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      Dynamic behavior of intake tower considering hydrodynamic damping effect

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      https://www.riss.kr/link?id=A108603752

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      다국어 초록 (Multilingual Abstract)

      The effect of hydrodynamic damping on intake tower is twofold: one is fluid damping and another is structural damping. Fluid damping can be derived analytically from the governing equation of the fluid-structure-interaction (FSI) problem which yields ...

      The effect of hydrodynamic damping on intake tower is twofold: one is fluid damping and another is structural damping. Fluid damping can be derived analytically from the governing equation of the fluid-structure-interaction (FSI) problem which yields a very complicated solution. To avoid the complexity of the FSI problem water-tower system can be simplified by considering water as added mass. However, in such a system a reconsideration of structural damping is required. This study investigates the effects of this damping on the dynamic response of the intake tower, where, apart from the “no water (NW)” condition, six other cases have been adopted depending on water height. Two different cross-sections of the tower are considered and also two different damping properties have been used for each case as well. Dynamic analysis has been carried out using horizontal ground motion as input. Finally, the result shows how hydrodynamic damping affects the dynamic behavior of an intake tower with the change of water height and cross-section. This research will help a designer to consider more conservative damping properties of intake tower which might vary depending on the shape of the tower and height of water.

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      참고문헌 (Reference) 논문관계도

      1 송광석 ; 민경욱 ; 배정주 ; 이지호, "댐 취수탑 3차원 내진안전성 평가에서의 동수압 적용방법에 관한 연구" 한국지진공학회 22 (22): 139-147, 2018

      2 Westergaard, H. M., "Water pressures on dams during earthquakes" 98 (98): 418-433, 1933

      3 Fredsøe, J., "Turbulent separation around cylinders in waves" 112 (112): 217-233, 1986

      4 Pirhadi, P., "The influence of bridge-tower interaction on the dynamic behavior of intake–outlet towers" 1 (1): 1-11, 2019

      5 Morison, J. R., "The force exerted by surface waves on piles" 2 (2): 149-154, 1950

      6 Yang, W., "The expanded Morison equation considering inner and outer water hydrodynamic pressure of hollow piers" 69 : 79-87, 2013

      7 Yulin Deng, "Study on Modal Dynamic Response and Hydrodynamic Added Mass of Water-Surrounded Hollow Bridge Pier with Pile Foundation" Hindawi Limited 2019 : 1-23, 2019

      8 USACE, "Structural Design and Evaluation of Outlet Works"

      9 Du, X., "Simplified formula of hydrodynamic pressure on circular bridge piers in the time domain" 85 : 44-53, 2014

      10 Wang, P., "Simplified formula for earthquake-induced hydrodynamic pressure on round-ended and rectangular cylinders surrounded by water" 145 (145): 04018137-, 2019

      1 송광석 ; 민경욱 ; 배정주 ; 이지호, "댐 취수탑 3차원 내진안전성 평가에서의 동수압 적용방법에 관한 연구" 한국지진공학회 22 (22): 139-147, 2018

      2 Westergaard, H. M., "Water pressures on dams during earthquakes" 98 (98): 418-433, 1933

      3 Fredsøe, J., "Turbulent separation around cylinders in waves" 112 (112): 217-233, 1986

      4 Pirhadi, P., "The influence of bridge-tower interaction on the dynamic behavior of intake–outlet towers" 1 (1): 1-11, 2019

      5 Morison, J. R., "The force exerted by surface waves on piles" 2 (2): 149-154, 1950

      6 Yang, W., "The expanded Morison equation considering inner and outer water hydrodynamic pressure of hollow piers" 69 : 79-87, 2013

      7 Yulin Deng, "Study on Modal Dynamic Response and Hydrodynamic Added Mass of Water-Surrounded Hollow Bridge Pier with Pile Foundation" Hindawi Limited 2019 : 1-23, 2019

      8 USACE, "Structural Design and Evaluation of Outlet Works"

      9 Du, X., "Simplified formula of hydrodynamic pressure on circular bridge piers in the time domain" 85 : 44-53, 2014

      10 Wang, P., "Simplified formula for earthquake-induced hydrodynamic pressure on round-ended and rectangular cylinders surrounded by water" 145 (145): 04018137-, 2019

      11 Jiang, H., "Simplified expression of hydrodynamic pressure on deepwater cylindrical bridge piers during earthquakes" 22 (22): 04017014-, 2017

      12 Wang, P., "Simplified evaluation of earthquake-induced hydrodynamic pressure on circular tapered cylinders surrounded by water" 164 : 105-113, 2018

      13 Goyal, A., "Simplified evaluation of added hydrodynamic mass for intake towers" 115 (115): 1393-1412, 1989

      14 Jahangir Alam ; 김두기 ; 최봉한, "Seismic risk assessment of intake tower in Korea using updated fragility by Bayesian inference" 국제구조공학회 69 (69): 317-326, 2019

      15 Millan, M., "Seismic response of intake towers including dam–tower interaction" 38 (38): 307-329, 2009

      16 Chen, X., "Seismic response analysis of intake tower structure under near-fault ground motions with forward-directivity and fling-step effects" 132 : 106098-, 2020

      17 Vidot, A. L., "Seismic analysis of intake towers considering multiple-support excitation and soil-structure interaction effects" Engineer Research and Development Center 2004

      18 Penzien, J., "Response of offshore towers to strong motion earthquakes" 1 (1): 55-68, 1972

      19 Shah, C., "Mesh discretization error and criteria for accuracy of finite element solutions" 2002

      20 Chakrabarti, S. K., "Hydrodynamics of Offshore Structures" WIT Press 1987

      21 Sumer, B. M., "Hydrodynamics Around Cylindrical Structures" World Scientific 1997

      22 Alembagheri, M., "Frequency domain analysis of submerged tower-dam dynamic interaction" 54 (54): 264-275, 2017

      23 Rahman, M., "Evaluation of added mass and damping coefficient of an oscillating circular cylinder" 17 (17): 70-79, 1993

      24 Goyal, A., "Earthquake analysis of intake-outlet towers including tower-water-foundation-soil interaction" 18 (18): 325-344, 1989

      25 Goyal, A., "Earthquake analysis and response of intakeoutlettowers" Earthquake Engrg. Res. Ctr., Univ. of California 1989

      26 Liaw, C. Y., "Dynamics of towers surrounded by water" 3 (3): 33-49, 1974

      27 Alembagheri, M., "Dynamics of submerged intake towers including interaction with dam and foundation" 84 : 108-119, 2016

      28 Chopra, A. K., "Dynamics of Structures: Theory and Applications to Earthquake Engineering" Prentice Hall 2011

      29 Leonardo Cocco ; Luis E. Suárez ; Enrique E. Matheu, "Development of a nonlinear seismic response capacity spectrum method for intake towers of dams" 국제구조공학회 36 (36): 321-341, 2010

      30 Daniell, W., "Developing a numerical model for a UK intake tower seismic assessment" 156 (156): 63-72, 2003

      31 Tahmina T. Nahar ; Md M. Rahman ; Dookie Kim, "Damage index based seismic risk generalization for concrete gravity dams considering FFDI" 국제구조공학회 78 (78): 53-66, 2021

      32 Wang, P., "Analytical solution and simplified formula for earthquake induced hydrodynamic pressure on elliptical hollow cylinders in water" 148 : 149-160, 2018

      33 Li, Q., "An improved method of hydrodynamic pressure calculation for circular hollow piers in deep water under earthquake" 72 : 241-256, 2013

      34 "ABAQUS 2016 Documentation" Dassault Systemes Simulia Corporation

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