Ground-cover management studies in kinnow orchard

Published

2023-12-30

DOI:

https://doi.org/10.58993/ijh/2023.80.4.10

Keywords:

Intercropping, Kinnow Orchard, Medicinal and Aromatic Plants
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Authors

  • Manpreet Singh Department of Agriculture, Guru Nanak Dev University, Amritsar-143001, Punjab, India.
  • Kanwaljit Singh Department of Agriculture, Guru Nanak Dev University, Amritsar-143001, Punjab, India.
  • Veerpartap Singh Department of Agriculture, Guru Nanak Dev University, Amritsar-143001, Punjab, India.

Abstract

The six ground-cover species viz. aloe vera, brahmi, lemongrass, mentha, stevia and turmeric, were grown
in the kinnow orchard. The cultivation of mentha, intercropped with kinnow, exhibited better performance in
terms of fruit length (5.81cm), fruit breadth (6.77 cm), fruit weight (156.50 g) and fruit yield (61.04 Kg), followed
by brahmi as compared to other treatments. The quality attributes like juice content, total soluble solids (TSS),
titratable acidity (TA), and TSS/TA of fruits grown under different intercropping systems were statistically at par
with control during the first year of study. However, the highest juice content (46.32 %), TSS (11.28 %), TSS/TA
(14.25) and minimum TA (0.79 %) were recorded in kinnow intercropped with mentha. The highest leaf N content
was recorded in the cover crops of Kinnow + mentha (1.97 %), P and K content in Kinnow + brahmi (0.20 and
1.35 %, respectively), while these were found to be the lowest in control. Overall, Kinnow + mentha and Kinnow
+ brahmi proved to be effective intercropping systems in the Kinnow growing areas

How to Cite

Singh, M., Singh, K., & Singh, V. (2023). Ground-cover management studies in kinnow orchard. Indian Journal of Horticulture, 80(04), 368–371. https://doi.org/10.58993/ijh/2023.80.4.10

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References

AOAC. 1990. Official Methods of Analysis. 10th Edition, Washington DC, USA.

Basavaraju, T. B. and Nanjappa, H. V. 2011. Growth, yield and yield attributing characters of medicinal and aromatic plants grown as intercrops in coconut garden. Mysore J Agric Sci. 45: 332-341.

Dalal, R.P.S., Sangwan, A.K., Beniwal, B.S. and Sharma, S. 2013. Effect of planting density on canopy parameter, yield and water use efficiency of Kinnow mandarin. Indian J. Hort. 70: 587-590.

Das, D.K., Chaturvedi, O.P., Jha, R.K. and Kumar, R. 2011. Yield, soil health and economics of aonla (Emblica officinalis G.)-based agri-horticultural systems in eastern India. Curr. Sci. 101: 786-790. https://www.jstor.org/stable/24078668

Garcia, L., Celette, F., Gary, C., Ripoche, A., Hector, V.G. and Metay, A. 2018. Management of service crops for the provision of ecosystem services in vineyards: a review. Agric Ecosyst Environ. 251: 158-170. DOl:10.1016/j.agee.2017.09.030

George, V. T., Krishanakumar, V., Maheswarappa, H. P. and Palaniswami, C. 2010. Coconut based cropping/farming systems. Central Plantation Crops Research Institute, Kasaragod. 231 p.

Ghosh, S. N. and Pal, P. P. 2010. Effect of inter cropping on plant and soil of mosambi sweet orange orchard under rainfed conditions. Indian J. Hort. 67: 185-190.

Gill, M. S., Savreet, K. and Gupta, N. 2018. Impact of intercropping on yield, fruit quality and economics of young Kinnow mandarin plants. j. appl. nat. sci. 10: 954-957. DOI:10.31018/jans.v10i3.1814

Jackson, M. L. 1967. Soil Chemical Analysis. Prentice Hall of India Pvt. Ltd. New Delhi.

Kjeldahl, J. 1883. New method for the determination of nitrogen. Chemistry news 48: 101-102. http://dx.doi.org/10.1007/BF01338151

Malik, C. P. and Singh, M. B. 1982. Extraction and estimation of total phenols. In; Plant Enzymology and Histoenzymology. Kalyani Publishers, New Delhi. 286 p.

Niraj, S., Iyer, M. and Prasad, R. 2002. The Ayurvedic Medicine Industry: Current Status and Sustainability, Sub Study of the India Country Study of the International Collaborative Research Project on Instruments for Sustainable Private Sector Forestry New Delhi: Ecotech Services (India) Pvt. Ltd. and International Institute for Environment and Development, London.

Novara, A., Pisciotta, A., Minacapilli, M., Maltese, A., Capodici, F., Cerda, A., Gristina, L. 2018. The impact of soil erosion on soil fertility and vine vigor. A multidisciplinary approach based on field, laboratory and remote sensing approaches. Sci Total Environ. 622-623: 474-480. DOI: 10.1016/j.scitotenv.2017.11.272

Prajapati, N. D., Purohit, S. S., Sharma, A. K. and Kumar, T. 2003. A Handbook of Medicinal Plants. Agribios (India), pp 553.

Sahoo, U. K. 2016. Effect of intercropping on soil health and yield potential of mango in Paradise valley, East Kawlchaw, Saiha district of Mizoram, NE India. Int. j. ecol. environ. sci. 42: 227-237.

Sharma, A., Rana, M. C., Rana, S. S., Upadhyay, S. K. Negi, N. D., Sankhyan, N. K. and Manuja, S. 2022. Effect of orchard floor management practices on weed population and fruit quality and yield of peach (Prunus persica L.) Himachal J Agric Res. 48: 31-36.

Swain, S. C. 2016. Influence of intercropping systems on soil health, productivity and quality of guava (Psidium guajava L.) in Eastern India. J. Plant Nutr. 39: 2037-2046. https://doi.org/10.1080/01904167.2016.1187751

Thakur, A., Singh, H., Jawandha, S. K., Kaur, T. 2012. Mulching and herbicides in peach: weed biomass, fruit yield, size and quality. Biol Agric Hortic. 28: 208-290. DOI:10.1080/01448765.2012.745687

Vyas, S. and Nein, S. 1999. Effect of shade on the growth of Cassia ungustifolia. Indian For. 125: 407–410.

Zheng, W., Li, Y. G., Gong, Q., Zhang, H. Q., Zhao, Z. Y., Zheng, Z. X., Zhai, B. N. and Wang, Z. H. 2016. Improving yield and water use efficiency of apple trees through intercrop-mulch of crown vetch (Coronilla varia L.) combined with different fertilizer treatments in the Loess Plateau. Span J Agric Res. 14: 1-11. DOI:10.5424/sjar/2016144-9575.

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