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関連する概念動画

Angle of Twist: Problem Solving01:13

Angle of Twist: Problem Solving

791
An electric motor applies a torque of 700 N·m to an aluminum shaft, triggering a stable rotation. Two pulleys, B and C, are subjected to torques of 300 N·m and 400 N·m, respectively. The modulus of rigidity is provided as 25 GPa. With the knowledge of the length and diameter of each segment, the twist angle between the two pulleys can be computed. First, a section cut is made between pulleys B and C, and the cut cross-section is analyzed using a free-body diagram. Given that the torque...
791
Classification of Skeletal Muscle Fibers01:48

Classification of Skeletal Muscle Fibers

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Skeletal muscles continuously produce ATP to provide the energy that enables muscle contractions. Skeletal muscle fibers can be categorized into three types based on differences in their contraction speed and how they produce ATP, as well as physical differences related to these factors. Most human muscles contain all three muscle fiber types, albeit in varying proportions.
Slow-Twitch Muscle Fibers
Slow oxidative, muscle fibers appear red due to large numbers of capillaries and high levels of...
59.5K
Angle of Twist - Elastic Range01:13

Angle of Twist - Elastic Range

805
Consider a cylindrical shaft with a length denoted by L and a consistent cross-sectional radius referred to as r. This shaft undergoes a torque at the free end. The highest shearing strain within the shaft is directly proportional to the twist angle and the radial distance from the shaft axis. When the shaft behaves elastically, this shearing strain can be articulated using variables such as the applied torque, radial distance, the polar moment of inertia, and the modulus of rigidity. By...
805
Drug Distribution: Volume of Distribution01:25

Drug Distribution: Volume of Distribution

7.4K
The volume of distribution refers to the theoretical volume necessary to contain the entire amount of an administered drug at the same concentration observed in the blood plasma. The body's intracellular fluid compartment, which makes up two-thirds of the total body water, is contrasted with the extracellular fluid compartment—comprising plasma and interstitial fluid—that accounts for one-third. The volume of distribution can vary depending on the characteristics of the drug.
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F Distribution01:19

F Distribution

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The F distribution was named after Sir Ronald Fisher, an English statistician. The F statistic is a ratio (a fraction) with two sets of degrees of freedom; one for the numerator and one for the denominator. The F distribution is derived from the Student's t distribution. The values of the F distribution are squares of the corresponding values of the t distribution. One-Way ANOVA expands the t test for comparing more than two groups. The scope of that derivation is beyond the level of this...
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Distributed Loads01:19

Distributed Loads

971
Distributed loads are a common type of load that engineers and scientists encounter in various practical situations. Distributed loads often refer to a type of load spread over a surface or a structure and can be modeled as continuous force per unit area.
For example, consider a bookshelf filled with books stacked vertically adjacent to each other. The weight of the books is evenly distributed over the length of the shelf. As a result, the pressure at different locations on the surface of the...
971

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関連する実験動画

Updated: Feb 1, 2026

Fiber Optic Distributed Sensors for High-resolution Temperature Field Mapping
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Fiber Optic Distributed Sensors for High-resolution Temperature Field Mapping

Published on: November 7, 2016

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スパンファイバーを用いたOFDRによる高空間分解能分散型ねじり測定

Yalin Gao, Shuyan Chen, Zhiyong Zhao

    Optics letters
    |January 30, 2026
    PubMed
    まとめ

    新しい分散型ねじりセンサーは、高分解能ねじり検出のためにスパン単一モードファイバー(SMF)で光周波数領域反射測定(OFDR)を使用します。このセンサーは、ねじり角度と方向を正確に測定し、構造モニタリングおよび医療機器の進歩を約束します。

    科学分野:

    • ファイバーオプティクスセンシング
    • 材料科学
    • 計測学

    背景:

    • 分散型センシングは、モニタリングアプリケーションにおいてポイントセンシングよりも利点を提供します。
    • スパン単一モードファイバー(SMF)は、センシングに利用できる独自の構造的特性を持っています。
    • 光周波数領域反射測定(OFDR)は、高分解能光学測定のための技術です。

    研究 の 目的:

    • 高空間分解能分散型ねじりセンサーを提案および実証すること。
    • ねじり下のスパン単一モードファイバー(SMF)のセンシングメカニズムを調査すること。
    • ねじり角度と方向測定の観点からセンサーの性能を評価すること。

    主な方法:

    • センシング要素としてスパン単一モードファイバー(SMF)を利用しました。
    • 信号測定のために光周波数領域反射測定(OFDR)を採用しました。
    • レイリー後方散乱信号(RBS)スペクトルの周波数シフトを分析しました。

    主要な成果:

    • 1.56cmの空間分解能を持つ分散型ねじりセンサーを達成しました。
    • 測定された周波数シフトとねじり角度(±180°)の間の3次フィッティング関係を確立しました。
    キーワード:
    分散型センサーねじりセンサー光周波数領域反射測定スパン単一モードファイバー高空間分解能

    さらに関連する動画

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    関連する実験動画

    Last Updated: Feb 1, 2026

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    Magnetic Tweezers for the Measurement of Twist and Torque
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    Magnetic Tweezers for the Measurement of Twist and Torque

    Published on: May 19, 2014

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    Author Spotlight: Unveiling Mitochondrial Function and Cellular Metabolic Adaptation in Metabolic Diseases
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    Author Spotlight: Unveiling Mitochondrial Function and Cellular Metabolic Adaptation in Metabolic Diseases

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  • スペクトルシフトに基づいてねじり方向を特定する能力を実証しました。
  • 結論:

    • スパンSMFにおける提案されたOFDRベースのセンサーは、方向識別を伴う高分解能の分散型ねじり測定を提供します。
    • この技術は、構造的安全性監視、医療介入、および生物模倣設計に大きな可能性を秘めています。
    • スパンSMFのユニークならせん構造は、ねじりセンサーとしてのパフォーマンスの鍵となります。