Measurement of Small-Strain Modulus of Gravelly Soils Using Oedometer Equipped with Piezoelectric Sensors

Author(s):  
X. Zeng ◽  
V. Tammineni
2018 ◽  
Vol 47 (2) ◽  
pp. 20160331 ◽  
Author(s):  
Yi Zhao ◽  
Nabeel S. Mahmood ◽  
Richard A. Coffman

Author(s):  
Rizki Maretia Novi Barus ◽  
Apiniti Jotisankasa ◽  
Susit Chaiprakaikeow ◽  
Supakij Nontananandh ◽  
Shinya Inazumi ◽  
...  

2013 ◽  
Vol 53 (6) ◽  
pp. 951-965 ◽  
Author(s):  
Tadao Enomoto ◽  
Obaid Hassan Qureshi ◽  
Takeshi Sato ◽  
Junichi Koseki

Author(s):  
Ayoub Ayadi ◽  
Kamel Meftah ◽  
Lakhdar Sedira ◽  
Hossam Djahara

Abstract In this paper, the earlier formulation of the eight-node hexahedral SFR8 element is extended in order to analyze material nonlinearities. This element stems from the so-called Space Fiber Rotation (SFR) concept which considers virtual rotations of a nodal fiber within the element that enhances the displacement vector approximation. The resulting mathematical model of the proposed SFR8 element and the classical associative plasticity model are implemented into a Fortran calculation code to account for small strain elastoplastic problems. The performance of this element is assessed by means of a set of nonlinear benchmark problems in which the development of the plastic zone has been investigated. The accuracy of the obtained results is principally evaluated with some reference solutions.


2019 ◽  
Author(s):  
Ayumu Karimata ◽  
Pradnya Patil ◽  
Eugene Khaskin ◽  
Sébastien Lapointe ◽  
robert fayzullin ◽  
...  

Direct translation of mechanical force into changes in chemical behavior on a molecular level has important implication not only for the fundamental understanding of mechanochemical processes, but also for the development of new stimuli-responsive materials. In particular, detection of mechanical stress in polymers via non-destructive methods is important in order to prevent material failure and to study the mechanical properties of soft matter. Herein, we report that highly sensitive changes in photoluminescence intensity can be observed in response to the mechanical stretching of cross-linked polymer films when using stable, (pyridinophane)Cu-based dynamic mechanophores. Upon stretching, the luminescence intensity increases in a fast and reversible manner even at small strain (< 50%) and applied stress (< 0.1 MPa) values. Such sensitivity is unprecedented when compared to previously reported systems based on organic mechanophores. The system also allows for the detection of weak mechanical stress by spectroscopic measurements or by direct visual methods.<br>


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