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1

United States. Federal Transit Administration. Office of Planning and Environment. Transit noise and vibration impact assessment. U.S. Department of Transportation, Federal Transit Administration, Office of Planning and Environment, 2006.

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2

Piersol, Allan G., and Thomas L. Paez. Harris' shock and vibration handbook. 6th ed. McGraw-Hill, 2010.

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3

H, Meyn Erwin, and United States. National Aeronautics and Space Administration. Scientific and Technical Information Division., eds. Vibration testing of impact-damaged composite laminates. National Aeronautics and Space Administration, Office of Management, Scientific and Technical Information Division, 1989.

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4

N, Bolotnik N., and Pilkey Walter D, eds. Optimal protection from impact, shock and vibration. Gordon and Breach Science Publishers, 2001.

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5

Ibrahim, R. A. Vibro-impact dynamics of ocean systems and related problems. Springer, 2009.

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6

1984-, Guo Yu, ed. Vibro-impact dynamics. Wiley, 2013.

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7

Society of Earthquake and Civil Engineering Dynamics. and International Conference on Earthquake, Blast and Impact (1991 : University of Manchester Institute of Science and Technology), eds. Earthquake, blast and impact: Measurement and effects of vibration. Elsevier Applied Science, 1991.

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8

Ibrahim, R. A., and Masaaki Okuma. Vibro-impact dynamics of ocean systems and related problems. Springer, 2009.

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9

Ambrósio, Jorge A. C. Crashworthiness of Transportation Systems: Structural Impact and Occupant Protection. Springer Netherlands, 1997.

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10

Pilipchuk, Valery N. Nonlinear Dynamics: Between Linear and Impact Limits. Springer-Verlag Berlin Heidelberg, 2010.

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11

Babit͡skiĭ, V. I. Dynamics of Vibro-Impact Systems: Proceedings of the Euromech Collaquium 15-18 September 1998. Springer Berlin Heidelberg, 1999.

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12

Culbert, S. J. I've got your lucky number: Understand its vibration and impact on your personality and relationships. Foulsham, 1986.

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13

Shindōka, Tokyo (Japan) Sōon. Heisei 5-nendo Sōon kiseihō Shindō kiseihō ni motozuku kakushu todokede jōkyō. Tōkyō-to Kankyō Hozenkyoku, 1994.

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14

United States. National Aeronautics and Space Administration., ed. Influence of temperature and impact velocity on the coefficient of restitution. National Aeronautics and Space Administration, 1994.

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15

United States. National Aeronautics and Space Administration., ed. Influence of temperature and impact velocity on the coefficient of restitution. National Aeronautics and Space Administration, 1994.

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16

Shindōka, Tokyo (Japan) Sōon. Shōwa 58-nendo Sōon kiseihō Shindō kiseihō ni motozuku kakushu todokede jōkyō. Tōkyō-to Kankyō Hozenkyoku Taiki Hozenbu Sōon Shindōka, 1985.

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17

Shindōka, Tokyo (Japan) Sōon. Heisei 4-nendo Sōon kiseihō Shindō kiseihō ni motozuku kakushu todokede jōkyō. Tōkyō-to Kankyō Hozenkyoku, 1993.

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18

Lee, Jong-Hun. Electron-impact vibrational relaxation in high-temperature nitrogen. American Institute of Aeronautics and Astronautics, 1992.

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19

Bachmann, Hugo, and Walter Ammann. Vibrations in Structures. International Association for Bridge and Structural Engineering (IABSE), 1987. http://dx.doi.org/10.2749/sed003e.

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<p>«Vibrations in Structures» concentrates on vibrations in structures as excited by human motion or machine operation. Man-induced vibrations may arise from walking, running, skipping, dancing, etc. They occur mostly in pedestrian structures, office buildings, gym­nasia and sports halls, dancing and concert halls, stadia, etc. Existing publications treat by and large some isolated aspects of the problem; the present one attempts, for the first time, a systematic survey of man-induced vibrations. Machine-induced vibrations occur during the operation of all sorts of machinery and tools wi
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20

Ksenofontov, Boris, Gennadiy Pavlihin, and Elena Simakova. Industrial ecology. INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1017514.

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The basic issues of industrial ecology standards environmental quality, pollution of air and water basins, as well as waste production and possible sources of noise, vibration and electromagnetic radiation.
 Provides information about the main methods and devices of protection of the environment from various contaminants, special attention is paid to those which are most commonly used in practice. The principles of developing environmentally friendly technologies and industries based on sustainable use of natural resources and conservation, as well as examples of creation of industrial fa
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21

Skelton, Kimberley, ed. Early Modern Spaces in Motion. Amsterdam University Press, 2020. http://dx.doi.org/10.5117/9789463725811.

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Stretching back to antiquity, motion had been a key means of designing and describing the physical environment. But during the sixteenth through eighteenth centuries, individuals across Europe increasingly designed, experienced, and described a new world of motion: one characterized by continuous, rather than segmented, movement. New spaces that included vistas along house interiors and uninterrupted library reading rooms offered open expanses for shaping sequences of social behaviour, scientists observed how the Earth rotated around the sun, and philosophers attributed emotions to neural vibr
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22

Bolotnik, Nikolai N., Walter D. Pilkey, and Dimitry V. Balandin. Optimal Protection from Impact, Shock and Vibration. Taylor & Francis Group, 2001.

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23

Bolotnik, Nikolai N., Walter D. Pilkey, and Dimitry V. Balandin. Optimal Protection from Impact, Shock and Vibration. Taylor & Francis Group, 2001.

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24

Bolotnik, Nikolai N., Dimitry V. Balandin, and Walter D. Pilkey. Optimal Protection from Impact, Shock and Vibration. CRC, 2001.

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25

Bolotnik, Nikolai N., Walter D. Pilkey, and Dimitry V. Balandin. Optimal Protection from Impact, Shock and Vibration. Taylor & Francis Group, 2001.

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26

Babitsky, Vladimir I., and N. Birkett. Theory of Vibro-Impact Systems and Applications. Springer, 2014.

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27

Babitsky, Vladimir I. Theory of Vibro-Impact Systems and Applications. Babitsky Vladimir I, 2013.

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28

Babitsky, Vladimir I., and N. Birkett. Theory of Vibro-Impact Systems and Applications. Springer, 2013.

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29

Guo, Yu, and Albert C. J. Luo. Vibro-Impact Dynamics. Wiley & Sons, Incorporated, John, 2012.

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30

Guo, Yu, and Albert C. J. Luo. Vibro-Impact Dynamics. Wiley & Sons, Incorporated, John, 2013.

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31

Guo, Yu, and Albert C. J. Luo. Vibro-Impact Dynamics. Wiley & Sons, Limited, John, 2013.

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32

Guo, Yu, and Albert C. J. Luo. Vibro-Impact Dynamics. Wiley & Sons, Incorporated, John, 2013.

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33

Luo, Albert C., and Yu Guo. Vibro-Impact Dynamics. Wiley & Sons, Incorporated, John, 2012.

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34

Elishakoff, Isaac, Kevin Dujat, Giuseppe Muscolino, Simon Bucas, and Toshiaki Natsuki. Carbon Nanotubes and Nanosensors: Vibration, Buckling and Balistic Impact. Wiley & Sons, Incorporated, John, 2013.

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35

Earthquake, Soc. Earthquake, Blast and Impact: Measurement and effects of vibration. Spon Press, 1990.

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36

Seced - The Society For Earthquake & Civil Engineering Dynamics. Earthquake, Blast and Impact: Measurement and Effects of Vibration. Taylor & Francis Group, 1991.

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37

Seced - The Society For Earthquake & Civil Engineering Dynamics. Earthquake, Blast and Impact: Measurement and Effects of Vibration. Taylor & Francis Group, 1991.

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38

Seced - The Society For Earthquake & Civil Engineering Dynamics. Earthquake, Blast and Impact: Measurement and effects of Vibration. Taylor & Francis Group, 2012.

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39

Elishakoff, Isaac, Kevin Dujat, Giuseppe Muscolino, Simon Bucas, and Toshiaki Natsuki. Carbon Nanotubes and Nanosensors: Vibration, Buckling and Balistic Impact. Wiley & Sons, Incorporated, John, 2012.

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40

Elishakoff, Isaac, Kevin Dujat, Giuseppe Muscolino, Simon Bucas, and Toshiaki Natsuki. Carbon Nanotubes and Nanosensors: Vibration, Buckling and Balistic Impact. Wiley & Sons, Incorporated, John, 2013.

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41

Elishakoff, Isaac, Kevin Dujat, Giuseppe Muscolino, Simon Bucas, and Toshiaki Natsuki. Carbon Nanotubes and Nanosensors: Vibration, Buckling and Balistic Impact. Wiley & Sons, Incorporated, John, 2013.

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42

Elishakoff, Isaac. Carbon Nanotubes and Nanosensors: Vibration, Buckling and Balistic Impact. Wiley & Sons, Incorporated, John, 2013.

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43

Carbon nanotubes and nanosensors: Vibration, buckling, and balistic impact. ISTE, 2012.

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44

Ibrahim, Raouf A., Masaaki Okuma, and V. I. Babitsky. Vibro-Impact Dynamics of Ocean Systems and Related Problems. Springer, 2010.

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45

Hosseini-Hashemi, S. The sound and vibration resulting from the impact of spheres. 1985.

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46

universitet, Göteborgs, ed. Impact and vibration and their effects on the lumbar spine. 1990.

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47

Pilipchuk, Valery N. Nonlinear Dynamics: Between Linear and Impact Limits. Springer, 2010.

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48

Foundations For Industrial Machines Handbook For Practising Engineers Rotary Machines Reciprocating Machines Impact Machines Vibration Isolation System. CRC Press, 2009.

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49

Elasto-impact and friction in dynamic systems: Presented at the 1996 ASME International Mechanical Engineering Congress and Exposition, November 17-22, 1996, Atlanta, Georgia. American Society of Mechanical Engineers, 1996.

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50

Adaptive Multi-Layer LMS Controller Design and Application to Active Vibration Suppression on a Truss and Proposed Impact Analysis Technique. Storming Media, 2001.

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