Literature DB >> 21366278

Lubrication, adsorption, and rheology of aqueous polysaccharide solutions.

Jason R Stokes1, Lubica Macakova, Agnieszka Chojnicka-Paszun, Cornelis G de Kruif, Harmen H J de Jongh.   

Abstract

Aqueous lubrication is currently at the forefront of tribological research due to the desire to learn and potentially mimic how nature lubricates biotribological contacts. We focus here on understanding the lubrication properties of naturally occurring polysaccharides in aqueous solution using a combination of tribology, adsorption, and rheology. The polysaccharides include pectin, xanthan gum, gellan, and locus bean gum that are all widely used in food and nonfood applications. They form rheologically complex fluids in aqueous solution that are both shear thinning and elastic, and their normal stress differences at high shear rates are found to be characteristic of semiflexible/rigid molecules. Lubrication is studied using a ball-on-disk tribometer with hydrophobic elastomer surfaces, mimicking biotribological contacts, and the friction coefficient is measured as a function of speed across the boundary, mixed, and hydrodynamic lubrication regimes. The hydrodynamic regime, where the friction coefficient increases with increasing lubricant entrainment speed, is found to depend on the viscosity of the polysaccharide solutions at shear rates of around 10(4) s(-1). The boundary regime, which occurs at the lowest entrainment speeds, depends on the adsorption of polymer to the substrate. In this regime, the friction coefficient for a rough substrate (400 nm rms roughness) is dependent on the dry mass of polymer adsorbed to the surface (obtained from surface plasmon resonance), while for a smooth substrate (10 nm rms roughness) the friction coefficient is strongly dependent on the hydrated wet mass of adsorbed polymer (obtained from quartz crystal microbalance, QCM-D). The mixed regime is dependent on both the adsorbed film properties and lubricant's viscosity at high shear rates. In addition, the entrainment speed where the friction coefficient is a minimum, which corresponds to the transition between the hydrodynamic and mixed regime, correlates linearly with the ratio of the wet mass and viscosity at ∼10(4) s(-1) for the smooth surface. These findings are independent of the different polysaccharides used in the study and their different viscoelastic flow properties.

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Year:  2011        PMID: 21366278     DOI: 10.1021/la104040d

Source DB:  PubMed          Journal:  Langmuir        ISSN: 0743-7463            Impact factor:   3.882


  6 in total

1.  Sliding droplets of Xanthan solutions: A joint experimental and numerical study.

Authors:  Silvia Varagnolo; Giampaolo Mistura; Matteo Pierno; Mauro Sbragaglia
Journal:  Eur Phys J E Soft Matter       Date:  2015-11-30       Impact factor: 1.890

2.  Biopolymer Green Lubricant for Sustainable Manufacturing.

Authors:  Shih-Chen Shi; Fu-I Lu
Journal:  Materials (Basel)       Date:  2016-05-05       Impact factor: 3.623

3.  Synergistic Microgel-Reinforced Hydrogels as High-Performance Lubricants.

Authors:  Jing Hu; Efren Andablo-Reyes; Siavash Soltanahmadi; Anwesha Sarkar
Journal:  ACS Macro Lett       Date:  2020-11-16       Impact factor: 6.903

4.  Roles of viscosity, applied load and surface wettability on the lubrication behaviour of model liquid/semi-solid foods: Measurements with a bespoke tribo-cell fixture and rotational rheometer.

Authors:  Chaiwut Gamonpilas; Chi-Na Benyajati; Wuttipong Sritham; Jenwit Soparat; Nattawut Limprayoon; Nispa Seetapan; Asira Fuongfuchat
Journal:  Curr Res Food Sci       Date:  2021-12-22

5.  Role of Flaxseed Gum and Whey Protein Microparticles in Formulating Low-Fat Model Mayonnaises.

Authors:  Keying Yang; Ruoting Xu; Xiyu Xu; Qing Guo
Journal:  Foods       Date:  2022-01-21

6.  3D Biomimetic Tongue-Emulating Surfaces for Tribological Applications.

Authors:  Efren Andablo-Reyes; Michael Bryant; Anne Neville; Paul Hyde; Rik Sarkar; Mathew Francis; Anwesha Sarkar
Journal:  ACS Appl Mater Interfaces       Date:  2020-10-26       Impact factor: 9.229

  6 in total

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