• 제목/요약/키워드: Load Power Factor

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VAR 시스템에 의한 3 상 불평형 부하의 무효전력 보상에 관한 연구 (A STUDY ON THE REACTIVE POWER COMPENSATION OF THREE PHASE UNBALANCED LOAD FOR VAR SYSTEM)

  • 정연택;서영수;김영봉;김한수;이봉주
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1989년도 하계종합학술대회 논문집
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    • pp.531-534
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    • 1989
  • In this paper, the way that input voltage and input line current as a control variable is provided as one unit is projected. Till no, have denied with three phase balanced load. But, in that case, total power factor compensation is difficult, for to control each phase at unbalanced load. Therefor, in this paper suggest of the scheme that three phase unbalanced load is controlled by each phase and input total power factor is compensated unit input factor. therefore, in this paper suggest that three phase unbalanced load is controlled and the method in compensation of unit input factor to be attended by unbalanced load. Besides, the object of control is calculating quantity for input voltage and input line current for the point at issuse make to improve of control method at unbalanced load. As a result, control system of each phase could maintain as a unit input total power factor has been state diviation error of 2% with unbalanced load.

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부하변동에 속응하는 역률개선형 전력절감시스템 (Electric energy saving system with high speed response to load variation using power-factor correction)

  • 김태수;강형식;주경돈;류승헌;구경완;한상옥
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2002년도 하계학술대회 논문집 D
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    • pp.2388-2390
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    • 2002
  • Small type electric energy saving system is proposed in this paper. The system improves power factor fastly according to load variation of each customer. Phases of voltage and current are detected as 1[ms] unit. Phase coincident algorithm is applied for power factor improvement. Capacitance is controlled for optimal power factor correction. Series reactor is controlled for harmonics reduction. Non-contact device is used for fast response and long life. Test result shows the effect of this system. Power factor of 40[W] electric fan is improved from 95[%] to 100[%]. In the case of electric light, power factor is improved from 82[%] to 100[%]. Response time for load variation is less than 1[ms].

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고조파 전류원에 의한 콘덴서 임피던스 특성 해석 (Analysis of Impedance Performance for Condenser by Harmonic Current Source)

  • 김종겸;박영진
    • 조명전기설비학회논문지
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    • 제25권4호
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    • pp.57-64
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    • 2011
  • Most of the user has been used linear load and non-linear load. The former is usually inductive load which is needed power factor compensation, the latter is power conversion system device. Actually two kinds of load is used together in the customer application. Generally capacitor is used for power-factor compensation of inductive load and reduction harmonics of non linear load with reactor. Non-linear load generates harmonic current for its energy conversion process. If harmonic current pass along the low impedance side of distribution system, the magnification of voltage and current is appeared by the series and parallel resonance. As a result, condenser has received a bitter electrical stress by the harmonic component. In this paper, we analyzed that how resonance is changed by the 5-th harmonic current pattern and proposed an alternative plan for non-magnification.

농작업에 따른 78 kW급 농업용 트랙터 엔진 부하율 분석 (Analysis of Engine Load Factor for a 78 kW Class Agricultural Tractor According to Agricultural Operations)

  • 백승민;김완수;백승윤;전현호;이대현;김형권;김용주
    • 드라이브 ㆍ 컨트롤
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    • 제19권1호
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    • pp.16-25
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    • 2022
  • The purpose of this study was to calculate and analyze the engine load factor of major agricultural operations using a 78 kW class agricultural tractor for estimating the emission of air pollutants and greenhouse. Engine load data were collected using controller area network (CAN) communication. Main agricultural operations were selected as plow tillage (PT), rotary tillage (RT), baler operation (BO), loader operation (LO), driving on soil (DS), and driving on concrete (DC). The engine power was calculated using the measured engine load data. A weight factor was applied to load factor for considering usage ratio according to agricultural operations. Weight factors for different agricultural operations were calculated to be 27.4%, 32.9%, 17.5%, 7.7%, 4.5%, and 10.0% for PT, RT, BO, LO, DS, and DC, respectively. As a result of the field test, load factors were 0.74, 0.93, 0.41, 0.23, 0.27, and 0.21 for PT, RT, BO, LO, DS, and DC, respectively. The engine load factor was the highest for RT. Finally, as a result of applying the weight factor for usage ratio of agricultural operations, the integrated engine load factor was estimated to be 0.63, which was about 1.31 times higher than the conventional applied load factor of 0.48. In future studies, we plan to analyze the engine load factor by considering various horsepower and working conditions of the tractor.

Optimal Calculation Method of Distribution Loss in Distribution Systems

  • Rho Dae-Seok
    • KIEE International Transactions on Power Engineering
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    • 제5A권2호
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    • pp.109-115
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    • 2005
  • Recently, the needs and concerns regarding power loss have been increasing according to energy conservation at the level of the national policies and the business strategies of power utilities. In particular, the issue of power loss is the main factor for determining rates for electrical consumption in the deregulation of the electrical industry. However, because of the lack of management for power loss load factors (LLF) it is difficult to make a calculation for power loss and to make a decision concerning the electric rates. Furthermore, loss factor (k-factor) in Korea, which is of primary significance in the calculation of distribution power loss, has been used as a fixed value of 0.32 since the fiscal year 1973. Therefore, this study presents the statistical calculation methods of the loss factors classified by load types and seasons by using the practical data of 65 primary feeders that have been selected by appropriate procedures. Based on the above, the algorithms and methods, as well as the optimal method of the distribution loss management classified by facilities such as primary feeders, distribution transformers and secondary feeders is presented. The simulation results demonstrate the effectiveness and usefulness of the proposed methods.

건축물의 비상전원 적용실태 및 자가발전설비의 안전 운전 모델에 관한 연구 (Analysis on Emergency Power Supplies in Buildings and a Model for Safe Operation of the Emergency Power System)

  • 이원강;최충석
    • 한국안전학회지
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    • 제27권3호
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    • pp.49-56
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    • 2012
  • The purpose of this paper is to present a model for operating an emergency power system(EPS) that can secure a sufficient power supply used in case of a fire by analyzing the status of power supplies for emergency and firefighting operations. Investigations on the one of the causes of the operational failure of firefighting systems show evidence of EPS. Generally, when power to a building is interrupted, EPS supplies the emergency load(excepted firefighting load) first. When a power outage and a fire occur simultaneously, the EPS must be able to supply both the emergency load and the firefighting load, especially the firefighting load to the end. However, in order to save construction costs, emergency power generators in apartment, commercial, and business buildings can satisfy only one of the required loads. In cases like this, when a power outage and a fire occur simultaneously, there is a danger of firefighting equipment not operating due to insufficient power supply from the emergency generator. Therefore, an EPS must have a reserved firefighting power that can supply both the firefighting and the emergency load. Such EPS, when faced with a danger of an overload, will shut down the supply to all or part of the emergency load, thus securing a continuous power supply to the firefighting equipment. The generator power system with reserved firefighting power (RFP) will also have an indicator to show that the selective control is being used. General power generation systems for emergency load and firefighting load were found to have a demand factor of 50-60% with a lump. However, when installing an EPS, the builders must choose the higher demand factor suggested according to the official approval demand factor of the building.

Fuzzy Power Factor Control Systems

  • Cho, Seong-Won;Kim, Jae-Min;Jung, Jae-Yoon;Lim, Cheol-Su
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • 제4권1호
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    • pp.45-49
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    • 2004
  • A method for obtaining the power energy with high quality is to keep the power factor for a load as close to unity as feasible. In this paper, we present a new method to improve the power factor for a load. The proposed method uses fuzzy control techniques in order to determine how many parallel capacitors are to be connected to the load for the correction of the power factor.

부하 역률을 고려한 직접부하제어 실행시 계통의 민감도 분석 (Sensitivity Analysis of the Power System Considering the Load Power Factor While using Direct Load Control)

  • 추성호;이주원;채명석;박종배;신중린
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2008년도 제39회 하계학술대회
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    • pp.235-236
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    • 2008
  • Recently, the power load is growing larger and because of the environmental limitation of generation, the expansion of generation facilities are becoming more difficult. For that reason the importance of the demand-side resources come to be higher. One method of the demand-side resource, the DLC Program, has executed, and moreover, the loads which are available to be controlled are increasing. It should be considered of some kinds of power system components such as DLCs, because the fact that using the demand resources will be an important part of the power system. This paper considers the power factor of the load-bus which is shedded in the direct load control program. and then analyze the power system using flow sensitivity and voltage sensitivity. In this paper, we assumed two scenarios through the rank of the load power factor at each bus and to compare and evaluate each case, we used Power World for the simulation.

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Design of an Asymmetrical Three-phase Inverter for Load Balancing and Power Factor Correction Based on Power Analysis

  • Mokhtari, M.;Golshannavaz, S.;Nazarpour, D.;Aminifar, F.
    • Journal of Electrical Engineering and Technology
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    • 제6권3호
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    • pp.293-301
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    • 2011
  • This paper presents a novel theoretical method based on power analysis to obtain voltage reference values for an inverter-based compensator. This type of compensator, which is installed in parallel with the load, is usually referred to as the active filter. The proposed method is tailored to design the compensator in such a way that it can simultaneously balance the asymmetric load, as well as correct the power factor of the supply side. For clarity, a static compensator is first considered and a recursive algorithm is utilized to calculate the reactance values. The algorithm is then extended to calculate voltage reference values when the compensator is inverter based. It is evident that the compensator would be asymmetric since the load is unbalanced. The salient feature associated with the proposed method is that the circuit representation of system load is not required and that the load is recognized just by its active and reactive consumptions. Hence, the type and connection of load do not matter. The validity and performance of the new approach are analyzed via a numerical example, and the obtained results are thoroughly discussed.

전압제어형 능동전력필터를 이용한 비선형부하의 고조파저감 및 역류개선 (Using Voltage Control Active Power Filter, Power Factor Improvement and Harmonics Reduction for Nonlinear Load)

  • 김병진;문학룡;송양희;임병국;전희종
    • 전력전자학회논문지
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    • 제5권4호
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    • pp.403-408
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    • 2000
  • 본 논문애서는 비선형부하에서 발생하는 고조파 문제와 역률 저하 문제의 해결을 위한 능동필터를 제연하었다. 인버터와 수동필터로 구성된 능동전력필터 비선형부하에 병렬로 위치하고 전압제어방식으로 동작된다. 제안된 전압제어방식은 기존의 전류제어행 방식에 비해 입럭전압 변동에 강인한 특성을 갖는다. 능통전력필터의 작용으로 부하에 필요한 유효전력은 상용전원에서 공급되며 능동진력필터는 무효전력을 공급하에 입력 역률을 개선하­였다. 또한 부하전압을 정현적으로 유지함ㅇ 따라서 부하전압, 입럭전류 고조파 성분이 저감되있다. 본 논문에서 전압제어용 제어기의 구조를 딘순화하여 전체 시스템의 안정성을 높였다. 다수의 시뮬레이션과 실제 실험을 통하여 제안된 제안된 방식의 타당성을 검증하였다.

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