| Literature DB >> 36080681 |
Zhaoqun Shao1, Min Zhu1, Tianxi Liang1, Fei Wu1, Zijian Xu1, Yang Yang1, Yilong Liu1.
Abstract
The mechanical properties of silicone foam will degrade when exposed to environmental loads such as temperature and pressure for a long time. In recent years, the variation law of the stress-strain response of silicone foam during the aging process has received more and more attention, but there are few works that quantitatively analyze the variation of the stress-strain response. In this work, we quantitatively analyzed the variation law of the stress-strain response of silicone foam during aging by the constitutive model. Firstly, the accelerated aging test of silicone rubber foam under long-term compressive strain was carried out, and its compression set, stress relaxation and strain stress curves of different aging degrees were obtained. Further, degenerate trajectory equations for the compression set and stress-relaxation were obtained. In addition, the hyper-foam constitutive model was obtained by fitting stress-strain curves, and the changes in the model parameters after aging were studied. The results show that the compressed set and stress-relaxation are exponential functions of time, while different to existing research findings, we found that the stress-strain curves do not change monotonically with increasing time, which first softens, then hardens, and finally softens. Additionally, to better understand the changing trend of the stress-strain response, the correlation between the stress-strain curve and the compression set and stress-relaxation was discussed qualitatively. Finally, in the stage of monotonic change of the stress-strain curve, the exponential function of the model parameters with the increase of aging time was obtained.Entities:
Keywords: aging; constitutive model; silicone foam; stress–strain curve
Year: 2022 PMID: 36080681 PMCID: PMC9460070 DOI: 10.3390/polym14173606
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.967
Figure 1Stress–relaxation curve of silicone foam.
Figure 2Compress set and stress–relaxation curves for aged silicone rubber foams under thermal conditions of 125 °C.
Figure 3The stress–strain curves for silicone foam aged in the early stage.
Figure 4The stress–strain curves for silicone foam aged for different times.
Constitutive model parameters at various temperatures.
| Aging Time/h |
|
|
|
|
|
|---|---|---|---|---|---|
| 0 | 0.4684 | 0.2349 | 0.05117 | 10.76 | 0.5196 |
| 8 | 0.4387 | 0.2193 | 0.01676 | 14.13 | 0.4555 |
| 16 | 0.4272 | 0.2137 | 0.03456 | 12.8 | 0.4618 |
| 24 | 0.3806 | 0.1904 | 0.04111 | 12.27 | 0.4217 |
| 36 | 0.3797 | 0.19 | 0.04296 | 12.24 | 0.4227 |
| 48 | 0.3809 | 0.1906 | 0.04335 | 12.13 | 0.4243 |
| 72 | 0.3791 | 0.1896 | 0.04202 | 12.02 | 0.4211 |
| 96 | 0.3615 | 0.1809 | 0.03921 | 11.98 | 0.4007 |
| 144 | 0.3492 | 0.1747 | 0.03844 | 11.75 | 0.3876 |
| 192 | 0.3281 | 0.1642 | 0.03724 | 11.49 | 0.3653 |
Figure 5Variation of hyper-foam model parameters with time at different degrees of aging: (a) ; (b) ; (c) ; (d) .
Figure 6The fitting results of the hyper-foam model parameters as functions of aging time: , , , and .