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Callister - An introduction - 8th edition

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Fatigue life, 258, G4<br />

factors that affect, 262–264<br />

Fatigue limit, 257, 258, G5<br />

Fatigue strength, 257, 258, G4<br />

Fatigue testing, 257<br />

S-N curves, 257–259, 277, 580<br />

Feldspar, 501, 519<br />

Fermi energy, 724, 737, 738, 784, G4<br />

Ferrimagnetism, 809–811, G4<br />

temperature dependence, 813–814<br />

Ferrite (), 319–320, G4<br />

eutectoid/proeutectoid, 325, G10<br />

from decomposition of cementite,<br />

399<br />

Ferrites (magnetic ceramics),<br />

809–811, G4<br />

Curie temperature, 813, 814<br />

as magnetic storage, 828<br />

Ferritic stainless steels, 398, 399<br />

Ferroelectricity, 766, G4<br />

Ferroelectric materials, 766<br />

Ferromagnetic domain walls, 106<br />

Ferromagnetism, 807–808, G4<br />

temperature dependence,<br />

813–814<br />

Ferrous alloys, G4. See also Cast<br />

irons; Iron; Steels<br />

annealing, 423–424<br />

classification, 321–322, 393<br />

continuous cooling transformation<br />

diagrams, 367–370<br />

costs, A31–A32<br />

hypereutectoid, 327–329, G6<br />

hypoeutectoid, 324–326, G6<br />

isothermal transformation<br />

diagrams, 356–367<br />

microstructures, 322–329<br />

mechanical properties of, 370–374,<br />

A11–A12<br />

Fiber efficiency parameter, 644<br />

Fiberglass, 503<br />

Fiberglass-reinforced composites,<br />

647–648<br />

Fiber-reinforced composites,<br />

634–660, G4<br />

continuous and aligned, 636–642<br />

discontinuous and aligned, 643<br />

discontinuous and randomly<br />

oriented, 643–644<br />

fiber length effect, 634–636<br />

fiber orientation/concentration<br />

effect, 636–642<br />

fiber phase, 645–646<br />

longitudinal loading, 636–637, 642<br />

matrix phase, 646–647<br />

processing, 657–660<br />

reinforcement efficiency, 644<br />

transverse loading, 640–641, 642<br />

Fibers, 601, G4<br />

coefficient of thermal expansion<br />

values, A20<br />

in composites, 628<br />

continuous vs. discontinuous, 636<br />

fiber phase, 645–646<br />

length effect, 634–636<br />

orientation and concentration,<br />

636–645<br />

costs, A35<br />

density values, A6<br />

elastic modulus values, 646, A9<br />

electrical resistivity values, A29<br />

optical, 511, 863–865<br />

polymer, 601<br />

properties of selected, 646<br />

specific heat values, A26<br />

spinning of, 614–615<br />

tensile strength values, 646, A15<br />

thermal conductivity values, A23<br />

Fick’s first law, 128, 789, G5<br />

for polymers, 559<br />

Fick’s second law, 128, 139,<br />

798, G5<br />

Fictive temperature, 514<br />

Filament winding, 659–660<br />

Fillers, 610, G5<br />

Films:<br />

diamond, 468–469<br />

polymer, 603<br />

shrink-wrap (polymer), 587<br />

Fine pearlite, 359, 368, 372, G5<br />

Fireclay refractories, 506<br />

Firing, 505, 522–523, G5<br />

Flame retardants, 611, G5<br />

Flash memory, 719, 753<br />

Flexural strength, 485–486, G5<br />

influence of porosity on, ceramics,<br />

489–490<br />

values for selected ceramics,<br />

486, A14<br />

Float process (sheet glass), 516<br />

Fluorescence, 855, G5<br />

Fluorite structure, 459<br />

Fluorocarbons, 538<br />

trade names, characteristics,<br />

applications, 597<br />

Flux (clay products), 519<br />

Foams, 603, G5<br />

Forces:<br />

bonding, 28–30<br />

coulombic, 30, G2<br />

Forging, 418, G5<br />

Formaldehyde, 536, 599<br />

Forming operations (metals),<br />

417–419<br />

Forsterite, 466<br />

Forward bias, 748, 749, G5<br />

Index • I7<br />

Fractographic investigations:<br />

ceramics, 482–485<br />

metals, 238<br />

Fractographs:<br />

cup-and-cone fracture surfaces, 238<br />

fatigue striations, 260<br />

glass rod, 484<br />

intergranular fracture, 241<br />

transgranular fracture, 240<br />

Fracture, see also Brittle fracture;<br />

Ductile fracture; Impact<br />

fracture testing<br />

delayed, 481<br />

fundamentals of, 236<br />

polymers, 578–580<br />

types, 166–167, 236–241<br />

Fracture mechanics, 242–250, G6<br />

applied to ceramics, 481<br />

polymers, 580<br />

use in design, 247–250<br />

Fracture profiles, 237<br />

Fracture strength, 165. See also<br />

Flexural strength<br />

ceramics, 485<br />

distribution of, 481–482<br />

influence of porosity, 489–490<br />

influence of specimen size,<br />

481–482, 645<br />

Fracture surface, ceramics, 483–484<br />

Fracture toughness, 169, 244–246, G5<br />

ceramic-matrix composites,<br />

655–656<br />

ranges for material types (bar<br />

chart), 7<br />

testing, 250–254<br />

values for selected materials, 246,<br />

656, A16–A17<br />

Free electrons, 725–726, G5<br />

contributions to heat capacity, 784<br />

role in heat conduction, 789<br />

Free energy, 285, 345–349, G5<br />

activation, 346, 351<br />

volume, 345<br />

Freeze-out region, 741<br />

Frenkel defects, 472, 473, G5<br />

equilibrium number, 474<br />

Full annealing, 368, 424, G5<br />

Fullerenes, 470<br />

Functionality (polymers), 540, G4<br />

Furnace heating elements, 731<br />

Fused silica, 464<br />

characteristics, 503, 514<br />

dielectric properties, 758<br />

electrical conductivity, 755<br />

flexural strength, 486<br />

index of refraction, 848<br />

modulus of elasticity, 486<br />

thermal properties, 785

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