Predictions of the shear modulus of cheese, a soft matter approach
The rheological and structural properties of cheese govern many physical processes associated with cheese such as slumping, slicing and melting. To date there is no quantitative model that predicts shear modulus, viscosity or any other rheological property across the entire range of cheeses; only em...
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2019-08-01
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Online Access: | https://doi.org/10.1515/arh-2019-0006 |
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doaj-1fba204b02604913834048ecc1fdfdeb2021-09-06T19:40:03ZengDe GruyterApplied Rheology1617-81062019-08-01291586810.1515/arh-2019-0006arh-2019-0006Predictions of the shear modulus of cheese, a soft matter approachGillies Graeme0Fonterra Research and Development Centre, Dairy Farm Road, Fitzherbert, Palmerston North, 4472, New Zealand; Tel.: +64 6 350 4649; Fax +64 6 356 1476;The rheological and structural properties of cheese govern many physical processes associated with cheese such as slumping, slicing and melting. To date there is no quantitative model that predicts shear modulus, viscosity or any other rheological property across the entire range of cheeses; only empirical fits that interpolate existing data. A lack of a comprehensive model is in part due to the many variables that can affect rheology such as salt, pH, calcium levels, protein to moisture ratio, age and temperature. By modelling the casein matrix as a series core-shell nano particles assembled from calcium and protein these variables can be reduced onto a simpler two-dimensional format consisting of attraction and equivalent hard sphere volume fraction. Approximating the interaction between core-shell nano particles with a Mie potential enables numerical predictions of shear moduli. More qualitatively, this two-dimensional picture can be applied quite broadly and captures the viscoelastic behaviour of soft and hard cheeses as well as their melting phenomena.https://doi.org/10.1515/arh-2019-0006cheesecore-shell nano-particlesshear modulusmeltingphase separationphase diagramgelsglasses |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Gillies Graeme |
spellingShingle |
Gillies Graeme Predictions of the shear modulus of cheese, a soft matter approach Applied Rheology cheese core-shell nano-particles shear modulus melting phase separation phase diagram gels glasses |
author_facet |
Gillies Graeme |
author_sort |
Gillies Graeme |
title |
Predictions of the shear modulus of cheese, a soft matter approach |
title_short |
Predictions of the shear modulus of cheese, a soft matter approach |
title_full |
Predictions of the shear modulus of cheese, a soft matter approach |
title_fullStr |
Predictions of the shear modulus of cheese, a soft matter approach |
title_full_unstemmed |
Predictions of the shear modulus of cheese, a soft matter approach |
title_sort |
predictions of the shear modulus of cheese, a soft matter approach |
publisher |
De Gruyter |
series |
Applied Rheology |
issn |
1617-8106 |
publishDate |
2019-08-01 |
description |
The rheological and structural properties of cheese govern many physical processes associated with cheese such as slumping, slicing and melting. To date there is no quantitative model that predicts shear modulus, viscosity or any other rheological property across the entire range of cheeses; only empirical fits that interpolate existing data. A lack of a comprehensive model is in part due to the many variables that can affect rheology such as salt, pH, calcium levels, protein to moisture ratio, age and temperature. By modelling the casein matrix as a series core-shell nano particles assembled from calcium and protein these variables can be reduced onto a simpler two-dimensional format consisting of attraction and equivalent hard sphere volume fraction. Approximating the interaction between core-shell nano particles with a Mie potential enables numerical predictions of shear moduli. More qualitatively, this two-dimensional picture can be applied quite broadly and captures the viscoelastic behaviour of soft and hard cheeses as well as their melting phenomena. |
topic |
cheese core-shell nano-particles shear modulus melting phase separation phase diagram gels glasses |
url |
https://doi.org/10.1515/arh-2019-0006 |
work_keys_str_mv |
AT gilliesgraeme predictionsoftheshearmodulusofcheeseasoftmatterapproach |
_version_ |
1717769428784906240 |