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具有随形冷却的3D打印部件在高压压铸模具中的应用及使用过程中的应力状态评估

Application of a 3D-Printed Part with Conformal Cooling in High-Pressure Die Casting Mould and Evaluation of Stress State During Exploitation.

作者信息

Małysza Marcin, Żuczek Robert, Wilk-Kołodziejczyk Dorota, Jaśkowiec Krzysztof, Bitka Adam, Głowacki Mirosław, Zięba Łukasz, Pysz Stanisław

机构信息

Faculty of Metals Engineering and Industrial Computer Science, AGH University of Krakow, al. Mickiewicza 30, 30-059 Krakow, Poland.

Łukasiewicz Research Network-Krakow Institute of Technology, 30-418 Krakow, Poland.

出版信息

Materials (Basel). 2024 Dec 6;17(23):5988. doi: 10.3390/ma17235988.

Abstract

The article addresses stress formation in the structural 3D-printed elements of a high-pressure die casting die mould used for production of aluminum castings. The 3D-printed elements with conformal cooling are manufactured of 18Ni300 powder. Initial numerical calculations were performed on a test die mould made of standard steel X40CrMoV5 to determine temperature distribution and stress state, providing a baseline for comparing 3D-printed 18Ni300 parts. A database for 18Ni300 material was developed, including optimal heat treatment parameters: aged at 560 °C for 8 h. The resulting tensile strength of approximately ~1600 MPa, yield strength 1550 MPa, and elongation 6-7%, with properties temperature-dependent from 20 °C to 600 °C. Results show that conformal cooling increases stress gradients, highlighting the demands on fatigue strength at elevated temperatures. The study revealed that the heat treatment significantly influences the final properties, with tensile strengths of 1400-2000 MPa and elongation from 1 to 8%. While the heat treatment has a greater impact on the mechanical properties than the printing parameters, optimizing the printing settings remains crucial for ensuring density and quality in the die moulds under cyclic loads.

摘要

本文探讨了用于生产铝铸件的高压压铸模具的结构3D打印元件中的应力形成问题。具有随形冷却功能的3D打印元件由18Ni300粉末制成。最初的数值计算是在由标准钢X40CrMoV5制成的测试模具上进行的,以确定温度分布和应力状态,为比较3D打印的18Ni300零件提供基线。开发了18Ni300材料的数据库,包括最佳热处理参数:在560°C时效8小时。最终的抗拉强度约为~1600MPa,屈服强度为1550MPa,伸长率为6-7%,其性能在20°C至600°C范围内与温度有关。结果表明,随形冷却会增加应力梯度,突出了对高温下疲劳强度的要求。研究表明,热处理对最终性能有显著影响,抗拉强度为1400-2000MPa,伸长率为1-8%。虽然热处理对机械性能的影响比打印参数更大,但优化打印设置对于确保模具在循环载荷下的密度和质量仍然至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/52cd/11643306/f0102192f763/materials-17-05988-g001.jpg

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