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Titlebook: Innovations and Developments of Technologies in Medicine, Biology and Healthcare; Proceedings of the I Natalia Piaseczna,Magdalena Gorczows

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y of Sci­ ences and Institute of Fracture and Solid Mechanics, Lehigh University. Profes­ sor H. Zorski of the Academy and Professor G. C. Sih of Lehigh University were Co-Chairmen. The idea for the Symposium was initiated by the members of the Organizing Committee: G. C. Sih (Co-Chairman), H. Zorsk
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Kuba Chrobocińskifailure. In this paper, the effects of solute segregation on a range of mechanical properties are reviewed with particular reference to the phenomena of temper embrittlement and stress relief cracking which represent conditions of intergranular cracking at constant segregation level and constant che
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Seweryn Gałecki,Patrycja Niesłoń,Daria Kostka,Karol Mierzwa,Magdalena Wȩgrzyn,Daniel Fochtman,Małgore R point, has been used to calculate the phonon dispersion in cubic strontium titanate at 298 K along principal high-symmetry directions in the Brillouin zone. The agreement between these calculated data and experimental results from neutron scattering is fully comparable with that of SMs actually
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Ignacy Górecki,Arkadiusz Kołodziej,Agata Kołodziejczyk,Matt Harasymczuk,Ksenia Szymanek-Majchrzakable superconducting BSCCO phases are known: Bi.Sr.CuO.(2202), Bi.Sr.CaCu.O.(2212),and Bi.Sr.Ca.Cu.O. (2223). The critical temperature of the superconductive transition T. rises when the number of Ca-Cu-O planes n is increased. Its value is 10 K, 95 K,and 110 K for 2201, 2212, and 2223 phases, respe
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Justyna Kałuża,Paweł Strumiłło,Paweł Poryzałae R point, has been used to calculate the phonon dispersion in cubic strontium titanate at 298 K along principal high-symmetry directions in the Brillouin zone. The agreement between these calculated data and experimental results from neutron scattering is fully comparable with that of SMs actually
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Agnieszka Kazimierska,Cyprian Mataczyński,Agnieszka Uryga,Małgorzata Burzyńska,Andrzej Rusiecki,Magd ESR (Electron Spin Resonance) and especially ENDOR (Electron Nuclear Double Resonance) come close to what one may call an atomic scale microscopy of paramagnetic centres. In favourable cases one obtains a very detailed picture of the atomic structure of a defect (lattice site, neighbours, symmetry)
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