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1

Cumberland, D. J. The packing of particles. Elsevier, 1987.

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2

Klimpel, Richard R. Instructional module on introduction to the principles of size reduction of particles by mechanical means. NSF Engineering Research Center for Particle Science & Technology, 1997.

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3

Dr, Juhász Z. Mechanical activation of minerals by grinding: Pulverizing and morphology of particles. Akadémiai Kiadó, 1990.

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4

Har, Jason. Advanced computational dynamics of particles, materials, and structures: A unified approach. Wiley, 2012.

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5

Abner, Shimony, Cohen R. S, Horne Michael, and Stachel John J. 1928-, eds. Quantum mechanical studies for Abner Shimony. Kluwer Academic Publishers, 1997.

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6

Leeds-Lyon Symposium on Tribology (18th 1991 Institut national des sciences appliquées). Wear particles: From the cradle to the grave : proceedings of the 18th Leeds-Lyon Symposium on Tribology held at the Institut national des sciences appliquées, Lyon, France, 3rd-6th September 1991. Elsevier for the Institute of Tribology, Leeds University and the Institut national des sciences appliquées de Lyon, 1992.

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7

V, Kalinin S., and Gruverman A, eds. Scanning probe microscopy: Electrical and electromechanical phenomena at the nanoscale. Springer, 2007.

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8

Hill, James M. Mathematics of Particle-Wave Mechanical Systems. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-031-19793-2.

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9

Cassels, J. M. Basic quantum mechanics. 2nd ed. Krieger, 1996.

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10

1932-, Walecka John Dirk, ed. Theoretical mechanics of particles and continua. Dover Publications, 2003.

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11

Chow, Tai L. Classical mechanics. Wiley, 1995.

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12

Bernard, Guerts, Clercx H. J. H, and Uijttewaal Wim S. J, eds. Particle-laden flow: From geophysical to Kolmogorov scales. Springer, 2007.

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13

Papachristou, Costas J. Introduction to Mechanics of Particles and Systems. Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-54271-9.

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14

March, Arthur. Quantum mechanics of particles and wave fields. Dover Publications, 2006.

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15

Gupta, Kiran C. Classical mechanics of particles and rigid bodies. Wiley, 1988.

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16

Geimer, Robert L. Mechanical property ratios: A measure of flake alignment. U.S. Dept. of Agriculture, Forest Service, Forest Products Laboratory, 1986.

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17

service), SpringerLink (Online, ed. Mechanical Systems, Classical Models: Volume II: Mechanics of Discrete and Continuous Systems. Springer Science+Business Media B.V., 2009.

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18

Teodorescu, P. P. Mechanical systems, classical models. Springer, 2007.

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19

Teodorescu, P. P. Mechanical systems, classical models. Springer, 2007.

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20

Crutchley, C. C. Particle attrition in the clearances of mechanical equipment. University of Birmingham, 1990.

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21

Greiner, Walter. Classical mechanics: Systems of particles and Hamiltonian dynamics. Springer, 2003.

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22

Rivas, M. Kinematical Theory of Spinning Particles: Classical and Quantum Mechanical Formalism of Elementary Particles. Springer London, Limited, 2006.

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23

Kinematical theory of spinning particles: Classical and quantum mechanical formalism of elementary particles. Kluwer Academic Publishers, 2001.

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24

Rivas, M. Kinematical Theory of Spinning Particles: Classical and Quantum Mechanical Formalism of Elementary Particles (Fundamental Theories of Physics). Springer, 2001.

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25

Juhasz, Z. Mechanical activation of minerals by grinding: Pulverizing and morphology of particles. Akademiai Kiado, 1990.

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26

Mechanical activation of minerals by grinding: Pulverizing and morphology of particles. Ellis Horwood, 1990.

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27

Classical mechanics: Systems of particles and Hamiltonian dynamics. 2nd ed. Springer, 2010.

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28

Cambou, Bernard, Farhang Radja�, and Michel Jean. Micromechanics of Granular Materials. Wiley & Sons, Incorporated, John, 2013.

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29

Particle Mechanics (Modular Mathematics Series). Arnold, 1995.

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30

Multiphase flows with droplets and particles. 2nd ed. CRC Press, 2011.

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31

Radjai, Fahrang, Bernard Cambou, and Michel Jean. Micromechanics of Granular Materials. Wiley & Sons, Incorporated, John, 2010.

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32

Cambou, Bernard, Farhang Radjaï, and Michel Jean. Micromechanics of Granular Materials. Wiley & Sons, Incorporated, John, 2010.

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33

Cambou, Bernard, Farhang Radja�, and Michel Jean. Micromechanics of Granular Materials. Wiley & Sons, Incorporated, John, 2013.

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34

Zhang, Tao. Phase-field Modeling of Phase Changes and Mechanical Stresses in Electrode Particles of Secondary Batteries. KIT Scientific Publishing, 2021.

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35

Kalinin, Sergei, and Alexei Gruverman. Scanning Probe Microscopy (2 vol. set): Electrical and Electromechanical Phenomena at the Nanoscale. Springer, 2006.

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36

Darrigol, Olivier, and Jürgen Renn. The Emergence of Statistical Mechanics. Edited by Jed Z. Buchwald and Robert Fox. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199696253.013.26.

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This article traces the history of statistical mechanics, beginning with a discussion of mechanical models of thermal phenomena. In particular, it considers how several circumstances, including the establishment of thermodynamics in the mid-nineteenth century, led to a focus on the model of heat as a motion of particles. It then describes the concept of heat as fluid and the kinetic theory before turning to gas theory and how it served as a bridge between mechanics and thermodynamics. It also explores gases as particles in motion, the Maxwell–Boltzmann distribution, the problem of specific hea
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37

Vigdor, Steven E. Where’s the Antimatter Gone, Long Time Passing? Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198814825.003.0002.

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Chapter 2 describes experiments searching for CP symmetry violations that might account for the matter–antimatter imbalance in our universe. It describes the historical discovery of mesons and quantum-mechanical oscillations between particle and antiparticle (i.e., particle–antiparticle oscillations) in the neutral K meson and heavier meson systems. It introduces quarks and quark flavor. The chapter relates CP violation to violations of time reversal invariance that might be revealed by a spatial separation of positive and negative electric charge within or around the fundamental constituent p
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38

Gruverman, Alexei, and Sergei V. Kalinin. Scanning Probe Microscopy: Electrical and Electromechanical Phenomena at the Nanoscale. Springer New York, 2016.

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39

Teodorescu, Petre P. Mechanical Systems, Classical Models : Volume 1: Particle Mechanics. Teodorescu Petre P, 2010.

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40

Teodorescu, Petre P. Mechanical Systems, Classical Models : Volume 3: Analytical Mechanics. Springer, 2009.

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41

Teodorescu, Petre P. Mechanical Systems, Classical Models : Volume 3: Analytical Mechanics. Springer, 2012.

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42

Antonyuk, Sergiy. Particles in Contact: Micro Mechanics, Micro Process Dynamics and Particle Collective. Springer International Publishing AG, 2019.

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43

Antonyuk, Sergiy. Particles in Contact: Micro Mechanics, Micro Process Dynamics and Particle Collective. Springer International Publishing AG, 2020.

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44

Nambu, Yoichiro, and Yorikiyo Nagashima. Elementary Particle Physics: Quantum Field Theory and Particles V1. Wiley & Sons, Incorporated, John, 2011.

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45

Kelleher, Maura. Preparation of metal oxide additive particles via mechanical methods and their influence on subsequent fabrication, microstructural and electical properties of commercial ZnO varistors. 2003.

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46

Roper, Tom, and Chris Collinson. Particle Mechanics. Elsevier Science & Technology Books, 1995.

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47

(Editor), R. S. Cohen, M. Horne (Editor), and J. J. Stachel (Editor), eds. Potentiality, Entanglement and Passion-at-a-Distance: Quantum Mechanical Studies for Abner Shimony, Volume Two (Boston Studies in the Philosophy of Science). Springer, 1997.

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48

(Editor), R. S. Cohen, M. Horne (Editor), and J. J. Stachel (Editor), eds. Potentiality, Entanglement and Passion-at-a-Distance: Quantum Mechanical Studies for Abner Shimony, Volume Two (Boston Studies in the Philosophy of Science). Springer, 1997.

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49

Erosion Management in the Oil and Gas Industry. AMPP, 2020. https://doi.org/10.5006/nace_sp21464-2020.

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Scope Erosion is defined by NACE International as “The progressive loss of material from a solid surface resulting from mechanical interaction between that surface and a fluid, a multicomponent fluid, or solid particles carried with the fluid.” This SP provides guidance on internal erosion and erosion-corrosion management. Guidance is given for erosion and erosion-corrosion threat assessment/prediction, barrier selection, monitoring, inspection, risk assessment, and data management. This SP covers mainly sand-caused erosion. However, the guidance in this document can be used for other solid pa
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50

Furst, Eric M., and Todd M. Squires. Particle motion. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199655205.003.0002.

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The movement of colloidal particles in simple and complex fluids and viscoelastic solids is central to the microrheology endeavor. All microrheology experiments measure the resistance of a probe particle forced to move within a material, whether that probe is forced externally or simply allowed to fluctuate thermally. This chapter lays a foundation of the fundamental mechanics of micrometer-dimension particles in fluids and soft solids. In an active microrheology experiment, a colloid of radius a is driven externally with a specifed force F (e.g.magnetic, optical, or gravitational), and moves
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