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Effect of the RD-ECAP processing temperature on the particle size distribution in the alloy. (A. Ma, K. Suzuki, Y. Nishida, N. Saito, I. Shigematsu, M. Takagi, H. Iwata, A. Watazu, T. ) Fig. 17. Transmission electron micrographs of matrix of aluminium in the Al-11mass%Si alloy. (a) as-cast alloy, (b)processed 4 passes, (c) 16 passes, (d) 32 passes by RD-ECAP at 573 K. (A. Ma, K. Suzuki, Y. Nishida, N. Saito, I. Shigematsu, M. Takagi, H. Iwata, A. Watazu, T.
A variety of microscopic techniques are well appropriate to characterize intermetallics but only from a small section of an analyzed sample. From commercial point of view it is extremely advantageous to provide use quick, reliable and economical examination technique capable of providing data of particles from different locations of a full scale-sized ingot. One of these methods is dissolving the matrix of an aluminium alloy chemically or electrochemically. 5. Acknowledgment This work was carried out with the financial support of the Ministry of Science and Higher Education under grant No.
X-diffraction pattern of AlSi5Cu1Mg alloy Intermetallic Phases Examination in Cast AlSi5Cu1Mg and AlCu4Ni2Mg2 Aluminium Alloys in As-Cast and T6 Condition 31 (a) (b) (c) (d) 3 Intensity, cps Intensity, cps 1 Energy, keV Energy, keV 2 Intensity, cps Intensity, cps 4 Energy, keV (e) Energy, keV (f) Fig. 11. SEM micrographs (a-d) of the particles extracted from the AlSi5Cu1Mg alloy and EDS spectra (e,f) 32 Recent Trends in Processing and Degradation of Aluminium Alloys -3 1 Heat flow, μV -6 Endo 2 3 4 -9 5 q = 5°C/min 6 -12 250 300 350 400 450 500 550 600 650 Temperature, °C (a) 3 6 5 -3 Exo Heat flow, μV 0 4 -6 q = 5°C/min 2 -9 250 3 1 300 350 400 450 500 550 600 650 Temperature°C (b) Fig.