DocumentCode :
20510
Title :
Closed-Loop Control of Renal Perfusion Pressure in Physiological Experiments
Author :
Campos-Delgado, D.U. ; Bonilla, I. ; Rodriguez-Martinez, M. ; Sanchez-Briones, M.E. ; Ruiz-Hernandez, E.
Author_Institution :
Fac. de Cienc., Zona Univ., San Luis Potosi, Mexico
Volume :
60
Issue :
7
fYear :
2013
fDate :
Jul-13
Firstpage :
1776
Lastpage :
1784
Abstract :
This paper presents the design, experimental modeling, and control of a pump-driven renal perfusion pressure (RPP)-regulatory system to implement precise and relatively fast RPP regulation in rats. The mechatronic system is a simple, low-cost, and reliable device to automate the RPP regulation process based on flow-mediated occlusion. Hence, the regulated signal is the RPP measured in the left femoral artery of the rat, and the manipulated variable is the voltage applied to a dc motor that controls the occlusion of the aorta. The control system is implemented in a PC through the LabView software, and a data acquisition board NI USB-6210. A simple first-order linear system is proposed to approximate the dynamics in the experiment. The parameters of the model are chosen to minimize the error between the predicted and experimental output averaged from eight input/output datasets at different RPP operating conditions. A closed-loop servocontrol system based on a pole-placement PD controller plus dead-zone compensation was proposed for this purpose. First, the feedback structure was validated in simulation by considering parameter uncertainty, and constant and time-varying references. Several experimental tests were also conducted to validate in real time the closed-loop performance for stepwise and fast switching references, and the results show the effectiveness of the proposed automatic system to regulate the RPP in the rat, in a precise, accurate (mean error less than 2 mmHg) and relatively fast mode (10-15 s of response time).
Keywords :
PD control; biomedical equipment; blood vessels; closed loop systems; compensation; data acquisition; feedback; haemorheology; linear systems; mechatronics; medical control systems; peripheral interfaces; pole assignment; pressure control; servomechanisms; time-varying systems; virtual instrumentation; LabView software; RPP operating conditions; aorta occlusion; closed-loop performance; closed-loop servo control system; data acquisition board NI USB-6210; dc motor; experimental modeling; fast RPP regulation process; fast switching references; feedback structure; first-order linear system; flow-mediated occlusion; input-output datasets; left femoral artery; mechatronic system; parameter uncertainty; physiological experiments; pole-placement PD controller; pump-driven renal perfusion pressure regulatory system; signal regulation; time-varying references; Arteries; DC motors; Mathematical model; Mechatronics; PD control; Steady-state; Closed-loop control; LabVIEW; PD control; dead-zone compensation; experimental identification; renal perfusion pressure; Algorithms; Animals; Biofeedback, Psychology; Blood Pressure; Blood Pressure Determination; Electronics, Medical; Equipment Design; Equipment Failure Analysis; Infusion Pumps; Perfusion; Rats; Renal Circulation; Therapy, Computer-Assisted;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2013.2241435
Filename :
6416028
Link To Document :
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