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Estimating and mapping snow hazard based on at-site analysis and regional approaches

  • Western University

Research output: Contribution to journalArticlepeer-review

Abstract

The estimation of snow hazard and load faces the small sample size effect because of the short snow depth record at a station. To reduce such an effect, we propose to estimate the return period value of the annual maximum ground snow depth S, sT, for Canada sites by applying the regional frequency analysis (RFA) and the region of influence approach (ROIA). The use of RFA and ROIA to map Canadian snow hazard is new. The comparison of their performance for snow hazard mapping has not been explored in the literature. We also consider the at-site analysis approach (ASA) for estimating sT by using three often used probability distributions for S. A comparison of the estimated sT by using the three approaches (ASA, RFA, ROIA) indicates that there is considerable scatter between the estimated sT value although the identified overall spatial trends of sT are similar. It is shown that the two-parameter lognormal distribution for S at most Canadian sites, based on the at-site analysis, is preferred; this differs from the Gumbel distribution used to develop the design snow load in Canadian structural design code. The new findings indicate that it is valuable to consider the lognormal distribution for developing design snow load for Canadian sites.

Original languageEnglish
Pages (from-to)2459-2485
Number of pages27
JournalNatural Hazards
Volume111
Issue number3
DOIs
StatePublished - Apr 2022

Keywords

  • Generalized extreme value distribution
  • Ground snow depth
  • Gumbel distribution
  • Lognormal distribution
  • Regional approaches
  • Snow load

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