Embedding a surface acoustic wave sensor and venting into a metal additively manufactured injection mould tool for targeted temperature monitoring

被引:2
|
作者
Sakalys, Rokas [1 ,2 ]
O'Hara, Christopher [1 ,3 ]
Kariminejad, Mandana [1 ,3 ]
Weinert, Albert [1 ,3 ]
Kadivar, Mohammadreza [1 ,3 ]
Zluhan, Bruno [2 ]
Mcafee, Marion [1 ,3 ]
Mcgranaghan, Gerard [1 ,3 ]
Tormey, David [1 ,3 ]
Raghavendra, Ramesh [1 ,2 ]
机构
[1] Univ Coll Dublin, SFI Res Ctr Adv Mfg, OBrien Ctr Sci East, I Form, Room L0 13,CSCB Bldg, Dublin, Ireland
[2] South East Technol Univ, South Eastern Appl Mat Res Ctr SEAM, Waterford X91TX03, Ireland
[3] Atlantic Technol Univ, Ctr Precis Engn Mat & Mfg Res, PEM Res Ctr, Ash Lane, Sligo F91YW50, Ireland
基金
爱尔兰科学基金会;
关键词
Wireless sensor embedding; Print-in-place venting; Injection moulding; Additively manufactured injection mould tools; In-mould sensors; OPTIMIZATION; FABRICATION; PRESSURE; PARTS;
D O I
10.1007/s00170-023-12932-7
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Injection moulding (IM) tools with embedded sensors can significantly improve the process efficiency and quality of the fabricated parts through real-time monitoring and control of key process parameters such as temperature, pressure and injection speed. However, traditional mould tool fabrication technologies do not enable the fabrication of complex internal geometries. Complex internal geometries are necessary for technical applications such as sensor embedding and conformal cooling which yield benefits for process control and improved cycle times. With traditional fabrication techniques, only simple bore-based sensor embedding or external sensor attachment is possible. Externally attached sensors may compromise the functionality of the injection mould tool, with limitations such as the acquired data not reflecting the processes inside the part. The design freedom of additive manufacturing (AM) enables the fabrication of complex internal geometries, making it an excellent candidate for fabricating injection mould tools with such internal geometries. Therefore, embedding sensors in a desired location for targeted monitoring of critical mould tool regions is easier to achieve with AM. This research paper focuses on embedding a wireless surface acoustic wave (SAW) temperature sensor into an injection mould tool that was additively manufactured from stainless steel 316L. The laser powder bed fusion (L-PBF) "stop-and-go" approach was applied to embed the wireless SAW sensor. After embedding, the sensor demonstrated full functionality by recording real-time temperature data, which can further enhance process control. In addition, the concept of novel print-in-place venting design, applying the same L-PBF stop-and-go approach, for vent embedding was successfully implemented, enabling the IM of defectless parts at faster injection rates, whereas cavities designed and tested without venting resulted in parts with burn marks.
引用
收藏
页码:5627 / 5640
页数:14
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