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1

Winter Workshop on Nuclear Dynamics (8th 1992 Jackson Hole, Wyo.). Advances in nuclear dynamics: Proceedings of the 8th Winter Workshop on Nuclear Dynamics, Jackson Hole, Wyoming, USA, 18-25 January 1992. Redaktorzy Bauer W. 1959- i Back B. Singapore: World Scientific, 1992.

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2

United States. National Aeronautics and Space Administration., red. Numerical simulation of receptivity and transition in a boundary layer on a flat plate with a suction hole. Tucson, Ariz: Engineering Experiment Station College of Engineering and Mines, University of Arizona, 1994.

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3

United States. National Aeronautics and Space Administration., red. Numerical simulation of receptivity and transition in a boundary layer on a flat plate with a suction hole. Tucson, Ariz: Engineering Experiment Station College of Engineering and Mines, University of Arizona, 1994.

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4

Texas A & M University. Turbomachinery Laboratories. i United States. National Aeronautics and Space Administration., red. SSME seal test program: Test results for hole-pattern damper seals : interim progress report. College Station, Texas: Turbomachinery Laboratories, Mechanical Engineering Department, Texas A&M University, 1985.

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5

Childs, Dara W. SSME seal test program: Test results for smooth, hole-pattern, and helically grooved stators : interim progress report. College Station, Tex: Texas A&M, Turbomachinery Laboratories, Mechanical Engineering Dept., 1987.

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6

Serebryakov, Andrey, i Gennadiy Zhuravlev. Exploitation of oil and gas fields by horizontal wells. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/971768.

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The textbook describes the design features of offshore horizontal multi-hole production wells, as well as the bottom-hole components of horizontal multi-hole wells. The classification of complications of multi-hole horizontal wells, methods of their prevention and elimination are given. Methods of underground geonavigation of the development of offshore horizontal production wells are proposed. The geological and field bases of operation of horizontal offshore multi-hole oil and gas wells, modes and dynamics of oil, gas and associated water production, methods for calculating dynamic bottom-hole and reservoir pressures are specified. The technologies of operation of offshore horizontal multi-hole wells are presented. The composition and scope of environmental, field and research marine monitoring of the operation of offshore horizontal multi-hole wells and the protection of the marine environment in the production of oil and gas are justified. Meets the requirements of the federal state educational standards of higher education of the latest generation. It is intended for undergraduates of the enlarged group of "Earth Sciences" training areas, as well as for teachers, employees of the fuel and energy complex, industrial geological exploration and oil and gas production enterprises, scientific and design organizations.
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7

Aretakis, Stefanos. Dynamics of Extremal Black Holes. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-95183-6.

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Hemsendorf, Marc. Dynamics of black holes in galactic centres. Aachen: Shaker, 2000.

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9

1951-, McConnell C. Douglas, red. The Holy Spirit and mission dynamics. Pasadena, Calif: William Carey Library, 1997.

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10

Ballhaus, W. F. Advances in Fluid Dynamics: Proceedings of the Symposium in Honor of Maurice Holt on His 70th Birthday. New York, NY: Springer New York, 1989.

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11

Renner, Rick. The dynamic duo: The Holy Spirit & you. Orlando, Fla: Creation House, 1994.

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12

Parker, Frances J. Home economics: An introduction to a dynamic profession. Wyd. 3. New York: Macmillan, 1987.

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13

Salvo, Pamela Di. A model of the dynamics of housing tenure choice. Colchester: ESRC Research Centre on Micro-social Change, 1995.

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14

F, Romane, i Terradas Jaime, red. Quercus ilex L. ecosystems: Function, dynamics, and management. Dordrecht: Kluwer Academic Publishers, 1992.

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15

United Nations. Economic Commission for Africa. Dynamic industrial policy in Africa: Economic Report on Africa 2014. Addis Ababa, Ethiopia: United Nations Economic, Commission for Africa, 2014.

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16

Skinner, Jonathan. The dynamic efficiency cost of not taxing housing. Cambridge, MA: National Bureau of Economic Research, 1990.

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17

1941-, King Jonathan, i Annual Reviews inc, red. Protein and nucleic acid structure and dynamics. Menlo Park, Calif: Benjamin/Cummings Pub. Co., 1985.

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18

Alan, Trench, i University College, London. Constitution Unit., red. The dynamics of devolution: The state of the nations 2005. Exeter: Imprint Academic, 2005.

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19

R, Genzel, Harris A. I i NATO Advanced Research Workshop on the Nuclei of Normal Galaxies (1993 : Kreuth, Germany), red. The nuclei of normal galaxies: Lessons from the Galactic Center. Dordrecht: Kluwer Academic, 1994.

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20

der, Stok Peter van, red. Dynamic and robust streaming in and between connected consumer-electronic devices. Dordrecht: Springer, 2005.

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21

Progoff, Ira. The dynamics of hope: Perspectives of process in anxiety and creativity, imagery and dreams. New York: Dialogue House Library, 1985.

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22

Hinn, Benny. Welcome, Holy Spirit: How you can experience the dynamic work of the Holy Spirit in your life. Nashville: Thomas Nelson, 1995.

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23

Bathori, Jane. On the interpretation of the mélodies of Claude Debussy. Stuyvesant, NY: Pendragon Press, 1998.

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24

Kylmä, Jari. Dynamics of hope in adult persons living with HIV/AIDS and their significant others: A substantive theory. Kuopio: Kuopion yliopisto, 2000.

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25

Garanzini, Michael J. Child-centered, family-sensitive schools: An educator's guide to family dynamics. Washington, D.C: National Catholic Education Association, 1995.

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26

Snooks, G. D. Portrait of the family within the total economy: A study in longrun dynamics, Australia 1788-1990. Cambridge [England]: Cambridge University Press, 1994.

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27

Wulczyn, Fred. Foster care dynamics, 1983-1994: California, Illinois, Michigan, Missouri, New York, and Texas : an update from the Multistate Foster Care Data Archive. [Chicago, Ill.]: Chapin Hall Center for Children at the University of Chicago, 1997.

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28

Long, R. Brad. Growing the church in the power of the Holy Spirit: Seven principles of dynamic cooperation. Grand Rapids, Mich: Zondervan, 2009.

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29

Andersson, Nils. Black Hole Perturbations: The Dynamics of Collapsed Objects. Taylor & Francis Group, 2014.

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30

Andersson, Nils. Black Hole Perturbations: The Dynamics of Collapsed Objects. Taylor & Francis Group, 2010.

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31

Andersson, Nils. Black Hole Perturbations: The Dynamics of Collapsed Objects (Series in High Energy Physics, Cosmology and Gravitation). Taylor & Francis, 2010.

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32

Effects of solar ultraviolet radiation on biogeochemical dynamics in aquatic environments: Report of a workshop, Marine Biological Laboratory, Woods Hole, Massachusetts, October 23-26, 1989. Woods Hole, Mass: Woods Hole Oceanographic Institution, 1990.

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33

Pollock, Donald Ray. Dynamite Hole / Real Life (Storycuts). Penguin Random House, 2011.

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34

Aretakis, Stefanos. Dynamics of Extremal Black Holes. Springer, 2018.

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35

Saha, Prasenjit, i Paul A. Taylor. Orbits. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198816461.003.0001.

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Astronomy and recording of the motion of celestial objects are ancient practices, but what is now called astrophysics arguably began with Newtonian gravity and the concept of orbits as dynamical phenomena. This chapter provides a modern perspective on the early problems of gravitational dynamics, from Kepler’s laws up to the virial theorem for an arbitrary number of gravitating bodies. Even a simple gravitating system with only two bodies turns out to have many interesting features, such as the gravitational capture of material by protoplanets. The study of orbital motions also includes applications to observing extrasolar planets and stars near the black hole at the centre of the Milky Way.
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36

Blundell, Katherine. 6. How do you weigh a black hole? Oxford University Press, 2015. http://dx.doi.org/10.1093/actrade/9780199602667.003.0006.

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Infra-red observations have been used by teams in California and Germany to measure the mass of the black hole at the centre of the Galaxy at just over 4 million times the mass of our Sun. ‘How do you weigh a black hole?’ shows that similar dynamic techniques can be used to measure the masses of the millions of black holes that pervade our Galaxy as stars and black holes are frequently found as pairs in a binary system. The smallest black hole that we can measure is a few times the mass of our Sun, but the heaviest stellar-mass black holes can exceed a hundred times the mass of our Sun.
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37

Deruelle, Nathalie, i Jean-Philippe Uzan. The two-body problem: an effective-one-body approach. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198786399.003.0056.

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This chapter presents the basics of the ‘effective-one-body’ approach to the two-body problem in general relativity. It also shows that the 2PN equations of motion can be mapped. This can be done by means of an appropriate canonical transformation, to a geodesic motion in a static, spherically symmetric spacetime, thus considerably simplifying the dynamics. Then, including the 2.5PN radiation reaction force in the (resummed) equations of motion, this chapter provides the waveform during the inspiral, merger, and ringdown phases of the coalescence of two non-spinning black holes into a final Kerr black hole. The chapter also comments on the current developments of this approach, which is instrumental in building the libraries of waveform templates that are needed to analyze the data collected by the current gravitational wave detectors.
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38

Glazov, M. M. Hyperfine Interaction of Electron and Nuclear Spins. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198807308.003.0004.

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This chapter discusses the key interaction–hyperfine coupling–which underlies most of phenomena in the field of electron and nuclear spin dynamics. This interaction originates from magnetic interaction between the nuclear and electron spins. For conduction band electrons in III–V or II–VI semiconductors, it is reduced to a Fermi contact interaction whose strength is proportional to the probability of finding an electron at the nucleus. A more complex situation is realized for valence band holes where hole Bloch functions vanish at the nuclei. Here the hyperfine interaction is of the dipole–dipole type. The modification of the hyperfine coupling Hamiltonian in nanosystems is also analyzed. The chapter contains also an overview of experimental data aimed at determination of the hyperfine interaction parameters in semiconductors and semiconductor nanostructures.
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39

Blundell, Katherine. 4. Falling into a black hole … Oxford University Press, 2015. http://dx.doi.org/10.1093/actrade/9780199602667.003.0004.

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‘Falling into a black hole … considers what happens near to a black hole and how close is too close to avoid an object being pulled into the black hole. Gravitational redshift arises where spacetime is stretched out or curved by the effect of a black hole and time dilation is the effect of time ‘running more slowly’ moving closer to a black hole. These effects are larger if the black hole mass is larger, and also become more extreme the closer you get to the event horizon. The effect of spin and spin direction on how close particles may encounter the black hole, dynamic spacetime, tidal forces, and particle orbits are also considered.
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40

Gillingham, Sara Kate, i Dana Bowen. Dynamite Dinners. Clarkson Potter, 2022.

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41

Dynamics and Evolution of Galactic Nuclei. Princeton, USA: Princeton University Press, 2013.

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42

Merritt, David. Dynamics and Evolution of Galactic Nuclei. Princeton University Press, 2013.

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43

O'Leary, Ryan Martin. Dynamics of black holes and dark matter in galactic nuclei. 2010.

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44

Horing, Norman J. Morgenstern. Interacting Electron–Hole–Phonon System. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198791942.003.0011.

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Chapter 11 employs variational differential techniques and the Schwinger Action Principle to derive coupled-field Green’s function equations for a multi-component system, modeled as an interacting electron-hole-phonon system. The coupled Fermion Green’s function equations involve five interactions (electron-electron, hole-hole, electron-hole, electron-phonon, and hole-phonon). Starting with quantum Hamilton equations of motion for the various electron/hole creation/annihilation operators and their nonequilibrium average/expectation values, variational differentiation with respect to particle sources leads to a chain of coupled Green’s function equations involving differing species of Green’s functions. For example, the 1-electron Green’s function equation is coupled to the 2-electron Green’s function (as earlier), also to the 1-electron/1-hole Green’s function, and to the Green’s function for 1-electron propagation influenced by a nontrivial phonon field. Similar remarks apply to the 1-hole Green’s function equation, and all others. Higher order Green’s function equations are derived by further variational differentiation with respect to sources, yielding additional couplings. Chapter 11 also introduces the 1-phonon Green’s function, emphasizing the role of electron coupling in phonon propagation, leading to dynamic, nonlocal electron screening of the phonon spectrum and hybridization of the ion and electron plasmons, a Bohm-Staver phonon mode, and the Kohn anomaly. Furthermore, the single-electron Green’s function with only phonon coupling can be rewritten, as usual, coupled to the 2-electron Green’s function with an effective time-dependent electron-electron interaction potential mediated by the 1-phonon Green’s function, leading to the polaron as an electron propagating jointly with its induced lattice polarization. An alternative formulation of the coupled Green’s function equations for the electron-hole-phonon model is applied in the development of a generalized shielded potential approximation, analysing its inverse dielectric screening response function and associated hybridized collective modes. A brief discussion of the (theoretical) origin of the exciton-plasmon interaction follows.
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45

Maggiore, Michele. Properties of dynamical space-times. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198570899.003.0004.

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An introduction to advanced tools of General Relativity, later used in the study of binary black-hole coalescences. Hamiltonian formulation of General Relativity, ADM mass and angular momentum, irreducible black-hole mass, Newman-Penrose scalars and gravitational radiation.
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46

Advances in fluid dynamics: Proceedings of the symposium in honor of Maurice Holt on his 70th birthday. New York: Springer-Verlag, 1989.

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47

Conrad, Ruth, Roland Hardenberg, Hanna Miethner i Max Stille, red. Ritual and Social Dynamics in Christian and Islamic Preaching. Bloomsbury Publishing Plc, 2024. http://dx.doi.org/10.5040/9781350408876.

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Christian and Islamic sermons from past and present, and their preachers, are analyzed to reveal the socio-cultural dynamics of religious speeches. Part I focuses on the explicit contribution of sermons in socio-cultural transformation processes. It shows how sermons connect with holy texts, religious norms of the specific group, and social-cultural contexts. Part II analyzes the dynamic tension between normativity and popularity. Rather than juxtaposing normative stances and the popularity of sermons, it shows how that normativity can itself contribute to popularity and the quest of popularity carries its own normative stances. Part III explores the ritual embeddedness of religious speech in the sermon in relation to social dynamics, normativity, and popularity, and shows how speech and rituals have a reciprocal relationship.
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48

Linnebo, Øystein. Dynamic Abstraction. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199641314.003.0003.

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Any abstractionist approach to thin objects faces the threat of paradox, as illustrated by Frege’s inconsistent Basic Law V. The neo-Fregeans Hale and Wright respond by severely restricting the class of acceptable abstraction principles. Their approach is static in the sense that they hold the domain fixed. This approach to abstraction is criticized, and an alternative approach is developed which permits abstraction on a vast class of equivalence relations. This alternative approach is dynamic in the sense that abstraction on an extensionally specified domain (i.e. a domain specified by means of a plurality of objects) may result in a larger such domain. A form of absolute generality is nevertheless possible, provided that the associated domain is understood in an intensional sense (i.e. it cannot be specified by means of a plurality).
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49

Martin, Charlotte Joy. Dynamics of Hope: Eternal Life and Daily Christian Living (Theology). Liturgical Press, 2002.

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50

Beauchamp, Jonathan. Dynamic Flavor: Capturing Aroma Using Real-Time Mass Spectrometry. American Chemical Society, 2022.

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