Vertical Tillage Technology for Primary Soil Preparation
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Keywords

Chisel plow
Tined tillage
Vertical primary tillage

How to Cite

1.
Reynolds Chávez MA, Burela AC, Zapata MC, López JAL, Lezama RZ. Vertical Tillage Technology for Primary Soil Preparation. Glob. J. Agric. Innov. Res. Dev [Internet]. 2022 Mar. 11 [cited 2024 Jul. 3];9:10-9. Available from: https://avantipublisher.com/index.php/gjaird/article/view/1193

Abstract

In the last decade in Mexico and other developing countries, soil preparation is the agricultural activity that represents the highest costs per unit of production, due to factors such as lack of appropriate equipment, excessive tillage, high consumption of fossil fuel, lack of knowledge and training for the adequate soil management, among others.

The purpose of this research was to develop a vertical tillage technology that allows primary soil preparation without investment and reduces fuel consumption and effective operating time, improves labor quality and conserves soil and water resources. For this, a chisel plow prototype was developed based on four vertical tillage parameters: (1. Working depth 2. Number of bodies 3. Spacing between chisels 4. Use of wings or sweepers). These parameters determined the criteria and dimensions of the prototype for its development in design parameters such as spacing, position, angle of attack and depth of work.

The performance evaluation of the prototype was compared with the disc plow; an implement that served as a witness as it was the most widely used technology. The standardized test method was used by the National Center for Standardization of Agricultural Machinery "CENEMA". The results obtained show a prototype plow with five chisels mounted on a double platform frame. The front platform is used for the coupling of three shallow chisels and the rear one, for the coupling of two deep chisels with wings. The implement adjusts for two working depths 0.30 and 0.40 meters and two working widths 1.80 m and 2.40 m respectively. The performance evaluation showed that vertical tillage with the chisel plow prototype in its two treatments showed an average saving of more than 45% in the fuel consumption variable and 53% in the effective working time compared to conventional tillage used with a disc plow. In terms of quality of work, vertical tillage shows high performance in soil disturbance, exceeding up to 65% of the work done by conventional tillage. Finally, it is concluded that the proposed technology should be used as technological innovation and replace the conventional disk plow technology, given its technological, economic and environmental advantages.

https://doi.org/10.15377/2409-9813.2022.09.2
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References

Reynolds CMA. Use of vertical tillage and precision agriculture for energy optimization in primary soil tillage. Thesis, PhD. Engineering in production systems. Antonio Narro Autonomous Agrarian University. Saltillo, Coahuila, México 2014.

IDAE. Savings, energy efficiency and agricultural tillage systems. Institute for Diversification and Energy Saving. Madrid Spain. Corrected Second Edition 2006.

Adewoyin AO, Ajav EA. Fuel consumption of some tractor modelsforplowing operations in the sandy-loam soil of Nigeria at various speeds and plowing depth. Agric Eng Int: CIGR J. 2013; 15(3): 64-74.

FAO. "Manual of Integrated Soil Conservation Management Practices". 2003; (manual text). http://www.fao.org/ag/ags/agse/agse_s/7mo/iita.htm

Agamemnon R. Rotations and tillage in the southern semi-arid region of Buenos Aires. In Labranzas in the Semi-arid Region of Argentina. D. Buschiazzo, J. Panigatti and F. Babinec. Ed. INTA CERLAP- San Luis 1996.

Velázquez JU. Redesign of a prototype for precision tillage. Literature thesis. Agricultural machinery department. UAAAN Buena Vista, Saltillo, Coahuila, Mexico 2011.

University of Nebraska-Lincoln, 2022. information available on line at https://cropwatch.unl.edu/tillage/chisel

Aluko OB, Seig DA. An experimental investigation of the characteristics and conditions of brittle fracture in the two-dimensional section of the soil. Soil Tillage Res. 2000; 57: 143-157. https://doi.org/10.1016/S0167-1987(00)00156-2

Magalhaes PSG, Souza WR. Subsoiler: influence of geometric parameters not forcing mechanism. 2: 1033.XIX Congresso Brasileiro de Engenharia Agrícola, Piracicaba, Sao Paulo, Brazil, July 1990.

Chaudhuri D. Performance evaluation of various types of furrow openers on seed drills. A review. J Agric Eng Res. 2001; 79: 125-137.

Godwin R, O'Dogherty M. 'Integrated soil tillage force prediction models', Journal of Terramechanics 2007; 44(1): 3-14. https://doi.org/10.1016/j.jterra.2006.01.001

Godwin RJ. An Extended Octagonal Ring Transducer for Use in Tillage Studies. J Agric Eng Res. 1974; 20: 347-352. https://doi.org/10.1016/0021-8634(75)90071-2

Spoor G, Godwin RJ. An experimental investigation into the deep loosening of soil by rigid tines. J Agric Eng Res. 1978; 23: 243-258. https://doi.org/10.1016/0021-8634(78)90099-9

Pacheco JL. Energy requirements in vertical tillage based on the principle of critical depth. Thesis, Master. Engineering in production systems. Antonio Narro Autonomous Agrarian University. Saltillo, Coahuila, Mexico 2012.

OECD. Fuel consumption models for Tractor Test Report. University of Nebraska at Lincoln 2016.

Kumar A, Thakur TC. An investigation into comparative test of conventional and winged subsoilers. ASAE paper No. 051061. ASAE Annual International Meeting, Tampa, Florida, USA.

Reynolds CMA, Magaña SGC, Zapata MC, López JAL, Piña NC. Vertical tillage parameters to optimize energy consumption. Agric Eng Int: CIGR J. 2015; 17(4): 130-140.

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Copyright (c) 2022 M.A. Reynolds Chávez, A. Capetillo Burela, M. Cadena Zapata, J.A. López López, R. Zetina Lezama