Effects of Aluminum Plate Initial Residual Stress on Machined-Part Distortion

Author:

Seger Michael1,Mathews Ritin2,Marais Deon3,Venter Andrew M.3,Halley Jeremiah4,Wang Jyhwen5,Malik Arif1

Affiliation:

1. The University of Texas at Dallas Department of Mechanical Engineering, Erik Jonsson School of Engineering and Computer Science, , 800 West, Campbell Road, Richardson, TX 75080

2. Manufacturing Science Division, Oak Ridge National Laboratory, 1 Bethel Valley Road, Oak Ridge, TN 37830

3. The South African Nuclear Energy Corporation (Necsa) SOC Limited Research and Innovation Division, , Elias Motsoaledi Street Extension (Church Street West), R104 Pelindaba, Madibeng Municipality, North West Province 0240 , South Africa

4. ADDMAN Precision , 45 Cooperative Way, Wright City, MO 63390

5. Texas A&M University Department of Engineering Technology and Industrial Distribution, College of Engineering, , 106 Ross Street, College Station, TX 77843

Abstract

Abstract Dimensional tolerances for high-speed-machined aluminum products continue to tighten due to the demand for automated assembly of complex monolithic parts in aerospace and other industries. Understanding the contribution of inherent residual stress in wrought Al 7050-T7451 plate, common in aircraft manufacture, to distortion of high-aspect-ratio machined parts is critical but remains problematic due to the alloy's low residual stress magnitude over large geometries. Prior investigations into residual stress effects on machined part distortion suffer inadequate characterizations of the wrought material stress field, either because of low fidelity due to “slitting” methods, confounding effects in machined-layer removal methods, or small sample size when using neutron diffraction (ND). In this work, inherent residual stress is measured via ND at 860 locations in a 90.5 mm thick Al 7050-T7451 plate having dimensions 399 mm in the rolling direction and 335 mm in the transverse direction. Unlike prior studies, the ND residual stress is reconstructed using an iterative algorithm to ensure fully compatible, equilibrated 3D field prior to examining its effect on distortion. The findings from simulations and experiments show that inherent residual stress alone could distort a high-aspect-ratio part beyond aerospace industry requirements, that slitting measurements may not sufficiently characterize residual stress for predicted distortion, and that parts machined from different plate thickness locations could exhibit reversed distortion patterns. Thus, research into distortion prediction that considers machining should carefully characterize and reconstruct inherent residual stress so that the coupled machining effects are accurately modeled.

Funder

National Science Foundation

Publisher

ASME International

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