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Pregled bibliografske jedinice broj: 524793

Acoustic emission analysis and thermo-hygro-mechanical model for concrete exposed to fire


Grosse, C; Ožbolt, Joško; Richter, R; Periškić, Goran
Acoustic emission analysis and thermo-hygro-mechanical model for concrete exposed to fire // Journal of acoustic emission, 28 (2010), 188-203 (podatak o recenziji nije dostupan, članak, znanstveni)


CROSBI ID: 524793 Za ispravke kontaktirajte CROSBI podršku putem web obrasca

Naslov
Acoustic emission analysis and thermo-hygro-mechanical model for concrete exposed to fire

Autori
Grosse, C ; Ožbolt, Joško ; Richter, R ; Periškić, Goran

Izvornik
Journal of acoustic emission (0730-0050) 28 (2010); 188-203

Vrsta, podvrsta i kategorija rada
Radovi u časopisima, članak, znanstveni

Ključne riječi
Acoustic emission; thermo-hygro-mechanical model; concrete; fire

Sažetak
High performance concrete (HPC) is often used in tunnelling, for columns of high raise buildings and similar structures, which require high compressive strength. However, when exposed to high temperature (fire) there is a strong degradation of mechanical properties of HPC and it shows unfavourable behaviour i.e., explosive spalling of concrete cover. In the here described experiments the behaviour of normal strength concrete that was exposed to fire is monitored by acoustic emission (AE) technique. By the use of the AE technique damage processes in concrete can be observed during the entire fire history and therefore the detection of initialisation of explosive spalling can also be detected. The method makes possible to locate and characterize the micro-cracking before failure. The paper describes the proposed concept and preliminary results of fire experiments on concrete specimens made of normal strength concrete. To support experimental results it is also important to have a numerical model, which is able to realistically predict behaviour of concrete at high temperature. Therefore, in the paper is also briefly discussed fully coupled thermo-hygro-mechanical model for concrete that is implemented into a 3D finite element code. The application of the model is illustrated on one numerical example, which demonstrates that the pore pressure in combination with thermally induced stresses can lead to explosive spalling of concrete cover.

Izvorni jezik
Engleski

Znanstvena područja
Građevinarstvo, Temeljne tehničke znanosti



POVEZANOST RADA


Projekti:
114-0000000-3145 - Numerički 3D kemo-higro-termo-mehanički model betona (Ožbolt, Joško, MZOS ) ( CroRIS)

Ustanove:
Građevinski fakultet, Rijeka

Profili:

Avatar Url Joško Ožbolt (autor)


Citiraj ovu publikaciju:

Grosse, C; Ožbolt, Joško; Richter, R; Periškić, Goran
Acoustic emission analysis and thermo-hygro-mechanical model for concrete exposed to fire // Journal of acoustic emission, 28 (2010), 188-203 (podatak o recenziji nije dostupan, članak, znanstveni)
Grosse, C., Ožbolt, J., Richter, R. & Periškić, G. (2010) Acoustic emission analysis and thermo-hygro-mechanical model for concrete exposed to fire. Journal of acoustic emission, 28, 188-203.
@article{article, author = {Grosse, C and O\v{z}bolt, Jo\v{s}ko and Richter, R and Peri\v{s}kic\', Goran}, year = {2010}, pages = {188-203}, keywords = {Acoustic emission, thermo-hygro-mechanical model, concrete, fire}, journal = {Journal of acoustic emission}, volume = {28}, issn = {0730-0050}, title = {Acoustic emission analysis and thermo-hygro-mechanical model for concrete exposed to fire}, keyword = {Acoustic emission, thermo-hygro-mechanical model, concrete, fire} }
@article{article, author = {Grosse, C and O\v{z}bolt, Jo\v{s}ko and Richter, R and Peri\v{s}kic\', Goran}, year = {2010}, pages = {188-203}, keywords = {Acoustic emission, thermo-hygro-mechanical model, concrete, fire}, journal = {Journal of acoustic emission}, volume = {28}, issn = {0730-0050}, title = {Acoustic emission analysis and thermo-hygro-mechanical model for concrete exposed to fire}, keyword = {Acoustic emission, thermo-hygro-mechanical model, concrete, fire} }




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