2017
DOI: 10.1007/s10854-017-8082-0
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Nanostructured soft magnetic materials synthesized via mechanical alloying: a review

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Cited by 43 publications
(15 citation statements)
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“…This free motion of iron atoms becomes limited due to the introduction of alloy elements (carbon), and hence the mechanical properties are improved. [ 59 ] For example, the hardness, tensile strength, quenching behavior, and annealing requirement of steel are more favorable for practical applications compared to pure iron. Steel can be categorized into a wide range of subcategories depending on its qualitative and quantitative alloy composition.…”
Section: Pre‐painted Steel Roofingmentioning
confidence: 99%
“…This free motion of iron atoms becomes limited due to the introduction of alloy elements (carbon), and hence the mechanical properties are improved. [ 59 ] For example, the hardness, tensile strength, quenching behavior, and annealing requirement of steel are more favorable for practical applications compared to pure iron. Steel can be categorized into a wide range of subcategories depending on its qualitative and quantitative alloy composition.…”
Section: Pre‐painted Steel Roofingmentioning
confidence: 99%
“…Compared to the as-received Al (see the scale bar), it is visibly clear from the SEM images in Figure 2 that the particle size of the Al-Li-GNPs increased significantly after milling. It is well-known that the ball-milling process can cause a considerable change to the morphology of the milled powder (Hajalilou et al, 2018) and effectively distribute and disperse the nano-reinforcement (Jiang et al, 2018). Furthermore, the ball-milling process is characterized by the competition between the cold welding of the milled powder and its fracture (Hajalilou et al, 2018;Jiang et al, 2018).…”
Section: Conventional Milling Vialmentioning
confidence: 99%
“…Magnetic nanoparticles can be synthesized by using ionic and non-ionic techniques [43]. There are numerous methods known to synthesize magnetic nanoparticles, such as mechanical milling [44], co-precipitation [45], nanoreactor/microemulsion techniques [45,46], sonochemical processing [45,46], sol-gel methods [47], flow injection [43], electrochemical production [48], supercritical fluid techniques [49,50], thermal decomposition [13][14][15][16]22,[51][52][53][54][55], hydrothermal routes [45], microwave techniques [56], spray pyrolysis [45], laser pyrolysis [45], flame spray pyrolysis [45], gas phase synthesis [45], arc discharge [57], oxidation [58,59], and microbial methods etc. [43,45,60].…”
Section: Magnetic Nanoparticlesmentioning
confidence: 99%