Numerical Study of Heat and Mass Transfer during Cryopreservation Process with Application of Directed Interval Arithmetic

In the present paper, numerical modelling of heat and mass transfer proceeding in a two-dimensional axially symmetrical articular cartilage sample subjected to a cryopreservation process is presented. In the model under consideration, interval parameters were assumed. The heat transfer process is de...

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Main Authors: Alicja Piasecka-Belkhayat, Anna Skorupa
Format: Article
Language:English
Published: MDPI AG 2021-05-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/11/2966
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spelling doaj-8ff178d633a94ae082dee6709ff190422021-06-01T01:43:51ZengMDPI AGMaterials1996-19442021-05-01142966296610.3390/ma14112966Numerical Study of Heat and Mass Transfer during Cryopreservation Process with Application of Directed Interval ArithmeticAlicja Piasecka-Belkhayat0Anna Skorupa1Department of Computational Mechanics and Engineering, Silesian University of Technology, Konarskiego 18A, 44-100 Gliwice, PolandDepartment of Computational Mechanics and Engineering, Silesian University of Technology, Konarskiego 18A, 44-100 Gliwice, PolandIn the present paper, numerical modelling of heat and mass transfer proceeding in a two-dimensional axially symmetrical articular cartilage sample subjected to a cryopreservation process is presented. In the model under consideration, interval parameters were assumed. The heat transfer process is described using the Fourier interval equation, while the cryoprotectant transport (DMSO) across the cell membrane is analyzed using a two-parameter model taking into account the simulation of the water volume in the chondrocytes and the change in DMSO concentration over time. The liquidus tracking (LT) protocol introduced by Pegg et al. was used to model the cryopreservation process. This procedure divides the heating and cooling phases into eight and seven steps, respectively, allowing precise regulation of temperature and cryoprotectant (CPA) concentration of bathing solutions. This protocol protects chondrocytes from ice crystal, osmotic stress, and electrolyte damage. The obtained interval concentrations of cryoprotectant in chondrocytes were compared with previous simulations obtained using the deterministic model and they are mostly in agreement with the simulation data.https://www.mdpi.com/1996-1944/14/11/2966cryopreservationheat transfermass transferinterval finite difference methoddirected interval arithmetic
collection DOAJ
language English
format Article
sources DOAJ
author Alicja Piasecka-Belkhayat
Anna Skorupa
spellingShingle Alicja Piasecka-Belkhayat
Anna Skorupa
Numerical Study of Heat and Mass Transfer during Cryopreservation Process with Application of Directed Interval Arithmetic
Materials
cryopreservation
heat transfer
mass transfer
interval finite difference method
directed interval arithmetic
author_facet Alicja Piasecka-Belkhayat
Anna Skorupa
author_sort Alicja Piasecka-Belkhayat
title Numerical Study of Heat and Mass Transfer during Cryopreservation Process with Application of Directed Interval Arithmetic
title_short Numerical Study of Heat and Mass Transfer during Cryopreservation Process with Application of Directed Interval Arithmetic
title_full Numerical Study of Heat and Mass Transfer during Cryopreservation Process with Application of Directed Interval Arithmetic
title_fullStr Numerical Study of Heat and Mass Transfer during Cryopreservation Process with Application of Directed Interval Arithmetic
title_full_unstemmed Numerical Study of Heat and Mass Transfer during Cryopreservation Process with Application of Directed Interval Arithmetic
title_sort numerical study of heat and mass transfer during cryopreservation process with application of directed interval arithmetic
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-05-01
description In the present paper, numerical modelling of heat and mass transfer proceeding in a two-dimensional axially symmetrical articular cartilage sample subjected to a cryopreservation process is presented. In the model under consideration, interval parameters were assumed. The heat transfer process is described using the Fourier interval equation, while the cryoprotectant transport (DMSO) across the cell membrane is analyzed using a two-parameter model taking into account the simulation of the water volume in the chondrocytes and the change in DMSO concentration over time. The liquidus tracking (LT) protocol introduced by Pegg et al. was used to model the cryopreservation process. This procedure divides the heating and cooling phases into eight and seven steps, respectively, allowing precise regulation of temperature and cryoprotectant (CPA) concentration of bathing solutions. This protocol protects chondrocytes from ice crystal, osmotic stress, and electrolyte damage. The obtained interval concentrations of cryoprotectant in chondrocytes were compared with previous simulations obtained using the deterministic model and they are mostly in agreement with the simulation data.
topic cryopreservation
heat transfer
mass transfer
interval finite difference method
directed interval arithmetic
url https://www.mdpi.com/1996-1944/14/11/2966
work_keys_str_mv AT alicjapiaseckabelkhayat numericalstudyofheatandmasstransferduringcryopreservationprocesswithapplicationofdirectedintervalarithmetic
AT annaskorupa numericalstudyofheatandmasstransferduringcryopreservationprocesswithapplicationofdirectedintervalarithmetic
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