Determination of the blood viscosity and yield stress with a pressure-scanning capillary hemorheometer using constitutive models

Springer Science and Business Media LLC - Tập 23 Số 1 - Trang 1-6 - 2011
Byoung Kwon Lee1, Shubin Xue2, Jeonghun Nam2, Hyunjung Lim2, Sehyun Shin2
1Department of Internal Medicine, Yonsei University Medical College, Seoul, Korea
2School of Mechanical Engineering, Korea University, Seoul, Korea

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Baskurt, O.K., M. Boynard, G.C. Cokelet, P. Connes, B.M. Cooke, S. Forconi, F. Liao, M.R. Hardeman, F. Jung, H.J. Meiselman, G. Nash, N. Nemeth, B. Neu, B. Sandhagen, S. Shin, G. Thurston, and J.L. Wautier, 2009, New guidelines for hemorheological laboratory techniques, Clinical Hemorheol. Microcirc. 42, 75–97.

Charm, S. E. and G. S. Kurland, 1967, Static method for determining blood yield stress, Nature 216, 1121–1123

Chien S., 1970, Shear dependence of effective cell volume as a determinant of blood viscosity, Science 168, 977–979.

Ferguson J. and Z. Kemblowski, 1991, Applied Fluid Rheology, Elsevier, London.

Fossum, E., A. Hoieggen, and A. Moan, 1997, Whole blood viscosity, blood pressure and cardiovascular risk factors in healthy blood donors, Blood Pressure 6, 161–165.

Fung, Y. C., 1987, Biomechanics-Mechanical Properties of Living Tissues, Springer, New York, 62–100

Kim S., Y. I. Cho, W. N. Hogenauer, and K. R. Kensey, 2002, A method of isolating surface tension and yield stress effects in a U-shaped scanning capillary-tube viscometer using a casson model, J. Non-Newtonian Fluid Mech 103, 205–219.

Kim, S., Y. I. Cho, A. H. Jeon, B. Hogenauer, and K. R. Kensey, 2000, A new method for blood viscosity measurement, J. Non-Newtonian Fluid Mech 94, 47–56.

S. Kim, B. Namgung, P. K. Ong, Y. I. Cho, K. J. Chun, and D. Lim, 2009, Determination of rheological properties of whole blood with a scanning capillary-tube rheometer using constitutive models, J. Mechanical Science and Technology 23, 1718–1722.

Ogawa, K., S. Okawara, S. Ito, and K. Taniguchi, 1991, Blood viscometer with vacuum glass suction tube and needle, J. Chemical Eng. of Japan 24, 215–221.

C. Picart, J. M. Piau, and H. Galliard, 1998, Human blood shear yield stress and its hematocrit dependence, J. Rheol. 42, 1–12.

Picart C., P.H. Carpentier, H. Galliard, and J.M. Piau, 1999, Blood yield stress in systemic sclerosis. Am. J. Physiol. 276, H771–H777.

Reinhart, W.H., A. Haeberli, J. Stark, and P.W. Straub, 1990, Influence of blood withdrawal and anticoagulant on clotting activity, hematologic data, and certain rheologic measurements, J. Lab. Clinical Med 115, 98–103.

Shin, S., D.Y. Keum, and Y.H. Ku, 2002, Blood viscosity measurement using a pressure-scanning capillary viscometer, KSME Int. J 16, 1719–1724.

Shin, S., J.X. Hou, J.S. Suh, and M. Singh, 2007, Validation and application of a microfluidic ektacytometer (RheoScan-D) in measuring erythrocyte deformability, Clinical Hemorheol. Microcirc. 37, 319–328.

Sun, N. and D. De Kee, 2001, Simple shear, hysteresis and yield stress in biofluids, Can. J. Chem. Eng. 79, 36–41.

Yilmaz F. and M.Y. Gundongdu, 2008, A critical review on blood flow in large arteries; relevance to blood rheology, viscosity models, and physiologic conditions, J. Korea-Australia Rheol. 20, 197–211

Zydney, A. L., J. D. Oliver, and C. K. Colton, 1991, A constitutive equation for the viscosity of stored red blood cell suspensions: effect of hematocrit, shear rate, and suspending phase, J. Rheol. 35, 1639–1680.