• 제목/요약/키워드: momentum effect

검색결과 466건 처리시간 0.024초

초음속 유동장 내의 공동을 이용한 연료/공기 혼합에 관한 실험적 연구 (Experimental Study on Fuel/Air Mixing using the Cavity in the Supersonic Flow)

  • 김채형;정은주;정인석
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2005년도 제25회 추계학술대회논문집
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    • pp.64-71
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    • 2005
  • 효과적인 초음속 연소를 위해 연료와 공기의 빠른 혼합이 필요하며, 혼합 향상을 위해 연료분사 방식에 대한 여러 연구들이 수행되어 왔다. 본 연구에서는 길이-깊이 비가 4.8, 후면 경사각이 $22.5^{\circ}$인 개방형 공동 모델을 사용하였으며, 마하수 1.92에서 운동량비에 따른 분사구 주변의 유동 특성 및 연소실 내 압력 분포를 슐리렌 가시화와 압력 측정을 사용하여 파악하였다. 운동량비는 연료의 침투거리와 분사지역의 유동에 큰 영향을 끼친다.

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액체스월-기체제트 동축 분사기의 분무특성 (Spray characteristics of liquid-swirl/gas-jet coaxial injectors)

  • 전재형;홍문근;김종규;한영민;이수용
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2009년도 제33회 추계학술대회논문집
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    • pp.82-85
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    • 2009
  • 우주발사체용 액체추진기관 개발에 있어서, 분사기는 연소성능과 안정성을 결정짓는 매우 중요한 요소로써 이에 대한 분무특성 이해는 필수적으로 이루어져야 한다. 본 연구에서 알아보고자 하는 분사기는 중앙에서 기체산화제를 제트로 분사하고 외부에서 액체연료를 와류(스월)형으로 분사하는 형태이다. 분무형상은 리세스별로 CCD 카메라를 이용한 직접사진기법을 통해 측정하였다. 실제 연소조건과의 모사를 위해 기체질소와 물을 사용하였고, 운동량비를 주요 상사인자로 두어 대기압 수류 시험조건을 도출하여 분무특성을 알아보았다. 또한 기체-액체 운동량비의 영향을 알아보기 위한 연구가 추가적으로 이루어졌다.

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F-O-O-F 충돌형 injector의 분무특성 및 혼합성능에 관한 실험적 연구 (An Experimental Study on the Characteristics of Spray Pattern and the Mixing Performance of Unlike-impinging Split Triplet Injector(F-O-O-F))

  • 이광진;문덕용;김유
    • 한국추진공학회지
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    • 제3권3호
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    • pp.1-8
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    • 1999
  • $H_2$O/Kerosene을 사용하여 Unlike 충돌형 인젝터(FOOF형)에서 산화제와 연료의 운동량비 변화에 따른 혼합효율을 측정하였다. 모의 추진제의 운동량비 1.5(총혼합비 1.89)에서 혼합성능은 최대 값을 나타내었으며 모의 추진제의 실험결과는 실제 추진제인 LOX/Kerosene에 적용하여 혼합특성속도 효율을 예측하였다 연구 결과 혼합특성속도 효율은 운동량비 2.0에서 최대 값을 나타내었다. 이러한 예측은 실제 연소실험을 통하여 얻어진 연소효율과 약간의 차이는 있으나 초기설계자료로서 충분한 가치가 있는 것으로 판단된다.

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외부의 물과 Er:YAG Laser의 작용에 의한 Dental Hard Tissue에서의 열과 역학적 효과: Free-running 방식 (Exogenous-Water-Induced Thermal and Mechanical Effects on Dental Hard Tissue by the Er:YAG Laser: Free-running Mode)

  • 권용훈
    • 대한의용생체공학회:학술대회논문집
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    • 대한의용생체공학회 1997년도 추계학술대회
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    • pp.380-384
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    • 1997
  • This study was performed to understand the exogenous-water-drop induced thermomechanical effect on the tooth in the free-running Er:YAG laser mode for the proper use of water as a laser energy absorber and coolant in dentistry. The ree-running Er:YAG laser was used in the dental hard tissue ablation study. A Microjet system was employed to dispense precise water drops. Ablation rate, recoil momentum, and temperature rise in the pulp cavity were measured with and without an exogenous water drop on the tooth surface. Exogenous water enhanced ablation rate in the thick tooth in which the ablation rate on the dry surface does not increase linearly but shows plateau. Optimal exogenous water volume was shifted from 2 nl to 4 nl as the laser energy was increased from 48 mJ to 145 mJ. The magnitude of the recoil momentum was increased as the volume of exogenous water increased. The results of this study suggest that we must pay attention to the recoil momentum or recoil pressure study or the optimal and safe usage of water in the dental treatment because these mechanical effects depend on the volume of exogenous water on the tooth surface.

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Experimental Studies on Self-Oscillation of a Swirl Coaxial Injector

  • Kim, Dongjun;Wonho Jeong;Jihyuk Im;Youngbin Yoon
    • 한국추진공학회:학술대회논문집
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    • 한국추진공학회 2004년도 제22회 춘계학술대회논문집
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    • pp.228-233
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    • 2004
  • The spray and acoustic characteristics by the self-oscillation of a swirl coaxial injector were experimentally studied. The self-oscillation of a swirl coaxial injector is defined as pressure and flowrate oscillations by a time-delayed feedback between liquid and gas phase and has strong influences on atomization and mixing processes. Hence the occurrence and effect of the self-oscillation are measured using shadow photography technique, acoustic test and PDPA. The occurrence of self-oscillation largely depends on the injection conditions, such as pressure drop of liquid phase and relative momentum ratio. From the experimental results, self-oscillation occurs when the momentum of gas phase is enough large and the smaller the pressure drop of liquid phase is, the better self-oscillation occurs at the same momentum ratio. The self-oscillation is also affected by injector geometries, increasing the recess length results in the expansion of self-oscillation region and the increase of sound pressure level. The self-oscillation of a swirl coaxial injector accompanies a high intensity scream and this scream may provide harmful disturbances to combustion processes. Self-oscillation leads to strong changes in the drop size distribution and smoothly varies the slope of radial SMD distribution.

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Analysis of colliding index on impact behavior of RC columns under repeated impact loading

  • Tantrapongsaton, Warakorn;Hansapinyo, Chayanon;Wongmatar, Piyapong;Limkatanyu, Suchart;Zhang, Hexin;Charatpangoon, Bhuddarak
    • Computers and Concrete
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    • 제30권1호
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    • pp.19-32
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    • 2022
  • This paper presents an investigation into the failure of RC columns under impact loadings. A numerical simulation of 19 identical RC columns subjected to single and repeated impact loadings was performed. A free-falling hammer was dropped at midspan with the same total kinetic energy input but varying mass and momentum. The specimens under the repeated impact test were struck two times at the same location. The colliding index, defined as the impact energy-momentum ratio, was proposed to explain the different impact responses under equal-energy impacts. The increase of colliding index from low to high indicates the transition of the impact response from static to dynamic and failure mode from flexure to shear. This phenomenon was more evident when the column had a greater axial load and was impacted with a high colliding index. The existence of the axial load had an inhibitory effect on the crack development and increased the shear resistance. The second impact changes the failure mode from flexural to brittle shear as found in the specimen with 20% axial load subjected to high a colliding index. Moreover, a deflection prediction equation based on the impact energy and force was limited to the low colliding index impact.

건축물 구획실간 틈새에서의 누설유동에 대한 수치모델 연구 (Study on Numerical Model of Leakage Flow at Gap between Compartments in a Building)

  • 김정엽;김지석
    • 설비공학논문집
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    • 제25권10호
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    • pp.562-567
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    • 2013
  • 1D-numerical analysis of the network algorithm with the orifice equation for the relationship between pressure difference and flowrate has been mostly used to analyse leakage flow at the gap. In this study, a 3D-numerical method applying momentum loss model to the gap region in the computational domain is represented to reflect effectively the effect of leakage flow by determining the proportion of pressure difference to air passage velocity. While the 3D-numerical method is verified through the computation of the two compartments model, the numerical analysis of the stack effect in a building stairway is performed. As the temperature of air outside drops, the pressure in the upper stairway and leakage flowrate through the gap in the door rise. The change of gap area does not have an effect on pressure in the stairway for the analysis conditions.

Experimental and numerical study on the dynamic behavior of a semi-active impact damper

  • Zheng Lu;Mengyao Zhou;Jiawei Zhang;Zhikuang Huang;Sami F. Masri
    • Smart Structures and Systems
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    • 제31권5호
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    • pp.455-467
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    • 2023
  • Impact damper is a passive damping system that controls undesirable vibration with mass block impacting with stops fixed to the excited structure, introducing momentum exchange and energy dissipation. However, harmful momentum exchange may occur in the random excitation increasing structural response. Based on the mechanism of impact damping system, a semi-active impact damper (SAID) with controllable impact timing as well as a semi-active control strategy is proposed to enhance the seismic performance of engineering structures in this paper. Comparative experimental studies were conducted to investigate the damping performances of the passive impact damper and SAID. The extreme working conditions for SAID were also discussed and approaches to enhance the damping effect under high-intensity excitations were proposed. A numerical simulation model of SAID attached to a frame structure was established to further explore the damping mechanism. The experimental and numerical results show that the SAID has better control effect than the traditional passive impact damper and can effectively broaden the damping frequency band. The parametric studies illustrate the mass ratio and impact damping ratio of SAID can significantly influence the vibration control effect by affecting the impact force.

보행스피드에 대한 상체 공헌도의 연령에 따른 변화 (Age-Related Change of Upper Body Contribution to Walking Speed)

  • 배영상
    • 한국운동역학회지
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    • 제17권4호
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    • pp.27-36
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    • 2007
  • The purpose of this study was to investigate the effect of the upper body in order to increase a propulsive force in the old's walking. The subjects were each 10 males, the latter term of the aged and former term of the aged. There were three walking speeds of slow(about 5km/h), medium(about 6km/h), and maximum speed(about 7km/h). The subjects walking 11m were filmed the 5m section (from 3m to 8m) by 2-video cameras using three dimensional cinematography. And we computed different mechanical quantities and especially computed the relative momentum in order to achieve this study's aim. In this study, we was able to acquire some knowledge. The step length and step frequency increased in proportion to the walking speed, and the faster walking speed, the shorter ratio of supporting time( both legs supporting time/one step length time). When it was one leg support phase, the torso was indicated to generate the momentum in order to produce the propulsive force of walking. The upper and lower body had a cooperative relation for walking such as keeping step rate with the arms to legs and maintaining the body balance. The opposition phase for upward-and-downward direction of the torso and arms in walking was functioned to prevent the increase rapidly toward vertical direction of the center of gravity. The arms had contributed to coordinate the tempo of legs and the posture maintenance of the upper body. And by absorbing the relative momentum from the upper torso with arms to the lower torso, it had the rhythmical movement on upward-and-downward direction reducing the vertical reaction force. On account of the relations of absorption and generation of the propulsive force and the production of vertical impulse in the lower torso when walking by maximum speed, it was showed that the function of lower torso was come up as important problem for the mechanical posture stability and propulsive force coordination.

MEASUREMENT OF THE SINGLE AND TWO PHASE FLOW USING A NEWLY DEVELOPED AVERAGE BIDIRECTIONAL FLOW TUBE

  • Yun, Byong-Jo;Euh, Dong-Jin;Kang, Kyunc-Ho;Song, Chul-Hwa;Baek, Won-Pil
    • Nuclear Engineering and Technology
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    • 제37권6호
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    • pp.595-604
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    • 2005
  • A new instrument, an average BDFT (Birectional Flow Tube), was proposed to measure the flow rate in single and two phase flows. Its working principle is similar to that of the Pilot tube, wherein the dynamic pressure is measured. In an average BDFT, the pressure measured at the front of the flow tube is equal to the total pressure, while that measured at the rear tube is slightly less than the static pressure of the flow field due to the suction effect downstream. The proposed instrument was tested in air/water vertical and horizontal test sections with an inner diameter of 0.08m. The tests were performed primarily in single phase water and air flow conditions to obtain the amplification factor(k) of the flow tube in the vertical and horizontal test sections. Tests were also performed in air/water vertical two phase flow conditions in which the flow regimes were bubbly, slug, and churn turbulent flows. In order to calculate the phasic mass flow rates from the measured differential pressure, the Chexal drift-flux correlation and a momentum exchange factor between the two phases were introduced. The test results show that the proposed instrument with a combination of the measured void fraction, Chexal drift-flux correlation, and Bosio & Malnes' momentum exchange model could predict the phasic mass flow rates within a $15\%$ error. A new momentum exchange model was also proposed from the present data and its implementation provides a $5\%$ improvement to the measured mass flow rate when compared to that with the Bosio & Malnes' model.