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Workpiece Properties After Metal Forming

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Formability of Metallic Materials

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Abstract

After a metal forming operation the workpiece may be either ready for use or a succeeding production process may be necessary, see Fig. 6.1 and Sec. 6.1.1.

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Abbreviations

N :

number of cycles in fatigue test

2Ī± :

die opening angle (shoulder angle) in extrusion

Īµ at :

total strain amplitude in fatigue test

Ļˆ :

angle with normal direction of the surface of a specimen

Ļƒ a :

stress amplitude in fatigue test

References to Chapter 6

  1. Nehl, E.: Investigations on semi-hot extrusion of free-machining steels (in German). Berichte aus dem Institut fĆ¼r Umformtechnik, UniversitƤt Stuttgart, Nr. 70, Berlin, Springer-Verlag 1983.

    Google ScholarĀ 

  2. Tekkaya, A. E.: Hardenss measurements on cold forming workpieces. In: Geiger, M. (ed): Advanced Technology of Plasticity, Prof. 6tā€œ Int. Conf. on Technology of Plasticity (ICTP), Nuremberg, Germany, 19ā€“24. Sep. 1999, 825ā€“830.

    Google ScholarĀ 

  3. Reiss, W.; Pƶhlandt, K.: About the fracture behavior of the aluminum alloy AICuMg2 after homogeneous cold deformation, Eng. Fracture Mech. 23 (1986), 575ā€“584.

    ArticleĀ  Google ScholarĀ 

  4. Lange, K. (ed): Handbook of metal forming, Chapter 5: Fundamentals of technical plasticity theory, New York, Mc Graw-Hill 1985.

    Google ScholarĀ 

  5. Pehle, H. J.; Kopp, R.: The influence of measuring data quality on visioplastic calculations, steel research 57 (1986), 318ā€“324.

    Google ScholarĀ 

  6. Schmoeckel, D.: T000l design for hollow forward extrusion of steel and nonferreous metals (in German). Berichte aus dem Institut fĆ¼r Umformtechnik, UniversitƤt Stuttgart, Nr. 4, Essen, Girardet 1966.

    Google ScholarĀ 

  7. Lange, K. (ed): Handbook of metal forming. Chap. 18: Sheet-metal properties and testing methods, New York, Mc Graw-Hill 1985.

    Google ScholarĀ 

  8. Hoang-Vu, Kh.: Possibilities and limits of cold closed die forging as a production technical alternative for small, precise formed parts (in German). Berichte aus dem Institut fĆ¼r Umformtechnik, UniversitƤt Stuttgart, Nr. 65, Berlin, Springer 1982.

    Google ScholarĀ 

  9. Steck, E.; Dannenmann, E.; Wilhelm, H.: On the relationship between hardness and strain in cold metal forming processes (in German), BƤnder Bleche Rohre 9 (1968), 388ā€“394.

    Google ScholarĀ 

  10. Ruminski, M.; et al.: Analysis of the effect of the die shape on the distribution of mechanical properties and strain field in the tube sinking process, J. Mater. Process. Technol. 81 (1998), 683ā€“689.

    ArticleĀ  Google ScholarĀ 

  11. Tekkaya, A. E.; Gerhardt, J.: Residual stresses in cold-formed workpiecesā€ž Annals of the CIRP 34 /1 (1985), 225ā€“230.

    ArticleĀ  Google ScholarĀ 

  12. Datsko, J.; Mitchell, W. J.: Changes in mechanical properties in metal-forming processes, J. Mater. Eng. Performance 2 (1993), 265ā€“270.

    ArticleĀ  CASĀ  Google ScholarĀ 

  13. Remppis, M.: Warm forging technology - basics and applications, Metallurgia, Redhill 64 (1997), FT8ā€“12.

    Google ScholarĀ 

  14. Kolmogorov, G. L.; Kurapova, N. A.; Kamenev, S. A.: Residual stresses and ultimate workability on drawing axisymmetric items (in Russian), Izvestija Vuz, Cernaja Metallurgija 39 (1996), 31ā€“34.

    Google ScholarĀ 

  15. Wu, T.; et al.: Residual stress distribution in cold rolled brass sheet, J. Mater. Process Technol. 456 (1994), 111ā€“114.

    Google ScholarĀ 

  16. Maeder, G.: The use of residual stresses in automotive industry (in French), Revue de Metallurgie, Cahier dā€™Informations Techniques 94 (1997), 199ā€“206.

    CASĀ  Google ScholarĀ 

  17. Tekkaya, A. E.: Determination of residual stresses in cold bulk metal forming (in German). Berichte aus dem Institut fur Umformtechnik, UniversitƤt Stuttgart, Nr. 83, Berlin, Springer-Verlag 1986.

    Google ScholarĀ 

  18. Zucko, M.; et al.: Determination of deformation-induced residual stresses in full forward extrusion and comparison to experimental results (in German), Mat.- wiss. u. Werkstofftech. 28 (1997), 417ā€“423.

    ArticleĀ  Google ScholarĀ 

  19. Pyzalla, A.; Reimers, W.; Pƶhlandt, K.: Residual stress and texture evolution in cold extrusion of full and hollow steel bodies. In: Ericsson, T. et al. (eds): Proc. 5th Int. Conf. on Residual Stresses, Linkƶping, Sweden, June 16ā€“18, 1997.

    Google ScholarĀ 

  20. Lange, K. (ed): Final colloquium of the PSU project (in German). Stuttgart, 31.3. 1993, ProzeƟsimulation in der Umformtechnik, Nr. 4, Berlin, Springer-Verlag 1993.

    Google ScholarĀ 

  21. Genzel, C.; et al.: Neutron and X-ray residual stress analysis of steel parts produced by cold forward extrusion and tube drawing, Mater. Sci. Eng. A 205 (1996), 79ā€“90.

    ArticleĀ  Google ScholarĀ 

  22. Modlen, G. F.; et al., Proc. Conf. Sheet Metal, Birmingham, 1992, 171.

    Google ScholarĀ 

  23. BĆ¼hler, H.; Kreher, P.-J.: Reduction of residual stresses in cold-drawn tubes by succeeding drawing process (in German), BƤnder Bleche Rohre 9 (1968), 481ā€“486.

    Google ScholarĀ 

  24. Gerhardt, J.; Tekkaya, A. E.: Residual stresses in wire drawing and extrusion (in German), pt I, Draht 38 (1987), 473ā€“476; pt II, Draht 39 (1988), 572ā€“574; pt III Draht 39 (1988), 648ā€“650.

    Google ScholarĀ 

  25. Kreher, P.-J.: Contribution to residual stresses in cold drawing of wire and tubes (in German). Thesis, TH Hannover 1967.

    Google ScholarĀ 

  26. Modlen, G. F.; Stark, R. A.: Residual stresses in cold drawn and extruded bars (in German), Draht 35 (1984), 97ā€“101.

    CASĀ  Google ScholarĀ 

  27. Leykamm, H.: Contribution to the accuracy in cold bulk metal forming (in German). Berichte aus dem Institut fir Umformtechnik, UniversitƤt Stuttgart, Nr. 57, Springer-Verlag 1980.

    Google ScholarĀ 

  28. Keuter, J.: Phase-specific and grain orientation-specific residual stresses in plastically cold deformed unalloyed carbon steel (in German), Thesis, TU Hamburg-Harburg 1996.

    Google ScholarĀ 

  29. Takimoto, A.; Effects of forming and deformation under tension on X-ray residual stress of a SUS 301 stainless steel sheet. In: Proc. 4th European Conf. Residual Stresses (ECRS 4), Cluny/France, June 4ā€“6, 1996, Vol. 2, 1023ā€“1932.

    Google ScholarĀ 

  30. Zhou, D; Wagoner, R. -H.: Development and application of sheet-forming simulation, J. Mater. Process. Technol. 50 (1995), 1ā€“16.

    ArticleĀ  Google ScholarĀ 

  31. Zinutti, A.; Saro, G.: Cold rolling of small diameter steel wires, Wire J. Int. 29 (1996), 78ā€“84.

    CASĀ  Google ScholarĀ 

  32. Keeler, S. P.: Application and forming of higher strength steel, J. Mater. Process. Technol. 46 (1994), 443ā€“454.

    ArticleĀ  Google ScholarĀ 

  33. Qin, S.; et al.: Stretching during axisymmetrical forming of sheet metal, J. Mater. Technol. 63 (1997), 117ā€“122.

    ArticleĀ  Google ScholarĀ 

  34. Morestin, F.; Boivion, M.; Silva, C.: Elasto plastic formulation using a kinematic hardening model for springback analysis in sheet metal forming, J. Mater. Process Technol. 56 (1996), 619ā€“630.

    ArticleĀ  Google ScholarĀ 

  35. Zhang, L. C.; Lu, G.; Leong, S. C.: V-shaped sheet forming by deformable punches, J. Mater. Process. Technol. 63 (1997), 134ā€“139.

    ArticleĀ  Google ScholarĀ 

  36. Teodosiu, C.; et al.: Modelling and simulation of the can-making process using finite elements, J. Mater. Process. Technol. 50 (1995), 133ā€“143.

    ArticleĀ  Google ScholarĀ 

  37. Kluge, S.; Lailach, A.: Forming behavior of aluminum alloys in deep-drawing and strech forming of automotive body parts (in German). In: Proc. SƤchsische Fachtagung Umformtechnik, Freiberg, Nov. 30ā€“Dec. 1, 1995, TU Bergakademie Freiberg, Vol. II, 1ā€“17.

    Google ScholarĀ 

  38. Demjanusko, I. V.; Genkin, G. I.; Salimov, I. I.: Surface residual stresses and influence of surface hardening in car wheels (in Russian), Vestnik Masinostroenija (1994), 40ā€“41.

    Google ScholarĀ 

  39. Emeljanov, V. N.: Straightening of shafts at alteration of force factor by automation means (in Russian), Vestnik Masinostroenija (1996), 36ā€“38.

    Google ScholarĀ 

  40. Poyser, T. D.: Press brake forming: understanding & controlling the process variables, Metal Forming 32 (1998), 52ā€“58.

    Google ScholarĀ 

  41. Jang, D. Y.; Liou, J. H.: Study of stress development in axi-symmetric products processed by radial forging using a 3-D non-linear finite-element method, J. Mater. Process. Technol. 74 (1998), 74ā€“82.

    ArticleĀ  Google ScholarĀ 

  42. Balendra, R.; Yi, Q.: Die-elasticity errors during net-forming of engineering components. In: Proc. Conf. Advances in Manufacturing Technology IX, Leicester, Sep 12ā€“14, 1995, 204ā€“208.

    Google ScholarĀ 

  43. Sprawls, D. O.: Tests for stress-corrosion cracking. In: Newby, R. (ed): Metals Handbook Vol. 8, Mechanical Testing, 9`h edn, Metals Park, Ohio, ASM, 1985.

    Google ScholarĀ 

  44. Long, H.; Balendra, R.: The influence of thermal and elastic effects on the accuracy of cold-formed components. In: Proc. 36`h Int. MTDR Conf., Manchester, GB, July 10ā€“11, 1997, Manchester, Umist 1997, 361ā€“366.

    Google ScholarĀ 

  45. Barteri, M.; Mecozzi, M.: Cold working effect on corrosion and stress corrosion resistance of duplex and high-alloy austenitic stainless steels (in Italian), Ricerca Tecnico acciaio EUR 15708 (1996), 1ā€“50.

    Google ScholarĀ 

  46. Zeller, P.: Changes in material properties when drawing cylindrical hollow pieces made of austenitic stainless steels (in German). Berichte aus dem Institut fĆ¼r Umformtechnik, UniversitƤt Stuttgart, Nr. 42, Essen, Girardet 1976.

    Google ScholarĀ 

  47. Kerspe, J.-H.: Formation of martensite when ironing X5CrNi 18 9 steel (in German), BƤnder Bleche Rohre 21 (1980), 23ā€“26.

    CASĀ  Google ScholarĀ 

  48. Doege, E.; Behrens, B. A.: Reduce process chains due to the precision forging of gearsā€“effect on the conventional forging technology, J. Mater. Process. Technol. 71 (1997), 14ā€“17.

    ArticleĀ  Google ScholarĀ 

  49. Szabadits, Q.; Krallics, G.; Malgyn, D.: Finite element simulation of stretch bent strips. In: Proc. SheMet 97, 5th Int. Conf. Sheet Metal, Ulster, GB, April 8ā€“10, 1987, Jordanstown, School of Electrical and Engineering 1997, 411ā€“420.

    Google ScholarĀ 

  50. WeiergrƤber, M.: Corrosion resistance of deep-drawn axisymmetric workpieces of austenitic steel (in German). Berichte aus dem Institut fĆ¼r Umformtechnik, UniversitƤt Stuttgart, Nr. 84, Berlin, Springer-Verlag 1986.

    Google ScholarĀ 

  51. ASTM G 36ā€“94: Standard practice for evaluating stress-corrosion cracking resistance of metals and alloys in a boiling magnesium chloride solution.

    Google ScholarĀ 

  52. Bayraktar, E; Altintas, S.: Square cup deep drawing and 2D-draw-bending analy- sis of sheet, Hadfield steel, J. Mater. Process. Technol. 60 (1996), 183ā€“190.

    ArticleĀ  Google ScholarĀ 

  53. Besdo, D.: On the problem of prediction of springback on sheet-metal-forming simulation (in German). In: Geiger, M. (ed): Umformtechnik 2000 plus, Festschrift for Kurt Lange on occasion of his 80`h birthday, Bamberg, Meisenbach Verlag 1999.

    Google ScholarĀ 

  54. MĆ¼ller, J.: Influence of shot peening on stress corrosion of austenitic steels. Monographie Stahl, Institut fĆ¼r Korrosionsschutz, Dresden 1992, 89ā€“95.

    Google ScholarĀ 

  55. Goes, B.; Gil-Sevillano, J.; Dā€™Haene: Modelling the evolution of residual stresses during tensile testing of elastoplastic wires subjected to a previous bending operation, Int. J. Mech. Sci. 41 (1999), 1031ā€“1050.

    ArticleĀ  Google ScholarĀ 

  56. Mattson, E.: Corrosion of copper and brass: practical experience in relation with basic data, Brit. Corros. J. 15 (1988), 6ā€“13.

    ArticleĀ  Google ScholarĀ 

  57. Kaesche, H.: Corrosion of metals (in German). Berlin, Springer-Verlag 1990.

    Google ScholarĀ 

  58. Bruckner, L.; Pƶhlandt, K.: Functional properties of cans produced by deep-drawing and subsequent ironing (in German), Blech Rohre Profile 41 (1994), 514ā€“519.

    Google ScholarĀ 

  59. Schweitzer, P. A. (ed): Corrosion and corrosion protection handbook. New York, Dekker 1983.

    Google ScholarĀ 

  60. Lange, K.; GrƤber, A.: Effect of deep-drawing conditions on residual stresses and stress-corrosion cracking of sheet metal. In: Proc. NAMRC XIV, Minneapolis, MN, 28ā€“30 May 1986.

    Google ScholarĀ 

  61. Wolf, H.; Kluge, S.; Kardos, K.: Application of a theoretical model for springback for the production of precise car body components (in German), BƤnder Bleche Rohre, 38 (1997), 30ā€“34.

    Google ScholarĀ 

  62. DIN - EN - ISO 196: Copper and copper alloys. Detection of residual stresses. Mercury nitrate test (in German ), 1995.

    Google ScholarĀ 

  63. Pourboghrat, F; Chu, E.: Springback in plane strain stretch/draw sheet forming. Int. J. Mech. Sci. 37 (1995), 327ā€“341.

    ArticleĀ  Google ScholarĀ 

  64. Buxbaum, O.: Effect of metal forming on strength behavior of metallic components (in German). In: Proc. SƤchsische Fachtagung Umformtechnik, Freiberg, Nov. 30 ā€” Dec. 1, 1995, TU Bergakademie Freiberg, 5. 1ā€“5. 17.

    Google ScholarĀ 

  65. Lange, K. (ed): Handhook of metal forming. New York, McGraw Hill 1985.

    Google ScholarĀ 

  66. Schacher, H.-D.: Cold forming of powder metal (in German). Berichte aus dem In- stitut fĆ¼r Umformtechnik, UniversitƤt Stuttgart, Nr. 47, Essen, Girardet 1978.

    Google ScholarĀ 

  67. Stilz, K.: Forming behavior of P/M steel (in German). Berichte aus dem Institut fĆ¼r Umformtechnik, UniversitƤt Stuttgart, Nr. 59, Springer-Verlag 1981.

    Google ScholarĀ 

  68. Schaub, W.: Extrusion of powder mMetal in the temperature range between 873K (600 Ā°C) and 1173 K (900 Ā°C) (in German). Berichte aus dem Institut fĆ¼r Umformtechnik, UniversitƤt Stuttgart, Nr. 63, Berlin, Springer-Verlag 1982.

    Google ScholarĀ 

  69. Huppmann, W. J.; Arnhold, V.: Generation of metal products with new properties by combined metallurgy and deformation processes. In Lange, K. (ed): Advanced Technology of Plasticity, Vol. II, Proc. 2nd ICTP, Stuttgart, 24ā€“28 Aug. 1987, Berlin, Springer-Verlag 1987.

    Google ScholarĀ 

  70. Huppmann, W. J.; Dalai, K.: Metallographic atlas of powder Metallurgy. Freiburg, Schmid 1986.

    Google ScholarĀ 

  71. Schwab, W.; Hager, B.: Influence of metal forming parameters on the fatigue behaviour of extruded shafts. In: Lange, K. (ed): Advanced technology of plasticity, Vol. II, Proc. 2ā€œd ICTP, Stuttgart, Aug. 24ā€“28, 1987, Berlin, Springer-Verlag 1987.

    Google ScholarĀ 

  72. Schwab, W.: Effect of process parameters in metal forming on fatigue behaviour, Annals of the CIRP 34 /1 (1985), 215ā€“219.

    ArticleĀ  Google ScholarĀ 

  73. Hager, B.; Pƶhlandt, K.: Fatigue behaviour of deformed P/M steels (in German), Stahl und Eisen 111 (1991), 129ā€“134.

    CASĀ  Google ScholarĀ 

  74. MĆ¼ller, W.; et al.: Effects of metal forming parameters on strength and fatigue be- havior of extruded workpieces, Trans. NAMRI/SME XX (1992), 389ā€“395.

    Google ScholarĀ 

  75. Lampman, S. R.; et al. (eds): ASM Handbook. Vol. 19: Fatigue and fracture. Materials Park, OH, ASM International 1996.

    Google ScholarĀ 

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Pƶhlandt, K. (2000). Workpiece Properties After Metal Forming. In: Banabic, D. (eds) Formability of Metallic Materials. Engineering Materials. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-662-04013-3_6

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