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High Performance Turning of Austempered Ductile Iron (ADI) with adapted Cutting Inserts

机译:具有改进的切削刀片的高性能转向奥斯特型延展铁(ADI)

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Heat treated Ductile Iron with austenitic-ferritic matrix (ADI) has a high potential for the substitution of forged steel and conventional Ductile Iron. Advantages of ADI compared to steel are good castability and lower density. In comparison to conventional Ductile Iron, the increased ratio of tensile strength / ductility with higher resistance against abrasive wear and durability are of advantage. In the industrial applications, the material sided advantages are counterbalanced by the higher costs of the demanding machining, especially in rough turning operations. In this presentation, the development of cutting inserts for high performance turning operations, which are adapted on the specific requirements of the machining of ADI 900, are described. In the first step, the particular machinability, which can be traced back to the metallic matrix, was specified. The characteristic, discontinuous chip formation in combination with the strong tendency of hardening of the austenitic-ferritic matrix was identified as a major wear mechanism, resulting in extreme peaks of cutting forces and high specific mechanical load on the insert edge. For an enhanced evaluation of chip formation and the resultant thermomechanical tool load, a 3D FEM simulation model was developed. By using this 3D simulation model of the longitudinal external turning process, the maximum cutting forces were specified in addition to the influence of the chip segment formation frequency. The obtained results from the simulation have been used to develop an optimised insert geometry. By using the optimised tool, an increased tool life of 70 % could be observed. The shown results are part of the PhD Thesis authors Dissertation "Werkzeug- und Prozessauslegung zur Drehbearbeitung von austenitisch-ferritischem Gusseisen mit Kugelgraphit"
机译:具有奥氏体 - 铁素物质基质(ADI)的热处理的延性铁具有高潜力的锻钢和常规延性铁。与钢相比,ADI的优点是良好的铸造性和更低的密度。与常规的延性熨斗相比,抗拉强度/延展性与耐磨料耐磨性较高的耐延长率的增加具有有利的。在工业应用中,材料面的优点因苛刻机械加工的成本较高,尤其是在粗糙的转动操作中而平衡。在该介绍中,描述了用于高性能转向操作的切削刀片的开发,其适于于ADI 900的加工的特定要求。在第一步中,指定了可以追溯到金属矩阵的特定加工性。鉴定了与奥氏体 - 铁素物质基质硬化强化趋势的特性,不连续的芯片形成被鉴定为主要的磨损机构,导致切割力的极端峰值和插入边缘上的高具体机械负载。为了增强芯片形成和所得的热机械刀具的评估,开发了3D FEM仿真模型。通过使用纵向外部转动过程的该3D仿真模型,除了芯片段形成频率的影响之外还指定了最大切割力。从模拟中获得的结果已被用于开发优化的插入几何形状。通过使用优化的工具,可以观察到70%的刀具寿命增加。所表明的结果是博士论文的一部分论文“Werkzeug-und Prozessauslegung Zur Drehbearbeitung von Austenisch-Ferrischem Gusseisen Mit Kugelgraphit”

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