[1]
Arlon. Focus on Rheology. Materials for Electronics, Inc 2010; 1-8.
[3]
Xu F. Bubble hydrodynamics and mass transfer in complex media (Doctoral dissertation, INSA de Toulouse). Chem Proc Eng INSA de Toulouse 2019; 1-215.
[4]
Chhabra RP. Non-Newtonian fluids: an introduction. In: Deshpande AP, Krishnan JM, Kumar PBS, Eds. Rheology of complex fluids. New York: Springer 2013; pp. 3-34.
[5]
Tanvir S. Physical properties, evaporation and combustion characteristics of nanofluid-type fuels 2016.
[7]
Chhabra RP. Rheology: From simple fluids to complex suspensions. In: Belgacem N, Pizzi A, Eds. Lignocellulosic Fibers and Wood Handbook: Renewable Materials for Today’s Environment. John Wiley & Sons 2016; pp. 405-38.
[8]
Rapp BE. Microfluidics: modeling, mechanics and mathematics. William Andrew 2016; pp. 1-755.
[11]
Vlachopoulos J, Strutt D. The role of rheology in polymer extrusion. New Technology for Extrusion Conference Italy 20-1
[19]
Ezekiel R, Rana G. Physicochemical properties of potato starch in relation to cultivar, growing location, season and crop maturity. Adv Hortic Sci 2009; 23(2): 94-100.
[21]
Biliaderis CG. Structures and phase transitions of starch in food systems. Food Technol 1992; 46(6): 98-109.
[23]
Swinkels JJM. Industrial starch chemistry. AVEBE Brochure, Foxhol, The Netherlands; 8-24.
[25]
Tester RF, Morrison WR. Swelling and gelatinization of cereal starches. I. Effects of amylopectin, amylose, and lipids. Cereal Chem 1990; 67(6): 551-7.
[26]
Chen J, Jane J. Properties of granular cold-water-soluble starches prepared by alcoholic-alkaline treatments. Cereal Chem 1994; 71(6): 623-6.
[27]
Eastman JE, Moore CO. Tate and Lyle Ingredients Americas LLC, Cold-water-soluble granular starch for gelled food compositions. U.S. Patent 4465702, 1984.
[30]
Light JM. Modified food starches: Why, what, where, and how. Cereal Foods World 1990; 35(11): 1081-92.
[31]
Jane JL, Seib PA. Preparation of granular cold water swelling/soluble starches by alcoholic-alkali treatments. US Patent US 5057157, 1991.
[34]
Kim CS, Walker CE. Effects of sugars and emulsifiers on starch gelatinization evaluated by differential scanning calorimetry. Cereal Chem 1992; 69(2): 212-7.
[35]
Savage HL, Savage HL, Osman EM. Effect of certain sugars and sugar alcohols on the swelling of cornstarch granules. Cereal Chem 1978; 55: 447-54.
[36]
Spies RD, Hoseney RC. Effect of sugars on starch gelatinisation. Cereal Chem 1982; 59(2): 128-31.
[37]
Bean MN, Yamazaki WT. Wheat starch gelatinization in sugar solutions. I. Sucrose: Microscopy and viscosity effects. Cereal Chem 1978; 55(6): 936-44.
[42]
D’appolonia BL. Effect of bread ingredients on starch-gelatinization properties as measured by the amylograph. Cereal Chem 1972; 49: 532-43.
[45]
Von Hippel PH. Neutral salt effects on the conformational stability of biological macromlecules. Protein-Ligand Interactions 1975; pp. 452-71.
[48]
Miles CA, Morley MJ. Estimation of the thermal properties of foods: a revision of some of the equations used in COSTHERM. Proceedings of the IIR/EC Conference ‘Modelling of Thermal Properties and Behaviour of Foods During Production, Storage and Distribution. 135-43.
[56]
Maxwell JL, Zobel HF. Model studies on cake staling. Cereal Foods World 1978; 13: 124-8.
[57]
Ward KEJ, Hoseney RC, Seib PA. Retrogradation of amylopectin from maize and wheat starches. Cereal Chem 1994; 71(2): 150-4.
[61]
Hansen LM, Setser CS, Paukstelis JV. Investigations of sugar-starch interactions using carbon-13 nuclear magnetic resonance. I. Sucrose. Cereal Chem 1989; 66(5): 411-5.
[62]
Lim H, Setser CS, Paukstelis JV, Sobczynska D. Nuclear magnetic resonance studies on wheat starch-sucrose water interactions with increasing temperature. Cereal Chem 1992; 69(4): 382-6.
[64]
Deplace G, Mertens B. The commercial application of high pressure technology in the food processing industry. Colloques-Institut National De La Sante Et De La Recherche Medicale Colloques Et Seminaires 1992; pp. 469-9.
[65]
Masuda M, Saito Y, Iwanami T, Hirai Y. Effects of hydrostatic pressure on packaging materials for food. In: C. Balny, R. Hayashi, K. Heremans, P. Masson, Eds. High pressure and biotechnology Montrouge, France: Colloque INSERM/ John Libbey Eurotext. 1992; pp. 163-5.
[66]
Ochiai S, Nakagawa Y. Packaging for high pressure food processing. In: C. Balny, R. Hayashi, K. Heremans, P. Masson, Eds. High pressure and biotechnology Montrouge, France: Colloque INSERM/ John Libbey Eurotext. 1992; pp. 163-5.
[68]
Michel M, Autio K. Effects of high pressure on protein- and polysaccharide- based structures. In: M.E.G. Hendrickx, D. Knorr, Eds. Ultra high pressure treatments of foods. Moscow: Kluwer Academic/Plenum Publishers 2002; pp. 189-214.
[72]
Rao MA. Introduction. In: Rao MA, Ed. Rheology of Fluid and Semisolid Foods Principles and Applications. Gaithersburg: Aspen Publishers 2010; pp. 21-4.
[78]
Autio K. Rheological and Microstructural changes of oat barley starches during heating and cooling. J Food Struct 1990; 9: 297-304.
[80]
Nowjee NC, Mackley MR. The melt rheology and foaming behaviour of starch using a Multipass Rheometer. Conference Proceedings for the 7th World Congress of Chemical Engineering; 2005; 10-4. July. Scotland, Glasgow.
[92]
Adebowale D. Food Rheology. Abeokuta. University of Agriculture, Department of Food Science and Technology 2009; 1-37.
[93]
Braun DD, Rosen MR. Rheology modifiers handbook: practical use and application. Elsevier 2013.