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Consider a single-phase, two-wire, lossless transmission line terminated by an impedance at the receiving end and a source with Thevenin voltage and impedance at the sending end. The line, with length, has a surge impedance and wave velocity determined by the line's inductance and capacitance.
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Aluminum has become the material of choice for overhead transmission lines, surpassing copper due to its abundance and cost-effectiveness. The most prevalent type is the aluminum conductor, steel-reinforced (ACSR), which combines aluminum strands around a steel core. Other variants include all-aluminum conductors (AAC), all-aluminum alloy conductors (AAAC), aluminum conductor alloy-reinforced (ACAR), and aluminum-clad steel conductors. Advanced designs, such as aluminum conductors with steel...
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The provided content explores the behavior of traveling waves on single-phase lossless transmission lines. It begins with a single-phase two-wire lossless transmission line of length Δx, characterized by a loop inductance LH/m and a line-to-line capacitance C F/m. These parameters result in a series inductance LΔx and a shunt capacitance CΔx.
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    This study investigates radio propagation for in-body sensors above 1 GHz, offering new path loss formulas for higher data rates. This research supports advanced biomedical telemetry and chronic disease management.

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    Area of Science:

    • Biomedical Engineering
    • Wireless Communications
    • Radio Frequency Engineering

    Background:

    • Biomedical implantable sensors are crucial for chronic disease management, typically operating below 1 GHz.
    • Lower frequencies offer reduced propagation loss but limited data rates due to narrow bandwidths.
    • Advanced sensors and actuators require higher data rate communication, necessitating exploration of higher frequencies.

    Purpose of the Study:

    • To evaluate radio propagation characteristics for in-body sensors in frequency bands above 1 GHz.
    • To investigate the feasibility of using the 2360-2400 MHz and 2400-2483.5 MHz bands for in-body communication.
    • To develop empirical path loss models for various in-body communication scenarios.

    Main Methods:

    • Utilized a phantom-based approach to simulate radio propagation through biological tissues.
    • Conducted propagation measurements for three scenarios: in-body to in-body, in-body to on-body, and in-body to off-body.
    • Analyzed data to derive path loss formulas for the studied frequency bands.

    Main Results:

    • Presented novel path loss formulas for in-body communication in the 2.36-2.48 GHz range.
    • Quantified radio propagation losses for different communication links (in-body to in-body, on-body, off-body).
    • Demonstrated the potential of higher frequency bands for increased data rates in medical sensing.

    Conclusions:

    • The study provides essential data for designing next-generation high-data-rate wireless in-body sensors.
    • The developed path loss models can guide the optimization of antenna design and system performance.
    • Findings support the consideration of spectrum above 1 GHz for advanced wearable and implantable medical devices.