Control of a mock circulatory system to simulate the short-term baroreflex

被引:4
|
作者
Mushi, Simon [1 ]
Yu, Yih-Choung [2 ]
机构
[1] Univ Virginia, Dept Elect & Comp Engn, Charlottesville, VA 22903 USA
[2] Lafayette Coll, Dept Elect & Comp Engn, Easton, PA 18042 USA
关键词
D O I
10.1109/ACC.2008.4586598
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
A mock circulatory system (MCS) integrated with the baroreceptor reflex, a neurological function that regulates the mean systemic arterial pressure (P-sa) by adjusting heart rate, ventricular contractility, and systemic resistance through negative feedback, was developed to simulate the key hemodynamic variables in response to various physiological load changes. The MCS consists of two compliance chambers representing the left atrium and systemic artery, a proportional valve as a variable resistor mimicking the systemic vascular resistance (SVR), and a centrifugal pump as a current source simulating the pumping mechanism of the heart. The model of the baroreceptor reflex was implemented in software to generate the reference signals of the cardiac output (CO) and SVR. These two reference signals along with the models of the centrifugal pump and the proportional valve were used to control the rotational speed of the pump and the gap of the valve such that the desired CO and SVR can be reached. Performance of the MCS was under different cardiovascular demand levels from resting c, Atar y exercise. The test results show that this simple MCS was able to simulate the response of key hemodynamic variables comparable to the same variables produced by a complex model from a computer simulation. The MCS performed wen in simulating the hemodynamic variables under resting and mild exercise conditions. This novel MCS implementation provides a much more physiological meaningful tool comparing with existing MCS. It is a valuable asset for studying the physiology of the circulation, for heart assist devices testing, and for bioengineering education.
引用
收藏
页码:844 / +
页数:3
相关论文
共 50 条
  • [1] Identification of fluidic element models to simulate the short-term baroreflex
    Mushi, Simon
    Yu, Yih-Choung
    PROCEEDINGS OF THE 45TH IEEE CONFERENCE ON DECISION AND CONTROL, VOLS 1-14, 2006, : 6739 - 6741
  • [2] Short-term stability of baroreflex sensitivity
    Frederiks, J
    Swenne, CA
    Maan, AC
    TenVoorde, BJ
    Bruschke, AVG
    COMPUTERS IN CARDIOLOGY 1998, VOL 25, 1998, 25 : 341 - 344
  • [3] Short-term mechanical circulatory support
    Donate Bertolin, Lucia
    Torregrosa Puerta, Salvador
    Montero Argudo, Jose Anastasio
    CIRUGIA CARDIOVASCULAR, 2016, 23 : 26 - 40
  • [4] Elastance-based control of a mock circulatory system
    Baloa, LA
    Boston, JR
    Antaki, JF
    ANNALS OF BIOMEDICAL ENGINEERING, 2001, 29 (03) : 244 - 251
  • [5] Elastance-Based Control of a Mock Circulatory System
    L. A. Baloa
    J. R. Boston
    J. F. Antaki
    Annals of Biomedical Engineering, 2001, 29 : 244 - 251
  • [6] Short-term fluoxetine treatment enhances baroreflex control of sympathetic nervous system activity after hindlimb unloading
    Moffitt, JA
    Johnson, AK
    AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 2004, 286 (03) : R584 - R590
  • [7] Wavelet-Based System Identification of Short-Term Dynamic Characteristics of Arterial Baroreflex
    Koji Kashihara
    Toru Kawada
    Masaru Sugimachi
    Kenji Sunagawa
    Annals of Biomedical Engineering, 2009, 37 : 112 - 128
  • [8] Wavelet-Based System Identification of Short-Term Dynamic Characteristics of Arterial Baroreflex
    Kashihara, Koji
    Kawada, Toru
    Sugimachi, Masaru
    Sunagawa, Kenji
    ANNALS OF BIOMEDICAL ENGINEERING, 2009, 37 (01) : 112 - 128
  • [9] The short-term effect of water-pipe smoking on the baroreflex control of heart rate in normotensives
    Al-Kubati, M.
    Al-Kubati, A. S.
    Al'Absi, M.
    Fiser, B.
    AUTONOMIC NEUROSCIENCE-BASIC & CLINICAL, 2006, 126 : 146 - 149
  • [10] Short-term mechanical circulatory support in elderly patients
    Alonso-Fernandez-Gatta, Marta
    Merchan-Gomez, Soraya
    Toranzo-Nieto, Ines
    Gonzalez-Cebrian, Miryam
    Diego-Nieto, Alejandro
    Barrio, Alfredo
    Martin-Herrero, Francisco
    Sanchez, Pedro L.
    ARTIFICIAL ORGANS, 2022, 46 (05) : 867 - 877