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Numerical prediction of the proximity effects on wind loads of low-rise buildings with cylindrical roofs

  • Deepak Sharma (Department of Civil Engineering, Delhi Technological University) ;
  • Shilpa Pal (Department of Civil Engineering, Delhi Technological University) ;
  • Ritu Raj (Department of Civil Engineering, Delhi Technological University)
  • 투고 : 2022.08.26
  • 심사 : 2023.04.01
  • 발행 : 2023.04.25

초록

Low-rise structures are generally immersed within the roughness layer of the atmospheric boundary layer flows and represent the largest class of the structures for which wind loads for design are being obtained from the wind standards codes of distinct nations. For low-rise buildings, wind loads are one of the decisive loads when designing a roof. For the case of cylindrical roof structures, the information related to wind pressure coefficient is limited to a single span only. In contrast, for multi-span roofs, the information is not available. In this research, the numerical simulation has been done using ANSYS CFX to determine wind pressure distribution on the roof of low-rise cylindrical structures arranged in rectangular plan with variable spacing in accordance with building width (B=0.2 m) i.e., zero, 0.5B, B, 1.5B and 2B subjected to different wind incidence angles varying from 0° to 90° having the interval of 15°. The wind pressure (P) and pressure coefficients (Cpe) are varying with respect to wind incidence angle and variable spacing. The results of present numerical investigation or wind induced pressure are presented in the form of pressure contours generated by Ansys CFD Post for isolated as well as variable spacing model of cylindrical roofs. It was noted that the effect of wind shielding was reducing on the roofs by increasing spacing between the buildings. The variation pf Coefficient of wind pressure (Cpe) for all the roofs have been presented individually in the form of graphs with respect to angle of attacks of wind (AoA) and variable spacing. The critical outcomes of the present study will be so much beneficial to structural design engineers during the analysis and designing of low-rise buildings with cylindrical roofs in an isolated as well as group formation.

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참고문헌

  1. ASCE/SEI 7-16, (2016), ASCE Standard, Wind Loads, In Minimum Design Loads and Associated Criteria for Buildings and Other Structures, Reston, American Society of Civil Engineers, 245-390.
  2. Eurocode 1 (2010), Standard, European, Actions on Structures - Part 1-4: General Actions - Wind Actions, European Union.
  3. Standard, New Zealand Standard and Australia (2011), Structural Design Actions - Part 2: Wind Actions (AS/NZS 1170.2:2011), Australian/New Zealand Standard.
  4. Architectural Institute of Japan (2015), Architectural Institute of Japan, Chapter 6 Wind Loads, In AIJ Recommendations for Loads on Buildings, Tokyo, Architectural Institute of Japan.
  5. ASCE 7-16 (2017), American Society of Civil Engineers, Reston Minimum Design Loads and Associated Criteria for Buildings and Other Structures. Structural Engineering Institute of the American Society of Civil Engineering, Reston.
  6. Bairagi, A.K. and Dalui, S.K. (2018), "Comparison of aerodynamic coefficients of setback tall buildings due to wind load, asian", J. Civil Eng., 3. https://doi.org/10.1007/s42107-018-0018-3.
  7. Beura, M.S. and Mishra, D.P. (2014), "Effect of wall tapper and attack angle on mean flow structure around a pyramid", Int. J. Emerg. Technol. Comput. Appl. Sci., 8(6), 490-98.
  8. Davenport, A.G., Surry, D. and Stathopoulos, T. (1977), "Wind loads on low-rise buildings", Final Report of Phases I and II - Parts 1 and 2', BL WT Report SS8-19 77, The University of Western Ontario, London, Ontario, Canada.
  9. Elsharawy M., Stathopoulos T. and Galal K. (2011), "WindInduced torsional loads on low buildings, journal of wind engineering and industrial aerodynamics", J. Wind Eng. Ind. Aerod. 104(106), 349-359. https://doi.org/10.1016/j.jweia.2012.03.011.
  10. Faghih, A.K. and Bahadori, M.N. (2009), "Experimental investigation of airflow over domed roofs", Iran. J. Sci Technol., 15, 207-16.
  11. Franke, J., Hellsten, A., Schlunzen, H. and Carissimo, B. (2007), "Guideline for the CFD Simulation of Flows in the Urban Environment", COST Action 732 Quality Assurance and Improvement of Microscale Meteorological Models, May.
  12. Ginger, J.D. and Holmes, J.D. (2003), "Effect of building length on wind loads on low-rise buildings with a steep roof pitch", J. Wind Eng. Ind. Aerod., 91(11), 1377-1400. https://doi.org/10.1016/j.jweia.2003.08.003.
  13. He, B.J., Ding, L. and Prasad, D. (2019), "Enhancing urban ventilation performance through the development of precinct ventilation zones: a case study based on the greater sydney, australia", Sustain. Cities Soc., 47, 101472. https://doi.org/10.1016/j.scs.2019.101472.
  14. IS: 875 (2015), Indian Standard Design Loads (Other than Earthquake) for Buildings and Structures-Code of Practice, Part 3(Wind Loads), BIS, New Delhi: 51.
  15. Jagbir, S. and Roy A.K. (2021), 14 Wind Loads on Roof of Low-Rise Buildings.
  16. Jana, D., Bhaduri, T. and Dalui, S.K. (2015), "Numerical study of optimization of interference effect on pentagonal plan shaped tall building", Asian J. Civil Eng. 16(8), 1123-1153. https://doi.org/10.1016/j.jweia.2012.03.011.
  17. John, A.D., Kotamrazu, Mohan, Gairola, A., Mukherjee, M. (2009), "Effect of architectural features on wind loads in lowrise buildings", In 7th Asia-Pacific Conference on Wind Engineering, APCWE-VII.
  18. Mahdavinejad M. and Kavan J. (2016), "Impact of roof shape on air pressure, wind flow and indoor temperature of residential buildings", Int. J. Sustain. Build. Technol. Urban Develop., 7(2), 87-103. https://doi.org/10.1080/2093761X.2016.1167645(2016).
  19. Meena, R.K., Raj, R. and Anbukumar, S. (2022), "Effect of wind load on irregular shape tall buildings having different corner configuration", Sadhana - Academy Proceedings in Engineering Sciences, 47(3), https://doi.org/10.1007/s12046-022-01895-2.
  20. Meng, F.Q., He, B.J., Zhu, J., Zhao, D.X., Darko, A. and Zhao, Z.Q. (2018), "Sensitivity analysis of wind pressure coefficients on caarc standard tall buildings in cfd simulations", J. Build. Eng., 16, 146-58. https://doi.org/10.1016/j.jobe.2018.01.004.
  21. Pindado, S., Meseguer, J. and Franchini, S. (2011), "Influence of an upstream building on the wind-induced mean suction on the flat roof of a low-rise building", J. Wind Eng. Ind. Aerod. 99(8), 889-93. https://doi.org/10.1016/j.jweia.2011.06.003.
  22. Qiu, Y., Sun, Y., Wu, Y. and Tamura, Y. (2014), "Modeling the mean wind loads on cylindrical roofs with consideration of the reynolds number effect in uniform flow with low turbulence", J. Wind Eng. Ind. Aerod. 129, 11-21. https://doi.org/10.1016/j.jweia.2014.02.011.
  23. Rahmatmand, A., Yaghoubi, M., Rad, E.G. and Tavakol, M.M. (2014), "3D experimental and numerical analysis of wind flow around domed-roof buildings with open and closed apertures", Build. Simulation 7(3), 305-319. https://doi.org/10.1007/s12273-013-0157-0 (2014).
  24. Raj, R. (2015), "Effects of cross-sectional shapes on response of tall buildings under wind loads", Iit Roorkee.
  25. Revuz, J., Hargreaves, D.M. and Owen, J.S. (2012), "On the domain size for the steady-state cfd modelling of a tall building", Wind Struct. An Int. J., 15(4), 313-329. https://doi.org/10.12989/was.2012.15.4.313
  26. Satheeskumar, N., Henderson, D.J., Ginger, J.D. and Wang, C.H. (2017), "Finite element modelling of the structural response of roof to wall framing connections in timber-framed houses", Eng. Struct. 134, 25-36. http://dx.doi.org/10.1016/j.engstruct.2016.12.034.
  27. Standards British Institution (2002), Loading for Buildings: Part 2: Code of Practice for Wind Loads.
  28. Stathopoulos, T. (1975), Wind Pressure Loads on Flat Roofs, BL WT 47 Rep. 3, The University of Western Ontario.
  29. Surry, D. and Lin, J. X. (1995), "The effect of surroundings and roof corner geometric modifications on roof pressures on low-rise buildings", J. Wind Eng. Ind. Aerod., 58(1-2), 113-38. https://doi.org/10.1016/0167-6105(95)00016-K.
  30. TCVN 2737-1995 (1995), Vietnamese Standard- TCVN 2737:1995 Loads and Actions.
  31. Uematsu, Y. and Isyumov, N. (1999), "Wind pressures acting on low-rise buildings", J. Wind Eng. Ind. Aerod., 82(1), 1-25. https://doi.org/10.1016/S0167-6105(99)00036-7.
  32. Verma, A. and Ashok, K.A. (2015), "Wind pressure distribution on domical roofs", Int. J. Eng. Appl. Sci., 2(1).
  33. Vickery, B. (1976), "Wind loads on low-rise buildings", In DRC Seminar, Darwin, Australia,
  34. Weerasuriya, A.U., Hu, Z.Z., Zhang, X.L., Tse, K.T., Li, S. and Chan, P.W. (2018), "New inflow boundary conditions for modeling twisted wind profiles in cfd simulation for evaluating the pedestrian-level wind field near an isolated building", Build. Environ., 132, 303-318. https://doi.org/10.1016/j.buildenv.2018.01.047.