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Constitutive Models for Rubber XI最新文献

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Equibiaxial tension testing of rubber on a universal tension-testing machine 橡胶在万能拉力试验机上的等双轴拉力试验
Pub Date : 2019-06-07 DOI: 10.1201/9780429324710-38
M. Wimmer, P. Ertl, J. Schneider, F. Abraham
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引用次数: 0
Nonlinear Compressible Finite Viscoleasticity of Epoxy-Based Polymers 环氧基聚合物的非线性可压缩有限粘弹性
Pub Date : 2019-06-07 DOI: 10.1201/9780429324710-59
H. Dal, F. Welschinger, P. Gromala, B. Han
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引用次数: 0
Characteristic crack deviation during fatigue loading in natural rubber 天然橡胶疲劳加载时的特征裂纹偏差
Pub Date : 2019-06-07 DOI: 10.1201/9780429324710-69
F. Xiang, G. Heinrich, K. Schneider
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引用次数: 0
A constitutive model for rubbers providing temperature dependent behavior and self-heating 提供温度依赖行为和自加热的橡胶本构模型
Pub Date : 2019-06-07 DOI: 10.1201/9780429324710-50
S. Gelke, J. Thiemann
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引用次数: 0
The study of deformable discontinuous carbon coating of elastic polyurethane surface 弹性聚氨酯表面可变形不连续碳涂层的研究
Pub Date : 2019-06-07 DOI: 10.1201/9780429324710-21
I. Morozov, A. Kamenetskikh, M. Scherban
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引用次数: 0
Hyperelastic model identification from heat source fields 热源场超弹性模型识别
Pub Date : 2019-06-07 DOI: 10.1201/9780429324710-33
S. Charlès, J. Cam
: In this paper, a new inverse identification method is proposed by coupling full kinematic and thermal field measurements. It consists in reconstructing the heat source from two approaches, a first one that requires the measurement of the temperature field and the value of the thermophysical parameters, and a second one based on the measurement of the kinematics field and a thermo-hyperelastic model that contains the parameters to be identified. The identification does not require any boundary conditions since it is carried out at the local scale. In the present work, the method is applied to the identification of hyperelastic parameters from a heterogeneous heat source field. Due to large deformations undergone by the rubber specimen tested, a motion compensation technique is developed to plot the kinematic and thermal fields at the same points before reconstructing the heat source.
本文提出了一种将全运动学和热场测量相结合的反辨识方法。它包括从两种方法重建热源,第一种方法需要测量温度场和热物性参数的值,第二种方法基于运动学场的测量和包含待识别参数的热超弹性模型。识别不需要任何边界条件,因为它是在局部尺度上进行的。本文将该方法应用于非均质热源场的超弹性参数识别。针对被测橡胶试样变形较大的问题,提出了一种运动补偿技术,在重建热源前先绘制同一点的运动场和热场。
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引用次数: 0
Why cutting strength is an indicator of fatigue threshold 为什么切削强度是疲劳阈值的一个指标
Pub Date : 2019-06-07 DOI: 10.1201/9780429324710-61
William V Mars, C. G. Robertson, R. Stoček, C. Kipscholl
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引用次数: 3
Of rubber and tires: Practical issues in tire modelling 橡胶和轮胎:轮胎建模中的实际问题
Pub Date : 2019-06-07 DOI: 10.1201/9780429324710-1
J. Vacherand
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引用次数: 0
A comparative study on hyperelastic constitutive models on rubber: State of the art after 2006 橡胶超弹性本构模型的比较研究:2006年以后的研究进展
Pub Date : 2019-06-07 DOI: 10.1201/9780429324710-42
H. Dal, Yashar Badienia, Kemal Açıkgöz, Funda Aksu Denli
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引用次数: 18
Development of a new constitutive model for thermoplastic copolyester materials 热塑性共聚酯材料新本构模型的建立
Pub Date : 2019-06-07 DOI: 10.1201/9780429324710-54
P. Robard, L. Gornet, P. Rozycki, G. Marckmann, Jean-Charles Guldner, F. Maitay
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引用次数: 0
期刊
Constitutive Models for Rubber XI
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