• 제목/요약/키워드: Engine Room

검색결과 359건 처리시간 0.027초

선박의 기관실 통풍 해석 (Ventilation Analysis for an Engine Room of a Ship)

  • 이혁;서형균
    • 대한조선학회논문집
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    • 제41권5호
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    • pp.63-69
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    • 2004
  • This study contains the CFD analysis to predict the flow in engine room and utilize the results as a reference for arranging smoke detectors. FLUENT, a commercial CFD code is adopted because of its good application experience in DSME(Daewoo Shipbuilding & Marine Engineering Co.. Ltd.). The target is the engine room of VLCC. which was delivered in 2002. The model for analysis includes main structure elements, ventilation ducts, main engine and other big size equipment. From the analysis results, the internal flow pattern can be observed and some guidelines for the position of smoke detectors cane be presented.

스마트폰 앱을 이용한 산업용 엔진의 모니터링 시스템 개발에 관한 연구 (A Study on Development of Industrial Engine Monitoring System Using Smart Phone Application)

  • 정찬세;김용석;정영만;고주현;정광식;이효성;양순용
    • 드라이브 ㆍ 컨트롤
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    • 제10권2호
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    • pp.7-12
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    • 2013
  • In this study, a wire/wireless communication system transmitting the operation data of engine from the ER (Engine Room) to the engine controller of ECR(Engine Control Room) has been developed through the communication of ISM(Industrial Science Medical) Band for the test operation environment improvement of medium speed engine. This wire/wireless communication system is composed of the RTU (Remote Terminal Unit) gathering and transmitting engine data as well as the MCU (Master Control Unit) receiving engine status information from the RTU to be sent to the engine controller (PLC). Through this study, a trial product of RTU and MCU has been manufactured. A test bench that has made temperature, pressure and pick-up sensor into a module for the local test of prototype was produced a test bench. In addition, at the same time save the data to a Web server and the smart phone real-time monitoring system has been developed using Wi-Fi communications. The ultimate objective of this study is to develop a wireless smart phone monitoring system of engine for the operator of engine to be able to monitor and control engine status even from the outside of engine room and control room based on this study.

A* 알고리즘을 이용한 기관실 순찰로봇의 최단 경로 탐색에 관한 연구 (Study on the Shortest Path finding of Engine Room Patrol Robots Using the A* Algorithm)

  • 김선덕
    • 해양환경안전학회지
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    • 제28권2호
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    • pp.370-376
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    • 2022
  • 기술의 발전으로 스마트 선박과 관련된 다양한 연구가 진행되고 있으며, 기관실을 무인으로 순찰할 수 있는 기관실 순찰 로봇도 이러한 연구 중의 하나이다. 순찰로봇은 인공지능을 통해 학습된 정보를 기반으로 기관실을 이동하며 기기 정상 유무 및 누수, 누유, 화재 등의 이상 유무를 파악한다. 기관실 순찰로봇에 관한 연구는 인공지능을 이용한 객체 검출에 관한 연구가 주로 진행되고 있으나, 순찰로봇의 이동 및 제어에 관한 연구는 부족한 상황이다. 이는 순찰로봇이 객체를 검출하더라도 검출한 객체까지 이동할 방법이 없다는 문제를 야기한다. 이에 본 논문에서는 기관실 이상상황 발생 시 빠르게 이상 유무를 파악할 수 있는 기동성을 확보하기 위해, A* 알고리즘을 적용하여 순찰로봇이 최단경로를 탐색할 수 있는지를 확인하였다. 라이다를 장착한 소형차를 이용하여 선박 기관실을 주행하며 데이터를 얻어, SLAM으로 매핑하여 지도를 만들었다. 매핑한 지도에서 순찰로봇의 출발 지점과 목표 지점을 설정하고, A* 알고리즘을 적용하여 출발 지점부터 목표 지점까지 최단 경로를 탐색하는지를 확인하였다. 시뮬레이션 결과 매핑된 지도에서 출발 지점부터 목표 지점까지의 장애물을 회피하며 최단 경로를 잘 탐색함을 확인 할 수 있었으며, 기관실 순찰로봇에 적용하면 선박안전에 도움이 될 것으로 사료된다.

어선 기관실의 연기 거동에 관한 수치해석 연구 (A Numerical Study on Smoke Behavior of Fishing Vessel Engine Room)

  • 장호성;지상원
    • 해양환경안전학회지
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    • 제27권5호
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    • pp.683-690
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    • 2021
  • 선박 기관실 통풍 설계조건 및 계산 기준에 관한 국제 표준(ISO 8861)을 만족해야 하는 선박 기관구역의 환기시스템은 일반적으로 내연기관에 필요한 연소공기의 공급과 기관구역에서 발생한 열원을 제거하기 위해 설치되며 화재감지기가 포함된 환기시스템의 응답지연은 구역 내부에 형성된 기류와 화재감지기의 설치 위치에 영향을 받는다. 어선에서 발생하는 화재는 상선과 비교하여 인명피해 가능성이 높으므로 화재 조기 감지가 무엇보다 중요하다. 따라서 본 논문에서는 어선에 설치되는 화재 감지기의 초기 화재감지 응답속도 향상과 설치된 감지기의 감도 유지를 위해 기관구역 내부에서 발생한 정량적 연기량에 따른 공기 유동장, 내연기관 연소 공기량 및 기관 구역 내부 압력을 변수로 연기 거동 시뮬레이션이 가능한 해석모델을 구성하여 선박 기관구역 내부의 연기 거동을 시뮬레이션하였다. 시뮬레이션 결과를 통해 기관실 내부 압력을 감소시키고 연기커튼 설치를 통해 공기 유동장에서의 유속을 감소시키고 와류를 증가시키면 연기 성분의 천장 상승이 가속화되어 연기감지기 응답속도 및 환기시스템이 개선될 수 있을 것으로 해석되었다.

CFD를 이용한 연료전지 차량 레이아웃 최적화 (Engine Room Layout Design Optimization of Fuel Cell Vehicle Using CFD Technique)

  • 김정일;전완호;조장형
    • 한국자동차공학회논문집
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    • 제19권4호
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    • pp.99-106
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    • 2011
  • This paper deals with engine room layout design optimization of fuel cell electric vehicle (FCEV), which has been proposed as a potential alternative to fossil fuel depletion. Investing the great R&D efforts, the global vehicle manufacturers, especially Honda motor corporate, have shown not prototype vehicle but commercial vehicle using fuel cell in the market recently. In this paper, we analyze cooling performance and flow characteristic in the engine room of newly FCEV, in addition we suggest the optimization process for engine room layout design optimization. The two radiators in the vehicle for fuel cell stack and electronic components cooling have been analyzed and their performance are obtained in terms of cooling performance ratio (CPR). The value of CPR should always be less than one and based on criteria, we have achieved the optimum cooling performance of radiators for stack and electronic components. Aerodynamic performance is evaluated in terms of drag coefficient, improved through underbody modification using air devices.

방열기 및 냉각팬을 고려한 엔진룸 내부유동 해석 (Numerical Simulation on Flows inside an Engine Room with Radiator and Cooling Fan Models)

  • 김사랑;이승철;이경헌;허남건
    • 한국전산유체공학회:학술대회논문집
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    • 한국전산유체공학회 1995년도 추계 학술대회논문집
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    • pp.70-75
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    • 1995
  • Recently, for the thermal system design in an engine room, the importance of the numerical analysis on the heat and fluid flow has been recognized. In the present study, the flow inside an engine room with complex geometry was analysed by use of TURBO-3D program being developed in KIST. Radiator and Cooling fan were simulated by porous media and momentum sources, and the result shows a good agreement with our expectation.

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CSR Bulk Carrier의 E/R Stringer Deck 구조 강도 계산 (E/R Stringer Deck Strength Calculation of CSR Bulk Carrier)

  • 최성빈;박동근;김경래
    • 대한조선학회 특별논문집
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    • 대한조선학회 2011년도 특별논문집
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    • pp.47-50
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    • 2011
  • E/R bulkhead is watertight bulkhead between engine room and cargo hold. So, it must have sufficient strength about cargo load of aft hold. Especially, partial stringer deck between tank top and $2^{nd}$ deck of engine room must have sufficient strength because it has function of primary supporting member. Generally, cargo hold structure is verified through the direct calculation as finite element analysis of cargo hold, but engine room structure doesn't perform it. Therefore, we have performed finite element analysis of engine room stringer deck which considered cargo hold load. And then, it will be able to apply similar ship design.

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일정 열유속의 열원을 갖는 사각공간의 혼합대류 열전달 (Heat transfer of Mixed convection in rectangular space with constant heat flux)

  • 조대환
    • Journal of Advanced Marine Engineering and Technology
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    • 제23권4호
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    • pp.552-558
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    • 1999
  • Ventilation of the marine engine room is very important for the health of the workers as well as the normal operation of machines. To find proper ventilation conditions of this engine room numerical simulation with a standard k-$\varepsilon$model was carried out. In the present study the marine engine room is considered as a closed space with a heat source and forced ventilation ducts. The injection angle of air supply is found to be important. Injection with a downward angle depresses recirculation flow causing a strong stream in the wider space of the room Ventilation and removal of the released heat are promoted with this pattern, There is a possibility of local extreme heating at the upper surface of the engine when supply and exhaust ports of air are in bilateral symmetry.

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엔진실 차폐 시스템의 냉각성능 개선을 위한 수치적 연구 (NUMERICAL STUDY FOR COOLING CAPACITY IMPROVEMENT OF ENGINE ROOM ENCLOSURE SYSTEM)

  • 배이석;유근종;최훈기
    • 한국전산유체공학회지
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    • 제14권2호
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    • pp.39-45
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    • 2009
  • In engine room, proper enclosure system is preferable for reducing noise level but the enclosure system in the engine room causes bad influence on cooling performance due to poor ventilation. Cooling efficiency of the enclosure system can be improved by varying fan speed and proper flow path for ventilation. In this study, numerical analysis is performed to assess cooling effect of the enclosure system using finite volume method. The RNG k-$\varepsilon$ model is adopted for turbulence model along with heat exchanger model and porous media model for heat exchanger analysis, and moving reference frame model for rotational fan. Verification result shows reasonable agreement with experimental data. Analysis results show direct effect of velocity and temperature distribution on cooling ability in the enclosure system. Enclosure system of case B shows high heat transfer coefficient and has the smallest area ratio of opened flow passages which is good for noise level reduction.

자동차 엔진룸용 전장품 유무연 솔더 접합부의 열화특성 (Degradation Characteristics of Eutectic and Pb-free Solder Joint of Electronics mounted for Automotive Engine)

  • 김아영;홍원식
    • Journal of Welding and Joining
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    • 제32권3호
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    • pp.74-80
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    • 2014
  • Due to environmental regulations (RoHS, WEEE and ELV) of the European Union, electronics and automotive electronics have to eliminate toxic substance from their devices and system. Especially, reliability issue of lead-free solder joint is increasing in car electronics due to ELV (End-of-Life Vehicle) banning from 2016. We have prepared engine control unit (ECU) modules soldered with Sn-40Pb and Sn-3.0Ag-0.5Cu (SAC305) solders, respectively. Degradation characteristics of solder joint strength were compared with various conditions of automobile environment such as cabin and engine room. Thermal cycle test (TC, $-40^{\circ}C$ ~ ($85^{\circ}C$ and $125^{\circ}C$), 1500 cycles) were conducted with automotive company standard. To compare shear strength degradation rate with eutectic and Pb-free solder alloy, we measured shear strength of chip components and its size from cabin and engine ECU modules. Based on the TC test results, finally, we have known the difference of degradation level with solder alloys and use environmental conditions. Solder joints degradation rate of engine room ECU is superior to cabin ECU due to large CTE (coefficient of thermal expansion) mismatch in field condition. Degradation rate of engine room ECU is 50~60% larger than cabin room electronics.