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1

Smith, Erika. Inorganic microporous adsorbent materials. Norwalk, CT: Business Communications Co., 1997.

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2

Lee, Sunggyu, and Kimberly H. Henthorn. Particle technology and applications. Boca Raton, FL: Taylor & Francis, 2012.

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3

Particle technology and applications. Boca Raton, FL: Taylor & Francis, 2012.

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4

Millán, José Manuel Valverde. Fluidization of Fine Powders: Cohesive versus Dynamical Aggregation. Dordrecht: Springer Netherlands, 2013.

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5

Kimmich, Rainer. Principles of Soft-Matter Dynamics: Basic Theories, Non-invasive Methods, Mesoscopic Aspects. Dordrecht: Springer Netherlands, 2012.

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6

Kalia, Susheel. Polymers at Cryogenic Temperatures. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013.

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7

Granular Computing Industrial Electronics. Taylor & Francis Inc, 2013.

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8

Herminghaus, S. Where grains and fluids meet: the complex physics of wet granular matter. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198789352.003.0009.

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In this chapter, the physics of wet granular matter is discussed. The practical significance of wet granular matter goes of course well beyond the construction of sand sculptures. Most industrial raw materials are solids and come in granular form, and the processes into which they feed involve their being mixed with liquids and agglomerated, conveyed, kneaded, or cast in moulds. For appropriately engineering these processes, including the minimization of energy consumption, a deep understanding of the mechanical properties of this class of materials is indispensable. Furthermore, if we want to mitigate, or even reliably predict, such devastating events as land slides or mud flows, we need to study the dynamical behaviour of wet granular matter in detail. This applies as well to other, similar systems of relevance, such as ice and snow avalanches, which can be modelled as wet granular systems as well.
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Lee, Sunggyu, and Kimberly H. Henthorn. Particle Technology and Applications. Taylor & Francis Group, 2016.

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10

Lee, Sunggyu, and Kimberly H. Henthorn. Particle Technology and Applications. Taylor & Francis Group, 2017.

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11

Dockerty, Paul R. A study of the efficacy of granular activated carbon upon trihalomethanes and phenol in drinking water: An experimental to industrial scale project. 1987.

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12

Parker, Philip M. The 2007-2012 World Outlook for Commercial, Industrial, and Institutional Soap Chips, Flakes, Granules, Powders, and Sprays Excluding Specialty Cleaners. ICON Group International, Inc., 2006.

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Parker, Philip M. The 2007-2012 Outlook for Commercial, Industrial, and Institutional Soap Chips, Flakes, Granules, Powders, and Sprays Excluding Specialty Cleaners in Japan. ICON Group International, Inc., 2006.

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Parker, Philip M. The 2007-2012 Outlook for Commercial, Industrial, and Institutional Soap Chips, Flakes, Granules, Powders, and Sprays Excluding Specialty Cleaners in India. ICON Group International, Inc., 2006.

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Parker, Philip M. The 2007-2012 Outlook for Commercial, Industrial, and Institutional Soap Chips, Flakes, Granules, Powders, and Sprays Excluding Specialty Cleaners in Greater China. ICON Group International, Inc., 2006.

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16

Parker, Philip M. The 2007-2012 Outlook for Commercial, Industrial, and Institutional Soap Chips, Flakes, Granules, Powders, and Sprays Excluding Specialty Cleaners in the United States. ICON Group International, Inc., 2006.

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17

Millán, José Manuel Valverde. Fluidization of Fine Powders: Cohesive versus Dynamical Aggregation. Springer, 2012.

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18

Kimmich, Rainer. Principles of Soft-Matter Dynamics: Basic Theories, Non-invasive Methods, Mesoscopic Aspects. Springer, 2015.

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19

Kimmich, Rainer. Principles of Soft-Matter Dynamics. Springer, 2013.

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