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Hot machining: utilisation of the forging heat for efficient turning at elevated temperatures

机译:热加工:利用锻造热量在高温下有效转动

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The machining at elevated workpiece temperatures has many technological advantages and was intensively addressed in research within the last 20 years. Hot machining is foremost applied for difficult to cut materials, such as stainless steels. The key reason of the advantages of hot machining of steels is a reduction of the shear strength and a prevention of phase transformation in austenitic steels. The main disadvantage of hot machining remains the requirement for heating of the workpieces in connection with large energy consumption. An optional method to avoid this disadvantage is to machine the workpieces directly after the heat treatment at elevated temperatures. This method is in focus of hot machining research at the IWT Foundation Institute of Materials Science in Bremen within the cluster project Ecoforge. Within the current work the results of turning of the precipitation hardening ferrite-pearlite (AFP-) steel in two heat treated conditions with tungsten carbide inserts are presented. The cutting forces, tool wear and the chip formation are analysed due to turning of steel 38MnVS6 in the soft condition (ferrite-pearlite) and in the heat treated condition (bainite). The results show the potential of utilisation of the heat energy from the hot forming integrated heat treatment for hot turning of forge steels with bainite structure. The experimental results pave the way to shorten the process chain for the investigated materials within the cluster project Ecoforge and reveal correlations of machining at different workpiece temperatures.
机译:高架工件温度的加工具有许多技术优势,在过去20年内在研究中进行了集中化。热加工最重要的是应用于难以切割的材料,例如不锈钢。钢热加工优点的主要原因是抗剪切强度降低和防止奥氏体钢相变。热加工的主要缺点仍然需要与大能消耗相关的工件加热工件的要求。避免这种缺点的可选方法是在高温下的热处理之后直接机工件。该方法采用集群项目Ecoforge的不来梅IWT基金会材料科学研究所的热加工研究焦点。在目前的工作中,提出了两种热处理条件下沉淀硬化铁素体 - 珠光体(AFP-)钢的结果的结果。由于钢38MNVS6在软条件(铁素体 - 珠光体)和热处理条件(贝氏体)中,分析了切割力,工具磨损和芯片形成。结果表明,利用热能的热能与贝氏体结构的锻造钢热转弯的集成热处理的潜力。实验结果铺平了缩短群体项目Ecoforg内的研究材料的过程链,并揭示了在不同工件温度下加工的相关性。

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