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Page 31
Bernard Dennis Cullity. TABLE 2-1 CRYSTAL SYSTEMS AND BRAVAIS LATTICES ( The symbol implies nonequality by reason of symmetry . Accidental equality may occur , as shown by an example in Sec . 2-4 . ) Bravais Lattice System Axials lengths ...
Bernard Dennis Cullity. TABLE 2-1 CRYSTAL SYSTEMS AND BRAVAIS LATTICES ( The symbol implies nonequality by reason of symmetry . Accidental equality may occur , as shown by an example in Sec . 2-4 . ) Bravais Lattice System Axials lengths ...
Page 43
... Bravais lattice or in some fixed relation to those points . It follows from this that the atoms of a crystal will be arranged periodically in three dimensions and that this arrangement of atoms will exhibit many of the properties of a ...
... Bravais lattice or in some fixed relation to those points . It follows from this that the atoms of a crystal will be arranged periodically in three dimensions and that this arrangement of atoms will exhibit many of the properties of a ...
Page 47
... Bravais lattice , since that is the basic framework on which the crystal is built and because , as we shall see later , it has a profound effect on the x - ray diffrac- tion pattern of that crystal . What is the Bravais lattice of CsCl ...
... Bravais lattice , since that is the basic framework on which the crystal is built and because , as we shall see later , it has a profound effect on the x - ray diffrac- tion pattern of that crystal . What is the Bravais lattice of CsCl ...
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Common terms and phrases
absorption coefficient absorption edge alloy analysis angle atomic number austenite axis back-reflection Bragg angle Bragg law Bravais lattice calculated camera chart circle composition constant copper atoms cosē counter cubic curve Debye ring Debye-Scherrer decreases determined diffracted beam diffraction lines diffraction pattern diffractometer direction distance electrons elements equation error example face-centered face-centered cubic factor film fluorescent fluorescent radiation given grain hexagonal incident beam indices integrated intensity lattice parameter Laue method martensite measured metal normal obtained Orthorhombic parallel percent phase photograph pinhole plotted pole figure position powder pattern preferred orientation projection reciprocal lattice reciprocal-lattice reflecting planes relative residual stress rhombohedral rotation sample scattering shown in Fig sinē slit solid solution spacing specimen spectrometer sphere spot stereographic substance surface temperature tetragonal thickness tion transmission unit cell values vector voltage wavelength x-ray diffraction x-ray method x-ray tube zero zone