Abstract:
In order to shorten a process chain for material removing machining of a crank shaft after rough machining and after hardening a combination of circumferential turn milling as a first step and subsequent dry grinding as a second step is proposed according to the invention.
Abstract:
The invention discloses a method of machining workpieces such as crankshafts, camshafts or similarly shaped members, having surfaces which are disposed both concentrically and also eccentrically relative to a workpiece axis and which are rotationally symmetrical or approximately rotationally symmetrical. The machining of the concentrically curved surfaces is effected by means of turning, rotational broaching and/or turning-rotational broaching and the machining of the eccentric workpiece surfaces is effected by means of end-milling wherein the axis of rotation of the milling cutter is transverse with respect to the spindle axis 3, and the workpiece is subjected to cutting finishing machining and the clamping means.
Abstract:
Provided is a mold for resin sealing manufactured inexpensively. Processing for cavities for the mold is performed by high-speed rotary cutting with a round cutter to form a first cavity and a second cavity, to thereby obtain the cavities formed in a multi-level fashion.
Abstract:
An attrition liner machining tool, configured to machine the surface of an attrition liner provided radially outward of a set of a plurality of fan blades in a gas turbine engine. The tool includes at least one rotating machine tool having a connector at a first end and a cutter at a second end. The connector is configured to rigidly connect to a rotating fan blade mount of the gas turbine engine that, in use of the gas turbine engine, supports the fan blades. The cutter is configured to machine the attrition liner. The at least one rotating machine tool is configured such that, when it is connected to said rotating fan blade mount of a gas turbine engine, the cutter is passed across the surface of the attrition liner when said rotating fan blade mount is rotated.
Abstract:
There are provided a machining device that is excellent in an effect of cooling a machining tool and can perform machining with high accuracy and a machining method using the machining device.There are provided a machining device that performs predetermined machining of a workpiece by a machining tool housed in a cylindrical body and a machining method using the machining device. The machining device includes a scatter-preventing member that is provided at a tip of the cylindrical body and comes into contact with the workpiece without a gap therebetween during the predetermined machining, a transfer passage that is provided on a side surface of the cylindrical body and sucks in waste of the workpiece produced due to the predetermined machining, and an air-blowing device that is provided on the side surface of the cylindrical body at a position symmetrical to the position of the transfer passage and blows air to at least a tip of the machining tool.
Abstract:
Disclosed is a method for machining the bearing seats (HL, PL) of shafts (1), especially crankshafts. According to said method, the bearing seats (HL, PL) are subjected to the following machining operations after initially shaping a shaft (1) in a forging or casting process: the bearing seats (HL, PL) are preformed by cutting the same using a specific cutting edge; they are hardened; they are passed through dressing rollers; they are subjected to a preliminary rotary milling process; and they are subjected to a final rotary milling process. The preliminary and the final rotary milling process are carried out during substantially an entire rotation of the shaft (1) without longitudinally or tangentially advancing the milling cutter (12).
Abstract:
In a method for machining the bearing seats (HL, PL) of shafts (1), especially crankshafts, the bearing seats (HL, PL) are subjected to the following machining operations after the shaft (1) has been initially formed by forging or casting: rough-shaping by chip-removing machining with specific cutters, hardening, passing through dressing rollers, rough rotary milling and finish rotary milling. Each of these rough rotary milling and finish rotary milling steps is applied substantially during one complete revolution of the shaft (1), without longitudinal feed and without tangential feed of the milling cutter (12).