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March 7, 2026Soil Dynamics and Earthquake Engineering0 citationsOpen Access

Performance of a shallow-founded building on liquefiable soil at the port of Wellington during the 2013 and 2016 New Zealand earthquakes

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WZWilliam Z. ZakkaJBJonathan D. Bray

Key Points

  • This study aims to assess the seismic performance and settlement of a shallow-founded structure on liquefiable soil during the 2013 and 2016 earthquakes.
  • Conducted nonlinear effective stress site response analyses to evaluate ground shaking.
  • Implemented PM4Sand, PM4Silt, and UBCHyst constitutive models in FLAC software.
  • Performed two-dimensional nonlinear dynamic analyses of a 2-story reinforced concrete frame structure.
  • Used deconvolved motions from nearby sites as input for the analyses.
  • Building settlement ranged from 230-260 mm following the 2016 Kaikōura earthquake.
  • Negligible to minor damage was observed during the 2013 earthquakes.
  • The volumetric-induced liquefaction mechanism was the main factor for building performance in the 2016 earthquake.
  • Successful estimation of settlement using recently developed procedures.

Abstract

The 2016 M w 7.8 Kaikōura earthquake caused widespread liquefaction-induced damage at the Port of Wellington (CentrePort), New Zealand. Conversely, less intense, shorter duration ground shaking during the 2013 M w 6.6 Cook Strait and Lake Grassmere earthquakes caused only moderate-to-no damage. The PM4Sand, PM4Silt, and UBCHyst constitutive models implemented in FLAC are used to evaluate the seismic performance of a shallow-founded structure at CentrePort. Nonlinear effective stress site response analyses are performed first to calculate the ground shaking at a strong motion site at the port using deconvolved motions from a nearby site. The analytical results agree with the recorded ground motions. The input ground motions are employed in two-dimensional nonlinear dynamic analyses of the 2-story reinforced concrete frame structure on spread footings for the three earthquakes. The building and surrounding ground settled 230-260 mm following the 2016 Kaikōura earthquake yet suffered no-to-minor damage during the 2013 earthquakes. The analyses reliably captured the observed performance during the earthquakes. Negligible settlement was estimated for the 2013 earthquakes, and the volumetric-induced liquefaction mechanism governed the seismic performance of the structure in the 2016 Kaikōura earthquake with only minor shear-induced settlement. Shear-induced settlement was minimal due to the light structural loads of the building and thick compacted gravel crust. Recently developed design procedures to estimate liquefaction-induced settlement provide reasonable results. • Liquefaction-induced building settlement procedures are evaluated at CentrePort. • Nonlinear effective stress analyses reliably compute ground surface motions. • Settlement of a 2-story building is reliably estimated for three earthquakes. • Shear-induced settlement was negligible due to light building load and thick crust. • Dynamic nonlinear effective stress SSI analyses provide important insights.

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Cite This Study

Zakka et al. (2026) studied this question.

synapsesocial.com/papers/69abc1235af8044f7a4e9cbchttps://doi.org/10.1016/j.soildyn.2026.110236
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