Books on the topic 'Strain mechanisms'

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1

Acosta, Matias. Strain Mechanisms in Lead-Free Ferroelectrics for Actuators. Cham: Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-27756-1.

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2

Owen, Grace M. Taking the strain: An annual review of literature relating to stress, coping mechanisms and support systems for professional carers. 5th ed. [Surrey]: National Association for Staff Support Within the Health Care Services, 1993.

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3

W, Dally James, ed. Experimental solid mechanics. Knoxville, Tenn: College House Enterprises, 2010.

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4

Berger, John R. Study of static and dynamic fracture using strain measurements. Boulder, Colo: U.S. Dept. of Commerce, National Institute of Standards and Technology, 1990.

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5

Chung, R. M. Development of an NBS polymer gage for dynamic soil stress measurement. Gaithersburg, MD: U.S. Dept. of Commerce, National Bureau of Standards, 1985.

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6

Berger, John R. Study of static and dynamic fracture using strain measurements. Boulder, Colo: U.S. Dept. of Commerce, National Institute of Standards and Technology, 1990.

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7

Veli-Tapani, Kuokkala, ed. Plastic deformation and strain hardening. Enfield, N.H: Trans Tech, 2002.

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8

Liang, Hong, and George E. Totten. Surface modification and mechanisms: Friction, stress and reaction engineering. New York: Marcel Dekker, 2004.

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9

Tandanand, Sathit. Determining horizontal displacement and strains due to subsidence. Washington, D.C. (2401 E St., N.W., MS #9800, Washington 20241-0001): United States Dept. of the Interior, Bureau of Mines, 1991.

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10

Kitamura, Takayuki. A nonlinear high temperature fracture mechanics basis for strainrange partitioning. [Washington, DC]: National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Division, 1990.

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11

Zbib, Hussein M. Size effects and shear banding in viscoplasticity with kinematic hardening. Pullman, Wash: Dept. of Mechanical and Materials Engineering, Washington State University, 1994.

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12

Kitamura, Takayuki. A nonlinear high temperature fracture mechanics basis for strainrange partitioning. Cleveland, Ohio: Lewis Research Center, 1989.

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13

Gerstle, Walter. Introduction to practical peridynamics: Computational solid mechanics without stress and strain. New Jersey: World Scientific, 2016.

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14

Dew, Dwight D. Strain dependent damping characteristics of a high damping manganese-copper alloy. Monterey, Calif: Naval Postgraduate School, 1986.

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15

Sinclair, Stephen Blair. Mechanism of the protective effect of prostagladin E2 in murine hepatitis virus strain 3 infection. Ottawa: National Library of Canada, 1991.

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16

Dynamic bodyuse for effective strain-free massage. Chichester, England: Lotus Pub., 2007.

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17

Vargas, Pedro M. Strain rate and inertial effects on impact loaded single-edge notch bend specimens. Washington, DC: Division of Engineering Technology, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1996.

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18

Vargas, Pedro M. Strain rate and inertial effects on impact loaded single-edge notch bend specimens. Washington, DC: Division of Engineering Technology, Office of Nuclear Regulatory Research, U.S. Nuclear Regulatory Commission, 1996.

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19

P, Staudhammer Karl, Murr Lawrence Eugene, and Meyers Marc A, eds. Fundamental issues and applications of shock-wave and high strain-rate phenomena: Proceedings of the 2000 International Conference on Fundamental Issues and Applications of Shock-Wave and High-Strain-Rate Phenomena (EXPLOMET '2000). New York: Elsevier, 2001.

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20

Whyatt, J. K. Numerical exploration of shear-fracture-related rock bursts using a strain-softening constitutive law. Washington: U.S. Dept. of the Interior, Bureau of Mines, 1991.

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21

International Conference on Metallurgical and Materials Applications of Shock-Wave and High-Strain-Rate Phenomena (1995 El Paso, Tex.). Metallurgical and materials applications of shock-wave and high-strain-rate phenomena: Proceedings of the 1995 International Conference on Metallurgical and Materials Applications of Shock-Wave and High-Strain-Rate Phenomena (EXPLOMET '95). Amsterdam: Elsevier, 1995.

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22

Parry, R. H. G. Mohr circles, stress paths and geotechnics. 2nd ed. London: Spon Press, 2004.

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23

Mechanics of finite deformation and fracture. Toronto: Apple Academic Press, 2015.

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24

Mohr circles, stress paths, and geotechnics. 2nd ed. New York: Spon Press, 2003.

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25

Mohr circles, stress paths, and geotechnics. London: Spon, 1995.

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26

Novozhilov, V. V. Mikronapri͡a︡zhenii͡a︡ v konstrukt͡s︡ionnykh materialakh. Leningrad: Mashinostroenie, Leningradskoe Otd-nie, 1990.

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27

1930-, Paris P. C., and Irwin George Rankin 1907-, eds. The stress analysis of cracks handbook. 3rd ed. New York: ASME Press, 2000.

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28

Botvenko, S. I. Ostatochnye napri︠a︡zhenii︠a︡ i deformat︠s︡ii pri izgotovlenii detaleĭ tipa plastin s podkreplenii︠a︡mi: Monografii︠a︡. Irkutsk: Izdatelʹstvo Irkutskogo gosudarstvennogo tekhnicheskogo universiteta, 2012.

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29

Romanov, A. N. Razrushenie pri malot͡s︡iklovom nagruzhenii. Moskva: "Nauka", 1988.

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30

Wong, A. K. On the application of the strain energy density theory in predicting crack initiation and angle of growth. Melbourne, Australia: Aeronautical Research Laboratories, 1986.

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31

Madej, Łukasz. Development of the modelling strategy for the strain localization simulation based on the digital material representation. Kraków: AGH University of Science and Technology Press, 2010.

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32

Alonzo, Tina. Sturdy Structures: Structures and mechanisms : a unit for grade 5. [Ontario: s.n.], 2001.

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33

Taboada, José Antonio González. Tensiónes y deformaciónes en materiales elásticos. Santiago de Compostela: Universidade de Santiago de Compostela, Servicio de Publicacións e Intercambio Científico, 1989.

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34

O'Donoghue, Dearbhail. Biomechanics of frontal and occipital head impact injuries: A plane strain simulation of coup & contrecoup contusion. Dublin: University College Dublin, 1999.

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35

Luehring, Ronald W. Methods for determining in situ deformation of rock masses. Denver, Colo: Geotechnical Branch, Division of Research and Laboratory Services, Engineering and Research Center, U.S. Dept. of the Interior, Bureau of Reclamation, 1988.

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36

Koop, Randy. The mechanism of the regulation of energy distribution between photosystems 1 and 2 in the cyanobacterium Synechococcus sp. strain PCC 7002. St. Catharines, Ont: Brock University, Dept. of Biological Sciences, 1997.

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37

Indian Institute of Technology, Delhi. Dept. of Civil Engineering. Soil and Rock Engineering Division. Evaluation of stresses and deformations around underground openings. New Delhi: Central Board Irrigation & Power, 1986.

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38

Patnaik, Surya N. Compatibility conditions of structural mechanics for finite element analysis. [Washington, DC]: National Aeronautics and Space Administration, 1990.

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39

Practical fracture mechanics in design. New York: M. Dekker, 1996.

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40

Kajaste-Rudnitski, Juri. Viscoelastic approach to the ice load evaluation. Espoo: Technical Research Centre of Finland, 1985.

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41

Christ, Hans-Jürgen. Wechselverformung von Metallen: Zyklisches Spannungs-Dehnungs-Verhalten und Mikrostruktur. Berlin: Springer-Verlag, 1991.

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42

Acosta, Matias. Strain Mechanisms in Lead-Free Ferroelectrics for Actuators. Springer, 2018.

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43

Dynamic Tensile Testing of Sheet Steels and Influence of Strain Rate on Strengthening Mechanisms in Sheet Steels. Storming Media, 2003.

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44

Kausch, Mary J. Helgeson. A PROFILE OF THE RN RETURNING TO SCHOOL FOR A BSN DEGREE: HEALTH PROMOTION BEHAVIORS, ROLE STRAIN, SELF-ESTEEM, FAMILY STRESS LEVEL, MARITAL ADJUSTMENT, SPOUSAL SUPPORT AND COPING MECHANISMS. 1988.

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45

Great Britain. Health and Safety Executive. and University of Birmingham, eds. Occurrence and mechanism of occupational repetition strain injuries. [Birmingham]: [University of Birmingham], 1990.

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46

A, Meyers Marc, Murr Lawrence Eugene, and Staudhammer Karl P, eds. Shock waves and high-strain-rate phenomena in materials. New York: Marcel Dekker, 1992.

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47

Feng, Xia-Ting. Rockburst: Mechanisms, Monitoring, Warning and Mitigation. Elsevier Science & Technology Books, 2017.

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48

Theorell, Töres, Chantal Brisson, Michel Vézina, Alain Milot, and Mahée Gilbert-Ouimet. Psychosocial factors in the prevention of cardiovascular disease. Oxford University Press, 2015. http://dx.doi.org/10.1093/med/9780199656653.003.0018.

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The chapter starts with a theoretical sociological, psychological, and physiological framework for the relationships between psychosocial factors and coronary heart disease (CHD). This is followed by a review of the scientific evidence supporting such an association. Individual behaviours and coping mechanisms as well as environmental conditions of relevance for CHD are described. In particular, type A and D behaviour, depressive states, covert coping, social support and social network, socioeconomic conditions, as well as theoretical work environment models of relevance for CHD (job strain, effort-reward imbalance, organizational justice and leadership) are discussed. The remaining part of the chapter surveys the results from controlled studies of the effects of psychosocial interventions. There is accumulating evidence from such controlled studies that risk factors for CHD can be favourably influenced.
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49

Theorell, Töres, Chantal Brisson, Michel Vézina, Alain Milot, and Mahée Gilbert-Ouimet. Psychosocial factors in the prevention of cardiovascular disease. Oxford University Press, 2017. http://dx.doi.org/10.1093/med/9780199656653.003.0018_update_001.

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The chapter starts with a theoretical sociological, psychological, and physiological framework for the relationships between psychosocial factors and coronary heart disease (CHD). This is followed by a review of the scientific evidence supporting such an association. Individual behaviours and coping mechanisms as well as environmental conditions of relevance for CHD are described. In particular, type A and D behaviour, depressive states, covert coping, social support and social network, socioeconomic conditions, as well as theoretical work environment models of relevance for CHD (job strain, effort-reward imbalance, organizational justice and leadership) are discussed. The remaining part of the chapter surveys the results from controlled studies of the effects of psychosocial interventions. There is accumulating evidence from such controlled studies that risk factors for CHD can be favourably influenced.
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50

Stress-strain modelling of soils. London: Elsevier Applied Science, 1985.

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