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Dynamic Mechanical Response of Foams for Noise Control

机译:噪声控制泡沫的动态机械响应

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In this work, the viscoelastic behavior of open cell polyurethane foams used in noise control applications is investigated through dynamic mechanical analysis in compression. Several levels of static strains superimposed on a small dynamic one were considered in order to assess the effect of material non-linearity on the mechanical response. Further, a wide range of frequencies and temperatures was explored. For each static strain a different master curve for conservative component of complex modulus, E', could be determined. Interestingly, the loss factor was the same at all static strains, indicating that the relative contribution of energy dissipation and conservation is unaffected by the static strain. Moreover, shift factors (and thus the bulk material relaxation times) turned out to be independent on static strain level. These results suggest that the non- linearity of the foam is linked to the change in foam structure with strain rather than to a non-linear behavior of the viscoelastic constituent material. The acoustic performance of the considered materials was modelled for a case study with two approaches: i) standard simulations performed taking a single valued complex modulus, measured at 50Hz and room temperature or ii) simulations taking into account the complex modulus frequency dependence obtained from the master curves. The transmission loss prediction obtained in the second case is in better agreement with experiments, especially at high frequencies.
机译:在这项工作中,通过压缩动态机械分析研究了噪声控制应用中使用的开放式电池聚氨酯泡沫的粘弹性行为。考虑了叠加在小动态的几个水平的静态菌株,以评估材料非线性对机械反应的影响。此外,探索了广泛的频率和温度。对于每个静态应变,可以确定复杂模量,E'保守分量的不同主曲线。有趣的是,损失因子在所有静态菌株中都是相同的,表明能量耗散和保护的相对贡献不受静态应变的影响。此外,转变因子(以及散装材料弛豫时间)原因在于静态应变水平。这些结果表明,泡沫的非线性与泡沫结构的变化与粘弹性成分材料的非线性行为相关联。所考虑的材料的声学性能是以两种方法的案例研究建模:i)在50Hz和室温或II)模拟中采用单个值的复合模量进行的标准模拟,考虑到从中获得的复数模数频率依赖性主曲线。在第二种情况下获得的传输损耗预测与实验更好,特别是在高频上更好。

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