Study of an alternative phase field model for low interfacial energy in elastic solids

In 2005, the hybrid model was published by Prof. H.-D. Alber and Prof. P. Zhu as an alternative to the Allen-Cahn model for the description of phase field transformations. With low interfacial energy, it is more efficient, since the resolution of the diffuse interface is numerically broader for the...

Full description

Saved in:
Bibliographic Details
Main Author: Böttcher, Anke (auth)
Format: Electronic Book Chapter
Language:English
Published: Logos Verlag Berlin 2021
Subjects:
Online Access:OAPEN Library: download the publication
OAPEN Library: description of the publication
Tags: Add Tag
No Tags, Be the first to tag this record!

MARC

LEADER 00000naaaa2200000uu 4500
001 oapen_2024_20_500_12657_52509
005 20220120
003 oapen
006 m o d
007 cr|mn|---annan
008 20220120s2021 xx |||||o ||| 0|eng d
020 |a /doi.org/10.30819/5337 
020 |a 9783832553371 
020 |a 9783832553371 
040 |a oapen  |c oapen 
024 7 |a https://doi.org/10.30819/5337  |c doi 
041 0 |a eng 
042 |a dc 
072 7 |a PN  |2 bicssc 
072 7 |a PB  |2 bicssc 
072 7 |a PH  |2 bicssc 
100 1 |a Böttcher, Anke  |4 auth 
245 1 0 |a Study of an alternative phase field model for low interfacial energy in elastic solids 
260 |b Logos Verlag Berlin  |c 2021 
336 |a text  |b txt  |2 rdacontent 
337 |a computer  |b c  |2 rdamedia 
338 |a online resource  |b cr  |2 rdacarrier 
506 0 |a Open Access  |2 star  |f Unrestricted online access 
520 |a In 2005, the hybrid model was published by Prof. H.-D. Alber and Prof. P. Zhu as an alternative to the Allen-Cahn model for the description of phase field transformations. With low interfacial energy, it is more efficient, since the resolution of the diffuse interface is numerically broader for the same solution accuracy and allows coarser meshing. The solutions of both models are associated with energy minimisation and in this work the error terms introduced in the earlier publications are discussed and documented using one and two dimensional numerical simulations. In the last part of this book, phase field problems, initially not coupled with material equations, are combined with linear elasticity and, after simple introductory examples, a growing martensitic inclusion is simulated and compared with literature data. In addition to the confirmed numerical advantage, another phenomenon not previously described in the literature is found: with the hybrid model, in contrast to the examples calculated with the Allen-Cahn model, an inclusion driven mainly by curvature energy does not disappear completely. The opposite problem prevents inclusions from growing from very small initial configurations, but this fact can be remedied by a very finely chosen diffuse interface width and by analysing and adjusting the terms that generate the modelling errors. The last example shows that the hybrid model can be used with numerical advantages despite the above mentioned peculiarities. 
540 |a Creative Commons  |f https://creativecommons.org/licenses/by-nc-nd/4.0/legalcode  |2 cc  |4 https://creativecommons.org/licenses/by-nc-nd/4.0/legalcode 
546 |a English 
650 7 |a Chemistry  |2 bicssc 
650 7 |a Mathematics  |2 bicssc 
650 7 |a Physics  |2 bicssc 
653 |a Science 
653 |a Chemistry 
653 |a Mathematics 
653 |a Science 
653 |a Physics 
856 4 0 |a www.oapen.org  |u https://library.oapen.org/bitstream/id/002ef658-f71e-49e1-8e2d-4bc60adc85e8/external_content.pdf  |7 0  |z OAPEN Library: download the publication 
856 4 0 |a www.oapen.org  |u https://library.oapen.org/handle/20.500.12657/52509  |7 0  |z OAPEN Library: description of the publication