• 제목/요약/키워드: Particle Impact

검색결과 464건 처리시간 0.02초

세라믹에서 충격속도에 따른 충격손상 및 콘크랙 형상의 변화 (Variation of Cone Crack Shape and Impact Damage According to Impact Velocity in Ceramic Materials)

  • 오상엽;신형섭;서창민
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2001년도 춘계학술대회논문집A
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    • pp.383-388
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    • 2001
  • Effects of particle property variation of cone crack shape according to impact velocity in silicon carbide materials were investigated. The damage induced by spherical impact having different material and size was different according to materials. The size of ring cracks induced on the surface of specimen increased with increase of impact velocity within elastic contact conditions. The impact of steel particle produced larger ring cracks than that of SiC particle. In case of high impact velocity, the impact of SiC particle produced radial cracks by the elastic-plastic deformation at impact regions. Also percussion cone was formed from the back surface of specimen when particle size become large and its impact velocity exceeded a critical value. Increasing impact velocity, zenithal angle of cone cracks in SiC material was linearly decreasing not effect of impact particle size. An empirical equation, $\theta=\theta_{st}-\upsilon_p(180-\theta_{st})(\rho_p/\rho_s)^{1/2}/415$, was obtained from the test data as a function of quasi-static zenithal angle of cone crack($\theta_{st}$), the density of impact particle(${\rho}_p$) and specimen(${\rho}_s$). Applying this equation to the another materials, the variation of zenithal angle of cone crack could be predicted from the particle impact velocity.

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입자충격속도에 따른 세라믹재료의 콘크랙 형상 변화 (Variation of Cone Crack Shape in Ceramic Materials According to Spherical Impact Velocity)

  • 오상엽;신형섭;서창민
    • 대한기계학회논문집A
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    • 제26권2호
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    • pp.380-386
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    • 2002
  • Damage behaviors induced in silicon carbide by an impact of particle having different material and size were investigated. Especially, the influence of the impact velocity of particle on the cone crack shape developed was mainly discussed. The damage induced by spherical impact was different depending on the material and size of particles. Ring cracks on the surface of specimen were multiplied by increasing the impact velocity of particle. The steel particle impact produced larger ring cracks than that of SiC particle. In the case of high velocity impact of SiC particle, radial cracks were produced due to the inelastic deformation at the impact site. In the case of the larger particle impact, the damage morphology developed was similar to the case of smaller particle one, but a percussion cone was farmed from the back surface of specimen when the impact velocity exceeded a critical value. The zenithal angle of cone cracks developed into SiC material decreased monotonically with increasing of the particle impact velocity. The size and material of particle influenced more or less on the extent of cone crack shape. An empirical equation, $\theta$= $\theta$$\sub$st/, v$\sub$p/(90-$\theta$$\sub$st/)/500 R$\^$0.3/($\rho$$_1$/$\rho$$_2$)$\^$$\frac{1}{2}$/, was obtained as a function of impact velocity of the particle, based on the quasi-static zenithal angle of cone crack. It is expected that the empirical equation will be helpful to the computational simulation of residual strength in ceramic components damaged by the particle impact.

탄화규소 세라믹의 충격손상 및 강도저하에 미치는 입자의 재질 및 크기의 영향 (Influences of Particle Property and Its Size Impact Damage and Strength Degradation in Silicon Carbide Ceramics)

  • 신형섭;전천일랑;서창민
    • 대한기계학회논문집
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    • 제16권10호
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    • pp.1869-1876
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    • 1992
  • 본 연구에서는 고온에서 높은 강도특성을 유지하면서 동시에 내마모성이 뛰어 나 가스터어빈의 부재로서의 사용이 기대되는 탄화규소(SiC) 세라믹에 대하여, 고체입 자의 충격에 의해 생기는 손상에 미치는 입자의 재질 및 크기의 영향을 조사하였다. 또 각 형태의 손상발생 임계치와 강도저하에 미치는 입자크기의 영향에 관해서도 검토 하였다.

세라믹 가스터빈 환경을 고려한 탄화규소의 입자충격 손상거동-장기간 산화에 따른 산화물층의 영향- (Particle Impact Damage behaviors in silicon Carbide Under Gas Turbine Environments-Effect of Oxide Layer Due to Long-Term Oxidation-)

  • 신형섭
    • 대한기계학회논문집
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    • 제19권4호
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    • pp.1033-1040
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    • 1995
  • To simulate strength reliability and durability of ceramic parts under gas turbine application environments, particle impact damage behaviors in silicon carbide oxidized at 1673 K and 1523 K for 200 hours in atmosphere were investigated. The long-term oxidation produced a slight increase in the static fracture strength. Particle impact caused a spalling of oxide layer. The patterns of spalling and damage induced were dependent upon the property and impact velocity of the particle. Especially, the difference in spalling behaviors induced could be explained by introducing the formation mechanism of lateral crack and elastic-plastic deformation behavior at impact sit. At the low impact velocity regions, the oxidized SiC showed a little increase in the residual strength due to the cushion effect of oxide layer, as compared with the as-received SiC without oxide layer.

Impact of Biochar Particle Shape and Size on Saturated Hydraulic Properties of Soil

  • Lim, Tae-Jun;Spokas, Kurt
    • 한국환경농학회지
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    • 제37권1호
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    • pp.1-8
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    • 2018
  • BACKGROUND: Different physical and chemical properties of biochar, which is made out of a variety of biomass materials, can impact water movement through amended soil. The objective of this research was to develop a decision support tool evaluating the impact of the shape and the size distribution of biochar on soil saturated hydraulic conductivity ($K_{sat}$). METHODS AND RESULTS: Plastic beads of different size and morphology were compared with biochar to assess impacts on soil $K_{sat}$. Bead and biochar were added at the rate of 5% (v/w) to coarse sand. The particle size of bead and biochar had an effect on the $K_{sat}$, with larger and smaller particle sizes than the original sand grain (0.5 mm) decreasing the $K_{sat}$ value. The equivalent size bead or biochar to the sand grains had no impact on $K_{sat}$. The amendment shape also influenced soil hydraulic properties, but only when the particle size was between 3-6 mm. Intra-particle porosity had no significant influence on the $K_{sat}$ due to its small pore size and increased tortuosity compared to the inter-particle spaces (macro-porosity). CONCLUSION: The results supported the conclusion that both particle size and shape of the amended biochar impacted the $K_{sat}$ value.

내충격성 폴리스티렌의 형태구조 및 고무상 입도분포 해석 (Interpretation of Morphology and Rubber-Phase Particle Size Distribution of High Impact Polystyrene)

  • 정한균;정대원;안경현;이승종;이성재
    • 폴리머
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    • 제25권5호
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    • pp.744-753
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    • 2001
  • 내충격성 폴리스티렌 (HIPS)의 내충격성에 영향을 주는 중요한 요소 중의 하나는 분산된 고무상 입자의 크기 및 입도분포이다. 본 연구에서는 반응조건이 HIPS의 고무상 입자 크기 및 입도분포에 미치는 영향을 관찰하기 위하여 HIPS를 중합 제조한 다음 고무함량, 교반속도 및 전중합 시간에 따른 고무상 입도분포 및 형태구조를 고찰하였다. 입도분석기로 분석한 결과, 톨루엔을 분산용매로 사용한 경우 열처리 온도가 낮을수록, 열처리 시간이 짧을수록 팽윤의 영향으로 고무상의 평균 입자경이 커졌지만, MEK의 경우에는 열처리 과정이 없어도 보다 합당한 입도분포를 얻을 수 있었다. 고무함량이 증가함에 따라 고무상의 평균 입자경은 뚜렷하게 커졌지만 고무함량이 적은 경우에는 교반속도가 증가하여도 평균 입자경은 그다지 큰 변화를 나타내지 않았다. 하지만 교반속도가 커짐에 따라 고무상 내의 폴리스티렌 포획입자는 크기가 균일해짐을 확인하였다. 또한 전중합시간에 따른 입도분포의 변화를 고찰한 결과 전중합 시간이 길어질수록 보다 작은 입도분포를 얻을수 있었다.

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용매 함량이 내충격성 폴리스티렌의 형태구조 및 고무 입도분포에 미치는 영향 (Effect of Solvent Content on Morphology and Rubber Particle Size Distribution of High Impact Polystyrene)

  • 정한균;박정신;장대석;이성재
    • 폴리머
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    • 제26권3호
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    • pp.307-315
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    • 2002
  • 폴리스티렌의 취약한 성질을 개선한 내충격정 폴리스티렌 (HIPS)의 내충격성에 영향을 주는 요소는 분산된 고무상 입자의 크기 및 입도분포, 분자량, 형태구조, 그래프트율 등이다. 이에 따라 HIPS의 물성은 영향을 받으므로 이를 조절하거나 파악하는 것은 중요하다. 본 연구에서는 HIPS의 벌크-용액중합에서 용매함량이 고무입자의 형태구조 및 입도분포, 최종 물성에 미치는 영향에 대하여 고찰하였다. 먼저 중합 진행에 따른 분산상의 입도분포를 측정함으로써 상역전 현상의 변화 추이를 파악하여 전중합 시간을 결정하였다. 중합시 분산용매는 적절한 양에 도달하기 전까지는 고무입자의 크기가 증가하였으며, 그 후에는 점차적으로 감소하였다. 고무상의 형태구조는 분산용매가 증가함에 따라서 그래프트율이 증가하는 형태구조로 바뀌는 것으로 사료된다. 분산용매가 첨가됨에 따라 유변물성 및 인장물성이 취약해졌는데, 이는 분산용매에 의한 사슬이동반응이 매트릭스상인 폴리스티렌의 분자량을 감소시킨 점과 잔류 용매의 존재 때문이었다. 하지만 내충격성은 분산입자의 크기가 증가한 경우 향상되는 경향을 보였다.

수정 GPA법을 이용한 층돌거동의 수치해석에 대한 연구 (A Study on Numerical Analysis of Impact Behavior by the Modified GPA Method)

  • 김용환;김용석
    • 한국정밀공학회지
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    • 제21권1호
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    • pp.189-196
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    • 2004
  • A modified generalized particle algorithm, MGPA, was suggested to improve the calculation efficiency of standard SPH Method in numerical analysis of high speed impact behavior. MGPA had a new weight function to reduce computation time. The efficiency of this method was proven through calculation for the sample problems of one dimensional rod impact problem and two dimensional plate impact problem. The MGPA method reduced the calculation error and stress oscillation near the boundaries. The validity of this approach was shown by the comparison with ABAQUS results in two dimensional plate impact problem.

입자연마가공에서의 입자크기 및 충돌각의 영향에 대한 고찰 (Effects of Abrasive Size and Impact Angle on the Contact Stress in Abrasive Machining Process)

  • 곽하슬로미;김욱배;성인하
    • Tribology and Lubricants
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    • 제27권1호
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    • pp.34-39
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    • 2011
  • In this study, finite element analysis of particle-surface collision using 2-dimensional elements was performed to observe the effects of abrasive size and impact angle. The result of the simulation on the change in abrasive size revealed that larger abrasive particle induced larger contact stress due to force transfer through slurry fluid as the particle moved and pushed the fluid. This observation brought an important finding that the slurry fluid could make the workpiece surface soften and then change the mechanical properties of the surface layer such as elastic modulus and yield strength. As for the impact angle, it was found that the contact stress increased with the angle of impact and jumped up at a specific angle. Such result would be attributed to the complex effects of the impact velocity and angle.

입자법을 이용한 축대칭 탄자의 관통거동 수치해석 연구 (A Study on Numerical Perforation Analysis of Axisymmetric Bullet by the Particle Method)

  • 김용석;김용환
    • 한국군사과학기술학회지
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    • 제11권6호
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    • pp.164-171
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    • 2008
  • A modified generalized particle algorithm, MGPA, was suggested to improve the computational efficiency of standard SPH method in numerical analysis of high speed impact behavior. This method uses a numerical failure mechanism than material failure models to describe the target penetration. MGPA algorithm was more effective to describe the impact phenomena and new boundaries produced during the calculation process were well recognized and treated in the target penetration problem of a bullet. When bullet perforation problems were analyzed by this method, MGPA algorithm calculation gives the stable numerical solution and stress oscillation or particle penetration phenomena were not shown. The error range in ballistic velocity limit is less than $2{\sim}13%$ for various target thickness.