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Top Schools in Noida 
By: 
school.edhole.com
Chapter 5 
Imperfections: Interfacial and 
Volumetric Defects 
schools.edhole.com
Grains in a Polycrystal 
Grains in a crystalline metal or ceramic; the cube depicted in each grain 
indicates the crystallographic orientation of the grain in a schematic fashion. 
schools.edhole.com
Grain Structure of Tantalum and TiC 
Polycrystalline (a) tantalum and (b) TiC. 
schools.edhole.com
Mean Lineal Intercept 
schools.edhole.com
Low Angle Grain Boudnary 
Low-angle grain boundary observed 
by high-resolution transmission 
electron microscopy. Positions of 
individual dislocations are marked 
by Burgers circuits. (Courtesy of R. 
Gronsky.) 
schools.edhole.com
Low-Angle Tilt Boundary 
schools.edhole.com
Low-Angle Twist Boundary 
schools.edhole.com
Grain-Boundary Energy as a Function of 
Misorientation 
Variation of grain-boundary energy with misorientation θ. (Adapted with 
permission from A. G. Guy,Introduction to Materials Science (New York: 
McGraw-Hill, 1972), p. 212.) 
schools.edhole.com
Coincidence Lattice Boundary 
Coincidence lattice boundary made by every 
seventh atom in the two grains, misoriented 22◦ by 
a rotation around the <111> axis. (Adapted from 
M. L. Kronberg and H. F. Wilson, Trans. AIME, 
85 (1949), 501.) 
schools.edhole.com
Coincidence Site Boundaries 
schools.edhole.com
Interface between Alumina and NiAl2O4 
Interface between alumina and NiAl2O4 
(spinel). (a) High-resolution TEM. (b) 
Representation of individual atomic positions. 
(Courtesy of C. B. Carter.) 
schools.edhole.com
Grain Size vs. Volume Fraction of Intercrystal Regions 
The effect of grain size on calculated 
volume fractions of intercrystal regions 
and triple junctions, assuming a grain 
boundary thickness of 1 nm. (Adapted 
from B. Palumbo, S. J. Thorpe, and K. T. 
Aust, Scripta Met., 24 (1990) 1347.) 
schools.edhole.com
Ledge Formation in Grain Boundary 
Models of ledge formation in a grain boundary. 
(Reprinted with permission from L. E. Murr, 
Interfacial Phenomena in Metals and Alloys 
(Reading, MA: Addison Wesley, 1975), p. 255.) 
schools.edhole.com
Grain Boundary Ledges 
Grain boundary ledges as observed by TEM. (Courtesy of L. E. Murr.) 
schools.edhole.com
Tilt Boundary 
Image and atomic position model of an approximately 32◦ [110] tilt boundary in gold; note the 
arrangement of polygons representing the boundary. (From W. Krakow and D. A. Smith, J. Mater. Res. 22 
(1986) 54.) 
schools.edhole.com
Twinning 
schools.edhole.com
Twinning in FCC Metals 
schools.edhole.com
Deformation Twins 
Deformation twins in (a) iron-silicon.(Courtesy of O. Vöhringer.) 
schools.edhole.com
Deformation Twins in Silicon Nitride 
Deformation twins in silicon nitride observed by TEM. (a) Bright field. (b) Dark 
field. (c) Electron diffraction pattern showing spots from two twin variants. 
(Courtesy of K. S. Vecchio.) 
schools.edhole.com
Serrated Stress-Strain Curve Due to Twinning 
Serrated stress–strain curve due to twinning in a Cd 
single crystal. (Adapted with permission from W. 
Boas and E. Schmid, Z. Phys., 54 (1929) 16.) 
schools.edhole.com
Twinning in HCP Metals 
schools.edhole.com
Stress Required for Twinning and Slip 
Effect of temperature on the stress required for twinning and slip (at low 
and high strain rates). (Courtesy of G. Thomas.) 
schools.edhole.com
Mechanical Effects of Slip and Twinning 
(a) Stress–strain curves for copper (which deforms by slip) and 70% Cu–30% Zn brass (which 
deforms by slip and twinning). (b) Work-hardening slope dσ/dε as a function of plastic strain; a 
plateau occurs for brass at the onset of twinning. (After S. Asgari, E. El-Danaf, S. R. Kalidindi,and 
R. D. Doherty, Met. and Mater. Trans., 28A (1997) 1781.) 
schools.edhole.com
Effect of Temperature and Stacking-Fault Energy 
on Twinning Stress 
Effect of temperature on twinning stress for a 
number of metals. (From M. A. Meyers, O. 
Voehringer, and V. A. Lubarda, Acta 
Mater., 49 (2001) 4025.) 
Effect of stacking-fault energy on the 
twinning stress for several copper alloys. 
(From M. A. Meyers, O. Voehringer, and 
V. A. Lubarda, Acta Mater., 49 (2001) 
4025.) 
schools.edhole.com
Temperature-Strain Rate Plots 
Temperature–strain rate plots with slip and twinning domains; 
(a) effect of grain size in titanium; (b) effect of stacking-fault 
energy in copper–zinc alloys. (From M. A. Meyers, O. 
Voehringer, and V. A. Lubarda, Acta Mater., 49 (2001) 4025.) 
schools.edhole.com
Grain-Size Strengthening 
Hall–Petch plot for a number of metals and alloys. Y.S. indicates yield strength. 
schools.edhole.com
Hall–Petch plot for iron and low-carbon steel 
extending from monocrystal to nanocrystal; 
notice the change in slope. (After T. R. Smith, R. 
W. Armstrong, P. M. Hazzledine, R. A. 
Masumura, and C. S. Pande, Matls. 
Res. Soc. Symp. Proc., 362 (1995) 31.) 
Hall-Petch Plot 
schools.edhole.com
Frank–Read source operating in center 
of grain 1 and producing two pileups at 
grain boundaries; the Frank–Read 
source in grain 2 is activated by stress 
concentration. 
Frank-Read Source 
schools.edhole.com
Dislocation Activity at Grain Boundaries in Stainless Steel 
Dislocation activity at grain boundaries in AISI 
304 stainless steel deformed at a strain rate of 
10−3 s−1. (a) Typical dislocation profiles after a 
strain of 0.15 %. (b) Same after a strain of 1.5 %. 
(Courtesy of L. E. Murr.) 
schools.edhole.com
Meyers-Ashworth Theory 
Deformation stages in a polycrystal (a) start of 
deformation (b) localized plastic flow in the 
grain-boundary regions (microyielding) (c) a 
work-hardened grain-boundary layer that 
effectively reinforces the microstructure. 
schools.edhole.com
Deformation Twins 
Deformation twins in shock-loaded nickel (45 GPa 
peak pressure; 2 μs pulse duration). Plane of foil 
(100); twinning planes (111) making 90◦. (Courtesy 
of L. E. Murr.) 
schools.edhole.com
Strength of Drawn Wire 
Strength of drawn wire after recovery treatment as a function of 
transverse lineal-intercept cell size. Recovery temperatures (in ◦C) are 
indicated on the curves. (Adapted with permission from H. J. Rack and 
M. Cohen, in Frontiers in Materials Science: Distinguished Lectures, 
L. E. Murr, ed. (New York: M. Dekker, 1976), p. 365.) 
schools.edhole.com
Nanocrystalline Material: Structure 
Representation of atomic structure of a nanocrystalline material; white 
circles indicate grain-boundary regions. (Courtesy of H. Gleiter.) 
schools.edhole.com
Hall-Petch Relationship 
Stress–strain curves for conventional (D = 50 μm) 
and nanocrystalline (D = 25 μm) copper. (Adapted 
from G. W. Nieman, J. R. Weertman, and R. W. 
Siegel, Nanostructured Materials, 1 (1992) 185.) 
Hall–Petch relationship for nanocrystalline copper. (After 
G. W. Nieman, J. R. Weertman, and R. W. Siegel, 
Nanostructured Matls., 1 (1992) 185) 
schools.edhole.com
Dependence of Yield Strength on 
Yield strength as a function of D−0.5 for two 
different equations and computational results 
assuming a grain-boundary region and grain 
interior with different work-hardening curves. As 
grain size decreases, grain-boundary region 
gradually dominates the deformation process. 
(From H.-H. Fu, D. J. Benson, and M. A. 
Meyers, Acta Mater., 49 (2001) 2567.) 
Grain Size 
schools.edhole.com
Voids in Titanium Carbide 
Voids (dark regions indicated by arrows) in titanium carbide. The 
intergranular phase (light) is nickel, which was added to increase 
the toughness of TiC. 
schools.edhole.com
Voids 
(a) Faceted grain-interior voids in alumina and (b) voids in titanium carbide; 
dislocations are pinned by voids. TEM. 
schools.edhole.com

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Top schools in noida

  • 1. Top Schools in Noida By: school.edhole.com
  • 2. Chapter 5 Imperfections: Interfacial and Volumetric Defects schools.edhole.com
  • 3. Grains in a Polycrystal Grains in a crystalline metal or ceramic; the cube depicted in each grain indicates the crystallographic orientation of the grain in a schematic fashion. schools.edhole.com
  • 4. Grain Structure of Tantalum and TiC Polycrystalline (a) tantalum and (b) TiC. schools.edhole.com
  • 5. Mean Lineal Intercept schools.edhole.com
  • 6. Low Angle Grain Boudnary Low-angle grain boundary observed by high-resolution transmission electron microscopy. Positions of individual dislocations are marked by Burgers circuits. (Courtesy of R. Gronsky.) schools.edhole.com
  • 7. Low-Angle Tilt Boundary schools.edhole.com
  • 8. Low-Angle Twist Boundary schools.edhole.com
  • 9. Grain-Boundary Energy as a Function of Misorientation Variation of grain-boundary energy with misorientation θ. (Adapted with permission from A. G. Guy,Introduction to Materials Science (New York: McGraw-Hill, 1972), p. 212.) schools.edhole.com
  • 10. Coincidence Lattice Boundary Coincidence lattice boundary made by every seventh atom in the two grains, misoriented 22◦ by a rotation around the <111> axis. (Adapted from M. L. Kronberg and H. F. Wilson, Trans. AIME, 85 (1949), 501.) schools.edhole.com
  • 11. Coincidence Site Boundaries schools.edhole.com
  • 12. Interface between Alumina and NiAl2O4 Interface between alumina and NiAl2O4 (spinel). (a) High-resolution TEM. (b) Representation of individual atomic positions. (Courtesy of C. B. Carter.) schools.edhole.com
  • 13. Grain Size vs. Volume Fraction of Intercrystal Regions The effect of grain size on calculated volume fractions of intercrystal regions and triple junctions, assuming a grain boundary thickness of 1 nm. (Adapted from B. Palumbo, S. J. Thorpe, and K. T. Aust, Scripta Met., 24 (1990) 1347.) schools.edhole.com
  • 14. Ledge Formation in Grain Boundary Models of ledge formation in a grain boundary. (Reprinted with permission from L. E. Murr, Interfacial Phenomena in Metals and Alloys (Reading, MA: Addison Wesley, 1975), p. 255.) schools.edhole.com
  • 15. Grain Boundary Ledges Grain boundary ledges as observed by TEM. (Courtesy of L. E. Murr.) schools.edhole.com
  • 16. Tilt Boundary Image and atomic position model of an approximately 32◦ [110] tilt boundary in gold; note the arrangement of polygons representing the boundary. (From W. Krakow and D. A. Smith, J. Mater. Res. 22 (1986) 54.) schools.edhole.com
  • 18. Twinning in FCC Metals schools.edhole.com
  • 19. Deformation Twins Deformation twins in (a) iron-silicon.(Courtesy of O. Vöhringer.) schools.edhole.com
  • 20. Deformation Twins in Silicon Nitride Deformation twins in silicon nitride observed by TEM. (a) Bright field. (b) Dark field. (c) Electron diffraction pattern showing spots from two twin variants. (Courtesy of K. S. Vecchio.) schools.edhole.com
  • 21. Serrated Stress-Strain Curve Due to Twinning Serrated stress–strain curve due to twinning in a Cd single crystal. (Adapted with permission from W. Boas and E. Schmid, Z. Phys., 54 (1929) 16.) schools.edhole.com
  • 22. Twinning in HCP Metals schools.edhole.com
  • 23. Stress Required for Twinning and Slip Effect of temperature on the stress required for twinning and slip (at low and high strain rates). (Courtesy of G. Thomas.) schools.edhole.com
  • 24. Mechanical Effects of Slip and Twinning (a) Stress–strain curves for copper (which deforms by slip) and 70% Cu–30% Zn brass (which deforms by slip and twinning). (b) Work-hardening slope dσ/dε as a function of plastic strain; a plateau occurs for brass at the onset of twinning. (After S. Asgari, E. El-Danaf, S. R. Kalidindi,and R. D. Doherty, Met. and Mater. Trans., 28A (1997) 1781.) schools.edhole.com
  • 25. Effect of Temperature and Stacking-Fault Energy on Twinning Stress Effect of temperature on twinning stress for a number of metals. (From M. A. Meyers, O. Voehringer, and V. A. Lubarda, Acta Mater., 49 (2001) 4025.) Effect of stacking-fault energy on the twinning stress for several copper alloys. (From M. A. Meyers, O. Voehringer, and V. A. Lubarda, Acta Mater., 49 (2001) 4025.) schools.edhole.com
  • 26. Temperature-Strain Rate Plots Temperature–strain rate plots with slip and twinning domains; (a) effect of grain size in titanium; (b) effect of stacking-fault energy in copper–zinc alloys. (From M. A. Meyers, O. Voehringer, and V. A. Lubarda, Acta Mater., 49 (2001) 4025.) schools.edhole.com
  • 27. Grain-Size Strengthening Hall–Petch plot for a number of metals and alloys. Y.S. indicates yield strength. schools.edhole.com
  • 28. Hall–Petch plot for iron and low-carbon steel extending from monocrystal to nanocrystal; notice the change in slope. (After T. R. Smith, R. W. Armstrong, P. M. Hazzledine, R. A. Masumura, and C. S. Pande, Matls. Res. Soc. Symp. Proc., 362 (1995) 31.) Hall-Petch Plot schools.edhole.com
  • 29. Frank–Read source operating in center of grain 1 and producing two pileups at grain boundaries; the Frank–Read source in grain 2 is activated by stress concentration. Frank-Read Source schools.edhole.com
  • 30. Dislocation Activity at Grain Boundaries in Stainless Steel Dislocation activity at grain boundaries in AISI 304 stainless steel deformed at a strain rate of 10−3 s−1. (a) Typical dislocation profiles after a strain of 0.15 %. (b) Same after a strain of 1.5 %. (Courtesy of L. E. Murr.) schools.edhole.com
  • 31. Meyers-Ashworth Theory Deformation stages in a polycrystal (a) start of deformation (b) localized plastic flow in the grain-boundary regions (microyielding) (c) a work-hardened grain-boundary layer that effectively reinforces the microstructure. schools.edhole.com
  • 32. Deformation Twins Deformation twins in shock-loaded nickel (45 GPa peak pressure; 2 μs pulse duration). Plane of foil (100); twinning planes (111) making 90◦. (Courtesy of L. E. Murr.) schools.edhole.com
  • 33. Strength of Drawn Wire Strength of drawn wire after recovery treatment as a function of transverse lineal-intercept cell size. Recovery temperatures (in ◦C) are indicated on the curves. (Adapted with permission from H. J. Rack and M. Cohen, in Frontiers in Materials Science: Distinguished Lectures, L. E. Murr, ed. (New York: M. Dekker, 1976), p. 365.) schools.edhole.com
  • 34. Nanocrystalline Material: Structure Representation of atomic structure of a nanocrystalline material; white circles indicate grain-boundary regions. (Courtesy of H. Gleiter.) schools.edhole.com
  • 35. Hall-Petch Relationship Stress–strain curves for conventional (D = 50 μm) and nanocrystalline (D = 25 μm) copper. (Adapted from G. W. Nieman, J. R. Weertman, and R. W. Siegel, Nanostructured Materials, 1 (1992) 185.) Hall–Petch relationship for nanocrystalline copper. (After G. W. Nieman, J. R. Weertman, and R. W. Siegel, Nanostructured Matls., 1 (1992) 185) schools.edhole.com
  • 36. Dependence of Yield Strength on Yield strength as a function of D−0.5 for two different equations and computational results assuming a grain-boundary region and grain interior with different work-hardening curves. As grain size decreases, grain-boundary region gradually dominates the deformation process. (From H.-H. Fu, D. J. Benson, and M. A. Meyers, Acta Mater., 49 (2001) 2567.) Grain Size schools.edhole.com
  • 37. Voids in Titanium Carbide Voids (dark regions indicated by arrows) in titanium carbide. The intergranular phase (light) is nickel, which was added to increase the toughness of TiC. schools.edhole.com
  • 38. Voids (a) Faceted grain-interior voids in alumina and (b) voids in titanium carbide; dislocations are pinned by voids. TEM. schools.edhole.com