• Title/Summary/Keyword: DC Bus Conditioner

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Current Sensorless Control of the Voltage Bus Conditioner for a DC Power System with Parallel Pulsed Power Loads (병렬 펄스 부하를 갖는 직류 전력시스템을 위한 Voltage Bus Conditioner의 전류 센서 없는 제어)

  • Lee, Byung-Hun;Chang, Han-Sol;La, Jae-Du;Kim, Young-Seok
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.61 no.11
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    • pp.1617-1624
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    • 2012
  • A DC power system has many loads with varied functions. Also, there may be large pulsed loads with short duty ratios which can affect the normal operation of other loads. In this paper, Voltage Bus Conditioner(VBC) without any current sensors is proposed to damp the bus voltage transients by parallel pulsed loads. The proposed control approach requires only one voltage sensor and carries out both the functions of damping the bus voltage transients and maintaining the level of energy stored. The proposed control technique has been implemented on a TMS320F2812 Digital Signal Processor(DSP). Simulated results by a Matlab Simulink and experimental results are presented which verify the control principles and demonstrate the practicalty of the approach.

A Variable Hysteresis Control for a DC Bus Conditioner (DC Bus Conditioner을 위한 카변히스테리시스제어)

  • La, Jae-Du;Han, Moon-Seob
    • Proceedings of the KIEE Conference
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    • 2008.11a
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    • pp.472-475
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    • 2008
  • A DC distributed power system(DPS) has many loads with varied functions. In particular, there may be large pulsed toads with short duty ratio, which can affect the normal operation of other loads. In this paper, a bi-directional converts with inductive storage is used as a DC bus conditioner to damp voltage transients on the bus. In addition, the constant frequency hysteresis control technique for a DC bus conditioner is presented. A simple and fast prediction of the hysteresis band-width is implemented by the phase-lock loop control, keeping constant switching frequency. This technique offers the excellent dynamic response in load or parameter variation. The control performance is illustrated by simulated results with the SABER package. The proposed hysteresis control results in the shortest and the smallest excursions.

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The design of the Sliding Mode Controller of Voltage Bus Conditioner for a DC Power Distribution System with multiple parallel loads in the Electrical Vehicles (다중 병렬 부하를 갖는 전기 자동차의 DC 배전 시스템을 위한 Voltage Bus Conditioner의 슬라이딩 모드 제어기 설계)

  • Chang, Han-Sol;Jeon, Yong-Sung;La, Jae-Du;Kim, Young-Jo;Kim, Young-Seok
    • Proceedings of the KIEE Conference
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    • 2011.07a
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    • pp.1141-1142
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    • 2011
  • An electrical vehicle (EV) is a huge issue in the automotive industry. The EV have many electrical units: electric motors, batteries, converters, ets. The DC power distribution system (PDS) is essential for the EV. The DC PDS offers many advantages. However, multiple loads in the DC PDS may affect the severe instability on the DC bus voltage. Therefore, a voltage bus conditioner (VBC) may use the DC PDS. The VBC is used to mitigate the voltage transient on the bus. In this paper, sliding mode controller (SMC) is designed for the VBC of DC PDS in the EV. The simulation results by PISM simulation package are presented for validating the proposed control technique.

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The PI control of the Voltage Bus Conditioner for the improvement of the Power Quality in the DC Power Distribution System with multiple parallel loads (다중 병렬 부하를 가지는 DC 배전 시스템에서의 전력 품질 향상을 위한 Voltage Bus Conditioner의 PI 제어)

  • Lee, Byung-Hun;Woo, Hyun-Min;La, Jae-Du;Shin, Jae-Hwa;Kim, Young-Seok
    • Proceedings of the KIEE Conference
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    • 2011.07a
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    • pp.1234-1235
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    • 2011
  • A DC Power Distribution Systems(DC PDS) are widely used in telecommunication system, electric vehicle, aircraft, military system, etc. In the DC PDS, DC bus voltage instability may be occurred by the operation of multiple loads such as pulsed power load, motor drive system, and constant power loads. To damp the transients of the DC bus voltage, the Voltage Bus Conditioner(VBC) with the PI compensator is used. In this paper, the validity of the proposed VBC system is verified by PSIM simulation package.

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An improved adaptive control technique for the Voltage Bus Conditioner with parallel loads in the DC Power Distribution System (병렬 부하를 갖는 DC배전 시스템을 위한 Voltage Bus Conditioner의 향상된 적응제어)

  • Lee, Byung-Hun;Chang, Han-sol;La, Jae-Du;Kim, Young-Seok
    • Proceedings of the KIPE Conference
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    • 2011.11a
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    • pp.249-250
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    • 2011
  • In DC Power Distribution System(DC PDS), a bus voltage instability is occurred by multiple parallel loads. The Voltage Bus Conditioner(VBC) is used to mitigate the DC bus voltage transient. An adaptive controller of the VBC is designed and the simulation result of the controller is verified by PSIM simulation package for the proposed control technique.

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The Design of the PI Compensator for a Voltage Bus Conditioner in the DC Distributed Power System (DC 배전시스템에서 Voltage Bus Conditioner를 위한 PI 보상기 설계)

  • Kim, Young-Seok;Seok, Bong-Jun;La, Jae-Du
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.59 no.12
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    • pp.2195-2201
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    • 2010
  • The VBC(Voltage Bus Conditioner) is a bidirectional DC-DC converter with the energy storage for damping the instability and any transients of bus voltage in the DC DPS(Distributed Power System). This paper presents the PI(Proportional Integration) controller for the VBC. The PI controller is not only damping the bus transient, but also keeping the storage voltage level. Matlab Simulink simulation and experimental results are presented by validity of the proposed control technique.

The Comparison of Two Control Algorithm for a Voltage Bus Conditioner in a DC Power Distribution System (DC 전력시스템에서의 Voltage Bus Conditioner의 제어기법 비교)

  • La, Jae-Du;Lee, Yong-Geun
    • The Transactions of the Korean Institute of Electrical Engineers P
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    • v.55 no.1
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    • pp.47-53
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    • 2006
  • A Voltage Bus Conditioner (VBC) is used to mitigate the voltage transients on a common power distribution bus. The VBC described here utilises inductive storage and unlike its counter part with capacitive storage, it can employ the entire stored energy towards transients' mitigation. The performances of adaptive duty ratio control and sliding mode control have been compared. The simulation results (with the package SABER) indicate that the sliding mode control results in the shortest and the smallest bus voltage excursions.

The design of adaptive Controller for the Voltage Bus Conditioner for the improvement of the Power Quality in the DC Power Distribution System (DC 배전시스템의 품질향상을 위한 VBC 적응제어)

  • Woo, Hyun-Min;Lee, Byung-Hun;Chang, Han-Sol;La, Jae-Du;Kim, Young-Seok
    • Proceedings of the KSR Conference
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    • 2011.10a
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    • pp.2348-2356
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    • 2011
  • In recent years, many researches for DC power distributed system (PDS) are being preformed and the importance of the DC PDS is more and more emphasized. Furthermore, in the railway system, the DC PDS is used in subway station lighting, facilities, etc. In the DC PDS, DC bus voltage instability may be occurred by the operation of multiple parallel loads such as pulsed power load, motor drive system, and constant power loads. Thus, good quality and high reliability for electric power are required and voltage bus conditioner (VBC) may be used the DC PDS. The VBC is a DC/DC converter for mitigation of the bus transients. In this paper, adaptive controller is designed. The simulation results by PSIM are presented for validating the proposed control algorithm.

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A Voltage Bus Conditioner for a High Voltage DC Power Distribution System using High Performance Hysteresis Control (고성능 히스테리 제어를 이용한 고전압 DC 전력시스템을 위한 Voltage Bus Conditioner)

  • La, Jae-Du
    • The Transactions of the Korean Institute of Electrical Engineers P
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    • v.56 no.2
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    • pp.90-98
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    • 2007
  • More and All-Electric Aircraft (AEA) carry many loads with varied functions. In particular, there may be large pulsed loads with short duty ratio, which can affect the normal operation of other loads. In this paper, a bi-directional converter with inductive storage is used as a voltage bus conditioner (VBC) to mitigate voltage transients on the bus. In addition, the constant frequency hysteresis control technique for a VBC is presented. A simple and fast prediction of the hysteresis band-width is implemented by the phase-lock loop control, keeping constant switching frequency. This technique offers the excellent dynamic response in load or parameter variation. The control performance is illustrated by simulated results with the SABER package, The proposed hysteresis control results in the shortest and the smallest excursions.

Control of the Subsystem for a Power System (전력시스템을 위한 서브시스템의 제어)

  • Lee, Yong-Geun
    • The Transactions of the Korean Institute of Electrical Engineers P
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    • v.58 no.4
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    • pp.404-409
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    • 2009
  • A DC power system has many loads with various functions. In particular, these sizable loads take the form of power electronic converters. When they are tightly regulated, the loads appear as constant power loads and result in negative incremental input impedance. Under certain conditions the effect of such loads on the power system is causes instability. In this paper, converter with a large storage capacitor and a lag compensator is proposed as a DC bus conditioner to mitigate the voltage transients on the bus. In addition, the proposed control approach has the advantage of performing both the functions of mitigating the voltage bus transients and maintaining the level of energy stored. Simulation and experimental results showed that the proposed control method was operated well in a small-scale DC power system that contained subsystems with constant power characteristics, such as DC/DC converters and electrical drives.