The vane method and kinetic modeling: shear rheology of nanofibrillated cellulose suspensions

被引:0
作者
Mikael Mohtaschemi
Anni Sorvari
Antti Puisto
Markus Nuopponen
Jukka Seppälä
Mikko J. Alava
机构
[1] Aalto University,Department of Applied Physics, School of Science
[2] Aalto University,Department of Biotechnology and Chemical Technology
[3] UPM,undefined
来源
Cellulose | 2014年 / 21卷
关键词
Rheology; Nanofibrillated cellulose; Modeling;
D O I
暂无
中图分类号
学科分类号
摘要
We conduct rheological characterization of nanofibrillated cellulose (NFC) suspensions, a highly non-Newtonian complex fluid, at several concentrations. Special care is taken to cope with the prevalent problems of time scale issues, wall depletion and confinement effects. We do this by combining the wide-gap vane geometry, extremely long measurement times, and modeling. We take into account the wide-gap related stress heterogeneity by extending upon mainstream methods and apply a gap correction. Furthermore, we rationalize the experimental data through a simple viscous structural model. With these tools we find that, owing to the small size of the particles subjected to Brownian motion, the NFC suspensions exhibit a critical shear rate, where the flow curve experiences a turning point. This makes the steady state of these suspensions at low shear rates non-unique. To optimize various mixing and pumping applications, such history dependent tendency of NFC suspensions to shear band needs to be taken into account.
引用
收藏
页码:3913 / 3925
页数:12
相关论文
共 211 条
[1]  
Agoda-Tandjawa G(2010)Rheological characterization of microfibrillated cellulose suspensions after freezing Carbohydr Polym 80 677-686
[2]  
Durand S(2008)Effect of polymer adsorption on cellulose nanofibril water binding capacity and aggregation BioResources 3 1315-1328
[3]  
Berot S(2005)Solving the Couette inverse problem using a wavelet-vaguelette decomposition J Rheol 49 441-460
[4]  
Blassel C(1995)A review of the slip (wall depletion) of polymer solutions, emulsions and particle suspensions in viscometers: its cause, character, and cure J Non-Newtonian Fluid Mech 56 221-251
[5]  
Gaillard C(2000)Measuring the viscosity of large-particle (and flocculated) suspensions: a note on the necessary gap size of rotational viscometers J Non-Newtonian Fluid Mech 94 213-217
[6]  
Garnier C(1990)The yield stress of fibre suspensions Can J Chem Eng 68 748-757
[7]  
Doublier JL(2000)Rheological modeling of microgel suspensions involving solid-liquid transition Langmuir 16 7968-7974
[8]  
Ahola S(2006)The metarheology of crowded fibre suspensions Ann Trans Nordic Rheol Soc 14 69-1402
[9]  
Myllytie P(2009)Yield stress fluids slowly yield to analysis Science 324 1401-1183
[10]  
Österberg M(2010)Letter to the editor: wall slip in dispersion rheometry J Rheol 54 1177-143