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Profile photo of Ronny Berndtsson

Ronny Berndtsson

Professor, Dep Director, MECW Dep Scientific Coordinator

Profile photo of Ronny Berndtsson

Adaptive design of tipping bucket flow meters for continuous runoff measurement

Author

  • Dimaghi Schwamback
  • Magnus Persson
  • Ronny Berndtsson
  • Jamil a. a. Anache
  • Edson cezar Wendland

Summary, in English

Introduction: Runoff measurement and monitoring is a laborious, timeconsuming,
and costly task. Additionally, common runoff monitoring usually primarily provide water level, requiring information on the stage-discharge relation. Automatic equipment such as flow meter tipping bucket (TB) is a potential option to simplify and provide continuous runoff monitoring in small catchments. However, a proper description of how to size and adapt the design under different flow conditions is still lacking.
Methodology: In this paper we present a novel standardized framework for the design of TB that can be used for low-cost and real-time runoff monitoring under many different conditions. The framework consists of an estimation of the runoff peak rate using the rational equation and a volumetric capacity estimate of the cavity based on runoff rate, operation speed, and inclination angle of TB when at resting position. The proposed framework was implemented in a case study where four TBs were designed for continuous runoff monitoring from experimental plots (100m2) with different land use (sugarcane, soybean, and bare soil).
Results: During field tests (five months), the designed TBs had a recovery rate of actual runoff ranging from 61% to 81% and were able to capture features poorly studied (starting/ending time and peak flow) that have potential importance in hydrological models.
Discussion: The proposed framework is flexible and can be used for different environmental conditions to provide continuous runoff data records.

Department/s

  • Division of Water Resources Engineering
  • LTH Profile Area: Water
  • Centre for Advanced Middle Eastern Studies (CMES)
  • MECW: The Middle East in the Contemporary World

Publishing year

2023-12-01

Language

English

Publication/Series

Frontiers in Environmental Science

Volume

11

Document type

Journal article

Publisher

Frontiers Media S. A.

Topic

  • Water Engineering

Status

Published

ISBN/ISSN/Other

  • ISSN: 2296-665X