Influence of Bidirectional Near-Fault Excitations on RC Bridge PiersSource: Journal of Bridge Engineering:;2016:;Volume ( 021 ):;issue: 007DOI: 10.1061/(ASCE)BE.1943-5592.0000836Publisher: American Society of Civil Engineers
Abstract: Lateral load-resisting structural members, such as piers, are often analyzed under one component base excitation. The influence of bidirectional shaking is accounted for by using a simplified 30% rule. During seismic shaking, piers are often subjected to bidirectional ground motion, which leads to a complex combination of biaxial moments. In this backdrop, a RC bridge pier has been analyzed under a set of bidirectionally applied near-field motions with forward directivity (FD) and fling-step characteristics. Bidirectional interaction under near-fault motion is observed to substantially amplify damage, particularly for a stiff system (30% and 45%–50% under FD and fling motions, respectively). A complex combination of bidirectional load paths may have also contributed to increased vulnerability. Additional studies have shown that pulses with fling-step characteristics may often be more detrimental than FD, at least for the first mode-dominated systems. The roles of important ground-motion parameters, such as Arias intensity, mean period, and significant duration, that regulate this interaction effect are discussed. Using energetic length and mean period as characteristic linear and time dimensions, a self-similar response scenario has emerged even when degradation, complex loading patterns under bidirectional shaking, and record-to-record variability coexisted. Geometric nonlinearity in the presence of an axial force may have intensified the interaction effect, as revealed through a sample code-designed pier.
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| contributor author | Arghya Sengupta | |
| contributor author | Lutfulla Quadery | |
| contributor author | Siddhartha Sarkar | |
| contributor author | Rana Roy | |
| date accessioned | 2017-12-16T09:22:03Z | |
| date available | 2017-12-16T09:22:03Z | |
| date issued | 2016 | |
| identifier other | %28ASCE%29BE.1943-5592.0000836.pdf | |
| identifier uri | http://138.201.223.254:8080/yetl1/handle/yetl/4241908 | |
| description abstract | Lateral load-resisting structural members, such as piers, are often analyzed under one component base excitation. The influence of bidirectional shaking is accounted for by using a simplified 30% rule. During seismic shaking, piers are often subjected to bidirectional ground motion, which leads to a complex combination of biaxial moments. In this backdrop, a RC bridge pier has been analyzed under a set of bidirectionally applied near-field motions with forward directivity (FD) and fling-step characteristics. Bidirectional interaction under near-fault motion is observed to substantially amplify damage, particularly for a stiff system (30% and 45%–50% under FD and fling motions, respectively). A complex combination of bidirectional load paths may have also contributed to increased vulnerability. Additional studies have shown that pulses with fling-step characteristics may often be more detrimental than FD, at least for the first mode-dominated systems. The roles of important ground-motion parameters, such as Arias intensity, mean period, and significant duration, that regulate this interaction effect are discussed. Using energetic length and mean period as characteristic linear and time dimensions, a self-similar response scenario has emerged even when degradation, complex loading patterns under bidirectional shaking, and record-to-record variability coexisted. Geometric nonlinearity in the presence of an axial force may have intensified the interaction effect, as revealed through a sample code-designed pier. | |
| publisher | American Society of Civil Engineers | |
| title | Influence of Bidirectional Near-Fault Excitations on RC Bridge Piers | |
| type | Journal Paper | |
| journal volume | 21 | |
| journal issue | 7 | |
| journal title | Journal of Bridge Engineering | |
| identifier doi | 10.1061/(ASCE)BE.1943-5592.0000836 | |
| tree | Journal of Bridge Engineering:;2016:;Volume ( 021 ):;issue: 007 | |
| contenttype | Fulltext |