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(Referência obtida automaticamente do Web of Science, por meio da informação sobre o financiamento pela FAPESP e o número do processo correspondente, incluída na publicação pelos autores.)

Weldability and mechanical behavior of laser-welded TRIP 750 steel sheets

Texto completo
Autor(es):
Goncalves, Thais Soares [1] ; de Faria, Geraldo Lucio [1] ; de Siqueira, Rafael Humberto Mota [2] ; de Lima, Milton Sergio Fernandes [1, 2]
Número total de Autores: 4
Afiliação do(s) autor(es):
[1] Univ Fed Ouro Preto, Themat Network Mat Engn, Ouro Preto, MG - Brazil
[2] Inst Estudos Avancados IEAv, Photon Div, Sao Jose Dos Campos, SP - Brazil
Número total de Afiliações: 2
Tipo de documento: Artigo Científico
Fonte: INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY; v. 107, n. 5-6 MAR 2020.
Citações Web of Science: 0
Resumo

Transformation-induced plasticity steels have been developed and widely applied in the automotive and aerospace industries. They exhibit ductility and mechanical strength associated with a high formability due to their complex microstructure of bainite-associated pro-eutectoid ferrite and significant retained austenite fractions. The weldability of these steels is limited by the high content of alloying elements in the composition, causing the thermal cycle to modify the carefully designed microstructure, which in turn generates unsatisfactory weld mechanical properties. Laser welding has a relatively low thermal input, and, therefore, a narrow heat-affected zone is obtained. As known, the literature had not been definitively reported the microstructural features of the fusion and the heat-affected zones after laser welding of TRIP steels in conjunction with their mechanical behavior. The aim of the present work is to characterize the microstructure and mechanical behavior of laser-welded TRIP steel after uniaxial tensile and Erichsen formability tests. The coupons of TRIP 750 steel sheets were subjected to different laser welding conditions in order to analyze their impact on the microstructure, hardness, and mechanical strength of the material. After some preliminary tests, the laser power was fixed at 900 W and the weld speed fixed at 50 mm/s as the best choice of operating parameters. Under these conditions, the fusion zone was almost completely martensitic, while the heat-affected zone had a mixture of ferrite and martensite. The martensite transformation is corroborated by finite elements analyses as the cooling rate was 4200 degrees C/s for material at martensite start temperature. The average hardness of the fusion zone was 530 HV and the heat-affected zone was 550 HV, compared with 270 HV of the base material. In terms of mechanical behavior, the tensile strength of the welded coupons was found to reach 740 MPa and the ductility reached 22% in uniform deformation. The Erichsen index for the welded sheets attained 15 mm for a load of 48.5 kN, similar with the non-welded base material. Both in the case of the uniaxial tensile testing and in the Erichsen testing, the fracture occurred in the base material away from the weld, showing a good toughness of the welded component. (AU)

Processo FAPESP: 16/11309-0 - Estudo, desenvolvimento e aplicação de processo híbrido: Manufatura Aditiva (Ma) + High Speed Machining/Grinding (HSM/G)
Beneficiário:Reginaldo Teixeira Coelho
Modalidade de apoio: Auxílio à Pesquisa - Temático
Processo FAPESP: 19/25229-7 - Fabricação de estruturas de satélites de pequeno porte com uso de lasers
Beneficiário:Rafael Humberto Mota de Siqueira
Modalidade de apoio: Bolsas no Brasil - Pós-Doutorado