The invention relates to a drilling tool, in particular for metallic materials.
These drilling tools are used in automotive engineering, for example in the production of cylinder head holes, for drilling out of a solid material or for enlarging already prefabricated drill holes.
Thus EP 0 750 960 B1 discloses a generic drilling tool which has a conventional clamping shaft and an adjoining cylindrical drill body. Between the face side of the drill body and the clamping shaft there extend two groove-shaped chip spaces. They are each bordered by side walls, of which one side wall at a time bears a cutting element on the face side of the drill body. Shavings from the drill hole are discharged to the outside in the two chip spaces during the drilling process.
The side wall of the respective chip space, which wall bears the cutting element, is made planar here and ends flush with the top of the cutting element. The two chip spaces extend partially helically in the longitudinal axis of the drill body.
This partially helical pattern of the chip spaces and the radially open configuration of the chip spaces adversely affect the discharge of shavings from the drill hole. Thus the shavings can be forced to the drilling wall as a result of the centrifugal force. Especially in a prefabricated cylinder head hole in whose walls there are cavities such as pockets or transverse holes, this has the disadvantage that shavings stick in the cavities. The shavings must therefore be manually cleared from the cavities after the drilling process, in a time-consuming procedure, in order to ensure their serviceability.
The object of the invention is to devise a drilling tool, in particular for metallic materials, in which the shavings which form during the drilling process are reliably removed from the holes.
According to the invention, the side wall which bears the cutting element has a web which is drawn up from the side wall in the peripheral direction and which extends in the longitudinal direction of the drill. The web which is drawn up in the peripheral direction at least partially closes the chip space on the outside. The shavings transported through the chip space during the drilling process are thus not forced against the drill wall as a result of centrifugal force, but against the web so that the shavings are discharged without contact relative to the drill wall.
The web according to the invention can thus border the chip space to the outside in the radial direction. It is especially preferable if the web is formed on the outer peripheral side edge of the side wall. The groove which has thus been formed between the web and the opposite side wall of the chip space is thus made relatively wide, i.e., it is larger than the width of the split and/or unsplit shavings.
According to the invention, the resulting shavings are thus pressed as a result of the acting centrifugal forces into the groove which can extend preferably in a straight line, without coiling, in the longitudinal direction of the drill body. This straight groove promotes prompt discharge of shavings.
To form the aforementioned groove, the web in one embodiment with its upper edge can end essentially flush with the top of the cutting element. In this case, the groove which is bordered by the web with its groove bottom is displaced to the rear relative to the cutting element in the direction of rotation of the drilling tool. The shavings can thus be pressed reliably into the groove as a result of the acting centrifugal force.
According to another embodiment, the web can alternatively project over the top of the cutting element, as a result of which accordingly the groove height can be easily raised. In this connection the bottom of the groove formed between the web and the opposite side wall of the chip space can end essentially flush with the top of the cutting element. In order to support the transport of shavings from the face-side cutting element out of the chip space, the depth of the groove formed between the web and the opposite side wall of the chip space can be increased in the direction of the clamping shaft.
As already mentioned, it is especially preferred if the groove which is bordered by the web runs between the face side of the drill body and the clamping shaft. In this way a trough-shaped chip space is made available without any coiling, which runs in a straight line and which enables prompt removal of the shavings. The radial angle of the side walls of the chip space can be zero in this case.
The conveyance of the shavings through the chip space is further promoted when the side walls of the chip space are made planar and/or are arranged essentially at a right angle to one another. Preferably the groove formed between the web and the opposite side wall of the drill body can be laterally opened on the shaft side with an outlet in order to enable conveyance of the shavings out of the chip space.
Discharge of the chips can be supported by the use of a coolant which is routed with high pressure in the region of the face side of the drilling tool out of the coolant exit into the chip space and flushes the chips out of the hole.
According to the invention, the coolant can be routed with high pressure by way of a first coolant exit and a second coolant exit into the chip space. The two coolant exits can be positioned to one another such that the resulting shavings spaced apart from the drill wall in the region of an apex are bunched between the walls of the chip space.
Bunching of the resulting shavings can be supported using the emerging coolant flows when the two coolant channels discharge into different side walls of the chip space.
To supply the drilling tool with coolant, the drilling tool can have at least one central coolant line, from which a first and a second coolant channel branch off. Alternatively the central coolant line can be flow-connected by way of a transverse hole to the first and the second coolant channel. In this case, the first coolant channel can discharge as a main channel with a larger flow cross section into the side wall of the chip space which is opposite the web. The second coolant channel can discharge as a secondary channel with a smaller flow cross section into the side wall which bears the cutting element. The arrangement of the second coolant channel underneath the cutting element can further support discharge of the shavings and bunching of the shavings in the apex area.
The flow velocity of the coolant emerging from the channels in the longitudinal direction of the drill body depends on the volumetric flow and on the exit diameter of the coolant channels. An additional coolant velocity component is produced by the centrifugal force when the drilling tool is rotating. The light flow velocity of the coolant leads to a low static pressure of the coolant, resulting in the production of a suction action in the chip space. A large dynamic pressure which arises as a result of the high flow velocity causes the coolant to be able to efficiently remove the shavings from the chip space.
Three embodiments of the invention are described below using the attached figures.
Of the two side walls 11, 13 of the chip spaces 5, side wall 13 on its face end has a pocket-shaped recess in which a plate-shaped cutting element 15 sits, the top side thereof ending flush with the side wall 13. The cutting element 15 with its face-side cutting edge 17 projects slightly over the face surface 9 of the drill body 3 and radially protrudes slightly over the periphery of the drill body, as is indicated in
As follows further from
A web 19 is molded in each case onto the outer peripheral side edge of the side wall 13 of the respective chip space 5, which wall bears the cutting element 15. The web 19 is drawn up in the peripheral direction of the drilling tool and extends in the longitudinal direction of the drill as far as the clamping shaft 1. The web 19, as shown in
As follows from
As follows from
In order to supply the drilling tool with a coolant, in
In a drilling process the resulting shavings, as a result of centrifugal force, are pressed into the groove 21 of the rotating drilling tool and therefore are held without contact relative to the drill wall by means of the web 19. As a result of the groove depth which rises from a1 to a2, transport of shavings in the direction of the groove outlet 22 is supported. Additional support of removal of the shavings takes place by the coolant which is fed with high pressure into the respective chip space 5 through the first coolant exit 31 as shown in
The chip spaces 5 are supplied with coolant analogously to the first embodiment means of the central coolant lines 23 as well as the first and second coolant channels 27 and 28.
In the third embodiment of
This yields a groove depth which has been increased compared to the first and second embodiment, as a result of which the resulting shavings can be discharged even more reliably from the drill hole in the groove 21, and therefore without contact relative to the drill wall.
Number | Date | Country | Kind |
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10 2006 027 552.7 | Jun 2006 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2007/005011 | 6/6/2007 | WO | 00 | 12/11/2008 |