State-of-the-Art Review on the Seismic Performance Assessment of On-Ground Steel Cylindrical Tanks
Abstract
:1. Introduction
2. Modeling Techniques
2.1. Mass-Spring Analogy
2.2. Numerical Modeling
2.2.1. FE Techniques
2.2.2. BE and Coupled FE-BE Techniques
2.2.3. Other Approaches
3. Seismic Response
4. Earthquake-Induced Failure Analysis
4.1. Buckling Analysis
4.1.1. Analytical Relations
4.1.2. Numerical Studies
Static Buckling Assessment
Dynamic Buckling Assessment
4.2. Other Failure Modes
5. Fragility Analysis
6. New Horizons
6.1. Modeling the Random Defects and Imperfections
6.2. Employing Artificial Intelligence
6.3. Novel Techniques to Improve Tank Seismic Performance
7. Conclusions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Provider | Description | Simplifications and Drawbacks | Reference |
---|---|---|---|
Wozniak and Mitchell | An analytical model based on the uplift of a strip baseplate. The model was adopted by some early editions of API 650. | Neglecting the effect of membrane action. | [19] |
Cambra | An empirical–analytical model. The modified version of the model was adopted by NZSEE. | Simplifications in the magnitude of the axial and shearing force. | [72] |
Malhotra and Veletsos | An analytical model based on the uplift of a beam model | Considering the baseplate as a semi-infinite beam of constant width resting on a rigid foundation. | [73] |
Malhotra and Veletsos | An analytical model based on the uplift of a beam model | Considering the baseplate as a semi-infinite beam of constant width resting on a flexible foundation. | [74] |
Malhotra and Veletsos | An analytical model based on the uplift of a beam model. Considering the large deformation effects. A solution was made based on the Ritz energy method. | Considering the baseplate as a semi-infinite beam of constant width resting on a flexible foundation. | [75] |
Ahari et al. | An analytical model based on the uplift of tapered beam. | Considering the baseplate as an ensemble of tapered beams. Their solution technique may encounters lead to chaotic response around the exact solution for the small uplift lengths. | [76] |
Provider/Reference | Category | Description | IM |
---|---|---|---|
NIBS (1999) [117] | Judgmental | Separate expert opinion-based fragility curves for anchored and un-anchored tanks. | PGA |
O’ Rourke andand So (2000) [118] | Empirical | Empirical fragility curves for unanchored and anchored tanks pre-1995 US seismic events. | PGA |
Razzaghi (2007) [81,82] | Judgmental–Empirical–Analytical | Separate judgmental, empirical and analytical fragility curves for unanchored tanks in terms of H/D and %Full. | PGA |
Berahman and Behnamfar (2007) [119] | Hybrid | Bayesian-based fragility curves for unanchored tanks using historical data and ALA database. | PGA |
Berahman andBehnamfar (2009) [120] | Hybrid | Fragility curves for elephant’s foot buckling and welding failure of shell-to-bottom plate junction using numerical analysis and Bayesian updating technique. | Sa(Ti) |
Buratti and Tavano (2014) [56] | Analytical | Analytical fragility curves for shell buckling using incremental dynamic analysis. | PGA, PGV, PGD, PSA |
Razzaghi and Eshghi (2015) [1] | Analytical–Empirical | Analytical fragility curves for pre-code unanchored tanks in terms of H/D and %full as well as an empirical fragility curve using data collected following three major earthquakes in Iran. | PGA |
Cortez and Prinz (2017) [121] | Analytical | Seismic fragility curves for unanchored tanks considering fatigue and local instability | PGA |
D’Amico and Buratti (2019) [122] | Empirical | Empirical fragility curves based on observed seismic performance of tanks and Bayesian approach. | PGA |
Phan et al. (2019) [123] | Analytical | Analytical fragility curves for shell buckling and shell-to-bottom plate rotation using pushover analysis of simplified models. | Sa(Ti) |
Mayorga et al. (2019) [124] | Analytical | Natech-based parametric fragility curves | PGA |
Yazdanian et al. (2021) [125] | Empirical | Empirical fragility curves for stainless steel wine tanks based on the dataset of the seismic performance of approximately 3400 wine tanks in New Zealand. | PGA |
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Razzaghi, M.S. State-of-the-Art Review on the Seismic Performance Assessment of On-Ground Steel Cylindrical Tanks. Vibration 2023, 6, 494-511. https://doi.org/10.3390/vibration6030031
Razzaghi MS. State-of-the-Art Review on the Seismic Performance Assessment of On-Ground Steel Cylindrical Tanks. Vibration. 2023; 6(3):494-511. https://doi.org/10.3390/vibration6030031
Chicago/Turabian StyleRazzaghi, Mehran S. 2023. "State-of-the-Art Review on the Seismic Performance Assessment of On-Ground Steel Cylindrical Tanks" Vibration 6, no. 3: 494-511. https://doi.org/10.3390/vibration6030031
APA StyleRazzaghi, M. S. (2023). State-of-the-Art Review on the Seismic Performance Assessment of On-Ground Steel Cylindrical Tanks. Vibration, 6(3), 494-511. https://doi.org/10.3390/vibration6030031