Εμφανίζονται 1 - 20 Αποτελέσματα από 45 για την αναζήτηση '"пресс-гранулятор"', χρόνος αναζήτησης: 1,04δλ Περιορισμός αποτελεσμάτων
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    Academic Journal

    Συνεισφορές: the research was carried out under the support of the Ministry of Science and Higher Education of the Russian Federation within the state assignment of the Agricultural Research Centre Donskoy (theme No. 0505-2022-0007). The authors thank the reviewers for their contribution to the peer review of this work., работа выполнена при поддержке Минобрнауки РФ в рамках Государственного задания ФГБНУ «АНЦ «Донской» (тема № 0505-2022-0007). Авторы благодарят рецензентов за их вклад в экспертную оценку этой работы.

    Πηγή: Agricultural Science Euro-North-East; Том 24, № 1 (2023); 30-45 ; Аграрная наука Евро-Северо-Востока; Том 24, № 1 (2023); 30-45 ; 2500-1396 ; 2072-9081

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Factors that affect pellet quality: a review. Journal of Agricultural Science and Technology. 2015;9(2):717-722. DOI: https://doi.org/10.17265/2161-6256/2015.09.002; Nielsen S. K., Mando M., Rosenorn A. B. Review of die design and process parameters in the biomass pelleting process. Powder Technology. 2020;364: 971-985. DOI: https://doi.org/10.1016/j.powtec.2019.10.051; Gageanu I., Cujbescu D., Persu C., Tudor P., Cardei P., Matache M., Vladut V., Biris S., Voicea I., Ungureanu N. Influence of input and control parameters on the process of pelleting powdered biomass. Energies. 2021;14(14):4104. DOI: https://doi.org/10.3390/en14144104; Ольховик П. А., Шахов В. А., Хлопко Ю. А., Козловцев А. П., Межуева Л. В., Шахов В. В., Шахов Г. В. Основные тенденции совершенствования пресс-грануляторов. Известия Оренбургского государственного аграрного университета. 2022;94(2):102-106. DOI: https://doi.org/10.37670/2073-0853-2022-94-2-102-106; Thomas M., Van der Poel A. F. B. Fundamental factors in feed manufacturing: Towards a unifying conditioning/pelleting framework. Animal Feed Science and Technology. 2020;268:114612. DOI: https://doi.org/10.1016/j.anifeedsci.2020.114612; Dujmovic M., Safran B., Jug M., Radmanovic K., Antonovic A. Biomass Pelletizing Process: A Review. Drvna Industrija. 2022;73(1):99-106. DOI: https://doi.org/10.5552/drvind.2022.2139; Torraco R. J. Writing integrative literature reviews: Using the past and present to explore the future. Human Resource Development Review. 2016;15(4):404-428. DOI: https://doi.org/10.1177/1534484316671606; Okoli C. A guide to conducting a standalone systematic literature review. Communications of the Association for Information Systems. 2015;37:879-910. DOI: https://doi.org/10.17705/1cais.03743; Stelte W., Sanadi A. R., Shang L., Holm J. K., Ahrenfeldt J., Henriksen U. B. Recent developments in biomass pelletization – A review. BioResources. 2012;7(3):4451-4490. 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Режим доступа: https://kombi-korma.ru/sites/default/files/2/06_20/2020_06_34-36.pdf; Lisowski A., Matkowski P., Dąbrowska M., Piątek M., Świętochowski A., Klonowski J., Mieszkalski L., Reshetiuk V. Particle size distribution and physicochemical properties of pellets made of straw, hay, and their blends. Waste and Biomass Valorization. 2020;11:63-75. DOI: https://doi.org/10.1007/s12649-018-0458-8; Bergström D., Israelsson S., Ohman M., Dahlqvist S. A., Gref R., Boman C., Wasterlund I. Effects of raw material particle size distribution on the characteristics of Scots pine sawdust fuel pellets. Fuel Processing Technology. 2008;89(12):1324-1329. DOI: https://doi.org/10.1016/j.fuproc.2008.06.001; Mani S., Tabil L. G., Sokhansanj S. Effects of compressive force, particle size and moisture content on mechanical properties of biomass pellets from grasses. Biomass and Bioenergy. 2006;30(7):648-654. DOI: https://doi.org/10.1016/j.biombioe.2005.01.004; Stelte W., Holm J. K., Sanadi A. R., Barsberg S., Ahrenfeldt J., Henriksen U. B. A study of bonding and failure mechanisms in fuel pellets from different biomass resources. Biomass Bioenergy. 2011;35(2):910-918. DOI: https://doi.org/10.1016/j.biombioe.2010.11.003; Froetschner J. Conditioning Controls Quality of Pellet. Feed Tech. 2006;10(6):12-5. URL: https://vk.cc/chaXTz; Moritz J. S., Cramer K. R., Wilson K. J., Beyer R. S. Feed manufacture and feeding of rations with graded levels of added moisture formulated to different energy densities. Journal Applied of Poultry Research. 2003;12(3):371-381. DOI: https://doi.org/10.1093/japr/12.3.371; Abdollahi M. R., Ravindran V., Wester T. J., Ravindran G., Thomas D. V. Effect of improved pellet quality from the addition of a pellet binder and/or moisture to a wheat-based diet conditioned at two different temperatures on performance, apparent metabolisable energy and ileal digestibility of starch and nitrogen in broilers. Animal Feed Science and Technology. 2012;175(3-4);150-157. DOI: https://doi.org/10.1016/j.anifeedsci.2012.05.001; Cutlip S. E., Hott J. M., Buchanan N. P., Rack A. L., Latshaw J. D., Moritz J. S. The effect of steam-conditioning practices on pellet quality and growing broiler nutritional value. Journal Applied of Poultry Research. 2008;17(2):249-261. DOI: https://doi.org/10.3382/japr.2007-00081; Ungureanu N., Vladut V., Voicu G., Dinca M. N., Zabava B. S. Influence of biomass moisture content on pellet properties – review. Engineering for Rural Development. 2018;17:1876-1883. DOI: https://doi.org/10.22616/ERDev2018.17.N449; Colovic R., Vukmirovic D., Matulaitis R., Bliznikas S., Uchockis V., Juskiene V., Levic J. Effect of die channel press way length on physical quality of pelleted cattle feed. Food & Feed Research. 2010;37(1):1-6. URL: http://foodandfeed.fins.uns.ac.rs/uploads/Magazines/magazine_37/effect-of-die-channel-press-way-length-on-physicalquality-of-pelleted-cattle-feed.pdf; Abadi M. H. M. G., Moravej H., Shivazad M., Torshizi M. A. K., Kim W. K. Effect of different types and levels of fat addition and pellet binders on physical pellet quality of broiler feeds. Poultry Science. 2019;98(10):4745-4754. DOI: https://doi.org/10.3382/ps/pez190; Gehring C. K., Lilly K. G. S., Shires L. K., Beaman K. R., Loop S. A., Moritz J. S. Increasing mixer-added fat reduces the electrical energy required for pelleting and improves exogenous enzyme efficacy for broilers. Journal of Applied Poultry Research. 2011;20(1):75-89. DOI: https://doi.org/10.3382/japr.2009-00082; Lamichhane S., Sahtout K., Smillie J., Scott T. A. Vacuum coating of pelleted feed for broilers: opportunities and challenges. Animal Feed Science and Technology. 2015;200:1-7. DOI: https://doi.org/10.1016/j.anifeedsci.2014.11.015; Massuquetto A., Durau J. F., Schramm V. G., Netto M. T., Krabbe E. L., Maiorka A. Influence of feed form and conditioning time on pellet quality, performance and ileal nutrient digestibility in broilers. Journal of Applied Poultry Research. 2018;27(1);51-58. DOI: https://doi.org/10.3382/japr/pfx039; Segerstrom M., Larsson S. H. Clarifying sub-processes in continuous ring die pelletizing through die temperature control. Fuel Processing Technology. 2014;123:122-126. DOI: https://doi.org/10.1016/j.fuproc.2014.02.008; Abdollahi M. R., Ravindran V., Wester T. J., Ravindran G., Thomas D. V. Influence of conditioning temperature on performance, apparent metabolisable energy, ileal digestibility of starch and nitrogen and the quality of pellets, in broiler starters fed corn and sorghum-based diets. Animal Feed Science and Technology. 2010;162(3-4):106-115. DOI: https://doi.org/10.1016/j.anifeedsci.2010.08.017; Kulig R., Laskowski J. Effect of conditioning parameters on pellet temperature and energy consumption in the process of plant material pressing. Teka Komisji Motoryzacji i Energetyki Rolnictwa. 2008;8a:105-111. URL: https://www.researchgate.net/publication/237283167_EFFECT_OF_CONDITIONING_PARAMETERS_ON_PELLET_TEMPERATURE_AND_ENERGY_CONSUMPTION_IN_THE_PROCESS_OF_PLANT_MATERIAL_PRESSING; Netto M. T., Massuquetto A., Krabbe E. L., Surek D., Oliveira S. G., Maiorka A. Effect of conditioning temperature on pellet quality, diet digestibility, and broiler performance. Journal of Applied Poultry Research. 2019;28(4):963-973. DOI: https://doi.org/10.3382/japr/pfz056; Dos Santos R. O. F., Bassi L. S., Schramm V. G., da Rocha C., Dahlke F., Krabbe E. L., Maiorka A. Effect of conditioning temperature and retention time on pellet quality, ileal digestibility, and growth performance of broiler chickens. Livestock Science. 2020;240:104110. DOI: https://doi.org/10.1016/j.livsci.2020.104110; Picchio R., Latterini F., Venanzi R., Stefanoni W., Suardi A., Tocci D., Pari L. Pellet production from woody and non-woody feedstocks: A review on biomass quality evaluation. Energies. 2020;13(11):2937. DOI: https://doi.org/10.3390/en13112937; Благов Д. А., Митрофанов С. В., Панферов Н. С., Тетерин В. С., Пестряков Е. В. Пресс-грануляторы, технические особенности, влияние гранулирования на качественные показатели корма. Кормление сельскохозяйственных животных и кормопроизводство. 2020;(9):57-66. DOI: https://doi.org/10.33920/sel-05-2009-06; Agar D. A., Rudolfsson M., Kalen G., Campargue M., Perez D. D. S., Larsson S. H. A systematic study of ring-die pellet production from forest and agricultural biomass. Fuel Processing Technology. 2018;180:47-55. DOI: https://doi.org/10.1016/j.fuproc.2018.08.006; Crawford N. C., Ray A. E., Yancey N. A., Nagle N. Evaluating the pelletization of “pure” and blended lignocellulosic biomass feedstocks. Fuel Processing Technology. 2015;140:46-56. DOI: https://doi.org/10.1016/j.fuproc.2015.08.023; Whittaker C., Shield I. Factors affecting wood, energy grass and straw pellet durability – A review. Renewable and Sustainable Energy Reviews. 2017;71:1-11. DOI: https://doi.org/10.1016/j.rser.2016.12.119; Faborode M. O., O’Callaghan J. R. Theoretical analysis of the compression of fibrous agricultural materials. Journal of Agricultural Engineering Research. 1986;35(3):175-191. DOI: https://doi.org/10.1016/S0021-8634(86)80055-5; Mani S., Tabil L. G., Sokhansanj S. Evaluation of compaction equations applied to four biomass species. Canadian Biosystems Engineering. 2004;46(3):55-61. URL: https://library.csbe-scgab.ca/docs/journal/46/c0404.pdf; Alakangas E., Paju P. Wood pellets in Finland – technology, economy, and market. OPET Report 5. Jyväskylä: VTT Processes, 2002. 85 p. URL: https://cris.vtt.fi/ws/files/52184787/wood_pellet_in_finland_compress.pdf; Jackson J., Turner A., Mark T., Montross M. Densification of biomass using a pilot scale flat ring roller pellet mill. Fuel Processing Technology. 2016;148:43-49. DOI: https://doi.org/10.1016/j.fuproc.2016.02.024; Nielsen N. P. K., Gardner D., Poulsen T., Felby C. Importance of temperature, moisture content, and species for the conversion process of wood residues into fuel pellets. Wood and Fiber Science. 2009;41(4):414-425. URL: https://wfs.swst.org/index.php/wfs/article/view/469/469; Кувшинов В. В., Муханов Н. В., Телегин И. А., Марченко С. А. Поведение системы «канал матрицыспрессованные монолиты» в процессе их нагрева. Аграрный вестник Верхневолжья. 2020;(4):85-90. DOI: https://doi.org/10.35523/2307-5872-2020-33-4-85-90; Serrano C., Monedero E., Lapuerta M., Portero H. Effect of moisture content, particle size and pine addition on quality parameters of barley straw pellets. Fuel Processing Technology. 2011;92(3):699-706. DOI: https://doi.org/10.1016/j.fuproc.2010.11.031; Mostafa M. E., Hu S., Wang Y., Su S., Fu X., Elsayed S. A., Xiang J. The significance of pelletization operating conditions: An analysis of physical and mechanical characteristics as well as energy consumption of biomass pellets. Renewable and Sustainable Energy Reviews. 2019;105:332-348. DOI: https://doi.org/10.1016/j.rser.2019.01.053; Tumuluru J. S. Effect of process variables on the density and durability of the pellets made from high moisture corn stover. Biosystems Engineering. 2014;119:44-57. DOI: https://doi.org/10.1016/j.biosystemseng.2013.11.012; Safran B., Radmanovic K., Jug M., Lucic Beljo R., Lojen T., Risovic S. Influence of pressing temperature and additive on mechanical properties of wood pellets. Natural Resources, Green Technology & Sustainable Development. 2018;3:141-148. URL: https://www.sumins.hr/wp-content/uploads/2019/07/green3-proceedings.pdf; Кошак Ж., Кошак А. 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    Academic Journal

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    Relation: Праці Таврійського державного агротехнологічного університету : наукове фахове видання;Вип. 21, т. 1. (С. 160-168); http://elar.tsatu.edu.ua/handle/123456789/14021

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    Relation: Механізація та електрифікація сільського господарства: загальнодержавний збірник;Вип. № 10 (109) (С. 160-165); http://elar.tsatu.edu.ua/handle/123456789/9569

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    Relation: Вісник Харківського національного технічного університету сільського господарства;Вип. 205 «Проблеми надійності машин» (С. 380-390); http://elar.tsatu.edu.ua/handle/123456789/9556

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    Relation: Вісник Харківського національного технічного університету сільського господарства;Вип. 205 «Проблеми надійності машин» (С. 398-405); http://elar.tsatu.edu.ua/handle/123456789/9557

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