composites laminaires tri-couches à base d`alumine

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composites laminaires tri-couches à base d`alumine
REFERENCES
BIBLIOGRAPHIQUES
Références Bibliographiques
REFERENCES BIBLIOGRAPHIQUES
$
[Adai 87]
ADAIR, J. H., TOUSE, S. A. & MELLING, P. J., Chemically Derived Multilayer
Ceramics, Am. Ceram. Soc. Bull., 1987, Vol.66, N°.10, p. 1490-94.
[Agni 92]
AGNIEL, Y., Role des Propriétés des Granules pour la Fabrication de Pièces de Poudres
Céramiques Granulées sans Défaut de Compaction, Thèse Doctorat, Institut National des
Sciences Appliquées de Lyon-France, 1992, 118p.
[Arth 55]
ARTHUR, G., Porosity and Permeability Changes During the Sintering of Copper Powder, J.
Inst. Met., (1954-1955), N°. 83, p. 329-36.
%
[Bae 94]
BAE, S. I. & BAIK, S., Critical Concentration of MgO for the Prevention of Abnormal Grain
Growth in Alumina, J. Am. Ceram. Soc., 1994, Vol. 77, N°. 10, p. 2499-504.
[Bagl 70]
BAGLEY, R. D., CUTLER, I. B. & JOHNSON, D. L., Effect of TiO2 on Initial Sintering
of Al2O3, J. Am. Ceram. Soc., 1970, Vol. 53, p. 136-41.
[Beni 90]
BENIEN, H., MEYER, M. & SUCHENTRUNK, R., Application of Functional Gradient
Materials in the Aerospace Industry, in Proceeding of The First International Symposium on
Functionally Gradient Materials-FGM'90-Sendai-Japan, 1990, p. 135-38.
[Benn 85]
BENNISON, J.S. & HARMER, M.P., Swelling of Hot-pressed Alumina, J. Am. Ceram.
Soc., 1985, Vol. 68, N°. 11, p. 591-96.
[Benn 89]
BENNISON, S. J. & LAWN, B. R., Flaw Tolerance in Ceramics with Rising Crack
Resistance Characteristics, J. Mat. Sci., 1989, vol. 24, p. 3169-75.
[Bish 93]
BISHOP, A, LIN, C. Y., NAVARATNAM, M., RAWLINGS, R.D., & McSHANE, H.
B., A Functionally Gradient Material Produced by a Powder Metallurgical Process, Journal of
Materials Science Letters, 1993, Vol. 12, p.1516-18.
[Boch 86]
BOCH, P., CHARTIER, T.& HUTTEPAIN, M., Tape Casting of Al2O3/ZrO2 Laminated
Composites, J. Am. Ceram. Soc., 1986, Vol. 69, N°. 8, p. C-191 - C-192.
[Boch 87]
BOCH, P. Tape Casting of Layered Composites, in Processing of Advanced Ceramics. Edited
by J. S. Moya and S. de Aza. Sociedad Espanola de Ceramica y Vidrio, Madrid, Spain, 1987,
p. 103-112.
[Brad 90]
BRADT, R.C. & SCOTT, W.D., Mechanical Properties of Alumina, in : Alumina Chemicals
Science and Technologie Handbook, Edited by L.D. Hart, Columbus Ohio: Am. Ceram. Soc.,
1990, p. 23-39.
[Brod 89]
BRODHAG, C., BACH, J.P., THEVENOT, F. & DELETTER, M., Microstructure of
Zirconia-toughened Alumina Obteined through Different Precursor Routes, Mater. Sci. Eng.,
1989, Vol. A109, p. 53-9.
212
Références Bibliographiques
&
[Chan 90]
CHANTIKUL, P., BENNISON, S. J. & LAWN, B. R., Role of Grain Size in the Strength
and R-Curve Properties of Alumina, J. Am. Ceram. Soc., 1990, Vol. 73, N°. 8, p. 2419-27.
[Chig 90]
CHIGASAKI, M., KOJIMA, Y., NAKASHIMA, S. & FUKAYA, Y., Partially Stabilized
ZrO2 and Cu FGM Prepared by Dynamic Ion Mixing Process, in Proceeding of The First
International Symposium on Functionally Gradient Materials-FGM'90-Sendai-Japan, 1990,
p.269-72.
[Clau 82]
CLAUSSEN, N., MUSSLER, B. & SWAIN, M. V., Grain-Size Dependence of Fracture
Energy in Ceramics, J. Am. Ceram. Soc., 1982, Vol. 65, N°. 1, p. C-14-C-16.
[Cleg 92]
CLEGG, W.J., The Fabrication and Failure of Laminar Ceramic Composites, Acta Metall.
Mater., 1992, Vol. 40, N°. 11, p. 3085-93.
[Cohe 84]
COHEN, A., VAN DER MERWE, C. P. & KINGON, A. I., Effect of MgO Dopant
Dispersing Method on Density and Microstructure of Alumina Ceramics, in Advances in
Ceramics-Vol. 10: Structure and Properties of MgO and Al2O3 Ceramics, 1984, p. 780-90.
[Cook 64]
COOK, J. & GORDON, J.E., A Mechanism for the Control of Crack Propagation in allBrittle Systems, Proc. Roy. Soc. London 1964, Vol. A282, p. 508-20.
[Cook 85]
COOK, R. F., LAWN, B. R. & FAIRBANKS, C. J., Microstructure-Strength Properties in
Ceramics: I. Effect of Crack Size on Toughness, , J. Am. Ceram. Soc., 1985, Vol. 68, N°. 11, p.
604.
[Cook 87]
COOK, R. F., FAIRBANKS, C. J., LAWN, B. R. & MAI, Y-W., Crack Resistance by
Inteerfacial Bridging: Its Role in Determining Strength Characteristics, J. Mater. Res., 1987,
Vol. 2, p. 345-56.
[Cutl 57]
CUTLER, I. B., Strength Properties of Sintered Alumina in Relation to Porosity and Grain
Size, J. Am. Ceram. Soc., 1957, Vol. 40, N°. 1, p. 20-23.
[Cutl 87]
CUTLER, R. A., BRIGHT, J. D., VIRKAR, A. V. & SHETTY, D. K., Strength
Improvement in Transformation-Toughened Alumina by Selective Phase Transformation, J.
Am. Ceram. Soc., 1987, Vol. 70, N°. 10, p. 714-18.
'
[Dema 96]
DEMARCAUX, D., CHICOT, D. & LESAGE, J., Interface Indentation Test for the
Determination of Adhesive Properties of Thermal Sprayed Coatings, J. Mater. Sci. Lett.,
1996, Vol. 15, p. 1377-80.
[Deue 86]
DEUERLER, F., KNEHANS, R. & STEINBRECH, R., Testing Method and Crack
Resistance Behaviour of Al2O3, Journal de Physique, 1986, Vol. 47, N°. 2, p. C1-618-21.
[Dong 89]
DONG, C. & BOWEN, H.K., Hot-stage Study of Bubble Formation During Binder Burnout,
J. Am. Ceram. Soc., 1985, Vol. 72, N°. 6, p. 1082-87.
[Dorr 84]
DORRE, E. & HUBNER, H., Alumina: Processing, Properties, and Applications, New
York: Springer-Verlag, 1984, 329 pages.
213
Références Bibliographiques
(
[Elmo 94]
EL-MORABIT, M., MILLET, J.P., MURAT, M. & FANTOZZI, G., Thermogravimetric
Analysis of Thermal Organic Binders and Plasticisers from Alumina Matrix, Proceeding of
Physical Chemistry of Solid State Materials, REMCES VI. Advanced Materials Research.
Edited by Arid et al., Zurich: Scitec Publications, 1994, Vol. 1--2, p. 355-60.
[Elmo 95]
EL-MORABIT, M., Contribution à l'Etude du Déliantage Thermique de Matriaux
Céramiques Système Al2O3-(PVA/PEG): Détermination Expérimentale et Théorique des
Mécanismes Réactionnels Mis à Jeu, Thèse Docteur d'Etat, Institut National des Sciences
Appliquées de Lyon et l'Université Claude Bernard Lyon I-France, 1995, 195p.
[Erka 95]a
ERKALFA, H., MISIRLI, Z., DEMIRCI, M., TOY, C. & BAYKARA, T., The
Densification and Microstructural Development of Al2O3 with Manganese Oxide Addition, J.
European Ceram. Soc., 1995, Vol. 15, p. 165-71.
[Erka 95]b
ERKALFA, H., MISIRLI, Z., & BAYKARA, T., Densification of Al2O3 at 1250°C with
MnO2 and TiO2 Additives, Ceramics International, 1995, Vol. 21, p. 345-48.
[Evan 90]
EVANS, A. G., Perspectives on the Development of High-Toughness Ceramics, J. Am.
Ceram. Soc.,1990, Vol. 73, p. 187-206.
)
[Fior 86]
FIORI, C. & DE PORTU, G., Tape Casting: A Technique for Preparing and Stadying New
Materials, in Novel Ceramic Fabrication Processes and Applications. Edited by R.W.Davidge,
Stoke-on-Trent, U. K: Institute of Ceramics, 1986, p. 213-25.
[Fu 82]
FU, Y. & EVANS, A. G., Microcrack Zone Formation in Single Polycrystals, Acta Metall.,
1982, Vol. 30, p. 1619-22.
[Fuku 90]
FUKUSHIMA, T., KURODA, S. & KITAHARA, S., Gradient Coatings Formed by
Plasma Twin Torches and those Properties, in Proceeding of The First International
Symposium on Functionally Gradient Materials-FGM'90-Sendai-Japan, 1990, p. 145-50.
[Full 53]
FULLMAN, R.L., Measurment of Particule Sizes in Opaque Bodies, Trans. AIME, Journal of
Metals, 1953, p. 447--52.
*
[Gall 95]
GALLOU, C., Etude d'un Procédé d'Atomisation pour la Granulation d'une Poudre
d'Alumine: Mise en Oeuvre d'un Plan d'Expréiences, Stage de D.E.A, Institut National des
Sciences Appliquées de Lyon- France, 1995, 127p.
[Goto 95]
GOTOR, J.F., ANDRE, .., FERT, A.F., ODIER, P. & PELLERIN, N., Grain Growth,
Microstructure, and Superconducting Properties of Pure and Y2BaCuO5-doped YBa2Cu3o7-x
Ceramics, J. Am. Ceram. Soc., 1995, Vol. 78, N°. 8, p. 2113.
[Gura 87]
GURAK, N. R. et al., Properties and Uses of Synthetic Emulsion Polymers as Binders in
Advanced Ceramics Processing, Am. Ceram. Soc Bull., 1987, Vol. 66, N°. 10, p. 1495-1497.
214
Références Bibliographiques
+
[Hand 89]
HANDWERKER, C. A. et al., Effect of Chemical Inhomogeneities on Grain Growth and
Microstructure in Al2O3, J. Am. Ceram. Soc., 1989, Vol. 72, N°. 1, p. 130-36.
[Hans 88]
HANSEN, J. J., CUTLER, R. A., SHETTY, D. K. & VIRKAR, A. V., Indentation
Fracture Response and Damage Resistance of Al2O3-ZrO2 Composites Strengthened by
Transformation-Induced Residual Stresses, J. Am. Ceram. Soc., 1988, Vol. 71, N°. 12, p.C-501
- C-505.
[Harm 84]
HARMER, M. P., Use of Solid-Solution Additives in Ceramic Processing, in Advances in
Ceramics-Vol. 10: Structure and Properties of MgO and Al2O3 Ceramics, 1984, p. 679-96.
[Harm 92]
HARMER, M. P., CHAN, H. M. & MILLER, G. A., Unique Opportunities for
Microstructural Engineering with Duplex and Laminar Ceramic Composites, J. Am. Ceram.
Soc., 1992, Vol. 75, N°. 7, p. 1715-28.
[Harv 80]
HARVEY, J. W. & JOHNSON, D. W. Jr., Binder Systems in Ferrites, Am. Ceram. Soc.
Bull., 1990, Vol. 59, N°. 6, p. 637-639.
[Hill 96]
HILLMAN, C., SUO, Z. & LANGE, F.F., Cracking of Laminates Subjected to Biaxial
Tensile Stresses, J. Am. Ceram. Soc., 1996, Vol. 79, N°. 8, p. 2127-33.
[Hue 93]
HUE, F., Elaboration et Caractérisation de Matériaux Composites à Matrice Céramique
Renforcés par des Whiskers ou des Plaquettes, Thèse Doctorat Institut National des Sciences
Appliquées de Lyon- France, 1993, 227p.
,
[Ione 96]
IONESCU, D., Dépôt des Couches Minces à base d’Alumine par la Technique de Trempage,
Rapport de Stage, G.E.M.P.P.M. Institut National des Sciences Appliquées de Lyon, 1996, 12
pages.
[Jora 91]
JORAND, Y., Elaboration et Caractérisation de Composites Dispersoïdes Ternaires Base
Alumine-Zircone à Vocation Thermomécanique, Thèse Doctorat, Institut National des
Sciences Appliquées de Lyon-France, 1991, 334p.
.
[Kang 83]
KANG, S. J. L., & YOON, D. N., Metods for Analysing the Experimental Data of Ostwald
Ripening, J. Mat. Sci. Lett., 1983, Vol. 2, p. 291-94.
[Kawa 90]
KAWAI, C., WAKAMATSU, S., SAKAGAMI, S., & IGARASHI, T., Oxidation
Resistant Coating with TiC-SiC Gradient Composition on Carbon Fiber Reinforced
215
Références Bibliographiques
Composites by CVD, in Proceeding of The First International Symposium on Functionally
Gradient Materials-FGM'90-Sendai-Japan, 1990, p. 77-82.
[Kirc 70]
KIRCHNER, H. P. & GRUVER, R. M., Strength-Anisotropy-Grain Size Relations in
Ceramic Oxides, J. Am. Ceram. Soc., 1970, Vol. 53, N°. 5, p. 232-36.
[Koiz 92]
KOIZUMI, M., Recent Progress of Functionally Gradient Materials in Japan, Ceram. Eng.
Sci. Proc., 1992, Vol. 13, N’ S [Koki 90]
KOKINI, K. & TAKEUCHI, Y., Multilayer Ceramic Thermal Barrier Coatings Under
Transient Thermal Loads, in Proceeding of The First International Symposium on Functionally
Gradient Materials-FGM'90-Sendai-Japan, 1990, p. 31-36.
[Kova 94]
KOVAR, D. & READEY, M. J., Role of Grain Size in Strength Variability of Alumina, J.
Am. Ceram. Soc., 1994, Vol. 77, N°. 7, p. 1928-38.
[Krst 88]
KRSTIC, V. D., Grain Size Dependence of Fracture Stress in Anisotropic Brittle Solids, J.
Mater. Sci., 1988, Vol. 23, p. 259-66.
/
[Lang 84]a
LANGE, F. F. et al., Hindrance of Grain growth in Al2O3 by ZrO2 Inclusions, J. Am. Ceram.
Soc., 1984, Vol. 67, N°. 3, p. 164-68.
[Lang 84]b
LANGE, F. F., Sinterability of Agglomerated Powders, J. Am. Ceram. Soc., 1984, Vol. 67,
N°. 2, p. 83-89.
[Lang 87]
LANGE, F. F. & HIRLINGER, N. M., Grain Growth in tow-phase Ceramics: Al2O3
Inclusions in ZrO2, J. Am. Ceram. Soc., 1987, Vol. 70, N°. 11, p. 827-30.
[Lang 89]a
LANGE, F. F., Powder Processing Science and Technology for Increased Reliability, J. Am.
Ceram. Soc., 1989, Vol. 72, N°. 1, p. 3-15.
[Lang 89]b
LANG' F.F., DAVIS, B.I. & WRIGHT, E., Processing Related Fractur Origins:
Elimination of voids Produced by Organic Inclusions, J. Am. Ceram. Soc., 1989, Vol. 69, N°.
1, p. 66-69.
[Lawn 84]
LAWN, B. R.& FULLER, E. D., Measurement of Thin-Layer Surface Stresses by
Indentation Fracture, J. Mater. Sci., 1984, Vol. 19, p. 4061-67.
[Lian 90]
LIANG, K., Contribution à l'Etude des Mécanismes de Fissuration des Matériaux Céramiques
de Type Oxyde, Thèse Doctorat, Institut National des Sciences Appliquées de Lyon-France,
1990, 206p.
[Lucc 95]
LUCCHINI, E. & SBAIZERO, O., Alumina/Zirconia Multilayer Composites Obtained by
Centrifugical Consolidation, J. European Ceram. Soc., 1995, Vol. 15, p. 975-81.
0
[Mai 87]
MAI, Y-W. & LAWN, B. R., Crack-Interface Grain Bridging as a Fracture Resistence
Mechanism in Ceramics: II. Theoritical Fracture Mechanics Model, J. Am. Ceram. Soc., 1987,
Vol. 70, p. 289-94.
216
Références Bibliographiques
[Mars 81]
MARSHALL, D. B. & EVANS, A. G., Reply to "Comment on Elastic/Plastic Indentation
Damage in Ceramics: The Median/Radial Crack System", J. Am. Ceram. Soc., 1981, Vol. 64,
N°. 12, p. C-182-C-183.
[Mars 90]a
MARSHALL, D. B., Crack Shielding in Ceria-Partially-Stabilized Zirconia, J. Am. Ceram.
Soc., 1990, Vol. 73, N°. 10, p. 3119-21.
[Mars 90]b
MARSHALL, D. B., SHAW, M. C., DAUSKARDT, R. H., RITCHIE, R. O., READEY,
M. & HEUER, A. H., Crack Tip Transformation Zones in Toughened Zirconia, J. Am.Ceram.
Soc., 1990, Vol. 73, N°. 9, p. 2659-66.
[Mars 91]
MARSHALL, D. B. & RATTO, J. J., Enhanced Fracture Toughness in Layered
Microcomposites of Ce-ZrO2 and Al2O3, J. Am. Ceram. Soc., 1991, Vol. 74, N°. 12, p. 297987.
[Mign 94]
MIGNARD, F., Etude du Comportement au Choc et la Fatigue Thermiques de Céramiques
pour Applications Industrielles, Thèse de Doctorat, Institut National des Sciences Appliquées
de Lyon-France, 1994, 193p.
[Mist 73]
MISTLER, R.E., High Strength Alumina Substrates Produced by a Multiple-Layer Casting
Technique, Am. Ceram. Soc. Bull., 1973, Vol. 52, N°. 11, p. 850-54.
[Moya 92]
MOYA, J. S., SANCHEZ-HERENCIA, A. J., REQUENA, J. & MORENO, R,
Functionally Gradient Ceramics by Sequential Slip Casting, Materials Letters, 1992, Vol. 14,
p.333-35.
[Muss 82]
MUSSLER, B., SWAIN, M. V. & CLAUSSEN, N., Dependence of Toughness of Alumina
on Grain Size and Test Technique, J. Am. Ceram. Soc., 1982, Vol. 65, N°. 11, p. 566-72.
1
[Nies 84]
NIES, C. W. & MESSING, G. L., Effect of Glass-Transition Teperature of Polyethylene
Glycol-Plasticized Polyvinyl Alcohl on Granule Compaction, J. Am. Ceram. Soc., 1984, Vol.
67, N°. 4, p. 301-304.
2
[Okam 91]
OKAMURA, H., State of the Arte of Material Disign Projects for Severe Service Applicatins,
Mater. Sci. Engng., 1991, Vol. A143, p. 3-9.
3
[Padt 92]
PADTURE, N. B. & CHAN, H. M., Improved Flow Tolerances in Alumina Containing
1vol% Anorthite via Crystallization of the Intergranular Glass, J. Am. Ceram. Soc., 1991, Vol.
75, N°. 7, p. 1870-75.
[Padt 93]
PADTURE, N. P., BENNISON, S. J. & CHAN, H. M., Flaw-Tolerance and CrackResistance Properties of Alumina-Aluminum Titanate Composites with Tailored
Microstructures, J. Am. Ceram. Soc., 1993, Vol. 76, N°. 9, p. 2312-20.
217
Références Bibliographiques
[Peig 91]
PEIGNE, P., Résistance aux Chocs Thermiques des Céramiques Thermomécaniques, Thèse
de Doctorat, Institut National des Sciences Appliquées de Lyon-France, 1991, 190p.
[Phil 93]
PHILLIPPS, A.J., CLEGG, W.J. & CLYNE, T.W., The Correlation of Interfacial and
Macroscopic Toughness in SiC Laminates, Composites, 1993, Vol. 24, N°. 2, p. 166-76.
[Pijo 95]
PIJOLAT, M., Stabilisation Dimensionnelle et Structurale de Solides Divisés, rapport intern,
Ecole Nationale Supérieure des Mines de Saint-Etienne, 1995, 31 pages.
5
[Reed 95]
REED, J.S., Principles of Ceramics Processing, New York: John Wiley & Sons INC.
1995, 658 pages.
[Rice 81]a
RICE, R. W., FREIMAN, S. W. & BECHER, P. F., Grain-Size Dependence of Fracture
Energy in Ceramics: I, Experiment, J. Am. Ceram. Soc., 1981, Vol. 64, p. 345-50.
[Rice 81]b
RICE, R. W. & FREIMAN, S. W., Grain-Size Dependence of Fracture Energy in Ceramics:
II, A Model for Noncubic Materials, J. Am. Ceram. Soc., 1981, Vol. 64, p. 350-54.
[Roy 68]
ROY, S. K. & COBLE, R. L., Solubilities of Magnesia, Titania, and Magnesium Titanate in
Aluminum Oxide, J. Am. Ceram. Soc., 1968, Vol. 51, p. 1-6.
[Runy 91]
RUNYAN, J. L. & BENNISON, S. J., Fabrication of Flaw-tolerant Aluminum-titanatereinforced Alumina, J. Europ. Ceram. Soc., 1991 Vol. 7, p. 93-99.
[Russ 92]
RUSSO, C. J., HARMER, M. P., CHAN, M. & MILLER, G. A., Design of a Laminated
Ceramic Composite for Improved Strength and Toughness, J. Am. Ceram. Soc.,1992, Vol. 75,
N°. 12, p. 3396-400.
6
[Saad 96]
SAADAOUI, M., Contribution à l’Etude du Comportement Thermomécanique des Matériaux
Céramiques à Effet de Courbe R : Choc et Fatigue Thermiques, Thèse de Doctor d’Etat,
l’Ecole Mohammadia d’Ingénieurs-Maroc et Institut National des Sciences Appliquées de
Lyon-France, 1996, 177p.
[Sark 96]
SARKAR, P. & NICHOLSON, P. S., Electrophoretic Deposition (EPD): Mechanisms,
Kinetics, and Application to Ceramics, J. Am. Ceram. Soc., 1996, Vol. 79, N°. 8, p. 19872002.
[Sbai 96]
SBAIZERO, O. & LUCCHINI, E., Influence of Residual Stresses on the Mecanical
Properties of a Layered Ceramic Composite, J. European Ceram. Soc., 1996, Vol. 16, p.
813-18.
[Shaw 86]
SHAW, N. J. & BROOK, R. J., Structure and Grain Coarsening During the Sintering of
Alumina, J. Am. Ceram. Soc., 1986, Vol. 69, N°. 2, p. 107-110.
[Stef 90]
STEFFENS, H. D., DVORAK, M. & WEWEL, M., Plasma Sprayed Functionally Gradient
Materials-Processing and Applications, in Proceeding of The First International Symposium on
Functionally Gradient Materials-FGM'90-Sendai-Japan, 1990, p. 139-43.
218
Références Bibliographiques
[Stua 91]
STUART, M. D., Dual Phase, Dual Scale Microstructures, J. Am. Ceram. Soc., 1991, Vol. 74,
N°. 11, back cover.
[Swai 86]
SWAIN, M. V., R-Curve Behaviour in a Polycrystalline Alumina Material, J. Mat. Sci. Lett.,
1986, Vol. 5, p. 1313-15.
[Swan 87]
SWANSON, P. L., FAIRBANKS, C. J., LAWN, B. R., MAI, Y-W. & HOCKEY, B. J.,
Crack-Interface Grain Bridging as a Fracture Resistence Mechanism in Ceramics: I.
Experimental Study on Alumina, J. Am. Ceram. Soc., 1987, Vol. 70, p. 279-89.
7
[Taka 90]
TAKAHASHI, M., ITOH, Y. & KASHIWAYA, H., Fabrication and Evaluation of W/Cu
Gradient Material by Sintering and Infiltration Technique, in Proceeding of The First
International Symposium on Functionally Gradient Materials-FGM'90-Sendai-Japan, 1990, p.
129-34.
8
[Uemr 90]
UEMURA, S., SOHDA, Y. & KUDE Y., SiC/C Functionally Gradient Material Prepared
by Chemical Vapor Deposition, in Proceeding of The First International Symposium on
Functionally Gradient Materials-FGM'90-Sendai-Japan, 1990, p. 237-42.
9
[Virk 88]
VIRKAR, A. V., FONG JUE, J., HANSEN, J. J. & CUTLER, R. A., Measurement of
Residual Stresses in Oxide-ZrO2 Three-Layer Composites, J. Am. Ceram. Soc.,1988, Vol. 71,
N°. 3, p. C-148-C-151.
:
[Wall 76]
WALL, L.A., Pyrolysis of Polymers, in: Fire and flamability-London: Edit. Technomic. Publ.
Co., 1976, p. 67-96.
[Wang 92]
WANG, J., LI, S. H. P. & STEVENS, R., Effects of Organic Binders on the Sintering of
Isostatically Compacted Zirconia Powders, J. Mat. Sci. 1992, Vol. 27, p. 63-67.
[Will 76]
WILLIAMS, J.C., Doctor-Blade Process, in Treatise on Materials Science and Technology,
New York: Academic Press, 1976, p. 173-98.
<
[Yuki 90]
YUKI, M., MURAYAMA, T. & IRISAWA, T., Temprature Gradient Sintering of PSZ/Mo
Functionally Gradient Material by Laser Beam Heating, in Proceeding of The First
219
Références Bibliographiques
International Symposium on Functionally Gradient Materials-FGM'90-Sendai-Japan, 1991, p.
203-208.
=
[Zhao 88]
ZHAO, J. & HARMER, M. P., Effect of Pore Distribution on Microstructure Development,
J. Am. Ceram. Soc., 1988, Vol. 71, N°. 2, p. 113-20.
[Zhen 89]
ZHENG, J. & REED, J. S., Effect of Particle Packing Characteristics on Solid-State
Sintering, J. Am. Ceram. Soc., 1989, Vol. 72, N°. 5, p. 810-17.
220