Metrika

  • citati u SCIndeksu: 0
  • citati u CrossRef-u:[2]
  • citati u Google Scholaru:[]
  • posete u poslednjih 30 dana:8
  • preuzimanja u poslednjih 30 dana:4

Sadržaj

članak: 1 od 1  
2019, vol. 46, br. 2, str. 209-217
Poređenje dva procesa suvog frakcionisanja u cilju dobijanja suncokretove sačme sa povećanim sadržajem proteina
aInstitut za prehrambene tehnologije, Novi Sad, Srbija
bUniverzitet u Novom Sadu, Tehnološki fakultet, Srbija

e-adresastrahinja.vidosavljevic@fins.uns.ac.rs
Projekat:
Istraživanje savremenih biotehnoloških postupaka u proizvodnji hrane za životinje u cilju povećanja konkurentnosti, kvaliteta i bezbednosti hrane (MPNTR - 46012)

Ključne reči: suncokretova sačma; sadržaj proteina; prinos frakcije; suvo frakcionisanje; prosejavanje; vazdušna klasifikacija
Sažetak
Suncokretova sačma, sporedni proizvod ekstrakcije ulja iz suncokretovog semena, predstavlja važan izvor proteina u domaćoj i evropskoj proizvodnji hrane za životinje. Postoji ogroman interes za boljim iskorišćenjem suncokretove sačme kao i za razvijanjem efikasnog procesa frakcionisanja u cilju njenog nutritivnog poboljšanja. Ova studija predlaže i poredi dva procesa suvog frakcionisanja za poboljšanje sadržaja proteina u suncokretovoj sačmi na laboratorijskom nivou. Prva faza u oba procesa obuhvatala je postupak dvostepenog mlevenja korišćenjem mlina čekićara i mlina sa valjcima. U drugoj fazi, tako usitnjena sačma frakcionisana je prosejavanjem ili vazdušnom klasifikacijom. Rezultati su pokazali da je korišćenjem bilo kojeg od predloženih procesa moguće povećati sadržaj proteina suncokretove sačme do nivoa potrebnog da se smatra visokoproteinskom prema važećem Pravilniku o kvalitetu hrane za životinje, a da je istovremeno obezbeđen prinos sačme viši od 50%. Vazdušna klasifikacija je dala najbolje rezultate kada je upotrebljen protok vaduha od 7 m3 /h (12.8% relativno povećanje sadržaja proteina, 56.42% prinos frakcije). Kada je u procesu frakcionisanja separacija vršena prosejavanjem, najbolji rezultat postignut je kada su frakcije manje od 350 µm spojene. U tom slučaju relativno povećanje proteina iznosilo je 28.5% uz prinos frakcije od 51.17%. Tako visok sadržaj proteina (48.81% računato na suvu materiju) spojene frakcije, ostavlja prostor za optimizaciju ove metode u cilju dobijanja odgovarajućeg odnosa sadržaj proteina - prinos frakcije. Primenom sita sa većim prečnikom otvora moguće je dobiti veći prinos visokoproteinske sačme, uz blago smanjenje sadržaja proteina, što daje ovom procesu fleksibilnost i potencijal za primenu u industriji.
Reference
(SORS) Statistical Office of the Republic of Serbia (2019) Crop production: Search engine. Sept. 16, 2019, http://data.stat.gov.rs/Home/Result/130102?lan guageCode=en-US
*** (1998) Test sieving-part 1: Methods using test sieves of woven wire cloth and perforated metal plate. Geneva, Switzerland: International Organization for Standardization, ISO 2591-1:1998
*** (2018) Statistica (Data Analysis Software System). TIBCO Software Inc, v.13.5.0.17, (http://tibco.com)
*** (2010-2017) Regulation on animal feed quality - Pravilnik o kvalitetu hrane za životinje. Službeni glasnik RS, 4/2010, 113/2012, 27/2014, 25/2015, 39/2016, 54/2017
Aiking, H. (2011) Future protein supply. Trends in Food Science & Technology, 22(2-3), 112-120
AOAC (1998) Official methods of analysis of AOAC International. Gaithersburg, MD, USA: AOAC International, 16th ed
ASAE (2003) Method of determining and expressing fineness of feed materials by sieving. American Society of Agricultural and Biological Engineers, Standard 319.3, 202-205
Banjac, V., Čolović, R., Tomičić, Z., Popović, S., Kokić, B., Vidosavljević, S., Đuragić, O. (2018) Amino acid composition and technical quality of air classified high protein sunflower meals. u: 8 th International Symposium ''Feed Technology'', Novi Sad, Serbia, Proceedings, 42-47
Banjac, V., Pezo, L., Pezo, M., Vukmirović, Đ., Čolović, D., Fišteš, A., Čolović, R. (2017) Optimization of the classification process in the zigzag air classifier for obtaining a high protein sunflower meal: Chemometric and CFD approach. Advanced Powder Technology, 28(3), 1069-1078
Banjac, V.V., Čolović, R.R., Vukmirović, Đ.M., Sredanović, S.A., Čolović, D.S., Lević, J.D., Teodosin, S.J. (2013) Protein enrichment of sunflower meal by air classification. Food and Feed Research, vol. 40, br. 2, str. 77-83
Boye, J., Zare, F., Pletch, A. (2010) Pulse proteins: Processing, characterization, functional properties and applications in food and feed. Food Research International, 43(2), 414-431
Canibe, N., Pedrosa, M.M., Robredo, L.M., Bach, K.K.E. (1999) Chemical composition, digestibility and protein quality of 12 sunflower (Helianthus annuus L) cultivars. Journal of the Science of Food and Agriculture, 79(13), 1775-1782
Cromwell, G.L. (1999) Soybean meal-the 'gold standard': The farmer's pride. KPPA News, 11(20)
Dale, N. (1996) Variation in feed ingredient quality: Oilseed meals. Animal Feed Science and Technology, 59(1-3), 129-135
Draganov, L.K. (2015) New process for preparing high protein sunflower meal fraction. European Patent EP 2848128 A1
Đorđević, N., Dinić, B. (2011) Proizvodnja smeša koncentrata za životinje. Kruševac: Institut za krmno bilje
Geneau-Sbartaï, C., Leyris, J., Silvestre, F., Rigal, L. (2008) Sunflower cake as a natural composite: Composition and plastic properties. Journal of Agricultural and Food Chemistry, 56(23), 11198-11208
Green, S., Kiener, T. (1989) Digestibilities of nitrogen and amino acids in soya-bean, sunflower, meat and rapeseed meals measured with pigs and poultry. Animal Production, 48(1), 157-179
Jayasena, V., Chih, H.J., Nasar-Abbas, S.M. (2011) A practical and economical approach to efficient isolation of lupin protein. Food Australia, 63(7), 306-309
Kachrimanidou, V., Kopsahelis, N., Alexandri, M., Strati, A., Gardeli, C., Papanikolaou, S., Komaitis, M., Kookos, I.K., Koutinas, A.A. (2015) Integrated sunflower-based biorefinery for the production of antioxidants, protein isolate and poly(3-hydroxybutyrate). Industrial Crops and Products, 71, 106-113
Kim, S.W., Less, J.F., Wang, L., Yan, T., Kiron, V., Kaushik, S.J., Lei, X.G. (2019) Meeting global feed protein demand: Challenge, opportunity, and strategy. Annual Review of Animal Biosciences, 7(1), 221-243
Laudadio, V., Bastoni, E., Introna, M., Tufarelli, V. (2013) Production of low-fiber sunflower (Helianthus annuusL.) meal by micronization and air classification processes. CyTA - Journal of Food, 11(4), 398-403
Lević, J., Sredanović, S. (1997) Possible ways for production of protein and other feedstuffs from plant materials. u: 7th International Symposium ''Advances in Feed Technology'', Tara, Serbia, Proceedings, 17-35
Lovatto, N.M., Goulart, F.R., Loureiro, B.B., Speroni, C.S., Bender, A.B.B., Giacomini, S.J., Radünz, N.J., da Silva, L.P. (2017) Crambe (Crambe abyssinica) and sunflower (Helianthus annuus) protein concentrates: production methods and nutritional properties for use in fish feed. Anais da Academia Brasileira de Ciências, 89(3 suppl), 2495-2504
Maaroufi, C., Melcion, J.P., de Monredon, F., Giboulot, B., Guibert, D., Le, G.M.P. (2000) Fractionation of pea flour with pilot scale sieving. I: Physical and chemical characteristics of pea seed fractions. Animal Feed Science and Technology, 85(1-2), 61-78
Mérida, S.N., Tomás-Vidal, A., Martínez-Llorens, S., Cerdá, M.J. (2010) Sunflower meal as a partial substitute in juvenile sharpsnout sea bream (Diplodus puntazzo) diets: Amino acid retention, gut and liver histology. Aquaculture, 298(3-4), 275-281
Pandya, T.S., Srinivasan, R. (2012) Effect of hammer mill retention screen size on fiber separation from corn flour using the Elusieve process. Industrial Crops and Products, 35(1), 37-43
Ramachandran, S., Singh, S.K., Larroche, C., Soccol, C.R., Pandey, A. (2007) Oil cakes and their biotechnological applications: A review. Bioresource Technology, 98(10), 2000-2009
Schutyser, M.A.I., van der Goot, A.J. (2011) The potential of dry fractionation processes for sustainable plant protein production. Trends in Food Science & Technology, 22(4), 154-164
Senkoylu, N., Dale, N. (1999) Sunflower meal in poultry diets: A review. World's Poultry Science Journal, 55(2), 153-174
Sredanović, S. (2007) Advancement of technological process and quality of sunflower meal. Faculty of Technology, University of Novi Sad, M.Sc. Thesis
Sredanović, S., Lević, J., Đuragić, O. (2011) Upgrade of sunflower meal processing technology. Helia, vol. 34, br. 54, str. 139-146
Srinivasan, R., To, F., Columbus, E. (2009) Pilot scale fiber separation from distillers dried grains with solubles (DDGS) using sieving and air classification. Bioresource Technology, 100(14), 3548-3555
Tabtabaei, S., Vitelli, M., Rajabzadeh, A.R., Legge, R.L. (2017) Analysis of protein enrichment during singleand multi-stage tribo-electrostatic bioseparation processes for dry fractionation of legume flour. Separation and Purification Technology, 176, 48-58
Taelman, S.E., de Meester, S., van Dijk, W., da Silva, V., Dewulf, J. (2015) Environmental sustainability analysis of a protein-rich livestock feed ingredient in the Netherlands: Microalgae production versus soybean import. Resources, Conservation and Recycling, 101, 61-72
Wang, J., Zhao, J., de Wit, M., Boom, R.M., Schutyser, M.A. (2016) Lupine protein enrichment by milling and electrostatic separation. Innovative Food Science and Emerging Technologies, 33, 596-602
Yasothai, R. (2016) Antinutritional factors in soybean meal and its deactivation. International Journal of Science, Environment and Technology, 5(6), 3793-3797
 

O članku

jezik rada: engleski
vrsta rada: originalan članak
DOI: 10.5937/FFR1902209V
objavljen u SCIndeksu: 09.01.2020.
Creative Commons License 4.0

Povezani članci

Nema povezanih članaka