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Effect of gate design and cavity thickness on filling, morphology and mechanical properties of microinjection moldings

机译:浇口设计和型腔厚度对显微注射成型件填充,形态和力学性能的影响

摘要

Miniaturized parts weighing up to tens of milligrams represent a large category of microinjection moulded products. Both miniaturization and extreme processing under microinjection moulding cause material to experience high shear rates and high cooling rates, and to have different morphology and final properties from conventional injection moulding. It also makes mould design quite challenging. This study investigates micro gate design (opening and thickness) and cavity thickness (100–500 μm) on filling, morphology and mechanical properties of Poly(ether-block-amide) miniaturized dumbbell parts. It is found that a reduction of gate size has two conflicting effects: increased shear heating increases flow length; increased cooling rate reduces flow length. Filling increases significantly with an increase of cavity thickness. In addition, skin ratio reduces from ∼70% to ∼10%, when part thickness increases from 100 μm to 500 μm. Such oriented skin layer determines molecular orientation and broadly influences Young’s modulus, elongation and yield stress. Natural aging at room temperature induces an increase of modulus and yield stress, and a decrease of strain at break. Mechanical properties of microinjection mouldings are significantly different from conventional injection mouldings and measurement at the microscale is required for successful miniaturized product design.
机译:重达数十毫克的微型零件代表了微注射成型产品的一大类。微型注射成型过程中的小型化和极限加工都使材料经受高剪切速率和高冷却速率,并具有与常规注射成型不同的形态和最终性能。这也使模具设计颇具挑战性。这项研究研究了微型(聚醚嵌段酰胺)微型哑铃零件的填充,形态和力学性能的微浇口设计(开口和厚度)和腔体厚度(100-500μm)。发现减小浇口尺寸有两个相互矛盾的作用:增加的剪切热增加了流动长度;增加了剪切力。增加的冷却速度可减少流动长度。随着型腔厚度的增加,填充量显着增加。另外,当零件厚度从100μm增加到500μm时,表皮比从〜70%降低到〜10%。这种定向的表皮层决定了分子的定向,并广泛影响了杨氏模量,伸长率和屈服应力。在室温下自然老化会引起模量和屈服应力的增加,以及断裂时应变的降低。显微注射成型的机械性能与传统的注射成型显着不同,成功进行微型化产品设计需要进行微尺度的测量。

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