In Bangladesh, the use of machinery in agriculture production is fast rising. Researchers are developing technology to replace traditional hand weeding to manage weeds in rice fields. The present study has been taken to increase weeding efficiency and reduce the drudgery in weeding and mulching. A line-to-line distance of 20 cm, the operation is push-pull, and field operating condition at 2 - 4 cm standing water (for softening the field) was the designed hypothesis. The weeder consists of a skid/float, float holder, float adjuster, main body frame, rotor, axel, bush, rotor holder, rotor holder adjuster, handle, handle griper, handle holder, handle height adjuster, nut, bolt, etc. The designed weeder was fabricated using MS sheet, MS pipe, MS flat bar, MS nut-bolt, etc. When the rotors perform back and forth, the weeder’s two conical rotors with six plain blades and six serrated blades work together to uproot and bury the weeds. It also contains a 2 mm thick float assembly with a precise angle of 22 degrees. Weeds are uprooted by the weeder’s blades and buried in the muddy soil. It causes topsoil disturbance and enhances aeration. The weeding efficiency and capacity of the conical weeder were 81.92% and 0.0203 ha/h respectively. With a push-pull operation, the weeder can uproot and bury the weeds in a single row at a time. The pushing force and weight of weeder were 43.42 N and 5.6 kg respectively. Farmers can use this weeder to increase their comfort and reduce the drudgery associated with weeding and mulching in their fields.
References
[1]
Hossen, M., et al. (2011) Design and Development of a Weeder for both Lowland and Upland Conditions. AMA-Agricultural Mechanization in Asia Africa and Latin America, 42, 56-62.
[2]
Chinnusamy, C., et al. (2000) Critical Period of Crop Weed Competition in Lowland Rice Ecosystems. Proceedings of State Level Seminar on Integrated Weed Management in New Millennium, Ratnagiri, Maharastra, 27-28 February 2000.
[3]
Moorthy, B. and Saha, S. (2005) Studies on Crop-Weed Competition in Rainfed Direct-Seeded Lowland Rice (Oryza sativa). Indian Journal of Weed Science, 37, 267-268.
[4]
Singh, R., et al. (2002) Efficacy of Methods of Planting and Weed Control Measures on Nutrient Removal by Rice (Oryza sativa L.) and Associated Weeds. Crop Research-Hisar, 24, 425-429.
[5]
Hasanuzzaman, M., et al. (2009) Evaluation of Pre-Emergence Herbicide and Hand Weeding on the Weed Control Efficiency and Performance of Transplanted Aus Rice. American-Eurasian Journal of Agronomy, 2, 138-143.
[6]
Dingre, S., Shahi, N.C. and Singh, S.K. (2005) Design and Development of Manually Operated Cono-Weeder. Progressive Agriculture, 5, 141-143.
[7]
Uphoff, N. (2002) System of Rice Intensification (SRI) for Enhancing the Productivity of Land, Labour and Water. Journal of Agriculture Resource Management, 1, 43-49.
[8]
Sirmour, A. and Verma, A. (2018) Design and Development of Single Row Power Weeder for Rice. Journal of Crop and Weed, 14, 163-169. https://doi.org/10.20546/ijcmas.2018.701.083
[9]
Babu, P.K. and Rao, S.G. (2017) Manually Operated Dry Land Weeder: A Study. International Journal for Modern Trends in Science and Technology, 3, 27-33.
[10]
Pattanayak, S., et al. (2022) Weed Management and Crop Establishment Methods in Rice (Oryza sativa L.) Influence the Soil Microbial and Enzymatic Activity in Sub-Tropical Environment. Plants, 11, Article No. 1071. https://doi.org/10.3390/plants11081071
[11]
Mirza, H., Kamrun, N. and Karim, M.R. (2007) Effectiveness of Different Weed Control Methods on the Performance of Transplanted Rice. Pakistan Journal of Weed Science Research, 13, 17-25.
[12]
Randriamiharisoa, R., Barison, J. and Uphoff, N. (2006) Soil Biological Contributions to the System of Rice Intensification. Biological Approaches to Sustainable Soil Systems, 113, 409-424. https://doi.org/10.1201/9781420017113.ch28
[13]
Islam, S., et al. (2009) Mechanized Rice Cultivation in Bangladesh: Past Experiences and Future Potentials. AMA, Agricultural Mechanization in Asia, Africa & Latin America, 40, 36-40.
[14]
Shakya, H., et al. (2016) Development and Performance Evaluation of Manually Operated Cono-Weeder for Paddy Crop. International Refereed Journal of Engineering and Science, 5, 6-17.
[15]
Hunt, D. (1995) Farm Power and Machinery Management, Cost Determination. Iowa State University Press, Ames.
[16]
Nath, B.C., et al. (2022) Combine Harvester: Small Machine Solves Big Rice Harvesting Problem of Bangladesh. Agricultural Sciences, 13, 201-220. https://doi.org/10.4236/as.2022.132015
[17]
Nath, B.C. and Nam, Y.-S. (2014) Improvement of Paddy Harvesting Mechanization System for Bangladesh. In: KOICA, Harvesting Mechanization of Bangladesh, Korea International Cooperation Agency, Seongnam, 48. https://www.researchgate.net/publication/358694323_Combine_Harvester_Small_Machine_Solves_Big_Rice_Harvesting_Problem_of_Bangladesh_Open_Access
[18]
Huda, M.D., Nath, B.C., Paul, S., Bhuiyan, M.G.K., Islam, S. and Islam, M.M. (2019) Design and Development of a Head Feed Mini Combine Harvester Suitable in Bangladesh Condition. Journal of Agricultural Engineering, 42, 73-92. https://www.researchgate.net/publication/339445348
[19]
Paul, S., et al. (2021) Design and Development of a Prilled Urea Applicator. Agricultural Sciences, 12, 530-548. https://doi.org/10.4236/as.2021.125034