• 제목/요약/키워드: Ship energy efficiency

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IT기반의 선박에너지절감시스템 성능평가 방법-(2) : 해상시험 수행 결과 (Energy Efficiency Evaluation of IT based Ship Energy Saving System-(2) : Ship Test Results)

  • 유윤자
    • 한국항해항만학회지
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    • 제40권4호
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    • pp.165-171
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    • 2016
  • IMO에서는 선박온실가스 규제를 위해 2013년부터 현존선의 선박에너지효율관리계획인 SEEMP (Ship Energy Efficiency Management Plan)의 시행을 강제화하고 있다. SEEMP에서 권고하는 에너지절감기술 가이드라인은 크게 하드웨어적인 장비의 탑재 및 개조 또는 소프트웨어적인 기술을 통한 연료유 절감효과로 구분된다. 신조선의 경우 하드웨어적인 기술구현이 용이하지만 현존선의 경우 운항상 제약으로 인해 소프트웨어적인 에너지 절감기술 구현이 적용되고 있다. IT기반의 선박에너지절감 시스템 성능평가를 위해 해상시험을 수행하였고, 시스템 적용 전후의 항차데이터를 이용하여 연료유 절감효과를 비교 분석 하였다. 또한, SEEMP에서 자발적인 사용을 권고하고 있는 선박 경제운항 지표 (EEOI, Ship Energy Efficiency Operation Indicator) 분석을 통한 성능평가 결과를 제시하였다.

선박 에너지 효율 모니터링 시스템 설계 및 구현 (Design and Implementation of Ship Energy Efficiency Monitoring System)

  • 김용대;윤현규;강남선
    • 한국항행학회논문지
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    • 제20권5호
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    • pp.408-416
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    • 2016
  • 본 연구에서는 선내 수집데이터를 활용하는 선박 및 육상 서비스를 위한 선박용 어플리케이션 시스템과 해상 데이터 통합관리 및 상호교환을 위한 선육 간 통합 시스템을 활용한 선박 에너지효율 모니터링 시스템을 설계하였다. 선박 에너지효율 모니터링 시스템은 윈도우 기반의 응용프로그램으로 file base EDI 통신을 이용하도록 구성하였다. 주요기능으로 연료소모량 최소화를 위한 항로 계획, 에너지 소모 및 배출가스 배출 모니터링, 선박 에너지 효율 분석 및 분석데이터 분석을 구현하고 실 운항선박에 적용하여 시스템의 정상 동작을 확인하였다.

IT 기반의 선박에너지절감시스템 성능평가 방법-(1) : 육상시험 수행 결과 (Energy Efficiency Evaluation of IT based Ship Energy Saving System-(1) : Ship Handling Simulator Test Results)

  • 유윤자
    • 한국항해항만학회지
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    • 제39권6호
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    • pp.465-472
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    • 2015
  • 선박온실가스 규제를 위한 SEEMP (Ship Energy Efficiency Management Plan) 기술 중 선박에너지절감을 위한 조치는 하드웨어적인 장비를 선박에 탑재하여 구현하거나, 인적교육 및 운항패턴 개선 등과 같은 소프트웨어적인 방식으로 구현 가능하다. 선체저항개선을 위한 기술 중 하드웨어적인 장비 개조를 통해 구현되는 기술은 현존선에 적용하는데 장비의 규모 등에 의한 제약이 발생한다. 반면 소프트웨어적인 에너지절감기술의 구현은 저렴한 도입비용과 하드웨어적인 방식에 비해 높은 에너지 절감효과를 보이며, 선종에 크게 구애받지 않고 적용이 용이하다는 장점을 가지고 있어 IT 기술을 이용한 선박에너지절감기술이 요구되어지고 있다. 본 논문에서는 IT 기반의 선박에너지절감 기술을 검증하기 위하여 대표적인 3개 선종에 대한 실선 모델링 기반의 선박조종시뮬레이터를 이용한 육상시험을 수행하였다. 시뮬레이터를 이용한 성능검증 방법은 6개의 다양한 환경조건에서 에너지절감기술 적용 전후의 운항결과로부터 에너지절감효과를 비교 분석하고, 해상상태에 따른 구간별 비교결과를 통해 IT기반 에너지절감시스템의 성능평가를 수행하였다. 벌크, 컨테이너, VLCC 선종을 이용한 육상시험 결과 컨테이너선의 연료절감률이 가장 크게 나타났고, 육상시험 대상선박 모두 선박에너지절감시스템 사용전과 비교하여 연료절감효과를 보였다.

Real Time Monitoring of Energy Efficiency Operation Indicator on Merchant Ships

  • Barro, Ronald Dela Cruz;Kim, Jun-Seong;Lee, Don-Chool
    • Journal of Advanced Marine Engineering and Technology
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    • 제35권3호
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    • pp.301-308
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    • 2011
  • International Maritime Organization (IMO) proposed the Energy Efficiency Operation Indicator (EEOI) in 2005 and the Energy Efficiency Design Index (EEDI) in 2008 so as to address emission concern and regulation. Likewise, Ship Energy Efficiency Management Plan (SEEMP) and Greenhouse Gas (GHG) monitoring and management are also becoming an issue lately. This paper introduces the energy efficiency design index (operation indicator) monitoring system (EDiMS) software can continuously monitor $CO_2$, $NO_x$, $SO_x$, and PM values emitted from ship. The accurate inventory of ships GHG can be obtained from base of emission result during the engine shop test trial and the actual monitoring of shaft power and ship speed. In addition, the ability to store all exhaust emission and engine operation data can be applied as the useful tool of the inventory work of air pollution and ship energy management plan for the mitigation or reduction of ship emissions.

The study on a ship energy management system applied rechargeable battery

  • Jang, Jae-Hee;Oh, Jin-Seok
    • Journal of Advanced Marine Engineering and Technology
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    • 제38권2호
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    • pp.202-207
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    • 2014
  • Recently, the study of energy saving technology of ships begins in earnest, as energy saving policies are performed all around the world. SEMS (Ship Energy Management System) is one of the techniques to increase energy efficiency by applying to a independent system like a ship and offshore. SEMS is composed of Cooling Pump Control System (CPCS), Renewable Energy Emergency Power Control System (REEPCS), Load Control System (LCS), and Heating, Ventilation, and Air Conditioning System (HVACS). SEMS is enable to increase energy efficiency and achieve integrated management through the interlocking of each system. Especially, it is possible to improve the flexibility of the selection of the generator capacity in conjunction with a rechargeable battery and renewable energy. In this paper, SEMS applied rechargeable battery is proposed and simulated. By applying the rechargeable battery, it was confirmed that SEMS applied rechargeable battery can be operated at optimum efficiency of the generator.

Synchronization and identification of ship shaft power and speed for energy efficiency design index verification

  • Lee, Donchool;Barro, Ronald Dela Cruz;Nam, Jeonggil
    • Journal of Advanced Marine Engineering and Technology
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    • 제38권2호
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    • pp.123-132
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    • 2014
  • The maritime sector is advancing with dedicated endeavor to reduce greenhouse gas in addressing issues with regards to global warming. Since 01 January 2013, the International Maritime Organization (IMO) regulation mandatory requirement for Energy Efficiency Design Index (EEDI) has been in place and should be satisfied by newly-built ships of more than 400 gross tonnage and the Ship Energy Efficiency Management Plan (SEEMP) for all ships type. Therefore, compliance to this necessitates planning during the design stage whereas verification can be carried-out through an acceptable method during sea trial. The MEPC-approved 2013 guidance, ISO 15016 and ISO 19019 on EEDI serves the purpose for calculation and verification of attained EEDI value. Individual ships EEDI value should be lower than the required value set by these regulations. The key factors for EEDI verification are power and speed assessment and their synchronization. The shaft power can be measured by telemeter system using strain gage during sea trial. However, calibration of shaft power onboard condition is complicated. Hence, it relies only on proficient technology that operates within the permitted ISO allowance. On the other hand, the ship speed can be measured and calibrated by differential ground positioning system (DGPS). An actual test on a newly-built vessel was carried out to assess the correlation of power and speed. The Energy-efficiency Design Index or Operational Indicator Monitoring System (EDiMS) software developed by the Dynamics Laboratory-Mokpo Maritime University (DL-MMU) and Green Marine Equipment RIS Center (GMERC) of Mokpo Maritime University was utilized for this investigation. In addition, the software can continuously monitor air emission and is a useful tool for inventory and ship energy management plan. This paper introduces the synchronization and identification method between shaft power and ship speed for EEDI verification in accordance with the ISO guidance.

Impact of Hull Condition and Propeller Surface Maintenance on Fuel Efficiency of Ocean-Going Vessels

  • Tien Anh Tran;Do Kyun Kim
    • 한국해양공학회지
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    • 제37권5호
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    • pp.181-189
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    • 2023
  • The fuel consumption of marine diesel engines holds paramount importance in contemporary maritime transportation and shapes energy efficiency strategies of ocean-going vessels. Nonetheless, a noticeable gap in knowledge prevails concerning the influence of ship hull conditions and propeller roughness on fuel consumption. This study bridges this gap by utilizing artificial intelligence techniques in Matlab, particularly convolutional neural networks (CNNs) to comprehensively investigate these factors. We propose a time-series prediction model that was built on numerical simulations and aimed at forecasting ship hull and propeller conditions. The model's accuracy was validated through a meticulous comparison of predictions with actual ship-hull and propeller conditions. Furthermore, we executed a comparative analysis juxtaposing predictive outcomes with navigational environmental factors encompassing wind speed, wave height, and ship loading conditions by the fuzzy clustering method. This research's significance lies in its pivotal role as a foundation for fostering a more intricate understanding of energy consumption within the realm of maritime transport.

Bond Graph를 이용한 선박 에너지 시스템 모델링 연구 (A Study on the Modeling of Ship Energy System Using Bond Graph)

  • 문상원;유원선
    • 대한조선학회논문집
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    • 제61권1호
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    • pp.19-28
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    • 2024
  • Environmental regulations are becoming more stringent in response to climate change, especially concerning marine pollution caused by ship emissions. Large ships are adjusting by integrating technologies to reduce pollutant emissions and transitioning to eco-friendly fuels such as low-sulfur oil and LNG. However, small ships face space constraints for installing LNG propulsion systems and the risk of power depletion with pure electric propulsion. Consequently, there's growing interest in researching hybrid propulsion methods that combine electricity and diesel for smaller vessels. Hybrid propulsion systems utilize diverse energy sources, requiring an effective method for evaluating their efficiency. This study proposes employing Bond graph modeling to comprehensively analyze energy dynamics within hybrid propulsion systems, facilitating better understanding and optimization of their efficiency. Modeling of the ship's energy system using Bond graphs will be able to provide a framework for integrating various energy sources and evaluating their effects.

Estimation of ship operational efficiency from AIS data using big data technology

  • Kim, Seong-Hoon;Roh, Myung-Il;Oh, Min-Jae;Park, Sung-Woo;Kim, In-Il
    • International Journal of Naval Architecture and Ocean Engineering
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    • 제12권1호
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    • pp.440-454
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    • 2020
  • To prevent pollution from ships, the Energy Efficiency Design Index (EEDI) is a mandatory guideline for all new ships. The Ship Energy Efficiency Management Plan (SEEMP) has also been applied by MARPOL to all existing ships. SEEMP provides the Energy Efficiency Operational Indicator (EEOI) for monitoring the operational efficiency of a ship. By monitoring the EEOI, the shipowner or operator can establish strategic plans, such as routing, hull cleaning, decommissioning, new building, etc. The key parameter in calculating EEOI is Fuel Oil Consumption (FOC). It can be measured on board while a ship is operating. This means that only the shipowner or operator can calculate the EEOI of their own ships. If the EEOI can be calculated without the actual FOC, however, then the other stakeholders, such as the shipbuilding company and Class, or others who don't have the measured FOC, can check how efficiently their ships are operating compared to other ships. In this study, we propose a method to estimate the EEOI without requiring the actual FOC. The Automatic Identification System (AIS) data, ship static data, and environment data that can be publicly obtained are used to calculate the EEOI. Since the public data are of large capacity, big data technologies, specifically Hadoop and Spark, are used. We verify the proposed method using actual data, and the result shows that the proposed method can estimate EEOI from public data without actual FOC.

항적 데이터에 기반한 하이브리드 추진 연료전지 선박의 효율 평가 (Efficiency Evaluation of a Hybrid Propulsion Fuel Cell Ship Based on AIS Data)

  • 오동현;조대승
    • 대한조선학회논문집
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    • 제60권3호
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    • pp.146-154
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    • 2023
  • Efforts have been made to reduce the greenhouse gas emissions from ships by limiting the energy efficiency index, and net zero CO2 emission was proposed recently. The most ideal measure to achieve zero emission ship is electrification, and fuel cells are considered as a practical power source of the electrified propulsion system. The electric efficiency in the electrochemical reaction of fuel cells can be achieved up to 60% practically. The remaining energy is converted to heat energy but most of them are dissipated by cooling. In the author's previous research, a hybrid propulsion system utilizing not only electricity but also heat was introduced by combining electric motor and steam turbine. In this article, long term efficiency is evaluated for the introduced hybrid propulsion system by considering a virtual 24,000 TEU class container carrier model. To reflect a more practical operating condition, the actual navigation data of a similar real ship in the real world were collected from automatic identification system data and applied. From the result, the overall efficiency of the hybrid propulsion system is expected to be higher than a conventional electric propulsion fuel cell ship by 30%.