• 제목/요약/키워드: static modulus

검색결과 315건 처리시간 0.023초

20피트급 파워보트의 구조강도 평가 및 최적화 (Structural Strength Assessment and Optimization for 20 Feet Class Power Boat)

  • 염재선;유재훈
    • 대한조선학회논문집
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    • 제53권2호
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    • pp.108-114
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    • 2016
  • Recently, there has been a growing interest in marine leisure sports and high speed power boat for fishing. The prototype of 20 feet class power boat was developed and authors are joined in this government-led project. The research was performed to evaluate the optimal structure and design of the structural strength necessary to ensure the structural safety of the power boat. A new material ROCICORE fiber added to the mat and roving was adopted for high-power tenacity. ANSYS Workbench has been used to make the structural model, evaluate the strength and optimize the structural design. The response of the structure to quasi-static slamming loads according to the rules and regulations of ISO 12215-5, Lloyd’s Register of Shipping and Korean Register has been implemented and studied. An optimization study for the structural response is carried out by changing the plate thickness and section modulus of stiffeners. The power boat structure derived fuel efficiency is optimized by performing the best possible structural design to minimize the hull weight.

WC위 TiAlN 코팅층에 미치는 Sand Blasting 처리의 영향 (Effects of Sand Blasting on TiAlN Coating on WC Hard Metal Alloy Tip)

  • 이한영
    • Tribology and Lubricants
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    • 제37권2호
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    • pp.54-61
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    • 2021
  • The effect of the sand blasting before TiAlN coating in the manufacture of WC hard metal alloy tips have been studied. For four different tips, according to the status of processing of the sand blasting and the coating, residual stress measurement by X-ray diffraction and several tests for mechanical properties have been conducted. The results suggest that there was no difference in static mechanical properties, such as hardness, surface roughness and elastic modulus, between two coatings. Furthermore, compressive residual stress was generated equally on their surfaces. Additionally, the compressive residual stress in substrate WC was found to increase greatly when subjected to sand blasting treatment. However, the compressive residual stress decrease after coating regardless of sand blasting treatment. Nevertheless, it is confirmed that the compressive residual stress generated in the coating after sand blasting is less than that in the non-sandblasting coating. This was attributed to the plastic deformation occurring in the WC substrate during coating after sand blasting. In contrast to the scratch test results, sand blasting was assumed to have a negative effect on the adhesion between the coating and substrate. This is because there is a high possibility of microcracks due to plastic deformation in the WC substrate under the coating after sand blasting.

Mechanical properties and damage constitutive model of self-compacting rubberized concrete

  • Ke, Xiaojun;Xiang, Wannian;Ye, Chunying
    • Computers and Concrete
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    • 제30권4호
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    • pp.257-267
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    • 2022
  • Two different types of rubber aggregates (40 mesh rubber powder and 1-4 mm rubber particles respectively) were devised to substitute fine aggregates at 10%, 15%, 20% and 30% by volume in self-compacting concrete to investigate their basic mechanical properties. The results show that with the increase of rubber content, the reduction of compressive strength, splitting tensile strength and static modulus of elasticity gradually increase, and energy dissipation performance gradually increase. The rubber addition significantly reduces brittleness and decelerates damaged process. Whilst, the effect of rubber particles is greater when they are finer. Considering the mechanical properties, the optimal rubber content is 10%. It is recommended that the rubber volume content in rubberized concrete (RC) should not be higher than 20%. In addition, a constitutive model under uniaxial compression was proposed basing on the strain equivalent principle of Lemaitre and the damage theory, which was in good agreement with the test curves.

Thickness stretching and nonlinear hygro-thermo-mechanical loading effects on bending behavior of FG beams

  • Faicel, Khadraoui;Abderahmane, Menasria;Belgacem, Mamen;Abdelhakim, Bouhadra;Fouad, Bourada;Soumia, Benguediab;Kouider Halim, Benrahou;Mohamed, Benguediab;Abdelouahed, Tounsi
    • Structural Engineering and Mechanics
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    • 제84권6호
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    • pp.783-798
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    • 2022
  • This study attempts to investigate the impact of thickness stretching and nonlinear hygro-thermo-mechanical loading on the bending behavior of FG beams. Young's modulus, thermal expansion, and moisture concentration coefficients vary gradually and continuously according to a power-law distribution in terms of the volume fractions of the constituent materials. In addition, the interaction between the thermal, mechanical, and moisture loads is involved in the governing equilibrium equations. Using the present developed analytical model and Navier's solution technique, the numerical results of non-dimensional stresses and displacements are compared with those obtained by other 3D theories. Furthermore, the present analytical model is appropriate for investigating the static bending of FG beams exposed to intense hygro-thermo-mechanical loading used for special technical applications in aerospace, automobile, and civil engineering constructions.

Numerical comparison between lattice and honeycomb core by using detailed FEM modelling

  • Giuseppe, Pavano
    • Advances in aircraft and spacecraft science
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    • 제9권5호
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    • pp.377-400
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    • 2022
  • The aim of this work is a numerical comparison (FEM) between lattice pyramidal-core panel and honeycomb core panel for different core thicknesses. By evaluating the mid-span deflection, the shear rigidity and the shear modulus for both core types and different core thicknesses, it is possible to define which core type has got the best mechanical behaviour for each thickness and the evolution of that behaviour as far as the thickness increases. Since a specific base geometry has been used for the lattice pyramidal core, the comparison gives us the opportunity to investigate the unit cell strut angle giving the higher mechanical properties. The presented work considers a detailed FEM modelling of a standard 3-point bending test (ASTM C393/C393M Standard Practice). Detailed FEM modelling addresses to detailed discretization of cores by means of beam elements for lattice core and shell elements for honeycomb core. Facings, instead, have been modelled by using shell elements for both sandwich panels. On lattice core structure, elements of core and facings are directly connected, to better simulate the additive manufacturing process. Otherwise, an MPC-based constraint between facings and core has been used for honeycomb core structure. Both sandwich panels are entirely built of Aluminium alloy. Prior to compare the two models, the FEM sandwich panel model with lattice pyramidal core needs to be validated with 3-point bending test experimental results, in order to ensure a good reliability of the FEM approach and of the comparison. Furthermore, the analytical validation has been performed according to Allen's theory. The FEM analysis is linear static with an increasing midspan load ranging from 50N up to 500N.

Experimental and theoretical analysis of electronic musical structures with smart nanoparticles

  • Jing Han;Maryam Shokravi;F. Ming
    • Structural Engineering and Mechanics
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    • 제91권4호
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    • pp.417-426
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    • 2024
  • Nanotechnology has emerged as a promising avenue for enhancing musical structures. In this study, we analyze the static behavior of laser harp (i.e., electronic musical instrument) reinforced with Zinc Oxide (ZnO) nanoparticles. Leveraging the piezoelectric properties of ZnO nanoparticles, the structure is subjected to an electric field for intelligent control. The electronic musical structure is situated in a foundation with vertical springs and shear modulus constants. We employ the exponential Shear Deformation Beam Theory (ESDBT) to mathematically model the structure. A micro-electro-mechanical model is employed to determine the equivalent properties of the system. By utilizing nonlinear stress-strain relations, energy methods, and Hamilton's principle, we derive the motion equations. The buckling load of the electronic musical beam is calculated using the Difference Quadrature Method (DQM). The primary objective of this study is to present a mathematical model for electronic musical beams and determining the buckling load of the structure and to investigate the influence of nanotechnology and electric fields on its buckling behavior. The buckling is the case when the structure becomes deforms and unstable. Our findings reveal that the application of negative external voltage to the electronic musical structure increases both the stiffness and the buckling load of the musical system. Furthermore, reinforcing the electronic musical structure with ZnO nanoparticles results in an increased buckling load. Notably, the maximum enhancement in the 28-day compressive and tensile strengths of samples containing zinc oxide nanoparticles compared to the control sample resulting in increases of 18.70% and 3.77%, respectively.

Construction stages analyses using time dependent material properties of concrete arch dams

  • Sevim, Baris;Altunisik, Ahmet C.;Bayraktar, Alemdar
    • Computers and Concrete
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    • 제14권5호
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    • pp.599-612
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    • 2014
  • This paper presents the effects of the construction stages using time dependent material properties on the structural behaviour of concrete arch dams. For this purpose, a double curvature Type-5 arch dam suggested in "Arch Dams" symposium in England in 1968 is selected as a numerical example. Finite element models of Type-5 arch dam are modelled using SAP2000 program. Geometric nonlinearity is taken into consideration in the construction stage analysis using P-Delta plus large displacement criterion. In addition, the time dependent material strength variations and geometric variations are included in the analysis. Elasticity modulus, creep and shrinkage are computed for different stages of the construction process. In the construction stage analyses, a total of 64 construction stages are included. Each stage has generally $6000m^3$ concrete volume. Total duration is taken into account as 1280 days. Maximum total step and maximum iteration for each step are selected as 200 and 50, respectively. The structural behaviour of the arch dam at different construction stages has been examined. Two different finite element analyses cases are performed. In the first case, construction stages using time dependent material properties are considered. In the second case, only linear static analysis (not considered construction stages) is taken into account. Variation of the displacements and stresses are obtained from the both analyses. It is highlighted that construction stage analysis using time dependent material strength variations and geometric variations has an important effect on the structural behaviour of arch dams. The maximum longitudinal, transverse and vertical displacements obtained from construction stages and static analyses are 1.35 mm and 0 mm; -8.44 and 6.68 mm; -4.00 and -9.90 mm, respectively. In addition, vertical displacements increase from the base to crest of the dam for both analyses. The maximum S11, S22 and S33 stresses are obtained as 1.60MPa and 2.84MPa; 1.39MPa and 2.43MPa; 0.60MPa and 0.50MPa, respectively. The differences between maximum longitudinal, transverse, and vertical stresses obtained from construction stage and static analyses are 78%, 75%, and %17, respectively. On the other hand, there is averagely 12% difference between minimum stresses for all three directions.

녹차-숯-목재섬유 복합보드의 동적탄성률에 미치는 구성원료의 종류 및 배합비율의 영향 (Effect of the Kind and Content of Raw Materials on Dynamic Modulus of Elasticity of Hybrid Composite Boards Composed of Green Tea, Charcoals and Wood Fiber)

  • 박한민;허황선;성은종;남경한;임재섭;변희섭
    • 농업생명과학연구
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    • 제46권6호
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    • pp.75-86
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    • 2012
  • 이 연구에서는 녹차-목재섬유 복합보드에 강도성능과 기능성을 보강한 건축내장재를 개발하기 위하여 목재섬유에 녹차와 3종류의 숯을 혼합한 녹차-숯-목재섬유 복합보드를 제작하였고, 구성원료의 종류 및 그 배합비율이 복합보드의 동적탄성률에 미치는 영향을 조사하였다. 또한, 동적탄성률을 이용하여 비파괴적으로 정적 휨강도성능을 예측하였다. 녹차-숯-목재섬유 복합보드의 동적탄성률은 백탄함유 복합보드에서 전체적으로 약간 우수하였으나, 숯의 종류에 따른 차이는 크지 않았다. 녹차와 숯의 배합비율이 증가할수록 복합보드의 동적탄성률의 감소하였다. $E_1$급 요소수지를 사용한 복합보드가 $E_0$급 요소수지를 사용한 그것보다 높은 동적탄성률을 나타내었으나, 양수지간의 차이는 녹차-목재섬유 복합보드에 비해 현저히 적었고, 녹차-목재섬유 복합보드보다 현저한 동적탄성률의 향상을 나타내는 것이 확인되었다. 복합보드의 동적탄성률과 정적 휨 강도성능사이에 대부분 1%의 신뢰수준의 상관관계가 확인되어, 동적탄성률로부터 정적 휨 강도성능이 예측이 가능하였다.

왕겨재를 혼입한 투수성 폴리머 콘크리트의 공학적 성질 (Engineering Properties of Permeable Polymer Concrete with Rice-Husk Ash)

  • 성찬용;윤준노;김경태;김영익
    • 농업과학연구
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    • 제25권1호
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    • pp.89-96
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    • 1998
  • 이 연구는 폴리머를 결합재로 사용하고 시멘트와 왕겨재를 충전재로 혼입한 투수용 폴리머 콘크리트의 공학적 성질을 구명한 것으로서, 이 연구를 통해 얻어진 결과를 요약하면 다음과 같다. 1. 각 강도는 시멘트와 왕겨재를 중량비로 반반씩 충전재로 사용한 투수용 폴리머 콘크리트에서 가장 크게 나타났고, 보통 시멘트 콘크리트보다 압축강도에서는 24%, 인장강도에서는 123%, 휨강도에서는 90%가 증가되었다. 2. 정탄성계수는 $1.27{\times}10^5{\sim}1.75{\times}10^5kgf/cm^2$으로 보통 시멘트 콘크리트의 58~70%정도로서 변형성이 크게 나타났으며, 충전재로는 시멘트와 왕겨재를 중량비로 반반씩 사용한 투수용 폴리머 콘크리트에서 가장 높은 값을 보였고 왕겨재의 혼입량이 많을수록 높은 값을 보였으며, 포아손수는 3.140~5.314로 보통 시멘트 콘크리트보다 작게 나타났다. 3. 초음파진동속도는 2,503~3,083m/sec로서 보통 시멘트 콘크리트와 거의 비슷하게 나타났으며, 시멘트와 왕겨재를 반반씩 충전재로 사용한 투수용 폴리머 콘크리트에서 비교적 높은 값을 보였다. 4. 투수량은 $4.612{\sim}5.913{\ell}/cm^2/hr$로서 배합설계에 따라 크게 좌우되었으며, 이러한 콘크리트는 투수를 요하는 구조물에 유용하게 이용할 수 있을 것이다.

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초경량(超輕量) 폴리머 콘크리트의 응력(應力)-변형특성(變形特性) (Stress-Strain Properties of Surlightweight Polymer Concrete)

  • 성찬용;김경태;민정기;김영익;윤준노;정현정
    • 농업과학연구
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    • 제25권2호
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    • pp.271-277
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    • 1998
  • 본 연구는 폴리머와 인공경량 세골재 및 인공경량 조골재를 사용한 초경량 폴리머 콘크리트의 응력-변형특성을 구명한 것으로서, 이 연구를 통해 얻어진 결과를 요약하면 다음과 같다. 1. 동탄성 계수는 $1.514{\times}10^5{\sim}1.916{\times}10^5kgf/cm^2$로써 보통 시멘트 콘크리트의 48~96%정도이며, 인공경량 세골재의 양이 적을수록 크게 나타났다. 2. 정탄성계수는 $2.552{\times}10^4{\sim}4.386{\times}10^4kgf/cm^2$으로 보통 시멘트 콘크리트의 8~22%정도로 작게 나타났고, 포아손수도 보통 시멘트 콘크리트보다 작게 나타났다. 3. 응력-변형율곡선은 모든 배합에서 응력의 증가와 함께 증가하다가 최대하중에서 파괴된후 급격한 감소를 보였으며, 보통 시멘트 콘크리트보다 취성이 크게나타났다. 4. 최대응력하에서의 변형율은 P1에서 $6.975{\times}10^{-3}$으로 가장 크게 나타났고, P9에서 $1.600{\times}10^{-3}$으로 가장 작게 나타났으며, 인공경량 조골재의 양이 많을수록 작게 나타났다.

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