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Rheological Properties of Some Honeys in Liquefied and Crystallised States Cover

Rheological Properties of Some Honeys in Liquefied and Crystallised States

Open Access
|Dec 2016

References

  1. Abu-Jdayil, B., Al-Majeeed, G. A., Al-Malah, K. I., M., Zaitoun, S. (2002). Heat effect on rheology of light- and dark-colored honey. Journal of Food Engineering, 51, 33-38.10.1016/S0260-8774(01)00034-6
  2. Ahmed, J., Prabhu, S. T., Raghavan, G. S. V., Ngadi, M. (2007). Physico–chemical rhreological, calorimetric and dielectric behavior of selected Indian honey. Journal of Food Engineering, 79, 1207-1213. DOI:10.1016/j.jfoodeng.2006.04.04810.1016/j.jfoodeng.2006.04.048
  3. Al-Malah, K. I. M., Abu-Jadyil, B., Zaitoun, S., Al-Majeeed, G. A. (2001). Application of WLF and Arrhenius kinetics to rheology of selected dark-colored honey. Journal of Food Process Engineering, 24, 341-357.10.1111/j.1745-4530.2001.tb00548.x
  4. Assil, H. I., Sterling, R. & Sporns, P. (1991). Crystal control in processed liquid honey. Journal of Food Science, 56, 1034–1037.10.1111/j.1365-2621.1991.tb14635.x
  5. Bakier S. (2009). Capabilities of near-infrared spectroscopy to analyse changes in water bonding during honey crystallisation process. International Journal of Food Science and Technology., 44(3):519-524. DOI:10.1111/j.1365-2621.2008.01837.x10.1111/j.1365-2621.2008.01837.x
  6. Bakier, S. (2007). The influence of temperature and water content on the rheological properties of polish honeys. Polish Journal of Food and Nutrition Science, 57, 17-23.
  7. Bakier, S. (2003). Optical characteristics of the crystals in granulated bee honey. Inżynieria Rolnicza, 8(50), 19-25 (in Polish).
  8. Bakier, S., (2004). Description of phenomena occurring during the heating of crystallized honey. Acta Agrophysica, 3(3), 415-424.
  9. Bakier, S. & Bakoniuk, J.,R. (2013). Rheological properties of some ketchups on the Polish market. Acta Agrophysica, 20(2), 211-225.
  10. Bhandari, B., D’arcy, B. & Chow, S. (1999). Rheology of selected Australian honeys. Journal of Food Engineering, 41, 65–68.10.1016/S0260-8774(99)00078-3
  11. Cavia, M. M., Fernández-Muiño M. A., Gömez-Alonso E., Montes-Pérez M. J., Huidobro J. F., Sancho M. T. (2002). Evolution of fructose and glucose in honey over one year, influence of induced granulation. Food Chemistry, 78, 157-161.10.1016/S0308-8146(01)00393-4
  12. Chen, Y.W., Lin, C-H., Wu, F-Y. & Chen, H-H. (2009). Rheological properties of crystallized honey prepared by a new type of nuclei. Journal of Food Process Engineering, 32, 512–527. DOI: 10.1111/j.1745-4530.2007.00227.x10.1111/j.1745-4530.2007.00227.x
  13. Conforti, P. A., Lupano, C. E., Malacalza, N. H., Arias V., Castells C. B. (2006). Crystalization of honey at −20°C. International Journal of Food Properties, 9, 99-107. DOI: 10.1080/1094291050047396210.1080/10942910500473962
  14. da Costa, C. C. & Pereira, R., G. (2002). The influence of propolis on the rheological behaviour of prure honey. Food Chemistry, 76, 417-421.10.1016/S0308-8146(01)00298-9
  15. Crane, E. (1975). Honey a Comprehensive Survey. London: Heinemann.
  16. Escuredo, O., Dobre, I., Fernández-González, M. M., Seijo, C. (2014). Contribution of botanical origin and sugar composition of honeys on the crystallization phenomenon. Food Chemistry, 149, 84-90. DOI: 10.1016/j.foodchem.2013.10.09710.1016/j.foodchem.2013.10.097
  17. Ferguson, J. & Kembłowski, Z. (1991). Applied Fluid Rheology. London: Elsevier, Applied Science. 323 pp.
  18. Gómez-Díaz, D., Navaza, J. M. & Quintáns-Riveiro, L. C. (2006). Rheological behaviour of Galician honeys. European Food Research and Technology, 222, 439-442. DOI: 10.1007/s00217-005-0120-010.1007/s00217-005-0120-0
  19. Gleiter, R.A., Horn, H. & Isengard, H.-D. (2006). Influence of type and state of crystallisation on the water activity of honey. Food Chemistry, 96, 441–445. DOI: 10.1016/j.foodchem.2005.03.05110.1016/j.foodchem.2005.03.051
  20. Junzheng, P. & Changying, J. (1998). General rheological model for natural honeys in China. Journal of Food Engineering, 36, 165–168.10.1016/S0260-8774(98)00050-8
  21. Juszczak, L. & Fortuna, T. (2006). Rheology of selected Polish honeys. Journal of Food Engineering, 75, 43-49. DOI:10.1016/j.jfoodeng.2005.03.04910.1016/j.jfoodeng.2005.03.049
  22. Kayacier, A., & Karaman, S. (2008). Rheological and some physicochemical characteristics of selected turkish honeys. Journal of Texture Studies, 39, 17–27.10.1111/j.1745-4603.2007.00127.x
  23. Kulkarni, C., Belsare, N. & Lele, A. (2006). Studies on shrikhand rheology. Journal of Food Engineering, 74, 169-177. DOI:10.1016/j.jfoodeng.2005.02.02910.1016/j.jfoodeng.2005.02.029
  24. Kulmyrzaev, A., & McClements, D.J. (2000). High frequency dynamic shear rheology of honey. Journal of Food Engineering, 45, 219-224.10.1016/S0260-8774(00)00062-5
  25. Lazaridou, A., Biliaderis, C. G., Bacandritsos, N. & Sabatini, A. G. (2004). Composition, thermal and rheological behavior of selected Greek honeys. Journal of Food Engineering, 64, 9-21. DOI: 10.1016/j.jfoodeng.2003.09.00710.1016/j.jfoodeng.2003.09.007
  26. Mehryar, L., Esmaiili, M. & Hassanzadeh, A. (2013). Evaluation of Some Physicochemical and Rheological Properties of Iranian Honeys and the Effect of Temperature on its Viscosity. American-Eurasian ournal of Agricultural & Enviromental Sciences, 13(6), 807-819. DOI: 10.5829/idosi.aejaes.2013.13.06.1971
  27. Mora-Escobedo, R., Moguel-Ordóňez, Y., Jarmillo-Flores, M.E., Gutiérrez-López G. F. (2006). The composition, rheological and thermal properties of tajonal (Viguiera denata) mexican honey. International Journal Food Properties, 9, 299-316. DOI: 10.1080/10942910600396159
  28. Mossel, B., Bhandari, B., D’Arcy, B., Caffin, N., (2000). Use of an Arrhenius model to predict rheological behaviour in some Australian honeys. Lebensmittel-Wissenschaft und-Technologie, 33, 545–552.10.1006/fstl.2000.0714
  29. Oh, J.H., & Yoo, B. (2011). Effect of Temperature on the Relationship between Moisture Content and Dynamic Rheological Properties of Korean Honey. Food Science and Biotechnology, 20(1), 261-265. DOI 10.1007/s10068-011-0036-310.1007/s10068-011-0036-3
  30. Oroian, M., Amariei, S., Escriche, I., Gutt, G. A (2013). Viscoelastic Model for Honeys Using the Time–Temperature Superposition Principle (TTSP). Food Bioprocess Technology, 6, 2251–2260. DOI 10.1007/s11947-012-0893-710.1007/s11947-012-0893-7
  31. Rao, M.A. (1999). Rheology of fluid semisoli foods, Gaithersburg Maryland: A Chapman & Hall Food Science Book, Aspen Publichers Inc.
  32. Recondo, M. P., Elizalde, B. E. & Buera, M. P. (2006). Modeling temperature dependence of honey viscosity and of related supersaturated model carbohydrate systems. Journal of Food Engineering, 77, 126-134. DOI:10.1016/j.jfoodeng.2005.06.05410.1016/j.jfoodeng.2005.06.054
  33. Regulation of the Minister of Agriculture and Rural Development dated 14 January 2009.
  34. Schramm, G. (1994). A practical approach to rheology and rheometry, Karlsruhe: Copyright by Gebrueder HAAKE GmbH.
  35. SIS (2003) User’s Guide analySIS. Version 3.2. Soft Inaging System GmbH. Germany Munster.
  36. Sopade, P.A., Halley, P., Bhandari, B., D’Arcy, B., Doebler, C., Caffin N. (2002). Application of the Williams–Landel–Ferry model to the viscosity–temperature relationship of Australian honeys. Journal of Food Engineering, 56, 67–75.10.1016/S0260-8774(02)00149-8
  37. Sopade, P. A., Halley, P. J., D’arcy, B. R., Bhandari, B. R. & Caffin, N. (2004). Dynamic and steady-state rheology of Australian honeys at subzero temperatures. Journal of Food Process Engineering, 27, 284-309.10.1111/j.1745-4530.2004.00468.x
  38. Statsoft (2014). STATISTICA System Reference. Version 12. Kraków, Polska.
  39. Tárrega, A. L. & Durán Costell, E. (2005). Rheological characterization of semisolid dairy desserts. Effect of temperature. Food Hydrocolloids, 19, 133–139. DOI:10.1016/j.foodhyd.2004.04.02210.1016/j.foodhyd.2004.04.022
  40. Trávníček, P., Vítěz, T. & Přidal, A. (2012). Rheological properties of honey. Scientia agriculturae bohemica, 43(4), 160–165. DOI: 10.7160/sab.2012.43040610.7160/sab.2012.430406
  41. White, J. W. (1978). Honey. Advances in Food Research, 24, 287–374.10.1016/S0065-2628(08)60160-3
  42. Yanniotis, S., Skaltsi, S. & Karaburnioti, S. (2006). Effect of moisture content on the viscosity of honey at different temperatures. Journal of Food Engineering, 72, 372-377.10.1016/j.jfoodeng.2004.12.017
  43. Yoo, B. (2004). Effect of temperature on dynamic rheology of Korean honeys. Journal of Food Engineering, 65, 459-463. DOI:10.1016/j.jfoodeng.2004.02.00610.1016/j.jfoodeng.2004.02.006
  44. Zaitoun, S., Al-Majeed, G. A., Al-Malah, K. I. M., Abu-Jdayil, B (2001). Rheological properties of selected light colored Jordanian honey. International Journal of Food Properties, 4, 139–148.10.1081/JFP-100002192
  45. Zamora, M. C. & Chirife, J. (2006). Determination of water activity change due to crystallization in honeys from Argentina. Food Control, 17, 59–64. DOI:10.1016/j.foodcont.2004.09.00310.1016/j.foodcont.2004.09.003
DOI: https://doi.org/10.1515/jas-2016-0026 | Journal eISSN: 2299-4831 | Journal ISSN: 1643-4439
Language: English
Page range: 153 - 166
Submitted on: Apr 27, 2016
Accepted on: Nov 2, 2016
Published on: Dec 8, 2016
Published by: Research Institute of Horticulture
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2016 Sławomir Bakier, Krzysztof Miastkowski, Jan Robert Bakoniuk, published by Research Institute of Horticulture
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.