Geometric control and best fitting of electric discharge machining tools

US10850339B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10850339-B2
Application numberUS-201515512179-A
CountryUS
Kind codeB2
Filing dateSep 16, 2015
Priority dateSep 17, 2014
Publication dateDec 1, 2020
Grant dateDec 1, 2020

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A method for checking a geometry of an electric discharge machining electrode is described. The method comprises the following steps: providing a file containing a native 3D-model of the electric discharge machining electrode; providing a manufactured electric discharge machining electrode based on the native 3D-model; light scanning a set of images of the manufactured electric discharge machining electrode in different positions and generating therewith a scanned 3D-model of the manufactured electric discharge machining electrode; comparing the native 3D-model and the scanned 3D-model and generating electrode compensation coordinates for an electric discharge machining apparatus, to correct an electrode path during electric discharge machining.

First claim

Opening claim text (preview).

What is claimed is: 1. A method for checking a geometry of an electric discharge machining electrode, the method comprising: providing a file containing a native 3D-model of the electric discharge machining electrode; providing a manufactured electric discharge machining electrode based on the native 3D-model; light scanning a set of images of the manufactured electric discharge machining electrode in different positions and generating a scanned 3D-model of the manufactured electric discharge machining electrode; comparing the native 3D-model and the scanned 3D-model and generating electrode compensation coordinates for an electric discharge machining apparatus, to correct an electrode path during electric discharge machining; defining a set of points on a surface of the electric discharge machining electrode in the native 3D-model; generating a set of geometrical elements centered at the points in the native 3D-model; projecting the set of points on the surface of the electric discharge machining electrode in the scanned 3D-model of the manufactured electric discharge machining electrode; applying a set of geometrical elements centered at the points projected on the surface of the scanned 3D-model of the manufactured electric discharge machining electrode; and displacing the scanned 3D-model of the manufactured electric discharge machining electrode with respect to the native 3D-model to minimize a distance between the geometrical elements on the native 3D-model and the geometrical elements on the scanned 3D-model of the manufactured electric discharge machining electrode. 2. The method of claim 1 , wherein the geometrical elements are spheres, each sphere being centered at a corresponding one of the set of points. 3. The method of claim 1 , wherein the step of displacing the scanned 3D-model of the manufactured electric discharge machining electrode with respect to the native 3D-model further comprises: rotating the scanned 3D-model of the manufactured electric discharge machining electrode around a rotation axis, and translating the scanned 3D-model of the manufactured electric discharge machining electrode along at least a first translation axis. 4. The method of claim 3 , wherein the first translation axis and the rotation axis are mutually orthogonal. 5. The method of claim 1 , further comprising the step of mounting the scanned electric discharge machining electrode on an electric discharge machining apparatus, wherein parameters defining the displacement of the scanned 3D-model of the manufactured electric discharge machining electrode are provided to the electric discharge machining apparatus and used by the electric discharge machining apparatus as offset values for controlling the electric discharge machining electrode mounted on the electric discharge machining apparatus. 6. The method of claim 4 , wherein a rotation displacement around the rotation axis, a first translation displacement along the first translation axis and a second translation displacement along a second translation axis are used as offset values in the electric discharge machining apparatus equipped with the electric discharge machining electrode. 7. A method for checking a geometry of an electric discharge machining electrode, the method comprising: providing a file containing a native 3D-model of the electric discharge machining electrode; providing a manufactured electric discharge machining electrode based on the native 3D-model; light scanning a set of images of the manufactured electric discharge machining electrode in different positions and generating a scanned 3D-model of the manufactured electric discharge machining electrode; and comparing the native 3D-model and the scanned 3D-model and generating electrode compensation coordinates for an electric discharge machining apparatus, to correct an electrode path during electric discharge machining, wherein the electric discharge machining electrode comprises a holder area, intended for connection of the electric discharge machining electrode to a mounting support, and a working area, intended for co-action with a workpiece to be machined; the working area comprises a suction surface and a pressure surface configured for machining a suction surface and a pressure surface of an impeller vane of a turbomachine, and further comprises a shroud surface and a hub surface configured for machining a shroud surface and a hub surface of the impeller vane; and the geometrical elements are applied on points located on the suction surface and on the pressure surface, but not on the shroud surface and on the hub surface. 8. The method of claim 1 , wherein the step of light scanning a set of images of the manufactured electric discharge machining electrode comprises the step of: rotating and tilting the manufactured electric discharge machining electrode around a rotation axis and around a tilting axis and scanning images of the manufactured electric discharge machining electrode in a plurality of positions thereof. 9. A method for checking a geometry of an electric discharge machining electrode, the method comprising: providing a file containing a native 3D-model of the electric discharge machining electrode; providing a manufactured electric discharge machining electrode based on the native 3D-model; light scanning a set of images of the manufactured electric discharge machining electrode in different positions and generating a scanned 3D-model of the manufactured electric discharge machining electrode; and comparing the native 3D-model and the scanned 3D-model and generating electrode compensation coordinates for an electric discharge machining apparatus, to correct an electrode path during electric discharge machining, wherein the step of light scanning the set of images of the manufactured electric discharge machining electrode comprises light scanning images of a plurality of geometric elements integrally moving with the manufactured electric discharge machining electrode; the scanned 3D-model of the manufactured electric discharge machining electrode contains the plurality of geometric elements; and the step of comparing the native 3D-model and the scanned 3D-model of the manufactured electric discharge machining electrode comprises a preliminary step of generating a coordinate system for spatially positioning the scanned 3D-model relative to a spatial position of the native 3D model. 10. The method of claim 9 , wherein the elements are spheres. 11. A method for checking a geometry of an electric discharge machining electrode, the method comprising: providing a file containing a native 3D-model of the electric discharge machining electrode; providing a manufactured electric discharge machining electrode based on the native 3D-model; light scanning a set of images of the manufactured electric discharge machining electrode in different positions and generating a scanned 3D-model of the manufactured electric discharge machining electrode; and comparing the native 3D-model and the scanned 3D-model and generating electrode compensation coordinates for an electric discharge machining apparatus, to correct an electrode path during electric discharge machining, wherein the native 3D-model contains information on geometric tolerance ranges, which the manufactured electric discharge machining electrode must match, and wherein the method further comprises the step of checking if the scanned 3D-model of the manufactured electric discharge machining electrode matches the tolerance ranges. 12. The method of claim 11 , wherein different tolerance ranges are applied to different portions of the manufactured electric discharge machining electro

Assignees

Inventors

Classifications

  • Tool geometry compensation, keep contact of tool on desired curve · CPC title

  • Making impellers, propellers · CPC title

  • Edm, electrical discharge machining, electroerosion, ecm, chemical · CPC title

  • characterised by control arrangements for compensation, e.g. for backlash, overshoot, tool offset, tool wear, temperature, machine construction errors, load, inertia (G05B19/19, G05B19/41 take precedence) · CPC title

  • B23H9/10Primary

    Working turbine blades or nozzles · CPC title

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What does patent US10850339B2 cover?
A method for checking a geometry of an electric discharge machining electrode is described. The method comprises the following steps: providing a file containing a native 3D-model of the electric discharge machining electrode; providing a manufactured electric discharge machining electrode based on the native 3D-model; light scanning a set of images of the manufactured electric discharge machin…
Who is the assignee on this patent?
Nuovo Pignone Srl
What technology area does this patent fall under?
Primary CPC classification B23H9/10. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue Dec 01 2020 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).