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May 6, 2026Hydrology0 citationsOpen Access

Quantifying the Role of Urban Development and Rainfall Shifts in Dynamic Hydrological Extremes

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WPWati Asriningsih PranotoRFRijal Muhammad FikriDYD Yudianto

Key Points

  • This research aims to understand how urban development and rainfall changes affect flood dynamics.
  • Utilized multi temporal land use classification based on Landsat imagery
  • Simulated rainfall–runoff processes using the Soil Conservation Service Curve Number approach
  • Coupled HEC-HMS and HEC-RAS 2D modelling framework for flood inundation analysis
  • Calibrated model using observed flood events and conducted rainfall-shift analysis
  • Impervious surface coverage increased by about 67% from 2013 to 2025
  • Peak discharge and flood inundation extent increased due to urbanization
  • Design rainfall rose from 85.01 to 90.95 with an average increase of approximately 7.34%
  • Model showed satisfactory agreements with observed inundation patterns, averaging less than 10% deviation

Abstract

Urbanization, together with shifts in rainfall patterns, has become an increasingly important driver of hydrological extremes in many rapidly developing tropical regions. In the Cimanceuri River Basin, Tangerang Regency, Indonesia, these processes have intensified over the last decade, raising concerns regarding flood risk. This study examines the combined influence of urban expansion and rainfall variability on flood dynamics over 2013–2025. Multi temporal land use classification based on Landsat imagery indicates a pronounced growth of impervious surfaces, primarily driven by rapid urban development and the conversion of agricultural land. To assess the hydrological consequences of these changes, rainfall–runoff processes and flood inundation were simulated using the Soil Conservation Service Curve Number (SCS–CN) method within a coupled HEC-HMS and HEC-RAS 2D modelling framework. Simulations were performed for multiple temporal conditions and design rainfall scenarios. Model calibration relied on observed flood events recorded in March 2025 in the Mustika Residential Area, Tangerang. The results suggest that urbanization has contributed to measurable increases in both peak discharge and inundation extent. Between 2013 and 2025, impervious surface coverage expanded by approximately 67%, accompanied by a rise in the composite Curve Number from 85.86 to 86.63 and an estimated 5.2% increase in flood extent. Also, the design rainfall increased from 85.01 to 90.95 with an average increase of 7.34%. Comparison between simulated inundation patterns and aerial imagery shows satisfactory agreement, with an average deviation of less than 10%, indicating acceptable model performance. Hydrologic analyses generated two discharge scenarios, consisting of event-based flow from the 5 March 2025 rainfall data and return-period flows derived from design rainfall under different rainfall-shift periods. The rainfall-shift analysis quantified changes in design rainfall and corresponding discharge using progressively updated rainfall records. Together, the results emphasize the combined effects of urban expansion and shifting rainfall patterns on flood dynamics, underscoring the need for adaptive land-use planning and climate-responsive water management in rapidly urbanizing catchments.

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Cite This Study

Pranoto et al. (2026) studied this question.

synapsesocial.com/papers/69faa2b504f884e66b533451https://doi.org/10.3390/hydrology13050123
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