Determination of Transmission Line Power Transfer Capabilities Using Temperature Dependent Continuation Power Flow

Author(s):  
Mahbubur Rahman ◽  
Christoph Braun ◽  
Valentina Cecchi
2002 ◽  
Vol 22 (8) ◽  
pp. 67-67
Author(s):  
H. Song ◽  
B. Lee ◽  
S. Kim ◽  
S. Kwon ◽  
J. Kim ◽  
...  

2021 ◽  
Vol 7 (3) ◽  
pp. 157-187
Author(s):  
Slobodan Babic ◽  
Cevdet Akyel

In this paper we give the new improved analytical method of triple stub tuner for matching the load impedances to provide the maximum power transfer between a generator and a load. The stubs are connected in parallel with the line at the appropriate distances from the load. The characteristic impedances of the transmission line and the stabs are different. The paper points on the determination of the length for the first stub near the load. The limit lengths for the first and the second stub are found for which the matching is possible. The length of the third stub is directly obtained from the matching conditions. Even though there is not the unique solution for the triple stub matching we also shoved the existence of unique solutions under some conditions. The special cases are also treated. The results of this method are verified by those obtained using the Smith chart and there are in exceptionally good agreement. Even though there are not many papers on this subject this work could be useful for engineers, and physicist which work in this domain.


Teknik ◽  
2020 ◽  
Vol 41 (3) ◽  
pp. 212-218
Author(s):  
Radiktyo Nindyo Sumarno ◽  
Susatyo Handoko ◽  
Mochammad Facta

One way to optimize the transmission line is to reduce electrical power losses. Tap changers on power transformers and bank capacitors can be used to regulate the system voltage resulting in lower power losses in the transmission line. Determining the value of tap settings and bank capacitors in the planning process is challenging to do with certainty. It is generally carried out through a trial and error mechanism using the power flow method. Since the determination of tap settings and bank capacitors values is difficult to do with certainty, this research was carried out with optimization with the shark smell algorithm. Such optimization aims to get a more appropriate tap changer and capacitor bank change values on the IEEE 30-bus system. In this study, several optimizations were carried out, namely optimization of tap settings, optimization of bank capacitors, and tap setting optimization combined with bank capacitors' optimization. Conducting tap setting optimization, we obtained an active power loss of 0.65% from the condition without optimization. In optimizing bank capacitors, we reduce active power losses of 0.90% compared to conditions without optimization. In optimizing the combination of tap setting and bank capacitors, the active power losses are reduced by 1.23%. Comparing the results of all these optimizations shows that the combination of bank tap setting and capacitor optimization is obtained by reducing the most active power losses. In this study, the reduction of active power losses resulted in 217.2 kW. The results show that the Shark Smell algorithm can provide better optimization results of 1.23% compared to conditions without optimization based on the test value.


2013 ◽  
Vol 1 (3) ◽  
Author(s):  
Jaka Wibawa ◽  
Lukmanul Hakim

Suatu sistem interkoneksi memungkinkan suatu wilayah yang kekurangan energi listrik akan dapat terpenuhikebutuhannya dari pasokan energi listrik yang dikirimkan oleh wilayah dengan daya pembangkitan berlebih.Pengiriman daya pada sistem interkoneksi secara kontinu dengan baik memerlukan suatu sistem yang handal.Proses transfer daya antar wilayah pada sistem interkoneksi agar dapat terpenuhi dengan baik maka memerlukansuatu perencanaan dan studi tentang pengaruh perubahan beban pada sistem dengan tetap menjaga batastoleransi nilai tegangan dalam kondisi yang masih diizinkan dalam pengiriman daya.Metode yang digunakan untuk menyelesaikan aliran daya pada tugas akhir ini menggunakan solusi ContinuationPower Flow (CPF) pada toolbox PSAT 2.1.6 Matlab dengan langkah prediksi dan koreksi untuk kenaikan(faktor pengali kenaikan beban). Untuk skenario simulasi program, dipilih dengan menambahkan beban sebesarper10 MW di setiap beban baik saat luar waktu beban puncak (LWBP) maupun saat waktu beban puncak (WBP)pada sistem Lampung. Transfer daya maksimum saat LWBP dan WBP terjadi pada penambahan beban sebesar140 MW dengan nilai daya terbesar terdapat pada saluran yang menghubungkan Baturaja-Bukit Kemuning (51-53) sebesar 336,6633 MW (LWBP) dan 324,4741 MW (WBP).Kata kunci : Interkoneksi, Transfer daya, Continuation Power Flow (CPF) An interconnection system allows a region with lack of electricity supplied by the region with excess power.Power distribution on continue interconnection system in good condition requires a reliable system. The processof power transfer between regions in order to interconnect the system met with both the planning and requires astudy of the effect of changes in the load on the system while maintaining the tolerance limit voltage value in acondition that is still allowed in the delivery of power.The method used to solve power flow in this paper using the solution from Continuation Power Flow (CPF) onPSAT 2.1.6 Matlab toolbox with prediction and correction steps to determine the increase in λ (multiplier factorincrease in load). For the scenario simulation program, adding a load of 10 MW in each load at beyond the timewhen the peak load (Luar Waktu Beban Puncak/LWBP) or during peak load time (Waktu Beban Puncak/WBP)in Lampung system. Maximum power transfer occurs when LWBP and WBP on additional load of 140 MWwith the largest value of the power contained in the channel that connects Baturaja-Bukit Kemuning (51-53) of336.6633 MW (LWBP) and 324.4741 MW (WBP).Key word : interconnection, power transfer, Continuation Power Flow (CPF)


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