과제정보
연구 과제 주관 기관 : National Natural Science Foundation of China
참고문헌
- Arani, M.F.M. and Mohamed, A.R.I. (2015), "Analysis and impacts of implementing droop control in DFIG-based wind turbines on Microgrid/Weak-Grid stability", IEEE T. Power Syst., 30(1),385-396. https://doi.org/10.1109/TPWRS.2014.2321287
- Ding, H., Liu, Y., Zhang, P. and Le, C. (2015), "Model tests on the bearing capacity of wide-shallow composite bucket foundations for offshore wind turbines in clay", Ocean Eng., 103, 114-122. https://doi.org/10.1016/j.oceaneng.2015.04.068
- Djojodihardjo, H., Hamid, M.F.A., Jaafar, A.A., et al. (2013), "Computational study on the aerodynamic performance of wind turbine airfoil fitted with Coanda", Renew. Energ., 2013.
- GB/T 20319-2006. (2006), "Code for acceptance of wind turbines generator systems", Beijing: Chinese machinery industry press.
- GB50009-2012. (2012), "Load code for the design of building structures", Beijing. China building industry press.
- Germanischer Lloyd. (2010), Guideline for the certification of wind turbines, Hamburg: Germanischer Lloyd.
- Han, Y., Le, C., Ding, H., Cheng, Z. and Zhang, P. (2017), "Stability and dynamic response analysis of a submerged tension leg platform for offshore wind turbines", Ocean Eng., 129, 68-82. https://doi.org/10.1016/j.oceaneng.2016.10.048
- Hemmatpour, M.H., Mohammadian, M. and Gharaveisi, A.A. (2016), "Simple and efficient method for steady-state voltage stability analysis of islanded microgrids with considering wind turbine generation and frequency deviation", Iet Generation Transmission & Distribution, 10(7), 1691-1702. https://doi.org/10.1049/iet-gtd.2015.1047
- Jeong, M.S., Kim, S.W., Lee, I., Yoo, S.J. and Park, K.C. (2013), "The impact of yaw error on aeroelastic characteristics of a horizontal axis wind turbine blade", Renew. Energ., 60, 256-268. https://doi.org/10.1016/j.renene.2013.05.014
- Ke, S.T., Yu, W., Wang, T.G., Ge, Y.J., Tamura, Y. (2016), "The effect of blade positions on the aerodynamic performances of wind turbine system", Wind Struct., 24(3), 205-221. https://doi.org/10.12989/WAS.2017.24.3.205
- Ke, S.T., Yu, W., Wang, T.G., Zhao, L. and Ge, Y.J. (2016), "Wind loads and load-effects of large scale wind turbine tower with different halt positions of blade", Wind Struct., 23(6), 559-575. https://doi.org/10.12989/was.2016.23.6.559
- Ke, S.T., Yu, W. and Wang, T.G. (2016), "Impact for blade position on aerodynamic performance of wind turbine system under stopped status", J. Zhejiang University (Engineering Science),50(7), 1230-1238. (In Chinese)
-
Laan, M.P., Sorensen, N.N., Rethore, P.E. and Mann, J. (2015), "An improved
$k-{\epsilon}$ model applied to a wind turbine wake in atmospheric turbulence", Wind Energy, 18(5), 889-907. https://doi.org/10.1002/we.1736 -
Laan, M.P., Sorensen, N.N., Rethore, P.E. and Mann, J. (2015), "The
$k-{\epsilon}-fP$ model applied to double wind turbine wakes using different actuator disk force methods", Wind Energy, 18(12),2223-2240. https://doi.org/10.1002/we.1816 - Lee, H.G., Kang, M.G. and Park, J. (2015), "Fatigue failure of a composite wind turbine blade at its root end", Compos. Struct., 133, 878-885. https://doi.org/10.1016/j.compstruct.2015.08.010
- Li, B., Wen, H.T. and Gong, Z.Y. (2017), "The wind turbine tiwer rum wind-induced response analysis and wind vibration control research", Eng. Mech. (In Chinese)
- Li, Q., Maeda, T., Kamada, Y., et al. (2016), "Wind tunnel and numerical study of a straight-bladed vertical axis wind turbine in three-dimensional analysis (Part I: For predicting aerodynamic loads and performance)", Energy, 106, 443-452. https://doi.org/10.1016/j.energy.2016.03.089
- Madsen, S., Andersen, L.V. and Ibsen, L.B. (2013), "Numerical buckling analysis of large suction caissons for wind turbines on deep water", Eng. Struct., 57(4), 443-452. https://doi.org/10.1016/j.engstruct.2013.09.041
- Mawer, B. and Kalumba, D. (2016), "Stability of wind turbine foundations - accounting for gapping and eccentric loading", J. South African Institution of Civil Engineering.
- Plaza, J., Abasolo, M., Coria, I., et al. (2015), "A new finite element approach for the analysis of slewing bearings in wind turbine generators using superelement techniques", Meccanica, 50(6),1623-1633. https://doi.org/10.1007/s11012-015-0110-7
- Shaltout, M. (2015), "Stability of wind turbine switching control", Int. J. Control, 88(1), 193-203. https://doi.org/10.1080/00207179.2014.942883
- Shilin, Z., Deyuan, L., Xiaohua, H., et al. (2010), "Buckling analysis of wind turbine tower under eccentric loading", Acta Energiae solaris sinica, 31(7), 901-906. (In Chinese)
- Skrzypinski, W. and Gaunaa, M. (2015), "Wind turbine blade vibration at standstill conditions-the effect of imposing lag on the aerodynamic response of an elastically mounted airfoil", Wind Energy, 18(3), 515-527. https://doi.org/10.1002/we.1712
- Sun, L., Huo, Z. and Yan, S. (2015), "Numerical Studies on the Working Mechanism and Bearing Capacity of Bucket Foundations for Offshore Wind Turbines", J. Coastal Res., 73, 478-482. https://doi.org/10.2112/SI73-084.1
- Tempel, J.V.D. (2006), "Design of support structures for offshore wind turbines", Netherlands: Delft University of Technology.
- Wang, H. and Cheng, X. (2015), "Undrained bearing capacity of suction caissons for offshore wind turbine foundations by numerical limit analysis", Mar. Georesour. Geotech., 34(3),150429065242005.
피인용 문헌
- Flutter study of flapwise bend-twist coupled composite wind turbine blades vol.32, pp.3, 2021, https://doi.org/10.12989/was.2021.32.3.267