Optimization of Ampacity in High-Voltage Underground Cables with Thermal Backfill Using Dynamic PSO and Adaptive Strategies

Author:

Atoccsa Brayan A.1ORCID,Puma David W.2ORCID,Mendoza Daygord1ORCID,Urday Estefany3ORCID,Ronceros Cristhian3ORCID,Palma Modesto T.1ORCID

Affiliation:

1. Faculty of Mechanical Engineering, National University of Engineering, Lima 15333, Peru

2. Faculty of Electrical and Power Engineering, Technological University of Peru, Lima 15306, Peru

3. Faculty of Engineering, Private University San Juan Bautista, Ica 11004, Peru

Abstract

This article addresses challenges in the design of underground high-voltage transmission lines, focusing on thermal management and cable ampacity determination. It introduces an innovative proposal that adjusts the dimensions of the backfill to enhance ampacity, contrasting with the conventional approach of increasing the core cable’s cross-sectional area. The methodology employs a particle swarm optimization (PSO) technique with adaptive penalization and restart strategies, implemented in MATLAB for parameter autoadaptation. The article emphasizes more efficient solutions than traditional PSO, showcasing improved convergence and precise results (success probability of 66.1%). While traditional PSO is 81% faster, the proposed PSO stands out for its accuracy. The inclusion of thermal backfill results in an 18.45% increase in cable ampacity, considering variations in soil thermal resistivity, backfill properties, and ambient temperature. Additionally, a sensitivity analysis was conducted, revealing conservative values that support the proposal’s robustness. This approach emerges as a crucial tool for underground installation, contributing to continuous ampacity improvement and highlighting its impact on decision making in energy systems.

Funder

National Council of Science, Technology, and Technological Innovation

National University of Engineering

Publisher

MDPI AG

Reference61 articles.

1. Czapp, S., and Ratkowski, F. (2021). Optimization of thermal backfill configurations for desired high-voltage power cables ampacity. Energies, 14.

2. Anders, G.J. (2005). Rating of Electric Power Cables in Unfavorable Thermal Environment, Wiley.

3. (2006). Electric Cables—Calculation of the Current Rating—Part 1-1: Current Rating Equations (100% Load Factor) and Calculation of Losses—General (Standard No. IEC 60287-1-1). Tech. Rep.

4. (2006). Electric Cables—Calculation of the Current Rating, Part 2-1: Thermal Resistance—Calculation of Thermal Resistance (Standard No. IEC 60287-2-1).

5. The calculation or the temperature rise and load capability of cable systems;Neher;RATIO,1994

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