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Determination of some important emissions of poultry waste co-combustion

References 1. Zhu S., Lee S.W. Co-combustion performance of poultry wastes and natural gas in the advanced Swirling Fluidized Bed Combustor (SFBC). Waste Management, 2005, Nr.25, p. 511-518. 2. Kelleher B.P., Leahy J.J., Henihan A.M., O’Dwyer T.F., Sutton D., Leahy M.J. Advances in poultry litter disposal technology - a review, Bioresource Technology, 2002, Nr. 83, p. 27-36 3. Henihan A.M., Leahy M.J., Leahy J.J., Cummins E., Kelleher B.P. Emissions modeling of fluidised bed co-combustion of

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Combustion Gases And Heat Release Analysis During Flame And Flameless Combustion Of Wood Pellets

. ISBN 0-9728111-3-3 5. OSVALD, A., KORYTÁROVÁ, O. 2000. Zmeny v štruktúre vybraných ihličnatých drevín spôsobené vysokými teplotami . ( Changes in the structure of selected coniferous trees caused by high temperatures ). Vol. 1. Zvolen: TU. ISBN 80-228-0970-5 6. DEMIRBAS, A. 2004. Combustion characteristics of different biomass fuels. Prog Energy Combust Science , Vol. 30, pp. 219–230. 7. ABUELNUOR, A.A.A., WAHIDA, M.A., HOSSEINIA, S. E., SAAT, A., SAQR, K.M., SAIT and M. OSMAND, H.H. 2014. Characteristics of biomass in flameless combustion: A

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Optimizing the Shape of a Compression-Ignition Engine Combustion Chamber by Using Simulation Tests

REFERENCES 1. AVL FIRE, ESE Diesel, Emission Module, Version 2017. 2. Channappagoudra M., Ramesh K., Manavendra G.: Comparative study of standard engine and modified engine with different piston bowl geometries operated with B20 fuel blend . Renewable Energy, 133, 2019, pp. 216–232. 3. Gafoor A.C.P., Gupta R.: Numerical investigation of piston bowl geometry and swirl ratio on emission from diesel engine s. Energy Conversion and Management, 101, 2015, pp. 541–551. 4. Heywood J.: Internal Combustion Engine Fundamentals . McGraw-Hill Book

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Mathematical Modeling of Methane Combustion

.cz/seznam.htm KOZUBKOVÁ, M., BLEJCHAŘ, T., BOJKO, M. (2011). Modelování přenosu tepla a hybnosti. VŠB - TU Ostrava 173 s, Ostrava 2011 (in Czech). KOZUBKOVA, M., KRUTIL, J. (2012). Matematické modelování výbuchu metanu v rodinném domku v Kamenné u Milína pomocí SW FLUENT. The Science for Population Protection , 2012 (in print). RICHARDSON, E. S.A, CHEN, J. H. B. (2012). Application of PDF mixing models to premixed flames with differential diffusion. Combustion and Flame , Volume 159, Issue 7, pages 2398-2414. ISSN 00102180

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Effects of Varying Tobacco Rod Circumference on Cigarette Combustion: An Experimental Investigation

Mainstream Smoke Emissions of Canadian ‘Super Slim’ Cigarettes; Tob. Control. 22 (2013) e10. DOI: 10.1136/tobaccocontrol-2012-050450 16. Laszlo, T.S. and F.M. Watson III: A Scanning Infrared Technique for Cigarette Coal Peak Temperature Measurements; Beitr. Tabakforsch. 7 (1974) 269–275. DOI: 10.2478/cttr-2013-0341 17. Baker, R.R.: Temperature Distribution Inside a Burning Cigarette; Nature 247 (1974) 405–406. DOI: 10.1038/247405a0 18. Baker, R.R.: Temperature Variation Within a Cigarette Combustion Coal During the Smoking Cycle; High Temp. Sci. 7 (1975

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Mineralogy, chemical composition and leachability of ash from biomass combustion and biomass–coal co-combustion

6. References Baba, A., & Kaya, A. (2004). Leaching characteristics of fly ash from thermal power plants of Soma and Tunçbilek, Turkey. Environmental Monitoring and Assessment, 91 , 171-181. DOI: 10.1023/B:EMAS.0000009234.42446.d3. Bartoňová, L., Čech, B., Ruppenthalová, L., Majvelderová, V., Juchelková, D., & Klika, Z. (2012). Effect of unburned carbon content in fly ash on the retention of 12 elements out of coal-combustion flue gas. Journal of Environmental Sciences, 24, 1624-1629. DOI: 10.1016/S1001-0742(11)60981-9. Bogush, A. A

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The Effect of Varying Magnetic Field Gradient on Combustion Dynamic

References Van Loo, S. The Handbook of Biomass Combustion & Co-firing. UK: CPI Antony Rowe, 2008. 442 p. Nussbaumer, T. Combustion and Co-combustion of Biomass: Fundamentals, Technologies, and Primary Measures for Emission Reduction. Energy & Fuels , 2003, N 17, p. 1510-1521. Arena, U., Zaccariello, L., Mastellone, M. Gasification of natural and waste biomass in a pilot scale fluidized bed reactor. Combustion Science and Technology , 2010, p. 625

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Gas Combustion Efficiency Enhancement: Application Study of Intense Elestrostatic Field

-premixed flames. Fuel , 109 , 350–355, DOI: https://doi.org/10.1016/j.fuel.2012.12.083 3. Ombrello, T., Won, S.H., Ju, Y., & Williams, S. (2010). Flame propagation enhancement by plasma excitation of oxygen. Part I: Effects of O 3 . Combustion and Flame , 157 (10), 1906–1915, DOI: https://doi.org/10.1016/j.combustflame.2010.02.005 4. Ombrello T., Won, S.H., Ju, Y., & Williams, S. (2010). Flame propagation enhancement by plasma excitation of oxygen. Part II: Effects of O 2 (a 1 Δ g). Combustion and flame , 157 (10), 1916–1928, DOI: https://doi.org/10.1016/j

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Carbon Shale Combustion in the Fluidized Bed Reactor

Literature Cited 1. Klank, M. (2010). The future of coal – a new look at its use, Energy Policy, 10(1), 41–49 (in Polish). 2. Kandefer, S. (1989). Fluidized bed combustion of low-grade fuels and waste , Cracow: Cracow University of Technology Publisher, (in Polish). 3. Baron, J., Bulewicz, E.M., Kandefer, S., Pilawska, M. & Żukowski, W. (2006). Environmentally-friendly Use of Waste Biomass in Protected Areas. Environ. Prot. Eng. 32 (1), 35–40. 4. Porzuczek, J. (2012). Optimization of the fluidized bed boilers operation in nonstationary states. Cracow

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Quantifying The Combustion Behavior of Polymers by the Combustion Efficiency with Regard to the Weighting of Fire Loads

). DINENNO, Philip J. (2002). Appendix C - fuel properties and combustion data. SFPE Handbook of Fire Protection Engineering . 3rd edit. National Fire Protection Association Press, USA: Quincy, Massachusetts, 2002, pp. A-34 - A-42. ISBN 087765-451-4. EN 13823:2010. Reaction to fire tests for building products - building products excluding floorings exposed to the thermal attack by a single burning item. GRELLMANN, Wolfgang, SEIDLER, Sabine (2011). Examination of synthetics (German: Kunststoffprüfung). 2nd edit. Gert Hauser, Germany: München, 2011. 739 p. ISBN 978

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