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      KCI등재 SCIE SCOPUS

      Transmission Expansion and Reactive Power Planning Considering Wind Energy Investment Using A Linearized AC Model

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      https://www.riss.kr/link?id=A106183236

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      다국어 초록 (Multilingual Abstract)

      This paper presents an approximated AC model for simultaneous transmission expansion planning (TEP) and reactive power planning by considering wind power investment. Since the full AC-TEP problem is still challenging to solve due to its nonconvexity, ...

      This paper presents an approximated AC model for simultaneous transmission expansion planning (TEP) and reactive power planning by considering wind power investment. Since the full AC-TEP problem is still challenging to solve due to its nonconvexity, a linearized model, by means of special ordered set of type 2, is used to represent the mathematical model of the network. The objective function of our problem is considered to be the annualized investment cost of transmission lines, reactive power resources and wind power plants as well as the operation cost of production of electricity and reactive power resources. Wind and load uncertainties are handled by scenario generation. The K-means clustering technique is employed in order to reduce the number of scenarios. The presented work is applied to the 6-bus Garver’s power system, the 24-bus IEEE RTS and the 118-bus IEEE power system. These three diff erent examples illustrate the characteristics of the method.
      The results and the provided discussions clearly show the eff ectiveness and robustness as well as the computational effi ciency of the proposed stochastic co-planning framework.

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      참고문헌 (Reference)

      1 Asadamongkol S, "Transmission expansion planning with AC model based on generalized Benders decomposition" 47 : 402-407, 2013

      2 Mortaz E, "Transmission expansion planning using multivariate interpolation" 126 : 87-99, 2015

      3 Leite da Silva AM, "Transmission expansion planning optimization by adaptive multi-operator evolutionary algorithms" 133 : 173-181, 2016

      4 Orfanos GA, "Transmission expansion planning of systems with increasing wind power integration" 28 (28): 1355-1362, 2013

      5 Ugranli F, "Transmission expansion planning for wind turbine integrated power systems considering contingency" 31 (31): 1476-1485, 2016

      6 Alguacil N, "Transmission expansion planning : a mixed-integer LP approach" 18 (18): 1070-1077, 2003

      7 Baringo L, "Transmission and wind power investment" 27 (27): 885-893, 2012

      8 Domínguez R, "Toward fully renewable electric energy systems" 30 (30): 316-326, 2015

      9 IEEE Committee Report, "The IEEE reliability test system—1996" 14 (14): 1010-1020, 1999

      10 El-bages MS, "Social spider algorithm for solving the transmission expansion planning problem" 126 : 87-99, 2017

      1 Asadamongkol S, "Transmission expansion planning with AC model based on generalized Benders decomposition" 47 : 402-407, 2013

      2 Mortaz E, "Transmission expansion planning using multivariate interpolation" 126 : 87-99, 2015

      3 Leite da Silva AM, "Transmission expansion planning optimization by adaptive multi-operator evolutionary algorithms" 133 : 173-181, 2016

      4 Orfanos GA, "Transmission expansion planning of systems with increasing wind power integration" 28 (28): 1355-1362, 2013

      5 Ugranli F, "Transmission expansion planning for wind turbine integrated power systems considering contingency" 31 (31): 1476-1485, 2016

      6 Alguacil N, "Transmission expansion planning : a mixed-integer LP approach" 18 (18): 1070-1077, 2003

      7 Baringo L, "Transmission and wind power investment" 27 (27): 885-893, 2012

      8 Domínguez R, "Toward fully renewable electric energy systems" 30 (30): 316-326, 2015

      9 IEEE Committee Report, "The IEEE reliability test system—1996" 14 (14): 1010-1020, 1999

      10 El-bages MS, "Social spider algorithm for solving the transmission expansion planning problem" 126 : 87-99, 2017

      11 Yin X, "Sliding mode voltage control strategy for capturing maximum wind energy based on fuzzy logic control" 70 : 45-51, 2015

      12 Akbari T, "Securityconstrained transmission expansion planning : a stochastic multiobjective approach" 43 : 444-453, 2012

      13 Li J, "Robust coordinated transmission and generation expansion planning considering ramping requirements and construction periods" 33 (33): 268-280, 2016

      14 "Power systems test case archive"

      15 Sedghi M, "Optimal storage planning in active distribution network considering uncertainty of wind power distributed generation" 31 (31): 304-316, 2016

      16 Yin X, "Operating modes and control strategy for megawatt-scale hydro-viscous transmission-based continuously variable speed wind turbines" 6 (6): 1553-1564, 2015

      17 Hemmati R, "Market based transmission expansion and reactive power planning with consideration of wind and load uncertainties" 29 : 1-10, 2014

      18 Macedo LH, "MILP branch fl ow model for concurrent AC multistage transmission expansion and reactive power planning with security constraints" 10 (10): 3023-3032, 2016

      19 Zimmerman RD, "MATPOWER : steady-state operations, planning, and analysis tools for power systems research and education" 26 (26): 12-19, 2011

      20 Esteybar D, "Integrated operational planning of hydrothermal power and natural gas systems with large scale storages" 5 (5): 299-313, 2017

      21 "Generalized algebraic modeling systems (GAMS)"

      22 Torres SP, "Expansion planning for smart transmission grids using AC model and shunt compensation" 8 (8): 966-975, 2014

      23 Rahmani M, "Effi cient method for AC transmission network expansion planning" 80 (80): 1056-1064, 2010

      24 Baringo L, "Correlated wind-power production and electric load scenarios for investment decisions" 101 : 475-482, 2013

      25 Hemmati R, "Coordinated generation and transmission expansion planning in deregulated electricity market considering wind farms" 85 : 620-630, 2016

      26 Wang D, "Coordinated expansion coplanning of integrated gas and power systems" 5 : 314-325, 2017

      27 Hooshmand RA, "Combination of AC transmission expansion planning and reactive power planning in the restructured power system" 55 : 26-35, 2012

      28 Aguado JA, "Battery energy storage systems in transmission network expansion planning" 145 : 63-72, 2017

      29 Akbari T, "Approximated MILP model for AC transmission expansion planning : global solutions versus local solutions" 10 (10): 1563-1569, 2016

      30 Zhang H, "An improved network model for transmission expansion planning considering reactive power and network losses" 28 (28): 3471-3479, 2013

      31 Ji-Ying Shi, "Active Distribution System Planning Considering Battery Swapping Station for Low-carbon Objective using Immune Binary Firefly Algorithm" 대한전기학회 13 (13): 580-590, 2018

      32 Haijun Xing, "Active Distribution Network Expansion Planning Considering Distributed Generation Integration and Network Reconfiguration" 대한전기학회 13 (13): 540-549, 2018

      33 Yang J, "A state independent linear power fl ow model with accurate stimation of voltage magnitude" 32 (32): 3607-3617, 2017

      34 Maghouli P, "A multi-objective framework for transmission expansion planning in deregulated environments" 24 (24): 1051-1061, 2009

      35 Akbari T, "A linearized formulation of AC multi-year transmission expansion planning: a mixed-integer linear programming approach" 114 : 93-100, 2014

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      학술지등록 한글명 : Journal of Electrical Engineering & Technology(JEET)
      외국어명 : Journal of Electrical Engineering & Technology
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2011-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2009-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2006-01-01 평가 학술지 통합 (기타) KCI등재
      2006-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
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      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.45 0.21 0.39
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.37 0.34 0.372 0.04
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