• Title/Summary/Keyword: 전기 동력

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Technology Development on Plug-in Hybrid Electric Vehicle (플러그인 하이브리드카(PHEV) 기술개발 동향)

  • Chun, H.W.
    • Electronics and Telecommunications Trends
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    • v.27 no.6
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    • pp.155-164
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    • 2012
  • 플러그인 하이브리드카(Plug-in Hybrid Electric Vehicle: PHEV)는 가정이나 건물의 전기를 이용하여 외부에서 충전한 배터리의 전기동력으로 주행하다가 배터리 방전 시 일반 하이브리드카처럼 내연기관 엔진과 배터리의 전기동력을 동시에 사용하여 운행하는 자동차이다. 자동차 업체들은 전기자동차 보급에 가장 큰 걸림돌인 높은 배터리 가격이 낮아진다고 해도 짧은 주행거리 문제가 해결되지 않기 때문에, 대안으로 전원을 직접 연결해 배터리를 충전할 수 있는 플러그인 하이브리드카 개발에 주력하고 있다.

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Design Specification of Electric Powertrain for Fuel Cell Electric Vehicles Optimized for Fuel Efficiency (연비효율 향상을 위한 연료전지 전기자동차 구동용 견인전동기 설계특성)

  • Kim, Min-Seok;Lee, Cheol-Gyun;Hahn, Sung-Chin;Jung, Sang-Young
    • Proceedings of the KIEE Conference
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    • 2007.10c
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    • pp.34-35
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    • 2007
  • 본 논문에서는 연료전지 전기자동차(Fuel Cell Electric Vehicle)의 동력성능을 만족하면서 연비효율 향상을 목적으로 하는 견인전동기 시스템의 설계특성에 대하여 살펴본다. 특히, 차량의 요구 동력성능을 만족하는 견인전동기의 동력 설계사양 정의 및 표준운전모드를 적용한 실운전 조건에서의 연비효율 향상을 목표로 하는 견인전동기의 효율 설계사양 정의를 나타낸다.

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Effect of the Design Parameters Change on the Hybrid Dynamometer Braking Performance (혼성동력계에서 주요 설계변수가 제동성능에 미치는 효과분석)

  • Lee, Jong-Hoon;Hwang, Jai-Hyuk;Jeong, Min-Ji;Kwon, Jun-Yong
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.44 no.11
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    • pp.981-988
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    • 2016
  • Dynamometer is a device for testing the performance of the brake and it is composed of a test zone, the mechanical inertia zone, the electric motor and the control zone. Hybrid dynamometer is a way to compensate for the loss of mechanical inertia in accordance with the brake operation by using an electric motor to reduce the size of the mechanical inertia with the advantage that can be tested in the relatively small size of the mechanical inertia and low cost. In this paper, design the proper size of hybrid dynamometer in the laboratory level with the space constraints, analysed the effect of critical parameter on the braking performance of hybrid dynamometer such as changing the friction coefficient. With this study, could get the results of guideline to judge the poor friction material by measuring the torque of the electric motor to compensate the energy loss due to a reduced mechanical inertia.

A Study on Hybrid Power Generation System for Hour-Flight Drone (시간체공 드론 적용을 위한 하이브리드 동력시스템 연구)

  • Myung-Wook Choi;Seung-Jin Yang;Jung-Min Lim;Chae-Joo Moon
    • The Journal of the Korea institute of electronic communication sciences
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    • v.18 no.2
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    • pp.269-276
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    • 2023
  • In this research works, we propose a hybrid power generation system for drone capable of staying in the air for more than 1 hour. This power system converts the alternating current generated by the generator into direct current through a diode bridge circuit to charge the battery and uses a battery system having separated cells to obtain high controllability of the power system. The fuel efficiency and the power output for individual load were analyzed, and also the performance of a selected generator was studied in this paper. The drone which is equipped with the proposed hybrid power generation system calculated 0.82 ratio for weight vs power output, and flight time of drone showed 4,179 seconds.

Improvement of Thermal Efficiency using Atkinson Cycle in a High-Compression Ratio, Spark-Ignition, Natural Gas Engine for Power Generation (고압축비 전기점화 천연가스 발전용 엔진에서 앳킨슨 사이클 적용을 통한 열효율 향상)

  • Junsun Lee;Hyunwook Park;Seungmook Oh;Changup Kim;Yonggyu Lee;Kernyong Kang
    • Journal of ILASS-Korea
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    • v.28 no.2
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    • pp.55-61
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    • 2023
  • Natural gas is a high-octane fuel that is effective in controlling knocking combustion. In addition, as a low-carbon fuel with a high hydrogen-carbon ratio, it emits less carbon dioxide and almost no particulate matter compared to conventional fossil fuels. Stoichiometric combustion engines equipped with a three-way catalyst are useful in various fields such as transportation and power generation because of their excellent exhaust emission reduction performance. However, stoichiometric combustion engines have a disadvantage of lower thermal efficiency compared to lean combustion engines. In this study, a combination of high compression ratio and Atkinson cycle was implemented in a 11 liter, 6-cylinder, spark-ignition engine to improve the thermal efficiency of the stoichiometric engine. As a result, pumping and friction losses were reduced and the operating range was extended with optimized Atkinson camshaft. Based on the exhaust gas limit temperature of 730℃, the maximum load and thermal efficiency were improved to BMEP 0.66 MPa and BTE 35.7% respectively.