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Compression and hysteresis curves of nonlinear polyurethane foams under different densities, strain rates and different environmental conditions

机译:非线性聚氨酯泡沫在不同密度,应变速率和不同环境条件下的压缩和滞后曲线

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Polyurethane (PU) closed cell foam samples with different densities were tested under loading and unloading compression tests at different temperatures and strain rates. Quasi-static compression tests were performed using the Lloyd LR5K Plus instrument at strain rates ranges from 0.033-0.267 s"1. Tests were conducted in a precised enclosure to control the dependency of PU foam cells on temperature and humidity. In order to have an accurate comparison in compression and hysteresis curves for all tests; all PU foam samples were selected intentionally from the same foam block but with different location densities. Furthermore, all foam samples were tested in the direction of foam rise (thickness). First, PU foam samples were compressed with a circular platen up to 70% strain at different strain rates and different temperatures. Then, the platen was raised completely from the foam samples. During the experiment; stress-strain responses were measured and plotted for loading and unloading curves to determine stored energy, dissipation energy and peak stresses were calculated at 70% strain. Results have shown that PU foam sample responses under compression testing gets softer at higher temperatures when conducted at a constant strain rates. At constant temperatures, PU foam samples get harder at higher slip rates. Finally, both stored and dissipation energies were found to be dependent heavily on foam density, ambient temperature and strain rate.
机译:在不同温度和应变速率下的加载和卸载压缩测试下,对密度不同的聚氨酯(PU)闭孔泡沫样品进行了测试。使用Lloyd LR5K Plus仪器在0.033-0.267 s“ 1的应变速率下进行了准静态压缩测试。测试在精确的外壳中进行,以控制PU泡沫电池对温度和湿度的依赖性。所有测试的压缩和滞后曲线的精确比较;所有聚氨酯泡沫样品均是从相同的泡沫块中选择的,但具有不同的位置密度;此外,所有泡沫样品均沿泡沫上升的方向(厚度)进行了测试。在不同的应变率和温度下,用圆形压板将样品压缩至70%的应变,然后使压板完全从泡沫样品中升起,在实验过程中,测量了应力-应变响应并绘制了加载和卸载曲线,得出了确定在70%应变下的储能,耗散能和峰值应力,结果表明,PU泡沫样品在压缩te下的响应当以恒定的应变速率进行时,刺痛在较高的温度下会变软。在恒定温度下,PU泡沫样品在较高的滑移率下会变硬。最后,储能和耗散能都在很大程度上取决于泡沫密度,环境温度和应变率。

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