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Rheology of concentrated xanthan gum solutions: Oscillatory shear flow behavior 원문보기

Korea-Australia rheology journal, v.18 no.2, 2006년, pp.67 - 81  

Song Ki-Won (School of Chemical Engineering, Pusan National University) ,  Kuk Hoa-Youn (School of Chemical Engineering, Pusan National University) ,  Chang Gap-Shik (School of Chemical Engineering, Pusan National University)

Abstract AI-Helper 아이콘AI-Helper

Using a strain-controlled rheometer, the dynamic viscoelastic properties of aqueous xanthan gum solutions with different concentrations were measured over a wide range of strain amplitudes and then the linear viscoelastic behavior in small amplitude oscillatory shear flow fields was investigated ove...

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참고문헌 (83)

  1. Ahmed, J. and H.S. Ramaswamy, 2004, Effect of high-hydrostatic pressure and concentration on rheological characteristics of xanthan gum, Food Hydrocolloids 18, 367-373 

  2. Alupei, I.C., M. Popa, M. Hamcerencu and M.J.M. Abadie, 2002, Superabsorbant hydrogels based on xanthan and poly (vinyl alchol). 1. The study of the swelling properties, Eur. Polym. J. 38, 2313-2320 

  3. Bagley, R.L. and P.J. Torvik, 1983, A theoretical bases for the application of fractional calculus to viscoelasticity, J. Rheol. 27, 201-210 

  4. Bagley, R.L. and P.J. Torvik, 1986, On the fractional calculus model of viscoelastic behavior, J. Rheol. 30, 133-155 

  5. Born, K., V. Langendorff and P. Boulenguer, 2001, Biopolymers, Vol. 5, Wiley-Interscience, New York, USA 

  6. Bosworth, R.C.L., 1946, A definition of plasticity, Nature 137, 447 

  7. Bower, C., C. Gallegos, M.R. Mackley and J.M. Madiedo, 1999, The rheological and microstructural characterization of the non-linear flow behavior of concentrated oil-in-water emulsions, Rheol. Acta 38, 145-159 

  8. Callet, F., M. Milas and M. Rinaudo, 1987, Influence of acetyl and pyruvate contents on rheological properties of xanthan in dilute solution, Intern. J. Biol. Macromol. 9, 291-293 

  9. Camesano, T.A. and K.J. Wilkinson, 2001, Single molecule study of xanthan conformation using atomic force microscopy, Biomacromolecules 2, 1184-1191 

  10. Carnali, J.O., 1992, Gelation in physically associating biopolymer systems, Rheol. Acta 31, 399-412 

  11. Carriere, C.J., E.J. Amis, J.L. Schrag and J.D. Ferry, 1993, Dilute-solution dynamic viscoelastic properties of xanthan polysaccharide, J. Rheol. 37, 469-478 

  12. Cha, J.H., G.S. Chang and K.W. Song, 2002, Large amplitude oscillatory shear flow behavior of commercial mayonnaises: Preliminary experimental study, Theor. Appl. Rheol. 6, 121-125 

  13. Chang, G.S. and K.W. Song, 2000, Large amplitude oscillatory shear flow behavior of viscoelastic liquids: Fourier transform analysis, Theor. Appl. Rheol. 4, 62-65 

  14. Chang G.S., J.S. Koo and K.W. Song, 2002, Wall slip of vaseline (petrolatum) in steady shear rheometry: Its observation and elimination (or minimization), Theor. Appl. Rheol. 6, 97-100 

  15. Chang, G.S., J.S. Koo and K.W. Song, 2003, Wall slip of vaseline in steady shear rheometry, Korea-Australia Rheol. J. 15, 55-61 

  16. Daskarakis, S.A., 1994, in Handbook of Pharmaceutical Excipients (A. Wade and P.J. Weller Eds.), American Pharmaceutical Association, Washington DC, USA, 562-563 

  17. Dealy, J.M. and K.F. Wissburn, 1990, Melt Rheology and Its Role in Plastics Processing: Theory and Applications, Van Nostrand Reinhold, New York, USA 

  18. Dumitriu, S., M. Dumitriu and G. Teaca, 1990, Bioactive polymers 65: Studies of cross-linked xanthan hydrogels as supports in drug retardation, Clin. Mater. 6, 265-276 

  19. Dumitriu, S. and E. Chornet, 1997, Immobilization of xylanase in chitosan-xanthan hydrogels, Biotech. Prog. 13, 539-545 

  20. Ferry, J.D., 1980, Viscoelastic Properties of Polymers, 3rd ed., John Wiley & Sons., New York, USA 

  21. Friedrich, C., 1991, Relaxation and retardation functions of the Maxwell model with fractional derivatives, Rheol. Acta 30, 151-158 

  22. Garcia-Ochoa, F., V.E. Santos and A. Alcon, 1997, Xanthan gum production in a laboratory aerated stirred tank bioreactor, Chem. Biochem. Eng. J. 11, 69-74 

  23. Garcia-Ochoa, F. and E. Gomez, 1998, Mass transfer coefficient in stirred tank reactors for xanthan solutions, Biochem. Eng. J. 1, 1-10 

  24. Garcia-Ochoa, F., V.E. Santos, J.A. Casas and E. Gomez, 2000, Xanthan gum : Production, recovery, and properties, Biotechnol. Adv. 18, 549-579 

  25. Giacomin, A.J. and J.M. Dealy, 1993, Large-amplitude oscillatory shear, in Techniques in Rheological Measurement (A.A. Collyer Eds.), Chapmon & Hall, London, UK, 99-121 

  26. Giboreau, A., G. Cuvelier and B. Launay, 1994, Rheological behavior of three biopolymer/water systems with emphasis on yield stress and viscoelastic properties, J. Texture Studies 25, 119-137 

  27. Harrison, G., G.V. Franks, V. Tirtaatmadja and D.V. Boger, 1999, Suspensions and polymers: Common links in rheology, Korea- Australia Rheol. J. 11, 197-218 

  28. Hoffmann, H. and A. Rauscher, 1993, Aggregating systems with a yield stress value, Colloid Polym. Sci. 271, 390-395 

  29. Holzwarth, G. and E.B. Prestridge, 1977, Multistranded helix in xanthan polysaccharide, Science 197, 757-759 

  30. Hyun, K., S.H. Kim, K.H. Ahn and S.J. Lee, 2002, Large amplitude oscillatory shear as a way to classify the complex fluids, J. Non-Newt. Fluid Mech. 107, 51-65 

  31. Hyun, K., J.G. Nam, M. Wilhelm, K.H. Ahn and S.J. Lee, 2003, Nonlinear response of complex fluids under LAOS (large amplitude oscillatory shear) flow, Korea-Australia Rheol. J. 15, 97-105 

  32. Iseki, T., M. Takahashi, H. Hattori, T. Hatakeyama and H. Hatakeyama, 2001, Viscoelastic properties of xanthan gum hydrogels annealed in the sol state, Food Hydrocolloids 15, 503-506 

  33. Isono, Y. and J.D. Ferry, 1985, Stress relaxation and differential dynamic modulus of polyisobutylene in large shearing deformations, J. Rheol. 29, 273-280 

  34. Jampala, S.N., S. Manolache, S. Gunasekaran and F.S. Denes, 2005, Plasma-enhanced modification of xanthan gum and its effect on rheological properties, J. Agric. Food Chem. 53, 3618-3625 

  35. Kang, K.S. and D.J. Pettit, 1993, in Industrial Gums (R.L. Whistler and J.N. Be Miller Eds.), 3rd ed., Academic Press, New York, USA, 341-398 

  36. Katzbauer, B., 1998, Properties and applications of xanthan gum, Polym. Degrad. Stability 59, 81-84 

  37. Kim, C. and B. Yoo, 2006, Rheological properties of rice starchxanthan gum mixtures, J. Food Eng. 75, 120-128 

  38. Lapasin, R. and S. Pricl, 1999, Rheology of Industrial Polysaccharides: Theory and Applications, Aspen Publishers, Gaithersburg, MD, USA 

  39. Lee, H.C. and D.A. Brant, 2002a, Rheology of concentrated isotropic and anisotropic xanthan solutions. 1. A rodlike low molecular weight sample, Macromolecules 35, 2212-2222 

  40. Lee, H.C. and D.A. Brant, 2002b, Rheology of concentrated isotropic and anisotropic xanthan solutions. 2. A semiflexible wormlike intermediate molecular weight sample, Macromolecules 35, 2223-2234 

  41. Li, W.H., H. Du and N.Q. Guo, 2004, Dynamic behavior of MR suspensions at moderate flux densities, Mater. Sci. Eng. A 371, 9-15 

  42. Lim, T., J.T. Uhl and R.K. Prud'homme, 1984, Rheology of selfassociating concentrated xanthan solutions, J. Rheol. 28, 367- 379 

  43. Ma, L. and G.V. Barbosa-Canovas, 1996, Simulating viscoelastic properties of selected food gums and gum mixtures using a fractional derivative model, J. Texture Studies 27, 307-325 

  44. Macosko, C.W., 1994, Rheology : Principles, Measurements and Applications, VCH Publishers, New York, USA 

  45. Marcotte, M., A.R. Taherian-Hoshahili and H.S. Ramaswamy, 2001, Rheological properties of selected hydrocolloids as a function of concentration and temperature, Food Res. Intern. 34, 695-703 

  46. Metzler, R. and T.F. Nonnenmacher, 2003, Fractional relaxation processes and fractional rheological models for the description of a class of viscoelastic materials, Intern. J. Plasticity 19, 941- 959 

  47. Nonnenmacher, T.F., 1991, Fractional relaxation equations for viscoelasticity and related phenomena, in Rheological Modeling: Thermodynamical and Statistical Approaches (J. Casas-Vazquez and D. Jou Eds.), Springer-Verlag, Berlin, Germany, 309-320 

  48. Ogawa. K. and T. Yui, 1998, X-ray diffraction study of polysaccharides, in Polysaccharides: Structural Diversity and Functional Versatility (S. Dumitriu Eds.), Marcel Dekker, New York, USA, 101-130 

  49. Pal, R., 1995, Oscillatory, creep and steady shear flow behavior of xanthan-thickened oil-in-water emulsions, AIChE J. 41, 783-794 

  50. Palade, L.I., P. Attane, R.R. Huilgol and B. Mena, 1999, Anomalous stability behavior of a properly invariant constitutive equation which generalizes fractional derivative models, Intern. J. Eng. Sci. 37, 315-329 

  51. Palade, L.I. and J.A. De Santo, 2001, Dispersion equations which model high-frequency linear viscoelastic behavior as described by fractional derivative models, Intern. J. Non-Linear Mech. 36, 13-24 

  52. Parthasarathy, M. and D.J. Klingenberg, 1999, Large amplitude oscillatory shear of ER suspensions, J. Non-Newt. Fluid Mech. 81, 83-104 

  53. Phan-Thien, N., M. Safari-Ardi and A. Morales-Patino, 1997, Oscillatory and simple shear flows of a flour-water dough: A constitutive model, Rheol. Acta 36, 38-48 

  54. Phan-Thien, N. and M. Safari-Ardi, 1998, Linear viscoelastic properties of flour-water doughs at different water concentrations, J. Non-Newt. Fluid Mech. 74, 137-150 

  55. Pelletier, E., C. Viebke, J. Meadows and P.A. Williams, 2001, A rheological study of the order-disorder conformational transition of xanthan gum, Biopolymers 59, 339-346 

  56. Rochefort, W.E. and S. Middleman, 1987, Rheology of xanthan gum: Salt, temperature, and strain effects in oscillatory and steady shear experiments, J. Rheol. 31, 337-369 

  57. Roland, C.M., 1990, Dynamic mechanical behavior of filled rubber at small strains, J. Rheol. 34, 25-34 

  58. Ross, B., 1975, A brief history and exposition of the fundamental theory of fractional calculus, in Fractional Calculus and Its Applications (A. Dold and B. Eckmann Eds.), Springer-Verlag, Berlin, Germany, 1-36 

  59. Rossikhin, Y.A. and M.V. Shitikova, 2001, A new method for solving dynamic problems of fractional derivative viscoelasticity, Intern. J. Eng. Sci. 39, 149-176 

  60. Ross-Murphy, S.B., V.J. Morris and E.R. Morris, 1983, Molecular viscoelasticity of xanthan polysaccharide, Faraday Symp. Chem. Soc. 18, 115-129 

  61. Ross-Murphy, S.B. and K.P. Shatwell, 1993, Polysaccharide strong and weak gels, Biorheology 30, 217-227 

  62. Ross-Murphy, S.B., 1995, Structure-property relationships in food biopolymer gels and solutions, J. Rheol. 39, 1451-1463 

  63. Santore, M.M. and R.K. Prud'homme, 1990, Rheology of a xanthan broth at low stresses and strains, Carbohydr. Polym. 12, 329-335 

  64. Schott, H., 1990, Remington's Pharmaceutical Sciences, 18th ed., Mack Publishing, Easton, PA, USA 

  65. Sloninsky, G.L., 1967, Laws of mechanical relaxation processes in polymer, J. Polym. Sci.; Part C 16, 1667-1672 

  66. Song, D.Y. and T.Q. Jiang, 1998, Study on the constitutive equation with fractional derivative for the viscoelastic fluids: Modified Jeffreys model and its application, Rheol. Acta 37, 512- 517 

  67. Song, K.W., G.S. Chang, C.B. Kim, J.O. Lee and J.S. Paik, 1996, Rheological characterization of aqueous poly(ethylene oxide) solutions (I): Limits of linear viscoelastic response and nonlinear behavior with large amplitude oscillatory shear deformation, J. Korean Fiber Soc. 33, 1083-1093 

  68. Song, K.W. and G.S. Chang, 1998, Nonlinear viscoelastic behavior of concentrated polyisobutylene solutions in large amplitude oscillatory shear deformation, Korean J. Rheol. 10, 173- 183 

  69. Song, K.W., Y.S. Kim and G.S. Chang, 2006, Rheology of concentrated xanthan gum solutions: Steady shear flow behavior, Fibers and Polymers 7, in press 

  70. Speers, R.A. and M.A. Tung, 1986, Concentration and temperature dependence of flow behavior of xanthan gum dispersions, J. Food Sci. 51, 96-98 

  71. Stokke, B.T., B.E. Christensen and O. Smidsrod, 1998, Macromolecular properties of xanthan, in Polysaccharides: Structural Diversity and Functional Versatility (S. Dumitriu Eds.), Marcel Dekker, New York, USA, 433-472 

  72. Talukdar, M.M., I. Vinckier, P. Moldenaers and R. Kinget, 1996, Rheological characterization of xanthan gum and hydroxypropylmethyl cellulose with respect to controlled-release drug delivery, J. Pharm. Sci. 85, 537-540 

  73. Talukdar, M.M., G.V. Mooter, P. Augustijins, T. Tjandra-Maga, N. Verbeke and R. Kinget, 1998, In vivo evaluation of xanthan gum as a potential excipient for oral controlled-release matrix tablet formation, Intern. J. Pharm. 169, 105-113 

  74. Tschoegl, N.W., 1989, The Phenomenological Theory of Linear Viscoslasticc Behavior, Springer-Verlag, Berlin, Germany 

  75. Urlacher, B. and O. Noble, 1997, in Thickening and Gelling Agents for Food: Xanthan Gums (A. Imeson Eds.), Chapman and Hall, London, UK, 284-312 

  76. Wilhelm, M., D. Maring and H.W. Spiess, 1998, Fourier-transform rheology, Rheol. Acta 37, 399-405 

  77. Wilhelm, M., P. Reinheimer and M. Ortseifer, 1999, High sensitivity Fourier-transform rheology, Rheol. Acta 38, 349-356 

  78. Wilhelm, M., P. Reinheimer, M. Ortseifer, T. Neidhofer and H.W. Spiess, 2000, The cross-over between linear and non-linear mechanical behavior in polymer solutions as detected by Fourier- transform rheology, Rheol. Acta 39, 241-246 

  79. Wilhelm, M., 2002, Fourier-transform rheology, Macromol. Mater. Eng. 287, 83-105 

  80. Yosick, J.A., A.J. Giacomin and P. Moldenaers, 1997, A kinetic network model for nonlinear flow behavior of molten plastics in both shear and extension, J. Non-Newt. Fluid Mech. 70, 103-123 

  81. Yziquel, F., P.J. Carreau and P.A. Tanguy, 1999a, Nonlinear viscoelastic behavior of fumed silica suspensions, Rheol. Acta 38, 14-25 

  82. Yziquel, F., P.J. Carreau, M. Moan and P.A. Tanguy, 1999b, Rheological modeling of concentrated colloidal suspensions, J. Non-Newt. Fluid Mech. 86, 133-155 

  83. Zirnsak, M.A., D.V. Boger and V. Tirtaatmadja, 1999, Steady shear and dynamic rheological properties of xanthan gum solutions in viscous solvents, J. Rheol. 43, 627-650 

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