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首页> 外文期刊>Journal of Manufacturing Processes >Surface footprint in molds micromilling and effect on part demoldability in micro injection molding
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Surface footprint in molds micromilling and effect on part demoldability in micro injection molding

机译:模具微铣削中的表面足迹及其对微注射成型中零件脱模性的影响

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Accuracy of micromilled molds play an important role in complex process chains enabling mass production of polymer micro components, such as lab-on-chips, fabricated by micro injection molding. Surface footprint of micromilling is defined as the technological signature left by machining process on the generated mold surface. This is sensitive to selected tools and machining parameters and, when not controlled properly, can badly affect mold topography and functionality (e.g. part demoldability). In case of complex mold geometry, the impact of micromilling footprint increases, in particular during the demolding phase due to the friction generated by the polymer shrinking around cores. This work studies these effects on molds characterized by sub-millimetric cylindrical cores. A physical and statistical modeling was developed to provide deep insights about the effects of milling strategies and cutting parameters on the generated footprint on the mold cores. These effects are investigated by machining cylindrical pins whose roughness and surface form errors, caused by static deflection of tool and parts, were controlled in the range of S-a = 150-400 mu m and Delta R-max =1-10 mu m (profile radial deviation), respectively. Micro injection molding experiments proved that mold topography has a relevant effect on the ejection force. The demolding force generated by a specifically developed polystyrene micro part reached the highest value with the mold machined with the most unfavorable milling conditions. Proper controlling of machine parameters and conditions led to a reduction greater than 60% of the demolding force peak, confirming the feasibility of the conjunct approach to processes optimization. The results of this work move a step forward into the integrated optimization of micro manufacturing process chains. (C) 2017 The Society of Manufacturing Engineers. Published by Elsevier Ltd. All rights reserved.
机译:微型铣削模具的精度在复杂的工艺链中起着重要的作用,该工艺链能够通过微注模成型大规模生产聚合物微元件,例如芯片实验室。微型铣削的表面足迹定义为加工过程在生成的模具表面上留下的技术特征。这对选定的工具和加工参数很敏感,如果控制不当,会严重影响模具的形貌和功能(例如零件的脱模性)。在复杂的模具几何形状的情况下,尤其是在脱模阶段,由于聚合物在型芯周围收缩而产生的摩擦力,微型铣削足迹的影响会增加。这项工作研究了这些对以亚毫米级圆柱芯为特征的模具的影响。开发了物理和统计模型,以提供有关铣削策略和切削参数对模具型芯产生的占地面积的影响的深刻见解。通过加工圆柱销来研究这些影响,圆柱销的粗糙度和表面形状误差(由工具和零件的静态挠度引起)控制在Sa = 150-400μm和Delta R-max = 1-10μm范围内(轮廓径向偏差)。微注射成型实验证明,模具形貌对顶出力有重要影响。在最不利的铣削条件下加工模具,由专门开发的聚苯乙烯微零件产生的脱模力达到了最高值。正确控制机器参数和条件可将脱模力峰值降低60%以上,这证实了联合方法进行工艺优化的可行性。这项工作的结果使微制造工艺链的集成优化向前迈进了一步。 (C)2017年制造工程师学会。由Elsevier Ltd.出版。保留所有权利。

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