Analysis of Generalized Extreme Value Distribution to Estimate Storm Sewer Capacity Under Climate Change
Hak-Pyo Lee, Jaena Ryu, Soonyu Yu, Kyoo-Hong Park
Abstract
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Hak-Pyo Lee, Jaena Ryu, Soonyu Yu, Kyoo-Hong Park
Abstract
Open-access reader
In this study, statistical analysis under both stationary and non-stationary climate was conducted for rainfall data measured in Seoul. Generalised Extreme Value (GEV) distribution and Gumbel distribution were used for the analysis. Rainfall changes under the non-stationary climate were estimated by applying time variable (t) to location parameter ( ${\xi}$ ). Rainfall depths calculated in non-stationary climate increased by 1.1 to 6.2mm and 1.0 to 4.6mm for the GEV distribution and gumbel distribution respectively from those stationary forms. Changes in annual maximum rainfall were estimated with rate of change in the location parameter ( ${\xi}1{\cdot}t$ ), and temporal changes of return period were predicted. This was also available for re-evaluating the current sewer design return period. Design criteria of sewer system was newly suggested considering life expectance of the system as well as temporal changes in the return period.
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In this study, statistical analysis under both stationary and non-stationary climate was conducted for rainfall data measured in Seoul. Generalised Extreme Value (GEV) distribution and Gumbel distribution were used for the analysis. Rainfall changes under the non-stationary climate were estimated by applying time variable (t) to location parameter ( ${\xi}$ ). Rainfall depths calculated in non-stationary climate increased by 1.1 to 6.2mm and 1.0 to 4.6mm for the GEV distribution and gumbel distribution respectively from those stationary forms. Changes in annual maximum rainfall were estimated with rate of change in the location parameter ( ${\xi}1{\cdot}t$ ), and temporal changes of return period were predicted. This was also available for re-evaluating the current sewer design return period. Design criteria of sewer system was newly suggested considering life expectance of the system as well as temporal changes in the return period.
Key concepts: Gumbel distribution, Return period, Generalized extreme value distribution, Extreme value theory, Environmental science, Storm, Climate change, Climatology