Study of the temperature-humidity equivalence and the time-temperature superposition principle in the finite-strain response of polyamide-6 and short glass fibre-reinforced polyamide-6

IF 6 2区 材料科学 Q1 MATERIALS SCIENCE, CHARACTERIZATION & TESTING Polymer Testing Pub Date : 2024-12-01 Epub Date: 2024-11-23 DOI:10.1016/j.polymertesting.2024.108653
Daniele Finazzi , Guillem Seychal , Jean-Marie Raquez , Gilles Robert , Karen De Clerck , Lode Daelemans , Wim Van Paepegem
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Abstract

Polyamide-6 (PA6) and short glass fibre-reinforced PA6 (GPA6) are increasingly used in structural automotive parts exposed to harsh conditions, respectively as liner in Type IV hydrogen tanks and under-the-hood components near the engine. Safe design requires understanding of their complex mechanical behaviour under the influence of temperature, moisture, and strain rate. Two models often applied in the literature are the temperature-humidity equivalence and the time-temperature superposition (TTS), however their accuracy to describe the full mechanical response is still unclear. By generating high-quality data, this paper conducts a quantitative study of these models on the mechanical response of injection-moulded PA6 and GPA6 with a very high fibre content (50 wt%). The materials were conditioned either dry or at 50%RH. Dynamic mechanical analysis (DMA) was used to measure the glass transition temperature of dry PA6 and 50%RH PA6, and to construct TTS master curves. Tensile tests were then conducted at different combinations of temperature, moisture, and strain rate. Comparison of the tensile true stress-true strain curves revealed that the proposed models fail to capture the effects of the thermal history, which may cause microstructural modifications as demonstrated with differential scanning calorimetry (DSC). The link between DSC, DMA, and tensile data constitutes a novelty of this work and was possible because all the samples had the same hygro-thermal history. Additionally, self-heating of PA6 causes deviations from the TTS at large strains. The results of this study may help develop more accurate material models, ultimately improving the design of structural automotive parts.
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聚酰胺-6和短玻璃纤维增强聚酰胺-6有限应变响应的温湿度等效和时温叠加原理研究
聚酰胺-6 (PA6)和短玻璃纤维增强PA6 (GPA6)越来越多地用于暴露在恶劣条件下的汽车结构件,分别作为IV型氢气罐的衬垫和发动机附近的引擎盖下部件。安全设计需要了解它们在温度、湿度和应变率影响下的复杂力学行为。文献中常用的两种模型是温度-湿度等效模型和时间-温度叠加模型(TTS),但它们描述全力学响应的准确性尚不清楚。通过生成高质量的数据,本文对注塑成型PA6和纤维含量非常高(50% wt%)的GPA6的力学响应模型进行了定量研究。材料要么干燥,要么在50%的相对湿度下。采用动态力学分析(DMA)方法测定了干燥PA6和50%RH PA6的玻璃化转变温度,并构建了TTS主曲线。然后在不同的温度、湿度和应变率组合下进行拉伸试验。拉伸真应力-真应变曲线的比较表明,所提出的模型未能捕捉到热历史的影响,这可能导致微观结构的改变,正如差示扫描量热法(DSC)所证明的那样。DSC, DMA和拉伸数据之间的联系构成了这项工作的新颖性,并且可能是因为所有样品都具有相同的湿热历史。此外,PA6的自加热导致在大应变下偏离TTS。这项研究的结果可能有助于开发更准确的材料模型,最终改进汽车结构件的设计。
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来源期刊
Polymer Testing
Polymer Testing 工程技术-材料科学:表征与测试
CiteScore
10.70
自引率
5.90%
发文量
328
审稿时长
44 days
期刊介绍: Polymer Testing focuses on the testing, analysis and characterization of polymer materials, including both synthetic and natural or biobased polymers. Novel testing methods and the testing of novel polymeric materials in bulk, solution and dispersion is covered. In addition, we welcome the submission of the testing of polymeric materials for a wide range of applications and industrial products as well as nanoscale characterization. The scope includes but is not limited to the following main topics: Novel testing methods and Chemical analysis • mechanical, thermal, electrical, chemical, imaging, spectroscopy, scattering and rheology Physical properties and behaviour of novel polymer systems • nanoscale properties, morphology, transport properties Degradation and recycling of polymeric materials when combined with novel testing or characterization methods • degradation, biodegradation, ageing and fire retardancy Modelling and Simulation work will be only considered when it is linked to new or previously published experimental results.
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