Multi-Criteria Optimization of a Four-Bar Linkage Vibratory Mechanism for Mechanized Uprooting of Sida (Bala)

Mahantesh Ganigi *

Department of Farm Machinery and Power Engineering, Kelappaji College of Agricultural Engineering and Food Technology, Kerala Agricultural University, Thrissur, Kerala, India.

Sindhu Bhaskar

Department of Farm Machinery and Power Engineering, Kelappaji College of Agricultural Engineering and Food Technology, Kerala Agricultural University, Thrissur, Kerala, India.

V. K. Mohammed Suhail

Department of Farm Machinery and Power Engineering, Kelappaji College of Agricultural Engineering and Food Technology, Kerala Agricultural University, Thrissur, Kerala, India.

Chaithanya Vijayan

Department of Farm Machinery and Power Engineering, Kelappaji College of Agricultural Engineering and Food Technology, Kerala Agricultural University, Thrissur, Kerala, India.

V. S. Roshni

Department of Farm Machinery and Power Engineering, Kelappaji College of Agricultural Engineering and Food Technology, Kerala Agricultural University, Thrissur, Kerala, India.

*Author to whom correspondence should be addressed.


Abstract

Harvesting of Sida (Bala), a medicinal crop with a deep taproot system, is mainly performed manually. This method requires considerable labour, results in low field efficiency, and often leads to root damage, particularly in compact or hard soils. To overcome these challenges, the present work examines the design and optimisation of a four-bar linkage-based vibratory mechanism for a mechanised Sida uprooter, with the objective of minimising soil resistance and improving uprooting efficiency. Dimensional synthesis of the four-bar mechanism was carried out using MATLAB, which produced 1,056 possible link combinations. Each combination was examined with respect to Grashof’s condition, coupler-point trajectory characteristics, and its capability to generate controlled oscillatory motion suitable for soil-tool interaction. The optimal linkage configuration consisted of a 33.0 cm fixed link, a 1.5 cm crank (centre-to-centre), a 41.0 cm coupler, and a 36.0 cm rocker. This linkage generated stable vibratory motion for effective soil loosening around the root zone. The optimised design was developed in SOLIDWORKS and examined through finite element analysis in ANSYS. The analysis indicated a maximum equivalent stress of 154.42 MPa, a maximum deformation of 0.605 mm, and a factor of safety of 2.97, indicating that the mechanism can safely withstand the expected field loads. Overall, the developed mechanism can serve as an energy-efficient solution for the mechanised harvesting of deep-rooted medicinal crops such as Sida.

Keywords: Finite element analysis, four-bar linkage mechanism, kinematic synthesis, sida uprooter, vibration amplitude, vibratory soil-engaging tools


How to Cite

Ganigi, Mahantesh, Sindhu Bhaskar, V. K. Mohammed Suhail, Chaithanya Vijayan, and V. S. Roshni. 2026. “Multi-Criteria Optimization of a Four-Bar Linkage Vibratory Mechanism for Mechanized Uprooting of Sida (Bala)”. Journal of Scientific Research and Reports 32 (10):499-514. https://doi.org/10.9734/jsrr/2026/v32i104566.

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