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- W2493669386 abstract "This paper presents a modular simulation technique which predicts the forging characteristics of given components when deformed on work-restricted forging machines. The technique considers each component to be made up of simple modules, and the whole forging operation is simulated approximately by linking the deformation of each module in a sequential manner. The slab method is used to calculate the stress distribution and the load at the completion of each module and hence the energy to deform that module. The total energy required to deform the whole component is obtained by summing the deformation energies of the individual modules. The theoretical predictions of the modular technique are compared with results from experiments on a Petro-Forge high-speed hammer. In these tests two component shapes are forged in medium carbon steel (EN8), each with two types of flash opening and under three conditions of forging temperature. As there is, in general, a good agreement between the theoretical and the experimental predictions, it is concluded that the technique could form the basis of a method of direct use to industry. The application of the technique under industrial conditions is discussed, and whilst application to axisymmetric components of the type tested is relatively easy it is acknowledged that there are problems to be overcome, particularly with more complex components. Also the necessary technical information to implement the technique is discussed and it is concluded that more precise data with respect to die friction under production forging conditions is required." @default.
- W2493669386 created "2016-08-23" @default.
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- W2493669386 date "1975-01-01" @default.
- W2493669386 modified "2023-09-24" @default.
- W2493669386 title "Application of a Modular Approach to Estimate Load and Energy in Closed die Forging" @default.
- W2493669386 cites W1999971653 @default.
- W2493669386 doi "https://doi.org/10.1007/978-1-349-01986-1_53" @default.
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