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Micro-damage propagation in ultra-high vacuum seals

机译:超高真空密封件中的微损伤传播

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The paper addresses a fundamental problem of tightness of ultra-high vacuum systems (UHV) at cryogenic temperatures in the light of continuum damage mechanics (CDM). The problem of indentation of a rigid punch into an elastic-plastic half-space is investigated based on rate independent plasticity with mixed kinematic and isotropic hardening. The micro-damage fields are modeled by using an anisotropic approach with a kinetic law of damage evolution suitable for ductile materials and cryogenic temperatures. The model has been experimentally validated and the results are used to predict the onset of macro-cracking (loss of tightness) and the corresponding load (contact pressure). The algorithm is applied in the design of UHV systems for particle accelerators.
机译:本文根据连续损伤力学(CDM)的低温温度下的超高真空系统(UHV)紧绷性的根本问题。 基于速率独立可塑性,研究了利用运动速度和各向同性硬化的速率无塑性粘附到弹性塑料半空间的问题。 微损害领域是通过使用各向异性的方法来建模,具有适合用于延性材料和低温温度的损伤演化的动力学方法。 该模型已经通过实验验证,结果用于预测宏观裂纹的开始(密封性损失)和相应的负载(接触压力)。 该算法应用于粒子加速器UHV系统的设计。

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