Jove
Visualize
お問い合わせ
JoVE
x logofacebook logolinkedin logoyoutube logo
JoVEについて
概要リーダーシップブログJoVEヘルプセンター
著者向け
出版プロセス編集委員会範囲と方針査読よくある質問投稿
図書館員向け
推薦の声購読アクセスリソース図書館諮問委員会よくある質問
研究
JoVE JournalMethods CollectionsJoVE Encyclopedia of Experimentsアーカイブ
教育
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab Manual教員リソースセンター教員サイト
利用規約
プライバシーポリシー
ポリシー

関連する概念動画

Design Example: Design of an Irrigation Channel01:27

Design Example: Design of an Irrigation Channel

217
Trapezoidal channels are widely used in irrigation systems due to their cost-effectiveness and efficiency in conveying water. Trapezoidal channels feature a flat bottom and sloping sides, making them stable and easier to construct compared to other shapes. The bottom width and side slope ratio are determined based on the required flow capacity and site conditions. The side slope is kept gentle for unlined channels to prevent soil erosion.Hydraulic parameters in channel design include the flow...
217
Design Example: Creating a Hydraulic Model of a Dam Spillway01:21

Design Example: Creating a Hydraulic Model of a Dam Spillway

295
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.
295
Underflow Gates01:30

Underflow Gates

101
Underflow gates are vital for controlling water flow in irrigation canals. The three main types of underflow gates — vertical, radial, and drum gates — serve different purposes while ensuring effective flow management. Vertical gates move up and down, generating a free-flowing water jet; radial gates pivot to regulate the flow; and drum gates rotate for precise adjustments. The flow through these gates is influenced by downstream conditions, resulting in free or drowned outflow.Free and...
101
Plane Potential Flows01:23

Plane Potential Flows

453
Plane potential flows simplify fluid motion by assuming the fluid to be irrotational and incompressible. These characteristics allow these flows to be described by a velocity potential function, ϕ, representing the flow speed in a given direction, and a stream function, ψ, that visualizes the flow path, both governed by Laplace's equation. These parameters help in estimating flow patterns, velocity distributions, and pressure fields around various hydraulic structures.
Uniform...
453
Uniform Depth Channel Flow: Problem Solving01:18

Uniform Depth Channel Flow: Problem Solving

125
To calculate the flow rate for a trapezoidal channel, first, identify the bottom width, side slope, and flow depth of the channel. The cross-sectional area (A) corresponding to the depth of flow (y), channel bottom width (B), and side slope (θ) is determined by:Next, calculate the wetted perimeter, which includes the bottom width and the sloped side lengths in contact with the water. Using the values of the cross-sectional area and the wetted perimeter, determine the hydraulic radius by...
125
Design Example: Analyzing Capacity Contours for Flood Risk Assessment01:17

Design Example: Analyzing Capacity Contours for Flood Risk Assessment

101
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...
101

こちらも読む

関連記事

共著者、ジャーナル、引用グラフによってこの研究に関連する記事。

並び替え
Same author

Sodium Silicate Grouting: Mechanisms, Environmental Impacts, and Research Directions.

Transport in porous media·2026
Same author

Global Gridded Climate-Responsive Crop Selection: Sowing Dates and Crop Varieties in a Warming World.

Scientific data·2026
Same author

Current trends and biases in groundwater modelling using the community-driven groundwater model portal (GroMoPo).

Hydrogeology journal·2025
Same author

Global energy consumption of water treatment technologies.

Water research·2025
Same author

Total irrigation by crop in the Continental United States from 2008 to 2020.

Scientific data·2024
Same author

GroMoPo: A Groundwater Model Portal for Findable, Accessible, Interoperable, and Reusable (FAIR) Modeling.

Ground water·2023

関連する実験動画

Updated: Sep 10, 2025

Wastewater Irrigation Impacts on Soil Hydraulic Conductivity: Coupled Field Sampling and Laboratory Determination of Saturated Hydraulic Conductivity
08:09

Wastewater Irrigation Impacts on Soil Hydraulic Conductivity: Coupled Field Sampling and Laboratory Determination of Saturated Hydraulic Conductivity

Published on: August 19, 2018

9.3K

ポンプテストドローダウンにおけるアクイタール水力パラメータの空間感度をマッピングする.

Martijn D van Leer1, Willem J Zaadnoordijk2,3, Alraune Zech4

  • 1Department of Physical Geography, Utrecht University, Princetonlaan 8a, 3584 CB, Utrecht, The Netherlands.

Ground water
|August 26, 2025
PubMed
まとめ

ポンプテストの抽出は,水素性特性を明らかにし,水力伝導性と特定の貯蔵が水位にどのように影響するか示している. 感度分析は,観測井戸によって最もよく表される水層地帯を特定するのに役立ちます.

さらに関連する動画

Author Spotlight: Advancing Agricultural Land Ecosystem Research with a Hydraulic Property Analyzer to Assess Soil Health
07:21

Author Spotlight: Advancing Agricultural Land Ecosystem Research with a Hydraulic Property Analyzer to Assess Soil Health

Published on: August 9, 2024

1.1K
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

12.3K

関連する実験動画

Last Updated: Sep 10, 2025

Wastewater Irrigation Impacts on Soil Hydraulic Conductivity: Coupled Field Sampling and Laboratory Determination of Saturated Hydraulic Conductivity
08:09

Wastewater Irrigation Impacts on Soil Hydraulic Conductivity: Coupled Field Sampling and Laboratory Determination of Saturated Hydraulic Conductivity

Published on: August 19, 2018

9.3K
Author Spotlight: Advancing Agricultural Land Ecosystem Research with a Hydraulic Property Analyzer to Assess Soil Health
07:21

Author Spotlight: Advancing Agricultural Land Ecosystem Research with a Hydraulic Property Analyzer to Assess Soil Health

Published on: August 9, 2024

1.1K
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

12.3K

科学分野:

  • 水土学
  • 環境科学

背景:

  • 地下水資源の管理に不可欠なものです
  • 抽出試験は,水層の特徴づけのための一般的な方法です.

研究 の 目的:

  • ポンプテストの抽出におけるアクイタールの水力伝導性と特定の貯蔵の空間的および時間的感性を調査する.
  • 異なる観測井戸での抽出で表される水族の領域を決定する.

主な方法:

  • ポンプテストをシミュレートするために3層のMODFLOW 6モデルを使用しました.
  • パラメータの影響を評価するために,PEST++を用いた局所感度分析が行われました.
  • シミュレーションでは,さまざまな伝送シナリオと境界条件で円形のヴォロノイグリッドを使用した.

主要な成果:

  • 抽出水層の感度パターンは 井戸の周りに円形を形成します
  • 上層水層の感受性は伝達率によって影響を受け,ポンプ井戸または観測井戸の領域を好みます.
  • 感受性は時間とともに進化し,影響力を拡大し,半限定条件下での観測井戸にシフトします.

結論:

  • 抽出試験の抽出は,魚類の異質性について貴重な情報を提供します.
  • 感度分析は,よりよい特徴化のためにポンプ試験設計を最適化するのに役立ちます.
  • 短時間的な地下水流量データからの水族の性質の解釈を向上させる.