Yayın:
Nonlinear control of a hybrid pneumo-hydraulic mock circuit of the cardiovascular system

dc.contributor.authorAlhajyounis, Ahmed
dc.contributor.authorAydogan, Yigit
dc.contributor.authorCanbas, Arda
dc.contributor.authorKulakoglu, Emir
dc.contributor.authorKurnaz, Umut
dc.contributor.authorSoysal, Levent
dc.contributor.authorYigit, Mert
dc.contributor.authorArisoy, Dogan
dc.contributor.authorKadipasaoglu, Kamuran
dc.date.accessioned2026-06-27T15:04:51Z
dc.date.issued2025
dc.description.abstractHybrid cardiovascular mock circuits (HMC), designed for dynamic testing of Ventricular Assist Devices (VAD), offer physiologic accuracy by sequestering model complexity in silico and ease of construction by reducing number of model elements in vitro. Despite superior response time and precision, pneumatic actuation is avoided in HMCs due to nonlinear dynamics and noise. We tested the hypothesis that a HMC consisting of a variable elastance-driven numerical cardiovascular circuit (CVS) coupled to a pneumo-hydraulic physical circuit can be controlled without linearizing system dynamics. Reference left ventricular and aortic pressures were generated in silico in a seventh-order electrical analogue of the CVS and transmitted via an electro-hydraulic interface to the physical circuit. There, they were tracked in in vitro preload and afterload pneumo-hydraulic reservoirs, respectively. The nonlinear pneumatic dynamics in the reservoirs was controlled using the Lyapunov stability criterion. A centrifugal pump, the speed (i.e., flow) of which was adjusted manually or using PID control, was interposed between the reservoirs and mimicked the VAD under evaluation. The flow of a recirculating gear pump was controlled by an integral backstepping method to equalize reservoir fluid volumes by rejecting pressure and flow disturbances. Sensor noise was reduced with discrete-time Kalman filtering. Our results showed that normal, failing, and assisted cardiovascular physiologies simulated in silico were commensurate with clinical data obtained from subjects with similar pathologies. The numerical pressure references were tracked with high accuracy at the physical VAD terminals. Reservoir volumes remained stable at various combinations of heart rate, pressure, and VAD flow for prolonged durations with negligible steady-state error. The HMC described here offers a stable performance testing platform for VAD prototypes.en
dc.description.sponsorshipScientific and Technological Research Council of Turkey (TUBITAK) [118S098]
dc.description.urihttps://doi.org/10.1002/rnc.7272
dc.identifier.doi10.1002/rnc.7272
dc.identifier.eissn1099-1239
dc.identifier.endpage3998
dc.identifier.issn1049-8923
dc.identifier.issue10
dc.identifier.startpage3962
dc.identifier.urihttps://hdl.handle.net/20.500.14981/67658
dc.identifier.volume35
dc.identifier.wos001183467700001
dc.language.isoeng
dc.publisherWILEY
dc.relation.ispartofINTERNATIONAL JOURNAL OF ROBUST AND NONLINEAR CONTROL
dc.rightsopenAccess
dc.subjectbackstepping
dc.subjecthybrid cardiovascular mock circuit
dc.subjectKalman filtering
dc.subjectLyapunov stability
dc.subjectpneumo-hydraulic system
dc.subjectventricular assist device
dc.subjectCIRCULATORY-SYSTEM
dc.subjectNUMERICAL-MODEL
dc.subjectHEART-FAILURE
dc.subjectEXERCISE
dc.subjectPRESSURE
dc.subjectLOOP
dc.subjectPROTOTYPE
dc.subjectAutomation & Control Systems
dc.subjectEngineering
dc.subjectMathematics
dc.titleNonlinear control of a hybrid pneumo-hydraulic mock circuit of the cardiovascular system
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

Dosyalar

Koleksiyonlar