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[75690] Artykuł:

The Effect of Non-Equilibrium Solidification on the Structure and Mechanical Properties of AZ91 Alloy

Czasopismo: Archives of Foundry Engineering   Tom: 18, Zeszyt: 3, Strony: 120-125
ISSN:  1897-3310
Opublikowano: Lipiec 2018
Liczba arkuszy wydawniczych:  1.00
 
  Autorzy / Redaktorzy / Twórcy
Imię i nazwisko Wydział Katedra Do oświadczenia
nr 3
Grupa
przynależności
Dyscyplina
naukowa
Procent
udziału
Liczba
punktów
do oceny pracownika
Liczba
punktów wg
kryteriów ewaluacji
Andrzej Dziadoń orcid logo WMiBMKatedra Technik Komputerowych i Uzbrojenia**Takzaliczony do "N"Inżynieria mechaniczna337.505.00  
Tomasz Bucki orcid logo WMiBMKatedra Technik Komputerowych i Uzbrojenia**Niespoza "N" jednostkiInżynieria mechaniczna337.50.00  
Paweł Porzucek Niespoza "N" jednostki33.00.00  

Grupa MNiSW:  Publikacja w recenzowanym czasopiśmie wymienionym w wykazie ministra MNiSzW (część B)
Punkty MNiSW: 15


Pełny tekstPełny tekst     DOI LogoDOI     Web of Science LogoYADDA/CEON    
Słowa kluczowe:

Stop AZ91  mikrostruktura  właściwości mechaniczne  obróbka cieplna 


Keywords:

AZ91 alloy  Microstructure  Mechanical properties  Heat treatment 



Abstract:

AZ91 alloy was cast in a steel mould pre-exposed to three different temperatures: -196 ºC, 20 ºC and 650 ºC. The aim of the study was to determine the difference in the microstructure and mechanical properties between the castings formed in a cold mould and those solidifying under near-equilibrium conditions in a mould pre-heated to 650 ºC. Solidification at a low temperature led to dispersion of the structure elements as well as supersaturation of the solid solution of aluminium in magnesium. The heat treatment results indicate that the alloy solidified in the mould pre-exposed to 20 ºC can be successfully aged (heat treated to the T5 temper). It was found that the effect of the ageing process (T5 temper) was greater than the effect of the microstructure fragmentation, which was due to rapid solidification. The ageing results were assessed by comparing the microstructure and mechanical properties of AZ91 brought to the T5 condition with those obtained for the material in the T6 condition.



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