• 제목/요약/키워드: Loading Size

검색결과 1,215건 처리시간 0.023초

컨테이너 3차원 적재문제 (Three-Dimensional Container Packing Problem)

  • 배민주;최세경;김환성
    • 한국항해항만학회:학술대회논문집
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    • 한국항해항만학회 2003년도 춘계공동학술대회논문집
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    • pp.242-248
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    • 2003
  • 본 논문에서는 다양한 종류와 다양한 크기의 화물에 대해 3차원 적재하는 방법으로서 휴리스틱 기법을 이용한 해법을 제안하였다. 먼저, 컨테이너 비용을 적재비용, 수송비용 및 처리비용의 합으로 나타내며. 화물간 우선순위 및 화물 내에서의 개수 간 우선순위를 적용하였다. 주어진 화물을 적재 공간 및 중량을 만족하면서 위의 컨테이너 비용을 최소화하는 컨테이너 종류 및 개수를 산출하였으며, 적재 시 화물의 팔레타이져 및 디팔레타이져로서 컨테이너 내의 공간 이용률을 극대화시켰다. 마지막으로 화물의 무게 균등화를 고려하여 취급중의 화물의 손상방지를 행하였다.

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Drug Targeting to Lungs by Way of Microspheres

  • Harsha, N. Sree;Rani, R.H. Shobha
    • Archives of Pharmacal Research
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    • 제29권7호
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    • pp.598-604
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    • 2006
  • In many conventional drug delivery systems in vogue, failure to deliver efficient drug delivery at the target site/organs; is evident as a result, less efficacious pharmacological response is elicited. Microspheres can be derived a remedial measure which can improve site-specific drug delivery to a considerable extent. As an application, Lung-targeting Ofloxacin-loaded gelatin microspheres (GLOME) were prepared by water in oil emulsion method. The Central Composite Design (CCD) was used to optimize the process of preparation, the appearance and size distribution were examined by scanning electron microscopy, the aspects such as in vitro release characteristics, stability, drug loading, loading efficiency, pharmacokinetics and tissue distribution in albino mice were studied. The experimental results showed that the microspheres in the range of $0.32-22\;{\mu}m$. The drug loading and loading efficiency were 61.05 and 91.55% respectively. The in vitro release profile of the microspheres matched the korsmeyer’s peppas release pattern, and release at 1h was 42%, while for the original drug, ofloxacin under the same conditions 90.02% released in the first half an hour. After i.v. administration (15 min), the drug concentration of microspheres group in lung in albino mice was $1048\;{\mu}g/g$, while that of controlled group was $6.77\;{\mu}g/g$. GLOME found to release the drug to a maximum extent in the target tissue, lungs.

Methodology for numerical evaluation of fracture resistance under pinch loading of spent nuclear fuel cladding containing reoriented hydrides

  • Seyeon Kim;Sanghoon Lee
    • Nuclear Engineering and Technology
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    • 제56권6호
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    • pp.1975-1988
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    • 2024
  • It is important to maintain cladding integrity in spent nuclear fuel management. This study proposes a numerical analysis method to evaluate the fracture resistance of irradiated zirconium alloy cladding under pinch load known to cause Mode-III failure. The mechanical behavior and fracture of the cladding under pinch loading can be evaluated by a Ring Compression Test (RCT). To simulate the fracture of hydride precipitates, zirconium matrix, and Zr/hydride interfaces under the stress field generated by RCT, a micro-structure crack propagation simulation method based on Continuum Damage Mechanics (CDM) has been proposed. Our RCT simulation model was constructed from microscopic images of irradiated cladding. In this study, we developed an automated process to generate a pixel-based finite element model by separating the hydride precipitates, zirconium matrix, and interfaces using an image segmentation method. The appropriate element size was selected to ensure the efficiency and accuracy of a crack propagation simulation. The load-displacement curves and strain energies from RCT were compared and analyzed with the simulation results of different element sizes. The finalized RCT simulation model can be used to establish the failure criterion of fuel rods under pinch loading. The advantages and limitations of the proposed method are fully discussed here.

Simulation study on effects of loading rate on uniaxial compression failure of composite rock-coal layer

  • Chen, Shao J.;Yin, Da W.;Jiang, N.;Wang, F.;Guo, Wei J.
    • Geomechanics and Engineering
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    • 제17권4호
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    • pp.333-342
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    • 2019
  • Geological dynamic hazards during coal mining can be caused by the failure of a composite system consisting of roof rock and coal layers, subject to different loading rates due to different advancing velocities in the working face. In this paper, the uniaxial compression test simulations on the composite rock-coal layers were performed using $PFC^{2D}$ software and especially the effects of loading rate on the stress-strain behavior, strength characteristics and crack nucleation, propagation and coalescence in a composite layer were analyzed. In addition, considering the composite layer, the mechanisms for the advanced bore decompression in coal to prevent the geological dynamic hazards at a rapid advancing velocity of working face were explored. The uniaxial compressive strength and peak strain are found to increase with the increase of loading rate. After post-peak point, the stress-strain curve shows a steep stepped drop at a low loading rate, while the stress-strain curve exhibits a slowly progressive decrease at a high loading rate. The cracking mainly occurs within coal, and no apparent cracking is observed for rock. While at a high loading rate, the rock near the bedding plane is damaged by rapid crack propagation in coal. The cracking pattern is not a single shear zone, but exhibits as two simultaneously propagating shear zones in a "X" shape. Following this, the coal breaks into many pieces and the fragment size and number increase with loading rate. Whereas a low loading rate promotes the development of tensile crack, the failure pattern shows a V-shaped hybrid shear and tensile failure. The shear failure becomes dominant with an increasing loading rate. Meanwhile, with the increase of loading rate, the width of the main shear failure zone increases. Moreover, the advanced bore decompression changes the physical property and energy accumulation conditions of the composite layer, which increases the strain energy dissipation, and the occurrence possibility of geological dynamic hazards is reduced at a rapid advancing velocity of working face.

입자의 크기에 따른 흑연 보강 전도성 고분자 복합재료의 특성 연구 (Effect of particle size on graphite reinforced conductive polymer composites)

  • 허성일;윤진철;오경석;한경섭
    • 한국복합재료학회:학술대회논문집
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    • 한국복합재료학회 2005년도 춘계학술발표대회 논문집
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    • pp.257-260
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    • 2005
  • Graphite reinforced conductive polymer composites were fabricated by the compression molding technique. Graphite powder was mixed with an phenol resin to impart electrical property in composites. The ratio and particle size of graphite powder were varied to investigate electrical conductivity of cured composites. In this study, graphite reinforced conductive polymer composites with high filler loadings(>66wt.%) were manufactured to accomplish high electrical conductivity. With increasing the loading ratio of graphite powder, the electrical conductivity and flexural strength increased. However. above 80wt.% filler loadings, flexural strength decreased due to lack of resin. Regardless of graphite particle size, electrical conductivity wasn’t varied. On the other hand, with decreasing particle size, flexural strength increased due to high specific surface area.

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평균응력이 AZ31 마그네슘합금의 렌덤진전균열크기 확률분포에 미치는 영향 (Effect of Mean Stress on Probability Distribution of Random Grown Crack size in Magnesium Alloy AZ31)

  • 최선순;이억섭
    • 한국생산제조학회지
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    • 제18권5호
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    • pp.536-543
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    • 2009
  • In this paper the mean stress effects on the probability distribution of the random grown crack size at a specified loading cycle are studied through the fatigue crack propagation tests, which are conducted on the specimens of magnesium alloy under four different stress ratios. Through 80 replicates the probability distributions of the grown crack size are obtained. The goodness-of-fit for probability distributions of the random grown crack size are investigated by Anderson-Darling test and the best fit for those probability distributions is found to be a 3-parameter Weibull distribution. The effects of the mean stress on the probability distribution of the random grown crack size are also estimated.

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A review of effects of partial dynamic loading on dynamic response of nonlocal functionally graded material beams

  • Ahmed, Ridha A.;Fenjan, Raad M.;Hamad, Luay Badr;Faleh, Nadhim M.
    • Advances in materials Research
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    • 제9권1호
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    • pp.33-48
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    • 2020
  • With the use of differential quadrature method (DQM), forced vibrations and resonance frequency analysis of functionally graded (FG) nano-size beams rested on elastic substrate have been studied utilizing a shear deformation refined beam theory which contains shear deformations influence needless of any correction coefficient. The nano-size beam is exposed to uniformly-type dynamical loads having partial length. The two parameters elastic substrate is consist of linear springs as well as shear coefficient. Gradation of each material property for nano-size beam has been defined in the context of Mori-Tanaka scheme. Governing equations for embedded refined FG nano-size beams exposed to dynamical load have been achieved by utilizing Eringen's nonlocal differential law and Hamilton's rule. Derived equations have solved via DQM based on simply supported-simply supported edge condition. It will be shown that forced vibrations properties and resonance frequency of embedded FG nano-size beam are prominently affected by material gradation, nonlocal field, substrate coefficients and load factors.

Application of adaptive neuro-fuzzy system in prediction of nanoscale and grain size effects on formability

  • Nan Yang;Meldi Suhatril;Khidhair Jasim Mohammed;H. Elhosiny Ali
    • Advances in nano research
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    • 제14권2호
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    • pp.155-164
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    • 2023
  • Grain size in sheet metals in one of the main parameters in determining formability. Grain size control in industry requires delicate process control and equipment. In the present study, effects of grain size on the formability of steel sheets is investigated. Experimental investigation of effect of grain size is a cumbersome method which due to existence of many other effective parameters are not conclusive in some cases. On the other hand, since the average grain size of a crystalline material is a statistical parameter, using traditional methods are not sufficient for find the optimum grain size to maximize formability. Therefore, design of experiment (DoE) and artificial intelligence (AI) methods are coupled together in this study to find the optimum conditions for formability in terms of grain size and to predict forming limits of sheet metals under bi-stretch loading conditions. In this regard, a set of experiment is conducted to provide initial data for training and testing DoE and AI. Afterwards, the using response surface method (RSM) optimum grain size is calculated. Moreover, trained neural network is used to predict formability in the calculated optimum condition and the results compared to the experimental results. The findings of the present study show that DoE and AI could be a great aid in the design, determination and prediction of optimum grain size for maximizing sheet formability.

Brazilian시험의 수치해석 시뮬레이션을 통한 파괴인성 산정 및 영향변수 분석 (Fracture Toughness Evaluation and Influence Parameter Analysis by Numerical Simulation of Brazilian Test)

  • 신중호;박찬;신희순;정용복;이희근
    • 한국암반공학회:학술대회논문집
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    • 한국암반공학회 2000년도 암반공학문제의 수치해석(Numerical Analysis in Rock Engineering Problems)
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    • pp.67-75
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    • 2000
  • 암석의 파괴인성 측정법으로서 최근에 연구되고 있는 Brazilian 파괴인성 시험을 PFC code를 이용하여 수치해석적으로 시뮬레이션하였다. 이로부터 가압면 형태, 시험편과 모델링 입자의 크기 관계, 가압면 각도 범위, 하중속도 등의 영향 변수에 대한 분석 및 적정 기준에 대해 검 토하였다. 균등한 하중 전달을 위해 가압면이 평면인 Brazilian 시험편을 도입하였는데, 시험편 중앙에서 초기 인장균열을 생성하고 파괴인성 산정에 필요한 안정한 인장균열 진전 시점의 임계하중이 나타나는 하중-변위 곡선을 얻을 수 있는 가압면 각도는 $20^{\circ}C$ -$40^{\circ}C$ 범위로 나타났다. 가압면 각도가 $20^{\circ}C$ 인 경우에, 디스크 시험편의 구성입자 반경이 1 mm 이하이고 하중속도가 0.01 mm/s 이하인 조건에서는 거의 일정한 파괴인성값을 얻을 수가 있었다. 가압면 각도가 $20^{\circ}C$이상이고 하중속도가 0.01 mm/s 이하는 파괴인성 측정에서 중요한 기본 조건인 시험편 중 에서의 인장균열 생성 및 이 인장균열의 안정적인 진전 제어를 위한 조건인 것으로 볼 수가 있다.

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Brazilian 시험의 수치해석 시뮬레이션을 통한 파괴인성 산정 및 영향변수 분석 (Fracture Toughness Evaluation and Influence Parameter Analysis by Numerical Simulation of Brazilian Test)

  • 신중호;박찬;신희순;정용복;이희근
    • 터널과지하공간
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    • 제10권3호
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    • pp.320-328
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    • 2000
  • 암석의 파괴인성 측정법으로서 최근에 연구되고 있는 Brazilian 파괴인성 시험을 PFC code를 이용하여 수치 해석적으로 시뮬레이션하였다. 이로부터 가압면 형태, 시험편과 모델링 입자의 크기 관계, 가압면 각도 범위, 하중속도 등의 영향 변수에 대한 분석 및 적정 기준에 대해 검토하였다. 균등한 하중 전달을 위해 가압면이 평면인 Brazilian 시험편을 도입하였는데, 시험편 중앙에서 초기 인장균열을 생성하고 파괴인성 산정에 필요한 안정한 인장균열 진전 시점의 임계하중이 나타나는 하중-변위 곡선을 얻을 수 있는 가압면 각도는 20$^{\circ}$~40$^{\circ}$범위로 나타났다. 가압면 각도가 20$^{\circ}$인 경우에, 디스크 시험편의 구성입자 반경이 1mm 이하이고 하중속도가 0.01mm/s 이하인 조건에서는 거의 일정한 파괴인성값을 얻을 수가 있었다. 가압면 각도가 20$^{\circ}$이상이고 하중속도가 0.01mm/s 이하는 파괴인성 측정에서 중요한 기본 조건인 시험편 중앙에서의 인장균열 생성 및 이 인장균열의 안정적인 진전 제어를 위한 조건인 것으로 볼 수가 있다.

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