Summary

A Novel Biaxial Testing Apparatus for the Determination of Forming Limit under Hot Stamping Conditions

Published: April 04, 2017
doi:

Summary

This protocol proposes a novel biaxial testing system used on a resistance heating uniaxial tensile test machine in order to determine the forming limit diagram (FLD) of sheet metals under hot stamping conditions.

Abstract

The hot stamping and cold die quenching process is increasingly used to form complex shaped structural components of sheet metals. Conventional experimental approaches, such as out-of-plane and in-plane tests, are not applicable to the determination of forming limits when heating and rapid cooling processes are introduced prior to forming for tests conducted under hot stamping conditions. A novel in-plane biaxial testing system was designed and used for the determination of forming limits of sheet metals at various strain paths, temperatures, and strain rates after heating and cooling processes in a resistance heating uniaxial testing machine. The core part of the biaxial testing system is a biaxial apparatus, which transfers a uniaxial force provided by the uniaxial testing machine to a biaxial force. One type of cruciform specimen was designed and verified for the formability test of aluminum alloy 6082 using the proposed biaxial testing system. The digital image correlation (DIC) system with a high-speed camera was used for taking strain measurements of a specimen during a deformation. The aim of proposing this biaxial testing system is to enable the forming limits of an alloy to be determined at various temperatures and strain rates under hot stamping conditions.

Introduction

The automotive industry is facing a huge global challenge of reducing fuel consumption and minimizing environmental pollution from vehicle emissions. Weight reduction is beneficial to improving the performance of automobiles and can directly reduce energy consumption1. Due to the low formability of sheet metals at room temperature, hot stamping and cold die quenching processes (referred to as hot stamping)2 are used to improve the formability of alloys and thus to obtain complex shaped components in automotive applications.

A forming limit diagram (FLD) is a useful tool to evaluate the formability of an alloy3. Out-of-plane tests, such as the Nakazima test4,5, and in-plane tests, such as the Marciniak test6,7,8, are conventional experimental methods to obtain the FLDs of sheet metals under various conditions9,10,11. A servo-hydraulic biaxial testing machine has also been used to investigate the formability of alloys at room temperature12,13.

However, none of the methods above are applicable to formability tests under hot stamping conditions, since a cooling process prior to forming is required along with control of the heating and cooling rates. The deformation temperature and strain rate are difficult to obtain accurately. Therefore, a novel formability testing system is proposed in this study to experimentally determine the forming limits of sheet metals under hot stamping conditions.

Protocol

1. Preparation of Specimens Machine flat dog-bone and cruciform specimens from commercial material aluminum alloy 6082 (AA6082) using a laser cutter and a computer numerical control (CNC) milling machine (for formability tests at different strain paths including uniaxial, plane strain, and equi-biaxial straining states). Measure the thickness of each cruciform specimen and each dog-bone specimen with a vernier caliper three times in the central gauge region and calculate the average values. Ensure t…

Representative Results

Since FLDs are highly strain path-dependent, the linearity of the strain path for each test condition was verified by analyzing the DIC results; the strain paths are proportional throughout deformation for each test condition. The range of the minor-to-major strain ratio is approximately -0.37 (uniaxial condition) to 0.26 (near biaxial condition). By processing data for different AA6082 conditions, forming limit data for different strain paths were determined and hence, the FLDs for AA608…

Discussion

Conventional formability test methods used to determine forming limits are usually applicable only at room temperature. The presented technique can be used to evaluate the formability of metals for hot sheet stamping applications by introducing a novel biaxial testing apparatus to a resistance heating uniaxial testing machine. This cannot be performed using conventional methods for hot stamping applications. The setup of heating and cooling systems and the DIC system is critical to controlling the uniformity of temperatu…

Declarações

The authors have nothing to disclose.

Acknowledgements

This research was supported by the European Union’s Seventh Framework Programme (FP7/2007-2013) under grant agreement No. 604240, project title “An industrial system enabling the use of a patented, lab-proven materials processing technology for Low Cost forming of Lightweight structures for transportation industries (LoCoLite).”

Materials

Aluminium Alloy  Smiths Metal 6082 Specimens machining
Laser cutter LVD Ltd HELIUS 25/13 Laser cutting specimens
CNC machine HAAS Automation TM-2CE Machine specimens by milling
Vernier caliper Mitutoyo 575-481 Thickness measurement
Resistance heating uniaxial testing machine Dynamic System Inc Gleeble 3800 Thermo-mechanical materials simulator
High flow quench system Dynamic System Inc 38510 For air cooling
Thermocouples Dynamic System Inc K type
Nozzles Indexa Nozzle flared 1/4 inch bore
Welding cables LAPP Group H01N2-D
High-speed camera Photron UX50 For DIC testing
Camera lens Nikon Micro 200mm
Lamp Liliput 150ce 300W
Laptop HP Campaq 2530p For images recording
Biaxial testing apparatus Manufactured independently All parts were designed and machinced by authors for biaxial testing
Steel  West Yorkshire Steel H13 Mateials of the biaxial testing apparatus
Image correlation processing software GOM ARAMIS Non-contact measuring system and data post-pocessing

Referências

  1. Karbasian, H., Tekkaya, A. E. A review on hot stamping. J. of Mater. Process. Tech. 210 (15), 2103-2118 (2010).
  2. Miller, W. S., et al. Recent development in aluminium alloys for the automotive industry. Mater. Sci. and Eng. 280 (1), 37-49 (2000).
  3. Shao, Z., Li, N., Lin, J., Dean, T. A. Development of a New Biaxial Testing System for Generating Forming Limit Diagrams for Sheet Metals Under Hot Stamping Conditions. Exp. Mech. 56 (9), 1-12 (2016).
  4. Ayres, R. A., Wenner, M. L. Strain and strain-rate hardening effects in punch stretching of 5182-0 aluminum at elevated temperatures. Metall. Trans. A. 10 (1), 41-46 (1979).
  5. Shao, Z., et al. Experimental investigation of forming limit curves and deformation features in warm forming of an aluminium alloy. P. I. Mech. Eng. B-J. Eng. , (2016).
  6. Marciniak, Z., Kuczynski, K. Limit strains in the processes of stretch-forming sheet metal. Int. J. Mech. Sci. 9 (9), 609-620 (1967).
  7. Li, D., Ghosh, A. K., et al. Biaxial warm forming behavior of aluminum sheet alloys. J. of Mater. Process. Tech. 145 (3), 281-293 (2004).
  8. Palumbo, G., Sorgente, D., Tricarico, L. The design of a formability test in warm conditions for an AZ31 magnesium alloy avoiding friction and strain rate effects. Int. J. Mach. Tool. Manu. 48 (14), 1535-1545 (2008).
  9. Raghavan, K. S. A simple technique to generate in-plane forming limit curves and selected applications. Metall. Mater. Trans. A. 26 (8), 2075-2084 (1995).
  10. Ragab, A. R., Baudelet, B. Forming limit curves: out-of-plane and in-plane stretching. J. Mech. Work. Technol. 6 (4), 267-276 (1982).
  11. Fan, X. -. b., He, Z. -. b., Zhou, W. -. x., Yuan, S. -. j. Formability and strengthening mechanism of solution treated Al-Mg-Si alloy sheet under hot stamping conditions. J. of Mater. Process. Tech. 228, 179-185 (2016).
  12. Zidane, I., Guines, D., Léotoing, L., Ragneau, E. Development of an in-plane biaxial test for forming limit curve (FLC) characterization of metallic sheets. Meas. Sci. Technol. 21 (5), 055701 (2010).
  13. Hannon, A., Tiernan, P. A review of planar biaxial tensile test systems for sheet metal. J. of Mater. Process. Tech. 198 (1-3), 1-13 (2008).
  14. Garrett, R., Lin, J., Dean, T. An investigation of the effects of solution heat treatment on mechanical properties for AA 6xxx alloys: experimentation and modelling. Int. J. Plasticity. 21 (8), 1640-1657 (2005).
  15. Milkereit, B., Wanderka, N., Schick, C., Kessler, O. Continuous cooling precipitation diagrams of Al-Mg-Si alloys. Mater. Sci. Eng. A. 550, 87-96 (2012).
  16. Crammond, G., Boyd, S. W., Dulieu-Barton, J. M. Speckle pattern quality assessment for digital image correlation. Opt. Laser. Eng. 51 (12), 1368-1378 (2013).
check_url/pt/55524?article_type=t

Play Video

Citar este artigo
Shao, Z., Li, N. A Novel Biaxial Testing Apparatus for the Determination of Forming Limit under Hot Stamping Conditions. J. Vis. Exp. (122), e55524, doi:10.3791/55524 (2017).

View Video