Research on the Identification of Some Optimal Threshing and Separation Regimes in the Axial Flow Apparatus

Author:

Vlăduț Nicolae-Valentin1ORCID,Ungureanu Nicoleta2ORCID,Biriş Sorin-Ştefan2ORCID,Voicea Iulian1,Nenciu Florin1ORCID,Găgeanu Iuliana1,Cujbescu Dan1,Popa Lorena-Diana3,Boruz Sorin4,Matei Gheorghe4,Ekielski Adam5ORCID,Teliban Gabriel-Ciprian6

Affiliation:

1. National Institute of Research—Development for Machines and Installations Designed for Agriculture and Food Industry—INMA Bucharest, 013811 Bucharest, Romania

2. Department of Biotechnical Systems, Faculty of Biotechnical Systems Engineering, University Politehnica of Bucharest, 006042 Bucharest, Romania

3. Agricultural Research and Development Station Secuieni, 617415 Secuieni, Romania

4. Faculty of Agronomy, University of Craiova, 200421 Craiova, Romania

5. Department of Production Management and Engineering, Warsaw University of Life Sciences, 02-787 Warsaw, Poland

6. Department of Horticulture, “Ion Ionescu de la Brad” Iasi University of Life Sciences, 700490 Iasi, Romania

Abstract

Starting from the influencing parameters of threshing and separation and implicit seed losses that occur within this process, this paper searched for and identified the optimal threshing regimes to minimize losses depending on the process parameters. The evacuation losses (pev) depend on threshing rotor speed (n) and implicit rotor peripheral speed (vp), material feed speed (va), the space between the rotor and counter-rotor (δ), material feed flow (Q), material density (ρ), and the length of the threshing apparatus (L). As the parameters ρ and L are constant, the variation of losses in relation to each of the arguments was followed: vp, Q, ρ, and va, respectively, for the minimization of losses by the variation of the loss function by two arguments each (represented graphically); the four arguments targeted being: vp, va, ρ, and Q. Using these input parameters, it was possible to determine the optimal threshing regimes for the variation of losses in relation to the rotor peripheral speed, the feed flow, the space between the rotor and the counter-rotor, and the feed speed, so as to obtain a seed separation percentage (Ss) as close as possible to 100% (and implicitly the smallest threshing losses—towards zero) in relation to these parameters.

Funder

Romanian Research and Innovation Ministry

University Politehnica of Bucharest, Romania

Publisher

MDPI AG

Subject

Plant Science,Agronomy and Crop Science,Food Science

Reference46 articles.

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2. Structure optimization of a grain impact piezoelectric sensor and its application for monitoring separation losses on tangential-axial combine harvesters;Liang;Sensors,2015

3. Hanna, H.M., and Quick, G.R. (2013). Handbook of Farm, Dairy and Food Machinery Engineering, Academic Press.

4. Review of grain threshing theory and technology;Fu;Int. J. Agric. Biol. Eng.,2018

5. Mathematical modeling of ear grain separation process depending on the length of the axial low threshing apparatus;Cujbescu;INMATEH—Agric. Eng.,2021

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