Robust Non-Matrix Based Power Flow Algorithm for Solving Integrated Transmission and Distribution Systems

This work presents an alternative approach to power system computations, Graph Trace Analysis (GTA), and applies GTA to the power flow problem. A novel power flow algorithm is presented, where GTA traces are used to implement a modified Gauss-Seidel algorithm coupled with a continuation method. GTA...

Full description

Bibliographic Details
Main Author: Tbaileh, Ahmad Anan
Other Authors: Electrical Engineering
Format: Others
Published: Virginia Tech 2019
Subjects:
Online Access:http://hdl.handle.net/10919/89362
id ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-89362
record_format oai_dc
spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-893622020-09-29T05:31:51Z Robust Non-Matrix Based Power Flow Algorithm for Solving Integrated Transmission and Distribution Systems Tbaileh, Ahmad Anan Electrical Engineering Broadwater, Robert P. Rahman, Saifur Centeno, Virgilio A. Ravindran, Binoy Beattie, Christopher A. Distributed Computation Graph Trace Analysis Integrated T Load Flow Voltage Stability This work presents an alternative approach to power system computations, Graph Trace Analysis (GTA), and applies GTA to the power flow problem. A novel power flow algorithm is presented, where GTA traces are used to implement a modified Gauss-Seidel algorithm coupled with a continuation method. GTA is derived from the Generic Programming Paradigm of computer science. It uses topology iterators to move through components in a model and perform calculations. Two advantages that GTA brings are the separation of system equations from component equations and the ability to distribute calculations across processors. The implementation of KVL and KCL in GTA is described. The GTA based power flow algorithm is shown to solve IEEE standard transmission models, IEEE standard distribution models, and integrated transmission and distribution models (hybrid models) constructed from modifying IEEE standard models. The GTA power flow is shown to solve a set of robustness testing circuits, and solutions are compared with other power flow algorithms. This comparison illustrates convergence characteristics of different power flow algorithms in the presence of voltage stability concerns. It is also demonstrated that the GTA power flow solves integrated transmission and distribution system models. Advantages that GTA power flow bring are the ability to solve realistic, complex circuit models that pose problems to many traditional algorithms; the ability to solve circuits that are operating far from nominal conditions; and the ability to solve transmission and distribution networks together in the same model. PHD 2019-05-04T06:00:32Z 2019-05-04T06:00:32Z 2017-11-09 Dissertation vt_gsexam:13071 http://hdl.handle.net/10919/89362 In Copyright http://rightsstatements.org/vocab/InC/1.0/ ETD application/pdf Virginia Tech
collection NDLTD
format Others
sources NDLTD
topic Distributed Computation
Graph Trace Analysis
Integrated T
Load Flow
Voltage Stability
spellingShingle Distributed Computation
Graph Trace Analysis
Integrated T
Load Flow
Voltage Stability
Tbaileh, Ahmad Anan
Robust Non-Matrix Based Power Flow Algorithm for Solving Integrated Transmission and Distribution Systems
description This work presents an alternative approach to power system computations, Graph Trace Analysis (GTA), and applies GTA to the power flow problem. A novel power flow algorithm is presented, where GTA traces are used to implement a modified Gauss-Seidel algorithm coupled with a continuation method. GTA is derived from the Generic Programming Paradigm of computer science. It uses topology iterators to move through components in a model and perform calculations. Two advantages that GTA brings are the separation of system equations from component equations and the ability to distribute calculations across processors. The implementation of KVL and KCL in GTA is described. The GTA based power flow algorithm is shown to solve IEEE standard transmission models, IEEE standard distribution models, and integrated transmission and distribution models (hybrid models) constructed from modifying IEEE standard models. The GTA power flow is shown to solve a set of robustness testing circuits, and solutions are compared with other power flow algorithms. This comparison illustrates convergence characteristics of different power flow algorithms in the presence of voltage stability concerns. It is also demonstrated that the GTA power flow solves integrated transmission and distribution system models. Advantages that GTA power flow bring are the ability to solve realistic, complex circuit models that pose problems to many traditional algorithms; the ability to solve circuits that are operating far from nominal conditions; and the ability to solve transmission and distribution networks together in the same model. === PHD
author2 Electrical Engineering
author_facet Electrical Engineering
Tbaileh, Ahmad Anan
author Tbaileh, Ahmad Anan
author_sort Tbaileh, Ahmad Anan
title Robust Non-Matrix Based Power Flow Algorithm for Solving Integrated Transmission and Distribution Systems
title_short Robust Non-Matrix Based Power Flow Algorithm for Solving Integrated Transmission and Distribution Systems
title_full Robust Non-Matrix Based Power Flow Algorithm for Solving Integrated Transmission and Distribution Systems
title_fullStr Robust Non-Matrix Based Power Flow Algorithm for Solving Integrated Transmission and Distribution Systems
title_full_unstemmed Robust Non-Matrix Based Power Flow Algorithm for Solving Integrated Transmission and Distribution Systems
title_sort robust non-matrix based power flow algorithm for solving integrated transmission and distribution systems
publisher Virginia Tech
publishDate 2019
url http://hdl.handle.net/10919/89362
work_keys_str_mv AT tbailehahmadanan robustnonmatrixbasedpowerflowalgorithmforsolvingintegratedtransmissionanddistributionsystems
_version_ 1719343612445065216