Books on the topic 'Orthopedic implants – Strength of materials'

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1

Ram, Kossowsky, Kossovsky Nir, and North Atlantic Treaty Organization. Scientific Affairs Division., eds. Materials sciences and implant orthopedic surgery. Dordrecht: M. Nijhoff, 1986.

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2

NATO Advanced Study Institute on Materials Science and Implant Orthopaedic Surgery (2nd 1994 Crete, Greece). Advances in materials science and implant orthopedic surgery. Dordrecht: Kluwer Academic in cooperation with NATO Scientific Affairs Division, 1995.

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3

Ram, Kossowsky, Kossovsky Nir, and NATO Advanced Study Institute on Materials Science and Implant Orthopaedic Surgery (1994 : Chania, Greece), eds. Advances in materials science and implant orthopedic surgery. Dordrecht: Kluwer Academic Publishers, 1995.

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4

M, Williams J., Nichols M. F, Zingg Walter 1924-, and Materials Research Society, eds. Biomedical materials. Pittsburgh, Pa: Materials Research Society, 1986.

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5

European Conference on Biomaterials (5th 1985 Paris, France. Biological and biomechanical performance of biomaterials: Proceedings of the Fifth European Conference on Biomaterials, Paris, France, September 4-6, 1985. Amsterdam: Elsevier, 1986.

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6

Lunsford, Thomas R. Strength of materials in orthotic and prosthetic design. Alexandria, VA: American Academy of Orthotists and Prosthetists, Inc., 1996.

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7

Orthopaedic biomaterials in research and practice. New York: Churchill Livingstone, 1988.

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8

J, Yaszemski Michael, ed. Biomaterials in orthopedics. New York: M. Dekker, 2004.

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9

Emanuel, Horowitz, Parr Jack E, and ASTM Committee F-4 on Medical and Surgical Materials and Devices., eds. Characterization and performance of calcium phosphate coatings for implants. Philadelphia, PA: ASTM, 1994.

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10

International, ASM, ed. Biomaterials in orthopaedic surgery. Materials Park, Ohio: ASM International, 2009.

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11

A, Barbosa Mário, and Campilho A, eds. Imaging techniques in biomaterials: Digital image processing applied to orthopaedic and dental implants. Amsterdam: Elsevier, 1994.

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12

Vallet-Regí, Maria. Biomimetic nanoceramics in clinical use: From materials to applications. Cambridge, UK: RSC Pub., 2008.

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13

E, Lemons Jack, and ASTM Committee F-4 on Medical and Surgical Materials and Devices., eds. Quantitative characterization and performance of porous implants for hard tissue applications: A symposium. Philadelphia, PA: ASTM, 1987.

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14

Miles, A. W. Strain Measurement in Biomechanics. Dordrecht: Springer Netherlands, 1992.

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15

Calandrelli, Luigi. Biodegradable composites for bone regeneration. Hauppauge, N.Y: Nova Science Publishers, 2009.

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16

D, Eichert, ed. Nanocrystalline apatite-based biomaterials. New York: Nova Science Publishers, 2009.

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17

Planell, Josep A. Bone repair biomaterials. Cambridge: Woodhead, 2009.

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18

Regenerative medicine and biomaterials for the repair of connective tissues. Oxford: Woodhead Pub., 2010.

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19

Kim, Kyo-Han. Surface modification of titanium for biomaterial applications. Hauppauge, N.Y: Nova Science Publishers, 2009.

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20

Tancred, David Christopher. A new bone replacement material. Dublin: University College Dublin, 1996.

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21

(Ramaswamy), Narayanan R., and Rautray Tapash R, eds. Surface modification of titanium for biomaterial applications. New York: Nova Science Publishers, 2010.

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22

Cyclic plasticity and low cycle fatigue life of metals. Amsterdam: Elsevier, 1991.

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23

(Editor), Yuehuei H. An, and Robert A. Draughn (Editor), eds. Mechanical Testing of Bone and the Bone-Implant Interface. CRC, 1999.

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24

An, Yuehuei H., and Robert A. Draughn. Mechanical Testing of Bone and the Bone-Implant Interface. Taylor & Francis Group, 1999.

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25

An, Yuehuei H., and Robert A. Draughn. Mechanical Testing of Bone and the Bone-Implant Interface. Taylor & Francis Group, 1999.

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26

H, An Yuehuei, and Draughn Robert A, eds. Mechanical testing of bone and the bone-implant interface. Boca Raton: CRC Press, 2000.

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27

An, Yuehuei H., and Robert A. Draughn. Mechanical Testing of Bone and the Bone-Implant Interface. Taylor & Francis Group, 2010.

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28

Modularity of orthopedic implants. Conshohocken, PA: ASTM, 1997.

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29

Webster, Thomas, and Bingyun Li. Orthopedic Biomaterials: Advances and Applications. Springer, 2018.

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30

Webster, Thomas, and Bingyun Li. Orthopedic Biomaterials: Advances and Applications. Springer, 2018.

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31

(Editor), R. Kossowsky, and Nir Kossovsky (Editor), eds. Materials Sciences and Implant Orthopedic Surgery (NATO Science Series E:). Springer, 1986.

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32

Yang, Lei. Nanotechnology-Enhanced Orthopedic Materials: Fabrications, Applications and Future Trends. Elsevier Science & Technology, 2015.

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33

Yang, Lei. Nanotechnology-Enhanced Orthopedic Materials: Fabrications, Applications and Future Trends. Elsevier Science & Technology, 2015.

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34

Webster, Thomas, and Bingyun Li. Orthopedic Biomaterials: Progress in Biology, Manufacturing, and Industry Perspectives. Springer, 2019.

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35

Webster, Thomas, and Bingyun Li. Orthopedic Biomaterials: Progress in Biology, Manufacturing, and Industry Perspectives. Springer, 2018.

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36

(Editor), R. Kossowsky, and Nir Kossovsky (Editor), eds. Advances in Materials Science and Implant Orthopedic Surgery (NATO Science Series E: (closed)). Springer, 1995.

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37

L, Burny Franz, and Puers R, eds. Monitoring of orthopedic implants: A biomaterials-microelectronics challenge. Amsterdam: North-Holland, 1993.

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38

Staff, AAOP. Strength of Materials in Orthotic and Prosthetic Design. Kendall/Hunt Publishing Company, 1996.

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39

Ravi, Prakash, and International Symposium on Biomaterials in Orthopaedics (1989 : Institute of Technology, Banaras Hindu University), eds. Biomaterials in orthopaedics. Varanasi, India: School of Biomedical Engineering, Institute of Technology, Banaras Hindu University, 1990.

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40

Black, Jonathan, Kevin L. Ong, and Scott Lovald. Orthopaedic Biomaterials in Research and Practice. Taylor & Francis Group, 2018.

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41

Black, Jonathan, Kevin L. Ong, and Scott Lovald. Orthopaedic Biomaterials in Research and Practice. Taylor & Francis Group, 2014.

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42

Black, Jonathan, Kevin L. Ong, and Scott Lovald. Orthopaedic Biomaterials in Research and Practice. Taylor & Francis Group, 2014.

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43

D, Jamison Russel, and Gilbertson L. N, eds. Composite materials for implant applications in the human body: Characterization and testing. Philadelphia, PA: ASTM, 1993.

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44

Pal, Subrata. Design of Artificial Human Joints & Organs. Springer, 2013.

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45

Pal, Subrata. Design of Artificial Human Joints & Organs. Springer, 2016.

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46

Pal, Subrata. Design of Artificial Human Joints and Organs. Springer London, Limited, 2013.

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47

Yaszemski. Biomaterials in Orthopedics. 2nd ed. Informa Healthcare, 2003.

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48

Orthopaedic Biomaterials in Research and Practice, Second Edition. Taylor & Francis Group, 2014.

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49

Ong, Kevin L. Orthopaedic Biomaterials in Research and Practice, Second Edition. Taylor & Francis Group, 2014.

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50

-G, Willert H., Buchhorn G, and Eyerer Peter, eds. Ultra-high molecular weight polyethylene as biomaterial in orthopedic surgery. Toronto: Hogrefe & Huber Publishers, 1991.

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