Journal of Researches in Mechanics of Agricultural Machinery

Journal of Researches in Mechanics of Agricultural Machinery

Development and field evaluation of a horizontal pneumatic sensor equipped with multiple nozzles for on-the-go soil mechanical strength measurement

Document Type : Research Paper

Authors
1 Agricultural Engineering Research Department, Markazi Agricultural and Natural Resources Research and Education Center, Agricultural Research, Education and Extension Organization (AREEO),Arak, Iran
2 Faculty of Mechanical Engineering, Arak University of technology
3 - Agricultural Engineering Research Institute, Agricultural Research, Education and Extension Organization (AREEO), Karaj, Iran
4 Instructor, Agricultural Engineering Research Department, Markazi Agricultural and Natural Resources Research and Education Center, Agricultural Research, Education and Extension Organization (AREEO),Arak, Iran
Abstract
The compaction of agricultural soils is the main limitation to crop roots, leading to reduced yields for most agronomic crops. Soil compaction alters soil structure and limits water and air infiltration. The vertical penetrometer is commonly used to measure soil resistance, but it is time-consuming, costly, and challenging, which has limited its use in soil compaction mapping in vast fields. One of the methods introduced in the last decades is a continuous and on-the-go system to determine the compacted soil layer. This study aimed to measure the mechanical strength of soil at different soil depths using an on-the-go horizontal pneumatic sensor designed and fabricated. The stress calculations for the tine were performed first, followed by a stress analysis of the proposed tine stem using ANSYS software. Then, three conical nozzles at three depths (15, 30, and 45cm) were installed on the pneumatic sensor tine to inject airflow into the soil, and three pressure gauges measured the resistance to air permeability into the soil. The sensor was tested and compared with the standard vertical penetrometer in three replications. The comparison results specified that the sensor could show different soil compactions at various depths, even where a vertical penetrometer could not penetrate the soil. There was a significant relationship between the mechanical strength of soil and vertical penetration resistance (R2=0.73) at depths of 0-30cm. The air permeability resistance in the soil increased with the soil depth.
Keywords
Subjects

Abbaspour-Gilandeh, Y., Khalilian, A., Reza, A., Alireza, K., & Sadati, S. H. (2005). Energy savings with variable-depth tillage. In Proceedings of the 27th Southern Conservation Tillage Systems Conference, Florence, South Carolina, USA, 27-29 June, 2005 (pp. 84-91). North Carolina Agricultural Research Service, North Carolina State University.
 
Adamchuk, V. I., Morgan, M. T., & Sumali, H. (2001). Application of a strain gauge array to estimate soil mechanical impedance on–the–go. Transactions of the ASAE, 44(6): 1377-1383.
 
Adamchuk, V. I., Skotnikov, A. V., Speichinger, J. D., & Kocher, M. F. (2003). Instrumentation system for variable depth tillage. In 2003 ASAE Annual Meeting (p. 1). American Society of Agricultural and Biological Engineers.
 
Adamchuk, V. I., Hummel, J. W., Morgan, M. T., & Upadhyaya, S. K. (2004). On-the-go soil sensors for precision agriculture. Computers and electronics in agriculture, 44(1): 71-91.
 
Alihamsyah, T., Humphries, E. G., & Bowers, C. G. (1990). A technique for horizontal measurement of soil mechanical impedance. Transactions of the ASAE, 33(1): 73-77.
 
Andrade, P., Rosa, U., Upadhyaya, S., Jenkins, B., Aguera, J., & Josiah, M. (1998). Soil profile force measurements using an instrumented tine. Paper No. 01-1060. In 2001 ASAE Annual Meeting (p. 1). American Society of Agricultural and Biological Engineers.
 
Andrade, P., Upadhyaya, S. K., Jenkins, B. M., & S Filho, A. G. (2002). Evaluation of the UC Davis compaction profile sensor. Paper No. 02-1185. In 2002 ASAE Annual Meeting (p. 1). American Society of Agricultural and Biological Engineers.
 
ASAE Standards, 49th ed., (2002). S313.2. Soil Cone Penetrometer. ASAE, St. Joseph, Michigan.
 
Campbell, D. J., & O'Sullivan, M. F. (1991). The cone penetrometer in relation to trafficability, compaction, and tillage. IN: Soil Analysis: Physical Methods. Marcel Dekker, Inc., New York, NY. 1991. p 399-429, 10 fig, 1 tab, 82 ref.
 
Canarache, A. (1991). Factors and indices regarding excessive compactness of agricultural soils. Soil and Tillage Research, 19(2-3): 145-164.
 
Clement, B. R. (2000). Development of a continuously measuring soil compaction sensor (Doctoral dissertation, The Ohio State University).
 
Chung, S. O., Sudduth, K. A., Plouffe, C., & Kitchen, N. R. (2004). Evaluation of an on-the-go soil strength profile sensor using soil bin and field data. Paper No. 041039. In 2004 ASAE Annual Meeting (p. 1). American Society of Agricultural and Biological Engineers.
 
Chung, S. O., Sudduth, K. A., & Hummel, J. W. (2003). On-the-go soil strength profile sensor using a load cell array. Paper No. 03-1071. In 2003 ASAE Annual Meeting (p. 1). American Society of Agricultural and Biological Engineers.
 
Clement, B. R., & Stombaugh, T. S. (2000). Continuously-measuring soil compaction sensor development. Continuously-measuring soil compaction sensor development., 1-15.
 
Gohari, M., & Hemmat, A. (2007). A tractor-mounted soil cone penetrometer for mapping spatial variability of soil strength. New Finding in Agriculture, 1(3(Spring 2007)): 233-240.
 
Gohari, M., Hemmat, A., & Afzal, A. (2010). Design, construction and evaluation of a variable-depth tillage implement equipped with a GPS. Iranian Journal of Biosystems Engineering, 41(1).
 
Hemmat, A., Ahmadi, I., & Masoumi, A. (2007). Water infiltration and clod size distribution as influenced by ploughshare type, soil water content and ploughing depth. Biosystems engineering, 97(2): 257-266.
 
Hillel, D. (2003). Introduction to environmental soil physics: Fundamentals, applications, and environmental considerations. Elsevier.
 
Horn, R. (2002). Stress strain effects in structured unsaturated soils on coupled mechanical and hydraulic processes. In 17. World congress of soil science, Bangkok (Thailand): 14-21 Aug 2002.
 
Koostra, B. K., & Stombaugh, T. S. (2003). Development and evaluation of a sensor to continuously measure air permeability of soil. In 2003 ASAE Annual Meeting (p. 1). American Society of Agricultural and Biological Engineers.
 
Meselhy, A. A. (2020). Evaluation of locally made horizontal penetrometer to measure soil compaction under Egyptian conditions. Bioscience Research, 17(3): 2331-2357.
 
Mosaddeghi, M. R., Koolen, A. J., Hajabbasi, M. A., Hemmat, A., & Keller, T. (2007). Suitability of pre-compression stress as the real critical stress of unsaturated agricultural soils. Biosystems Engineering, 98(1): 90-101.
 
Owen, G. T., Drummond, H., Cobb, L., & Godwin, R. J. (1987). An instrumentation system for deep tillage research. Transactions of the ASAE, 30(6): 1578-1582.
 
Sakai, K., Upadhyaya, S. K., & Sime, M. (1992). Variability of a double ring infiltration test. Transactions of the ASAE, 35(4): 1221-1226.
 
Sharifi, Malvajerdi, A. S. (2004). Development of a soil compaction profile sensor (Doctoral dissertation, Cranfield University, UK).
 
Sharifi, A., & Mohsenimanesh, A. (2012). Soil mechanical resistance measurement by an unique multi-cone tips horizontal sensor. International Agrophysics, 26(1): 61-64.
 
Streeter, V. L., & Benjamin, W.E. (1962). Fluid Mechanics McGraw-Hill. Inc., New York, NY.
 
Tekeste, M. Z., Grift, T. E., & Raper, R. L. (2002). Acoustic compaction layer detection. Paper No. 02-1089. In 2002 ASAE Annual Meeting (p. 1). American Society of Agricultural and Biological Engineers.
 
Vernekar, S. R. (2015). Design and Development of Smart Soil Monitoring System Based on Embedded Technology (Doctoral dissertation, Goa University).
 
Verschoore, R., Pieters, J. G., Seps, T., Spriet, Y., & Vangeyte, J. (2003). Development of a sensor for continuous soil resistance measurement. Precision Agriculture. Wageningen Academic Publishers, Wageningen, The Netherlands, 689-695.