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Enhancing Resource Use Efficiency Through Soil Management for Improving Livelihoods

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Adaptive Soil Management : From Theory to Practices

Abstract

Sustainable intensification and improvement in farm-based livelihoods particularly in dryland tropics are the biggest challenges of the century. Widespread soil degradation, growing water scarcity, and looming threat of climate change further compound the problem of achieving food and nutritional security along with improved livelihoods. Large yield gaps in drylands provide a huge opportunity to increase the food production for future food security and mainstreaming of drylands. Soil management for correcting micro and secondary nutrient deficiencies has shown to increase crop productivity by 20–66% in Karnataka, India. During 2009–2013 in this state, more than 5 million farmers benefitted and net economic benefits through increased production were estimated to the tune of US$353 million (Rs. 1963 crores). Balanced nutrition led to increased nitrogen uptake efficiency, utilization efficiency, and use efficiency for grain yield and harvest index. Best practices like soil test-based fertilization including micronutrients and improved cultivars also contribute to increasing rainwater use efficiency in crops by channelizing unproductive evaporation loss into productive transpiration. In current rainy fallow regions, the landform management like broadbed and furrow along with balanced nutrition has shown that fallow lands in black soil regions in Madhya Pradesh can be successfully cultivated to grow soybean crop. Similarly soil fertility management along with other best practices provides opportunities for intensification through cultivating 11.4 million ha rice fallow in India by growing of early maturing chickpea. Thus, efficient rainy and post-rice fallow management is a way forward to enhance land use efficiency for higher productivity and incomes. Along with productivity and economic benefits, improved soil-nutrient-crop-water management is found to contribute to organic C building, enhancing microbial activity and resilience building of production systems. Efficient soil management thus serves as a foundation to enhance livelihoods through resource-efficient production and providing opportunities for scaling up.

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References

  • Ahluwalia MS (2005) Reducing poverty and hunger in India: the role of agriculture. Annual report essay, International Food Policy Research Institute (IFPRI), Washington, pp 1–6 [Internet]. doi:10.2499/0896297519.E02

  • Amarasinghe UA, Shah T, Turral H, Anand BK (2007) India’s water future to 2025–2050: business as-usual scenario and deviations. IWMI Research Report 123. Colombo (Sri Lanka): International Water Management Institute (IWMI)

    Google Scholar 

  • Barton AP, Fullen MA, Mitchell DJ, Hocking TJ, Liu L, Bo ZW, Zheng Y, Xia ZY (2004) Effects of soil conservation measures on erosion rates and crop productivity on subtropical Ultisols in Yunnan province, China. Agric Ecosyst Environ 104:343–357

    Article  Google Scholar 

  • Bhiday MR (1994) Earthworms in agriculture. Indian Farming 43(12):31–34

    Google Scholar 

  • Boomiraj K, Wani SP, Garg KK, Aggarwal PK, Palanisami K (2010) Climate change adaptation strategies for agro-ecosystem-a review. Agrometeorology 12(2):145–160

    Google Scholar 

  • Chander G, Wani SP, Sahrawat KL, Jangawad LS (2012) Balanced plant nutrition enhances rainfed crop yields and water productivity in Jharkhand and Madhya Pradesh states in India. J Trop Agric 50(1–2):24–29

    Google Scholar 

  • Chander G, Wani SP, Sahrawat KL, Kamdi PJ, Pal CK, Pal DK, Mathur TP (2013a) Balanced and integrated nutrient management for enhanced and economic food production: case study from rainfed semi-arid tropics in India. Arch Agron Soil Sci 59(12):1643–1658

    Article  Google Scholar 

  • Chander G, Wani SP, Sahrawat KL, Pal CK, Mathur TP (2013b) Integrated plant genetic and balanced nutrient management enhances crop and water productivity of rainfed production systems in Rajasthan, India. Commun Soil Sci Plant Anal 44:3456–3464

    Article  CAS  Google Scholar 

  • Chander G, Wani SP, Sahrawat KL, Rajesh C (2014a) Enhanced nutrient and rainwater use efficiency in maize and soybean with secondary and micro nutrient amendments in the rainfed semi-arid tropics. Arch Agron Soil Sci 61(3):285–298. doi:10.1080/03650340.2014.928928

    Article  Google Scholar 

  • Chander G, Wani SP, Sahrawat KL, Dixit S, Venkateswarlu B, Rajesh C, Rao PN, Pardhasaradhi G (2014b) Soil test-based nutrient balancing improved crop productivity and rural livelihoods: case study from rainfed semi-arid tropics in Andhra Pradesh, India. Arch Agron Soil Sci 60(8):1051–1066

    Article  Google Scholar 

  • Chander G, Wani SP, Krishnappa K, Sahrawat KL, Parthasaradhi G, Jangawad LS (2016) Soil mapping and variety based entry-point interventions for strengthening agriculture-based livelihoods—exemplar case of ‘Bhoochetana’ in India. Current Science 110(9):1683–1691

    Google Scholar 

  • Chennamaneni SR, Wani SP, Chander G, Sahrawat KL (2014) Balanced nutrient management for crop intensification and livelihood improvement: a case study from watershed in Andhra Pradesh, India. Commun Soil Sci Plant Anal 45:2515–2528

    Article  CAS  Google Scholar 

  • Delogu G, Cattivelli L, Pecchioni N, Defalcis D, Maggiore T, Stanca AM (1998) Uptake and agronomic efficiency of nitrogen in winter barley and winter wheat. Eur J Agron 9:11–20

    Article  Google Scholar 

  • Directorate of Economics & Statistics, Department of Agriculture & Cooperation, Ministry of Agriculture, Government of India (2014). Agricultural statistics at a glance 2014 [Internet]. [cited February 2016]. Available from: http://eands.dacnet.nic.in/PDF/Agricultural-Statistics-At-Glance2014.pdf

  • Dixon JA, Easter KW (1986) Integrated watershed management: an approach to resource management. In: Easter KW, Dixon JA, Hufschmidt MM (eds) Watershed resources management: an integrated framework with studies from Asia and the Pacific. Westview Press, Honolulu, HA, pp 3–16

    Google Scholar 

  • Dixit S, Wani SP, Rego TJ, Pardhasaradhi G (2007) Knowledge-based entry point and innovative up-scaling strategy for watershed development projects. Indian J Dryland Agric Dev 22(1):22–31

    Google Scholar 

  • Dudal R (1965) Dark clay soils of tropical and subtropical regions. FAO Agric Dev Paper 83. FAO, Rome, 161 pp

    Google Scholar 

  • Dwivedi RS, Ramana KV, Wani SP, Pathak P (2003) Use of satellite data for watershed management and impact assessment. In: Wani SP, Maglinao AR, Ramakrishna A, Rego TJ (eds) Integrated watershed management for land and water conservation and sustainable agricultural production in Asia, Proceedings of the ADB-ICRISAT-IWMI Project Review and Planning Meeting, Hanoi, Vietnam, 10–14 Dec 2001. International Crops Research Institute for the Semi-Arid Tropics, Patancheru, pp 149–157

    Google Scholar 

  • Edmeades DC (2003) The long-term effects of manures and fertilisers on soil productivity and quality: a review. Nutr Cycling Agroecosyst 66:165–180

    Article  CAS  Google Scholar 

  • FAOSTAT. 2013. [cited 2013 April]. Available from: http://faostat.fao.org/site/550/default.aspx#ancor

  • Delogu G, Cattivelli L, Pecchioni N, Defalcis D, Maggiore T, Stanca AM (1998b) Uptake and agronomic efficiency of nitrogen in winter barley and winter wheat. Eur J Agron 9:11–20

    Article  Google Scholar 

  • Ghosh K, Nayak DC, Ahmed N (2009) Soil organic matter. J Indian Soc Soil Sci 57:494–501

    CAS  Google Scholar 

  • Giller KE, Chalk P, Dobermann A, Hammond L, Heffner P, Ladha JK, Nyamudeza P, Maene L, Ssali H, Freney J (2004) Emerging technologies to increase the efficiency of use of fertilizer nitrogen. In: Mosier AR, Syers JK, Freney JR (eds) Agriculture and the nitrogen cycle. Island Press, Washington DC, pp 35–51

    Google Scholar 

  • Harris D, Joshi A, Khan PA, Gothkar P, Sodhi PS (1999) On-farm seed priming in semi-arid agriculture: development and evaluation in maize, rice and chickpea in India using participatory methods. Exp Agric 35:15–29

    Article  Google Scholar 

  • Hameeda B, Reddy Y, Rupela OP, Kumar GN, Reddy G (2006) Effect of carbon substrates on rockphosphate solubilization by bacteria from composts and macrofauna. Curr Microbiol 53:298–302

    Article  CAS  Google Scholar 

  • Hirel B, Le Gouis J, Ney B, Gallais A (2007) The challenge of improving nitrogen use efficiency in crop plants: towards a more central role for genetic variability and quantitative genetics within integrated approaches. J Exp Bot 58(9):2369–2387

    Article  CAS  Google Scholar 

  • Karlberg L, Rockström J, Falkenmark M (2009) Water resource implications of upgrading rainfed agriculture - focus on green and blue water trade-offs. In: Wani SP (ed) Rainfed agriculture: unlocking the potential. John Rockstrom and Theib Oweis. CAB International, Wallingford, pp 44–53

    Chapter  Google Scholar 

  • Kumar Rao JVDK, Harris D, Kankal M, Gupta B (2008) Extending rabi cropping in rice fallows of eastern India. In: Riches CR, Harris D, Johnson DE, Hardy B (eds) Improving agricultural productivity in rice-based systems of the High Barind Tract of Bangladesh. International Rice Research Institute, Los Banos, pp 193–200

    Google Scholar 

  • Lee KK, Wani SP (1989) Significance of biological nitrogen fixation and organic manures in soil fertility management. In: Christianson CB (ed) Soil fertility and fertility management in semi-arid tropical India. Muscle Shoals, AL, IFDC, pp 89–108

    Google Scholar 

  • Mahler RL, Koehler FE, Lutcher LK (1994) Nitrogen source, timing of application and placement: effects on winter wheat production. Agron J 86:637–642

    Article  Google Scholar 

  • Materechera SA (2010) Utilization and management practices of animal manure for replenishing soil fertility among smallscale crop farmers in semi-arid farming districts of the North West Province, South Africa. Nutr Cycling Agroecosyst 87:415–428

    Article  Google Scholar 

  • Hanjra MA, Qureshi ME (2010) Global water crisis and future food security in an era of climate change. Food Policy 35:365–377

    Article  Google Scholar 

  • Rahimizadeh M, Kashani A, Zare-Feizabadi A, Koocheki AR, Nassiri-Mahallati M (2010) Nitrogen use efficiency of wheat as affected by preceding crop, application rate of nitrogen and crop residues. Aust J Crop Sci 4(5):363–368

    CAS  Google Scholar 

  • Rao AVRK, Wani SP, Singh K, Ahmed MI, Srinivas K, Bairagi SD, Ramadevi O (2013) Increased arid and semi-arid areas in India with associated shifts during 1971–2004. J Agrometeorol 15(1):11–18

    Google Scholar 

  • Raun WR, Johnson GV (1999) Improving nitrogen use efficiency for cereal production. Agron J 91:357–363

    Article  Google Scholar 

  • Rego TJ, Wani SP, Sahrawat KL, Pardhasaradhi G (2005) Macro-benefits from boron, zinc and sulfur application in Indian SAT: A step for Grey to Green Revolution in agriculture. Global Theme on Agroecosystems Report no. 16. Patancheru, Andhra Pradesh, India: International Crops Research Institute for the Semi-Arid Tropics (ICRISAT)

    Google Scholar 

  • Richter, B.D., Mathews, R., Harrison, D.L., Wigington, R., 2003. Ecologically sustainable water management: managing river flows for ecological integrity. Ecol Appl 13, 206–224.

    Google Scholar 

  • Rockström J, Wani SP, Oweis T, Hatibu N (2007) Managing water in rainfed agriculture. In: Molden D (ed) Water for food, water for life: a comprehensive assessment of water management in agriculture. Earth Scan/IWMI, London/Colombo, pp 315–348

    Google Scholar 

  • Rockström J, Karlberg L, Wani SP, Barron J, Hatibu N, Oweis T, Bruggeman A, Farahani J, Qiang Z (2010) Managing water in rainfed agriculture-the need for a paradigm shift. Agric Water Manage 97: 543–550

    Google Scholar 

  • Sahrawat KL, Rego TJ, Wani SP, Pardhasaradhi G (2008) Stretching soil sampling to watershed: evaluation of soil-test parameters in a semi-arid tropical watershed. Commun Soil Sci Plant Anal 39:2950–2960

    Article  CAS  Google Scholar 

  • Sahrawat KL, Wani SP, Pardhasaradhi G, Murthy KVS (2010) Diagnosis of secondary and micronutrient deficiencies and their management in rainfed agroecosystems: case study from Indian Semi-arid Tropics. Commun Soil Sci Plant Anal 41:346–360

    Article  CAS  Google Scholar 

  • Sahrawat KL, Wani SP, Rego TJ, Pardhasaradhi G, Murthy KVS (2007) Widespread deficiencies of sulphur, boron and zinc in dryland soils of the Indian semi-arid tropics. Curr Sci 93:1428–1432

    CAS  Google Scholar 

  • Samra JS (1998) Watershed management for sustainable agriculture. In: Dhaliwal GS, Arora R, Randhawa NS, Dhawan AK (eds) Ecological agriculture and sustainable development, vol 1. Center for Research in Rural and Industrial Development, Chandigarh, pp 147–155

    Google Scholar 

  • Schultz B, de Wrachien D (2002) Irrigation and drainage systems research and development in the 21st century. Irrig Drain 51(4):311–327

    Article  Google Scholar 

  • Seckler D, Barker R, Amarasinghe U (1999) Water scarcity in the twenty-first century. Int J Water Resour Dev 15(1/2):29–42

    Article  Google Scholar 

  • Serageldin I (2001) Assuring water for food: the challenge of the coming generation. Water Resour Dev 17(4):521–525

    Article  Google Scholar 

  • Shah T (2011) Past, present, and the future of canal irrigation in India. India Infrastructure Report 2011, 70–87

    Google Scholar 

  • Shah T, Singh OP, Mukherji A (2006) Some aspects of South Asia’s groundwater irrigation economy: analyses from a survey in India, Pakistan, Nepal Terai and Bangladesh. Hydrogeol J 14(3):286–309

    Article  Google Scholar 

  • Shambu Prasad C, Laxmi T, Wani SP (2006) Institutional learning and change (ILAC) at ICRISAT: a case study of the Tata-ICRISAT project. Global Theme on Agroecosystems Report No. 19. International Crops Research Institute for the Semi-Arid Tropics, Patancheru, Andhra Pradesh, India, p 44

    Google Scholar 

  • Singh P, Aggarwal PK, Bhatia VS, Murty MVR, Pala M, Oweis T, Benli B, Rao KPC, Wani SP (2009) Yield gap analysis: modelling ofachievable yields at farm level. In: Wani SP, Rockström J, Oweis T (eds) Rainfed agriculture: unlocking the potential. CAB International, Oxfordshire

    Google Scholar 

  • Singh P, Pathak P, Wani SP, Sahrawat KL (2010) Integrated watershed management for increasing productivity and water use efficiency in semi-arid tropical India. In: Kang MS (ed) Water and agricultural sustainability strategies. Nosworthy Way, Wallingford, pp 181–205

    Google Scholar 

  • Singh SN, Verma A (2007) The potential of nitrification inhibitors to manage the pollution effect of nitrogen fertilizers in agricultural and other soils: a review. Environ Pract 9(4):266–279

    Article  CAS  Google Scholar 

  • Subbarao GV, Kumar Rao JVDK, Kumar J, Johansen C, Deb UK, Ahmed I, Krishna Rao MV, Venkataratnam L, Hebbar KR, Sai MVRS, Harris D (2001) Spatial distribution and quantification of rice-fallows in South Asia—potential for legumes. International Crops Research Institute for the Semi-Arid Tropics, Patancheru, p 320

    Google Scholar 

  • Thenkabail PS, Hanjra MA, Dheeravath V, Gumma M (2010) A holistic view of global croplands and their water use for ensuring global food security in the 21st century through advanced remote sensing and non-remote sensing approaches. Remote Sens 2:211–261

    Article  Google Scholar 

  • Wani SP, Chander G., Sahrawat KL (2012a) Soil health awareness: soil science at doorsteps of the farmers. In: Sarode SV, Deshmukh JP, Kharche VK, Sable YR (eds) Proceedings of national seminar on “Soil Security for Sustainable Agriculture”, 27–28 February, 2010. Dr. Panjabrao Deshmukh Krishi Vidyapeet, Akola, pp 1–9

    Google Scholar 

  • Wani SP, Chander G, Sahrawat KL (2014) Science-led interventions in integrated watersheds to improve smallholders’ livelihoods. NJAS - Wageningen J Life Sci 70–71:71–77. doi:10.1016/j.njas.2014.07.001

    Article  Google Scholar 

  • Wani SP, Chander G, Sahrawat KL, Dixit S, Venkateswarlu B (2013) Improved crop productivity and rural livelihoods through balanced nutrition in the rain-fed semi-arid tropics. Resilient Dryland Systems Report No. 58. International Crops Research Institute for the Semi-Arid Tropics (ICRISAT), Patancheru, Andhra Pradesh, India, p 36

    Google Scholar 

  • Wani SP, Chander G, Sahrawat KL, Pal DK, Pathak P, Pardhasaradhi G, Kamadi P (2016) Sustainable use of natural resources for crop intensification and better livelihoods in the rainfed semi-arid tropics of Central India. NJAS - Wageningen J Life Sci. doi:10.1016/j.njas.2015.12.002

    Google Scholar 

  • Wani SP, Chander G, Sahrawat KL, Pardhasaradhi G (2015a) Soil test-based balanced nutrient management for sustainable intensification and food security: case from Indian semi-arid tropics. Commun Soil Sci Plant Anal 46(S1):20–33

    Article  Google Scholar 

  • Wani SP, Chander G, Uppal RK (2015b) Enhancing nutrient use efficiencies in rainfed systems. In: Rakshit A, Singh HB, Sen A (eds) Nutrient use efficiency: from basics to advances. Springer, New Delhi, pp 359–380. doi:10.1007/978-81-322-2169-2_23

  • Wani SP, Chander G, Sahrawat KL, Rao CS, Raghvendra G, Susanna P, Pavani M (2012b) Carbon sequestration and land rehabilitation through Jatropha curcas (L.) plantation in degraded lands. Agric Ecosyst Environ 161:112–120

    Article  CAS  Google Scholar 

  • Wani SP, Dixin Y, Li Z, Dar WD, Chander G (2012c) Enhancing agricultural productivity and rural incomes through sustainable use of natural resources in the SAT. J Sci Food Agric 92:1054–1063

    Article  CAS  Google Scholar 

  • Wani SP, Pathak P, Jangawad LS, Eswaran H, Singh P (2003a) Improved management of Vertisols in the semi-arid tropics for increased productivity and soil carbon sequestration. Soil Use Manage 19:217–222

    Article  Google Scholar 

  • Wani SP, Pathak P, Tam HM, Ramakrishna A, Singh P, Sreedevi TK (2002a). Integrated watershed management for minimizing land degradation and sustaining productivity in Asia. In: Adeel Z (ed) Integrated land management in the dry areas, Proceedings of a Joint UNU-CAS International Workshop, 8–13 September 2001, Beijing, China. United Nations University, Tokyo, pp 207–230

    Google Scholar 

  • Wani SP, Rego TJ, Pathak P (2002b) Improving management of natural resources for sustainable rainfed agriculture. In: Proceedings of the training workshop on on-farm participatory research methodology, 26–31 July 2001, Khon Kaen, Bangkok, Thailand. International Crops Research Institute for the Semi-Arid Tropics (ICRISAT), Patancheru, pp 1–68

    Google Scholar 

  • Wani SP, Rockström J, Venkateswarlu B, Singh AK (2011a) New paradigm to unlock the potential of rainfed agriculture in the semi-arid tropics. In: Lal R, Stewart BA (eds) World soil resources and food security, Advances in soil science. CRC Press/Taylor and Francis Group, Boca Raton, pp 419–469

    Google Scholar 

  • Wani SP, Sahrawat KL, Sarvesh KV, Baburao M, Krishnappa K (2011b) Soil fertility atlas for Karnataka, India. International Crops Research Institute for the Semi-Arid Tropics (ICRISAT), Patancheru, Andhra Pradesh, India

    Google Scholar 

  • Wani SP, Sahrawat KL, Sreedevi TK, Pardhasaradhi G, Dixit S (2009a) Knowledge-based entry point for enhancing community participation in integrated watershed management. In: Best-bet options for integrated watershed management proceedings of the comprehensive assessment of watershed programs in India, 25–27 July 2007, ICRISAT Patancheru, Andhra Pradesh, India

    Google Scholar 

  • Wani SP, Singh HP, Sreedevi TK, Pathak P, Rego T., Shiferaw B, Iyer SR (2003b) Farmer-participatory integrated watershed management: adarsha watershed, Kothapally India- an innovative and upscalable approach. Case 7. In: Harwood RR, Kassam AH (eds) Research towards integrated natural resources management: examples of research problems, approaches and partnerships in action in the CGIAR. Consultative Group on International Agricultural Research (CGIAR), Washington D.C, USA, and Food and Agriculture Organization, Rome, Italy, pp 123–147

    Google Scholar 

  • Wani SP, Sreedevi TK, Reddy TSV, Venkateswarlu B, Prasad CS (2008) Community watersheds for improved livelihoods through consortium approach in drought prone rainfed areas. J Hydrol Res and Dev 23:55–77

    Google Scholar 

  • Wani SP, Sreedevi TK, Rockström J, Ramakrishna YS (2009b) Rainfed agriculture—past trends and future prospects. In: Wani SP, Rockström J, Oweis T (eds) Rainfed agriculture: unlocking the potential. Comprehensive Assessment of Water Management in Agriculture Series. CAB International, Wallingford, pp 1–35

    Chapter  Google Scholar 

  • Wani SP, Sreedevi TK, Rockström J, Wangkahart T, Ramakrishna YS, Dxin Y, Kesava Rao AVR, Li Z (2007) Improved livelihoods and food security through unlocking the potential of rainfed agriculture. In: Aswathanarayana U (ed) Food and water security. Indian Science Congress, Visakhapatnam, pp 89–106

    Google Scholar 

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Wani, S.P., Chander, G., Anantha, K.H. (2017). Enhancing Resource Use Efficiency Through Soil Management for Improving Livelihoods. In: Rakshit, A., Abhilash, P., Singh, H., Ghosh, S. (eds) Adaptive Soil Management : From Theory to Practices. Springer, Singapore. https://doi.org/10.1007/978-981-10-3638-5_19

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