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Investigation of Heat Treatment Strategies for Additively-Manufactured Tools of X37CrMoV5-1

机译:X37CrMoV5-1增材制造工具的热处理策略研究

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摘要

For cost-intensive products like automobiles, clients often wish to personalize their product, what forces the industry to create a large diversity of combinable parts. Additionally, the life cycles of many components become shorter. For highly-stressable parts, which are commonly manufactured by forging, the short changeover cycles result in expensive products, as the costs of tools must be offset by the sale of only a few parts. To reduce the tool cost, new, flexible processes have to be established in tool manufacturing. Laser-based additive manufacturing is noted for its high flexibility; notably, Laser Metal Deposition (LMD) is gaining increasing relevance in research, as it is already used for coating and repairing forming tools, this technology makes it possible to add material onto free-formed surfaces. Therefore, investigations are being conducted to qualify this process to produce forging tools. Due to the thermal processes which are required during additive manufacturing, the microstructure of the material differs from that of wrought material. This, in turn, affects the strategy of post heat treatment in order that the required mechanical properties for tools be attained. Within this manuscript, the influence of additive manufacturing on performance characteristics of hot work tool steel X37CrMoV5-1 (1.2343) is analyzed. To investigate the behavior of additively manufactured material during the process chain of tool manufacturing, properties for different states of a heat treatment are characterized by hardness and strength. It was shown that the strength of the additively manufactured material could be increased compared to wrought material by using a tailored heat treatment. The effects that cause this behavior are investigated by comparing the microstructure at different states of heat treatment.
机译:对于汽车等成本密集型产品,客户通常希望个性化其产品,这迫使该行业制造出大量可组合零件。此外,许多组件的生命周期变得更短。对于通常由锻造制造的高应力零件,较短的转换周期会导致产品昂贵,因为仅通过出售少量零件就可以抵消工具成本。为了降低工具成本,必须在工具制造中建立新的灵活过程。基于激光的增材制造以其高灵活性而著称。值得注意的是,激光金属沉积(LMD)在研究中的重要性越来越高,因为它已用于涂覆和修复成形工具,该技术使得可以将材料添加到自由成形的表面上。因此,正在进行调查以使该过程合格以生产锻造工具。由于在增材制造过程中需要进行热处理,因此材料的微观结构不同于锻造材料的微观结构。这进而影响后热处理的策略,以便获得工具所需的机械性能。在此手稿中,分析了增材制造对热作工具钢X37CrMoV5-1(1.2343)性能特征的影响。为了研究工具制造过程链中增材制造材料的行为,以硬度和强度为特征来表征热处理状态不同的性能。结果表明,与经过锻造的材料相比,可以通过量身定制的热处理工艺来增加添加材料的强度。通过比较不同热处理状态下的微观结构,研究了导致这种行为的影响。

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