• 제목/요약/키워드: Hydrogen detonation

검색결과 34건 처리시간 0.025초

폭굉제어기에 의한 수소. 아세틸렌 산소 혼합가스의 폭굉제어 (Quenching Effects of Acetylene, Hydrogen-Oxygen Detonation)

  • 김한석;문정기
    • 한국안전학회지
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    • 제6권2호
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    • pp.31-36
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    • 1991
  • Quenching effects of acetylene and hydrogen into oxygen detonation by using detonation arrester [DA]are studied in this paper. The experiments were carried out in cylinderical shock tube. 5m long, 30mm dia., with stolchlometric ratio [SR]of each gas and 10-l20$\mu$ Cell Size of brass and Stainless Steel of DAs were installed in it To clarify arresting ability correlation with initial pressure, Pi, critical thickness, Tct, and shapes of supporting panel of DA are also investigated It is found that ­detonation velocities has most dependency on Pi, it shows notable changes around 0.5kgf/$\textrm{cm}^2$ for hydrogen, 0.15kgf/$\textrm{cm}^2$ for acetylen respectively, ­DA can be safety device able to arrest shock wave of detonation, ­over Tct flame transmission might be only the factor has to be considered, ­acetylene seems to be much more stronger detonation characteristics than hydrogen because of reaction heat.

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과산화수소 단일 추진제 PDE의 성능 특성에 관한 수치적 연구 (Performance Characteristics of Hydrogen Peroxide Mono Propellant PDE (Pulse Detonation Engine))

  • 조흥식;정인석;최정열
    • 한국연소학회:학술대회논문집
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    • 대한연소학회 2003년도 제27회 KOSCO SYMPOSIUM 논문집
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    • pp.153-157
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    • 2003
  • Supersonic and hypersonic aircrafts must pass wide range of speed to reach high speed region. But for existing engines the most efficient operating speed ranges are decided according to their flying speed, so an engine which mixes several engines like TRJ (Turbo Ramjet) and ARJ (Air Turbo Ramjet) has been planed. This mixed type engine has inefficiency that more than two engines must be installed simultaneously, but the pulse detonation engine (PDE) that uses detonation wave has a strong point that it can operate in all speed range with single engine. This paper deals with the simulation of the pulse detonation engine which uses hydrogen peroxide $(H_2O_2)$ mono propellant. Hydrogen peroxide is low-cost propellant, and it is reacted without oxidizer. Comparison between $H_2-O_2$ mixture with $H_2O_2$ mono propellant about thrust, pressure, temperature and velocity shows that $H_2O_2$ is a very useful propellant.

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수소저장시설의 폭발에 대한 인접 구조물의 손상도 평가 (Damage Evaluation of Adjacent Structures for Detonation of Hydrogen Storage Facilities)

  • 신진원
    • 한국방재안전학회논문집
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    • 제16권1호
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    • pp.61-70
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    • 2023
  • 본 연구에서는 수소저장시설의 폭발에 대한 시설물의 안전성 평가를 위하여 수소 폭발에 의한 발생된 충격파의 효과와 그에 따른 구조물의 손상도 평가에 대한 해석적 연구를 수행하였다. 이를 위하여 수소저장시설의 폭발효과에 미치는 주요 설계변수로 수소저장시설의 부피(10~50,000 L), 잔존용량(SOC, 50% 및 100%) 및 초기 압력(50 MPa 및 100 MPa)을 고려하여 폭발 시나리오를 수립하였다. 수소폭발효과를 도출하기 위하여 수소의 기계적 에너지와 화학적 에너지를 고려한 TNT 등가량 산정방법을 활용하였다. 환산된 TNT 등가량에 대하여 기존 UFC 3-340-02의 Kingery-Bulmash 폭발하중 설계차트를 개선한 평가식을 적용하여 수소 폭발 모델을 제안하였다. 수소 폭발 모델은 거리별 압력과 충격량에 대하여 지난 수소 탱크의 폭발실험 결과와 비교하여 검증되었다. 검증된 수소폭발 모델을 활용하여 시나리오에 따른 변수해석을 수행하였으며 폭발 중심으로부터의 이격거리에 따른 압력과 충격량에 대한 설계차트를 제시하였다. 더욱이 이 압력과 충격량 설계차트와 압력-충격량(PI) 다이어그램을 활용하여 압력과 충격량의 수준에 따른 구조물의 미세손상, 주요부재손상 및 부분 붕괴의 3단계 손상도와 이격거리에 따른 설계차트를 제안하였다.

Numerical Investigation on detonation combustion waves of hydrogen-air mixture in pulse detonation combustor with blockage

  • Pinku Debnath;K.M. Pandey
    • Advances in aircraft and spacecraft science
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    • 제10권3호
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    • pp.203-222
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    • 2023
  • The detonation combustion is a supersonic combustion process follows on shock wave oscillations in detonation tube. In this paper numerical studies are carried out combined effect of blockage ratio and spacing of obstacle on detonation wave propagation of hydrogen-air mixture in pulse detonation combustor. The deflagration to detonation transition of stoichiometric (ϕ=1)fuel-air mixture in channel has been analyzed for effect of blockage ratio (BR)=0.39, 0.51, 0.59, 0.71 with spacing of 2D and 3D. The reactive Navier-Stokes equation is used to solve the detonation wave propagation mechanism in Ansys Fluent platform. The result shows that fully developed detonation wave initiation regime is observed near smaller vortex generator ratio of BR=0.39 inside the combustor. The turbulent rate of reaction has also a great significance role for shock wave structure. However, vortices of rapid detonation wave are appears near thin boundary layer of each obstacle. Finally, detonation combustor demonstrates the superiority of pressure gain combustor with turbulent rate of reaction of 0.6 kg mol/m3 -s inside the detonation tube with obstacle spacing of 12 cm, this blockage enhanced the turbulence intensity and propulsive thrust. The successful detonation wave propagation speed is achieved in shortest possible time of 0.031s with a significance magnitude of 2349 m/s, which is higher than Chapman-Jouguet (C-J) velocity of 1848 m/s. Furthermore, stronger propulsive thrust force of 36.82 N is generated in pulse time of 0.031s.

원자력발전소 격실에서의 수소화염 가속에 대한 수치해석 연구 (NUMERICAL METHOD FOR EVALUATION OF HYDROGEN FLAME ACCELERATION IN A COMPARTMENT OF A NUCLEAR POWER PLANT)

  • 김종태;김상백;김후중
    • 한국전산유체공학회지
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    • 제15권4호
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    • pp.67-75
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    • 2010
  • Hydrogen safety is one of important issues for future public usage of hydrogen. When hydrogen is released in a compartment, the occurrence of detonation must be prohibited. In order to evaluate the possibility of DDT (Deflagration to Detonation Transition) in the compartment with the hydrogen release, sigma-lambda criteria which were developed from experimental data are commonly used. But they give a little conservative results because they do not consider the detailed geometrical effect of the compartment. This is the main reason of the need to mechanistic combustion model for evaluation of hydrogen flame propagation and acceleration. In this study, sigma-lambda criteria and combustion model were systematically applied to evaluate a possibility of DDT in a IRWST compartment of APR1400 nuclear power plant during a hypothetical accident. A combustion model in an open source CFD code OpenFOAM has been applied for analyses of hydrogen flame propagation. The model was validated by evaluating the flame acceleration tests conducted in FLAME facility. And it was applied to evaluate the characteristics of a hydrogen flame propagation in the IRWST compartment of APR1400.

수소 예혼합기의 정상 및 이상연소에 관한 수치해석 (A Numerical Study on Normal and Abnormal Combustion in Hydrogen Premixture)

  • 손채훈;정석호
    • 대한기계학회논문집
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    • 제19권8호
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    • pp.1989-1998
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    • 1995
  • Characteristics of the flame propagation for normal and abnormal combustion in hydrogen premixture in a cylindrical constant-volume combustion chamber are studied numerically. A detailed hydrogen oxidation kinetic mechanism, mixture transport properties and a model describing spark ignition process are used. The calculated pressure-time history of the stable deflagration wave propagation agrees well with the experiment. The ignition of the premixture in the unburned gas, initiated by the hot spot, causes a transition from deflagration to detonation under some initial temperature and pressure. Under the initial conditions with high temperature and pressure, excessive ignition energy initiates a strong blast wave and a detonation wave that follows. The chemical reaction in the detonation wave is much more vigorous than that in the deflagration wave and the peak pressure in the detonation wave is much higher than the equilibrium value.

Numerical Simulation of Detonation with Detailed H2/O2 Reaction Mechanisms

  • Kumar, P.Pradeep;Choi, Jeong-Yeol
    • 한국연소학회:학술대회논문집
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    • 한국연소학회 2014년도 제49회 KOSCO SYMPOSIUM 초록집
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    • pp.169-174
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    • 2014
  • Detonation propagation studies is recently getting more attention in these days for its feasibility in aerospace application. Another motivation for this study is the safety concern in industries, since the detonation can cause failure to the mechanical components particularly when the flame accelerates within a pipe or tubes. In this study we numerically simulated a Moderately unstable detonation case with various grid systems and fluid dynamic length scales and have compared in the contents. Moderately Unstable detonation case was selected for this study and detailed Hydrogen-Air Reaction Mechanisms proposed by Jachimowski was used in this study with N2 as inert species.

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Gas detonation cell width prediction model based on support vector regression

  • Yu, Jiyang;Hou, Bingxu;Lelyakin, Alexander;Xu, Zhanjie;Jordan, Thomas
    • Nuclear Engineering and Technology
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    • 제49권7호
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    • pp.1423-1430
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    • 2017
  • Detonation cell width is an important parameter in hydrogen explosion assessments. The experimental data on gas detonation are statistically analyzed to establish a universal method to numerically predict detonation cell widths. It is commonly understood that detonation cell width, ${\lambda}$, is highly correlated with the characteristic reaction zone width, ${\delta}$. Classical parametric regression methods were widely applied in earlier research to build an explicit semiempirical correlation for the ratio of ${\lambda}/{\delta}$. The obtained correlations formulate the dependency of the ratio ${\lambda}/{\delta}$ on a dimensionless effective chemical activation energy and a dimensionless temperature of the gas mixture. In this paper, support vector regression (SVR), which is based on nonparametric machine learning, is applied to achieve functions with better fitness to experimental data and more accurate predictions. Furthermore, a third parameter, dimensionless pressure, is considered as an additional independent variable. It is found that three-parameter SVR can significantly improve the performance of the fitting function. Meanwhile, SVR also provides better adaptability and the model functions can be easily renewed when experimental database is updated or new regression parameters are considered.

수소와 탄화수소 계열 연료의 비정상 연소에 의한 파이프 변형 연구 (A Study of Structural Response of Pipes due to Internal Gaseous Detonation of Hydrogen- and Hydrogen-Air Mixtures)

  • 김대현;여재익
    • 한국항공우주학회지
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    • 제36권11호
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    • pp.1094-1103
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    • 2008
  • 수소나 탄화수소 계열 연료의 비정상 연소에 의해 발생된 데토네이션 파와 같은 이동 하중이 특정한 속도로 파이프 내부에서 전파하는 경우를 고려한다. 파이프 내부를 통과하는 데토네이션 파의 속도는 굽힘파의 활성화 정도와 큰 변형을 일으키는 공진이 발생할 가능성을 결정한다. 본 연구에서는 데토네이션 파가 파이프 내부를 통과할 때의 변위의 이론적해와 공진현상이 일어날 조건을 설명하였다. 또한 이론적 결과를 다중물질간의 간섭을 고려한 DNS를 통하여 이론의 정당성을 증명하였다. 이 정당성을 기반으로 하여 보다 더 실제적인 상황에서 일어날 수 있는 경우에 대하여 고려하였다. 본 연구의 결과를 바탕으로 일반적인 원자력, 화학, 설비 산업에서 발생할 수 있는 수소나 탄화수소 관련 폭발에 의한 사고들을 예방할 수 있을 것으로 기대된다.

Quasi-steady State Simulation of Rotating Detonation Engine

  • Niyasdeen, Mohammed;Oh, Sejong;Kim, Kui Soon;Choi, Jeong-Yeol
    • International Journal of Aeronautical and Space Sciences
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    • 제16권4호
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    • pp.548-559
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    • 2015
  • We performed a numerical simulation based on the two-dimensional (2-D) unsteady Euler's equation with a single-step Arrhenius reaction model in order to investigate the detonation wave front propagation of an Argon (Ar) diluted oxy-hydrogen mixture ($2H_2+O_2+12Ar$). This simulation operates in the detonation frame of reference. We examine the effect of grid size and the performance impact of integrated quantities such as mass flow. For a given set of baseline conditions, the minimal and maximum grid resolutions required to simulate the respective detonation waves and the detonation cell structures are determined. Tertiary shock wave behavior for various grids and pre-exponential factors are analyzed. We found that particle fluctuation can be weakened by controlling the mass flow going through the oblique shock waves.