Calaon Matteo, Baruffi Federico, Fantoni Gualtiero, Cirri Ilenia, Santochi Marco, Hansen Hans Nørgaard, Tosello Guido
Department of Mechanical Engineering, Technical University of Denmark, Building 427A, Produktionstorvet, DK-2800 Kgs Lyngby, Denmark.
Department of Civil and Industrial Engineering, University of Pisa, Largo Lucio Lazzarino 2, 56126 Pisa, Italy.
Micromachines (Basel). 2020 Dec 16;11(12):1115. doi: 10.3390/mi11121115.
Micro polymer parts can be usually manufactured either by conventional injection moulding (IM) or by micro-injection moulding (µIM). In this paper, functional analysis was used as a tool to investigate the performances of IM and µIM used to manufacture the selected industrial component. The methodology decomposed the production cycle phases of the two processes and attributed functions to parts features of the two investigated machines. The output of the analysis was aimed to determine casual chains leading to the final outcome of the process. Experimental validation of the functional analysis was carried out moulding the same micro medical part in thermoplastic elastomer (TPE) material using the two processes by means of multi-cavity moulds. The produced batches were assessed using a precision scale and a high accuracy optical instrument. The measurement results were compared using capability indexes. The data-driven comparison identified and quantified the correlations between machine design and part quality, demonstrating that the µIM machine technology better meets the accuracy and precision requirements typical of micro manufacturing productions.
微型聚合物零件通常可以通过传统注塑成型(IM)或微注塑成型(µIM)来制造。在本文中,功能分析被用作一种工具,以研究用于制造所选工业部件的IM和µIM的性能。该方法分解了这两个工艺的生产周期阶段,并将功能赋予了所研究的两台机器的零件特征。分析的输出旨在确定导致该工艺最终结果的因果链。通过使用多型腔模具,采用这两种工艺对热塑性弹性体(TPE)材料的同一微型医疗零件进行成型,对功能分析进行了实验验证。使用精密秤和高精度光学仪器对生产的批次进行评估。使用能力指数对测量结果进行比较。数据驱动的比较识别并量化了机器设计与零件质量之间的相关性,表明µIM机器技术更能满足微制造生产典型的精度和精密要求。