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Related Concept Videos

Transmission Line Design Considerations01:23

Transmission Line Design Considerations

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...
Maximum Power Transfer01:16

Maximum Power Transfer

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...
Fast Decoupled and DC Powerflow01:24

Fast Decoupled and DC Powerflow

The fast decoupled power flow method addresses contingencies in power system operations, such as generator outages or transmission line failures. This method provides quick power flow solutions, essential for real-time system adjustments. Fast decoupled power flow algorithms simplify the Jacobian matrix by neglecting certain elements, leading to two sets of decoupled equations:
Maximum Power Flow and Line Loadability01:23

Maximum Power Flow and Line Loadability

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Propagation Speed of Electromagnetic Waves01:30

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Electromagnetic waves are consistent with Ampere's law. Assuming there is no conduction current Ampere's law is given as:

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Transmission of Multiple Signals through an Optical Fiber Using Wavefront Shaping
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Published on: March 20, 2017

Design methods for space-variant optical interconnections to achieve optimum power throughput.

D Zaleta, M Larsson, W Daschner

    Applied Optics
    |November 6, 2010
    PubMed
    Summary

    Space-variant optical systems offer high interconnect density but suffer significant diffraction losses. This study presents methods to minimize these losses in optical interconnects, validated by simulations and experiments.

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    Area of Science:

    • Optics
    • Optical Engineering
    • Photonics

    Background:

    • Space-variant optical systems enable flexible interconnect topologies and high component density.
    • Diffraction losses from small apertures in these systems can limit power throughput, irrespective of element efficiency.

    Purpose of the Study:

    • To present and compare space-variant optical interconnect design methods for minimizing diffraction losses.
    • To evaluate these designs for both one-to-one and fan-out interconnects.

    Main Methods:

    • Development of several space-variant optical interconnect design strategies.
    • Numerical simulations to assess power throughput for diffraction-limited distances.
    • Experimental validation of the proposed designs.

    Main Results:

    • Comparison of different design methods regarding their impact on power throughput.
    • Demonstration of methods to mitigate diffraction losses in space-variant optical interconnects.
    • Validation of simulation predictions through experimental results.

    Conclusions:

    • Diffraction losses are a critical factor in space-variant optical interconnect performance.
    • The presented design methods offer viable solutions for improving power throughput.
    • Minimizing diffraction losses is essential for efficient space-variant optical interconnects.