connected to the grooving portion; the grooving portion (12) comprising: a concave inner surface (16); a convex outer surface (18) located on an opposing side of the grooving portion (12) to the concave inner surface (16); an outward direction (DO) generally defined from the concave inner surface (16) towards the convex outer surface (18) and an inward direction (DI) generally defined opposite to the outward direction (DO); a bottom surface (20) connecting the concave inner surface (16) and the convex outer surface (18); a top surface (22) located on an opposing side of the grooving portion (12) to the bottom surface (20) and connecting the concave inner surface (16) and the convex outer surface (18); a front end surface (24) connecting the concave inner surface (16) and the convex outer surface (18) and connecting the top surface (22) and the bottom surface (20); a rear end surface (26) located on an opposing side of the grooving portion (12) to the front end surface (24) and connecting the concave inner surface (16), the convex outer surface (18), the top surface (22) and the bottom surface (20); and a first insert seat (28) formed at an intersection of the front end surface (24) and the top surface (22), and in turn comprising an upwardly facing first insert seat bottom surface (42) and a second insert seat surface (44) spaced apart therefrom; an upward direction (DU) generally defined as the direction in which the first insert seat bottom surface (42) faces and a downward direction (DD) generally defined opposite to the upward direction (DU); and the forward direction (DF) generally defined from the rear end surface (26) to the front end surface (24), and the rearward direction (DR) generally defined opposite to the forward direction (DF); and the clamping portion (14) extends from the grooving portion (12) in the outward direction (DO), and is recessed in the rearward direction from the grooving portion's front end surface (24), the clamping portion (14) comprising: a top wedge surface (52); a bottom wedge surface (54) located on an opposing side of the clamping portion (14) to the top wedge surface (52); a blade abutment surface (56) located between the top wedge surface (52) and the bottom wedge surface (54); and a rear stopper abutment surface (57) located between the bottom wedge surface (54) and the top wedge surface (52), and facing in the rearward direction (DR); wherein: the bottom wedge surface (54) is located in the downward direction (DD) and the inward direction (DI) relative to the top wedge surface (52).

    2. The face grooving blade (10) according to claim 1, wherein either the bottom wedge surface (54) or the blade abutment surface (56) is located directly in the downward direction DD from the first insert seat (28).

    3. The face grooving blade (10) according to claim 1, wherein either the top wedge surface (52) or the blade abutment surface (56) is located directly in the outward direction DO from the first insert seat (28).

    4. The face grooving blade (10) according to claim 1, wherein the blade abutment surface (56) is planar and connects the top wedge surface (52) to the bottom wedge surface (54).

    5. The face grooving blade (10) according to claim 1, wherein the concave inner surface (16) is continuously curved.

    6. The face grooving blade (10) according to claim 1, wherein the concave inner surface (16) comprises: a first concave inner sub-surface (16A); a second concave inner sub-surface (16B); and a ridge (16C) located at an intersection of the first concave inner sub-surface (16A) and the second concave inner sub-surface (16B), the ridge (16C) comprising a projecting portion (70A) which projects farther in the inward direction (DI) than at least one of the first concave inner sub-surface (16A) and the second concave inner sub-surface (16B).

    7. The face grooving blade (10) according to claim 6, wherein the ridge (16C) further comprises: a recessed portion (70B) which is more recessed in the outward direction DO than at least one of the first concave inner sub-surface (16A) and the second concave inner sub-surface (16B).

    8. The face grooving blade (10) according to claim 7, wherein the ridge (16C) further comprises: an intermediary portion (70C) connecting the projecting portion (70A) and the recessed portion (70B).

    9. The face grooving blade (10) according to claim 1, wherein the concave inner surface (16) and the convex outer surface (18) converge with increasing distance from the first insert seat (28).

    10. The face grooving blade (10) according to claim 1, wherein: the face grooving portion (12) further comprises a second insert seat (44) formed at an intersection of the bottom surface (20) and the rear end surface (26); and the clamping portion (14) further comprises a front stopper surface (59) located between the bottom wedge surface (54) and the top wedge surface (52), and facing in the forward direction (DF).

    11. The face grooving blade (10) according to claim 1, wherein the face grooving portion (12) has 180 degree rotational symmetry about an axis of symmetry (S) parallel to the inward and outward directions DI, DO.

    12. The face grooving blade (10) according to claim 1, further comprising a coolant arrangement (58), comprising: a blade coolant inlet (60) opening out to the blade abutment surface (56); and at least one coolant outlet (62,64) directed towards the first insert seat (28).

    13. The face grooving blade (10) according to claim 12, wherein the coolant arrangement (58) further comprises a second coolant outlet (66) directed towards the first insert seat (28).

    14. The face grooving blade (10) according to claim 12, wherein the at least one coolant outlet (66) opens out to the front end surface (24).

    15. The face grooving blade (10) according to claim 1, wherein the blade abutment surface (56) is planar and defines a blade abutment plane (P1) which forms an acute angle α with the downward direction (DD), fulfilling the condition: 10°≤α≤42°.

    16. The face grooving blade (10) according to claim 15, wherein the acute angle α fulfills the condition: 19°≤α≤33°.

    17. A face grooving holder (102) comprising: a shank portion (104) connected to a holder clamping portion (106); the holder clamping portion (106) comprising: a clamping longitudinal axis (C1) establishing a clamping forward-to-rearward direction (CF, CR); a clamping vertical axis (C2) perpendicular to the clamping longitudinal axis (C1) and establishing a clamping upward-to-downward direction (CU, CD); a clamping lateral axis (C3) perpendicular to both the clamping longitudinal axis (C1) and the clamping vertical axis (C2), and establishing a clamping-first-side-to-clamping-second-side direction (CS1, CS2); a clamping front end (130) and a clamping rear end (132) spaced apart from one another along the clamping longitudinal axis (C1); a clamping top side (122) and a clamping bottom side (124) spaced apart from one another along the clamping vertical axis (C2); a first clamping side (126) and a second clamping side (128) spaced apart from one another along the clamping lateral axis (C3), the first clamping side (126) connecting the clamping top side (122) and the clamping bottom side (124); and a blade clamping seat (108) formed along the second clamping side (128) and opening out to the clamping front end (130); the blade clamping seat (108) comprising: a flexibility groove (136) opening out to both the second clamping side (128) and the clamping front end (130); a top clamping wedge surface (138) located upward of the flexibility groove (136); a holder abutment surface (140) located downward of the top clamping wedge surface (138); a bottom clamping wedge surface (144) located downward of the flexibility groove (136) on an opposing side of the holder abutment surface (140) from the top clamping wedge surface (138); and a forwardly facing back stopper surface (146), located between the top clamping wedge surface (138) and the bottom clamping wedge surface (144) along the clamping vertical axis (C2), and rearward of the holder abutment surface (140) along the clamping longitudinal axis (C1); wherein in a front end view of the face grooving holder (102): the bottom clamping wedge surface (144) is located downward of the top clamping wedge surface (138) along the clamping vertical axis (C2), and farther than the top clamping wedge surface (138) in the second side direction (CS2) along the clamping lateral axis (C3).

    18. The face grooving holder (102) according to claim 17, wherein the holder abutment surface (140) is planar and defines a holder abutment plane (P2) which forms an acute clamping angle β with the clamping downward direction (CD), fulfilling the condition: 10°≤β≤42°.

    19. The face grooving holder (102) according to claim 18, wherein the acute clamping angle β fulfills the condition: 19°≤β≤33°.

    20. The face grooving holder (102) according to claim 17, wherein the holder abutment surface (140) has a holder abutment surface area AA, and the blade clamping seat (108) has a seat area AS, the holder abutment surface area AA and the seat area AS fulfilling the condition 0.5AS≤AA≤AS.

    21. The face grooving holder (102) according to claim 20, fulfilling the condition 0.7AS≤AA≤0.95 AS.

    22. A face grooving tool (100) comprising a face grooving blade (10) according to claim 1 mounted in face grooving holder (102)

    23. The face grooving tool (100) according to claim 22, wherein: the face grooving holder (102) comprises a shank portion (104) connected to a holder clamping portion (106), the holder clamping portion (106) comprising: a clamping longitudinal axis (C1) establishing a clamping forward-to-rearward direction (CF, CR); a clamping vertical axis (C2) perpendicular to the clamping longitudinal axis (C1) and establishing a clamping upward-to-downward direction (CU, CD); a clamping lateral axis (C3) perpendicular to both the clamping longitudinal axis (C1) and the clamping vertical axis (C2), and establishing a clamping-first-side-to-clamping-second-side direction (CS1, CS2); a clamping front end (130) and a clamping rear end (132) spaced apart from one another along the clamping longitudinal axis (C1); a clamping top side (122) and a clamping bottom side (124) spaced apart from one another along the clamping vertical axis (C2); a first clamping side (126) and a second clamping side (128) spaced apart from one another along the clamping lateral axis (C3), the first clamping side (126) connecting the clamping top side (122) and the clamping bottom side (124); and a blade clamping seat (108) formed along the second clamping side (128) and opening out to the clamping front end (130), the blade clamping seat (108) comprising: a flexibility groove (136) opening out to both the second clamping side (128) and the clamping front end (130); a top clamping wedge surface (138) located upward of the flexibility groove (136); a holder abutment surface (140) located downward of the top clamping wedge surface (138); a bottom clamping wedge surface (144) located downward of the flexibility groove (136), on an opposing side of the holder abutment surface (140) from the top clamping wedge surface (138); and a forwardly facing back stopper surface (146), located between the top clamping wedge surface (138) and the bottom clamping wedge surface (144) along the clamping vertical axis (C2), and rearward of the holder abutment surface (140) along the clamping longitudinal axis (C1); wherein in a front end view of the face grooving holder (102): the bottom clamping wedge surface (144) is located downward of the top clamping wedge surface (138) along the clamping vertical axis (C2), and farther than the top clamping wedge surface (138) in the second side direction (CS2) along the clamping lateral axis (C3); wherein: the blade's top wedge surface (52) abuts the holder's top clamping wedge surface (138); the blade's bottom wedge surface (54) abuts the holder's bottom clamping wedge surface (144); the blade's blade abutment surface (56) abuts the holder's holder abutment surface (140); and the blade's rear stopper abutment surface (57) abuts and the holder's back stopper surface (146).

    24. The face grooving tool (100) according to claim 23, wherein: the holder's blade clamping seat (108) has a seat area AS; and a surface contact area PA between the blade abutment surface (56) and the seat area AS fulfills the condition: PA>0.30AS.

    25. The face grooving tool (100) according to claim 24, wherein the surface contact area PA fulfills the condition: PA>0.55AS.

    26. The face grooving tool (100) according to claim 25, wherein the surface contact area PA fulfills the condition: PA>0.70AS.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0046] For a better understanding of the subject matter of the present application, and to show how the same may be carried out in practice, reference will now be made to the accompanying drawings, in which:

    [0047] FIG. 1 is a perspective view of a face grooving blade according to the present invention;

    [0048] FIG. 2 is a front end view of the face grooving blade of FIG. 1;

    [0049] FIG. 3 is a first side view (also called an inner view) of the face grooving blade of FIG. 1;

    [0050] FIG. 4 is a top view of the face grooving blade of FIG. 1;

    [0051] FIG. 5 is a second side view (also called an outer view), in an opposite direction to the first side view, of the face grooving blade of FIG. 1;

    [0052] FIG. 6 is a perspective view of a face grooving tool comprising the face grooving blade of FIG. 1, according to the present invention;

    [0053] FIG. 7 is a perspective view of the face grooving holder in FIG. 6;

    [0054] FIG. 8 is a rear end view of the face grooving holder of FIG. 7;

    [0055] FIG. 9 is a top view of a front portion of the face grooving holder of FIG. 7;

    [0056] FIG. 10 is a front end view of the face grooving holder of FIG. 6;

    [0057] FIG. 11 is a front end view of the face grooving tool of FIG. 6;

    [0058] FIG. 12 is a top view of the face grooving tool of FIG. 6, with only a portion of the face grooving holder shown;

    [0059] FIG. 13 is a perspective view of another face grooving blade according to the present invention;

    [0060] FIG. 14 is a front end view of the face grooving blade of FIG. 13;

    [0061] FIG. 15 is a first side view of the face grooving blade of FIG. 13;

    [0062] FIG. 16 is a top view of the face grooving blade of FIG. 13; and

    [0063] FIG. 17 is a second side view of the face grooving blade of FIG. 13, in an opposite direction to the first side view.

    DETAILED DESCRIPTION

    [0064] Drawing attention first to FIGS. 1 to 5, a first example of a curved face grooving blade 10 is shown.

    [0065] The blade 10 has a blade longitudinal axis A1 establishing a blade forward-to-rearward direction DF, DR and comprises a grooving portion 12 connected to a clamping portion 14.

    [0066] The grooving portion 12 comprises a concave inner surface 16, a convex outer surface 18, a bottom surface 20, a top surface 22, a front end surface 24 and a rear end surface 26. The clamping portion 14 is recessed from the front end surface 24 and thus only partially overlaps the grooving portion 12 along the blade longitudinal axis A1.

    [0067] As best shown in FIG. 4, the face grooving blade 10, and more precisely the grooving portion 12 thereof, is elongated in the same basic direction as the extension of the bottom and top surfaces 20, 22 (or stated differently in a longitudinal direction along the blade longitudinal axis A1 and parallel to blade forward and rearward directions DF, DR).

    [0068] For relative reference of elements, directions are provided, namely an outward direction DO, an inward direction DI, an upward direction DU, a downward direction DD, the aforementioned forward direction DF and the aforementioned rearward direction DR.

    [0069] As shown in FIG. 2, the concave inner surface 16 and the convex outer surface 18 converge, at least in part, in the downward direction DD. As the grooving portion 12 is curved, it will be understood that said convergence is not in a precise downward direction DD but rather in a general downward direction DD basically meaning downward relative to the nearby first insert seat 28 (the view of which is obscured in FIG. 2 by a first cutting insert 30 mounted to the first insert seat 28).

    [0070] Stated differently, the front end surface 24 tapers with increasing distance from the insert seat 28. This provides relief during a face grooving operation.

    [0071] Briefly drawing attention to FIG. 1, the first cutting insert 30 comprises a cutting edge 32, located between a rake surface 34 (above which machined chips are intended to flow) and a relief surface 36.

    [0072] The first insert seat 28 is formed at an intersection of the front end surface 24 and the top surface 22.

    [0073] In embodiments where the grooving portion 14 is double-ended, the face grooving blade 10 may be 180 degrees rotationally symmetric about a symmetry axis S passing through the center of at least the grooving portion 12. Therefore discussion will not be made of the symmetrical features such as the additional and identical, second insert seat 38 and second cutting insert 40 mounted thereto. As seen in FIG. 2, the upward and downward directions DU, DD are based on the general direction faced by the first insert seat 28. Also, the side view of FIG. 3 is a view along the DI-DO directions (which is perpendicular to the DU-DD direction) which is not parallel to symmetry axis S. As such, the symmetry axis S seen in FIG. 3 is not perpendicular to the page.

    [0074] The first insert seat 28, comprises an upwardly facing first insert seat bottom surface 42 (located opposite the rake surface 34) and a forwardly facing second insert seat surface 44.

    [0075] As shown in FIG. 2 the first insert seat bottom surface 42 has a wedge (or tapered) shape, for other insert seat types this may not be the case. For all intents and purposes in the present disclosure, the first insert seat surface can be considered a flat or planar surface facing the upward direction DU.

    [0076] An alternative, more precise definition of the directions can be made using a first point 46 on the concave inner surface 16 and located directly below, and adjacent to, the first insert seat bottom surface 42. The word “adjacent” in this context meaning before the grooving portion 12 notably curves. Additionally, a second point 48 is directly adjacent to the first point 46 and on the convex outer surface 18 and directly below, and adjacent to, the first insert seat bottom surface 42.

    [0077] A straight imaginary line L extending from the first point 46 toward the second point 48, further defines the precise directions as detailed above.

    [0078] The clamping portion 14 comprises a top mounting surface 52, a bottom mounting surface 54, a blade abutment surface 56 defining a blade abutment plane P1, a rear stopper abutment surface 57 (FIG. 4) and, in this indexable blade example, a front stopper abutment surface 59. The blade abutment surface 56 may be planar and thus may be considered a planar blade abutment surface 56. As seen in FIG. 2, the symmetry axis S is perpendicular to the abutment plane P1 of the blade abutment surface 56 while the blade longitudinal axis A1 is parallel to the blade abutment plane P1. The symmetry axis S may intersect the blade longitudinal axis A1. The top and bottom mounting surfaces 52, 54 are wedge-shaped and therefore may be considered top and bottom wedge surfaces 52, 54. The top and bottom wedge surfaces 52, 54 are convex, and more specifically each having a v-shape with slanted surfaces 55A, 55B (FIG. 4) extending equally from a central apex, but could alternatively be can be concave (with a corresponding change to the holder design). However, the top and bottom wedge surfaces 52, 54 shown are the most preferred design for ease of manufacture.

    [0079] As shown, the blade abutment surface 56 connects (i.e. extends all the way to) the top wedge surface 52 and the bottom wedge surface 54 which provides greater area for abutment and hence greater stability than in embodiments, which are still feasible, which have a smaller area.

    [0080] More specifically, the blade abutment surface 56 has a blade area AB, which in this example of a rectangular surface is calculated from the length L1 (FIG. 4) and the height H1 (FIG. 2).

    [0081] Drawing attention particularly to FIG. 2, the clamping portion 14, or more specifically, the blade abutment surface 56, extends in the downward and inward directions DD, DI from the top wedge surface 52 to the bottom wedge surface 54.

    [0082] Stated differently, the bottom wedge surface 54 is preferably located directly in the downward direction DD from the first insert seat 28 or, as shown, is located downwardly and inwardly relative to the first insert seat 28.

    [0083] The blade abutment can be planar and define a plane P1 which forms an acute angle α with the downward direction DD.

    [0084] The blade 10 comprises an internal coolant arrangement 58.

    [0085] The coolant arrangement 58 comprises a blade coolant inlet 60 (FIG. 5) and at least one internal passage (not shown) to at least one blade coolant outlet (in this example the at least one blade coolant outlet being constituted by a single upper coolant outlet 62 (FIG. 1).

    [0086] In the similar embodiment to be discussed in FIG. 13, it is shown that there can be both an upper coolant outlet 64, and a second coolant outlet 66 opening out to a front end surface 68.

    [0087] Reverting to FIG. 1, it will be understood that all coolant outlets preferably, although optionally, are basically directed towards the insert seat 28, and more precisely a cutting zone approximately located where an insert's cutting edge 32 and a workpiece (not shown) are intended to engage.

    [0088] It will be understood that it is still feasible for the blade 10 to have a single insert seat, or even a plurality of insert seats, and yet not be rotationally symmetric.

    [0089] While it is desirable for the concave inner surface 16 to be continuously curved (i.e. free of projections or steps; not shown) since projections can limit the depth the blade can machine, it has been found that with certain ranges of curvatures and an insert seat at each end of the blade 10 (i.e., a double-ended curved blade) a non-continuous concave inner surface 16 is necessitated.

    [0090] To elaborate, referring specifically to FIGS. 1 and 2, in the present example the concave inner surface 16 comprises first and second concave inner sub-surfaces 16A, 16B and a ridge 16C located at the intersection thereof.

    [0091] Relative to the first insert seat 28, the ridge 16C comprises a projecting portion 70A projecting in the inward direction DI, a recessed portion 70B recessed in the outward direction DO, and an intermediary portion 70C connecting the projecting portion 70A and the recessed portion 70B. It is understood that from the perspective of the second insert seat 38, the projecting and recessed portions are switched.

    [0092] In the front end view of FIG. 2, only the projecting portion 70A is visible. Thus it can be understood that it limits the depth of machining of the blade 10 when moving relatively in the forward direction DF into a workpiece (not shown).

    [0093] It will be understood that relative to the additional insert seat designated 38, the so-called recessed portion 70B is actually the projecting portion, and the so-called projecting portion 70A is actually the recessed portion.

    [0094] Thus in each operative position, the projecting portion is adjacent to the longitudinal edge associated with the insert seat. To explain, in the example shown the projecting portion 70A is adjacent to the same longitudinal surface (i.e. the top surface 22) which the first insert seat 28 is proximate too (as opposed to the bottom surface 20 which it is distal too).

    [0095] Notably, this is the arrangement for the blade 10 which is configured for face grooving of a relatively curved path (i.e. a grooving portion with a relatively small radius).

    [0096] By contrast, referring to FIGS. 13 to 17, another blade designated 72 is configured for face grooving of a relatively straight path (although still curved somewhat; i.e. a grooving portion with a relatively large radius).

    [0097] Notably, relative to a first insert seat 74 the location of the projecting portion 76A is not adjacent to the same longitudinal surface 78 as the first insert seat 74 but rather is adjacent to the distal longitudinal surface 80. The same reversal being true for the recessed portion 76B (noting that the position of the intermediary portion 76C is unchanged, albeit relatively shortened in the longitudinal direction).

    [0098] As will be understood best from the front end views of FIGS. 2 and 14, this reversal of positions is to maintain the desired mirror-image or curvature of the grooving portion 12 relative to the clamping portion 14.

    [0099] While not shown, it will be understood that there will also be an intermediary region in which the concave inner surface 16 is continuously curved. The intermediary region is advantageous in that the depth of cut is not limited by any projection from the concave inner surface.

    [0100] Now referring to FIG. 6 a face grooving tool 100 is shown as comprising an exemplary face grooving holder 102 configured to hold either of the above described blades, with the blade 10 (and cutting insert 30 mounted thereto) being exemplified.

    [0101] Referring also to FIGS. 7 to 10, the face grooving holder 102 comprises a shank portion 104 and a holder clamping portion 106.

    [0102] It will be understood that many holder types are possible, and that the essential feature here is not the shank type or position but rather a blade clamping seat 108 configured to hold a blade according to the present invention.

    [0103] In this particular preferred example, the shank portion 104 is elongated with a square cross section and extends in a clamping rearward direction CR relative to the holder clamping portion 106. Alternatively, a shank portion (not shown) could be located on the opposing side of a holder clamping portion relative to a blade clamping seat. Another feasible alternative (not shown) is that a shank portion has a round cross section, etc.

    [0104] The shank portion 104 comprises: an elongated shank top surface 110 and an elongated shank bottom surface 112 located on an opposing side of the shank portion 104; a shank back surface 114 located on an opposing side of the shank portion 104 to the holder clamping portion 106; and opposing first side and second side surfaces 116, 118.

    [0105] The shank back surface 114 is formed with a holder coolant inlet 120 (FIG. 8; which could also be in different or additional locations on the shank portion 104, or even on the holder clamping portion 106).

    [0106] The holder clamping portion 106 has a clamping longitudinal axis C1 establishing a clamping forward-to-rearward direction CF, CR, a clamping vertical axis C2 establishing a clamping upward-to-downward direction CU, CD, and a clamping lateral axis C3 establishing a clamping first-side-to-second-side direction CS1, CS2. The various clamping axes C1, C2, C3 are mutually perpendicular to one another.

    [0107] The holder clamping portion 106 is connected to, and extends in a clamping forward direction CF relative to, the shank portion 104.

    [0108] The holder clamping portion 106 comprises a clamping top side 122, a clamping bottom side 124, a first clamping side 126, a second clamping side 128, a clamping front end 130, a clamping rear end 132, and the aforementioned blade clamping seat 108.

    [0109] The clamping forward direction CF is opposite to the clamping rearward direction CR.

    [0110] There is further a clamping upward direction CU from the clamping bottom side 124 towards the clamping top side 122, and a clamping downward direction CD generally defined opposite thereto.

    [0111] A clamping first side direction CS1 is generally defined from the second clamping side 128 towards the first clamping side 126, and a clamping second side direction CS2 is generally defined opposite thereto.

    [0112] The above directions could also be more precisely referenced from the shank portion 104, which at least in this type of holder has precisely positioned surfaces (as opposed to curved shank types).

    [0113] The holder clamping portion 106 further comprises a screw bore 134 opening out to the clamping top side 122 and extending towards the clamping bottom side 124.

    [0114] The blade clamping seat 108 is formed with a flexibility (resilient) groove 136, a top clamping wedge surface 138, a holder abutment surface 140 defining a holder abutment plane P2, a seat coolant outlet 142 (positioned to provide coolant to the blade coolant inlet 60), a bottom clamping wedge surface 144 and a forwardly facing back stopper surface 146. The holder abutment surface 140 may be planar and may thus be considered a planar holder abutment surface 140.

    [0115] It will be understood that rather than the integral arrangement shown, a feasible alternative option, not shown, is for a top clamp portion to be completely detached from a lower base portion, however the integral option shown is preferred.

    [0116] The blade clamping seat 108 has a length L2 (FIG. 9) and a height 112 (FIG. 10). The blade clamping seat 108 thus has a seat area AS=L2×H2.

    [0117] The holder abutment surface 140 has length L3 (FIG. 9) and a height 113 (FIG. 1). The holder abutment surface 140 thus has a holder abutment surface area AA=L3×H3.

    [0118] Notably, length L2 and length L3 are equal, whereas height 112 is slightly larger than height 113. Therefore the seat area AS is slightly larger than the holder abutment surface area AA.

    [0119] The top clamping wedge surface 138 and bottom clamping wedge surface 144 rather than having two slanted surfaces each have only a single slanted surface, which is configured to mate with the blade's 10 corresponding wedge surfaces.

    [0120] The holder abutment plane P2 forms an acute clamping angle β with the clamping downward direction CD.

    [0121] A single screw 148 is shown mounted in the single screw bore 134 in the holder clamping portion 106. It will be understood that in some embodiments there may be more than one screw bore and screw. Another alternative to the screw bore is a resilient holder clamping surface (not shown) which is normally closed.

    [0122] Referring also to FIGS. 11 and 12, the assembled face grooving tool 100 will be discussed.

    [0123] To mount the blade 10 to the face grooving holder 102, the clamping portion 14 of the face grooving blade 10 is first slid rearwardly into the blade clamping seat 108.

    [0124] To elaborate, during sliding, the blade's bottom wedge surface 54 abuts the holder's bottom clamping wedge surface 144 and the blade's blade abutment surface 56 abuts the holder's holder abutment surface 140. Said sliding is stopped by abutment of the blade's rear stopper abutment surface 57 with the holder's back stopper surface 146.

    [0125] Subsequently, the screw 148 is fastened to bring the top clamping wedge surface 138 into engagement with the blade's top wedge surface 52, thereby clamping the blade 10.

    [0126] The face grooving blade 10 is then held in a rigid and repeatable manner in the face grooving holder 102, with cutting forces which arise during machining being distributed between the four above-mentioned abutment regions.

    [0127] Drawing attention to FIG. 11, a machining force F is schematically shown in the downward direction DD on the cutting insert 30.

    [0128] As seen in FIG. 11, a downward extension DE of the machining force F intersects the abutment interface between the blade's blade abutment surface 56 and the holder's holder abutment surface 140. Thus, the top clamping wedge surface 138 and the bottom clamping wedge surface 144 are on opposite sides of the downward extension DE of the machining force F. Furthermore, the clamping portion 14, or more particularly the abutment region constituted by the abutment of the bottom wedge surface 54 with the bottom clamping wedge surface 144 extends below the cutting insert 30 and to an opposite (far) side of the downward extension DE of the machining force F, relative to the top clamping wedge surface 138. Consequently, the machining force F assists clamping by biasing the blade's bottom wedge surface 54 against the holder's bottom clamping wedge surface 144 thereby providing stronger clamping of the blade 10 than would be the case of a clamping portion (not shown) located only to the side of the blade 10.

    [0129] Moreover, in the prior art tools, the side location of the clamping portion actually provides an undesired tilting or rotating effect which is mitigated or even eliminated by the present invention.