Sustainable diversification in Indian agriculture: Effectiveness of integrating horticultural crops as intercrops in mono-cropping coconut system
DOI:
https://doi.org/10.14719/pst.5363Keywords:
Coconut, horticulture, intercrops, coconut based multiple-cropping system, sustainabilityAbstract
Coconut, also known as Kalpaviruksha, is a gift from nature that is grown all over the world for its many uses. The distinctive characteristics of the coconut tree indicate that mono-cropping coconut results in extremely low land use efficiency. Another drawback of mono-cropping from an economic standpoint is the substantial initial investment required to develop the crop until it reaches bearing age, which may be beyond the means of smallholders. In most coconut-growing countries, planting coconut alongside a range of other crops is a popular practice to maximise land use efficiency. It has been determined that over 100 distinct crop and system combinations can be cultivated as intercrops alongside coconut plantations. Intercropping is more efficient than mono-cropping and increases yield, if the components of the intercrop utilize natural resources in ways that complement each other's utilization of those resources, which generates a higher benefit-cost ratio than the sole crop. The relevance and possibilities of multiple-cropping and intercropping systems suitable for different coconut stands are covered in this article. The results provide an overview of coconut farming's lucrative and sustainable intercrop species that support the income of farmers, as well as the advantages, drawbacks, and prospects of several multiple-cropping systems. The paper concludes by outlining potential research avenues for the effective adaptation of different cropping systems based on coconut.
Downloads
References
Shinde V, Maheswarappa H, Ghavale S, Sumitha S, Wankhede S, Haldankar P. Productivity and carbon sequestration potential of coconut-based cropping system as influenced by integrated nutrient management practices. 2020. https://doi.org/10.25081/jpc.2020.v48.i2.6368
Maheswarappa H, Subramanian P, Dhanapal R. Root distribution pattern of coconut (Cocos nucifera L.) in littoral sandy soil. J Plantation Crops. 2000;28(2):164-66.
Kushwah B, Nelliat E, Markose V, Sunny A. Rooting pattern of coconut (Cocos nucifera L.). Indian J Agron. 1973;18(1):71-74.
Bavappa K, Kailasam C, Khader KA, Biddappa C, Khan H, Bai KK, et al. Coconut and arecanut based high density multispecies cropping systems. J Plantation Crops. 1986;14(2):74-87.
Nelliat E, Bavappa K, Nair P. Multi-storyed cropping: a new dimension in multiple cropping for coconut plantations. World Crops. 1974;26(6):262-66.
Vidhana Arachchi L, Liyanage MDS. Soil water content under coconut palms in sole and mixed (with nitrogen-fixing trees) stands in Sri Lanka. Agrofor syst. 2003;57:1-9. https://doi.org/10.1023/A:1022922415010
Liyanage MdS, Tejwani K, Nair P. Intercropping under coconut in Sri Lanka. Agrofor Syst. 1984;2(3):215-28. https://doi.org/10.1007/BF00147035
Rethinam P. Cropping system involving plantation crops. Plantation based multiple cropping system (Eds) Bandopadhyay AK, Michael, Raj S, Gangwar B, Dagar, JC ICAR, Port Blair. 1990.
Hore J, Bandyopadhyay A, Ghosh D. Prospects of intercropping with coconut in West Bengal. Indian Coconut J. 2007;38(4):2-4 ref. 5.
Ghosh D, Hore J, Bandopadhyay A, Maji M. Effect of spacing and seed corm size of elephant foot yam on economics of a coconut based cropping system. J Crop Weed. 2008;4(1):15-19.
Mohandas S. Prospects of intercropping medicinal and aromatic plants in coconut garden. Madras Agric J. 2011;98(jan-mar):1. https://doi.org/10.29321/MAJ.10.100248
Nimbolkar P. Multi storied cropping system in horticulture-a sustainable land use approach. Int J Agric Sci. 2016;0975-3710.
Basavaraju T, Nanjappa H, Umesha K, Vasundhara M, Arulraj S. Intercropping of medicinal and aromatic plants in coconut gardens. J Plantation Crops. 2011;39(2):299-304.
Nuwarapaksha TD, Udumann SS, Dissanayaka D, Dissanayake D, Atapattu AJ. Coconut based multiple cropping systems: An analytical review in Sri Lankan coconut cultivations. Circular Agric Syst. 2022;2(1):1-7. https://doi.org/10.48130/CAS-2022-0008
Simmonds N, Vandermeer J. The ecology of intercropping. J Appl Ecol. 1989;26(3):1107. https://doi.org/10.2307/2403737
Ohler JG. Modern coconut management: palm cultivation and products. 1999. https://doi.org/10.3362/9781780445502
Magat S. Growing of intercrops in coconut lands to generate more food and agricultural products, jobs and enhancing farm incomes. Coconut Intercropping Salient Notes/Considerations Dept of Agric, Phillippine Coconut Authority. 2004;7.
Fordham R. Intercropping–-what are the advantages? Outlook on Agriculture. 1983;12(3):142-46. https://doi.org/10.1177/003072708301200306
Bonneau X, Sugarianto J. Intercropping with young hybrid coconut palms in climatic marginal areas. Plant-Res-Develop. Plantations, Recherche, Développement. 1999;6(1):13-30.
Nagwekar D, Desai V, Sawant V, Haldankar P, Arulraj S, Jadhav B. Intercropping with fruits and annual spices in coconut under Konkan condition of Maharashtra. Improving Productivity and Profitability in Coconut Farming. 2010;174.
Palaniswami C, Thomas GV, Dhanapal R, Subramanian P, Maheswarappa H, Upadhyay A. Integrated nutrient management in coconut based cropping system. Tech Bull. 2007;49.
Maheswarappa H, Palaniswami C, Dhanapal R, Subramanian P, Thomas G, Krishnakumar V. Coconut based intercropping and mixed cropping systems. Coconut Based Cropping/Farming Syst. 2010;9-31.
Potty N, Radhakrishnan T, Ashokan P. A note on the early growth and performance of six varieties of pepper in the multistoreyed cropping programme in coconut gardens. Agric Res J Kerala. 1979;17(1):151-52.
Mathew P, Jose J, Nair G, Mathew P, Kumar V, editors. Assessment and conservation of intraspecific variability in Piper nigrum (‘Black Pepper’) occurring in the Western Ghats of Indian Peninsula. In: III WOCMAP Congress on Medicinal and Aromatic Plants-Volume 2: Conservation, Cultivation and Sustainable Use of Medicinal and Aromatic Plants. Acta Hortic; 2003. 676:14. https://doi.org/10.17660/ActaHortic.2005.676.14
Nedunchezhiyan M, Byju G. Effect of planting season on growth and yield of sweet potato (Ipomoea batatas L.) varieties. J Root Crops. 2005;31(2):111-14.
Nedunchezhiyan M, Byju G, Naskar S. Sweet potato (Ipomoea batatas L.) as an intercrop in a coconut plantation: growth, yield and quality. J Root Crops. 2007;33(1):26-29.
Kumar BM, Kumar SS. Coconut-timber tree production systems in Kerala: Influence of species and planting geometry on early growth of trees and coconut productivity. Indian J Agrofor. 2002;4(1).
Bhalerao P, Maheswarappa H, Sumitha S, Apshara SE. Performance of cocoa clones as intercrop in coconut gardens under south Gujarat condition. Int J Innov Hortic. 2018;7(2):120-22.
Dhanapal R, Maheswarappa H, Subramanian P. Response of coconut roots to the methods of irrigation in littoral sandy soil. J Plantation Crops. 2000;28(3):208-11.
Dhanapal R, Subramanian P, Maheswarappa H, Harisha C. Impact of intercropping on root distribution in coconut under coastal sandy soil. J Plantation Crops. 2013;41(2).
Subramanian P, Dhanapal R, Palaniswami C. Cropping system for coastal sandy soil management. Coconut Based Cropping/Farming Syst. 2010;32-41.
Hsieh S, Hsieu C. The use of organic matter in crop production. Ext Bull ASPAC, Food and Fertilizer Tech Cent. 1990;315(19):18.
Mondal R, Das A, Bandyapadhyay A. Studies on effect of coconut based cropping system on the yield and soil microbial activity. Int J Curr Microbiol App Sci. 2021;10(05):217-29. https://doi.org/10.20546/ijcmas.2021.1005.029
Sarathambal C, Singh V, Barman K, Raghuvanshi M, Dubey R. Intercropping and weed management effect on soil microbial activities in newly planted mango and citrus orchards. Indian Journal of Weed Science. 2015;47(2):178-82.
Senarathne S, Udumann SS. Evaluation of coconut based Anacardium occidentale agroforestry system to improve the soil properties of coconut growing lands in wet, intermediate and dry zone of Sri Lanka. Cord. 2019;35(1):1-10. https://doi.org/10.37833/cord.v35i01.5
Doran JW, Fraser DG, Culik MN, Liebhardt WC. Influence of alternative and conventional agricultural management on soil microbial processes and nitrogen availability. Am J Altern Agric. 1987;2(3):99-106. https://doi.org/10.1017/S0889189300001739
Atapattu A, Raveendra S, Liyanagedara D, Piyaratna MGNCK HH. The role of soil organisms and functions in different coconut based multiple cropping systems. Int J Environ Agric Res. 2017;3:67-84.
Bopaiah B, Shetty HS. Microbiology and fertility in coconut-based mixed farming and coconut mono-cropping systems. Trop Agric. 1991;68(2):135-38.
Ghosh D, Chattopadhyay N, Bandyopadhyay A, Bar A, Maheswarappa H. Coconut based cropping system model with spices and tuber crops-a novel approach for higher economic return. J Crop Weed. 2021;17(2):66-71. https://doi.org/10.22271/09746315.2021.v17.i2.1453
Nelliat EV, Bhat KS. Multiple cropping in coconut and areca nut gardens: Central Plantation Crops Research Institute; 1979.
MathewKutty T, Kuttikrishnan K. Banana: The best companion for coconut. Indian Cocon J. 1989;20(5):14-16.
Das PK. Economic viability of coconut based farming systems in India. J Plantation Crops. 1991;19(2):191-201.
Mapa RB. Effect of intercropping coconut lands on soil water retention. Biol Agric Hortic. 1995;12(2):173-83. https://doi.org/10.1080/01448765.1995.9754735
Liyanage Md. Experiences in coconut-based farming systems in Sri Lanka. 1993.
Kuruvilla V, Thomas M. Integrated farming systems for sustainability in coastal ecosystem. Indian J Agron. 2009;54(2):120-27. https://doi.org/10.59797/ija.v54i2.4789
Osei-Bonsu K, Opoku-Ameyaw K, Amoah F, Oppong F. Cacao-coconut intercropping in Ghana: agronomic and economic perspectives. Agrofor Syst. 2002;55:1-8. https://doi.org/10.1023/A:1020271608483
Chavan B, Rasal G. Total sequestered carbon stock of Mangifera indica. J Environ Earth Sci. 2012;2(1):37-48.
Bhagya H, Maheswarappa H, Bhat R. Carbon sequestration potential in coconut-based cropping systems. Indian J Hortic. 2017;74(1):1-5. https://doi.org/10.5958/0974-0112.2017.00004.4
Manna M, Singh M, Wanjari R, Mandal A, Patra A, Lal R. Soil nutrient management for carbon sequestration. Encyclopedia of Soil Science (3rd ed.), CRC Press, Boca Raton, FL. 2016; pp. 288-93.
Liebman M, Dyck E. Crop rotation and intercropping strategies for weed management. Ecological Applications. 1993;3(1):92-122. https://doi.org/10.2307/1941795
Shameer K, Nasser M, Mohan C, Hardy IC. Direct and indirect influences of intercrops on the coconut defoliator Opisina arenosella. J Pest Sci. 2018;91:259-75. https://doi.org/10.1007/s10340-017-0904-6
Sahayaraj K, Balasubramanian R. Artificial rearing of reduviid predators for pest management: Springer; 2016. https://doi.org/10.1007/978-981-10-2522-8
Maheswarappa H, Anithakumari P, Sairam C. High density multi species cropping system for root (wilt) affected coconut gardens-Its impact on productivity and economic viability. JPlantation rCops. 2003;31(1):23-27.
Krishnakumar V, Maheswarappa H, Jayasekhar S, Shanavas M. Economic evaluation of high density multispecies cropping system in root (wilt) disease affected coconut (Cocos nucifera) area in Kerala. J Plantation Crops. 2011;39(1):125-30.
Adam RP, Panggeso J, Suardi M, editors. Analysis of cacao and coconut intercrop farming on production centers in Central Sulawesi Province. International Conference on Science and Technology (ICOSAT 2017)-Promoting Sustainable Agriculture, Food Security, Energy and Environment Through Science and Technology for Development. Atlantis Press; 2017. https://doi.org/10.2991/icosat-17.2018.20
Jactel H, Brockerhoff E, Duelli P. 12. A test of the biodiversity-stability theory: meta-analysis of tree species diversity effects on insect pest infestations and re-examination of responsible factors. Ecol Stud. 2005;176:235Á62. https://doi.org/10.1007/3-540-26599-6_12
Girijadevi L, Nair V. Economics of coconut based intercropping systems. J Plantation Crops. 2003;31(2):45-47.
Ravindran C. Nutrient-moisture-light interactions in a coconut based homestead cropping system. Department of Agronomy, College of Agriculture, Vellayani; 1997.
Varghese PT, Nair P, Nelliat E, Varma R, Gopalasundaram P, editors. Intercropping with tuber crops in coconut gardens. Proceedings 1st Plantation Crops Symposium (PLACROSYM); 1978.399-415.
Nair P, Balakrishnan T. Ecoclimate of a coconut plus cacao crop combination on the west coast of India. Agricultural Meteorology. 1977;18(6):455-62. https://doi.org/10.1016/0002-1571(77)90010-3
Nair S, Subba Rao N. Microbiology of the root region of coconut and cacao under mixed cropping. Plant and Soil. 1977;46:511-19. https://doi.org/10.1007/BF00015910
Rao EP, Singh M, Rao RG. Intercropping studies in Java citronella (Cymbopogon winterianus). Field Crops Res. 1988;18(4):279-86. https://doi.org/10.1016/0378-4290(88)90020-2
Rethinam P. Research output and farmers adoption of technology on coconut based farming system-the Indian experience. Indian Coconut J. 2001;32(4):3-11.
Basavaraju T, Prashanth M, Maheswarappa H. Performance of flower crops as intercrops in coconut garden in southern dry region of Karnataka. J Plantation Crops. 2018;46(1): 52-56. https://doi.org/10.25081/jpc.2018.v46.i1.3539
Rani S, Rajakumar D, Shoba N, Maheswarappa H. Productivity and economic advantages of flower crops in coconut based intercropping system. Indian J Hortic. 2018;75(2):279-82. https://doi.org/10.5958/0974-0112.2018.00047.6
Korikanthimath V. Systems approach in coconut for higher productivity and profitability. Tech Bull. 2005;(6):2012-15.
Nath J. Prospects of coconut based high density multistoreyed cropping in Assam. Indian Coconut J. 2002;33(3):10-11.
Hanumanthappa M, Indiresh K, Shankar S, Palanimuthu V. Intercropping studies in coconut plantation with different field crops under rainfed conditions of Karnataka. Developments in plantation crops research. Proceedings of the 12th Symposium on Plantation Crops, PLACROSYM XII, Kottayam, India, 27-29 November 1996. 1998, 203-205 ref. 6.
Basavaraju T, Hanumanthappa M, Najaraja Kusagur NK, Boraiah B. Coconut based cropping systems for maidan tract of Karnataka. J Plant Crops. 2008;36:290-95.
Nath J, Deka K, Saud B, Maheswarappa H. Intercropping of medicinal and aromatic crops in adult coconut garden under Brahmaputra valley region of Assam. J Plantation Crops. 2015;43(1):17-22.
Ghosh D, Bandopadhyay A, Maji M, Mahapatra S. Studies on the performance of medicinal plants under coconut plantation in West Bengal. Indian Coconut J. 2007;38(8):15-18.
Nath J, Deka K, Maheswarappa H, Sumitha S. System productivity enhancement in coconut (Cocos nucifera) garden by intercropping with flower crops in Assam. Indian J Agric Sci. 2019;89(11):1842-45. https://doi.org/10.56093/ijas.v89i11.95309
Fernando M, Daw M, Edwards I. Farmers’perceptions on expansion of a new technology: the case of coconut-based intercropping in sri lanka. Cord. 2003;19(01):34. https://doi.org/10.37833/cord.v19i01.367
Skaria B, Joy P, Mathew G, Mathew S. Aromatic and medicinal plants research station. Indian Coconut J. 2005;36:12-18.
Maheshwari S, Dahatonde B, Yadav S, Gangrade S. Intercropping of Rauvolfia serpentina for higher monetary returns. Indian J Agric Sci. 1985;55(5):332-34.
Maheswari S, Sharma R, Gangarade S. Studies on spartial arrangements in Palmarosa-Pigeon pea intercropping in black cotton soil. Agron J. 1995;92:812-18.
Abeysinghe A. Fertiliser subsidy and rice imports. Economic Review (Colombo). 1990;15(11):18-21.
Nath JC, Phukon R, Sundaram S, Maheswarappa HP, Patil B. Performance of black pepper varieties as intercrop in coconut gardens in the lower Brahmaputra valley of Assam state, India. J Plant Crops. 2022;49(3):176-81. https://doi.org/10.25081/jpc.2021.v49.i3.7451

Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2024 F Samitha, S B Senthamizh , R M S Aneesa , R Sivakumar, K Sasikumar

This work is licensed under a Creative Commons Attribution 4.0 International License.
Copyright and Licence details of published articles
Authors who publish with this journal agree to the following terms:
- Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution License that allows others to share the work with an acknowledgement of the work's authorship and initial publication in this journal.
- Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgement of its initial publication in this journal.
Open Access Policy
Plant Science Today is an open access journal. There is no registration required to read any article. All published articles are distributed under the terms of the Creative Commons Attribution License (CC Attribution 4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited (https://creativecommons.org/licenses/by/4.0/). Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work (See The Effect of Open Access).