998 resultados para circle hough transformation


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The dynamic strain-induced transformation (DSIT) of austenite to ferrite was investigated under different undercooling conditions using three low carbon Si-Mn steels. The undercooling of austenite (ΔT) was controlled by varying the cooling rate between austenitization and deformation temperatures. Uniform DSIT ferrite grains (∼2.3 μm) were produced at a relatively high deformation temperature above 840°C using a low carbon high Si steel (0.077C-0.97Mn-1.35Si, mass%) in connection with a larger ΔT. The critical conditions for DSIT were determined based on the flow stress-strain curves measured during hot compression tests. Influence of deformation temperature on DSIT of low carbon Si-added steel was also discussed.

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The effects of Si and Mn contents on transformation temperature r3, transformed microstructure and mechanical properties of three kinds of low-carbon steels during continuous cooling were investigated. A r3 rises by 15-25°C when increasing Si content from 0.50% to 1.35%, and it drops by 30-50°C when increasing Mn content from 0.97% to 1.43%. The effect of Mn on A r3 is more significant than Si. Si stimulates the precipitation of the high-temperature equiaxed ferrite to suppress the bainite transformation, but Mn not only provides the grain refining of transformed microstructure but also stimulates the forming of bainite. The homogeneous and grain refining diphase ferrite/bainite steel (w(Si)=0.56, w(Mn)=1.43) can be obtained after deformed at 850°C and cooled at the rate 30°C/s, of which the tensile strength is up to 654 MPa.

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Continuous cooling transformation behaviors of low carbon steels with two Si contents (0.50% and 1. 35%) were investigated under undeformed and deformed conditions. Effects of Si contents, deformation, and cooling rates on y transformation start temperature (A,r3), phase microstructures, and hardness were studied. The results show that, in the case of the deformation with the true strain of 0. 4, the length of bainitic ferrite laths is significantly decreased in low Si steel, whereas, the M/A constituent becomes more uniform in high Si steel. An increase in cooling rates lowers the A,r3 greatly. The steel with higher level of Si exhibits higher A,r3, and higher hardness both under undeformed and deformed conditions compared with the steel with a lower Si content. Especially, the influence of Si on Ar3 is dependent on deformation. Such effects are more significant under the undeformed condition. The hardness of both steels increases with the increase of cooling rates, whereas, the deformation involved in both steels reduces the hardness.

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The martensitic transformation crystallography in two Ni 53Mn25Ga22 (at. %) ferromagnetic shape memory alloys (FSMAs) was investigated by means of misorientation calculation and pole figure analysis based on the orientation of the martensitic lamellae obtained from electron backscattered diffraction (EBSD) measurements. In the alloy that was first annealed at 1073K for 4h, and then cooled to 473K at ~4K/min and held for 30min, followed by cooling to room temperature at ~10K/min, there are only two kinds of differently orientated martensitic lamellae with a misorientation angle of ~82° distributed alternatively in each initial austenite grain. There is a compound twinning orientation relationship between the two lamellae. The prevalent orientation relationship between austenite and martensite is Kurdjumov-Sachs (K-S) relationship with (111)A//(10I)M, [1-10]a//[11-1]m. In the alloy that was annealed at 1173K for 4h followed by furnace cooling, nanoscale twins inside the martensitic lamellae were observed and the orientation relationships both between the nanotwins within one lamella and between the nanotwins in two neighboring lamellae were determined. The results presented in this paper will enrich the crystallographic data of the FSMAs and offer useful information for the development of novel FSMAs with optimal performances.

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Cities globally and nationally are facing a range of daunting challenges to respond to a suite of emerging imperatives including a low carbon future, oil vulnerability, demographic re-composition, and the prospect of unpredictable economic shocks. To pursue a future that is sustainable and resilient requires substantial transformation of existing urban areas and creation of new mechanisms to guide and manage delivery of physical, economic and social changes.

Mid-sized cities provide legible, nimble test beds for exploring cross-disciplinary models and innovative governance and delivery techniques. Australia’s ‘MidiCities’ – home to 4 million urban dwellers frequently overlooked by urban policy or research effort – are emerging as crucibles of innovation and experimentation. Most of these cities retain that essential key ingredient for sustainable urbanism, economic resilience and community identity: a strong, highly legible city centre with a tightly clustered diversity of facilities and functions – the multi-functional activity centre that metropolitan suburban hubs yearn to grow up to become!

These diverse MidiCities are passing a threshold of self-confident sophistication, and are now providing valuable lessons for each other, which could be adopted or adapted by metropolitan cities where scale and complexity can often overwhelm the search for new and appropriate approaches to delivery of rapid change while maintaining clear guidance toward the vision of a ‘preferred’ future. A network of professionals working with Australian and New Zealand MidiCities is coalescing toward a cross-disciplinary platform for exchange of experiences and information, mutual support, improved research and understanding, capacity-building and the refinement of new specialist skills and structures.