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関連する概念動画

Maximum Power Transfer01:16

Maximum Power Transfer

795
Numerous practical applications within engineering disciplines, such as telecommunications, necessitate optimizing power delivery to a connected load. This pursuit, however, entails inherent internal losses, which can either equal or exceed the power supplied to the load. The Thevenin equivalent circuit is helpful in finding the maximum power a linear circuit can deliver to a load. It is assumed in this context that the load resistance can be adjusted.
By substituting the entire circuit with...
795
The Maximum Power Transfer Theorem01:20

The Maximum Power Transfer Theorem

1.1K
Consider a linear AC Thevenin equivalent circuit connected to a load impedance.
The load connected draws the current, and the circuit delivers the power to the load. The alternating current flowing through the load is determined using the rectangular form of voltages, currents, network impedance, and load impedance. The average power delivered to the load is obtained from the product of the square of current and load resistance.
1.1K
Energy Stored In A Coaxial Cable01:31

Energy Stored In A Coaxial Cable

2.0K
A coaxial cable consists of a central copper conductor used for transmitting signals, followed by an insulator shield, a metallic braided mesh that prevents signal interference, and a plastic layer that encases the entire assembly.
In the simplest form, a coaxial cable can be represented by two long hollow concentric cylinders in which the current flows in opposite directions. The magnetic field inside and outside the coaxial cable is determined by using Ampère's law. The magnetic field inside...
2.0K
Power Dissipated in a Circuit: Problem Solving01:15

Power Dissipated in a Circuit: Problem Solving

1.5K
The equivalent resistance of a combination of resistors depends on their values and how they are connected.
The simplest combinations of resistors are series and parallel connections. In a series circuit, the first resistor's output current flows into the second resistor's input; therefore, each resistor's current is the same. Thus, the equivalent resistance is the algebraic sum of the resistances. The current through the circuit can be found from Ohm's law and is equal to the...
1.5K
Node Analysis for AC Circuits01:14

Node Analysis for AC Circuits

612
Consider an angioplasty system featuring a catheter equipped with a turbine, a critical tool for removing plaque deposits from coronary arteries. This intricate medical device operates using a circuit model reminiscent of a dual-node RLC circuit powered by a current-controlled voltage source.
To unravel the complexities of this system, nodal analysis is employed, a powerful technique founded on Kirchhoff's current law (KCL), which remains valid for phasors. AC circuits can effectively be...
612
Standing Waves in a Cavity01:28

Standing Waves in a Cavity

1.4K
A household microwave and lasers are examples of standing electromagnetic waves in a cavity. When two conducting metal plates are placed parallel at the nodal planes, it creates a cavity where standing waves are formed. The cavity between the two planes is analogous to a stretched string held at the points x = 0 and x = L. Here, the distance 'L' between the two planes must be an integer multiple of half of the wavelength. The wavelengths that satisfy this condition are given by:
1.4K

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Recombination Dynamics in Thin-film Photovoltaic Materials via Time-resolved Microwave Conductivity
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分散型カプラーキャビティレーザーを用いた無線電力伝送の安全性解析

Mingqing Liu, Iman Tavakkolnia, Hao Deng

    Optics express
    |December 19, 2025
    PubMed
    まとめ

    分散型カプラーキャビティレーザー(DCCL)無線電力伝送(WPT)システムは、皮膚や眼に対して安全性が向上しており、侵入物体への放射照度が低下しています。これらのシステムは、実用的で長距離かつ安全なエネルギー伝送ソリューションを提供します。

    科学分野:

    • 光学およびフォトニクス
    • 無線通信
    • 生体医工学

    背景:

    • 空洞内レーザーシステムは、高度な無線アプリケーションに不可欠です。
    • 分散型カプラーキャビティレーザー(DCCL)は、視野(FoV)を拡大し、安全性を向上させます。
    • 無線電力伝送(WPT)システムには、厳格な安全性評価が必要です。

    研究 の 目的:

    • DCCL-WPTシステムの安全性を調査すること。
    • 皮膚の安全性、眼の安全性、および小物体侵入に対する感度を評価すること。
    • 照射レベルを定量化し、曝露リスクを評価すること。

    主な方法:

    • 回折モデリングと利得損失ダイナミクスを用いた空洞内ビーム伝搬をシミュレートする安全性解析モデルを開発しました。
    • 人間の頭部モデルとレイトレーシングを用いた眼の安全性評価を定式化しました。
    • 皮膚の安全性、眼の安全性、および小物体侵入に関するケーススタディを分析しました。

    主要な成果:

    • DCCL-WPTシステムは、皮膚に安全な条件下(16° FoVで100 mW)で5 mにおいて600 mWを超える充電電力を達成します。
    • 侵入物体への放射照度は、単一キャビティシステムと比較してほぼ50%低くなります。
    キーワード:
    無線電力伝送レーザー安全性分散型カプラーキャビティレーザー光通信レーザー

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  • 150 mWの充電電力で眼の安全性が維持され、これは通常の閾値を大幅に上回り、角膜への曝露が主な懸念事項です。
  • システムは、小物体侵入に対して高い感度を示し、ハザード軽減に役立ちます。
  • 結論:

    • DCCL-WPTシステムは、モバイル、長距離、安全なエネルギー伝送に実用的です。
    • 本研究は、実際のDCCL-WPT展開における安全性認識の最適化の基礎を提供します。
    • 結果は、WPTアプリケーションにおけるDCCL構成の安全性の向上を確認します。