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関連する概念動画

Mechanical Efficiency of Real Machines01:14

Mechanical Efficiency of Real Machines

The mechanical efficiency of a machine is a fundamental concept that describes how effectively a machine can convert input work into output work. According to this concept, the efficiency of a machine is equal to the ratio of the output work to the input work. An ideal machine, meaning a machine that has no energy losses, has an efficiency of one. This implies that the input work and the output work are equal.
However, in reality, no machine can be truly ideal, and all of them experience some...
Machines01:19

Machines

Machines are complex structures consisting of movable, pin-connected multi-force members that work together to transmit forces. One example of a machine is the cutting plier, which is used to cut wires by applying forces to its handles. When equal and opposite forces are exerted on the handles of the cutting plier, they cause the cutting edges to come together and apply equal and opposite reaction forces on the wire, which are greater than the applied forces.
A free-body diagram of the...
Machines: Problem Solving II01:30

Machines: Problem Solving II

Machines are complex structures consisting of movable, pin-connected multi-force members that work together to transmit forces. Consider a lifting tong carrying a 100 kg load. It comprises movable sections DAF and CBG linked together with member AB.
Sequence Networks of Rotating Machines01:24

Sequence Networks of Rotating Machines

A Y-connected synchronous generator, grounded through a neutral impedance, is designed to produce balanced internal phase voltages with only positive-sequence components. The generator's sequence networks include a source voltage that is exclusively in the positive-sequence network. The sequence components of line-to-ground voltages at the generator terminals illustrate this configuration.
Zero-sequence current induces a voltage drop across the generator's neutral impedance and other...
Simplified Synchronous Machine Model01:30

Simplified Synchronous Machine Model

The Synchronous Machine Model is a fundamental tool in analyzing and ensuring the transient stability of power systems. This model simplifies the representation of a synchronous machine under balanced three-phase positive-sequence conditions, assuming constant excitation and ignoring losses and saturation. The model is pivotal for understanding the behavior of synchronous generators connected to a power grid, particularly during transient events.
In this model, each generator is connected to a...
Multimachine Stability01:25

Multimachine Stability

Multimachine stability analysis is crucial for understanding the dynamics and stability of power systems with multiple synchronous machines. The objective is to solve the swing equations for a network of M machines connected to an N-bus power system.
In analyzing the system, the nodal equations represent the relationship between bus voltages, machine voltages, and machine currents. The nodal equation is given by:

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関連する実験動画

Updated: Jul 13, 2026

Manufacturing of Three-dimensionally Microstructured Nanocomposites through Microfluidic Infiltration
14:24

Manufacturing of Three-dimensionally Microstructured Nanocomposites through Microfluidic Infiltration

Published on: March 12, 2014

キラル・スピナーのダイナミック・アグリゲーション

Bartosz A Grzybowski1, George M Whitesides

  • 1Department of Chemistry and Chemical Biology, Harvard University, 12 Oxford Street, Cambridge, MA 02138, USA. bgrzybowskigmwgroup.harvard.edu

Science (New York, N.Y.)
|April 27, 2002
PubMed
まとめ

チラルの磁気板は,液体の表面に渦を作り出します. 彼らのキラリティは,彼らが惹きつけられるか,または拒絶されるかを決定し,回転する磁場における集団行動に影響を与えます.

科学分野:

  • 物理 物理学 物理学とは
  • マテリアルサイエンス 材料科学
  • 流体力学 流体力学とは

背景:

  • 液体の表面で回転する物体は,キラル渦を生成します.
  • オブジェクトのキラリティは,その渦の特徴と相互作用に影響します.
  • キラル相互作用を理解することは,自己組み立てや微流体学のような分野において鍵となるものです.

研究 の 目的:

  • ミリメートルサイズのキラル磁気板の集積行動を調査するために.
  • チラリティがこれらのプレート間の渦媒介相互作用にどのように影響するか探求する.
  • 回転する磁場がプレート動力学と集団行動に及ぼす影響を分析する.

主な方法:

  • 浮遊するミリメートルサイズのキラル磁気板が,液体-空気インターフェイスに付いています.
  • 周回する外磁場を適用して,回転を誘導し,板を閉じ込めます.
  • プレートキラリティに基づいて,集積と排斥のダイナミクスの観察と分析.

主要な成果:

  • チラルの磁気板は,液体-空気界面で相互作用する渦を形成します.
  • あるタイプのキラルプレートは,自己吸引を示した.
  • 他のタイプのキラルプレートは,自分自身と最初のタイプの両方に反感を示しました.

さらに関連する動画

Design and Use of an Apparatus for Presenting Graspable Objects in 3D Workspace
09:11

Design and Use of an Apparatus for Presenting Graspable Objects in 3D Workspace

Published on: August 8, 2019

Operation of the Collaborative Composite Manufacturing (CCM) System
10:09

Operation of the Collaborative Composite Manufacturing (CCM) System

Published on: October 1, 2019

関連する実験動画

Last Updated: Jul 13, 2026

Manufacturing of Three-dimensionally Microstructured Nanocomposites through Microfluidic Infiltration
14:24

Manufacturing of Three-dimensionally Microstructured Nanocomposites through Microfluidic Infiltration

Published on: March 12, 2014

Design and Use of an Apparatus for Presenting Graspable Objects in 3D Workspace
09:11

Design and Use of an Apparatus for Presenting Graspable Objects in 3D Workspace

Published on: August 8, 2019

Operation of the Collaborative Composite Manufacturing (CCM) System
10:09

Operation of the Collaborative Composite Manufacturing (CCM) System

Published on: October 1, 2019

結論:

  • ミリメートルの大きさのプレートのキラリティは,それらの集積と排斥の行動を大きく左右します.
  • 渦の相互作用は,相互作用するオブジェクトのキラリティによって調整されます.
  • この研究は,キラル相互作用を通じてマイクロスケールの自己組み立てを制御する方法を実証しています.