Mathematical Model of the Plane-Parallel Movement of the Self-Propelled Root-Harvesting Machine

The harvest techniques and the employed machines are important factors in reducing soil loss due to root crop harvesting. Furthermore, the deviation of the working organs of the self-propelled sugar root harvesting machines from the axis of the row also leads to significant losses and damage to suga...

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Main Authors: Volodymyr Bulgakov, Simone Pascuzzi, Francesco Santoro, Alexandros Sotirios Anifantis
Format: Article
Language:English
Published: MDPI AG 2018-10-01
Series:Sustainability
Subjects:
Online Access:http://www.mdpi.com/2071-1050/10/10/3614
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spelling doaj-0ca3315b1812447b8328517c935d630d2020-11-25T00:17:36ZengMDPI AGSustainability2071-10502018-10-011010361410.3390/su10103614su10103614Mathematical Model of the Plane-Parallel Movement of the Self-Propelled Root-Harvesting MachineVolodymyr Bulgakov0Simone Pascuzzi1Francesco Santoro2Alexandros Sotirios Anifantis3Department of Mechanics, Faculty of Construction and Design, National University of Life and Environmental Sciences of Ukraine, 03041 Kyiv, UkraineDepartment of Agricultural and Environmental Science, University of Bari Aldo Moro, Via Amendola 165/A, 70126 Bari, ItalyDepartment of Agricultural and Environmental Science, University of Bari Aldo Moro, Via Amendola 165/A, 70126 Bari, ItalyDepartment of Agricultural and Environmental Science, University of Bari Aldo Moro, Via Amendola 165/A, 70126 Bari, ItalyThe harvest techniques and the employed machines are important factors in reducing soil loss due to root crop harvesting. Furthermore, the deviation of the working organs of the self-propelled sugar root harvesting machines from the axis of the row also leads to significant losses and damage to sugar beetroots. Therefore, the self-propelled machine units must move in a horizontal plane with a high degree of accuracy. The purpose of this study is to increase the efficiency of the self-propelled harvester by analyzing its plane-parallel motion and evaluating its constructive and kinematic parameters. In order to determine the influence of these parameters on the plane-parallel motion of the self-propelled root harvesting machine, its mathematical model has been calculated. Furthermore, experimental tests were executed in order to evaluate the degree of damage to sugar beetroot crops during their digging, depending on the magnitude of the deviations of the center of the digging tool. The results of this trials highlighted that if the crop row deviates from the conventional axis line by 10 mm, the root crop damage exceeds is 21.7% and at deviations by 70 mm, the damage exceeds 67%. The theoretical study of the trajectory of the center of the outside digging tool and the experimental evaluation of its work (in terms of the quality of harvesting with deviations in its trajectory of motion) formally confirm the coincidence of all the studies—both theoretical and experimental. The use of the model of the plane-parallel movement of the self-propelled root harvesting machine then improves the quality parameters of the technological process.http://www.mdpi.com/2071-1050/10/10/3614root-harvesting machineplane-parallel motionself-propelled machinedriving automaton
collection DOAJ
language English
format Article
sources DOAJ
author Volodymyr Bulgakov
Simone Pascuzzi
Francesco Santoro
Alexandros Sotirios Anifantis
spellingShingle Volodymyr Bulgakov
Simone Pascuzzi
Francesco Santoro
Alexandros Sotirios Anifantis
Mathematical Model of the Plane-Parallel Movement of the Self-Propelled Root-Harvesting Machine
Sustainability
root-harvesting machine
plane-parallel motion
self-propelled machine
driving automaton
author_facet Volodymyr Bulgakov
Simone Pascuzzi
Francesco Santoro
Alexandros Sotirios Anifantis
author_sort Volodymyr Bulgakov
title Mathematical Model of the Plane-Parallel Movement of the Self-Propelled Root-Harvesting Machine
title_short Mathematical Model of the Plane-Parallel Movement of the Self-Propelled Root-Harvesting Machine
title_full Mathematical Model of the Plane-Parallel Movement of the Self-Propelled Root-Harvesting Machine
title_fullStr Mathematical Model of the Plane-Parallel Movement of the Self-Propelled Root-Harvesting Machine
title_full_unstemmed Mathematical Model of the Plane-Parallel Movement of the Self-Propelled Root-Harvesting Machine
title_sort mathematical model of the plane-parallel movement of the self-propelled root-harvesting machine
publisher MDPI AG
series Sustainability
issn 2071-1050
publishDate 2018-10-01
description The harvest techniques and the employed machines are important factors in reducing soil loss due to root crop harvesting. Furthermore, the deviation of the working organs of the self-propelled sugar root harvesting machines from the axis of the row also leads to significant losses and damage to sugar beetroots. Therefore, the self-propelled machine units must move in a horizontal plane with a high degree of accuracy. The purpose of this study is to increase the efficiency of the self-propelled harvester by analyzing its plane-parallel motion and evaluating its constructive and kinematic parameters. In order to determine the influence of these parameters on the plane-parallel motion of the self-propelled root harvesting machine, its mathematical model has been calculated. Furthermore, experimental tests were executed in order to evaluate the degree of damage to sugar beetroot crops during their digging, depending on the magnitude of the deviations of the center of the digging tool. The results of this trials highlighted that if the crop row deviates from the conventional axis line by 10 mm, the root crop damage exceeds is 21.7% and at deviations by 70 mm, the damage exceeds 67%. The theoretical study of the trajectory of the center of the outside digging tool and the experimental evaluation of its work (in terms of the quality of harvesting with deviations in its trajectory of motion) formally confirm the coincidence of all the studies—both theoretical and experimental. The use of the model of the plane-parallel movement of the self-propelled root harvesting machine then improves the quality parameters of the technological process.
topic root-harvesting machine
plane-parallel motion
self-propelled machine
driving automaton
url http://www.mdpi.com/2071-1050/10/10/3614
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AT francescosantoro mathematicalmodeloftheplaneparallelmovementoftheselfpropelledrootharvestingmachine
AT alexandrossotiriosanifantis mathematicalmodeloftheplaneparallelmovementoftheselfpropelledrootharvestingmachine
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