• Title/Summary/Keyword: Cardiovascular simulator

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Development of a Cardiovascular Simulator Focused on the Pressure Wave (혈압파형에 초점을 맞춘 심혈관계 시뮬레이터의 개발)

  • Lee, Ju-Yeon;Jang, Min;Shin, Sang-Hoon
    • Journal of Biomedical Engineering Research
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    • v.34 no.1
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    • pp.40-45
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    • 2013
  • The conventional simulators used the expensive commercial artificial heart with a limited performance, and focused on replicating the heart function. The arterial pressure is the key factor of the cardiovascular disease. The purpose of this study is to develop a simulator focused on the pressure wave. The simulator is composed of a step motor, slider-crank mechanism, piston-cylinder, two check valves, a elastic tube, and two reservoirs. With the changes of design parameters, the functions of the simulator were evaluated. The simulator shows the good agreement of the characteristics of the cardiovascular system.

Review of Simulators for Cardiovascular System (심혈관계 시뮬레이터의 연구동향)

  • Shin, Sang-Hoon;Lee, Ju-Yeon
    • The Journal of the Society of Korean Medicine Diagnostics
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    • v.15 no.1
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    • pp.55-66
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    • 2011
  • Objectives: The purpose of this study is to review the simulator for cardiovascular system. Methods & Results: Simulators were classified according to the structure and function of cardiovascular system. Heart and blood vessel were selected as the represent of structure. Blood pressure and blood flow were chose as the functional index. With the view points of four keywords, four kinds of simulators were selected: artificial heart, pressure simulator, flow simulator, and pulse simulator. Conclusions: This paper discussed the state of the art of research and development of the selected four kinds of simulators.

Development of the Cardiovascular Simulator for Pulse Diagnosis Study (맥진연구를 위한 심혈관계 시뮬레이터의 개발)

  • Lee, Ju-Yeon;Shin, Sang-Hoon
    • The Journal of the Society of Korean Medicine Diagnostics
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    • v.16 no.1
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    • pp.19-26
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    • 2012
  • Objectives The aim of this study is to develop a cardiovascular simulator that can reproduce blood pressure pulse and blood flow similar to those of the human body. Methods In order to design a system similar to the human cardiovascular system, the required performances were determined by investigating the hemodynamic characteristics of the heart and the arterial system. Main organ to be imitated is heart in simulator. The rest of the system was minimally designed. Also, a blood pressure and blood flow measurement system was developed for measuring the results. Results The developed system showed blood pressure pulse at similar range of the human aorta. The result waveform include primary wave caused by ventricular systole except reflected wave. Conclusions The blood pressure and blow flow patterns were replicated by the simulator. These patterns were similar to those of the human body. The system will play an important role in studying pulse diagnostics.

Design and Evaluation of Cardiovascular Impedance Simulator Considering Mechanical Limits (기계적 한계를 고려한 심혈관 순환계 임피던스 시뮬레이터 설계 및 평가)

  • Gwak, Kwan-Woong
    • Journal of the Korean Society for Precision Engineering
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    • v.25 no.1
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    • pp.151-159
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    • 2008
  • The parameter-based cardiovascular impedance simulator that is able to overcome the limits of conventional mock circulatory systems is critical for the development and test of biomedical devices including artificial heart. The concept of impedance simulator was validated mathematically in a previous study using high-gain feedback linearization control which, however, may cause serious difficulties and limits for practical implementation. In this study, therefore, practical applicability of the impedance simulator is investigated considering the physical limits such as motor speed and torque. Simple PID controller which do not require complex model of the simulator is used considering the practical implementation. Design guidelines of the impedance simulator are also provided based on the results.

Development of a Cardiovascular Simulator with Cardiovascular Characteristics (혈관계의 특성이 반영된 심혈관계 시뮬레이터의 개발)

  • Lee, Ju-Yeon;Shin, Sang-Hoon
    • The Journal of the Society of Korean Medicine Diagnostics
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    • v.16 no.3
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    • pp.33-40
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    • 2012
  • Objectives: Existing cardiovascular simulators are used to evaluate artificial organs such as artificial hearts, prosthetic valves, and artificial blood vessels, and pulses are typically triggered using artificial hearts. However, the forms of pulse waves vary according to the location of arteries, and for precise assessment of artificial blood vessels, the development of simulators that generate diverse pressure pulse waves is necessary. This study developed a novel cardiovascular simulator that generates different forms of pulse waves. Methods: This simulator consists of a stepping motor, a slider-crank mechanism that transforms the rotation movement of a motor into the straight-line motion of a piston, a piston that generates pulsatile flows, a water tank that supplies fluids, an elastic tube made of silicon, and a device that adjusts the terminal resistance of fluids. Results & Conclusion: This study examined motor rotation and its operation under conditions similar to the physiological conditions of the heart. The simulator developed in this study produced diverse forms of waves, and the generated pressure waves well satisfied physiological conditions.

Evaluation of methods for estimating the pulse reflection site with cardiovascular simulator (심혈관계 시뮬레이터를 이용한 맥파 반사지점 추정방법들의 비교)

  • Lee, Ju-Yeon;Shin, Sang-Hoon
    • The Journal of the Society of Korean Medicine Diagnostics
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    • v.19 no.1
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    • pp.47-54
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    • 2015
  • Objective Wave reflection is an important factor that determines the shape of the pulse wave. The purpose of this study is to compare the conventional method used for estimating the reflection site of pulse with a cardiovascular simulator. Methods: In this study, cardiovascular simulator with one elastic tube was used. The pressure and flow was measured simultaneously at three different points. The measured data were used to the conventional methods to estimate the pulse wave reflection site. The results were compared with the known length which were the distances from the measured points to the end of tube. Results & Conclusions: There is a significant error with the time domain method. While, the reflection site with the frequency domain method was similar to the actual reflection site.

Dynamic Performance Evaluation of Blood Flow Simulator Based on Windkessel Models (공기압력모델에 기반한 혈류 시뮬레이터의 동적 특성 평가)

  • Chun, Sejong;Jin, Jonghan
    • Journal of the Korean Society for Precision Engineering
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    • v.33 no.6
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    • pp.509-516
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    • 2016
  • A blood flow simulator is one of the experimental devices used to better understand the cardiovascular system. Time-Domain analysis is not sufficient to understand the cardiovascular system because of the effects related to pulsating flows. Even when the mean pressure and mean flow rate of the blood flow simulators are satisfied, the dynamic properties can differ from the desired performance. In this paper, the Windkessel model, a well-known mathematical model of the cardiovascular system, was employed to obtain optimized pressure using initial values. The Windkessel parameters, including flow resistance, R, are expected to lead to a better understanding of the dynamic behavior of cardiovascular systems.

A Study on the Direction of Developing a Simulator for Performance Evaluation of Pulse Wave Detectors Through a Review of the Development Status of Cardiovascular Simulators (심혈관계 시뮬레이터 개발 동향 분석을 통한 맥파검사용기기 성능평가 시뮬레이터 연구개발 방향 모색)

  • Lee, Ju-Yeon;Kim, Jaeyoung;Go, Dong-Hyun;Lee, Ji-Won;Lee, Tae-Hee;Park, Chang-Won;Lee, Su-Kyoung
    • Journal of Biomedical Engineering Research
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    • v.43 no.3
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    • pp.136-146
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    • 2022
  • In this study, it is intended to provide basic data that can help develop a cardiovascular simulator for performance evaluation of pulse wave detectors by identifying the development status of domestic and overseas cardiovascular simulators. A total of 119 papers were selected by excluding duplicate literature, gray literature, and literature not related to a cardiovascular simulator. Based on the selected literature, the research trend of cardiovascular simulators was analyzed. As a result of analyzing the purpose of the study, most of the simulators were developed to evaluate the hemodynamic properties of artificial hearts and valves. In addition, it was used for simulation evaluation or hemodynamic studies such as pulse wave studies. As a result of analyzing configurations of the simulators, a heart most often consisted of only one left ventricle. For blood vessels, the Windkessel model was most often constructed using chambers and valves. In most studies, blood was reproduced by mixing glycerin and water to reproduce both density and viscosity. In addition, as a result of analysis from the perspective of medical device performance evaluation, simulators for evaluating artificial heart and artificial valves have been studied a lot, whereas simulators for blood pressure, pulse wave, and blood flow devices have been relatively insignificant. Based on the review results, we suggested considerations when developing a simulator for performance evaluations of a pulse wave detector.

Implement of Blood Pressure Simulator Using Proportional Control Valve and Hybrid Controller (비례제어밸브와 혼합제어기를 이용한 혈압 시뮬레이터의 구현)

  • Lee K. W.;Kim C. H.;Han K. B.;Kim H. J.;Jeon G. R.
    • Proceedings of the Korea Society for Simulation Conference
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    • 2005.05a
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    • pp.149-153
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    • 2005
  • In the cardiovascular system, the waveform of the pulsatory blood pressure appears variously due to the cardiac impulse and compliance of blood vessels and arm tissue. We have constructed a blood pressure simulator to investigate effects of mechanical properties of artery walls and tissue on blood pressure measurements. The blood pressure simulator is designed to reproduce wave forms of blood pressure in human arteries. To minimize tracking error, we use a linear control valve, and adapt a hybrid control scheme which consists of a feedback controller and a feedforward controller. Any form of the pressure wave can be reproduced, changing function of the wave form in the computer connected to the simulator for control. From experiments, it has been shown that the simulator reproduces wave forms very well, and that the hybrid scheme adapted is superior to the feedback controller.

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Development of Cardiovascular Simulator with Control of Pulse Pressure for Pulse Wave Study (맥압조절이 가능한 맥파 연구용 심혈관계 시뮬레이터 개발)

  • Lee, Ju-Yeon;Kim, Jeauk U.;Shin, Sang-Hoon
    • Journal of the Institute of Electronics and Information Engineers
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    • v.51 no.10
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    • pp.204-209
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    • 2014
  • The purpose of this study is to produce a simulator that can control a pulse pressure keeping the pulse wave transfer phenomenon. For this, the elastic tube is combined with a compliance chamber for the vessel part. The simulator is comprised of four parts; a pressure generation part with slider-crank mechanism, a vessel part with resistance controller, water reservoirs and a measurement part. The changes of waveform depending on the location of a chamber is examined to determine the position of a chamber. The effects of a chamber on the pulse pressure and the pulse wave transfer phenomenon were investigated. It showed that the simulator which had the chamber in upstream of tube produces pressure wave, being more similar to the clinical waveform than in downstream of tube. Furthermore, with the chamber, the simulator generates a pulse pressure, being more similar to the normal physiological values than without one. The chamber had little effect on the pulse wave velocity.