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相关概念视频

The Maximum Power Transfer Theorem01:20

The Maximum Power Transfer Theorem

522
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.
522
Mesh Analysis for AC Circuits01:12

Mesh Analysis for AC Circuits

332
In the domain of radio communication, the significance of impedance matching must be considered. It is crucial to ensure the efficient transmission of signals between radio transmitters and receivers. Achieving this balance involves using impedance-matching circuits, with one fundamental configuration comprising a resistor, capacitor, and inductor.
The process of harmonizing these impedances begins with a clear understanding of the input and output signals. Once these signals are known, the...
332
Line Protection with Impedance Relays01:27

Line Protection with Impedance Relays

64
Coordinating time-delay overcurrent relays in complex radial systems and directional overcurrent relays in multi-source transmission loops can be challenging. Impedance relays address these issues by responding to the voltage-to-current ratio, specifically measuring the apparent impedance of a line. These relays become more sensitive during faults as current increases and voltage decreases, thereby reducing the apparent impedance.
Under normal conditions, low load currents keep the measured...
64
Bus Impedance Matrix01:24

Bus Impedance Matrix

98
Calculating subtransient fault currents for three-phase faults in an N-bus power system involves using the positive-sequence network. When a three-phase short circuit occurs at a specific bus, the analysis uses the superposition method to evaluate two separate circuits.
In the first circuit, all machine voltage sources are short-circuited, leaving only the prefault voltage source at the fault location. The positive-sequence bus impedance matrix can be determined by solving the nodal equations,...
98
Series R—L Circuit Transients01:22

Series R—L Circuit Transients

81
In a series resistor-inductor (R-L) circuit, closing the switch at the start of the time period simulates a three-phase short circuit, a fault condition where all three phases of an unloaded synchronous machine are short-circuited. When there is no fault impedance and no initial current, the initial voltage is determined by the phase angle of the source voltage.
Using Kirchhoff's Voltage Law (KVL) to analyze this circuit helps determine the total asymmetrical fault current, which consists...
81
RLC Series Circuits: Impedance01:29

RLC Series Circuits: Impedance

2.1K
When current flow is opposed in a DC or AC circuit, it is referred to as resistance or impedance, respectively. Impedance plays a key role in determining the performance of AC circuits. It is represented by Z, which is a combination of resistance and reactance, and depends upon the angular frequency, measured in ohms.
Thus, the magnitude of the impedance is given by the following equation,
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Author Spotlight: Advancements in Impedance Monitoring for Cochlear Implant Surgery
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适应性阻抗与故障匹配通过无线电源传输进行植入医疗器械的传输.

Han Wu, Yufei Cai, Haolun Wu

    Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference
    |March 5, 2025
    PubMed
    概括

    这项研究引入了无线植入式医疗器械 (IMD) 的自适应匹配网络. 它通过自动调整环境变化来确保最佳的功率供应,从而提高设备的可靠性.

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    Construction of a Wireless-Enabled Endoscopically Implantable Sensor for pH Monitoring with Zero-Bias Schottky Diode-based Receiver
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    科学领域:

    • 生物医学工程 生物医学工程
    • 电气工程 电气工程
    • 可以植入的医疗器械

    背景情况:

    • 植入式医疗器械 (IMD) 在医疗保健中至关重要.
    • 无线电力传输是微型神经元接口IMD的关键.
    • 现有的匹配网络 (MNs) 缺乏适应环境和参数变化的能力.

    研究的目的:

    • 为无线IMD开发一个基于算法的自适应匹配网络 (MN).
    • 通过自动跟踪最大纠正电压来提高系统的效率和可靠性.
    • 为保护芯片集成一个活性电压限制器.

    主要方法:

    • 为无线IMDs提出了一个基于自适应算法的MN.
    • 在MN中集成了一个主动电压限制器.
    • 使用TSMC 65nm技术实现了该系统的测试.

    主要成果:

    • 适应式MN成功跟踪最大纠正电压,尽管±15%的感应率和±10%的频率波动在500MHz.
    • 集成的活性电压限制器有效地拒绝了多余的功率,保护了芯片.
    • 该系统证明了能够为以前无法使用的系统提供动力.

    结论:

    • 开发的自适应型MN显著提高了无线IMD的性能和可靠性.
    • 活动电压限制器提供了一个新的芯片保护机制.
    • 这种适应性方法适用于除了神经刺激之外的各种IMD.