with the collaboration of Iranian Society of Mechanical Engineers (ISME)

System Dynamics Modelling of Long-term Effects of Agricultural Mechanisation on Wheat Cultivated Area and Yield

Document Type : Research Article- En

Authors

1 Department of Agricultural Machinery and Mechanization, Faculty of Agricultural Engineering and Rural Development, Agricultural Sciences and Natural Resources University of Khuzestan, Mollasani, Iran

2 Department of Agricultural Economics, Faculty of Agricultural Engineering and Rural Development, Agricultural Sciences and Natural Resources University of Khuzestan, Mollasani, Iran

3 Department of Intelligent Systems Engineering, Faculty of Industrial Engineering, Iran University of Science and Technology, Tehran, Iran

Abstract
Amid escalating pressures on global food systems, driven by resource constraints, climatic variability, and rural labour shortages, agricultural mechanisation has become a strategic lever for enhancing productivity and sustainability. This study develops and applies a system dynamics model to examine the long-term effects of mechanisation on wheat cultivated area and yield in fragmented farming systems. The research begins by constructing a causal loop diagram (CLD) to conceptualise the key feedback structures governing mechanisation dynamics. Building on this framework, a stock-and-flow simulation model is formulated and empirically validated using provincial-level data from Khuzestan, Iran (2011-2022). Validation results demonstrate strong alignment between simulated and observed trends across major indicators, including power availability, mechanisation level, cultivated area, and yield. The model is subsequently used to simulate alternative policy scenarios targeting machinery fleet modernisation, water availability, and precipitation variability. In Scenario 3, a 30% increase in the machinery replacement rate leads to a 7% rise in yield and a 1% expansion in the cultivated area, relative to baseline projections. When mechanisation improvements coincide with enhanced water availability, the marginal impact of mechanisation on land expansion becomes negligible (less than 1% increase), indicating a behavioural shift among farmers toward higher-value crops under favourable hydrological conditions. In contrast, under water-scarce scenarios, wheat area expands by approximately 1-1.5%, while yield improvements remain below 3%, reflecting both the crop’s adaptability and the compensating efficiency gains enabled by mechanisation. These findings underscore the importance of accounting for water–mechanisation interactions in policy design, particularly in arid and semi-arid regions. The model offers a flexible and empirically grounded decision-support tool for policymakers seeking to improve climate resilience, optimise resource use, and foster sustainable intensification in agricultural ecosystems facing structural and environmental challenges.

Keywords

Subjects

Authors retain the copyright. This is an open access article distributed under Creative Commons Attribution 4.0 International License (CC BY 4.0)

  1. Ahmed, H., & Ahmed, M. (2023). Influencing factors on adoption of modern agricultural technology in developing economy countries. Developing Country Studies, 13(2), 1-15. https://doi.org/10.7176/DCS/13-2-01
  2. Allen, R. G., Pereira, L. S., Raes, D., & Smith, M. (1998). Crop evapotranspiration: Guidelines for computing crop water requirements (FAO Irrigation and Drainage Paper No. 56). Rome, Italy: Food and Agriculture Organization of the United Nations. Retrieved from https://www.fao.org/4/x0490e/x0490e00.htm
  3. Amoozad-Khalili, M., Rostamian, R., Esmaeilpour-Troujeni, M., & Kosari-Moghaddam, A. (2020). Economic modeling of mechanized and semi-mechanized rainfed wheat production systems using multiple linear regression model. Information Processing in Agriculture, 7(1), 30-40. https://doi.org/10.1016/j.inpa.2019.06.002
  4. Araújo, R. G., Chavez-Santoscoy, R. A., Parra-Saldívar, R., Melchor-Martínez, E. M., & Iqbal, H. M. N. (2023). Agro-food systems and environment: Sustaining the unsustainable. Current Opinion in Environmental Science & Health, 31, 100413. https://doi.org/10.1016/j.coesh.2022.100413
  5. Aryal, J. P., Rahut, D. B., Thapa, G., & Simtowe, F. (2021). Mechanisation of small-scale farms in South Asia: Empirical evidence derived from farm households survey. Technology in Society, 65, 101591. https://doi.org/10.1016/j.techsoc.2021.101591
  6. Belton, B., Win, M. T., Zhang, X., & Filipski, M. (2021). The rapid rise of agricultural mechanization in Myanmar. Food Policy, 101, 102095. https://doi.org/10.1016/j.foodpol.2021.102095
  7. Biggs, S., & Justice, S. (2015). Rural and agricultural mechanization: A history of the spread of small engines in selected Asian countries (IFPRI Discussion Paper No. 01443). Washington, DC: International Food Policy Research Institute. Retrieved from https://ideas.repec.org/p/fpr/ifprid/1443.html
  8. Bissadu, K. D., Sonko, S., & Hossain, G. (2024). Society 5.0 enabled agriculture: Drivers, enabling technologies, architectures, opportunities, and challenges. Information Processing in Agriculture. https://doi.org/10.1016/j.inpa.2024.04.003
  9. Chaudhary, A. K., Pandit, R., & Burton, M. (2022). Farmyard manure use and adoption of agricultural mechanization among smallholders in the Mahottari District, Nepal. World Development Perspectives, 25, 100394. https://doi.org/10.1016/j.wdp.2022.100394
  10. Chisadza, B., Gwate, O., Musinguzi, S. P., Mpofu, N., Macherera, M., & Dube, T. (2025). Resilient agriculture in semi-arid Zimbabwe: adaptation strategies and influencers among smallholder farmers. Discover Agriculture, 3(1), 76. https://doi.org/10.1007/s44279-025-00234-3
  11. Conforti, P. (2001). The common agricultural policy in main partial equilibrium models (Working Paper). Rome, Italy: Food and Agriculture Organization of the United Nations. Retrieved from https://ideas.repec.org/p/ags/ineawp/14806.html
  12. Daum, T. (2023). Mechanization and sustainable agri-food system transformation in the Global South. A review. Agronomy for Sustainable Development, 43(1), 16. https://doi.org/10.1007/s13593-023-00868-x
  13. Daum, T., Adegbola, Y. P., Kamau, G., Kergna, A. O., Daudu, C., Zossou, R. C., …, & Ndirpaya, Y. (2020). Perceived effects of farm tractors in four African countries, highlighted by participatory impact diagrams. Agronomy for Sustainable Development, 40, 1-19. https://doi.org/10.1007/s13593-020-00651-2
  14. Daum, T., & Birner, R. (2020). Agricultural mechanization in Africa: Myths, realities and an emerging research agenda. Global Food Security, 26, 100393. https://doi.org/10.1016/j.gfs.2020.100393
  15. Dedewanou, F. A., & Kpekou Tossou, R. C. B. (2022). Remittances and agricultural productivity in Burkina Faso. Applied Economic Perspectives and Policy, 44(3), 1573-1590. https://doi.org/10.1002/aepp.13188
  16. Diao, X., Silver, J., & Takeshima, H. (2016). Agricultural mechanization and agricultural transformation (IFPRI Discussion Paper No. 01527). Washington, DC: International Food Policy Research Institute.
  17. Emami, M., Almassi, M., Bakhoda, H., & Kalantari, I. (2018). Agricultural mechanization, a key to food security in developing countries: strategy formulating for Iran. Agriculture & Food Security, 7, 1-12. https://doi.org/10.1186/s40066-018-0176-2
  18. Fang, D., Chen, J., Wang, S., & Chen, B. (2024). Can agricultural mechanization enhance the climate resilience of food production? Evidence from China. Applied Energy, 373, 123928. https://doi.org/10.1016/j.apenergy.2024.123928
  19. Hamilton, S. F., Richards, T. J., Shafran, A. P., & Vasilaky, K. N. (2022). Farm labor productivity and the impact of mechanization. American Journal of Agricultural Economics, 104(4), 1435-1459. https://doi.org/10.1111/ajae.12273
  20. Hoekstra, A. Y., Chapagain, A., Martinez-Aldaya, M., & Mekonnen, M. (2009). Water footprint manual: State of the art 2009. Enschede, The Netherlands: Water Footprint Network. Retrieved from https://ris.utwente.nl
  21. Hormozi, M. A., Asoodar, M. A., & Abdeshahi, A. (2012). Impact of mechanization on technical efficiency: A case study of rice farmers in Iran. Procedia Economics and Finance, 1, 176-185. https://doi.org/10.1016/S2212-5671(12)00021-4
  22. Huo, Y., Ye, S., Wu, Z., Zhang, F., & Mi, G. (2022). Barriers to the development of agricultural mechanization in the North and Northeast China plains: A farmer survey. Agriculture, 12(2), 287. https://doi.org/10.3390/agriculture12020287
  23. Isaak, M., Yahya, A., Razif, M., & Mat, N. (2020). Mechanization status based on machinery utilization and workers’ workload in sweet corn cultivation in Malaysia. Computers and Electronics in Agriculture, 169, 105208. https://doi.org/10.1016/j.compag.2019.105208
  24. Jalalzadeh, B., Borghei, A. M., & Almassi, M. (2016). Modeling the effect of mechanization level index on crop yield approaching system dynamics methodology. Journal of Experimental Biology and Agricultural Sciences, 4(2), 169-179. https://doi.org/10.18006/2016.4(2).169.179
  25. Keshvari, A., & Marzban, A. (2018). Assessment of Interpolation Methods in Zoning the Spatial Need into Power in Agriculture (Case study: Khuzestan Province). Geography and Development, 17(55), 63-86. https://doi.org/10.22111/gdij.2019.4596
  26. Keshvari, A., & Marzban, A. (2019). Prioritizing the power arrival in Khuzestan province agriculture using FAHP and FTOPSIS. Journal of Agricultural Machinery, 9(1), 235-251. https://doi.org/10.22067/jam.v9i1.69258
  27. Khatri, P., Kumar, P., Shakya, K. S., Kirlas, M. C., & Tiwari, K. K. (2024). Understanding the intertwined nature of rising multiple risks in modern agriculture and food system. Environment, Development and Sustainability, 26(9), 24107-24150. https://doi.org/10.1007/s10668-023-03638-7
  28. Kienzle, J., Ashburner, J. E., & Sims, B. G. (2013). Mechanization for rural development: A review of patterns and progress from around the world (Integrated Crop Management Vol. 20). Rome, Italy: Food and Agriculture Organization of the United Nations. Retrieved from https://openknowledge.fao.org/handle/20.500.14283/i3259e
  29. Yasir, H., Tahir, H., & Awan, A. G. (2025). Full mechanization: a path to increased farm income, food security, and environmental quality in developing countries. Environment, Development and Sustainability. https://doi.org/10.1007/s10668-024-05720-0
  30. Liu, X., & Li, X. (2023). The influence of agricultural production mechanization on grain production capacity and efficiency. Processes, 11(2), 487. https://doi.org/10.3390/pr11020487
  31. Lu, F., Meng, J., & Cheng, B. (2024). How does improving agricultural mechanization affect the green development of agriculture? Evidence from China. Journal of Cleaner Production, 472, 143298. https://doi.org/10.1016/j.jclepro.2024.143298
  32. Min, S. H. I., & Paudel, K. P. (2021). Mechanization and efficiency in rice production in China. Journal of Integrative Agriculture, 20(7), 1996-2008. https://doi.org/10.1016/S2095-3119(20)63439-6
  33. Ministry of Agriculture Jihad. (2011–2022). Statistical yearbooks of agricultural machinery and wheat production [Annual provincial statistical reports]. Tehran, Iran: Agricultural Research, Education and Extension Organization (AREEO).
  34. Mitiku Degu, Y., DK Nageswara, R., Moges Ketsela, G., & Workneh Fanta, S. (2025). Estimation of Mechanization Index and Farm Power Density: Case Study of Smallholder Farmers in Bure District, Ethiopia. Journal of Agricultural Machinery. https://doi.org/10.22067/jam.2025.92764.1373
  35. Mohammed, K., Batung, E., Saaka, S. A., Kansanga, M. M., & Luginaah, I. (2023). Determinants of mechanized technology adoption in smallholder agriculture: Implications for agricultural policy. Land Use Policy, 129, 106666. https://doi.org/10.1016/j.landusepol.2023.106666
  36. National Bank for Agriculture and Rural Development (NABARD). (2018). Sectoral paper on farm mechanization. Mumbai, India: Farm Sector Policy Department, NABARD. Retrieved from https://aspirecircle.org/wp-content/uploads/2022/01/NSP-Farm-Mechanisation-AGRI.pdf
  37. Paudel, G. P., Kc, D. B., Khanal, N. P., Justice, S. E., & McDonald, A. J. (2019). Smallholder farmers’ willingness to pay for scale-appropriate farm mechanization: Evidence from the mid-hills of Nepal. Technology in Society, 59, 101196. https://doi.org/10.1016/j.techsoc.2019.101196
  38. Peng, J., Zhao, Z., & Liu, D. (2022). Impact of agricultural mechanization on agricultural production, income, and mechanism: evidence from Hubei province, China. Frontiers in Environmental Science, 10, 838686. https://doi.org/10.3389/fenvs.2022.838686
  39. Qiao, F. (2017). Increasing wage, mechanization, and agriculture production in China. China Economic Review, 46, 249-260. https://doi.org/10.1016/j.chieco.2017.10.002
  40. Rabet, G. R., Bahrami, H., & Sheikhdavoodi, M. J. (2014). Study of Primary Tillage Timeliness Cost for Irrigated Wheat in Fars Province Using System Dynamics. Journal of Agricultural Machinery, 3(2), 163-172.. https://doi.org/10.22067/jam.v3i2.25174
  41. Rahman, M. M., Ali, M. R., Oliver, M. M. H., Hanif, M. A., Uddin, M. Z., Saha, K. K., …, & Moniruzzaman, M. (2021). Farm mechanization in Bangladesh: A review of the status, roles, policy, and potentials. Journal of Agriculture and Food Research, 6, 100225. https://doi.org/10.1016/j.jafr.2021.100225
  42. Rath, I., Pradhan, P. L., Dash, R. C., Mahapatra, M., Sahoo, P. K., Behera, A., & Verma, K. (2024). Assessment of Mechanization Indices: Insights from Rice-Growing Region of the Southern Asia–Pacific Region. Journal of The Institution of Engineers (India): Series A, 105(3), 719-732. https://doi.org/10.1007/s40030-024-00815-3
  43. Ravikishore, M., Supriya, P., & Subbaiah, S. K. R. (2022). Farm mechanisation: Policies, challenges and strategies. The Agriculture Magazine, 2(1), 118-126. Retrieved from https://www.researchgate.net/publication/366356313_Farm_Mechanisation_Policies_Challenges_and_Strategies
  44. Sanaullah, Basit, A., & Ullah, I. (2021). Challenges and prospects of farm mechanization in Pakistan: A case study of rural farmers in District Peshawar Khyber Pakhtunkhwa. Sarhad Journal of Agriculture, 37(1), 167-179. https://doi.org/10.17582/journal.sja/2021/37.1.167.179
  45. Sarkar, A. (2020). Agricultural mechanization in India: A study on the ownership and investment in farm machinery by cultivator households across agro-ecological regions. Millennial Asia, 11(2), 160-186. https://doi.org/10.1177/0976399620925440
  46. Sibhatu, K. T., & Qaim, M. (2017). Rural food security, subsistence agriculture, and seasonality. PloS One, 12(10), e0186406. https://doi.org/10.1371/journal.pone.0186406
  47. Smith, P., Calvin, K., Nkem, J., Campbell, D., Cherubini, F., Grassi, G., …, & McElwee, P. (2020). Which practices co‐deliver food security, climate change mitigation and adaptation, and combat land degradation and desertification? Global Change Biology, 26(3), 1532-1575. https://doi.org/10.1111/gcb.14878
  48. Statistical Center of Iran. (2011–2022). Agricultural statistics yearbook: National agricultural production statistics (2011–2022). Tehran, Iran: Statistical Center of Iran. Retrieved from https://www.amar.org.ir
  49. Sterman, J. D. (2000). Business dynamics: Systems thinking and modeling for a complex world. Boston, MA: Irwin/McGraw-Hill.
  50. Sun, M., Wan, Y., Wang, S., Liang, J., Hu, H., & Cheng, L. (2024). Analysis of the Impact of Agricultural Mechanization on the Economic Efficiency of Maize Production. Sustainability, 16(13), 5522. https://doi.org/10.3390/su16135522
  51. Sun, P., Liu, R., Yao, R., Shen, H., & Bian, Y. (2023). Responses of agricultural drought to meteorological drought under different climatic zones and vegetation types. Journal of Hydrology, 619, 129305. https://doi.org/10.1016/j.jhydrol.2023.129305
  52. Taheri, N., Jahani, H., & Pishvaee, M. S. (2024). Modeling sustainable bioethanol supply chain in Australia: A system dynamics approach. Renewable Energy, 227, 120481. https://doi.org/10.1016/j.renene.2024.120481
  53. Takeshima, H., Edeh, H. O., Lawal, A. O., & Isiaka, M. A. (2015). Characteristics of Private‐Sector Tractor Service Provisions: Insights from N igeria. The Developing Economies, 53(3), 188-217. https://doi.org/10.1111/deve.12077
  54. Turner, B. L., Menendez, H. M., Gates, R., Tedeschi, L. O., & Atzori, A. S. (2016). System Dynamics Modeling for Agricultural and Natural Resource Management Issues: Review of Some Past Cases and Forecasting Future Roles. Resources. https://doi.org/10.3390/resources5040040
  55. Van den Berg, M. M., Hengsdijk, H., Wolf, J., Van Ittersum, M. K., Guanghuo, W., & Roetter, R. P. (2007). The impact of increasing farm size and mechanization on rural income and rice production in Zhejiang province, China. Agricultural Systems, 94(3), 841-850. https://doi.org/10.1016/j.agsy.2006.11.010
  56. Wang, T., Liu, H., & Wang, Z. (2025). Decomposing the Impact of Agricultural Mechanization on Agricultural Output Growth: A Case Study Based on China’s Winter Wheat. Sustainability, 17(5), 1777. https://doi.org/10.3390/su17051777
  57. Wang, X., Dong, Z., & Sušnik, J. (2023). System dynamics modelling to simulate regional water-energy-food nexus combined with the society-economy-environment system in Hunan Province, China. Science of The Total Environment, 863, 160993. https://doi.org/10.1016/j.scitotenv.2022.160993
  58. Winarno, K., Sustiyo, J., Aziz, A. A., & Permani, R. (2025). Unlocking agricultural mechanisation potential in Indonesia: Barriers, drivers, and pathways for sustainable agri-food systems. Agricultural Systems, 226, 104305. https://doi.org/10.1016/j.agsy.2025.104305
  59. Wittwer, R. A., Bender, S. F., Hartman, K., Hydbom, S., Lima, R. A. A., Loaiza, V., …, & Petchey, O. (2021). Organic and conservation agriculture promote ecosystem multifunctionality. Science Advances, 7(34), eabg6995. https://doi.org/10.1126/sciadv.abg6995
  60. Wu, Z., Dang, J., Pang, Y., & Xu, W. (2021). Threshold effect or spatial spillover? The impact of agricultural mechanization on grain production. Journal of Applied Economics, 24(1), 478-503. https://doi.org/10.1080/15140326.2021.1968218
  61. Yamin, M., Tahir, A., Awan, A., & Yaseen, M. (2011). Studying the impact of farm mechanization on wheat production in Punjab-Pakistan. Soil & Environment, 30(2), 151-154. Retrieved from https://www.cabidigitallibrary.org/doi/pdf/10.5555/20113380591
  62. Yan, F., Sun, X., Chen, S., & Dai, G. (2024). Does agricultural mechanization improve agricultural environmental efficiency? Frontiers in Environmental Science, 11, 1344903. https://doi.org/10.1007/s11356-022-19642-9
  63. Yang, J., Huang, Z., Zhang, X., & Reardon, T. (2013). The rapid rise of cross-regional agricultural mechanization services in China. American Journal of Agricultural Economics, 95(5), 1245-1251. https://doi.org/10.1093/ajae/aat027
  64. Yasar, H., Raza, M. H., Faisal, M., Nadeem, N., Khan, N., Kassem, H. S., …, & Mahmood, S. (2024). Does farm mechanization improve farm performance and ensure food availability at household level? Empirical evidence from Pakistan. Frontiers in Sustainable Food Systems, 8, 1453221. https://doi.org/10.3389/fsufs.2024.1453221
  65. Zhou, C., Li, X., Lin, X., & Cheng, M. (2022). Influencing factors of the high-quality economic development in China based on LASSO model. Energy Reports, 8, 1055-1065. https://doi.org/10.1016/j.egyr.2022.10.167
  66. Zhou, X., & Ma, W. (2022). Agricultural mechanization and land productivity in China. International Journal of Sustainable Development & World Ecology, 29(6), 530-542. https://doi.org/10.1080/13504509.2022.2051638
  67. Zhu, Y., Zhang, Y., & Piao, H. (2022). Does agricultural mechanization improve agricultural environment efficiency? Evidence from China’s planting industry. Environmental Science and Pollution Research, 29(35), 53673–53690. https://doi.org/10.1007/s11356-022-19642-9
  68. Zou, B., Chen, Y., Mishra, A. K., & Hirsch, S. (2024). Agricultural mechanization and the performance of the local Chinese economy. Food Policy, 125, 102648. https://doi.org/10.1016/j.foodpol.2024.102648
Send comment about this article
Enter Name.
Enter a valid email address.
Enter a vaid affiliation.
Enter comments (At leaset 10 words)
CAPTCHA Image
Enter Security Code Correctly.

Articles in Press, Accepted Manuscript
Available Online from 11 November 2025

  • Receive Date 19 September 2025
  • Revise Date 11 October 2025
  • Accept Date 15 October 2025
  • First Publish Date 11 November 2025