• 제목/요약/키워드: Elastic strain

검색결과 1,440건 처리시간 0.028초

전기화학적 염화물 추출 후 철근-콘크리트 보의 휨 거동 (Flexural Behavior of RC Beam After Completion of Electrochemical Chloride Extraction)

  • 이정욱;안기용
    • 한국건설순환자원학회논문집
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    • 제11권4호
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    • pp.484-492
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    • 2023
  • 본 연구에서는 전기화학적 염화물 추출(ECE) 완료된 RC 보의 구조적 거동을 기존에 주로 사용되었던 부착 강도 측정이 아닌 3점 재하 시험을 통해 분석했다. 그 결과, ECE 처리에 의해 콘크리트 보의 휨 강성은 저하되었으나, 최대하중 측면에서 강도는 향상되는 것으로 나타났다. 또한, ECE에 의해 인장 변형률이 증가하여 인장 균열에 대한 저항성은 향상되었으며, 관성 모멘트 감소율은 감소하였다. 이러한 구조적 거동 측면의 이점에도 불구하고 연성 및 휨 강성은 저하되었다. 콘크리트보의 휨 강성은 선형 탄성 범위에서 유효 단면적의 손실로 인해 감소됐고, 실제로 인장변형에 의해 파손된 상태에서 단면 2차 모멘트는 약 70 %의 손실되었다. 그러나 이러한 단면 손실에 의한 관성 모멘트 감소율은 ECE에 의해 더 낮아졌는데, 이는 균열에 대한 저항성이 증가되는 반면, 변형량이 증가되어 사용성 측면에서의 위험성은 더 증가됨을 의미한다.

Forced vibration of a sandwich Timoshenko beam made of GPLRC and porous core

  • Mohammad Safari;Mehdi Mohammadimehr;Hossein Ashrafi
    • Structural Engineering and Mechanics
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    • 제88권1호
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    • pp.1-12
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    • 2023
  • In this study, forced vibration behavior of a piezo magneto electric sandwich Timoshenko beam is investigated. It is assumed a sandwich beam with porous core and graphene platelet reinforced composite (GPLRC) in facesheets subjected to magneto-electro-elastic and temperature-dependent material properties. The magneto electro platelets are under linear function along with the thickness that includes a cosine function and magnetic and electric constant potentials. The governing equations of motion are derived using modified strain gradient theory for microstructures. The effects of material length scale parameters, temperature change, different distributions of porous, various patterns of graphene platelets, and the core to face sheets thickness ratio on the natural frequency and excited frequency of a sandwich Timoshenko beam are scrutinized. Various size-dependent methods effects such as MSGT, MCST, and CT on the natural frequency is considered. Moreover, the final results affirm that the increase in porosity coefficient and volume fractions lead to an increase in the amount of natural frequency; while vice versa for the increment in the aspect ratio. From forced vibration analysis, it is understood that by increasing the values of volume fraction and the length thickness of GPL, the maximum deflection of a sandwich beam decreases. Also, it is concluded that increasing the temperature, the thickness of GPL, and the initial force leads to a decrease in the maximum deflection of GPL. It is also shown that resonance phenomenon occurs when the natural and excitation frequencies become equal to each other. Outcomes also reveal that the third natural frequency owns the minimum value of both deflection and frequency ratio and the first natural frequency has the maximum.

대형 고속프레스의 유한요소해석을 통한 진동 및 소음에 대한 연구 (A Study on Vibration and Noise through Finite Element Analysis of Large High Speed Press)

  • 김승수;정철재;이춘규
    • Design & Manufacturing
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    • 제17권4호
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    • pp.14-23
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    • 2023
  • The electric vehicle market is developing rapidly around the world. Also, parts of electric vehicles require precision.In order to produce high-precision motor cores,Press equipment must also have good precision. Drive motor cores are an important technology for electric vehicles. It uses a large high-speed press to mass-produce drive motor cores. Because it's a large high-speed press, there are many reasons why the precision is not good. One of the causes is vibration and noise. Recently, as environmental demands have become stricter, regulations on noise and vibration have been strengthened. It is important for press machines to reduce vibration first for sound insulation and dust proofing. This is because the "breakthrough" phenomenon occurs in the press. Dynamic precision is the precision under the load of the press, Design considering strain and stiffness shall be made. Vibration and noise may occur due to SPM of high-speed press,And vibration and noise can cause structural deformation of the press. Structural deformation of the press can affect the precision of the product.Noise and vibration also cause problems for workers and work environments. Problems with vibration and noise occur during press processing, and vibration and noise lead to damage to the mold or defects in the product. Reliability in high-quality technology must be secured with low noise and low vibration during press processing. Modular shape and deformation energy effects were analyzed through finite element analysis. In this study, a study on vibration and noise countermeasures was conducted through finite element analysis of a large high-speed press.

Analysis of Compression and Cushioning Behavior for Specific Molded Pulp Cushion

  • Jongmin Park;Gihyeong Im;Kyungseon Choi;Eunyoung Kim;Hyunmo Jung
    • 한국포장학회지
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    • 제30권1호
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    • pp.53-62
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    • 2024
  • Molded pulp products has become more attractive than traditional materials such as expanded polystyrene foam (EPS) owing to low-priced recycled paper, environmental benefits such as biodegradability, and low production cost. In this study, various design factors regarding compression and cushioning characteristics of the molded pulp cushion with truncated pyramid-shaped structural units were analyzed using a test specimen with multiple structural units. The adopted structural factors were the geometric shape, wall thickness, and depth of the structural unit. The relative humidity was set at two levels. We derived the cushion curve model of the target molded pulp cushion using the stress-energy methodology. The coefficient of determination was approximately 0.8, which was lower than that for EPS (0.98). The cushioning performance of the molded pulp cushion was affected more by the structural factors of the structural unit than by the material characteristics. Repeated impacts, higher static stress, and drop height decreased the cushioning performance. Its compression behavior was investigated in four stages: elastic, first buckling, sub-buckling, and densification. It had greater rigidity during initial deformation stages; then, during plastic deformation, the rigidity was greatly reduced. The compression behavior was influenced by structural factors such as the geometric shape and depth of the structural unit and environmental conditions, rather than material properties. The biggest difference in the compression and cushioning characteristics of molded pulp cushion compared to EPS is that it is greatly affected by structural factors, and in addition, strength and resilience are expected to decrease due to humidity and repetitive loads, so future research is needed.

Nondestructive detection of crack density in ultra-high performance concrete using multiple ultrasound measurements: Evidence of microstructural change

  • Seungo Baek;Bada Lee;Jeong Hoon Rhee;Yejin Kim;Hyoeun Kim;Seung Kwan Hong;Goangseup Zi;Gun Kim;Tae Sup Yun
    • Computers and Concrete
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    • 제33권4호
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    • pp.399-407
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    • 2024
  • This study nondestructively examined the evolution of crack density in ultra-high performance concrete (UHPC) upon cyclic loading. Uniaxial compression was repeatedly applied to the cylindrical specimens at levels corresponding to 32% and 53% of the maximum load-bearing capacity, each at a steady strain rate. At each stage, both P-wave and S-wave velocities were measured in the absence of the applied load. In particular, the continuous monitoring of P-wave velocity from the first loading prior to the second loading allowed real-time observation of the strengthening effect during loading and the recovery effect afterwards. Increasing the number of cycles resulted in the reduction of both elastic wave velocities and Young's modulus, along with a slight rise in Poisson's ratio in both tested cases. The computed crack density showed a monotonically increasing trend with repeated loading, more significant at 53% than at 32% loading. Furthermore, the spatial distribution of the crack density along the height was achieved, validating the directional dependency of microcracking development. This study demonstrated the capability of the crack density to capture the evolution of microcracks in UHPC under cyclic loading condition, as an early-stage damage indicator.

Static analysis of nonlinear FG-CNT reinforced nano-composite beam resting on Winkler/Pasternak foundation

  • Mostefa Sekkak;Rachid Zerrouki;Mohamed Zidour;Abdelouahed Tounsi;Mohamed Bourada;Mahmoud M Selim;Hosam A. Saad
    • Advances in nano research
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    • 제16권5호
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    • pp.509-519
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    • 2024
  • In this study, the static analysis of carbon nanotube-reinforced composites (CNTRC) beams resting on a Winkler-Pasternak elastic foundation is presented. The developed theories account for higher-order variation of transverse shear strain through the depth of the beam and satisfy the stress-free boundary conditions on the top and bottom surfaces of the beam. To study the effect of carbon nanotubes distribution in functionally graded (FG-CNT), we introduce in the equation of CNT volume fraction a new exponent equation. The SWCNTs are assumed to be aligned and distributed in the polymeric matrix with different patterns of reinforcement. The rule of mixture is used to describe the material properties of the CNTRC beams. The governing equations were derived by employing Hamilton's principle. The models presented in this work are numerically provided to verify the accuracy of the present theory. The analytical solutions are presented, and the obtained results are compared with the existing solutions to verify the validity of the developed theories. Many parameters are investigated, such as the Pasternak shear modulus parameter, the Winkler modulus parameter, the volume fraction, and the order of the exponent in the volume fraction equation. New results obtained from bending and stresses are presented and discussed in detail. From the obtained results, it became clear the influence of the exponential CNTs distribution and Winkler-Pasternak model improved the mechanical properties of the CNTRC beams.

현장시험과 Class-A 및 C1 type 수치해석을 통한 강관매입말뚝의 거동에 대한 연구 (A Study on the Behaviour of Prebored and Precast Steel Pipe Piles from Full-Scale Field Tests and Class-A and C1 Type Numerical Analyses)

  • 김성희;정경자;정상섬;전영진;김정섭;이철주
    • 한국지반환경공학회 논문집
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    • 제18권7호
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    • pp.37-47
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    • 2017
  • 본 연구에서는 강관매입말뚝의 하중-침하 및 전단응력 전이 특성을 분석하기 위하여 시험시공 및 수치해석을 수행하였다. 동재하시험 및 정재하시험을 수행한 결과 EOID 및 Restrike 시험을 통해 평가된 말뚝의 설계지지력은 정재하시험에서 평가된 설계 지지력에 비해 각각 약 56~105% 및 65~121%의 범위를 보였으며, 말뚝재하시험 이전에 수행된 Class-A type 수치해석의 경우 38~142%의 범위를 보였다. 또한 Restrike 시험에서 평가된 설계지지력은 EOID 시험의 설계지지력에 비해 12~60% 증가된 것으로 평가되었다. EOID에서는 선단지지력이 크게 측정되는 데 비해, Restrike 시험에서는 주면마찰력이 크게 측정되었는데 Restrike 시험의 타격에너지가 충분하지 않은 경우 말뚝의 선단지지력이 과소평가될 가능성이 있는 것으로 분석되었다. 본 연구의 분석에 의하면 동재하시험을 통해 말뚝의 지지력을 합리적으로 평가하기 위해서는 주면지지력은 Restrike 시험 결과를, 선단지지력은 EOID 시험 결과를 적용하는 것이 합리적인 것을 알 수 있었다. 정재하시험 실측값과 수치해석으로부터 예측된 하중-침하 관계는 탄성범위까지는 어느 정도 유사하지만 항복이 발생한 이후의 거동은 크게 벗어났다. 즉 실측값은 항복 이후 경화현상이 거의 없이 마치 탄성-완전소성(elastic-perfectly plastic) 재료와 유사하게 파괴에 도달되는 반면에, 수치해석에서는 변형경화(strain hardening)과정을 거치면서 파괴에 점진적으로 도달되는 경향을 보였다. 말뚝의 하중-침하 특성은 지반의 강성에 영향을 받으며, 축력분포는 지반의 전단 강도상수에 영향을 받는 것으로 나타났다.

모래 지반의 입자크기가 지반-말뚝 시스템의 동적 거동에 미치는 영향 평가 (Evaluation of Particle Size Effect on Dynamic Behavior of Soil-pile System)

  • 한진태;유민택;양의규;김명모
    • 한국지반공학회논문집
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    • 제26권7호
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    • pp.49-58
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    • 2010
  • 흙의 입자 크기에 따른 지반-말뚝 시스템의 동적 거동 차이를 알아보기 위해, 단말뚝 및 군말뚝에 대한 1g 진동대모형 실험을 수행하였다. 지반 조성에 사용된 시료는 주문진 표준사와 호주산 세사이며, 흙의 입자 크기에 따른 영향을 알아보기 위해 다른 실험 조건은 동일하게 하였다. 단말뚝 실험 결과 말뚝의 횡방향 변위는 말뚝 직경의 1%인 탄성 영역 이내로 발생하였다. 단말뚝의 p-y 거동을 살펴보면 동일 변위에서 주문진 표준사 모형 지반의 지반 반력 값이 호주산 세사 모형 지반에서의 지반 반력보다 더 크게 나타났으며, 이는 주문진 표준사 모형 지반에서의 초기 탄성 강성이 더 크게 평가됨을 의미한다. 이러한 입자 크기에 따른 초기 지반 강성 차이는 공진주 실험 및 삼축압축실험을 통해서 확인하였다. 또한 외삽을 통해 단말뚝의 동적 p-y 중추 곡선을 산정한 결과 동적 p-y 중추곡선의 강성이 주문진 표준사 지반에서 호주산세사 지반보다 더 크게 산정되었다. 그러므로 사질토 지반에서 입자크기에 관계없이 동일한 p-y곡선을 적용하여 말뚝의 동적 거동을 예측하는 방법에 오류가 있을 수 있다. 군말뚝 실험에서는 단말뚝 실험과 같은 실험 조건에서 말뚝 직경의 1% 이상의 횡방향 변위가 발생하였으며, 모형 지반 종류와 상관없이 유사한 p-y 거동이 나타났다. 이는 변형율이 큰 비선형 영역에서는 주문진 표준사와 호주산 세사의 강성 차이가 크지 않기 때문이다. 이러한 일련의 단말뚝 및 군말뚝 실험 결과로 볼 때, 군효과를 평가하기 위해 단말뚝의 p-y 곡선에 단순히 p-승수(p-multiplier)를 곱하여 군효과를 고려하는 방법에 오류가 있을 수 있다고 판단된다.

DDInSAR 영상을 이용한 남극 로스 빙붕의 조위변형과 물성 분석 (Analysis of Tidal Deflection and Ice Properties of Ross Ice Shelf, Antarctica, by using DDInSAR Imagery)

  • 한수정;한향선;이훈열
    • 대한원격탐사학회지
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    • 제35권6_1호
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    • pp.933-944
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    • 2019
  • 이 연구에서는 영상레이더(synthetic aperture radar; SAR) 이중차분간섭기법(Double-Differential Interferometric SAR; DDInSAR)을 이용하여 남극 로스 빙붕(Ross Ice Shelf)의 동쪽(A지역)과 서쪽(B지역)에 위치한 육지 경계부 지역의 조위변형을 분석하고, 조위예측 모델의 정밀도와 빙붕의 영률(Young's modulus) 추정을 위해 2015-2016년에 획득된 총7장의 Sentinel-1A SAR 영상을 획득하였다. 먼저, 남극 로스해(Ross Sea)에 대한 대표적인 조위예측 모델인 Ross Sea Height-based Tidal Inverse (Ross_Inv) 모델과 DDInSAR영상에서 추출된 빙붕의 조위변형을 비교한 결과, 모델의 조위예측 오차는 동쪽에서는 3.86 cm로 분석되었으며 조위모델에서 역기압효과가 필수적으로 보정되어야 함을 확인하였다. 그러나 서쪽에서는 역기압효과 보정 후에도 큰 오차가 발생하여 조위모델이 부정확할 수 있음을 확인했다. 또한, 조위변형이 나타나는 힌지 영역(hinge zone)의 폭과 얼음두께의 상관성을 나타내는 1차원 탄성 보 모델에 의거하여 얼음의 영률을 계산하였다. 이를 위해 DDInSAR 영상에서 조위에 의한 변위가 나타나기 시작하는 곳을 지반선(grounding line)으로, 조위에 의한 최대변위가 나타나는 지점을 힌지선(hinge line)으로 새롭게 정의했고, 이두선 사이를 힌지 영역으로 정의했다. 반무한 평면체를 가정한 1차원 탄성 보 모델에 의하면 힌지 영역의 폭은 얼음두께의 0.75승에 정비례한다. DDInSAR에서 나타나는 힌지 영역 중 지반선과 힌지선이 직선에 가까운 지역에서 힌지 영역의 폭을 측정하였고, 이를 BEDMAP2 얼음 두께의 0.75승과의 선형 회귀 분석을 통해 로스 빙붕 동쪽과 서쪽 힌지 영역의 영률을 1.77±0.73 GPa로 추정할 수 있었다. 이러한 방법으로 향후 Sentinel-1 영상이 축적되면 더 정밀한 영률을 추정할 수 있을 것으로 기대된다.

수도(水稻)의 역학적(力學的) 및 리올러지 특성(特性)에 관(關)한 연구(硏究) (Mechanical and Rheological Properties of Rice Plant)

  • 허윤근;차균도
    • 농업과학연구
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    • 제14권1호
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    • pp.98-133
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    • 1987
  • The mechanical and rheological properties of agricultural materials are important for engineering design and analysis of their mechanical harvesting, handling, transporting and processing systems. Agricultural materials, which composed of structural members and fluids do not react in a purely elastic manner, and their response when subjected to stress and strain is a combination of elastic and viscous behavior so called viscoelastic behavior. Many researchers have conducted studies on the mechanical and rheological properties of the various agricultural products, but a few researcher has studied those properties of rice plant, and also those data are available only for foreign varieties of rice plant. This study are conducted to experimentally determine the mechanical and the rheological properties such as axial compressive strength, tensile strength, bending and shear strength, stress relaxation and creep behavior of rice stems, and grain detachment strength. The rheological models for the rice stem were developed from the test data. The shearing characteristics were examined at some different levels of portion, cross-sectional area, moisture content of rice stem and shearing angle. The results obtained from this study were summarized as follows 1. The mechanical properties of the stems of the J aponica types were greater than those of the Indica ${\times}$ Japonica hybrid in compression, tension, bendingand shearing. 2. The mean value of the compressive force was 80.5 N in the Japonica types and 55.5 N in the Indica ${\times}$ Japonica hybrid which was about 70 percent to that of the Japonica types, and then the value increased progressively at the lower portion of the stems generally. 3. The average tensile force was about 226.6 N in the Japonica types and 123.6 N in the Indica ${\times}$ Japonica hybrid which was about 55 percent to that of the Japonica types. 4. The bending moment was $0.19N{\cdot}m$ in the Japonica types and $0.13N{\cdot}m$ in the Indica ${\times}$ Japonica hybrid which was 68 percent to that of the Japonica types and the bending strength was 7.7 MPa in the Japonica types and 6.5 MPa in the Indica ${\times}$ Japonica hybrid respectively. 5. The shearing force was 141.1 N in Jinju, the Japonica type and 101.4 N in Taebaeg, the Indica ${\times}$ Japonica hybrid which was 72 percent to that of Jinju, and the shearing strength of Taebaeg was 63 percent to that of Jinju. 6. The shearing force and the shearing energy along the stem portion in Jinju increased progressively together at the lower portions, meanwhile in Taebaeg the shearing force showed the maximum value at the intermediate portion and the shearing energy was the greatest at the portion of 21 cm from the ground level, and also the shearing strength and the shearing energy per unit cross-sectional area of the stem were the greater values at the intermediate portion than at any other portions. 7. The shearing force and the shearing energy increased with increase of the cross-sectional area of the rice stem and with decrease of the shearing angie from $90^{\circ}$ to $50^{\circ}$. 8. The shearing forces showed the minimum values of 110 N at Jinju and of 60 N at Taebaeg, the shearing energy at the moisture content decreased about 15 percent point from initial moisture content showed value of 50 mJ in Jinju and of 30 mJ in Taebaeg, respectively. 9. The stress relaxation behavior could be described by the generalized Maxwell model and also the compression creep behavior by Burger's model, respectively in the rice stem. 10. With increase of loading rate, the stress relaxation intensity increased, meanwhile the relaxation time and residual stress decreased. 11. In the compression creep test, the logarithmic creep occured at the stress less than 2.0 MPa and the steady-state creep at the stress larger than 2.0 MPa. 12. The stress level had not a significant effect on the relaxation time, while the relaxation intensity and residual stress increased with increase of the stress level. 13. In the compression creep test of the rice stem, the instantaneous elastic modulus of Burger's model showed the range of 60 to 80 MPa and the viscosities of the free dashpot were very large numerical value which was well explained that the rice stem was viscoelastic material. 14. The tensile detachment forces were about 1.7 to 2.3 N in the Japonica types while about 1.0 to 1.3 N in Indica ${\times}$ Japonica hybrid corresponding to 58 percent of Japonica types, and the bending detachment forces were about 0.6 to 1.1 N corresponding to 30 to 50 percent of the tensile detachment forces, and the bending detachment of the Indica ${\times}$ Japonica hybrid was 0.1 to 0.3 N which was 7 to 21 percent of Japonica types. 15. The detachment force of the lower portion was little bigger than that of the upper portion in a penicle and was not significantly affected by the harvesting period from September 28 to October 20. 16. The tensile and bending detachment forces decreased with decrease of the moisture content from 23 to 13 percent (w.b.) by the natural drying, and the decreasing rate of detachment forces along the moisture content was the greater in the bending detachment force than the tensile detachment force.

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