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AGRONOMIC AND ECONOMIC EVALUATION OF PERMANENT RAISED BEDS, NO TILLAGE AND STRAW MULCHING FOR AN IRRIGATED MAIZE-WHEAT SYSTEM IN NORTHWEST INDIA

Published online by Cambridge University Press:  18 August 2011

HARI RAM
Affiliation:
Punjab Agricultural University, Ludhiana -141 004 (Punjab), India
YADVINDER SINGH*
Affiliation:
Punjab Agricultural University, Ludhiana -141 004 (Punjab), India
K. S. SAINI
Affiliation:
Punjab Agricultural University, Ludhiana -141 004 (Punjab), India
D. S. KLER
Affiliation:
Punjab Agricultural University, Ludhiana -141 004 (Punjab), India
J. TIMSINA
Affiliation:
International Rice Research Institute, Dhaka, Bangladesh
E. J. HUMPHREYS
Affiliation:
International Rice Research Institute, Los Banos, Philippines
*
Corresponding author: [email protected]

Summary

No-tillage and raised beds are widely used for different crops in developed countries. A field experiment was conducted on an irrigated maize-wheat system to study the effect of field layout, tillage and straw mulch on crop performance, water use efficiency and economics for five years (2003–2008) in northwest India. Straw mulch reduced the maximum soil temperature at seed depth by about 3 °C compared to the no mulch. During the wheat emergence, raised beds recorded 1.3 °C higher soil temperature compared to the flat treatments. Both maize and wheat yields were similar under different treatments during all the years. Maize and wheat planted on raised beds recorded about 7.8% and 22.7% higher water use efficiency than under flat layout, respectively. Straw mulch showed no effect on water use and water use efficiency in maize. The net returns from the maize-wheat system were more in no tillage and permanent raised beds than with conventional tillage. Bulk density and cumulative infiltration were more in no tillage compared with conventional tillage.

Type
Research Article
Copyright
Copyright © Cambridge University Press 2011

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References

REFERENCES

Aggarwal, P. and Goswami, B. (2003). Bed planting system for increasing water use efficiency of wheat (Triticum aestivum) grown in Inceptisol (Typic Ustochrept). Indian Journal of Agricultural Science 73: 422425.Google Scholar
Aggarwal, P., Garg, R. N., Singh, A. K., Singh, S., Yadav, A. L. and Sharma, A. M. (2000). Assessment of bed planting system in maize for enhancing water use efficiency. In Proceedings International Conference on Managing Natural Resources for Sustainable Agricultural Production in 21st century. February 14–18 at IARI Indian Society Soil Sciences New Delhi, India, 175–176.Google Scholar
Ambast, S. K., Tyagi, N. K. and Raul, S. K. (2006). Management of declining groundwater in the Trans Indo-Gangetic Plain (India): Some options. Agriculture Water Management 82: 279296.CrossRefGoogle Scholar
Batchelor, J. T., Collins, F. C. and Parsons, C. E. (1980). Wheat production on wide beds formed on Sharkey clay. Arkansas Farm Research 29: 3Google Scholar
Burrows, W. C. and Larson, W. E. (1992). Effect of amount of mulch on soil temperature and early growth of corn. Agronomy Journal 54: 1923.CrossRefGoogle Scholar
Connor, D. J., Timsina, J. and Humphreys, E. (2003). Prospects for permanent beds for the rice-wheat system. Improving the Productivity and Sustainability of Rice-Wheat Systems: Issue and Impact. American Society of Agronomy Special Publication Wisconsin, USA 65:197210.Google Scholar
Dhadli, H. S., Gurpreet-Singh, Yadvinder-Singh and Sukhpreet-Singh, (2009). Evaluation of different crops on permanent raised beds on Vertic Ustochrepts in Punjab, India. In Abstracts 4th World Congress on Conservation Agriculture February 4–7, 2009 at New Delhi India. 111.Google Scholar
Dhillon, B. S., Thind, H. S., Malhi, N. S. and Sharma, R. K. (1998). Effect of excess water stress on grain yield and other traits of maize hybrids. Crop Improvement 25: 209214.Google Scholar
Dhillon, S. S., Prashar, A. and Thaman, S. (2004). Studies on bed planted wheat (Triticum aestivum L.) under different nitrogen levels and tillage methods. Journal of Current Sciences 5: 253256.Google Scholar
Gajri, P. R., Arora, V. K. and Chaudhary, M. R. (1994). Maize growth response to deep tillage, straw mulching and farm yard manure in coarse textured soil of NW India. Soil Use and Management 10: 1520.CrossRefGoogle Scholar
Govaerts, B., Sayre, K. D. and Deckers, J. (2005). Stable high yields with zero tillage and permanent bed planting? Field Crops Research 94: 3342.CrossRefGoogle Scholar
Hira, G. S. (2009). Water management in northern states and the food security of India. Journal of Crop Improvement 23: 136157.CrossRefGoogle Scholar
Hobbs, P. R. (2001). Tillage and crop establishment in South Asian rice-wheat system: present practices and future options. Journal of Crop Production 4: 122.CrossRefGoogle Scholar
Humphreys, E., Kukal, S. S., Christen, E. W., Hira, G. S., Balwinder-Singh, Sudhir-Yadav, and Sharma, R. K. (2010). Halting the groundwater decline in North-West India – which crop technologies will be winners? Advances in Agronomy 109: 155217.CrossRefGoogle Scholar
Jat, M. L., Srivastva, A., Sharma, S. K., Gupta, R. K., Zaidi, P. H. and Srinivasan, G. (2005). Evaluation of maize-wheat cropping system under double-no-till practice in Indo-gangetic plains of India. Paper presented in the 9th Asian Regional Maize Workshop, Beijing, China, September 6–9, 2005.Google Scholar
IRRI (1992). IRRISTAT version 92. Department of Statistics, International Rice Research Institute, Los Banos, Philippines.Google Scholar
Kapusta, G., Krausz, R. F. and Matthews, J. L. 1996. Corn yield is equal in conventional, reduced and no tillage after 20 years. Agronomy Journal 88: 812817.CrossRefGoogle Scholar
Kaur, T. and Mahey, R. K. (2005). Effect of planting method and irrigation levels on water use of maize (Zea mays L.) Indian Journal of Environment and Ecoplanning 10: 373376.Google Scholar
Kler, D. S., Dhaliwal, G. S. and Kaur, H. (1992). Impact of agricultural practices on agroecosystems In Changing Scenario of our Environment, 229240. (Eds Dhaliwal, G. S., Hansra, B. S. and Jerath, N.), Ludhiana, India: Punjab Agricultural University.Google Scholar
Kumar, V., Singh, S., Yadav, A., Malik, R. K. and Hobbs, P. R. (2002). Studies on the effect of zero tillage in wheat on physico-chemical properties of soil in comparison to conventional tillage. In Proceedings International Symposium on Herbicide Resistance Management and Zero Tillage in Rice-wheat Cropping System. March 4–6 CCS Haryana Agricultural University, Hisar, India, 110–112.Google Scholar
Lal, B., Chandra, N., and Yadav, M. S. (1988). Response of water logged maize to planting method and time of nitrogen application. Indian Journal of Agronomy 33: 191195.Google Scholar
Landers, J. N., Saturnino, H. M. and de Freitas, P. L. (2001). Organizational and policy consideration in zero tillage. In The Environment and Zero Tillage, 1324. (Eds Saturnino, H.M. and Landers, J.N.): Rome: FAO.Google Scholar
Limon-Ortega, A., Sayre, K. D. and Francis, C. A. (2000). Wheat and maize yields in response to straw management and nitrogen under a bed planting system. Agronomy Journal 92: 295302.CrossRefGoogle Scholar
Ma, Y. Q. and Han, Q. H. (1995). Effect of wheat straw mulching on the growth, development and yield of maize. Acta Agricultre Boreali Sinica 10: 106110.Google Scholar
Malik, R. K., Yadav, A. and Singh, S. (2004). Resource conservation technologies for maintaining health of natural resources in rice-wheat cropping system. Proceedings Workshop on Sustaining Agriculture: Problems and Prospects. November 9–11. Punjab Agricultural University Ludhiana, India.Google Scholar
Maynard, M., Beattie, B., Hutchins, N. and Muir, J. (1991). Permanent beds – their potential role in soil management for the future. IREC Farmers Newsletter 137: 1418.Google Scholar
Nagarajan, S., Singh, A., Singh, R. and Singh, S. 2002. Impact evaluation of zero tillage in wheat through farmers’ participatory approach. In Proceedings of the International Workshop on Herbicide Resistance, Management and Zero Tillage in Rice-wheat Cropping System. March 4–6 2002, CCS Haryana Agricultural University Hisar, India, 150–154.Google Scholar
Ram, H., Yadvinder-Singh, , Timsina, J., Humphreys, E., Dhillon, S. S., Kumar, K. and Kler, D. S. (2005). Performance of upland crops on raised beds in northwest India. Proceedings of Workshop on Evaluation and Performance of Permanent Raised bed cropping systems in Asia, Australia and Mexico, March 1–3 2005, Griffith, NSW, Australia. ACIAR Proceedings 121: 4158.Google Scholar
Rodell, M., Velicogna, I. and Famiglietti, J. S. (2009). Satellite-based estimates of groundwater depletion in India. Nature 460: 9991002.CrossRefGoogle ScholarPubMed
Sayre, K. D. and Limon-Ortega, A. (2002). Potential for a furrow irrigated, permanent bed planting technology to reduce tillage, augment crop residue retention and impair long term sustainability for irrigated wheat production systems. Proceedings International Symposium on Conservation Agriculture for Sustainable Wheat Production in Rotation with Cotton in Limited Water Resource Area. October 14–18 2002, Institute of Irrigation and Agricultural Mechanization Engineers, Tashkent, Uzbekistan, 72–79.Google Scholar
Sekhon, N. K., Hira, G. S., Sidhu, A. S. and Thind, S. S. (2005). Response of soybean (Glycine max Mer.) to wheat straw mulching in different cropping seasons. Soil Use and Management 21: 422426.CrossRefGoogle Scholar
Shaver, T. M., Peterson, G. A., Ahuja, L. R., Westfall, D. G., Sherrod, L. A. and Dunn, G. (2002). Surface soil properties after twelve years of dryland no-till management. Soil Sciences Society of America Journal 66: 12921303.Google Scholar
Sidhu, H. S., Singh, S., Singh, T. and Ahuja, S. S. (2004). Optimization of energy usage in different crop production systems. Journal of Institution of Engineers 85: 14.Google Scholar
Singh, M., Gandhi, R. T. and Raheja, P. C. (1960). A critical view of the methods used to determine water requirements of crops and suggestions for planning future irrigation experiments in India. Indian Journal of Agronomy 4: 272285.Google Scholar
Srinivasan, G., Zaidi, P. H., Prasanna, B. M., Gonzalez, F. and Lesnick, K. (Eds). (2004). Proceedings of the Eighth Asian Regional Maize Workshop: New Technologies for the New Millennium, Bangkok, Thailand 5–8 August 2002. CIMMYT, Mexico, D.F.Google Scholar
Thompson, J. and North, S. (1994). Raised beds reduce winter water logging. IREC Farmers Newsletter 143: 38.Google Scholar
Tolk, J. A., Howell, T. A. and Evett, S. R. (1999). Effect of mulch, irrigation and soil type on water use and yield of maize. Soil and Tillage Research 50: 137147.CrossRefGoogle Scholar
Tomar, R. K., Garg, R. N. and Gupta, V. K. (2006). Optimum tillage and resource conservation technologies for cropping systems. Indian Farming 56: 2732.Google Scholar
Yadav, R. l. and Subba Rao, A. V. M. (2001). Atlas of Cropping Systems of India. PDCSR Bulletin Project Directorate of Cropping Systems Research, Modhopuram, Meerut, India No. 2001–2.Google Scholar
Yadvinder-Singh, , Humphreys, E., Kukal, S. S., Dhillon, S. S., Balwinder-Singh, Amanpreet-Kaur, Thaman, S., Prashar, A., Yadav, S., Navneet-Kaur, , Smith, D. J., Timsina, J. and Gajri, P. R. (2008). Crop performance in a permanent raised bed rice–wheat cropping system in Punjab, India. Field Crops Research 111:120.Google Scholar
Yadvinder-Singh, and Ladha, J. K. (2004). Principles and practices of no-tillage systems in rice-wheat systems of Indo-Gangetic plains, 167–207. In Sustainable Agriculture and the Rice-wheat Systems (EdsLal, R., Hobbs, P., Uphoff, N. and Morris, D.). New York: Marcel Dekker.Google Scholar
Yang, Z. H., Ping, L. S., Ping, S. X., Qing, C. H. and Fei, L. J. (1999). Effect of long term minimum and zero-tillage on rice and wheat yield, organic matter and bulk density. Scientia Agriculture Sinica 34: 3944.Google Scholar