Reaming element, reaming tool and method for the production thereof
10131008 ยท 2018-11-20
Assignee
Inventors
Cpc classification
B23D77/02
PERFORMING OPERATIONS; TRANSPORTING
B23D2277/36
PERFORMING OPERATIONS; TRANSPORTING
B23D2277/10
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A reaming element for a reaming tool capable of being driven to rotate about an axis of rotation for fine machining of a prefabricated bore, the reaming element having a front main cutting edge and a secondary cutting edge adjoining the radially outward end of the main cutting edge, wherein the main cutting edge and the secondary cutting edge delimit a chip-removing surface, and a polished chamfer, which forms a support zone for guidance on the wall of the bore, is formed between the secondary cutting edge and the rear flank face thereof. The support zone is smaller than the polished chamfer and is kept a lateral distance away from the secondary cutting edge by an intermediate part, more particularly, a recessed intermediate part of the polished chamfer.
Claims
1. A reaming element for a reaming tool, capable of being driven rotatingly about a rotational axis, for fine machining of a previously produced bore, comprising a frontal main cutting edge and a secondary cutting edge directly adjacent to and extending from a radially outer end of the main cutting edge, wherein the main cutting edge and the secondary cutting edge delimit a cutting face, and a ground land, which forms a support zone for guidance on a wall of the bore is configured between the secondary cutting edge and a rear flank of the reaming element, characterized in that the support zone is smaller in area than the land and is spaced, by an intermediate section of the land, at a distance from the secondary cutting edge, the intermediate section is formed by a grooved recess between the secondary cutting edge and the support zone, the distance of the support zone from the secondary cutting edge, measured in a peripheral direction from an outer peripheral surface of the reaming tool in a rotational direction, is 0.005 to 0.05 times an outer pitch circle diameter of the main cutting edge and the width of the support zone, measured in the peripheral direction, is between 0.05 and 0.75 mm.
2. The reaming element as claimed in claim 1, characterized in that the land has a circular arc contour and the intermediate section contacts material removed in the region of the circular arc contour.
3. The reaming element as claimed in claim 1, characterized in that the recess possesses a maximum depth of less than 10 m.
4. The reaming element as claimed in claim 1, characterized in that the width of the support zone, measured in the peripheral direction, is between 0.05 and 0.15 mm.
5. The reaming element as claimed in claim 1, characterized in that the distance of the support zone from the secondary cutting edge, measured in the peripheral direction, is 0.01 times the outer pitch circle diameter of the main cutting edge.
6. A reaming tool having a rotatingly drivable main body and a plurality of the reaming elements as claimed in claim 1, distributed over the periphery of the main body, wherein the reaming elements are formed in one piece onto the main body or are fixedly connected, as an attachment, to the main body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention is explained in greater detail below with reference to the illustrative embodiments represented schematically in the drawing, wherein:
(2)
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(9) The reaming tool 10 represented in
(10) The elongated reaming elements 16 shown in various embodiments in
(11) Between the secondary cutting edge 22 and the rear flank 30 thereof is configured a narrow land 32, which, according to the basic shape, has the contour of a circular or cylindrical grinding arc 34 and, in the various embodiments, is differently configured as a result of material removal. A support zone 36 for support against the inner wall of the bore to be machined is respectively formed, which support zone has a reduced surface area in comparison to the land 32 as a whole and is kept, by an intermediate section 38 of the land 32, at a lateral distance from the secondary cutting edge 22.
(12) In the illustrative embodiment shown in
(13) Advantageously, the width of the recess 40 is chosen such that the distance of the support zone 36 from the secondary cutting edge 22, measured in the peripheral direction, is 0.005-0.05 times, preferably 0.01 times, the outer pitch circle diameter of the main cutting edge 20.
(14) The illustrative embodiment shown in
(15) In the third variant shown in
(16) In the manufacture of the tool, after the reaming elements 16 have been soldered onto the main body 14, the land 32 is circularly ground in accordance with the desired bore diameter. A minimal axial conicity is here provided, so that the circular grinding diameter slightly declines counter to the direction of advance. After this, the chip flutes 18 are ground in and the cutting faces 24 and rear flanks 30 of the reaming elements 16 are finish-ground. A further method step comprises the grinding of the main cutting edge 20 or of the lead geometry, which is defined, in particular, by the lead angle, the rake angle and the primary and secondary clearance angles. In the subsequent grinding in of the intermediate section 38, a regional recess 40 or bevel 44, 46 of the land 32 is produced, wherein the remaining region of the land forms a support zone 36 for the guidance on the bore wall. Of course, additional machining steps such as coating or cleaning may possibly be necessary in order to complete the manufacture of the tool.