Title :
An artificial model for studying fluid dynamics in the obstructed and stented ureter
Author :
Carugo, D. ; ElMahdy, M. ; Zhao, Xingang ; Drake, M.J. ; Zhang, Xiaobing ; Clavica, F.
Author_Institution :
Fac. of Eng. & the Environ., Univ. of Southampton, Southampton, UK
Abstract :
Fluid dynamics in the obstructed and stented ureter represents a non-trivial subject of investigation since, after stent placement, the urine can flow either through the stent lumen or in the extra-luminal space located between the stent wall and the ureteric inner wall. Fluid dynamic investigations can help understanding the phenomena behind stent failure (e.g. stent occlusions due to bacterial colonization and encrustations), which may cause kidney damage due to the associated high pressures generated in the renal pelvis. In this work a microfluidic-based transparent device (ureter model, UM) has been developed to simulate the fluid dynamic environment in a stented ureter. UM geometry has been designed from measurements on pig ureters. Pressure in the renal pelvis compartment has been measured against three variables: fluid viscosity (μ), volumetric flow rate (Q) and level of obstruction (OB%). The measurements allowed a quantification of the critical combination of μ, Q and OB% values which may lead to critical pressure levels in the kidney. Moreover, an example showing the possibility of applying particle image velocimetry (PIV) technology to the developed microfluidic device is provided.
Keywords :
bioMEMS; biological fluid dynamics; biomedical imaging; biomedical measurement; biorheology; flow visualisation; kidney; microfluidics; physiological models; stents; viscosity; UM geometry; artificial model; bacterial colonization; critical pressure level; encrustation; extra-luminal space; fluid dynamic environment; fluid viscosity; kidney damage; microfluidic-based transparent device; obstructed ureter; obstruction level; particle image velocimetry technology; pig ureter measurement; renal pelvis compartment; stent failure; stent lumen; stent occlusion; stent placement; stent wall; stented ureter; ureter model; ureteric inner wall; urine flow; volumetric flow rate; Bladder; Fluid dynamics; Kidney; Pelvis; Viscosity;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2013 35th Annual International Conference of the IEEE
Conference_Location :
Osaka
DOI :
10.1109/EMBC.2013.6610754