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Auswahl der wissenschaftlichen Literatur zum Thema „Interface direct shear“
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Zeitschriftenartikel zum Thema "Interface direct shear"
Lee, K. M., und V. R. Manjunath. „Soil-geotextile interface friction by direct shear tests“. Canadian Geotechnical Journal 37, Nr. 1 (01.02.2000): 238–52. http://dx.doi.org/10.1139/t99-124.
Der volle Inhalt der QuelleChen, Xiaobin, Jiasheng Zhang, Yuanjie Xiao und Jian Li. „Effect of roughness on shear behavior of red clay – concrete interface in large-scale direct shear tests“. Canadian Geotechnical Journal 52, Nr. 8 (August 2015): 1122–35. http://dx.doi.org/10.1139/cgj-2014-0399.
Der volle Inhalt der QuelleWang, Jun, Meng-Jie Ying, Fei-Yu Liu, Hong-Tao Fu, Jun-Feng Ni und Jing Shi. „Effect of Particle-Size Gradation on Coarse Sand-Geotextile Interface Response in Cyclic and Postcyclic Direct Shear Test“. Advances in Civil Engineering 2020 (03.09.2020): 1–11. http://dx.doi.org/10.1155/2020/1323296.
Der volle Inhalt der QuelleHamid, Tariq B., und Gerald A. Miller. „Shear strength of unsaturated soil interfaces“. Canadian Geotechnical Journal 46, Nr. 5 (Mai 2009): 595–606. http://dx.doi.org/10.1139/t09-002.
Der volle Inhalt der QuelleMortara, Giuseppe, Antonio Mangiola und Vito Nicola Ghionna. „Cyclic shear stress degradation and post-cyclic behaviour from sand–steel interface direct shear tests“. Canadian Geotechnical Journal 44, Nr. 7 (01.07.2007): 739–52. http://dx.doi.org/10.1139/t07-019.
Der volle Inhalt der QuelleYin, Kexin, Jiangxin Liu, Jiaxing Lin, Andreea-Roxana Vasilescu, Khaoula Othmani und Eugenia Di Filippo. „Interface Direct Shear Tests on JEZ-1 Mars Regolith Simulant“. Applied Sciences 11, Nr. 15 (30.07.2021): 7052. http://dx.doi.org/10.3390/app11157052.
Der volle Inhalt der QuelleSalama, Imane, und Christophe Dano. „Direct interface shear tests on Dunkirk sand“. E3S Web of Conferences 92 (2019): 13003. http://dx.doi.org/10.1051/e3sconf/20199213003.
Der volle Inhalt der QuelleSuits, L. D., T. C. Sheahan, GA Miller und TB Hamid. „Interface Direct Shear Testing of Unsaturated Soil“. Geotechnical Testing Journal 30, Nr. 3 (2007): 13301. http://dx.doi.org/10.1520/gtj13301.
Der volle Inhalt der QuelleWang, Dong, Jian Xin Zhang, Bin Tian und Jia Cao. „The Contrastive Research of Direct Shear Test on Different Pile-Soil Interface“. Applied Mechanics and Materials 90-93 (September 2011): 1743–47. http://dx.doi.org/10.4028/www.scientific.net/amm.90-93.1743.
Der volle Inhalt der QuelleLi, Lihua, Han Yan, Henglin Xiao, Wentao Li und Zhangshuai Geng. „Sand- and Clay-Photocured-Geomembrane Interface Shear Characteristics Using Direct Shear Test“. Sustainability 13, Nr. 15 (22.07.2021): 8201. http://dx.doi.org/10.3390/su13158201.
Der volle Inhalt der QuelleDissertationen zum Thema "Interface direct shear"
Dietz, Matthew S. „Developing an holistic understanding of interface friction using sand with direct shear apparatus“. Thesis, University of Bristol, 2000. http://hdl.handle.net/1983/55218bdd-b641-4365-a921-5a7ca0d475bc.
Der volle Inhalt der QuelleRoss, Jason D. „Static and Dynamic Shear Strength of a Geomembrane/Geosynthetic Clay Liner Interface“. The Ohio State University, 2009. http://rave.ohiolink.edu/etdc/view?acc_num=osu1243545173.
Der volle Inhalt der QuelleIscimen, Mehmet. „Shearing Behavior Of Curved Interfaces“. Thesis, Georgia Institute of Technology, 2004. http://hdl.handle.net/1853/7256.
Der volle Inhalt der QuelleOrebowale, Patience B. „Investigating the stability of geosynthetic landfill capping systems“. Thesis, Loughborough University, 2006. https://dspace.lboro.ac.uk/2134/7786.
Der volle Inhalt der QuelleToufigh, Vahid. „Testing and Evaluation of Confined Polymer Concrete Pile with Carbon Fiber Sleeve“. Diss., The University of Arizona, 2013. http://hdl.handle.net/10150/293492.
Der volle Inhalt der QuelleYin, Kexin. „Influence of clay fraction on the mechanical behavior of a soil-concrete interface“. Thesis, Ecole centrale de Nantes, 2021. http://www.theses.fr/2021ECDN0015.
Der volle Inhalt der QuelleIn geotechnical engineering, the soil-structure interface is an important aspect to take into account in soil structure interactions because it relates to the stability of the supported structure. In particular, the mechanical behaviour of the interface plays a key role in the design of civil engineering structures and their analysis over time. The interface is a thin zone of soil in contact with the structure where major stresses and strains develop in. To our knowledge, previous works on the characterization of the mechanical behaviour of the soil-structure interface mainly include typical soils (sand or clay) or natural soils, in contact with variable structural materials (concrete, steel, wood). However, natural soils are very complex, partly due to geological heterogeneities, and the mechanical response of typical soils do not always represent accurately intermediate soils between sand and clay. Previous studies on the mechanical behavior of those soils are significantly represented in the literature, especially in experimental research, however it is rather poorly documented on the interface between these soils and structural materials, whereas their response to mechanical loadings is different. Moreover, at the engineering scale, there is still a lack of understanding on how this interface behave along loaded pile within soils between sand and clay, numerically, and experimentally due to instrumentation restrictions along the pile. The objective of this thesis is to characterize the mechanical behaviour of the soil-structure interface for intermediate soils between sand and clay, both by experiments at the laboratory scale and by models at the engineering scale. Artificial mixtures of silica sand and kaolinite-rich clay are chosen to represent intermediate soils in this study. For this propose, the research is organized in a first and main experimental campaign that aims to investigate the effect of the clay content, from 0% (sand) to 100% (clay) on the mechanical behavior of a soil-concrete interface by a new interface direct shear device in the laboratory. A particular attention is given to the design of the setup, and to the investigation of four sample preparations to insure an optimize sample homogeneity. A second and numerical campaign is performed to input the results from the experimental campaign, to model the mechanical response of the interface between sand-clay soils and a lateral concrete loaded pile at the engineering scale. A new subroutine of a MATLAB finite element code is implemented to perform the numerical modelling of the interface’s response via the p-y curves. The characterization of the mechanical behaviour of the soil-structure interface at different clay and sand fractions allows to enlighten the role of soil microstructure at the soil-structure interface on the stability of civil engineering structures
Reis, Jeselay Hemetério Cordeiro dos. „Modelo de atrito estático em interfaces de contato entre concreto e areia“. Universidade de São Paulo, 2006. http://www.teses.usp.br/teses/disponiveis/18/18132/tde-17072006-111343/.
Der volle Inhalt der QuelleThis thesis presents the principles and formulation underlying a concrete-sand interface nonlinear static friction model. The basic hypothesis employed in the development of the model equation takes into account the interface sliding friction (true friction), a rolling friction (particle rearrangement) and dilatancy(volume variation during shear). The model analytical solution considers the effect of roughness of the contact surface, the grain size distribution and its initial state of compactness of the sand. To calibrate the proposed model, a direct shear stress test under constant load was carried out along a 500mm x 500mm section concrete-sand interface. Furthermore, a discussion and suggestion of the inclusion of the model constitutive equation applied to the analysis of soil-structure interaction using the finite element method are presented. The applicability of the proposed model is proven through the analysis of 1-D and 2-D skin friction piles made of sand mass subjected to compression load
CASTRO, ALESSANDRA TAVARES DE. „TILT TESTS AND DIRECT SHEAR ON SOIL-GEOSYNTHETIC INTERFACES“. PONTIFÍCIA UNIVERSIDADE CATÓLICA DO RIO DE JANEIRO, 2008. http://www.maxwell.vrac.puc-rio.br/Busca_etds.php?strSecao=resultado&nrSeq=12570@1.
Der volle Inhalt der QuelleCOORDENAÇÃO DE APERFEIÇOAMENTO DO PESSOAL DE ENSINO SUPERIOR
A aplicação de geossintéticos em obras geotécnicas vem crescendo intensamente nos últimos tempos, tornando cada vez mais importantes e necessários os estudos da resistência de interface para aplicação em projetos e obras. Em particular, tais estudos devem tratar das técnicas de ensaios de campo e de laboratório para a obtenção dos parâmetros de resistência (adesão e ângulo de atrito). Os ensaios de laboratório são utilizados com maior freqüência por serem mais acessíveis e de fácil execução. Os ensaios de campo reproduzem mais diretamente as condições das obras, mas apresentam como desvantagem o custo elevado e a dificuldade de execução. Este trabalho tem como finalidades apresentar o equipamento de ensaio utilizado e analisar os resultados de um programa em interfaces solo- geossintético. O programa experimental envolveu ensaios de rampa, cisalhamento direto convencional e cisalhamento direto inclinado em solo com granulação grosseira (brita), em contacto com as geomembranas e as geogrelhas. Os resultados foram analisados avaliando-se as influências da tensão confinante e da inserção dos geossintéticos, e comparandose os diferentes tipos de materiais e de técnicas de ensaio. A influência da tensão confinante foi estudada com base em três tensões confinantes distintas, de baixa magnitude (1,0; 1,7 e 2,4kPa). O aumento da tensão confinante implicou em um aumento, tanto do deslocamento até a ruptura quanto da resistência da interface. Este comportamento deve-se à possibilidade de rearranjo e imbricamento entre os grãos da brita. Em relação ao tipo de geossintético, a interface brita-geogrelha apresentou maior resistência do que a interface brita-geomembrana. Isto pode ser explicado em função da estrutura do geossintético, pois a geomembrana perde possui uma superfície lisa, o que favorece o deslizamento, ao contrário da geogrelha, que conta com o efeito do imbricamento do solo nas aberturas da malha.
The use of geosynthetics in geotechnical construction is growing up intensively on the last years, which make the study on interface strength more important and necessary to its application on projects and construction. Particularly, these studies should watch out field and laboratory tests in order to obtain strength parameters (adhesion and friction angle). Laboratory tests are more frequently used, due to their accessibility and easy execution. Field tests reproduce construction condition in a directly way, but have as disadvantages high cost and hard execution condition. The current research have as objectives present the test equipment used and analyze software results obtained for soil and geosynthetic interfaces. The experimental program involved ramp tests, conventional direct shear test and inclined direct shear test. This program was carried out on gravel soil in contact with two different types of geosynthetics (geomembrane and geogrids). Results were analyzed based on the influence of confining pressure and the introduction of geosynthetics, and comparing the different materials and test techniques. The confining pressure influence/importance was studied based on three different low magnitude confining pressures (1,0; 1,7 e 2,4kPa). The confining pressure increases resulted in an increase of both displacements until the failure and interface strength. This behavior could be explained due to the possibility of interlocking e between the gravel grains. Considering the geosynthetic type, gravel-geogrid interface presented higher strength than gravel- geomembrane interface. This could be explained by the structure of the geosynthetic; geomembrane has low strength due to its smooth surface, which benefits the slide. Geogrid instead, counts with the soil interlocking; effects in the mesh holes.
Saffari-Shooshtari, Nader. „Constant normal stiffness direct shear testing of chalk-concrete interfaces“. Thesis, University of Surrey, 1989. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.328819.
Der volle Inhalt der QuellePra-ai, Suriyavut. „Essais et modélisation du cisaillement cyclique sol-struture à grand nombre de cycles. Application aux pieux“. Phd thesis, Université de Grenoble, 2013. http://tel.archives-ouvertes.fr/tel-00809729.
Der volle Inhalt der QuelleBücher zum Thema "Interface direct shear"
United States. Bureau of Reclamation. Denver Office. Materials Engineering Branch., Hrsg. Direct shear tests used in soil-geomembrane interface friction studies. Denver, Colo: Materials Engineering Branch, Research and Laboratory Services Division, Denver Office, U.S. Bureau of Reclamation, 1994.
Den vollen Inhalt der Quelle findenBuchteile zum Thema "Interface direct shear"
Jin, Zihao, Qi Yang, Junzhe Liu und Chen Chen. „Concrete-Sand Interface in Direct Shear Tests“. In Springer Series in Geomechanics and Geoengineering, 542–45. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-97112-4_121.
Der volle Inhalt der QuelleAn, Feng-Chen, Shuang-Yin Cao, Jin-Long Pan und Qian Ge. „Investigation on Fracture Behavior of FRP-Concrete Interface under Direct Shear“. In Advances in FRP Composites in Civil Engineering, 499–503. Berlin, Heidelberg: Springer Berlin Heidelberg, 2011. http://dx.doi.org/10.1007/978-3-642-17487-2_107.
Der volle Inhalt der QuelleEbrahimian, B., und E. Bauer. „Investigation of Direct Shear Interface Test Using Micro-polar Continuum Approach“. In Springer Series in Geomechanics and Geoengineering, 143–48. Cham: Springer International Publishing, 2014. http://dx.doi.org/10.1007/978-3-319-13506-9_21.
Der volle Inhalt der QuelleBilke, Lars, Thomas Fischer, Dmitri Naumov, Daniel Pötschke, Karsten Rink, Amir Shoarian Sattari, Patrick Schmidt, Wenqing Wang und Keita Yoshioka. „Code Descriptions“. In GeomInt–Mechanical Integrity of Host Rocks, 243–54. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-61909-1_7.
Der volle Inhalt der QuelleMouzannar, Hussein, M. Bost, P. Joffrin, C. Pruvost, F. Rojat, J. Blache, A. Houel et al. „Instrumentation of Large Scale Direct Shear Test to Study the Progressive Failure of Concrete/Rock Interface“. In RILEM Bookseries, 649–55. Dordrecht: Springer Netherlands, 2016. http://dx.doi.org/10.1007/978-94-024-0867-6_91.
Der volle Inhalt der QuelleMarkou, Ioannis N. „Direct Shear Testing of Sand – Geotextile Interfaces“. In Sustainable Civil Infrastructures, 1–12. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-63570-5_1.
Der volle Inhalt der QuelleMeyer, V., R. Dyvik und D. White. „Direct shear interface tests for pipe-soil interaction assessment“. In Frontiers in Offshore Geotechnics III, 423–28. CRC Press, 2015. http://dx.doi.org/10.1201/b18442-48.
Der volle Inhalt der QuelleNicola Ghionna, Vito, Giuseppe Mortara und Giovanni Paolo Vita. „Sand–structure interface behaviour under cyclic loading from constant normal stiffness direct shear tests“. In Deformation Characteristics of Geomaterials / Comportement Des Sols Et Des Roches Tendres. Taylor & Francis, 2003. http://dx.doi.org/10.1201/noe9058096043.ch29.
Der volle Inhalt der QuelleNishiyama, T., und T. Hasegawa. „A practical use of the finite element with an embedded interface for simulating the direct shear on brittle materials“. In Computer Methods and Recent Advances in Geomechanics, 323–27. CRC Press, 2014. http://dx.doi.org/10.1201/b17435-53.
Der volle Inhalt der QuelleKonferenzberichte zum Thema "Interface direct shear"
Amarasinghe, Ruslan S., Dharma Wijewickreme und Hisham T. Eid. „Some Observations on Soil-Pipe Interface Shear Strength in Direct Shear Under Low Effective Normal Stresses and Large Displacements“. In 2016 11th International Pipeline Conference. American Society of Mechanical Engineers, 2016. http://dx.doi.org/10.1115/ipc2016-64100.
Der volle Inhalt der QuelleRubinstein, Shmuel M., Gil Cohen und Jay Fineberg. „Direct Observation of Frictional Contacts on a Sliding Interface“. In ASME 2008 9th Biennial Conference on Engineering Systems Design and Analysis. ASMEDC, 2008. http://dx.doi.org/10.1115/esda2008-59211.
Der volle Inhalt der QuelleKwon, Soonwook, Yuri Lee und Bongtae Han. „Advanced Micro Shear Testing for Solder Alloy Using Direct Local Measurement“. In ASME 2003 International Electronic Packaging Technical Conference and Exhibition. ASMEDC, 2003. http://dx.doi.org/10.1115/ipack2003-35325.
Der volle Inhalt der QuelleXiao, Suguang, Muhannad T. Suleiman, Rehab Elzeiny, Huan Xie und Mohammed Al-Khawaja. „Soil-Concrete Interface Properties Subjected to Temperature Changes and Cycles Using Direct Shear Tests“. In Geotechnical Frontiers 2017. Reston, VA: American Society of Civil Engineers, 2017. http://dx.doi.org/10.1061/9780784480472.018.
Der volle Inhalt der QuelleHouhou, Roba, Rayan Bou Mjahed, Salah Sadek und Shadi Najjar. „Drained Interface Strength between Pipelines and Clays Using Tilt Table and Direct Shear Tests“. In Geo-Congress 2020. Reston, VA: American Society of Civil Engineers, 2020. http://dx.doi.org/10.1061/9780784482827.002.
Der volle Inhalt der QuelleWestgate, Zack, Ricardo Argiolas, Regis Wallerand und Jean-Christophe Ballard. „Experience with Interface Shear Box Testing for Pipe-Soil Interaction Assessment on Sand“. In Offshore Technology Conference. OTC, 2021. http://dx.doi.org/10.4043/31268-ms.
Der volle Inhalt der QuelleBaykal, Go¨khan, und Ays¸e Edinc¸liler. „Clay-Concrete Pile Interface in Various Marine Environments“. In ASME 2009 28th International Conference on Ocean, Offshore and Arctic Engineering. ASMEDC, 2009. http://dx.doi.org/10.1115/omae2009-80033.
Der volle Inhalt der QuelleBohach, Garrett, Md Minal Nahin, Eric Severson und James D. Van de Ven. „Impact of Dynamics on the Losses at Radial Ball Piston Pump Interfaces“. In BATH/ASME 2020 Symposium on Fluid Power and Motion Control. American Society of Mechanical Engineers, 2020. http://dx.doi.org/10.1115/fpmc2020-2769.
Der volle Inhalt der QuelleCezo, James D., Virginia L. Ferguson, Kenneth D. Taylor und Mark E. Rentschler. „Measurement of Bond Strength of Direct Heat Tissue Fusion in Arteries“. In ASME 2012 Summer Bioengineering Conference. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/sbc2012-80138.
Der volle Inhalt der QuelleAhmadi, Eisa, und M. M. Aghdam. „A Truly Generalized Plane Strain Meshless Model for Combined Normal and Shear Loading of Fiber Reinforced Materials“. In ASME 2010 International Mechanical Engineering Congress and Exposition. ASMEDC, 2010. http://dx.doi.org/10.1115/imece2010-40580.
Der volle Inhalt der QuelleBerichte der Organisationen zum Thema "Interface direct shear"
Rahman, Shahedur, Rodrigo Salgado, Monica Prezzi und Peter J. Becker. Improvement of Stiffness and Strength of Backfill Soils Through Optimization of Compaction Procedures and Specifications. Purdue University, 2020. http://dx.doi.org/10.5703/1288284317134.
Der volle Inhalt der QuelleSobolik, Steven R., und Benjamin Reedlunn. Shear Behavior of Bedded Salt Interfaces under Direct Shear Loading. Office of Scientific and Technical Information (OSTI), Oktober 2019. http://dx.doi.org/10.2172/1569654.
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