• 제목/요약/키워드: Low-Velocity Impact Test

검색결과 113건 처리시간 0.026초

복싱 잽(jab) 동작 시 제자리 스텝의 사용이 운동역학적 변인에 미치는 영향 (The Effect of Using Standing Step Condition on Biomechanical Variables during Jab in Boxing)

  • 이성열;권문석
    • 한국응용과학기술학회지
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    • 제37권2호
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    • pp.232-240
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    • 2020
  • 본 연구는 복싱 잽 동작 시 제자리 스텝의 사용이 운동역학적 요인들에 미치는 영향을 분석 하는데 목적이 있었다. 이를 위해 최근 1년간 근골격계에 상해가 없었던 오른손잡이 스탠스 유형의 대학교 복싱 선수 8명(나이: 20.38±0.52 yrs, 신장: 172.38±5.80 cm 체중: 63.45±8.56 kg, 경력 6.00±1.07 yrs)이 실험에 참여하였다. 잽 동작 시 제자리 스텝 사용이 운동역학적 요인들에 미치는 영향을 검증하기 위하여 대응표본 t-test(α = .05) 통계방법을 사용하였으며 다음과 같은 결과를 도출하였다. 첫째, W.S(with-step) 가 N.S(non-step) 보다 더 큰 충격력을 나타내었고, 근육의 활성도는 낮은 것으로 분석되었다. 둘째 W.S가 인체 분절의 전방의 속도의 영향을 미쳐서 골반과 발 분절이 더 빠르게 이동하는 것으로 분석되었다. 셋째, W.S는 골반의 회전 움직임이 더 빠른 것으로 나타났다. 넷째, W.S는 N.S보다 상대적으로 오른발과 왼발에 의해서 발생된 전방의 지면반발력이 더 큰 것으로 분석되었다. 이를 통해서 복싱 잽 동작 시 제자리 스텝의 사용은 지면반발력을 증가시켜 인체 분절의 이동 속도와 회전 움직임에 영향을 미치는 것으로 나타났다. 따라서 더 빠르고 민첩한 움직임을 가능케 하여 상대적으로 적은 근육의 사용으로도 더 큰 충격력을 내는 것으로 확인되었다. 그러므로 복싱의 잽 동작 시 효율적으로 상대방에게 큰 충격력을 전달하기 위해서는 제자리 스텝을 동반하는 것이 효과적으로 분석된다.

자동적층 공정에 의한 3차원 직교 섬유배열구조 복합재의 충격특성 (Impact Performance of 3D Orthogonal Composites by Automated Tape Placement Process)

  • 송승욱;이창훈;엄문광;황병선;변준형
    • Composites Research
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    • 제18권3호
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    • pp.38-46
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    • 2005
  • 3차원 복합재료의 뛰어난 특성을 확인하기 위하여 저속충격 시험을 하였다. 복합재료의 3차원 구조는 자동적층 공정 (ATP, Automated Tape Placement)과 스티칭 (stitching) 방법으로 제조하였다. 이 방법은 일정한 폭을 가지는 탄소섬유/에폭시 프리프레그 테이프를 균일한 간격을 두고 층 별로 서로 직교 적층한 후 비어 있는 공간 사이를 케블라 섬유로 스티칭하는 성형법이다. 새로운 3차원 복합재료와 기존의 프리프레그 시트(sheet)를 사용한 2차원 복합재료와의 충격특성을 비교하기 위하여 저속충격 시험을 하였으며, C-scan에 의한 충격손상 면적 확인 및 충격 후 압축시험을 하였다. 3D 복합재는 스티칭을 하기 위한 간격으로 인하여 복합재료의 전체 섬유 체적율이 낮아졌기 때문에 충격 전 압축 강도는 2D 복합재에 비해 낮았으나 충격 후 파손면적은 약 $30-40\%$의 감소를 보였으며, 충격 전 압축 강도에 패한 충격후 압축강도 비율은 약 $5-10\%$의 증가를 보였다. 스티칭에 의해 충격 후 압축강도는 전반적으로 향상되었으나, 30J의 충격 에너지부터는 그 효과가 감소하였으며 35J 이상의 충격에서는 스티칭 효과가 없었다.

콘 형상 제동장치의 축방향 압축변형에 대한 실험적 연구 (Experimental Study on the Axial Crushing Behavior of Truncated Cone Type Brake Device)

  • 김지철;이학렬;김일수;심우전
    • 한국윤활학회:학술대회논문집
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    • 한국윤활학회 2002년도 제35회 춘계학술대회
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    • pp.169-176
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    • 2002
  • Axial crushing behavior of cylindrical shell Is utilized in the braking of the high-velocity impacting object. In this paper, truncated cone shape brake device is introduced. That is, thickness of the shell is increased gradually from the impacting end to the other end. A detailed experimental investigation on the quasi-static axial crushing behavior of truncated cone type brake devices has been performed. Specimens of various shape were tested to check the influence of design parameters such as length, radius, mean thickness, and conical angle of cylinder. Influence of the material properties were also investigated by adopting aluminum, low carbon steel, and stainless steel as constructing materials. By analyzing deformation procedures of the specimens, it is seen that conical angle influence the deformation mode and the sequence of the wrinkles generation. Braking distance and mean braking force of each specimen were predicted based on the crushing load measured from the tests.

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Si, Mn, V이 첨가된 비조질강의 미세조직 및 기계적 성질에 미치는 냉각속도의 영향 (Effect of Cooling Velocity on the Microstructures and Mechanical Properties of Si, Mn, V added HSLA Steels)

  • 박연서;최창수;정인상
    • 열처리공학회지
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    • 제14권5호
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    • pp.267-274
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    • 2001
  • Microalloyed steels, which substituted by conventional quenched and tempered steels, have been used in a wide variety of structural and engineering application. The main driving force for preference of MA steels is a cost reduction which can be achieved by an omission of heat treatment. In this study, low carbon martensitic MA steels in 0.18C-0.30(0.60)Si-2.00(1.80)Mn-0.05S-1.5Cr-0.05(0.10)V-0.015Ti(wt%) were investigated to know the effects of cooling method on the mechanical properties and microstructures of Si, Mn, V added microalloyed steel at different reheating temperature. Microstructure of oil quenched steels which were comprised lath martensite, auto-tempered martensite and retained austenite, had more various structure than that of air cooled steel made of mainly bainite. Therefore, oil quenched steels, which had more various microstructure, had better strength-toughness balance compare to air cooled steels. In the impact test, fracture mode of oil quenched steels, which showed good mechanical properties, were dimple, but that of air cooled steels were cleavage.

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Maximum shear modulus of rigid-soft mixtures subjected to overconsolidation stress history

  • Boyoung Yoon;Hyunwook Choo
    • Geomechanics and Engineering
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    • 제37권5호
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    • pp.443-452
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    • 2024
  • The use of sand-tire chip mixtures in construction industry is a sustainable and environmentally friendly approach that addresses both waste tire disposal and soil improvement needs. However, the addition of tire chip particles to natural soils decreases maximum shear modulus (Gmax), but increases compressibility, which can be potential drawbacks. This study examines the effect of overconsolidation stress history on the maximum shear modulus (Gmax) of rigid-soft mixtures with varying size ratios (SR) and tire chip contents (TC) by measuring the wave velocity through a 1-D compression test during loading and unloading. The results demonstrate that the Gmax of tested mixtures in the normally consolidated state increased with increasing SR and decreasing TC. However, the tested mixtures with a smaller SR exhibited a greater increase in Gmax during unloading because of the active pore-filling behavior of the smaller rubber particles and the consequent increased connectivity between sand particles. The SR-dependent impact of the overconsolidation stress history on Gmax was verified using the ratio between the swelling and compression indices. Most importantly, this study reveals that the excessive settlement and lower Gmax of rigid-soft mixtures can be overcome by introducing an overconsolidated state in sand-tire chip mixtures with low TC.

Experimental and numerical investigation of closure time during artificial ground freezing with vertical flow

  • Jin, Hyunwoo;Go, Gyu-Hyun;Ryu, Byung Hyun;Lee, Jangguen
    • Geomechanics and Engineering
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    • 제27권5호
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    • pp.433-445
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    • 2021
  • Artificial ground freezing (AGF) is a commonly used geotechnical support technique that can be applied in any soil type and has low environmental impact. Experimental and numerical investigations have been conducted to optimize AGF for application in diverse scenarios. Precise simulation of groundwater flow is crucial to improving the reliability these investigations' results. Previous experimental research has mostly considered horizontal seepage flow, which does not allow accurate calculation of the groundwater flow velocity due to spatial variation of the piezometric head. This study adopted vertical seepage flow-which can maintain a constant cross-sectional area-to eliminate the limitations of using horizontal seepage flow. The closure time is a measure of the time taken for an impermeable layer to begin to form, this being the time for a frozen soil-ice wall to start forming adjacent to the freeze pipes; this is of great importance to applied AGF. This study reports verification of the reliability of our experimental apparatus and measurement system using only water, because temperature data could be measured while freezing was observed visually. Subsequent experimental AFG tests with saturated sandy soil were also performed. From the experimental results, a method of estimating closure time is proposed using the inflection point in the thermal conductivity difference between pore water and pore ice. It is expected that this estimation method will be highly applicable in the field. A further parametric study assessed factors influencing the closure time using a two-dimensional coupled thermo-hydraulic numerical analysis model that can simulate the AGF of saturated sandy soil considering groundwater flow. It shows that the closure time is affected by factors such as hydraulic gradient, unfrozen permeability, particle thermal conductivity, and freezing temperature. Among these factors, changes in the unfrozen permeability and particle thermal conductivity have less effect on the formation of frozen soil-ice walls when the freezing temperature is sufficiently low.

Effects of Mg Addition to Cu/Al2O3 Catalyst for Low-Temperature Water Gas Shift (LT-WGS) Reaction

  • Zakia Akter Sonia;Ji Hye Park;Wathone Oo;Kwang Bok Yi
    • 청정기술
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    • 제29권1호
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    • pp.39-45
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    • 2023
  • To investigate the effects of Mg addition at different aging times and temperatures, Cu/MgO/Al2O3 catalysts were synthesized for the low-temperature water gas shift (LT-WGS) reaction. The co-precipitation method was employed to prepare the catalysts with a fixed Cu amount of 30 mol% and varied amounts of Mg/Al. Synthesized catalysts were characterized using XRD, BET, and H2-TPR analysis. Among the prepared catalysts, the highest CO conversion was achieved by the Cu/MgO/Al2O3 catalyst (30/40/30 mol%) with a 60 ℃ aging temperature and a 24 h aging time under a CO2-rich feed gas. Due to it having the lowest reduction temperature and a good dispersion of CuO, the catalyst exhibited around 65% CO conversion with a gas hourly space velocity (GHSV) of 14,089 h-1 at 300 ℃. However, it has been noted that aging temperatures greater or less than 60 ℃ and aging times longer than 24 h had an adverse impact, resulting in a lower surface area and a higher reduction temperature bulk-CuO phase, leading to lower catalytic activity. The main findings of this study confirmed that one of the main factors determining catalytic activity is the ease of reducibility in the absence of bulk-like CuO species. Finally, the long-term test revealed that the catalytic activity and stability remained constant under a high concentration of CO2 in the feed gas for 19 h with an average CO conversion of 61.83%.

광·열경화형 수지를 이용한 탄소섬유 프리프레그의 물리적 특성 (Mechanical Characteristics of CF Laminated Prepreg with UV-thermal Dual Curable Epoxy Resin)

  • 심지현;김지혜;박성민;구광회;장기욱;배진석
    • 한국염색가공학회지
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    • 제29권1호
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    • pp.37-44
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    • 2017
  • An issue of major concern in the utilization of laminated composites based epoxy resin is associated with the occurrence of delaminations or interlaminar cracks, which may be related to manufacturing defects or are induced in service by low-velocity impacts. A strong interfacial filament/brittle epoxy resin bonding can, however, be combined with the high fracture toughness of weak interfacial bonding, when the filaments are arranged to have alternate sections of shear stress. To improve this drawback of the epoxy resin, UV-thermal dual curable resin were developed. This paper presents UV-thermal dual curable resin which were prepared using epoxy acrylate oligomer, photoinitiators, a thermal-curing agent and thermoset epoxy resin. The UV curing behaviors and characteristics of UV-thermal dual curable epoxy resin were investigated using Photo-DSC, DMA and FTIR-ATR spectroscopy. The mechanical properties of UV-thermal dual curable epoxy resin impregnated CF prepreg by UV curable resin content were measured with Tensile, Flextural, ILSS and Sharpy impact test. The obtained results showed that UV curable resin content improves the epoxy toughness.

비선형 초음파 변조 기법을 이용한 열손상 콘크리트의 미세균열 평가 (Evaluation of Microcracks in Thermal Damaged Concrete Using Nonlinear Ultrasonic Modulation Technique)

  • 박선종;임홍재;곽효경
    • 콘크리트학회논문집
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    • 제24권6호
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    • pp.651-658
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    • 2012
  • 이번 연구에서는 비선형 음향효과를 기반으로 한 비선형 초음파 변조 기법을 통해 열손상 콘크리트의 미세균열 정도를 평가할 수 있는 방법을 제안하였다. 화재 시 콘크리트 구조물은 물리적, 화학적 변화에 따른 콘크리트 내 미세균열이 발생하므로, 기존 초음파 비파괴 기법의 민감도 한계를 극복한 비파괴 기법의 도입이 필요하다. 비선형 초음파 기법은 초음파와 저주파의 변조파로부터 열손상 평가 인자인 비선형인자를 측정하며, 이는 열손상 콘크리트의 미세균열에 적합한 민감도를 가진다. 이 연구에서는 SEM 관측, 열손상 전후 콘크리트의 투수공극량 변화 측정으로부터 수열온도에 따라 미세균열이 급격하게 발생함을 보였으며, 수열온도별 콘크리트의 초음파 전파속도 측정을 통해 제안된 방법의 민감도를 검증하였다. 추가적으로 열손상에 따른 미세균열이 콘크리트의 성능저하에 미치는 영향을 파악하고자 열손상 콘크리트 시편의 압축강도 측정을 수행하였다. 측정값 및 실험값의 연관성을 파악하여 비선형 초음파 변조 기법이 열손상 콘크리트의 미세균열 평가에 적합함을 보였으며, 향후 압축강도 추정에 대한 적용 가능성을 확인하였다.

남자프로골퍼의 30 야드 칩샷과 피치샷 동작의 운동학적 차이 (Kinematical Differences of the Male Professional Golfers' 30 Yard Chip Shot and Pitch Shot Motion)

  • 편은경;박영훈;염창홍;손승;서국웅;서국은
    • 한국운동역학회지
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    • 제17권2호
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    • pp.177-185
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    • 2007
  • Even though there were no clear definitions of the short game and short game distance, short game capability is crucial for a good golf score. Generally, chip shot and pitch shot are regarded as two principal components of the short game. Chip shot is a short, low trajectory shot played to the green or from trouble back into play. Pitch shot is a high trajectory shot of short length. Biomechanical studies were conducted usually to analyze full swing and putting motions. The purpose of the study was to reveal the kinematical differences between professional golfers' 30 yard $53^{\circ}wedge$ chip shot and $56^{\circ}wedge$ pitch shot motions. Fifteen male professional golfers were recruited for the study. Kinematical data were collected by the 60 Hz three-dimensional motion analysis system. Statistical comparisons were made by paired t-test, ANOVA, and Duncan of the SPSS 12.0K with the $\alpha$ value of .05. Results show that both the left hand and the ball were placed left of the center of the left and right foot at address. The left hand position of the chip shot was significantly left side of that of the pitch shot. But the ball position of the pitch shot was significantly right side of that of the chip shot. All body segments aligned to the left of the target line, open, at address. Except shoulder, there were no significant pelvis, knee, and feet alignment differences between chip shot and pitch shot. These differences at address seem for the ball height control. Pitch shot swing motions(the shoulder and pelvis rotation and the club head travel distance) were significantly bigger than those of the chip shot. Club head velocity of the pitch shot was significantly faster than that of the chip shot at the moment of impact. This was for the same shot length control with different lofted clubs. Swing motion differences seem mainly caused by the same shot length control with different ball height control.