• 제목/요약/키워드: 맥동 유동

검색결과 148건 처리시간 0.028초

협착부가 존재하는 혈관의 유동 특성에 관한 수치 해석적 연구 (A Numerical Analysis on the Hemodynamic Characteristics in the blood vessel with Stenosis)

  • 정훈;박찬국
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2004년도 춘계학술대회
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    • pp.1987-1992
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    • 2004
  • Hemodynamics behavior of the blood flow is influenced by the presence of the arterial stenosis. If stenosis is present in an artery, normal blood flow is disturbed. In the present study, characteristics of steady and pulsatile flow of non-Newtonian fluid, the effects of stenosised geometry are analyzed by numerical simulation. One interesting point is that non-symmetric solutions were obtained at severity stenosis, although the stenosis and the boundary condition were all axisymmetric.

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맥동류에 놓인 등온 원통의 열전달 응답 (Heat Transfer Response of an Isothermal Cylinder to Fluctuating Cross Flow)

  • 권영필;이병호
    • 대한기계학회논문집
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    • 제10권5호
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    • pp.706-712
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    • 1986
  • 본 연구는 맥동류의 진동 속도가 평균 유속에 비하여 매우 작은 경우로서 Re- ynolbs수가 40 이하 층류유동에 관한 것이다. 부력은 무시하고 비압축성의 점성유체 에 관한 비정상 Navier-Stokes 방정식과 에너지방정식의 선형 섭동방정식을 구하고, 진동성분의 복소진폭을 수치적으로 풀어서 저항력과 함께 열전달 응답의 진폭과 위상 을 구하였다.

3차원 곡관에서의 굴절률 일치법을 이용한 맥동 유동의 PIV 측정 (PIV Measurement of Pulsatile Flows in 3D Curved Tubes Using Refractive Index Matching Method)

  • 홍현지;지호성;김경천
    • 대한기계학회논문집B
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    • 제40권8호
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    • pp.511-517
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    • 2016
  • 3차원의 협착 혈관모델을 3D 프린터를 이용하여 제작하였다. 협착부는 관의 중심축에 대하여 대칭인 형태이며, 협착부가 0도인 직관과 10도로 굽어진 관인 두 가지 모델에 대하여 실험을 수행하였다. 협착모델 내부 속도장을 매질에 대한 왜곡 없이 측정하기 위하여 굴절률일치법을 이용하였다. 정량펌프를 사용하여 발생된 맥동유동은 펌프의 회전속도로 세 가지의 속도조건을 조절하였다. 비정상상태의 속도장은 time-resolved PIV 기법을 이용하여 측정되었다. 주기적인 와류의 생성과 이동은 관 내 최대속도 영역과 관련 있으며, 와류의 크기와 위치 및 대칭성은 레이놀즈수와 관의 기하학적 구조에 영향을 받음을 알 수 있었다. 곡선관에서는 협착부 하류에 재순환 영역이 관찰되며, 이는 혈류역학적 관점에서 혈전의 형성과 침착 가능성을 설명해준다.

판막 거동을 고려한 이엽 기계식 인공심장 판막에서의 맥동유동에 관한 수치해석 (Numerical Study to the Pulsatile Blood Flow through a Bileaflet Mechanical Heart Valve including Moving Leaflets)

  • 최청렬;김창녕
    • 유체기계공업학회:학술대회논문집
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    • 유체기계공업학회 2002년도 유체기계 연구개발 발표회 논문집
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    • pp.504-512
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    • 2002
  • Bileaflet mechanical valves have the complications such as hemolytic and thromboembolic events, leaflet damage, and leaflet break. These complications are related with the fluid velocity and shear stress characteristics of mechanical heart valves. This fact makes clear the importance of determining the fluid velocity and shear stress characteristics of mechanical heart valves, and requires a detailed understanding of these system properties and further substantial research. The first aim of current study is to introduce fluid-structure interaction method for calculation of unsteady and three-dimensional blood flow through bileaflet valve and leaflet behavior interacted with its flow, and to overcome the shortness of previous studies, where the leaflet motion has been ignored or simplified, by using FSI method. To accomplish this goal, a finite volume computational fluid dynamics code and a finite element structure dynamics code have been used concurrently to solve the flow and structure equations, respectively, to investigate the interaction between the blood flow and leaflet. Physiologic ventricular and aortic pressure waveforms were prescribed as flow boundary conditions. The interaction of aortic flow and valve motion were computed.

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LDV에 의한 곡관덕트에서 난류맥동유동의 유동특성에 관한 실험적 연구 (An Experimental Study on Flow Characteristics of Turbulent Pulsating Flow in a Curved Duct by Using LDV)

  • 이홍구;손현철;이행남;박길문
    • 대한기계학회논문집B
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    • 제25권11호
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    • pp.1561-1568
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    • 2001
  • In the present study, flow characteristics of turbulent pulsating flow in a square-sectional 180$^{\circ}$curved duct were experimentally investigated. The experimental study for air flows in a curved duct are carried out to measure axial velocity profiles, wall shear stress distributions and entrance length in a square-sectional 180$^{\circ}$curved duct by using the Laser Doppler Velocimeter(LDV) system and the data acquisition. Velocity profiles are obtained using the Rotating Machinery Resolver(RMR)and PHASE software in case of turbulent pulsating flow. Finally, it was plotted by the ORIGIN software. The experiment was conducted in seven sections from the inlet (ø = 0$^{\circ}$) to the outlet (ø=l80$^{\circ}$) at 3 0$^{\circ}$intervals of the duct.

PIV와 수치해석을 이용한 분지관내 맥동유동의 가시화 (Flow Visualization of Pulsatile Flow in a Branching Tube using the PIV System and Numerical Analysis)

  • 노형운;서상호;유상신
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2000년도 춘계학술대회논문집B
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    • pp.535-540
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    • 2000
  • The objective of the present study is to visualize the pulsatile flow fields by using three-dimensional computer simulation and the PIV system. A closed flow loop system was built for the steady and unsteady experiments. The Harvard pulsatile pump was used to generate the pulsatile pressure and velocity waveforms. Conifer powder as the tracing particles was added to water to visualize the flow field. Two consecutive particle images were captured by a CCD camera for the image processing. The cross-correlation method in combination with the moving searching area algorithm was applied for the image processing of the flow visualization. The pulsatile flow fields were visualized effectively by the PIV system in conjunction with the applied algorithm. The range validation and the area interpolation methods were used to obtain the final velocity vectors with high accuracy. The finite volume predictions were used to analyze three-dimensional flow patterns in the bifurcation model. The results of the PIV experiment and the computer simulation are in good agreement and the results show the recirculation zones and formation of the paired secondary flow distal to the apex of the bifurcated model. The results also show that the branch flow is pushed strongly to the inner wall due to the inertial force effect and helical motions are generated as the flow proceeds toward the outer wall.

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유압관로내 원통형 초크의 분류영역에서 맥동유동의 거동과 유동특성에 관한 연구 (Behavior and flow characteristics of pulsating flow in the jetflow region through cylindrical chokes)

  • 배신철;모양우
    • 대한기계학회논문집
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    • 제19권11호
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    • pp.3041-3053
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    • 1995
  • Cylindrical chokes are used widely as components of hydraulic equipments. The dynamic characteristics between flowrate and pressure drop through the cylindrical chokes were discussed by the frequency characteristics of the chokes. It was assumed no pressure recovery occurred near the downstream of the choke. The pulsating jetflow from the outlet of cylindrical chokes show very complex behaviours which are quite different from the steady jet flow but it's not clarified quantitatively. In order to utilize the chokes as a flowmeter, it is indispensable to discuss the estimation of the dynamics of pressure drop in the downstream jetflow region of cylindrical chokes. In this experimental study, it is clarified that the reattachment length depended on pressure wave is compared with it depended on velocity wave. A pulsating flow is verified by visualization method. In the present study, the flow characteristic variables of laminar pulsating flow are investigated analytically and experimentally in a circular pipe. Characteristic parameters of the ratios of inertia(.PHI.$_{t,1}$) and viscous(.PHI.$_{z,1}$) term to pressure term are introduced to describe the flow pattern of laminar pulsating flow. flow.low.

혈액모사유체의 미세협착 주변 맥동유동 시뮬레이션 (Numerical Simulation of Pulsatile Flows around Micro-Stenosis for Blood Analog Fluids)

  • 송재민;홍현지;하이경;염은섭
    • 한국가시화정보학회지
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    • 제17권2호
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    • pp.10-16
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    • 2019
  • Considering the role of viscosity in the hemorheology, the characteristics of non-Newtonian fluid are important in the pulsatile blood flows. Stenosis, with an abnormal narrowing of the vessel, contributes to block blood flows to downstream tissue and lead to plaque rupture. Therefore, systematic analysis of blood flow around stenosed vessels is crucial. In this study, non-Newtonian behaviors of blood analog fluids around the micro-stenosis with 60 % severity in diameter of $500{\mu}m$ was examined by using CFX under the pulsatile flow conditions with the period of 10 s. Viscosity information of two non-Newtonian fluids were obtained by fitting the value of normal blood and highly viscous blood. As the Newtonian fluid, the water at room temperature was used. During the pulsatile phase, wall shear stress (WSS) is highly oscillated. In addition, high viscous solution gives rise to increases the variation in the WSS around the micro-stenosis. Highly oscillating WSS enhance increasing tendency of plaque instability or rupture and damage of the tissue layer. These results, related to the influence on the damage to the endothelium or stenotic lesion, may help clinicians understand relevant mechanisms.

기계식 인공심장판막(MHV)에서의 혈액유동과 판막운동의 상호작용 (Interaction of Blood Flow and Leaflet Behavior in a Bileaflet Mechanical Heart Valve)

  • 최청렬;김창녕;권영주
    • 대한의용생체공학회:의공학회지
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    • 제21권5호
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    • pp.505-512
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    • 2000
  • 기계식 인공심장판막을 통한 혈액의 유동과 이 유동에 관련된 판첨의 거동특성을 수치해석기법을 이용하여 연구하였다. 혈액은 맥동류, 층류, 비압축성 유동으로 가정하였으며 유체-고체의 상호작용을 고려하기 위하여 혈액의 유동방정식과 고체의 운동방정식이 동시에 계산되었다. 심실과 대동맥에서의 압력파형을 경계조건으로 사용하였다. 연구의 결과로서 혈액유동과 판첨의 거동이 예측되었으며, 판막을 통한 3개의 제트가 발견되었으며 vortex가 판첨의 끝단에서 발생하여 하부로 흘러가는 것이 관찰되었다. 판첨의 닫힘 거동은 열림 거동에 비하여 2배정도 빠르게 진행되었으며 sinus에서 2개의 큰 vortex가 관찰되었다. 유체-고체 상호작용을 고려하는 본 연구방법은 향후 판막의 연구와 개발에 매우 유용할 것으로 판단된다.

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