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Budownictwo Zeszyt 2-B (12) 2015

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Publication date: 11.12.2015

Licence: None

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Richard G.J. Flay

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 63 - 81

https://doi.org/10.4467/2353737XCT.15.125.4162
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John S. Owen

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 145 - 165

https://doi.org/10.4467/2353737XCT.15.130.4167
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Fumiyoshi Takeda, Tatsuya Yoshino, Yasushi Uematsu

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 167 - 189

https://doi.org/10.4467/2353737XCT.15.131.4168
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Yasushi Uematsu, Yoshiki Shimizu, Yoshimasa Miyake, Yusuke Kanegae

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 191 - 213

https://doi.org/10.4467/2353737XCT.15.132.4169
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Paweł Kisiel, Zbigniew Mikulski, Arkadiusz Kwiecień, Piotr Fielek

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 281 - 290

https://doi.org/10.4467/2353737XCT.15.137.4174
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Sergey Kuznetsov, Stanislav Pospišil, Radomil Král

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 303 - 316

https://doi.org/10.4467/2353737XCT.15.139.4176
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Ryoji Sasaki, Akinori Akahoshi, Yasushi Uematsu

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 317 - 330

https://doi.org/10.4467/2353737XCT.15.140.4177
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Thomas Thiis, Almerindo D. Ferreira, Markus Molnar, Arnold V. Erichsen

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 358 - 368

https://doi.org/10.4467/2353737XCT.15.143.4180
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Philippe Delpech, Thomas Thiis

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 381 - 403

https://doi.org/10.4467/2353737XCT.15.145.4182
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Svein M. Fikke, Bjørn Egil K. Nygaard

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 405 - 415

https://doi.org/10.4467/2353737XCT.15.146.4183
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Piotr Górski , Marcin Tatara, Stanislav Pospišil, Sergey Kuznetsov, Ante Marušić

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 417 - 432

https://doi.org/10.4467/2353737XCT.15.147.4184
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S. F. Pichugin, Yu.V. Dryzhyruk, N.M. Popovich, I.V. Chernetska

Technical Transactions, Budownictwo Zeszyt 2-B (12) 2015, 2015, pp. 441 - 449

https://doi.org/10.4467/2353737XCT.15.149.4186
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Słowa kluczowe: wind tunnel tests, wind action on buildings, wind pressure distributions on wall and roof surfaces of a building, wind tunnel tests, aerodynamic interference, wind action on a building surfaces, railway vehicle, across strong wind, vehicle roll-over, wind tunnel, reduced scale, similitude law, wind engineering, wind energy, wind tunnel test, blade aerodynamics, renewable energy, blockage correction, wind load, geographical altitude factor, building construction, Transcarpathian region, meteorological station, mountainous terrain, wind action, wind tunnel, pressure coefficient, Spearman correlation coefficient, steel chimneys, wind action, vortex excitation, wind standards, wind engineering, discrete vortex method, surface roughness, aerodynamic force, aerodynamic drag, wind engineering, damage, windborne debris, CFD, hazard, design wind force coefficients, membrane structure, structural analysis, computational fluid dynamics (CFD), scattering, permeable deck, numerical simulation, wind tunnel experiment, high-rise building, rooftop, balcony, corrosion action, structural health monitoring, system identification, FEM, experimental tests in situ, spectral analysis, Global Positioning System (GPS), measurement accuracy, displacement monitoring, bridges, tall buildings and towers, dimensional analysis, model similarity, physical phenomena, principles and theorems, unsteady winds, surface friction over the bump, numerical modelling, wind erosion, concrete slab, polymer flexible joint, temperature load, tram surface, CFD, microclimate, human comfort, climatic tunnel, wind tunnel, atmospheric boundary layer, flow resistance, wind tunnel contraction, gust factor, surface roughness, building information database, field measurement, observation height, daylighting, façade, solar, efficiency, office, building and architectural acoustics, room acoustic parameters, wind engineering, wind tunnel, snow load, environmental actions, wind erosion, concrete corrosion, cellular automata, continuum damage mechanics, cross-section bearing capacity, snow engineering, atmospheric icing, environmental actions, wind tunnel, wind engineering, atmospheric icing, wet snow load, environmental actions, numerical weather prediction models, bridge cable, ice accretion, Strouhal number, angle of attack, vortex shedding frequency, snow load, tents, safety, building roofs snow load, snow accumulation, snowfall, safety