Chisel holder

The chisel holder's shaft widening and symmetrical design with angled cutting surfaces address high stress forces, ensuring secure attachment and reduced deformation, enhancing stability and wear consistency.

WO2025233214A1PCT designated stage Publication Date: 2025-11-13WIRTGEN GMBH
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Patent Information

Application Number
PCT/EP2025/061933
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-05-06
Filing Date
2025-04-30
Publication Date
2025-11-13

AI Technical Summary

Technical Problem

Chisel holders in soil cultivation machines experience high stress forces during operation, particularly when encountering hard objects, leading to potential damage and instability.

Method used

The chisel holder design features a shaft widening that extends laterally from the plug-in connector, providing enhanced lateral stability and stress distribution through symmetrical functional surfaces, including front and rear cutting surfaces angled to transfer forces effectively, and a shank extension that reduces deformation and breakage risks.

Benefits of technology

The design ensures secure attachment under heavy loads, reduces deformation, and enhances stability by distributing forces efficiently, minimizing the risk of breakage and maintaining consistent wear behavior.

✦ Generated by Eureka AI based on patent content.

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    Figure EP2025061933_13112025_PF_FP_ABST
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Abstract

The invention relates to a chisel holder (30) for an earth working machine, in particular for a road milling machine, a stabilizer, a recycler, or a surface miner, having a support body (35) which has a chisel receiving area (32) or supports at least one cutting tip in the region of a working side. The support body (35) supports a plug-in attachment (44) on a plug-in attachment side, said plug-in attachment (44) having a plug-in attachment longitudinal axis (44.2) which lies on a central longitudinal plane (ME) of the chisel holder (30). According to the invention, in order to improve the lateral stability of such a chisel holder, the plug-in attachment (44) transitions into the support body (35) at the plug-in attachment end facing the support body (35) directly or indirectly by means of a shaft widening (44.1), widening sides of the the shaft widening (44.1) extend laterally on both sides of the plug-in attachment (44) from the rear region to the front region of the plug-in attachment (44), the cross-section of the plug-in attachment (44) in said regions widens in the direction of the support body (35) and radially to the plug-in attachment longitudinal axis (44.2), and the extent of the widening sides in the direction of the plug-in attachment longitudinal axis (44.2) is at least in the range of at least 5% of the length of the plug-in attachment (44) in said direction, preferably at least 10% thereof, particularly at least 14% thereof.
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Description

[0001] Chisel holder

[0002] The invention relates to a chisel holder for a soil cultivation machine, in particular for a road milling machine, a stabilizer, a recycler, or a surface miner, with a support body which has a chisel receptacle in the area of ​​a working side or at least carries a cutting tip, wherein the support body carries a plug socket on a plug socket side, wherein the plug socket has a plug socket longitudinal axis, and wherein the plug socket longitudinal axis lies in a central longitudinal plane of the chisel holder.

[0003] In a chisel holder according to the invention, the insertion point is arranged in the area of ​​the underside of the chisel holder. Opposite this, the chisel holder forms its upper side on its machining side. When the chisel holder is used as intended, the front side is located at the front of the chisel holder in the feed direction, and the back side is located at the rear of the chisel holder in the feed direction.

[0004] In a chisel holder according to the invention, its central longitudinal plane can be the plane that encloses the central longitudinal axis of the chisel receptacle as well as the longitudinal axis of the insertion point. Preferably, the bearing surface formed by the chisel receptacle is perpendicular to the central longitudinal plane.

[0005] In a chisel holder according to the invention, the central longitudinal plane can preferably form a plane of symmetry of the chisel holder, at least for partial areas. This means, in particular, that the functional surfaces or functional components of the chisel holder described below are designed symmetrically relative to the central longitudinal plane. Functional surfaces or functional components here refer to surfaces or components that are essential for the function of the chisel holder and its fixation in the corresponding lower part; these are, in particular, the functional surfaces and functional components explained in more detail in the following application text:

[0006] - Front and / or rear wear surfaces

[0007] - inclined surfaces

[0008] - front and / or rear stock mounting surface

[0009] - Shaft widening

[0010] - Chisel holder, as well as the associated support section and the bearing surface

[0011] - Screw pressure surface

[0012] - Ejector socket

[0013] - and / or cylinder section

[0014] Particularly advantageous are not only the functional surfaces and functional components formed on the support body, but also the fact that the entire support body is designed symmetrically to the central longitudinal plane.

[0015] It is also preferred that not only the functional surfaces and functional components formed at the plug-in connection, but the entire plug-in connection is symmetrical to the central longitudinal plane.

[0016] The symmetrical design allows for simple manufacturing, for example by forging, and ensures that the tool holders can be interchanged at any mounting location on the milling drum. Furthermore, with regard to the functional surfaces and components exposed during operation, this results in predictable and consistent wear behavior independent of the mounting location.

[0017] In such chisel holders according to the invention, it is particularly possible that the two front cutting surfaces are arranged completely or partially on both sides of the central longitudinal plane. Preferably, the two front cutting surfaces form the same angle with the central longitudinal plane. In chisel holders according to the invention, the central longitudinal plane may run in the direction of the feed.

[0018] Preferably, the central longitudinal axis of the chisel holder lies in the central longitudinal plane.

[0019] The removal surfaces of the chisel holders according to the invention can be designed as flat surfaces completely or at least partially.

[0020] From EP 2 729 666 A2, a chisel holder is known which has a support body. The support body has a chisel receptacle on its machining side. A round-shank chisel can be inserted into this chisel receptacle. Furthermore, the support body has a projecting socket on its side facing away from the machining side. Front cutting surfaces are provided in the area in front of the socket, and rear cutting surfaces are provided in the area behind the socket. The front and rear cutting surfaces are arranged in pairs at an angle to each other. The front cutting surfaces form a transverse support angle. The rear cutting surfaces are also arranged at a transverse support angle to each other. The chisel holder can be inserted into a socket of a base part with its socket in the direction of the socket's longitudinal axis.The cutting motion is limited by the front and rear cutting surfaces, which abut corresponding counter-surfaces of the lower part. A pressure screw is used to fix the chisel holder in the lower part; this screw acts on a pressure surface of the socket.

[0021] During operation, unexpectedly high stress forces may act on the chisel. These strong forces occur during exceptional operational events. For example, a chisel might strike a particularly hard object during operation, such as a road milling machine hitting a manhole cover. This type of stress creates high tension in the chisel holder, which must be safely transferred to the lower part to prevent damage to the tool system.

[0022] The object of the invention is to provide a chisel holder of the type mentioned above, which is held securely on a lower part receiving the chisel holder even under heavy loads.

[0023] The object of the invention is achieved in that the plug-in connector at its end facing the support body transitions directly or indirectly into the support body by means of a shaft widening, that the shaft widening with widening sides extends laterally to both sides of the plug-in connector from the rear rear area to the front front area of ​​the plug-in connector and widens the cross-section of the plug-in connector in these areas at least partially in the direction towards the support body and radially to the longitudinal axis of the plug-in connector, and that the greatest extent of the widening sides in the direction of the longitudinal axis of the plug-in connector is at least 5%, preferably at least 10%, particularly preferably at least 14% of the maximum length of the plug-in connector in this direction.

[0024] The shank extension significantly reduces component stresses occurring in overload situations in the highly stressed transition area between the socket and the support body. Because the shank extension's widened sides extend laterally from the socket, the lateral stability of the chisel holder is significantly improved, thus considerably reducing harmful lateral deformation of the chisel holder under overload conditions. Overall, the risk of chisel holder breakage is considerably reduced by the shank extension. A clearly noticeable effect is already achieved when the widened sides extend at least 5% of the socket's length in that direction along its longitudinal axis. The length of the socket corresponds to the maximum distance between the free end of the socket and the support body, measured parallel to the socket's longitudinal axis.Preferably, when using the chisel holder in soil cultivation machines, the extension of the widening sides in the direction of the plug-in longitudinal axis is at least 10%, and particularly preferably at least 14% of the length of the plug-in.

[0025] Preferably, the widening sides of the shaft widening extend over the entire depth of the plug-in end running parallel to the central longitudinal plane in the feed direction, or at least over 50% of the depth of the plug-in end.

[0026] Preferably, the support body has two front cutting surfaces forming a pair of cutting surfaces, which are angled to each other such that they enclose a transverse support angle and are arranged at least partially in front of the socket, with the front cutting surfaces extending laterally to the socket towards the rear of the chisel holder and beyond the longitudinal axis of the socket. The angled arrangement of the front cutting surfaces enables good load transfer from the chisel holder to the lower part, particularly in the case of transverse forces. In conjunction with the shank widening according to the invention, this results in a particularly stable construction.

[0027] Preferably, the front wear surfaces can transition into the widened sides of the shaft extension via a rounded transition. This results in a stress-optimized design.

[0028] In such chisel holders, the two front cutting surfaces can be arranged completely or partially on both sides of the central longitudinal plane. Preferably, the two front cutting surfaces form the same angle with the central longitudinal plane.

[0029] In chisel holders according to the invention, the central longitudinal plane may run in the direction of the feed direction. Preferably, the central longitudinal axis of the chisel holder lies in the central longitudinal plane.

[0030] The removal surfaces of the chisel holders according to the invention can be designed as flat surfaces completely or at least partially.

[0031] One possible embodiment of the invention provides that the support body has at least one rear cutting surface which forms an obtuse longitudinal support angle with at least one of the front cutting surfaces and which is arranged at least partially behind the plug-in socket. This design takes into account the varying force distribution during machining. Depending on the direction of action, the machining forces can be transferred via the front and / or rear cutting surfaces.

[0032] If the front cutting surfaces transition laterally to the plug-in end, via at least one secondary cutting surface (which may be designed as an inclined surface), directly or indirectly into the rear cutting surface, then improved secondary cutting behavior for the chisel holder is achieved compared to known solutions when it is mounted in a base. In particular, this allows the achievable secondary cutting stroke to be increased.

[0033] Preferably, the finishing surface, in particular the inclined surface, transitions laterally into the shaft widening via a rounding transition, in particular via a relief groove, in order to reduce stress peaks in the transition area between the finishing surface, in particular the inclined surface, and the shaft widening.

[0034] For optimal force dissipation, the inclined surface may transition laterally into the shaft extension and / or the rear wear surfaces, or one rear wear surface, may transition directly or indirectly into the shaft extension, at least partially. Preferably, the widening sides of the shaft extension are convex and arcuate and / or form flat surfaces, extending at least partially towards the front end of the plug socket. Thus, the widening sides also reinforce the plug socket from the front.

[0035] A particularly preferred embodiment of the invention is such that the shank extension forms a rear shank support with two spaced-apart side contact surfaces, preferably being designed at least partially as flat, concave, and / or convex surfaces. The rear shank support serves to reliably transfer machining forces into the lower part in the event of overload. It is possible that, during normal operation, the rear shank support is not in contact with the lower part and only comes into contact with it in the event of overload. Thus, if the tool holder deforms, for example elastically, and / or moves relative to the lower part in the event of overload, this deformation and / or movement is limited by the rear shank support. If the rear shank support has two spaced-apart side contact surfaces, it also provides an anti-rotation feature.This anti-rotation device prevents the plug socket from rotating around its longitudinal axis in the plug socket of a lower part in the event of overload.

[0036] If the side contact surfaces of the rear shank are designed to transition laterally into a corresponding widened section of the shank extension, preferably with one of the side contact surfaces extending at least partially laterally alongside one side of the central longitudinal plane and the other side contact surface extending at least partially laterally alongside the opposite side of the central longitudinal plane, then anti-rotation protection can be easily implemented and the lateral stability of the chisel holder is further improved in the event of overload. The shank extension results in a particularly robust design of the chisel holder in the transition area between the socket and the support body. Especially in the event of overload, the forces can be absorbed and reliably transferred to the lower part.According to a preferred embodiment of the invention, the side contact surfaces can be arranged in a V-shape relative to each other, particularly at an angle to each other, with the angle between the two side contact surfaces preferably being in the range of 45° to 100°, preferably between 50° and 90°, and most preferably between 66° and 76°. The V-shaped or angled arrangement further restricts the movement of the chisel holder relative to the lower part; for example, the freedom of movement in the circumferential direction of the socket is restricted, thus hindering rotation of the chisel holder relative to the lower part, especially in the case of overload.

[0037] An angled positioning of the two side contact surfaces in the range of 45° to 100° enables a design that allows for a robust shaft geometry in the area of ​​the rear shaft contact. This improves component strength. Particularly good power transmission is achieved in an angle range of 50° to 90°.

[0038] If the lower part has corresponding clamping surfaces that correspond to the side contact surfaces, against which the side contact surfaces rest, a kind of elastic spring system is formed. In the event of an accident, the side contact surfaces move the clamping surfaces outwards, so that the acting force is reduced by the spring action.

[0039] If the angle between the side contact surfaces is chosen to be in the range between 66° and 76°, this results in good power transmission, especially in road milling applications, and prevents the chisel holder from being clamped to the lower part in the area of ​​the rear shank contact in the event of overload.

[0040] Particularly in the case of chisel holders where two flat rear cutting surfaces are provided that are angled to each other, the effects mentioned above are especially advantageous if the side contact surfaces are angled in the range between 30° and 75° (high component strength; self-releasing clamping in case of overload), 35° to 70° (spring effect) or 45° to 55° (road milling machine).

[0041] Particularly in the case of chisel holders where a flat rear cutting surface is provided, or where two flat rear cutting surfaces are provided that are parallel to each other, especially aligned with each other, the effects mentioned above are particularly advantageous if the side contact surfaces are angled in the range between 37° and 87° (high component strength; self-releasing clamping in case of overload), 42° to 82° (spring effect) or 57° to 67° (road milling machine).

[0042] A further technical improvement for the rear shank assembly results when the side contact surfaces are connected to each other by means of a rear overload contact surface. Preferably, the overload contact surface is designed as a flat surface, preferably arranged at an angle to the side contact surfaces. The rear shank assembly can be used as an additional support point for force transmission. Preferably, in the event of an overload, the two side contact surfaces of the chisel holder initially come into contact with the lower part. With further deformation of the chisel holder, the overload contact surface then also comes into contact with the lower part, thus preventing further deformation of the chisel holder. Alternatively, in the event of an overload, the overload contact surface can initially come into contact with the lower part.Subsequently, if the chisel holder and / or the lower part is deformed accordingly, the side contact surfaces can then rest against the lower part.

[0043] If the overload contact surface is located on the shank extension, a larger transmission area can be achieved to dissipate forces in the event of an overload. This reduces the surface pressures and results in lower overall stresses in the larger cross-section of the shank extension. This more robust design is particularly suitable in conjunction with fixing the plug-in end in the socket with an undercut. This stable fixing of the plug-in end in the socket now generates significantly higher forces in the transition area between the plug-in end and the support body of the chisel holder.

[0044] A chisel holder according to the invention can also be configured such that the shank widening transitions into a partial cylindrical surface of the socket in the direction of the longitudinal axis of the socket and towards the free end of the socket, wherein the partial cylindrical surface is preferably a partial surface of a cylindrical section that at least partially circumferentially, the cylinder axis of which coincides with the longitudinal axis of the socket. Following the shank widening, the component stresses are homogenized in the cylindrical area of ​​the socket.

[0045] One possible variant of the invention can be characterized in that the widening sides of the shaft widening transition laterally, at least partially, into the front and / or the rear partial cylinder surface via rounding transitions, and / or that the side contact surfaces of the rear shaft contact transition at least partially into the rear partial cylinder surface via rounding transitions, and / or that the overload contact surface transitions at least partially into the rear partial cylinder surface via a rounding transition.

[0046] It is particularly preferred that the shaft widening is formed, at least in certain areas, continuously at the insertion point. This results in a continuous reinforcement of the insertion point. The dimensions of the shaft widening preferably vary in the direction of rotation, so that it can be appropriately dimensioned at any point in the direction of rotation in a material-saving manner.

[0047] The object of the invention is also achieved with a tool system comprising a chisel holder and a lower part, wherein the chisel holder is attached with its plug-in end in a plug-in receptacle of the lower part, and wherein the shank extension is received at least partially in an insertion extension of the lower part. The invention is explained in more detail below with reference to an embodiment illustrated in the drawings. The drawings show:

[0048] Figure 1 shows a tool system with a lower part and a chisel holder in side view.

[0049] Figure 2 shows the tool system according to Figure 1 in a perspective view from behind,

[0050] Figure 3 shows the tool system according to Figures 1 and 2 in the side view opposite Figure 1,

[0051] Figure 4 shows the tool system according to Figures 1-3 in a perspective view from the front.

[0052] Figure 5 shows a chisel holder in a perspective front view,

[0053] Figure 6 shows the chisel holder according to Figure 5 in combination with a pressure screw and in a perspective side view,

[0054] Figure 7 shows the chisel holder according to Figures 5 and 6 in a perspective view from below,

[0055] Figure 8 shows the chisel holder according to Figures 5-7 in a sectional view,

[0056] Figure 9 shows the chisel holder according to Figures 5-8 in longitudinal section along its central longitudinal plane,

[0057] Figure 10 shows the lower part of the tool system according to Figures 1-4 in a perspective side view,

[0058] Figure 11 shows the lower part according to Figure 10 in a perspective view from the rear, Figure 12 shows the tool system according to Figures 1-4 in longitudinal section,

[0059] Figure 13 shows the tool system according to Figures 1-4 along the cutting path shown in Figure 3 with XIII-XIII,

[0060] Figure 14 shows another representation of the chisel holder according to Figures 5-9 in a view from below and

[0061] Figure 15 shows a section along the section line marked XV-XV in Figure 6, which runs perpendicular to the longitudinal axis of the plug insertion.

[0062] Figure 1 shows a tool system with a base 10 and a chisel holder 30 attached to it.

[0063] The lower part 10 has a connection side 11, which may have a contact surface, preferably concavely curved. By means of this connection side 11, the lower part 10 can be placed on the convex outer surface of a (not shown) milling drum tube and suitably fastened to it, for example by means of a weld.

[0064] The lower part 10 may be provided with lateral recesses 12 in the transition area to the connection side 11. These recesses 12 can be used to receive welding material to form a tack weld.

[0065] The base body 13 of the lower part 10 forms the lower connection side 11. This base body 13 has a front face 13.1 facing forward in the feed direction V and a rear face 13.2 facing backward in the feed direction V. The lower part 10 is bounded laterally by side surfaces. The feed direction V runs from left to right in Figure 1. This feed direction V results from the intended use of the tool holder 30 or the tool system. It may be provided that at least one shoulder 13.3 is present in the area of ​​at least one of the side surfaces to form a material discharge area.

[0066] As shown in Figure 10, the lower part 10 may have a retaining receptacle 14. The retaining receptacle 14 has front support surfaces 15.1, 15.2, which are arranged at least partially in front of a plug-in receptacle 18. The plug-in receptacle 18 may be formed as a through-hole or as a recess in the base body 13 of the lower part 10.

[0067] Preferably, a recess 15.3 is arranged between the two front support surfaces 15.1, 15.2 in the area in front of the plug receptacle 18. The two front support surfaces 15.1, 15.2 are arranged at an angle to each other, as can be seen particularly in Figure 11. This angle opens towards the top of the lower part 10.

[0068] It is also possible that the lower part 10 has at least one rear support surface 16.1, 16.2 in its area facing the rear side 13.2. In the present embodiment, two rear support surfaces 16.1, 16.2 are used. The rear support surfaces 16.1, 16.2 are aligned with each other, so that they are arranged on one plane. However, it is also conceivable that the two rear support surfaces 16.1, 16.2 are at an angle to each other, preferably forming an obtuse angle.

[0069] The two rear support surfaces 16.1, 16.2 are each formed by support sections 19.3. The support sections 19.3 may form parts of a projection 19.2. Preferably, the two projections 19.2, each forming a support section 19.3, are spaced apart from each other transversely to the feed direction V.

[0070] Figure 10 illustrates that the two rear support surfaces 16.1, 16.2 can also be connected to each other by a transition section 16.3. The transition section 16.3 can then also be used to support the chisel holder 30. As shown in Figure 10, a front support surface 15.1, 15.2 transitions into a rear support surface 16.1, 16.2 on both sides of the lower part 10. Advantageously, there are recesses 17 between the front support surfaces 15.1, 15.2 and the associated rear support surfaces 16.1, 16.2, which can be groove-like. Thus, the front support surfaces 15.1, 15.2 are spatially separated from the rear support surfaces 16.1, 16.2 to form defined support areas.

[0071] Figure 10 shows that the socket 18 can be equipped with an insertion extension 18.1 at its upper end. This insertion extension serves to facilitate the insertion of a plug-in end 44 of the chisel holder 30 (see Figure 5).

[0072] An overload support area 18.4 can be provided in the area of ​​the plug receptacle 18. This overload support area 18.4 preferably has two clamping surfaces 18.5, 18.6, which are arranged at an angle to each other. The two laterally arranged clamping surfaces 18.5, 18.6 can be connected by means of a locking surface 18.7. The locking surface 18.7 also extends at an angle to the clamping surfaces 18.5, 18.6. Preferably, each clamping surface 18.5, 18.6 forms the same angle with the locking surface 18.7, which is preferably obtuse.

[0073] With the chisel holder 30 mounted, at least a part of the functional surfaces and functional sections of the lower part 10, in particular the clamping surfaces 18.5, 18.6, the front support surfaces 15.1 15.2, the rear support surfaces 16.1 , 16.2, the insertion extension 18.1 and / or the shank support surface 18.2 described below, can be arranged symmetrically to a central longitudinal plane ME of the chisel holder 30.

[0074] Preferably, the overload support area 18.4, with its clamping surfaces 18.5 and 18.6 and the securing surface 18.7, is formed by, or arranged within, the insertion extension 18.1 to achieve a compact design. Figures 10 and 11 further show that a front shaft support surface 18.2 facing the front face 13.1 is formed within the plug receptacle 18. The front shaft support surface 18.2 may be interrupted by a recess 18.3, such that partial surfaces of the front shaft support surface 18.2 are formed on both sides of the recess 18.3. The recess 18.3 may, in particular, be groove-shaped. It is possible that the recess 18.3 extends from the underside, in particular the connection side 11, of the base body 13 in the direction of the longitudinal extent of the plug receptacle 18. In the recess 18.3 can accommodate a (not shown) shaped body, in particular a clamping sleeve, or a dowel pin or the like. The shaped body extends partially into the area of ​​the plug receptacle 18. This is more clearly visible in Figure 12.

[0075] A screw receptacle 19 is provided on the reverse side of the base body 13 of the lower part 10. A fastening screw, in particular a pressure screw 20, can be screwed into the screw receptacle 19, as shown in Figure 12.

[0076] Preferably, access to the screw receptacle 19 is protected in the area between the two projections 19.2 (see Figure 2). The screw receptacle 19 can be incorporated into a surface section 19.1 that extends transversely between the two projections 19.2. The projections 19.2 are bounded by boundary surfaces 19.4 facing the screw receptacle 19. This is shown in Figure 11.

[0077] The screw receptacle 19 opens into the area of ​​the plug-in receptacle 18 of the base body 13, as illustrated in Figure 12. Preferably, the base body 13 has a recess 19.5, as shown in Figure 12, adjacent to the opening of the screw receptacle 19. The recess 19.5 forms a receiving area that is set back from the plug-in receptacle 18. This receiving area facilitates the insertion of the chisel holder 30 into the plug-in receptacle 18.

[0078] As illustrated in Fig. 10, the plug receptacle 18 may have, in the insertion direction, i.e. in the direction of the longitudinal extension of the plug receptacle 18 from top to bottom, an at least partially circumferential hollow cylinder section 18.8, either indirectly or directly behind the insertion extension 18.1.

[0079] The screw receptacle 19 may open into the plug receptacle 18 at its rear. The front shaft support surface 18.2 is preferably arranged in the plug receptacle 19 opposite the opening of the screw receptacle 19.

[0080] The hollow cylinder section 18.8 is arranged in the insertion direction between the insertion extension 18.1 and the mouth area of ​​the screw receptacle 19 and / or between the front shaft support surface(s) 18.2 and the insertion extension 18.1.

[0081] Figures 5 to 8 illustrate the construction of the chisel holder 30. As these illustrations show, the chisel holder 30 has a support body 35.

[0082] As described below, the support body 35 has a tool holder 32 with a central longitudinal axis M on the machining side and a socket 44 with a socket longitudinal axis 44.2 on an opposite socket end. As shown in the exemplary embodiment, the central longitudinal plane ME of the tool holder 30 can be defined by the central longitudinal axis M and the socket axis 44.2.

[0083] A support section 33 is integrally formed on the support body 35 in the area of ​​one machining side. This support section 33 is preferably designed as a projection or may have a projection. The support section 33 forms at least part of the tool holder 32. Preferably, the tool holder 32 is designed as a bore and has the central longitudinal axis M. The central longitudinal axis M of the tool holder 32 is clearly visible in the longitudinal section shown in Figure 9. Alternatively, a cutting tip MS can also be provided on the support body 35 on the machining side, in particular attached directly or indirectly. This is symbolically represented as an alternative with a dashed line in Figure 6. At its free end, the support section 33 forms a bearing surface 31, which preferably extends radially to the central longitudinal axis M of the tool holder 32. The bearing surface 31 is particularly preferably continuous.

[0084] The support surface 31 serves to support a wear-resistant disc of a (not shown) round-shank chisel. Such a round-shank chisel is inserted with its chisel shank into the chisel holder 32 of the chisel holder 30. The wear-resistant disc is arranged between the support surface 31 and a head of the round-shank chisel and is freely rotatable about the central longitudinal axis M of the chisel holder 32.

[0085] A centner's projection 31.1 can be formed in the area of ​​the bearing surface 31. This centner's projection 31.1 can, for example, be designed as a circumferential bead. The centner's projection 31.1 serves to center the wear-protection disc described above on the bearing surface 31. For this purpose, the wear-protection disc can be provided with a circumferential groove on its underside, on the side facing the bearing surface 31. The centner's projection 31.1 engages in this circumferential groove, while the underside of the wear-protection disc rests on the bearing surface 31.

[0086] The support section 33 can be designed with one or more wear markings 33.1. If several wear markings 33.1 are used, they are preferably spaced apart from each other in the direction of the central longitudinal axis M of the chisel holder 32, as can be seen in Figure 5. The wear markings 33.1 can, for example, be designed as grooves that are at least partially circumferential. This is also shown in Figure 5.

[0087] The support section 33 is connected to the support body 35 via a transition section 34. Preferably, the transition section 34 widens the support section 33 in the direction of the support body 35, at least in some areas.

[0088] The support body 35 may have a skirt 35.1 on its front side, which is arranged at least partially in front of the support section 33. The skirt 35.1 may be equipped with recesses 35.2 to enable improved material transport and thus better wear resistance of the chisel holder 30.

[0089] For improved stiffness, the support section 33 may be coupled to the support body 35 by means of stiffening struts 35.3. The stiffening struts 35.3 can extend to both sides and / or along the rear side of the support section 33, as shown in Figures 4 and 6.

[0090] The chisel holder 30 is bounded by side surfaces 35.4 in the area of ​​its sides, which extend from its front to its rear. The side surfaces 35.4 preferably have frontal chamfers 35.5 to taper the apron 35.1 in an arrow-like shape at the front. This improves material removal during operation. At the front, the support body 35 has a front piece 35.6, which preferably borders the apron 35.1 at the front.

[0091] As shown in Figure 7, the chisel holder 30 may have an ejector receptacle 36 on its rear side. The ejector receptacle 36 preferably has two functions.

[0092] Firstly, the ejector receptacle 36 serves to hold an ejector tool, which provides access to the chisel receptacle 32. Using the ejector tool, a chisel held in the chisel receptacle 32 can then be driven out in the direction of the central longitudinal axis M of the chisel receptacle 32.

[0093] The second function of the ejector receptacle 36 is to remove debris material that has accumulated in the area of ​​the chisel receptacle 32 during operation. This debris material is conveyed radially outwards through the ejector receptacle 36.

[0094] As further illustrated in Figure 7, the ejector receptacle 36 is bounded by two side surfaces 36.1. Alternatively, the ejector receptacle 36 may be bounded on its top side by a cover section 36.3. Preferably, the ejector receptacle 36 is bounded by both side surfaces 36.1 and by the cover section 36.3. The side surfaces 36.1 may transition into the cover section 36.3 by means of a rounded transition. Preferably, the rounded transition is formed by a radius between 2 mm and 8 mm to reduce the risk of contamination accumulation.

[0095] Preferably, the deck section 36.3 is arranged parallel to the support surface 31 to achieve improved discharge efficiency. This is illustrated in Figure 9.

[0096] The side surfaces 36.1 of the ejector receptacle 36 can transition into the contour of the chisel receptacle 32 via transition sections 36.2.

[0097] Figure 7 illustrates that the ejector receptacle 36 extends from an inner opening area 36.4 outwards to the rear of the chisel holder 30 to an ejector passage opening 36.5.

[0098] Figure 14 illustrates that the width of the ejector receptacle 36 can widen, at least in some areas, towards the outside, i.e., towards the ejector passage opening 36.5. Preferably, the width of the ejector receptacle 36 widens continuously. For this purpose, the side surfaces 36.1 can, for example, be arranged at an angle to each other and enclose an opening angle p. This opening angle p can preferably be in the range between 20° and 45°, more preferably between 25° and 40°, particularly preferably between 30° and 35°, or especially between 29° and 34°. Preferably, the central longitudinal plane ME of the chisel holder 30 can correspond to the bisector of the opening angle p.

[0099] In the area of ​​the end of the ejector receptacle 36 facing the chisel holder 32, the ejector receptacle 36 forms a minimum inner transverse dimension 36.6, and in the area of ​​the ejector passage opening 36.5, a maximum outer transverse dimension 36.7. The ratio of the outer transverse dimension 36.7 to the inner transverse dimension 36.6 is preferably selected in the range between 1.3 and 2.2, more preferably between 1.5 and 2, and most preferably between 1.7 and 1.9. If the chisel holder 30 is used in a road milling application, it has proven advantageous if the outer transverse dimension is at least 30 mm.

[0100] As shown in Figures 9 and 12, it can alternatively or additionally be provided that the ejector receptacle 36 has an outlet height hA in the area of ​​the ejector passage opening 36.5 and an inlet height hE in the area of ​​the transition of the ejector receptacle 36 into the chisel receptacle 32. The inlet height hE and the outlet height hA are measured in the direction of the central longitudinal axis M of the chisel receptacle 32. As Figure 9 shows, the inlet height and the outlet height hE and hA are measured here starting from the cover section 36.3. Preferably, the inlet height hE is greater than the outlet height hA. To achieve good conveying efficiency, it is preferably provided that the ratio of the inlet height hE to the outlet height hA is selected in the range between 0.6 and 0.9.

[0101] Figure 9 illustrates that the ejector receptacle 36 forms an inlet cross-section EQ in the inner opening area and an outlet cross-section AQ at the ejector passage opening 36.5, wherein the inlet cross-section EQ and the outlet cross-section AQ are each measured perpendicular to the central longitudinal plane ME of the chisel holder 30. Preferably, the ratio of the area of ​​the outlet cross-section AQ to the area of ​​the inlet cross-section EQ is selected to be in the range between 1.0 and 1.5, preferably between 1.0 and 1.4, and most preferably between 1.1 and 1.3.

[0102] As the illustrations show, the tool holder 30 has a central longitudinal plane ME. Figure 12 shows a longitudinal section through the tool holder 30 along the central longitudinal plane ME. As the illustration shows, the central longitudinal axis M of the tool receptacle 32 lies in the central longitudinal plane ME. Additionally, the longitudinal axis 44.2 of the socket 44 may lie in the central longitudinal plane ME. This is also illustrated in Figure 12. Preferably, the central longitudinal plane ME runs in the feed direction V, as shown in Figure 12.

[0103] As shown in Figures 5 and 6, the support body 35 has a support section 40 formed on the underside of the chisel holder 30. The support section 40 has two front cutting surfaces 41.1, 41.2. These front cutting surfaces 41.1, 41.2 are arranged on both sides of the central longitudinal plane in the central longitudinal plane of the chisel holder 30. Preferably, as illustrated in the drawings, the front cutting surfaces 41.1, 41.2 are each completely located on their respective side of the chisel holder 30, laterally adjacent to the central longitudinal plane, and do not penetrate the central longitudinal plane.

[0104] It is conceivable that the two front removal surfaces 41.1, 41.2 are connected to each other by means of a secondary surface 42. The secondary surface 42 penetrates the central longitudinal plane ME.

[0105] The front cutting surfaces 41.1, 41.2 enclose a transverse support angle α, as shown in Figure 5. Preferably, this angle α should be in the range between 100° and 120°. The bisector of this angle α preferably lies in the central longitudinal plane ME.

[0106] As the drawings illustrate, a plug-in extension 44 is arranged on the underside of the chisel holder 30, preferably integrally formed. The front cutting surfaces 41.1, 41.2 are arranged at least partially in the feed direction in front of the plug-in extension 44. This is illustrated in Figure 6.

[0107] The support section 40 further comprises at least one rear cutting surface 43.1, 43.2. In the illustrated embodiment, two rear cutting surfaces 43.1, 43.2 are used, which in this embodiment lie in one plane and are spaced apart from each other at least partially perpendicular to the central longitudinal plane ME. The two rear cutting surfaces 43.1, 43.2 are positioned at a longitudinal support angle β relative to the front cutting surface 41.1, 41.2, each associated with one of the sides of the chisel holder 30. The longitudinal support angle β between the front cutting surface 41.1 or 41.2 and the associated rear cutting surface 43.1 or 43.2 is preferably selected in the range between 120° and 160°. The bisector of this angle may be positioned such that it intersects the central longitudinal plane ME.

[0108] Figure 7 shows that the front removal surfaces 41.1 , 41.2 each transition into the rear removal surfaces 43.1 , 43.2 via an inclined surface 42.1.

[0109] The inclined surfaces 42.1 may extend in the area between two transverse edges. The front transverse edge facing the front of the chisel holder 30 forms a transition between the front cutting surface 41.1,

[0110] 41.2 and the inclined surface 42.1. The rear transverse edge facing the rear of the chisel holder 30 forms a transition between the inclined surface 42.1 and the associated rear cutting surface 43.1, 43.2. The inclined surfaces 42.1 thus transition directly into the front cutting surfaces 41.1, 41.2 and rear cutting surfaces 43.1, respectively.

[0111] 43.2. However, an indirect transition is also conceivable, for example by means of a rounding transition. As shown in Figures 3 and 6, the inclined surfaces 42.1 can form an obtuse angle with both the associated front cutting surface 41.1, 41.2 and the rear cutting surface 43.1, 43.2; it is particularly preferred that the inclined surfaces form the same angle with the front cutting surfaces 41.1, 41.2 and with the rear cutting surfaces 43.1, 43.2.

[0112] The arrangement of the front and rear removal surfaces 41.1, 41.2, 43.1, 43.2 and the inclined surfaces 42.1 is preferably symmetrical to the central longitudinal plane.

[0113] The plug-in fitting 44 preferably has a cylindrical section 44.5, as shown in Figure 6. The cylindrical section 44.5 can have a front partial cylindrical surface 44.3 and / or a rear partial cylindrical surface 44.4 oriented opposite to the feed direction V.

[0114] Preferably, the maximum distance between the respective two transverse edges of the inclined surfaces 42.1, measured parallel to the central longitudinal plane ME and perpendicular to the plug-in attachment longitudinal axis 44.2, is smaller than the extent of the cylindrical section 44.5 of the plug-in attachment 44, measured parallel to the central longitudinal plane ME. The maximum distance X (see Figure 15) between the two transverse edges, measured parallel to the central longitudinal plane ME and perpendicular to the plug-in attachment longitudinal axis 44.2, should (see Figure 15) preferably be smaller than 0.7 times, and more preferably smaller than 0.5 times, the maximum extent maxE of the cylindrical section 44.5 of the plug-in attachment 44, measured parallel to the central longitudinal plane ME and perpendicular to the plug-in attachment longitudinal axis 44.2, as illustrated in Figure 15.

[0115] The drawings (see especially Figure 7) illustrate that the two transverse edges of the inclined surfaces 42.1 run at an angle of £ <90° in the direction from the front of the chisel holder 30 towards the rear of the chisel holder 30 relative to the central longitudinal plane ME. This is shown by way of example in Figure 7 at one of the transverse edges.

[0116] Preferably, the inclined surfaces 42.1 are designed as planar surfaces extending at an angle £ <90° to the central longitudinal plane ME, with the angle £ opening towards the rear of the chisel holder 30 and towards the top of the chisel holder 30, as shown in Figure 7. Alternatively, the two inclined surfaces 42.1 can be arranged in a V-shape relative to each other in a view along the longitudinal axis 44.2 of the insertion attachment and diverge from the front of the chisel holder 30 towards the rear (i.e., opposite to the feed direction V) of the chisel holder 30 (see Figure 14) and / or diverge from the underside of the chisel holder 30 towards the top of the chisel holder 30 (see Figure 6).

[0117] Preferably, the inclined surfaces 42.1 enclose an angle with each other which is selected in the range of 110° to 150° to achieve a compact design.

[0118] The socket 44 of the chisel holder projects from the underside of the chisel holder 30, as shown, for example, in Figure 6. Advantageously, the socket 44 has a three-part structure. This structure is divided, in the direction of the socket's longitudinal axis 44.2, into a first, lower shank section, which has a front shank contact surface 45 and a rear screw pressure surface 47.1; a second, middle shank section, which has the cylindrical section 44.5; and a third, upper shank section, which has a shank widening 44.1.

[0119] The second middle section is located between the first and third shaft sections.

[0120] Advantageously, the extension of the first, lower shaft area in the direction of the plug-in longitudinal axis 44.2 may be at least 30% of the maximum length of the plug-in section 44 in this direction, in order to ensure, in the assembled state, a stable transmission of the forces of the pressure screw 20 and a stable contact of the shaft contact surface 45 with a shaft support surface 18.2 of a lower part.

[0121] Additionally or alternatively, the extension of the second, middle shaft area in the direction of the plug-in longitudinal axis 44.2 may be at least 10% of the maximum length of the plug-in 44 in this direction to ensure sufficient elongation of the plug-in 44 in the direction of the plug-in longitudinal axis 44.2.

[0122] Additionally or alternatively, the extension of the third, upper shaft area in the direction of the plug-in longitudinal axis 44.2 may be at least 5% of the maximum length of the plug-in shank 44 in this direction in order to achieve good load transfer from the chisel holder 30 to the lower part 10 in the event of overload.

[0123] The rear removal surfaces 43.1 , 43.2 are clearly identifiable, at least in some areas, arranged in the feed direction V behind the plug-in extension 44.

[0124] The plug-in connector 44 transitions into the support body 35 at its end facing the support body 35 via a shaft extension 44.1. The shaft extension 44.1 widens the cross-section of the plug-in connector 44 in the direction towards the support body 35 and radially to the plug-in connector's longitudinal axis 44.2, at least in certain areas. Preferably, the shaft extension 44.1 is formed at least in certain areas circumferentially around the plug-in connector 44.

[0125] It is possible that the shaft extension 44.1 widens the cross-section of the plug-in section 44, at least in some areas, at least in the transition to the rear wear surfaces 43.1, 43.2. Additionally or alternatively, it is possible that the shaft extension 44.1 widens the cross-section of the plug-in section 44, at least in some areas, in the transition to the two lateral inclined surfaces.

[0126] 42.1 widened. Additionally or alternatively, it may be provided that the shaft widening 44.1 widens the cross-section of the plug-in insertion 44 at least in the area of ​​the transition to the two front wear surfaces 41.1 , 41.2.

[0127] As can be seen in Figures 5 and 6, the shaft extension 44.1 widens the cross-section of the plug-in connector 44. It can be provided that the shaft extension 44.1 widens the cross-section of the plug-in connector 44 in the area of ​​the two sides associated with the side surfaces 35.4. Preferably, the shaft extension 44.1 extends laterally with widening sides to both sides of the plug-in connector 44 from the rear rear area to the front front area of ​​the plug-in connector 44, widening the cross-section of the plug-in connector 44 in these areas towards the support body 35 and radially towards the plug-in connector longitudinal axis 44.2. Preferably, the greatest extent LE of the widening sides in the direction of the plug-in connector longitudinal axis 44 is2 at least 5%, preferably at least 10%, particularly preferably at least 14% of the maximum length LS of the plug-in end 44, measured in this direction (see Figure 6). The maximum length LS of the plug-in end 44 extends over the shaft widening.

[0128] 44.1 to the support body 35 and preferably includes the greatest extent LE of the widening sides, as clearly shown in Figure 6.

[0129] It has proven advantageous if the widening sides of the shaft widening 44.1 extend over at least 50% of the maximum extent maxE of the cylindrical section 44.5 of the plug-in extension 44, which runs parallel to the central longitudinal plane ME and perpendicular to the plug-in extension longitudinal axis; it is particularly preferred that the widening sides of the shaft widening 44.1 extend over the entire depth of the plug-in extension 44, and in particular are formed circumferentially.

[0130] Preferably, or alternatively, the shaft extension 44.1 can also widen the rear area of ​​the plug-in socket 44. Particularly preferred, as the drawings show, is that the shaft extension 44.1 is continuous.

[0131] In the present embodiment, the front wear surfaces 41.1, 41.2 transition via a rounded transition of the shaft extension 44.1 into the extension sides of the shaft extension 44.1, as shown in Figure 6. The extension sides of the shaft extension 44.1 extend convexly and arcuately to the front end region of the plug-in socket 44.

[0132] The stock extension 44.1 may form a rear stock support 48. The rear stock support 48 has two side contact surfaces 48.1, which are spaced apart from each other. In particular, the side contact surfaces 48.1 may be angled relative to each other in a V-shape.

[0133] As shown in Figure 7, the side contact surfaces 48.1 of the rear shaft assembly 48 can each transition laterally into an associated widening side of the shaft widening 44.1, preferably being that one of the side contact surfaces 48.1 extends at least partially laterally next to one side of the central longitudinal plane ME and the other side contact surface 48.1 extends at least partially laterally next to the opposite side of the central longitudinal plane ME.

[0134] Figure 6 further illustrates that it is also possible for the inclined surface 42.1 to transition laterally into the shaft widening 44.1 via a rounding transition, in particular via a relief groove 49.

[0135] The support body 35, in particular at least a part of the functional surfaces molded onto the support body 35, the front and / or the rear cutting surface 41.1, 41.2, 43.1 and 43.2 and / or the inclined surfaces 42.1 can transition into the shaft extension 44.1 via a rounded transition. The rounded transition is part of the shaft extension 44.1.

[0136] As the illustrations show, the side contact surfaces 48.1 may enclose an angle that preferably opens towards the front of the chisel holder 30.

[0137] Preferably, the side contact surfaces 48.1 can be arranged at an angle to each other in the range of 45° to 100°, preferably between 50° and 90°, and particularly preferably between 66° and 76°. Correspondingly, the clamping surfaces 18.5, 18.6 of the rear overload support area 18.4 of the lower part 10 can be arranged at an angle to each other in the range of 45° to 100°, preferably between 50° and 90°, and particularly preferably between 66° and 76°, as shown in the illustrations.

[0138] In one possible embodiment of a chisel holder 30, the angle between the side contact surfaces 48.1 may be selected to be in the range of 30° to 75°, preferably in the range of 35° to 70°, and particularly preferably in the range of 45° to 55°. Such a configuration is particularly recommended when a chisel holder 30 is provided with two flat rear cutting surfaces 43.1, 43.2 that are angled relative to each other, as described above, for example. Correspondingly, the clamping surfaces 18.5, 18.6 of the rear overload support area 18.4 of the lower part 10 may preferably be angled relative to each other in the range of 30° to 75°, preferably between 35° and 70°, and particularly preferably between 45° and 55°, as shown in the illustrations. Preferably the clamping surfaces 18.5, 18.6 are parallel to the respective associated side contact surfaces 48.1.

[0139] In a further embodiment of a chisel holder 30, the angle between the side contact surfaces 48.1 can also be selected in the range of 37° to 87°, preferably in the range of 42° to 82°, and particularly preferably in the range of 57° to 67°. Such a configuration is particularly recommended when a chisel holder 30 is provided with a flat rear cutting surface 43.1, 43.2 or with two flat rear cutting surfaces 43.1, 43.2 that are parallel to each other, in particular aligned with each other, as described above, for example. Correspondingly, the clamping surfaces 18.5, 18.6 of the rear overload support area 18.4 of the lower part 10 can preferably be angled to each other in the range between 37° and 87°, preferably between 42° and 82°, and particularly preferably between 57° and 67°, as shown in the illustrations.Preferably the clamping surfaces 18.5, 18.6 are parallel to the respective associated side contact surfaces 48.1.

[0140] Figure 14 shows that each side contact surface 48.1 is arranged completely or partially laterally next to the central longitudinal plane ME, such that each side contact surface 48.1 is assigned to one side of the chisel holder 30. Preferably, the side contact surfaces 48.1 do not penetrate the central longitudinal plane ME, as shown in Figure 14. In this case, it is preferably the case that the two side contact surfaces 48.1 are connected to each other directly or indirectly via an overload contact surface 48.2.

[0141] It is conceivable that the two side contact surfaces 48.1 are indirectly connected to the overload contact surface 48.2 via a rounded transition 48.3. Preferably, the side contact surfaces 48.1 and the overload contact surface 48.2 each form the same angle and / or the side contact surfaces 48.1 and the overload contact surface 48.2 are symmetrical relative to the central longitudinal plane ME. Preferably, the overload contact surface 48.2 is designed as a flat surface. The side contact surfaces 48.1 can also be designed as flat surfaces.

[0142] The drawings illustrate that the overload contact surface 48.2 and / or the side contact surfaces 48.1 can transition at least partially into the rear wear surfaces 43.1, 43.2 or the single rear wear surface 43.1, 43.2. Figure 8 illustrates that the plug-in attachment 44 has a shaft section which preferably has at least a partial cylindrical section 44.5. The cylindrical section 44.5 may have a front partial cylindrical surface 44.3 and / or a rear partial cylindrical surface 44.4 oriented opposite to the feed direction. Preferably, the cylindrical section 44.5 forms an at least partially circumferential cylinder which may be interrupted only by one or more lateral indentations 44.6, as shown in Figure 8. The cylinder axis of the cylinder section 44.5 preferably aligns with the plug-in longitudinal axis 44.2 and is particularly preferably located in the central longitudinal plane ME.

[0143] Preferably, the cylinder section 44.5 connects to the shaft widening 44.1.

[0144] In a chisel holder 30 according to the invention, the widening sides of the shank widening 44.1 may transition laterally, at least partially, into the front and / or the rear partial cylinder surface 44.3, 44.4 via rounded transitions, and / or the side contact surfaces 48.1 of the rear shank contact 48 transition at least partially into the rear partial cylinder surface 44.4 via rounded transitions, and / or the overload contact surface 48.2, facing away from the support body 35, transitions at least partially into the rear partial cylinder surface 44.4 via a rounded transition.

[0145] In the region of its free end, the plug-in connector 44 has a front shaft assembly, as illustrated in Figures 5 and 6. The front shaft assembly has a front shaft contact surface 45. Preferably, the front shaft contact surface 45 forms two convex sub-surfaces 45.1, 45.2. The front shaft contact surface 45 and / or at least one of the sub-surfaces 45.1, 45.2 can preferably form a partial cylindrical surface of a cylinder with a contact to the cylinder axis Z, as can be seen, inter alia, in Figures 8 and 9.

[0146] Particularly preferred is the arrangement of the two partial surfaces 45.1, 45.2 spaced apart from each other, with a groove 46 preferably formed in the spaced area. The groove 46 serves to receive the aforementioned shaped element, which is inserted into the recess 18.3 of the lower part 10. This ensures alignment of the chisel holder 30 with respect to the lower part 10 and prevents rotation.

[0147] The groove 46 extends in the direction of the longitudinal extension of the plug-in extension 44 and preferably parallel to the contact cylinder axis Z and / or inclined to the plug-in extension longitudinal axis 44.2. The angle of inclination of the groove 46 (in particular of the groove base) relative to the plug-in extension longitudinal axis 44.2 can preferably be selected in the range between 2° and 10°.

[0148] Figure 8 illustrates that the front convex shank contact surface 45, with its sub-surfaces 45.1, 45.2, can be arranged in a special way. Figure 8 illustrates a cross-sectional surface SF of the chisel holder 30, which is formed by a cutting plane SE. The cutting plane SE runs parallel to and at a distance from the central longitudinal plane ME through the chisel holder 30. The cutting plane SE intersects at least one of the two front cutting surfaces 41.1, 41.2 of the cutting surface pair and the front shank contact surface 45.

[0149] As the drawing shows, a front cutting edge SK of the cutting surface 41.1, 41.2 and a front cutting edge 45.3 of the front shank contact surface 45 are formed in the cut surface. The front cutting edge 45.3 and the front cutting edge SK enclose an undercut angle y of at least 103° and at most 114°. Preferably, the undercut angle y opens towards the front, i.e., in the feed direction V, as shown in Figure 8. The function of this undercut angle y will be explained in more detail later.

[0150] Figure 8 further illustrates that the projections of the plug-in longitudinal axis 44.2 and the cutting edge 45.3 into the central longitudinal plane ME form a shaft angle. <p miteinander einschließen. Dieser Schaftwinkel <p öffnet sich zum freien Ende des Steckansatzes 44 hin. Der Schaftwinkel <p ist vorzugsweise im Bereich zwischen 2° und 10°, besonders bevorzugt im Bereich zwischen 2° und 8°, gewählt. Ausweislich Figur 9 kann es vorzugsweise so sein, dass die vordere Schaft- Anlagefläche 45 eine teilzylindrische Mantelfläche bildet. Hierbei ist es vorzugsweise so, dass die Anlage-Zylinderachse Z der teilzylindrischen Mantelfläche der vorderen Schaft-Anlagefläche 45 und die Steckansatz-Längsachse 44.2 miteinander einen Achsenwinkel q einschließen, der sich hin zum freien Ende des Steckansatzes 44 öffnet.

[0151] The axial angle q between the contact cylinder axis Z of the partially cylindrical outer surface of the front shaft contact surface 45 and the plug-in longitudinal axis 44.2 can be selected in the range between 2° and 10°, preferably in the range between 2° and 8°, to enable secure anchoring of the plug-in end 44 in the plug receptacle 18 of the lower part 10.

[0152] It should be noted again at this point that the cylinder axis of the cylinder section 44.5 is preferably formed by the longitudinal axis 44.2 of the plug-in attachment. Due to the inclination of the contact cylinder axis Z relative to the longitudinal axis 44.2 of the plug-in attachment, the partially cylindrical surface formed by the front shaft contact surface 45 is inclined relative to the cylinder section 44.5 by the axis angle q, preferably in the range between 2° and 10°, particularly preferably between 2° and 8°.

[0153] In the embodiment illustrated in Figure 9, it is provided that, particularly for reasons of symmetry, the plug-in longitudinal axis 44.2 of the plug-in attachment 44 and the contact cylinder axis Z of the partially cylindrical outer surface of the front shaft contact surface 45 run in the central longitudinal plane ME.

[0154] A particularly preferred embodiment of a chisel holder 30 according to the invention can be such that the front cutting edge 45.3 of the shank contact surface and the contact cylinder axis Z run parallel to each other and the axis angle q and the shank angle <p sich somit entsprechen, wie Figur 9 veranschaulicht. Figur 8 veranschaulicht, dass es vorgesehen sein kann, dass zumindest eine Seiten- Anlagefläche 48.1 der hinteren Schaftanlage 48 in der Schnittebene SE eine hintere Schnittkante 48.1.1 in der Schnittfläche SF bildet. Es kann vorgesehen sein, dass

[0155] 1. the rear cutting edge 48.1.1 and / or the overload contact surface 48.2 runs parallel to the plug-in longitudinal axis 44.2 and / or parallel to the contact cylinder axis Z, or that the rear cutting edge 48.1.1 and / or the overload contact surface 48.2 runs at an angle T to the plug-in longitudinal axis 44.2 and / or at an angle to the contact cylinder axis Z, wherein preferably the angle T is selected to be less than 5°.

[0156] 2. The rear cutting edge 48.1.1 and / or the overload support surface 48.2 is at an angle w to the front cutting edge 45.3, the angle w preferably opening towards the insertion side of the chisel holder 30, as shown in Figure 8. Preferably, the angle w between the front cutting edge 45.3 and the rear cutting edge 48.1.1 and / or the overload support surface 48.2 is selected in the range of 0.5° to 7°, preferably in the range of 1.5° to 6°, and particularly preferably in the range of 2.5° to 5°. In this way, a secure load transfer via the rear shank support 48 is guaranteed, especially in the case of overload.

[0157] As shown in Figure 8, among others, the plug-in attachment 44 has a screw receptacle 47 on its rear side, which forms a flat screw pressure surface 47.1. The screw pressure surface 47.1 penetrates the central longitudinal plane ME. The plane in which the screw pressure surface 47.1 lies is at a pressure angle o to the front cutting edge 45.3 or to the contact cylinder axis Z of the cylinder that forms the convex front shaft contact 45. This pressure angle o is preferably selected in the range between 30° and 45°.

[0158] Figures 6 and 8 show the spatial arrangement of the pressure screw 20 to the screw receptacle 47 in the assembled state of the chisel holder 30.

[0159] As illustrated in Figure 14, a relief groove 49 and / or a rounded transition can be arranged in the transition area between the shaft widening 44.1 and the support section 33 of the support body 35. The geometry formed by the relief groove 49 and / or the rounded transition can at least partially surround the plug-in extension 44. A sealing element (not shown) may be accommodated in this relief groove 49 and / or in the area of ​​the rounded transition, which at least partially surrounds the plug-in extension 44.

[0160] A stress-optimized design is achieved in such a construction when a concave rounded transition of the plug-in section 44 is provided to guide the plug-in section 44 into the shaft extension 44.1. Additionally or alternatively, the shaft extension 44.1 can also be provided with a transition geometry featuring a relief groove 49 and / or a rounded surface, by which it transitions into the support body 35.

[0161] To mount the chisel holder 30 to the base 10, the plug-in extension 44 is inserted with its free end into the plug-in receptacle 18. The insertion extension 18.1 facilitates the insertion of the plug-in extension 44.

[0162] The insertion movement of the plug-in end 44 into the plug-in receptacle 18 is limited by the front support surfaces 15.1, 15.2 and the rear support surfaces 16.1 and 16.2 of the lower part 10. The chisel holder 30 abuts these support surfaces 15.1, 15.2, 16.1, 16.2 with its front cutting surfaces 41.1, 41.2 and its rear cutting surfaces 43.1, 43.2.

[0163] The pressure screw 20 can be screwed into the screw receptacle 19 of the lower part 10. The pressure screw 20 then contacts the screw pressure surface 47.1 of the screw receptacle 47. This draws the chisel holder 30 into the socket 18. While the pressure screw 20 is being tightened, the front shaft contact surface 45 slides along the front shaft support surface.

[0164] 18.2 and the chisel holder 30 is pulled into the socket 18. Once the chisel holder 30 has reached its mounting position, the front cutting surfaces 41.1, 41.2 are pressed onto the front support surfaces 15.1, 15.2 and the rear cutting surfaces

[0165] 43.1, 43.2 are pressed onto the rear support surfaces 16.1, 16.2. Simultaneously, the front shaft support surface 45 is also pressed against the front shaft support surface 18.2 of the lower part 10. Thus, the chisel holder 30 is securely fixed in the lower part 10.

[0166] The rear shank support 48, with its side contact surfaces 48.1, is positioned a short distance from the associated clamping surfaces 18.5, 18.6 of the lower part 10. This is illustrated in Figure 13. Furthermore, the overload contact surface 48.2 is positioned a distance from the clamping surface 18.7 of the lower part 10. Preferably, this distance is chosen to be less than 2 mm, preferably less than 1 mm, in order to minimize the formation of the chisel holder 30 in the event of an overload. If an overload now acts on the chisel holder 30, the chisel holder 30 is elastically deformed, and the side contact surfaces 48.1 come into contact with the associated clamping surfaces 18.5, 18.6. Thus, additional support of the chisel holder 30 is achieved.

[0167] If the overload is particularly high, the clamping surfaces 18.5, 18.6 are elastically deformed and deflect outwards towards the corresponding sides of the chisel holder 30. The overload contact surface 48.2 then comes into contact with the clamping surface 18.7. This limits the deflection of the clamping surfaces 18.5, 18.6 to prevent damage to the lower part 10 and to provide an additional support area for distributing the overload.

[0168] After the overload event has ended, the chisel holder 30 returns to its original position as shown in Figure 13.

[0169] In the event of overload, stress conditions arise in the chisel holder 30 that attempt to move the plug-in end 44 of the chisel holder 30 out of the plug-in receptacle 18 in the direction of the plug-in end's longitudinal axis 44.2. Since, as described above, the front shank contact surface 45, together with the front cutting surfaces 41.1, 41.2, each encloses the undercut angle y, which is selected in the range between at least 103° and at most 114°, an undercut acting in the direction of the plug-in end's longitudinal axis 44.2 is created, thus generating a positive-locking connection in the direction of the plug-in end's longitudinal axis 44.2. This positive-locking connection therefore prevents the plug-in end 44 from being pulled out of the plug-in receptacle 18 in the event of overload.

[0170] Figure 2 illustrates that, with the chisel holder 30 mounted, an ejector tool can be guided through the ejector receptacle 36 towards the chisel holder 32. Since the ejector receptacle 36 widens radially towards the central longitudinal axis M of the chisel holder 32, ample space is provided for the ejector tool. This facilitates the removal of the chisel.

[0171] During machining, the machining forces are transferred from the tool holder 30 to the lower part 10. The force is transferred from the front cutting surfaces 41.1, 41.2 and the rear cutting surfaces 43.1, 43.2 of the tool holder 30 to the front support surfaces 15.1, 15.2 and the rear support surfaces 16.1, 16.2 of the lower part 10.

[0172] As the tool's operating time increases, the front cutting surfaces 41.1, 41.2 and the rear cutting surfaces 43.1, 43.2 and / or the front support surfaces 15.1, 15.2 and the rear support surfaces 16.1 and 16.2 may wear down. This causes the tool holder 30 to shift relative to the lower part 10. The use of the inclined surfaces 42.1, which face the lower part 10 in the area of ​​the recesses 17, creates a generous space for this wear (see Figure 3). This compensates for the wear. Thus, the tool holder 30 can continue to be reliably and correctly supported on the front and rear support surfaces 15.1, 15.2, 16.1, 16.2 of the lower part 10.

Claims

Claims 1. A chisel holder (30) for a soil cultivation machine, in particular for a road milling machine, a stabilizer, a recycler, or a surface miner, with a support body (35) which has a chisel receptacle (32) in the area of ​​a working side or at least carries a cutting tip, wherein the support body (35) carries a plug socket (44) on a plug socket side, wherein the plug socket (44) has a plug socket longitudinal axis (44.2), and wherein the plug socket longitudinal axis (44.2) lies in a central longitudinal plane (ME) of the chisel holder (30), characterized in that the plug socket (44) at its end facing the support body (35) transitions directly or indirectly into the support body (35) by means of a shank extension (44.1), and that the shank extension (44.1)1) with widening sides extending laterally to both sides of the plug-in attachment (44) from the rear rear area to the front front area of ​​the plug-in attachment (44) and widening the cross-section of the plug-in attachment (44) in these areas at least partially in the direction towards the support body (35) and radially to the plug-in attachment longitudinal axis (44.2), and that the greatest extent of the widening sides in the direction of the plug-in attachment longitudinal axis (44.2) is at least 5%, preferably at least 10%, particularly preferably at least 14% of the maximum length of the plug-in attachment (44) in this direction.

2. Chisel holder (30) according to claim 1, characterized in that the support body (35) has two front cutting surfaces (41.1, 41.2) forming a pair of cutting surfaces, which are angled to each other such that they enclose a transverse support angle (a) and which are arranged at least partially in front of the plug-in end (44), wherein the front cutting surfaces (41.1, 41.2) extend laterally from the plug-in end (44) towards the rear of the chisel holder (30) beyond the longitudinal axis (44.2) of the plug-in end (44), and wherein the front cutting surfaces (41.1, 41.2), preferably via a rounding transition, into the widening sides of the shaft widening (44.1 ).

3. Chisel holder (30) according to claim 1 or 2, characterized in that the support body (35) has at least one rear cutting surface (43.1 , 43.2) which forms an obtuse longitudinal support angle (β) with at least one of the front cutting surfaces (41.1 , 41 .2) and which is arranged at least partially behind the plug-in extension (44).

4. Chisel holder (30) according to one of claim 3, characterized in that the front cutting surfaces (41.1 , 41.2) transition laterally of the plug-in end (44) via at least one follow-up surface, which may in particular be designed as an inclined surface (42.1 ), directly or indirectly into the rear cutting surface (43.1 , 43.2) or into a rear cutting surface (43.1 , 43.2).

5. Chisel holder (30) according to claim 4, characterized in that the inclined surface (42.1 ) transitions laterally into the shank extension (44.1 ) and / or that the rear cutting surfaces (43.1 , 43.2) or one rear cutting surface (43.1 , 43.2) transition at least partially or directly or indirectly into the shank extension (44.1 ).

6. Chisel holder (30) according to one of claims 1 to 5, characterized in that the widening sides of the shank widening (44.1) extend convexly and arcuately and / or in the form of flat surfaces at least partially towards the front end area of ​​the plug-in end (44).

7. Chisel holder (30) according to one of claims 1 to 6, characterized in that the shank widening (44.1 ) forms a rear shank support (48) with two mutually spaced side contact surfaces (48.1 ), wherein it is preferably provided that the side contact surfaces (48.1 ) are designed at least partially as flat, concave and / or convex surfaces.

8. Chisel holder (30) according to claim 7, characterized in that the side contact surfaces (48.1 ) each transition laterally into an associated widening side of the shank widening (44.1 ), wherein it is preferably provided that one of the side contact surfaces (48.1 ) extends at least partially laterally next to one side of the central longitudinal plane (ME) and the other side contact surface (48.1 ) extends at least partially laterally next to the opposite side of the central longitudinal plane (ME).

9. Chisel holder (30) according to claim 7 or 8, characterized in that the side contact surfaces (48.1) are arranged in a V-shape relative to each other, in particular at an angle to each other, wherein it is preferably provided that the angle between the two side contact surfaces (48.1) is selected in the range between 45° and 100°, preferably between 50° and 90°, particularly preferably between 66° and 76°, or that the angle enclosed by the side contact surfaces (48.1) with each other is selected in the range between 30° and 75°, preferably in the range between 35° and 70°, particularly preferably in the range between 45° and 55°, or that the angle enclosed by the side contact surfaces (48.1) with each other is selected in the range between 37° and 87°, preferably in the range between 42° and 82°, particularly preferably in the range between 57° and 67°.

10. Chisel holder (30) according to one of claims 1 to 9, characterized in that the side contact surface (48.1 ) are connected to each other by means of a rear overload contact surface (48.2), wherein it is preferably provided that the overload contact surface (48.1 ) is designed as a flat surface, which is preferably arranged at an angle to the side contact surfaces (48.1 ).

11. Chisel holder (30) according to one of claims 1 to 10, characterized in that the shank widening (44.1) transitions in the direction of the longitudinal axis (44.2) of the plug-in attachment and in the direction towards the free end of the plug-in attachment into a partial cylindrical surface (44.3, 44.4) of the plug-in attachment (44), wherein the partial cylindrical surface (44.3, 44.4) preferably comprises a partial surface of at least a partially circumferential cylinder section (44.5) whose cylinder axis coincides with the plug-in longitudinal axis (44.2).

12. Chisel holder (30) according to claim 11, characterized in that the widening sides of the shank widening (44.1) transition laterally, at least partially, into the front and / or the rear partial cylindrical surface (44.3, 44.4) via rounding transitions and / or that the side contact surfaces (48.1) of the rear shank contact (48) transition at least partially into the rear partial cylindrical surface (44.4) via rounding transitions, and / or that the overload contact surface (48.2) transitions at least partially into the rear partial cylindrical surface (44.4) via a rounding transition.

13. Chisel holder (30) according to one of claims 1 to 12, characterized in that the shank widening (44.1 ) is formed at least partially circumferentially at the plug-in end (44).

14. Chisel holder (30) according to one of claims 1 to 13, characterized in that the plug-in end (44) has at least one convex, in particular a partially cylindrical, front shank contact surface on its front side, and wherein it is preferably provided that the front shank contact surface forms two partial surfaces (45.1, 45.2) which are spaced apart from each other by a groove (46), wherein the groove (46) extends in the direction of the longitudinal extent of the plug-in end (44), wherein it is particularly provided that the groove (46) extends inclined to the longitudinal axis (44.2) of the plug-in end.

15. Tool system comprising a chisel holder (30) according to one of claims 1 to 14 and a lower part (10), wherein the chisel holder (30) is attached with its plug-in end (44) in a plug-in receptacle (18) of the lower part (10) and wherein the shank extension (44.1 ) is received at least partially in an insertion extension (18.1 ) of the lower part (10).

Citation Information

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