Non-steady-state-coupled three-dimensional analysis is required for investigating complex material ow in practical at-die hot extrusion processes of aluminum alloys in various channel sections. It is important since the material ow behavior actually determines the amount of distortion of the extrude
Analysis and die design of flat-die hot extrusion process 2. Numerical design of bearing lengths
✍ Scribed by Geun-An Lee; Yong-Taek Im
- Publisher
- Elsevier Science
- Year
- 2002
- Tongue
- English
- Weight
- 540 KB
- Volume
- 44
- Category
- Article
- ISSN
- 0020-7403
No coin nor oath required. For personal study only.
✦ Synopsis
This paper deals with the assignment of bearing lengths for the control of material ow in the at die hot extrusion. The design process makes the use of the three-dimensional non-steady analysis using the thermo-rigid-viscoplastic ÿnite element method that includes an automatic remeshing module. The exit velocity distribution of the workpiece obtained from the analysis results was used to ÿnd appropriate values for the factors used in the proposed bearing length design equation. This equation for designing bearing lengths is a function of the cross-sectional thickness and distance from the die center of die exit section. A geometric factor was included in formulation of the design equation to consider the end region of the die exit. The appropriate values of factors were determined from three-dimensional analyses of at-die hot extrusion processes with single and double channel-sections. The analysis of a at-die hot extrusion process with a L-section was used to verify the proposed design equation. It was found that the design equation determined bearing lengths that resulted in a fairly uniform exit velocity distribution throughout the extruded section. From the results of this study, it was found that the proposed design equation can be e ectively used to estimate appropriate bearing lengths.
📜 SIMILAR VOLUMES
## Abstract In this work, we aimed to develop an optimum design for a spider die used for the extrusion of high‐density polyethylene tubes. For this purpose, a computational‐fluid‐dynamics‐based model using the generalized Newtonian approach was employed to investigate the pressure drop, flow, and
In this study, a design guideline for flow guides and dies is proposed for extrusion of complex cross-sectional shape products, such as CPU heat sinks. The plastic flow pattern of the billet inside the die cavity and the front-end shape of the extruded product are analyzed using a commercial finite