Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

Introduction to Types of Flows01:23

Introduction to Types of Flows

Fluid flows are categorized by dimensionality and behavior, with one-dimensional flow being the simplest form, where properties like velocity and pressure change only along a single axis. Water moving through straight pipes exemplifies this flow type, as variations in other directions are minimal. One-dimensional analysis helps simplify understanding such flows, focusing solely on changes along the pipe's length.
Two-dimensional flow involves changes in both length and height, as seen in air...
Modeling and Similitude01:12

Modeling and Similitude

Scaled modeling is a fundamental technique in engineering, enabling the study of large and complex systems by creating smaller, manageable replicas that recreate critical characteristics of the original. In hydrology and civil infrastructure, for example, scaled models of dams help analyze water flow, turbulence, and pressure. This method allows for accurate predictions of real-world behavior within a controlled environment, significantly reducing the cost and time involved in full-scale...
Typical Model Studies01:30

Typical Model Studies

Fluid mechanics model studies often utilize scaled-down systems to predict fluid behavior in full-scale environments, such as river flows, dam spillways, and structures interacting with open surfaces. Maintaining Froude number similarity in river models is crucial, as it replicates surface flow features like wave patterns and velocities.
Design Example: Creating a Hydraulic Model of a Dam Spillway01:21

Design Example: Creating a Hydraulic Model of a Dam Spillway

Scaled hydraulic models of dam spillways provide a practical way to replicate and study the intricate flow dynamics of these structures. Often built to a 1:15 ratio, these models allow for observing critical water behavior, such as velocity distribution, flow patterns, and energy dissipation.
Rapidly Varying Flow01:24

Rapidly Varying Flow

Rapidly varying flow (RVF) in open channels is characterized by abrupt changes in flow depth over a short distance, with the rate of depth change relative to distance often approaching unity. These flows are inherently complex due to their transient and multi-dimensional nature, making exact analysis difficult. However, approximate solutions using simplified models provide valuable insights into their behavior.Key Features of Rapidly Varying FlowRVF is commonly observed in scenarios involving...
Design Example: Analyzing Capacity Contours for Flood Risk Assessment01:17

Design Example: Analyzing Capacity Contours for Flood Risk Assessment

Flood risk assessment involves careful planning and analysis to ensure the safety of communities near water retention structures. Capacity contours are a vital tool in this process, as they illustrate the potential spread of water at specific levels in a given area. In the context of building a bund across a small valley, these contours play a critical role in evaluating the safety of nearby residential areas.In this example, the bund is intended to store stormwater in the valley. The engineers...

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Multi-source datasets acquired over Toulouse (France) in 2021 for urban microclimate studies during the CAMCATT/AI4GEO field campaign.

Data in brief·2023
Same author

Graphene-oxide loading on natural zeolite particles for enhancement of adsorption properties.

RSC advances·2022
Same author

High-harmonic fast-wave power flow along magnetic field lines in the scrape-off layer of NSTX.

Physical review letters·2012
Same author

Experiments and 3D simulations of flow structures in junctions and their influence on location of flowmeters.

Water science and technology : a journal of the International Association on Water Pollution Research·2012
Same author

The use of CFD modelling to optimise measurement of overflow rates in a downstream-controlled dual-overflow structure.

Water science and technology : a journal of the International Association on Water Pollution Research·2011
Same author

Optical properties of a planar turbulent jet.

Applied optics·2010

Related Experiment Video

Updated: Jul 11, 2026

Visualizing Hyporheic Flow Through Bedforms Using Dye Experiments and Simulation
09:49

Visualizing Hyporheic Flow Through Bedforms Using Dye Experiments and Simulation

Published on: November 18, 2015

Flooding flows in city crossroads: experiments and 1-D modelling.

N Rivière1, R J Perkins, B Chocat

  • 1Laboratoire de Mecanique des Fluides et d'Acoustique, CNRS UMR 5509, INSA de Lyon, 20 av. A. Einstein, 69621 Villeurbanne, France. nicolas.riviere@insa-lyon.fr

Water Science and Technology : a Journal of the International Association on Water Pollution Research
|November 24, 2006
PubMed
Summary

This study examines how water flows through a four-channel intersection, like a city crossroad. Water enters through two channels and exits through the other two, with flow rates measured in all channels. Vertical weirs at the exits control flow depth. When weirs are the same height, flow ratios depend only on inlet flow rates. If weirs differ, total flow rate also affects distribution. A 1-D Saint Venant model simulates these flows and matches experimental results when conditions are uniform. The model needs more testing before it can be used in real-world urban flood modeling.

Keywords:
urban flood modelingflow distributionSaint Venant equationschannel intersections

Frequently Asked Questions

More Related Videos

Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression
13:07

Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression

Published on: January 15, 2022

Evaluating the Effect of Roadside Parking on a Dual-Direction Urban Street
14:55

Evaluating the Effect of Roadside Parking on a Dual-Direction Urban Street

Published on: January 20, 2023

Related Experiment Videos

Last Updated: Jul 11, 2026

Visualizing Hyporheic Flow Through Bedforms Using Dye Experiments and Simulation
09:49

Visualizing Hyporheic Flow Through Bedforms Using Dye Experiments and Simulation

Published on: November 18, 2015

Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression
13:07

Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression

Published on: January 15, 2022

Evaluating the Effect of Roadside Parking on a Dual-Direction Urban Street
14:55

Evaluating the Effect of Roadside Parking on a Dual-Direction Urban Street

Published on: January 20, 2023

Area of Science:

  • Hydraulic engineering
  • Urban hydrology
  • Fluid dynamics modeling

Background:

Understanding how floodwaters move through urban intersections is a key challenge in hydraulic engineering. Prior research has shown that subcritical flows in channel networks can be influenced by outlet conditions like weir heights. However, the specific mechanisms governing flow distribution at four-way intersections remain unclear. Existing models often fail to capture the full complexity of real-world urban environments. This gap motivated researchers to investigate how inlet and outlet flow rates interact in a controlled setup. No prior work had resolved how outlet weir heights affect flow ratios independently. The study builds on established principles of open-channel hydraulics. It introduces a novel approach to modeling flow distribution at city crossroads. This work aims to improve predictive accuracy for urban flood modeling.

Purpose Of The Study:

The goal is to examine how flow divides at a four-channel intersection resembling a city crossroad. The setup includes two inlet and two outlet channels with subcritical flow. The study measures flow rates under varying weir heights at outlets. The researchers aim to determine how inlet flow ratios and outlet weir heights influence distribution. They also seek to validate a 1-D Saint Venant model for such intersections. The motivation is to enhance flood prediction in urban areas. The study addresses limitations in current modeling approaches. It provides a framework for simulating complex flow patterns in city layouts.

Main Methods:

The experiment uses a four-channel intersection with horizontal channels and vertical weirs at outlets. Flow enters through two channels and exits through the other two. Flow rates in all channels are measured. Weir heights are adjusted to test their impact on flow distribution. The setup allows control over inlet and outlet conditions. A 1-D Saint Venant equation model is used for numerical simulation. The model includes a simple algorithm for predicting flow distribution. Experimental data is compared to model outputs to assess accuracy.

Main Results:

When outlet weirs are equal in height, flow ratios depend only on inlet flow rates. Different weir heights introduce additional variables like total flow rate. The model accurately predicts flow ratios under uniform weir conditions. Discrepancies arise when weir heights vary significantly. The Saint Venant model performs well within the tested range. Total flow rate becomes a key factor when outlet conditions differ. The model's accuracy is limited to the specific experimental setup. Further testing is needed for broader urban applications.

Conclusions:

The study confirms that flow distribution at intersections depends on inlet ratios and outlet weir heights. The model works well for uniform outlet conditions but needs refinement. Outlet conditions significantly affect flow patterns. The Saint Venant model requires further validation for real-world use. The findings suggest that inlet and outlet flow rates must be considered together. The research highlights the importance of controlled experiments. The model's current limitations must be addressed before practical use. Future studies should expand the range of tested conditions.

Flow distribution depends on inlet flow rates and outlet weir heights. When weirs are equal, inlet ratios alone determine distribution.

The model accurately predicts flow ratios under uniform weir conditions. It requires further testing for variable weir heights.

Weirs control flow depth at outlets. Their height affects how flow is distributed among channels.

Total flow rate becomes significant when outlet weir heights differ. It influences how flow splits between channels.

The model shows promise but needs further validation. It is currently limited to the tested experimental conditions.

The study suggests that both inlet and outlet conditions must be considered in urban flood models.