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Katz, Some problems in particle technology: a statistical mechan‐ ical formulation, Chem. Eng. , vol. 19, no. 8, pp. 555–574, 1964. [23] M. Frenklach, Method of moments with interpolative closure, Chem. Eng. , vol. 57, no. 12, pp. 2229–2239, 2002. [24] H. Liu, M. Yu, Z. Yin, Y. Jiang, and M. Chen, Study on the evolution of nanoparticle size distribution due to continuous injection using the sectional method, Int. J. Numer. Methods Heat Fluid Flow, vol. 24, no. 8, pp. 1803–1812, 2014. 43 44 Aerosols - Science and Case Studies [25] M.

Kasper, and M. Seipenbusch, Nanotechnologies, engineered nanomaterials and occupational health and safety – a review, Saf. , vol. 48, no. 8, pp. 957–963, 2010. [6] A. Joonas Koivisto, M. Yu, K. Hämeri, and M. Seipenbusch, Size resolved particle emission rates from an evolving indoor aerosol system, J. , vol. 47, pp. 58– 69, 2012. [7] M. Yu, A. J. Koivisto, K. Hämeri, and M. Seipenbusch, Size dependence of the ratio of aerosol coagulation to deposition rates for indoor aerosols, Aerosol Sci. , vol.

Academic Press, San Diego, 2000. [3] S. K. Friedlander. Smoke, Dust, and Haze: Fundamentals of Aerosol Dynamics. Oxford University Press, New York, second edition, 2000. [4] M. Smoluchowski. Drei Vorträge über Diffusion, Brownsche Bewegung und Koagula‐ tion von Kolloidteilchen. Physikalische Zeitschrift, 17:557–585, 1916. [5] D. J. Aldous. Deterministic and stochastic models for coalescence (aggregation and coagulation): a review of the mean‐field theory for probabilists. Bernoulli, 5:3–48, 1999.

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