Method for the production of drill holes in difficult to machine materials

11471964 · 2022-10-18

Assignee

Inventors

Cpc classification

International classification

Abstract

The present invention relates to a method for the production of drill holes in difficult to machine materials, in which a removal of material takes place in order to produce a drill hole by electrochemical erosion of material by an electrode that is moved in the longitudinal direction of the drill hole being produced in the direction onto the material to be processed at a feed rate, wherein the drilling has at least two steps, wherein, in the first step, the electrochemical processing takes place, and wherein, in a second step, the further processing of the drill hole to the final diameter takes place by machining processing or by erosion or by an electrochemical processing.

Claims

1. A method for the production of drill holes having improved surface quality and dimensional accuracy in difficult to machine materials, in which a removal of material takes place in order to produce a drill hole by electrochemical erosion of material by first and second electrodes that are moved in the longitudinal direction of the drill hole being produced in the direction onto the material to be processed at a feed rate, wherein the drilling proceeds in at least two steps, wherein, in the first step, the electrochemical processing takes place using the first electrode having an electrode tip on which at least one electrochemically active side wall is formed that runs obliquely to the longitudinal axis of the first electrode, in which the feed rate of the first electrode is less than or equal to 5 mm/min during the electrochemical material erosion and the drill hole is fabricated with a drill hole diameter that is 0.05 to 2 mm smaller than a final diameter of the drill hole, wherein, in a second step, the further processing of the drill hole to the final diameter takes place by an electrochemical processing using the second electrode having at least one side wall that encloses an angle between 1 and 60° with the longitudinal axis of the electrode that runs along the direction of the electrode advance in which the feed rate of the second electrode is greater than 50 mm/min and less than or equal to 60 mm/min, and wherein the difficult to machine materials are alloys based on Ti, Fe, Ni, or Mo, and the difficult to machine materials are alloys produced by powder metallurgy.

2. The method according to claim 1, wherein, during the electrochemical processing in the second step, a gap is established between the second electrode and the material being processed, the gap being less than or equal to 75 μm.

3. The method according to claim 1, wherein the first and/or second electrodes are rotated around the electrode longitudinal axis during the electrochemical processing in the first and/or second step.

4. The method according to claim 1, wherein, after the second step of the processing, a third processing step takes place, wherein, in the third step, the further processing of the drill hole to the final diameter takes place by machining processing or by erosion.

5. The method according to claim 1, wherein, during the electrochemical processing, the edge of the drill hole at an inlet and/or outlet side of the drill hole for the electrode is covered by a seal having an opening corresponding to the size of the drill hole, or a metal sealing element that is likewise to be drilled through.

6. The method according to claim 1, wherein, during the electrochemical processing, an electrolyte necessary for processing is introduced in the direction of advance of the second electrode, during the electrochemical processing in the first step of the drilling, and/or is introduced counter to the direction of advance of the second electrode, during the electrochemical processing in the second step of the drilling.

7. The method according to claim 1, wherein, during the electrochemical processing, an electrolyte is provided on the side of the material being processed, which is the outlet side of the drill hole for the first and second electrodes, prior to the withdrawal of the first and second electrodes.

8. The method according to claim 1, wherein a plurality of drill holes is produced in parallel with a plurality of first and second electrodes running in parallel.

9. The method according to claim 1, wherein the method is used for components of turbomachines or aircraft engines.

10. The method according to claim 1, wherein the obliquely running side wall is the side wall of a cone or truncated cone.

Description

BRIEF DESCRIPTION OF THE DRAWING FIGURES

(1) In the attached drawings, in a purely schematic way:

(2) FIG. 1 shows a sectional view of an electrochemical drilling process according to a first embodiment;

(3) FIG. 2 shows a sectional view of an electrochemical drilling process comparable to FIG. 1 according to a second embodiment;

(4) FIG. 3 shows a top view onto the electrode tip of the shaped cathode used in FIG. 2;

(5) FIG. 4 shows a sectional view of an electrochemical drilling process comparable to FIGS. 1 and 2 according to a third embodiment;

(6) FIG. 5 shows a top view onto the electrode tip of the shaped cathode used in FIG. 4;

(7) FIG. 6 shows a sectional view of an electrochemical drilling process comparable to FIGS. 1, 2 and 4 according to a fourth embodiment;

(8) FIG. 7 shows a sectional view of an electrochemical drilling process comparable to FIGS. 1, 2, 4 and 6 according to a fifth embodiment; and

(9) FIG. 8 shows a sectional view of an electrochemical drilling process comparable to FIGS. 1, 2, 4, 6 and 7 according to a fifth embodiment.

DESCRIPTION OF THE INVENTION

(10) Further advantages, characteristics, and features of the present invention will become apparent in the following detailed description of the embodiment examples. Of course, the invention is not limited to these embodiment examples.

(11) FIG. 1 shows in a purely schematic representation a sectional view through a component 1 being drilled and an electrode 2 during the process of electrochemical drilling. FIG. 1 shows the state in which a part of the drill hole has already been introduced in the component 1. Correspondingly, the electrode 2 has already penetrated partially into the material of the component 1. The arrows show the flow of electrolyte in the direction of flow, with which it is ensured that electrolyte that is sufficient for the electrochemical erosion of the material is present in the working gap 4 between the electrode 2 and the component 1. An internal flushing is also possible. During the drilling, an electrical potential is applied between the electrode 2 or cathode 2 and the component 1, so that the material of the component 1 is correspondingly dissolved. The feed rate by which the drilling process is conducted results from the path of the electrode 2 covered per unit of time in the longitudinal direction 5 of the electrode 2. According to the invention, initially, in a first step, a hole is drilled at a low feed rate, this hole being dimensioned smaller than the drill hole that will finally be provided in the component. Correspondingly, in a second step (after the drilling of the drill hole in the first step), the drill hole is widened by introducing a second hole concentric to the first drill hole using a correspondingly greater dimensioned electrode 2 with a higher feed rate. Due to the high feed rate, it can be achieved that the side walls 21 of the drill hole 20 have a smooth surface.

(12) Alternatively, the introduction of the drill hole or the widening of the drill hole 20 in the second step can be conducted by mechanical or machining material processing, for example by milling, grinding, honing, or lapping, or by erosion.

(13) Additionally, in the case of electrochemical drilling, during the second step of the processing, thus when bringing the drill hole to the final dimension, a shaped cathode is utilized, in which one or more side walls 8 of the shaped cathode 2 are inclined at an angle α of 1° to 60° to the side wall 21 of the drill hole 20 or to the longitudinal axis 5. Examples of such shaped cathodes 2 are illustrated in FIGS. 2 to 6.

(14) FIG. 2 shows a shaped cathode 2 in a representation similar to that in FIG. 1 during the drilling of a drill hole 20 in the component 1, wherein the shaped cathode 2 has an electrode tip 6 running conically onto the end face 7 of the electrode 2, so that the conical side wall 8 is inclined at an angle α to the longitudinal axis 5 of the electrode 2 and to the side wall 21 of the drill hole 20.

(15) FIG. 3 shows the electrode tip 6 in a top view onto the end face 7 of the electrode 2, so that the end face 7 of the electrode 2 as well as the conical side wall 8 of the electrode 2 can be seen in FIG. 3.

(16) FIGS. 4 and 5 show another exemplary embodiment of a shaped cathode 2, in which an electrode tip 16 with a double-pitch roof shape having two side walls 18 inclined toward the longitudinal axis 5 of the electrode 2 and tapering toward the end face 17 are provided, wherein, contrary to the purely schematic representation, the end faces 17 can be rounded. The electrode 2 is introduced in rotating manner, wherein the electrode 2 is rotated around a central axis of rotation parallel to the longitudinal axis 5, so that at a sufficiently high speed, the two obliquely inclined side walls 18 act as a conically tapering side wall and the edge at the end face 17 represents a planar surface.

(17) FIG. 6 shows another embodiment of a shaped cathode 2 having an electrode tip 26, for which a planar end face 27 is provided, which has a shape and a diameter corresponding to the drill hole 20 being introduced, wherein the electrode 2 is tapered pointing away from the end face 27, so that again a conically tapering side wall 28 is formed, which encloses an angle α to the longitudinal axis 5 of the electrode 2.

(18) Due to the side walls 8, 18, 28 of the electrode 2 running obliquely to the longitudinal axis 5 or to the side wall 21 of the drill hole 20, a smoothing of the surface of the side walls 21 is also brought about.

(19) FIG. 7 shows a sectional view in the case of an electrochemical drilling, in which the drill hole 20 is already formed throughout in the component 1. FIG. 7 illustrates that, during the electrochemical drilling, elements for electrolyte conveyance 9 can be arranged and these prevent the electrolyte from reaching a region of the component 1 that is not to be processed. In the region of the drill hole 20, correspondingly, a seal 10 can be provided, which covers the edge of the drill hole 20 and seals off the electrolyte conveyance 9.

(20) Corresponding measures for electrolyte conveyance 9 and for sealing can be provided both on the inlet side of the electrode 2 into the drill hole 20 as well as on the opposite-lying side of the component at the outlet side of the electrode 2 from the component 1.

(21) Moreover, FIG. 7 shows that an introduction of electrolyte can also be provided by a flow 3 of electrolyte at the outlet side, so that a sufficient provision of electrolyte is assured during the penetration of the electrode 2.

(22) Additionally, particularly in the case of electrochemical processing in the second step, thus the final processing of the drill hole 20, an electrolyte flow 3 can be provided opposite to the direction of advance of the electrode 2.

(23) FIG. 8 shows another exemplary embodiment, wherein the electrode 2 has first created a part of the drill hole 2, while a thickness of the component 1 still remains to be drilled. As has already been mentioned above, a supply of electrolyte can also be assured at the site of penetration in order to be able to provide sufficient electrolyte in the penetration region during the penetration of the electrode 2. Correspondingly, in this exemplary embodiment, a sealing element 11 of a metal material is provided at the outlet side, and this sealing element completely covers the drilling opening being drilled up to and over the edge, and has a penetration site 12, which also will be drilled through in order to ensure a sharp outlet edge of the drill hole. Correspondingly, in this embodiment, the provision of an electrolyte conveyance can be omitted at the outlet side of the electrode 2, since it is assured by the sealing element 11 that sufficient electrolyte can be provided in the drill hole 20 up to the conclusion.

(24) Although the present invention has been described in detail on the basis of the embodiment examples, it is obvious to the person skilled in the art that the invention is not limited to these embodiment examples, but rather that modifications are possible in a way such that individual features can be omitted or other kinds of combinations of features can be produced without departing from the protective scope of the appended claims. In particular, the present disclosure encompasses all combinations of the individual features shown in the different examples of embodiment, so that individual features that are described only in conjunction with one exemplary embodiment can also be used in other exemplary embodiments or combinations of individual features that are not explicitly shown can also be employed.