Abstract

The need of bridging the digital gap between underdeveloped/developed areas and promoting smart grid (SG) networks urges the deployment of broadband over power lines (BPL) systems and their further integration. The contribution of this paper is fourfold. First, based on the well-established hybrid model of (Lazaropoulos and Cottis 2009, 2010, Lazaropoulos, 2012) and the generic multidimensional network analysis tool presented in (Lazaropoulos 2012, Sartenaer 2004, Sartenaer and Delogne 2006, 2001) an exact multidimensional chain scattering matrix method, which is suitable for overhead high-voltage/broadband over power lines (HV/BPL) networks, is proposed and is evaluated against other theoretical and experimental proven models. Second, the proposed method investigates the overhead HV/BPL transmission grids (overhead 150 kV single-circuit, 275 kV double-circuit, and 400 kV double-circuit multiconductor structures) with regard to their end-to-end signal attenuation. It is found that the above features depend drastically on the overhead power grid type, the frequency, the MTL configuration, the physical properties of the cables used, the end-to-end distance, and the number, the length, and the terminations of the branches encountered along the end-to-end BPL signal propagation. Third, the impact of the multiplicity of the branches at the same junction in overhead HV grids is first examined. Based on the inherent long-branch structure and the quasi-static behavior of single/multiple branches with matched terminations of overhead HV grid, a simple approach suitable for overhead HV/BPL channel estimation is presented. Fourth, identifying the similar characteristics among different overhead HV/BPL configurations, an additional step towards the common overhead HV/BPL analysis is demonstrated; the entire overhead HV/BPL grid may be examined under a common PHY framework regardless of the overhead HV/BPL grid type examined. Finally, apart from the presentation of broadband transmission potential of the entire overhead transmission power grid, a consequence of this paper is that it helps towards: (i) the better broadband monitoring and management of overhead HV transmission power grids in an interactive SG network; and (ii) the intraoperability/interoperability of overhead HV/BPL systems under the aegis of a unified transmission/distribution SG power network.

Highlights

  • Due to ubiquitous nature of the transmission and distribution power grids, the structure of these grids—that is, low-voltage (LV), medium-voltage (MV), and high-voltage (HV) grids—is the key to developing an IP-based power system, offering a plethora of potential smart grid (SG) applications [1,2,3,4,5]

  • The simulations of various overhead HV/broadband over power lines (BPL) transmission channels aim at investigating: (a) the validity and performance of the proposed TM2 method against other already theoretically and experimentally validated methods; (b) the broadband transmission characteristics of overhead high-voltage/broadband over power lines (HV/BPL) channels and how these are affected by the overhead grid features, such as the type/topology of the overhead power grid and the multiplicity of branches; (c) the common BPL/PHY handling potential between different types of overhead transmission power grid

  • The following discussion will focus on the transmission characteristics related to the CMXV and to the DMXV s of the overhead BPL systems, as well

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Summary

Introduction

Due to ubiquitous nature of the transmission and distribution power grids, the structure of these grids—that is, low-voltage (LV), medium-voltage (MV), and high-voltage (HV) grids—is the key to developing an IP-based power system, offering a plethora of potential smart grid (SG) applications [1,2,3,4,5]. Through the exhaustive comparative analysis of a great number of overhead transmission power grid numerical results, the common nature of overhead HV/BPL systems is disclosed resulting in a common PHY framework as it concerns the BPL signal transmission through their power lines Combining these special BPL signal transmission characteristics with the quasi-static spectral behavior of single/multiple branches with matched terminations, a simplified channel modeling approach suitable for overhead HV/BPL networks is proposed.

Overhead HV Transmission Power Networks
MTL Theory and EVD Modal Analysis
Evaluation of the End-to-End EVD Modal Transfer Functions
Numerical Results and Discussion
Conclusions
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