期刊文献+

Cast iron-a predictable material 被引量:4

Cast iron-a predictable material
下载PDF
导出
摘要 High strength compacted graphite iron (CGI) or alloyed cast iron components are substituting previously used non-ferrous castings in automotive power train applications.The mechanical engineering industry has recognized the value in substituting forged or welded structures with stiff and light-weight cast iron castings.New products such as wind turbines have opened new markets for an entire suite of highly reliable ductile iron cast components.During the last 20 years,casting process simulation has developed from predicting hot spots and solidification to an integral assessment tool for foundries for the entire manufacturing route of castings.The support of the feeding related layout of the casting is still one of the most important duties for casting process simulation.Depending on the alloy poured,different feeding behaviors and self-feeding capabilities need to be considered to provide a defect free casting.Therefore,it is not enough to base the prediction of shrinkage defects solely on hot spots derived from temperature fields.To be able to quantitatively predict these defects,solidification simulation had to be combined with density and mass transport calculations,in order to evaluate the impact of the solidification morphology on the feeding behavior as well as to consider alloy dependent feeding ranges.For cast iron foundries,the use of casting process simulation has become an important instrument to predict the robustness and reliability of their processes,especially since the influence of alloying elements,melting practice and metallurgy need to be considered to quantify the special shrinkage and solidification behavior of cast iron.This allows the prediction of local structures,phases and ultimately the local mechanical properties of cast irons,to asses casting quality in the foundry but also to make use of this quantitative information during design of the casting.Casting quality issues related to thermally driven stresses in castings are also gaining increasing attention.State-of-the-art tools allow the prediction of residual stresses and iron casting distortion quantitatively.Cracks in castings can be assessed,as well as the reduction of casting stresses during heat treatment.As the property requirements for cast iron as a material in design strongly increase,new alloys and materials such as ADI might become more attractive,where latest software developments allow the modeling of the required heat treatment.Phases can be predicted and parametric studies can be performed to optimize the alloy dependent heat treatment conditions during austenitization,quenching and ausferritization.All this quantitative information about the material's performance is most valuable if it can be used during casting design.The transfer of local properties into the designer's world,to predict fatigue and durability as a function of the entire manufacturing route,will increase the trust in this old but highly innovative material and will open new opportunities for cast iron in the future.The paper will give an overview on current capabilities to quantitatively predict cast iron specific defects and casting performance and will highlight latest developments in modeling the manufacture of cast iron and ADI as well as the prediction of iron casting stresses. High strength compacted graphite iron (CGI) or alloyed cast iron components are substituting previously used non-ferrous castings in automotive power train applications.The mechanical engineering industry has recognized the value in substituting forged or welded structures with stiff and light-weight cast iron castings.New products such as wind turbines have opened new markets for an entire suite of highly reliable ductile iron cast components.During the last 20 years,casting process simulation has developed from predicting hot spots and solidification to an integral assessment tool for foundries for the entire manufacturing route of castings.The support of the feeding related layout of the casting is still one of the most important duties for casting process simulation.Depending on the alloy poured,different feeding behaviors and self-feeding capabilities need to be considered to provide a defect free casting.Therefore,it is not enough to base the prediction of shrinkage defects solely on hot spots derived from temperature fields.To be able to quantitatively predict these defects,solidification simulation had to be combined with density and mass transport calculations,in order to evaluate the impact of the solidification morphology on the feeding behavior as well as to consider alloy dependent feeding ranges.For cast iron foundries,the use of casting process simulation has become an important instrument to predict the robustness and reliability of their processes,especially since the influence of alloying elements,melting practice and metallurgy need to be considered to quantify the special shrinkage and solidification behavior of cast iron.This allows the prediction of local structures,phases and ultimately the local mechanical properties of cast irons,to asses casting quality in the foundry but also to make use of this quantitative information during design of the casting.Casting quality issues related to thermally driven stresses in castings are also gaining increasing attention.State-of-the-art tools allow the prediction of residual stresses and iron casting distortion quantitatively.Cracks in castings can be assessed,as well as the reduction of casting stresses during heat treatment.As the property requirements for cast iron as a material in design strongly increase,new alloys and materials such as ADI might become more attractive,where latest software developments allow the modeling of the required heat treatment.Phases can be predicted and parametric studies can be performed to optimize the alloy dependent heat treatment conditions during austenitization,quenching and ausferritization.All this quantitative information about the material's performance is most valuable if it can be used during casting design.The transfer of local properties into the designer's world,to predict fatigue and durability as a function of the entire manufacturing route,will increase the trust in this old but highly innovative material and will open new opportunities for cast iron in the future.The paper will give an overview on current capabilities to quantitatively predict cast iron specific defects and casting performance and will highlight latest developments in modeling the manufacture of cast iron and ADI as well as the prediction of iron casting stresses.
出处 《China Foundry》 SCIE CAS 2011年第1期51-61,共11页 中国铸造(英文版)
关键词 扔过程模拟 生铁 缺点 扔性能 开发 casting process simulation cast iron defects casting performance development
  • 相关文献

参考文献12

  • 1Hansen P N, Flender E and Sturm J C. Casting Process Simulation - From the Idea 30 Years ago to Reality Today. International Foundry Research, 2009, 61 ( 4): 12-29.
  • 2Sturm J C. Die Prozess-Entwicklungs-Kette: Nutzung von Eigenschafts-Vorhersagen f~r Gusseisenwerkstoffe fer innovative BauteiI-Konstruktionen. Giesserei, 1990 (9): 56-58.
  • 3Svensson I L, Wessen M. Foundry of Cast Irons: Processing and Simulation. Numerical Simulation of Foundry Processes, 2001 (9): 87-145.
  • 4Heisser C, Sturm J C. Casting Process Simulation of Compacted Graphite Iron (03-025). In: Proceedings of the 107th Casting Congress, Milwaukee, Wisconsin, April 26-28, 2003: 685-692.
  • 5Heisser C, Nikolov K, Burkhardt R. Applying Experience and Technology Tools to Meet Customer Performance Requirements on a 100-70-03 - Ductile Iron Casting (03-120). In: Proceedings of the 107th Casting Congress, Milwaukee, Wisconsin, April 26-28, 2003:931-937.
  • 6Sturm J C. Optimisation - Integration - Casting Property Prediction. 66th World Foundry Congress, Istanbul, Turkey, September6-9, 2004:171-168.
  • 7Rechsteiner A. Virtuelles Giessen-ein Werkzeug der trglichen Praxis. In: Proceedings of German MAGMA User Meeting, Vaals, The Netherlands, October 2003,.
  • 8Weiss U, Broda M, Rong P. Die Rolle des Eisengierers bei der virtuellen Produktentwicklung im Automobilbau. Presentation on the MAGMA Seminar "Gusseisen - Ein Werkstoff mit Zukunft", Duisburg, May 2002.
  • 9Boulton A J, Wieckowicz P, Olive S. Cast Metals Times. Modern Media Communication Ltd, Shordham by sea, UK, June 2003.
  • 10Hansen P N, Hartmann G, Sturm J C. Optimised Development for Castings and Casting Processes - Increase in Value by applying an integrated CAE Chain for the Development of Automotive Castings. In: Proceedings of the 65th World Foundry Congress, Kyongju, Korea, October 2002: 625-638.

同被引文献28

引证文献4

二级引证文献5

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部