• Title/Summary/Keyword: Closed Vessel

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Simulation of Turbulent Premixed Flame Propagation in a Closed Vessel (정적 연소실내 난류 예혼합화염 전파의 시뮬레이션)

  • 권세진
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.19 no.6
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    • pp.1510-1517
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    • 1995
  • A theoretical method is described to simulate the propagation of turbulent premixed flames in a closed vessel. The objective is to develop and test an efficient technique to predict the propagation speed of flame as well as the geometric structure of the flame surfaces. Flame is advected by the statistically generated turbulent flow field and propagates as a wave by solving twodimensional Hamilton-Jacobi equation. In the simulation of the unburned gas flow field, following turbulence properties were satisfied: mean velocity field, turbulence intensities, spatial and temporal correlations of velocity fluctuations. It is assumed that these properties are not affected by the expansion of the burned gas region. Predictions were compared with existing experimental data for flames propagating in a closed vessel charged with hydrogen/air mixture with various turbulence intensities and Reynolds numbers. Comparisons were made in flame radius growth rate, rms flame radius fluctuations, and average perimeter and fractal dimensions of the flame boundaries. Two dimensional time dependent simulation resulted in correct trends of the measured flame data. The reasonable behavior and high efficiency proves the usefulness of this method in difficult problems of flame propagation such as in internal combustion engines.

Analysis of Heat Loss Effect of Combustion in Closed Vessel (정적 연소실에서의 열 손실 해석 모델)

  • Lee, Dae-Hoon;Kwon, Se-Jin
    • Journal of the Korean Society of Combustion
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    • v.6 no.1
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    • pp.14-19
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    • 2001
  • Interests and importance of down-scale combustor is increasing with the emerging need for miniaturized power source which is now a bottleneck of micro system development. But in down scaled combustor increased heat loss compared to thermal energy generation inhibits the usability and application of the device, so as a preliminary work of down scaled combustor fabrication. Modeling tool for the device should be established, in this study modeling approach of closed vessel combustion phenomena that can express heat loss effect and resulting quenching is proposed and the result is compared with experiment data. From this model heat loss effect following combustor scale down can be further understood, and further more design parameter and analysis tool can be obtained.

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Implementation of Smart Convergent Communication System of Satellite and Wireless for Monitoring in Closed Room of Vessel (선박의 밀폐된 선내에서 해상관제를 위한 스마트 위성·무선 복합통신시스템 구현)

  • Park, Heum;Lee, Chang Bum;An, Sung Mun
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.19 no.8
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    • pp.1853-1858
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    • 2015
  • The existence communications of vessel focused on voice, FAX, ISDN, etc. using satellite on the existent most communications on the ships, and recently, the ships need high quality smart communication service environments. In the results of experiments using the existent system, it could access on board, but in the closed room of vessel, was impossible to access e-mail and smart apps except voice communication. In the present paper, we implemented a novel communication system that can access voice, text, e-mail, file, vessel monitoring apps, etc. It consists of a convergent communication terminal combined with satellite and communication for Smartphone, and smart communication environment on the closed room. As the results, we can access a variety of smart communication in anywhere on board.

The liquefaction system of the exhaust gas using cold energy in underwater engine (수중기관에서 냉열을 이용한 배기가스 액화시스템 해석)

  • Lee, Geun-Sik;Jang, Yeong-Su;No, Seung-Tak
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.20 no.5
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    • pp.1591-1602
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    • 1996
  • In operating the underwater engines such as encountered in exploring submarines, the dumping of the exhaust gas out of the engine requires a large portion of the total power, frequently amounting to 25-30% of the power generated. This unfavorable circumstance can be cured by liquefying the exhaust gas and storing it. In the present study, two liquefaction systems were simulated to enhance the overall efficiency; one is a closed cycle diesel engine and the other is a closed cycle LNG engine. The liquefied natural gas (LNG) is chosen as a fuel, not only because its use is economical but also because its cold energy can be utilized within the liquefaction system. Since a mixture of oxygen and carbon dioxide is used as an oxidizer, liquefying carbon dioxide is of major concern in this study. For further improving this system, the intercooling of the compressor is devised. The necessary power consumed for the liquefying system is examined in terms of the related properties such as pressure and temperature of the carbon dioxide vessel as a function of the amount of the exhaust gas which enters the compressor. The present study was successful to show that much gain in the power and reduction of the vessel pressure could be achieved in the case of the closed cycle LNG engine. The compression power of exhaust gas were observed remarkably lower, typically only 6.3% for the closed cycle diesel engine and 3.4% for the closed cycle LNG engine respectively, out of net engine power. For practicality, a design -purpose map of the operating parameters of the liquefaction systems was also presented.

Interrupted Aortic Arch [Type A] associated with ventricular septal defect, patent ductus arteriosus and patent foramen ovale (심실중격결손증, 개방성 대동맥관 및 개방성난원공과 동반한 대동맥궁 결손증: 1례보고)

  • 김한용
    • Journal of Chest Surgery
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    • v.24 no.2
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    • pp.206-211
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    • 1991
  • Interruption of the aortic arch may be defined as discontinuity of the aortic arch in which either an aortic vessel or a patent ductus arteriosus supplies the descending aorta. This anomaly is a rare congenital malformation that usually occurs with severe associated intracardiac congenital anomalies, such as ventricular septal defect, patent foramen ovale and abnormal arrangement of the brachiocephalic arteries. Rarely, transposition of the great vessel, truncus arteriosus are coexistent. We experienced a case of the interrupted aortic arch [Type A] associated with VSD, PDA and patent foramen ovale in a 16 years old female. One stage total correction was done under profound hypothermia with total circulatory arrest. Aortic continuity was established using patent ductus arteriosus with anterior wall of main pulmonary artery, which was anastomosed obliquely to anteromedial side of the ascending aorta. Ventricular septal defect was closed using Dacron patch and patent foramen ovale was closed directly. Postoperative course was uneventful, except mild hoarseness.

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Analysis of the Pressure Behavior with the Partial Rupture in Closed Vessel During Gaseous Explosion (밀폐공간에서 가스폭발에 의한 개구발생 후의 압력변화에 대한 해석)

  • 윤재건;조한창;신현동
    • Journal of the Korean Society of Safety
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    • v.14 no.3
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    • pp.40-47
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    • 1999
  • A numerical study on gaseous explosion was carried out to predict the transient pressure behavior with the partial rupture in confined vessels. Equations, assumptions and solutions for central ignition of premixed gases in closed spherical vessels are proposed with various equivalence ratios of gas fuel, as $CH_4$ and $C_3H_8$, vent areas and vent opening pressures. Given vent opening pressure in a vessel, the magnitude of second peak pressure results from the vent areas and burning velocity, varied by equivalence ratio of gas fuel. In a living room of an apartment, the higher second peak pressure than the vent pressure is not appeared due to its large window areas. As vent opening pressure is higher, the larger damage by gaseous explosion is expected and the larger vent area is necessary for relieving the damage. In the same concentration, the gaseous explosion by propane rather than methane shows the larger damage due to its higher adiabatic flame temperature and equivalence ratio.

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Development the Test System of Impact Energy Using the Pressure Variation in Closed Vessel for Hydraulic Breaker (밀폐용기내 압력변화를 이용한 유압식 브레이커의 타격에너지 시험법 개발)

  • Lee, Geun-Ho;Lee, Yong-Beom;Lee, Gi-Yong
    • 연구논문집
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    • s.32
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    • pp.45-53
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    • 2002
  • Hydraulic breaker attached excavator generally used for the destroying and disassembling of buildings, crashing road pavement, breaking rocks at quarry and etc. The developed breaker are determined their own destructive force and number of impact by the input hydraulic flow rate and pressure than the operating conditions, In this study, the characteristics of pressure variation in closed vessel is invested for testing the impact energy of hydraulic breaker. To test the impact energy, the test system is designed as a mechanism consisted with a hydraulic cylinder, main base, pressure sensor, LVDT, data acquisition system and etc.. The developed test system is applied to measure the impact energy for hydraulic breaker. The proposed testing method could be applied for conventional impact test and the control system evaluation for hydraulic breakers.

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Numerical Modeling on the Dual Propellant Combustion in a Closed Vessel (밀폐용기 내 입자 혼합물(ZPP와 THPP)의 연소에 대한 수치해석적 모델링 및 해석)

  • Han, Doo-hee;Sung, Hong-gye;Kwon, Mi-ra;Ahn, Gil-hwan;Kim, Jun-hyung;Ryu, Byung-tae
    • Proceedings of the Korean Society of Propulsion Engineers Conference
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    • 2017.05a
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    • pp.451-455
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    • 2017
  • The reactive Eulerian-Lagrangian code is utilized to simulate combustion of ZPP/THPP in a closed vessel. In the paper, ignition delay of THPP is mainly studied since ZPP and THPP are isolated by a boron nitride wall. Only a numerical case study is conducted as experimental observation is inaccessible. Results showed THPP ignition delay affects initial shock strength thus not only the first peak become weak, but also the frequency of a pressure oscillation is slowed.

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A Numerical Analysis on the Motion of Mechanical Heart Valve(MHV) and Characteristics of Blood Flow in an Elastic Blood Vessel (탄성혈관 내 기계식 인공심장판막(MHV)의 거동 및 혈액 유동 특성에 관한 수치해석적 연구)

  • Bang Jin-Seok;Choi Choeng-Ryul;Kim Chang-Nyung
    • Journal of the Korean Society for Precision Engineering
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    • v.22 no.3 s.168
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    • pp.154-161
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    • 2005
  • In this study, the leaflet motion of a mechanical heart valve and the characteristics of two-dimensional transient blood flow in an elastic blood vessel have been numerically investigated by using fluid-structure interaction method. Here, blood has been assumed as a Newtonian, incompressible fluid. Pressure profiles have been used as boundary conditions at the ventricle and the aorta. As a result, closing motion of the leaflet is faster than opening one. While opening angles of leaflet grow up, vortex is detected at the sinus and backward of the leaflets. When the leaflet is fully closed, vortex is detected at the ventricle and at that moment maximum displacement of the elastic blood vessel is observed in the vicinity of the sinus region. Maximum displacement is caused in association with the blood flow that is oriented toward the elastic blood vessel.

Analysis of an Autofrettage Effect to Improve Fatigue Life of the Automotive CNG Storage Vessel (자동차용 압축천연가스 저장용기의 피로수명향상을 위한 자긴처리 효과 분석)

  • Kim, H.Y.;Hwang, B.C.;Bae, W.B.;Han, S.M.;Kim, C.
    • Transactions of Materials Processing
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    • v.17 no.4
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    • pp.292-301
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    • 2008
  • Type 2 compressed natural gas(CNG) storage vessels for automobiles are becoming widely used. They are not only supplied to automakers in Korea, such as Hyundai Motors, but increasingly, they are being exported overseas. Autofrettage is a process that produces beneficial residual stresses in a vessel by subjecting it to excessive internal pressure. This strengthens the vessel and improves its fatigue resistance. This paper presents research investigating the autoftettage process and residual stresses it produces in type 2 CNG storage vessels. A finite element analysis technique and a closed form equation are used. Then, fatigue resistance is analyzed through a fatigue evaluation performed according to ASME section VIII.