B23H3/06

System and method for machining workpiece of lattice structure and article machined therefrom

A system is configured for machining a workpiece of a lattice structure, the system includes an electrode of a lattice structure, an electrolyte supply, and a power supply. The workpiece and the electrode are intertwined with each other and electrically isolated from each other. The electrolyte supply is configured for circulating an electrolyte around and between the workpiece and the electrode. The power supply is configured for applying a voltage between the workpiece and the electrode to facilitate smoothing surfaces of the workpiece.

Electrode, electrochemical machining apparatus using the electrode, electrochemical machining method, and product machined by the method

Provided is an electrode capable of increasing a degree of freedom in machining shape with a simple structure, an electrochemical machining apparatus using the electrode, an electrochemical machining method, and a product machined by the method. An electrode 4 has a core tube 41 formed of a material by which a second hole 101b having a direction or a curvature different from that of a first hole 101a having a predetermined curvature can be formed continuously from the first hole 101a and a coating 42 fixed to an outer periphery of the core tube 41.

Electrode, electrochemical machining apparatus using the electrode, electrochemical machining method, and product machined by the method

Provided is an electrode capable of increasing a degree of freedom in machining shape with a simple structure, an electrochemical machining apparatus using the electrode, an electrochemical machining method, and a product machined by the method. An electrode 4 has a core tube 41 formed of a material by which a second hole 101b having a direction or a curvature different from that of a first hole 101a having a predetermined curvature can be formed continuously from the first hole 101a and a coating 42 fixed to an outer periphery of the core tube 41.

ELECTROCHEMICAL MACHINING DEVICE
20190168325 · 2019-06-06 ·

An electrochemical machining device includes a plurality of electrodes, a guiding member and a plate member. The electrodes are disposed around a workpiece. The guiding member is configured to limit and guide each of the electrodes to move. The plate member is configured to exert a force to each of the electrodes. The driving member is configured to rotate the workpiece. The plate member is connected to each of the electrodes. A force-exerting direction of the force from the plate member to each of the electrodes is parallel to a central axis of each of the electrodes or deflects off the central axis. Each of the electrodes is passed through the guiding member and configured to perform a machining on the workpiece which is rotated by the driving member, and each of the electrodes has an electrochemical machining direction which is perpendicular, oblique or parallel to the workpiece.

ELECTROCHEMICAL MACHINING DEVICE
20190168325 · 2019-06-06 ·

An electrochemical machining device includes a plurality of electrodes, a guiding member and a plate member. The electrodes are disposed around a workpiece. The guiding member is configured to limit and guide each of the electrodes to move. The plate member is configured to exert a force to each of the electrodes. The driving member is configured to rotate the workpiece. The plate member is connected to each of the electrodes. A force-exerting direction of the force from the plate member to each of the electrodes is parallel to a central axis of each of the electrodes or deflects off the central axis. Each of the electrodes is passed through the guiding member and configured to perform a machining on the workpiece which is rotated by the driving member, and each of the electrodes has an electrochemical machining direction which is perpendicular, oblique or parallel to the workpiece.

SHAPE-TUBE ELECTROCHEMICAL MACHINING (STEM) SYSTEMS AND METHODS OF FORMING CURVED HOLES IN COMPONENTS USING STEM SYSTEMS
20190134729 · 2019-05-09 ·

Shape-tube electrochemical machining (STEM) systems, and methods of forming curved holes in components using STEM systems are disclosed. The systems may include a slider element, and an electrode coupled to the slider element. The electrode may include a linear body section, and a tip section. The tip section may be angled at a non-linear angle relative to the linear body section. The systems may also include a guide block slidably engaging the electrode. The guide block may include at least one aperture formed between a first and second section. The aperture(s) may receive the electrode. Additionally, the systems may include an electrode positioning block coupled to the linear body section of the electrode. The electrode positioning block may position the tip section of the electrode at a desired orientation relative to a component receiving the tip section to form a curved hole in the component.

SHAPE-TUBE ELECTROCHEMICAL MACHINING (STEM) SYSTEMS AND METHODS OF FORMING CURVED HOLES IN COMPONENTS USING STEM SYSTEMS
20190134729 · 2019-05-09 ·

Shape-tube electrochemical machining (STEM) systems, and methods of forming curved holes in components using STEM systems are disclosed. The systems may include a slider element, and an electrode coupled to the slider element. The electrode may include a linear body section, and a tip section. The tip section may be angled at a non-linear angle relative to the linear body section. The systems may also include a guide block slidably engaging the electrode. The guide block may include at least one aperture formed between a first and second section. The aperture(s) may receive the electrode. Additionally, the systems may include an electrode positioning block coupled to the linear body section of the electrode. The electrode positioning block may position the tip section of the electrode at a desired orientation relative to a component receiving the tip section to form a curved hole in the component.

Methods and systems for electrochemical machining of an additively manufactured component

A system of manufacturing a component comprises forming a component on a conductive build plate. The component defines at least one access port and includes an inner surface that defines at least one internal passage. The system further includes forming at least one electrode within the at least one internal passage, wherein the at least one electrode is electrically isolated from the component. An electromotive force is applied to the at least one electrode to facilitate smoothing the inner surface.

Methods and systems for electrochemical machining of an additively manufactured component

A system of manufacturing a component comprises forming a component on a conductive build plate. The component defines at least one access port and includes an inner surface that defines at least one internal passage. The system further includes forming at least one electrode within the at least one internal passage, wherein the at least one electrode is electrically isolated from the component. An electromotive force is applied to the at least one electrode to facilitate smoothing the inner surface.

ELECTRODE, ELECTROCHEMICAL MACHINING APPARATUS USING THE ELECTRODE, ELECTROCHEMICAL MACHINING METHOD, AND PRODUCT MACHINED BY THE METHOD

Provided is an electrode capable of increasing a degree of freedom in machining shape with a simple structure, an electrochemical machining apparatus using the electrode, an electrochemical machining method, and a product machined by the method. An electrode 4 has a core tube 41 formed of a material by which a second hole 101b having a direction or a curvature different from that of a first hole 101a having a predetermined curvature can be formed continuously from the first hole 101a and a coating 42 fixed to an outer periphery of the core tube 41.