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某种弹性非金属材料产品贮存寿命预估方法研究
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作者 韩慧超 董雪 栾家辉 《环境技术》 2021年第5期85-88,93,共5页
弹性非金属材料产品是通用机械零件的重要组成材料,也是武器装备的重要组成部分。根据弹性非金属材料产品性能情况,本文针对某型弹性非金属材料的高温加速寿命试验数据,对非金属材料贮存寿命预估方法进行了研究,采用基于性能退化的贮存... 弹性非金属材料产品是通用机械零件的重要组成材料,也是武器装备的重要组成部分。根据弹性非金属材料产品性能情况,本文针对某型弹性非金属材料的高温加速寿命试验数据,对非金属材料贮存寿命预估方法进行了研究,采用基于性能退化的贮存寿命评估方法,对某种弹性非金属材料的试验数据进行分析处理,评价了某种弹性非金属材料产品的寿命。 展开更多
关键词 弹性非金属材料 加速寿命试验 寿命预估
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带有微孔弹性体材料的机械加工工艺要点 被引量:2
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作者 俞培松 《组合机床与自动化加工技术》 北大核心 2004年第6期95-96,共2页
在对独特的含有大量微孔结构的非金属弹性材料的加工中 ,如何来保证其尺寸及形位精度和表面的质量是个难点 .选用合适的加工手段及加工参数 ,配以先进的量测方法 ,成为一个关键因素 .它对提高产品的附加值 ,在同类产品中战胜竞争对手 ,... 在对独特的含有大量微孔结构的非金属弹性材料的加工中 ,如何来保证其尺寸及形位精度和表面的质量是个难点 .选用合适的加工手段及加工参数 ,配以先进的量测方法 ,成为一个关键因素 .它对提高产品的附加值 ,在同类产品中战胜竞争对手 ,也是相当重要的 . 展开更多
关键词 非金属弹性材料 机械加工 精度 表面质量 微孔结构
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Weak fatigue notch sensitivity in a biomedical titanium alloy exhibiting nonlinear elasticity 被引量:2
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作者 Jinrui Zhang Syed A. A. Shah +2 位作者 Yulin Hao Shujun Li Rui Yang 《Science China Materials》 SCIE EI CSCD 2018年第4期537-544,共8页
It is well known that metallic materials exhibit worse fatigue damage tolerance as they behave stronger in strength and softer in modulus. This raises concern on the long term safety of the recently developed biomecha... It is well known that metallic materials exhibit worse fatigue damage tolerance as they behave stronger in strength and softer in modulus. This raises concern on the long term safety of the recently developed biomechanical compatible titanium alloys with high strength and low modulus. Here we demonstrate via a model alloy, Ti-24 Nb-4 Zr-8 Sn in weight percent, that this group of multifunctional titanium alloys possessing nonlinear elastic deformation behavior is tolerant in fatigue notch damage. The results reveal that the alloy has a high strength-to-modulus(σ/E) ratio reaching2% but its fatigue notch sensitivity(q) is low, which decreases linearly from 0.45 to 0.25 as stress concentration factor increases from 2 to 4. This exceeds significantly the typical relationship between σ/E and q of other metallic materials exhibiting linear elasticity. Furthermore, fatigue damage is characterized by an extremely deflected mountain-shape fracture surface, resulting in much longer and more tortuous crack growth path as compared to these linear elastic materials. The above phenomena can be explained by the nonlinear elasticity and its induced stress relief at the notch root in an adaptive manner of higher stress stronger relief. This finding provides a new strategy to balance high strength and good damage tolerance property of metallic materials. 展开更多
关键词 FATIGUE FRACTURE notch sensitivity biomedical metal titanium alloy
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