Influence of Plant Morphology on Microclimate Dynamics and Resource Optimization in Multitier Agroforestry Systems

Authors

  • Preeti Khanna Department of Environmental Science and Engineering, IIT(ISM) Dhanbad, Dhanbad, Jharkhand -826004 , Forest Research Institute (Deemed to be) University, Dehradun, Uttarakhand
  • Pradip Kumar Sarkar ICAR - Research Complex for Eastern Region, Farming System Research Centre for Hill and Plateau Region, Ranchi - 834010, Jharkhand , ICAR Research Complex for NEH Region, Tripura Centre, Lembucherra, West Tripura- 799210
  • Mahesh Kumar Dhakar ICAR - Research Complex for Eastern Region, Farming System Research Centre for Hill and Plateau Region, Ranchi - 834010, Jharkhand
  • Reshma Shinde ICAR - Research Complex for Eastern Region, Farming System Research Centre for Hill and Plateau Region, Ranchi - 834010, Jharkhand
  • Sushanta Kumar Naik ICAR - Research Complex for Eastern Region, Farming System Research Centre for Hill and Plateau Region, Ranchi - 834010, Jharkhand
  • Bikash Das ICAR National Research Centre on Litchi, Muzaffarpur, Bihar
  • Victor Thingujam ICAR - Research Complex for Eastern Region, Farming System Research Centre for Hill and Plateau Region, Ranchi - 834010, Jharkhand
  • Sujit Das ICAR Research Complex for NEH Region, Tripura Centre, Lembucherra, West Tripura- 799210
  • Rubai Podder ICAR Research Complex for NEH Region, Tripura Centre, Lembucherra, West Tripura- 799210

DOI:

https://doi.org/10.48165/ija.2026.28.01.04

Keywords:

Agroforestry, Tree morphology, Microclimate modification, PAR, Canopy spread, Relative humidity, Teak, Karanj, Multitier system

Abstract

Agroforestry systems offer a sustainable approach to enhance microclimate regulation, yet the role of plant morphology in this process remains inadequately explored. The present study aimed to assess the influence of tree morphology on microclimatic modifications under a multitier agroforestry system (AFS) comprising Teak (Tectona grandis) and Karanj (Pongamia pinnata) with intercrops like Pigeon pea and Chickpea. Significant variations were observed in tree height, canopy spread, and basal girth across different treatments, which directly influenced microclimatic parameters such as Photosynthetically Active Radiation (PAR), temperature, and relative humidity (RH). A positive correlation was recorded between tree height and PAR, similarly between canopy spread and PAR. Maximum RH improvement (10.90%) was observed under Karanj in the Teak+Karanj system, highlighting the role of canopy structure in moisture retention. However, there were significant decreases (maximum by 9.68%) in air temperature under multitier AFS over control. The findings emphasize that appropriate tree selection and spatial arrangement can optimize light availability, air temperature moderation, and humidity regulation, thereby improving the overall microclimatic conditions. It is recommended to promote agroforestry models with species exhibiting suitable morphological traits to maximize ecological and production benefits, particularly in regions prone to climatic stress.

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References

Anderson, L. S., & Sinclair, F. L. (1993). Ecological interactions in agroforestry systems. Forestry Abstracts, 54, 489–523; Agroforestry Abstracts, 6(2), 57–91.

Bene, C., & Obirih-Opareh, N. (2009). Social and economic impacts of agricultural productivity intensification: The case of brush park fisheries in Lake Volta. Agricultural Systems, 102(1–3), 1–10.

Boardman, N. T. (1977). Comparative photosynthesis of sun and shade plants. Annual Review of Plant Physiology, 28(1), 355–377.

Brandle, J. R., Hodges, L., & Zhou, X. H. (2004). Windbreaks in North American agricultural systems. In New vistas in agroforestry (pp. 65–78). Springer.

Brookfield, H., & Padoch, C. (1994). Appreciating agrodiversity: A look at the dynamism and diversity of Indigenous farming practices. Environment, 36, 8–11.

Brunig, E. F., & Sander, N. (1983). Ecosystem structure and functioning: Some interactions of relevance to agroforestry. In P. A. Huxley (Ed.), Plant research and agroforestry (pp. 221–247). ICRAF.

Buchman, N. (2008). Agroforestry for carbon sequestration to improve small farmers’ livelihoods. Building and Environment, 45(1), 213–221.

Chundawat, B. S., & Gautam, S. K. (1993). Tree/crop interface. In A textbook of agroforestry.

Davis, J. E., & Norman, J. M. (1988). Effects of shelter on plant water use. Agriculture, Ecosystems & Environment, 22, 393–402.

Fahmy, M., Sharples, S., & Yahiya, M. (2010). LAI-based trees selection for mid-latitude urban developments: A microclimatic study in Cairo, Egypt. Building and Environment, 45(2), 345–357. https://doi.org/10.1016/j.buildenv.2009.06.014

Garrity, D. P. (2004). Agroforestry and the achievement of the Millennium Development Goals. Agroforestry Systems, 61, 5–17.

Hansen, J. W. (2002). Realizing the potential benefits of climate prediction to agriculture: Issues, approaches, challenges. Agricultural Systems, 74(3), 309–330.

Huxley, P. A. (1983). The role of trees in agroforestry. Plant Research and Improvement, 12, 339–363.

Intergovernmental Panel on Climate Change. (2007). Climate change 2007: The physical science basis. Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press.

Lin, B. B. (2007). Agroforestry management as an adaptive strategy against potential microclimate extremes in coffee agriculture. Agricultural and Forest Meteorology, 144(1–2), 85–94.

Lin, T. P., Matzarakis, A., & Hwang, R. L. (2010). Shading effect on long-term outdoor thermal comfort. Building and Environment, 45(1), 213–221. https://doi.org/10.1016/j.buildenv.2009.06.002

Lotufo Bueno-Bartholomei, C., & Labaki, L. C. (2003). How much does the change of species of tree affect their solar radiation attenuation. http://meteo.geo.uni.lodz.pl/icuc5/text/O_1_4.pdf

Maghembe, J. A., & Redhead, J. F. (1982). Agroforestry preliminary results of intercropping. Journal of Sustainable Forestry, 1–13.

Monteith, J. L., Ong, C. K., & Corlett, J. E. (1991). Microclimate interactions in agroforestry. Forest Ecology and Management, 45, 31–44.

Nair, P. K. R. (2011). Agroforestry systems and environmental quality: Introduction. Journal of Environmental Quality, 40(3), 784–790.

Nair, P. K. R., Nair, V. D., Kumar, B. M., & Showalter, J. M. (2010). Carbon sequestration in agroforestry systems. Advances in Agronomy, 108, 237–307.

Simmonds, N. W. (1984). Plant research and agroforestry. Experimental Agriculture, 20(4), 346.

Singh, R., Dev, I., Tewari, R. K., Rizvi, R. H., Garg, K. K., Singh, A. K., Dwivedi, R. P., Sridhar, K. B., Singh, M., Kumar, D., Sarkar, P. K., & Chaturvedi, O. P. (2019). Improved livelihood and ecosystem services through agroforestry-based watershed interventions in Bundelkhand region of Central India. In R. Dev, A. Kumar, N. Singh, R. Kumar, D. Kumar, A. R. Uthappa, A. K. Handa, & O. P. Chaturvedi (Eds.), Agroforestry for climate resilience and rural livelihood (pp. 241–250). Scientific Publishers.

Steffan-Dewenter, I., Kessler, M., Barkmann, J., Bos, M. M., Buchori, D., Erasmi, S., Faust, H., Gerold, G., Glenk, K., Gradstein, S. R., & Guhardja, E. (2007). Tradeoffs between income, biodiversity, and ecosystem functioning during tropical rainforest conversion and agroforestry intensification. Proceedings of the National Academy of Sciences, 104, 4973–4978.

Subbulakshmi, V., Srinivasan, K., Divya, M. P., & Mani, S. (2019). Effect of spacing and alley cropping system in agroecosystem (pp. 56–67).

Wilkinson, L., & Coward, G. (2007). SYSTAT 12: Statistics I & II. Systat Software, Inc.

Published

2026-08-25

How to Cite

Influence of Plant Morphology on Microclimate Dynamics and Resource Optimization in Multitier Agroforestry Systems. (2026). Indian Journal of Agroforestry, 28(1), 35-43. https://doi.org/10.48165/ija.2026.28.01.04