A Study of the Effects of Mechanical Alloying Fraction, Solution Treatment Temperature and Pre-Straining Degree on the Structure and Properties of a Powder Metallurgy-Produced FeMnSiCrNi Shape Memory Alloy

被引:0
作者
Matcovschi, Elena [1 ]
Pricop, Bogdan [1 ]
Lohan, Nicoleta-Monica [1 ]
Popa, Mihai [1 ]
Badarau, Gheorghe [1 ]
Cimpoesu, Nicanor [1 ]
Ozkal, Burak [2 ]
Bujoreanu, Leandru-Gheorghe [1 ]
机构
[1] Gheorghe Asachi Tech Univ Iasi, Fac Mat Sci & Engn, Blvd Dimitrie Mangeron 71A, Iasi 700050, Romania
[2] Res & Dev Ctr, Yurtbay Seramik, TR-26670 Eskisehir, Turkiye
关键词
shape memory alloy; mechanical alloying; solution treatment temperature; martensite; pseudoelasticity; cinematographic analysis; pre-straining; TRANSFORMATION; MICROSTRUCTURE; DEFORMATION; BEHAVIOR; NBC;
D O I
10.3390/cryst15020105
中图分类号
O7 [晶体学];
学科分类号
0702 ; 070205 ; 0703 ; 080501 ;
摘要
A shape memory alloy with the chemical composition Fe-14Mn-6Si-9Cr-5Ni (mass %) was produced by powder metallurgy (PM) from as-blended powders mixed with mechanically alloyed (MA'ed) powder volumes in amounts of 0, 10 and 20. After powder blending, pressing and sintering, the specimens were hot-rolled, spark erosion cut with different configurations and solution-treated between 700 and 1100 degrees C. After metallographic preparation, structural analyses were performed by X-ray diffraction and microscopic observation performed by optical and scanning electron microscopy (SEM). The analyses revealed the presence of thermal- and stress-induced martensites caused by solution treatment and pre-straining. Due to the relatively low Mn amount, significant quantities of alpha ' body center cubic martensite were formed during post-solution treatment water cooling. Solution-treated lamellar specimens underwent a training thermomechanical treatment comprising repeated cycles of room temperature bending, heating and sputtered water cooling. By cinematographic analysis, the occurrence of the shape memory effect (SME) was revealed, in spite of the large amount of alpha ' bcc martensite. Tensile specimens were subjected to room temperature failure tests and pre-straining (up to 4% permanent strain, after loading-unloading). After tensile pre-straining, a diminution of alpha ' martensite amount was noticed on XRD patterns, which was associated with the formation of internal sub-bands in the substructure of martensite and were observed by high-resolution SEM. These results prove that SME can be obtained in trained PM_MA'ed Fe-14Mn-6Si-9Cr-5Ni specimens in spite of the large amount of thermally induced alpha ' bcc martensite, the stress-induced formation of which is impeded by the presence of internal sub-bands.
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页数:14
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  • [1] Sato A., Chishima E., Soma K., Mori T., Shape memory effect in γ⇄ɛ transformation in Fe-30Mn-1Si alloy single crystals, Acta Metall, 30, pp. 1177-1183, (1982)
  • [2] Maki T., Ferrous shape memory alloys, Shape Memory Materials, pp. 117-132, (1998)
  • [3] Arruda G.J., Buono V.T.L., Andrade M.S., The influence of deformation on the microstructure and transformation temperatures of Fe–Mn–Si–Cr–Ni shape memory alloys, Mater. Sci. Eng. A, 273–275, pp. 528-532, (1999)
  • [4] Otsuka H., Yamada H., Maruyama T., Tanahashi H., Matsuda S., Murakami M., Effects of alloying additions on Fe-Mn-Si shape memory alloys, ISIJ Int, 30, pp. 675-679, (1990)
  • [5] Moriya Y., Kimura H., Ishizaki S., Hashizume S., Suzuki S., Suzuki H., Sampei T., Properties of Fe-Cr-Ni-Mn-Si (-Co) shape memory alloys, J. Phys. IV, 4, pp. 433-437, (1991)
  • [6] Kajiwara S., Characteristic features of shape memory effect and related transformation behavior in Fe-based alloys, Mater. Sci. Eng. A, 273–275, pp. 67-88, (1999)
  • [7] Berns H., Theisen W., Ferrous Materials: Steel and Cast Iron, pp. 190-207, (2008)
  • [8] Pricop B., Soyler A.U., Ozkal B., Bujoreanu L.G., Powder Metallurgy: An Alternative for FeMnSiCrNi Shape Memory Alloys Processing, Front. Mater, 7, (2020)
  • [9] Kim Y., Song Y.-B., Lee S.H., Microstructure and inter mediate-temperature mechanical properties of powder metallurgy Ti–6Al–4V alloy prepared by the prealloyed approach, J. Alloys Compd, 637, pp. 234-241, (2015)
  • [10] Saito T., Kapusta C., Takasaki A., Synthesis and characterization of Fe–Mn–Si shape memory alloy by mechanical alloying and subsequent sintering, Mat. Sci. Eng. A, 592, pp. 88-94, (2014)