On-farm adaptation of knowledge-intensive nitrogen management technologies for rice systems

被引:26
作者
Balasubramanian V. [1 ]
Morales A.C. [1 ]
Cruz R.T. [2 ]
Abdulrachman S. [3 ]
机构
[1] Intl. Rice Research Institute, Los Banos, 1099 Manila
[2] Philippine Rice Research Institute, Maligaya, Munoz
[3] Research Institute for Rice, Sukamandi 41256, Subang, West Java
关键词
Chlorophyll meter; Efficient N use; intensive rice systems; Leaf color chart; Variable application rate;
D O I
10.1023/A:1009744605920
中图分类号
学科分类号
摘要
Efficient use of all inputs is vital to achieve and sustain high crop yields, maintain resource quality, and minimize environmental pollution. Fertilizer N is one of the major inputs in rice production. Blanket fertilizer recommendations do not take into account the high field-to-field variability and within-season dynamic changes in indigenous N supply. Since the plant growth reflects the total N supply from all sources, plant N status will be a good indicator of N availability to crops at any given time. The chlorophyll meter (SPAD) and leaf color chart (LCC) are simple, portable diagnostic tools that can measure the crop N status in situ in rice fields to determine the timing of N topdressing. Such decision aids are useful to vary N application rates to rice crops, based on crop demand and indigenous N supply. Although the chlorophyll meter cannot be owned by individual farmers due to its high cost, it is a practically useful tool for field researchers, extension specialists, and crop consultants who do not have access to well-equipped laboratories. On-farm, adaptive research is in progress in 3 countries to adapt the chlorophyll meter technique for transplanted and wet-seeded rice, local cultivar groups, and soil, crop, and environmental conditions. Initial results indicate that the SPAD threshold value of 35 is good for transplanted rice in dry season. The threshold has to be reduced to 32 for wet-seeded rice in dry season and for all rice during wet season with cloudy weather and low radiation. Thus, when calibrated with local cultivar groups and crop conditions, it can be used to accurately monitor crop N status and to advise farmers on N topdressing for rice. It can also be used effectively to verify the adequacy of existing N fertilizer recommendations to rice by the in situ monitoring of foliar N status of crops fertilized with current recommendations and to refine them to further improve N fertilization of rice. The LCC is not as accurate as the chlorophyll meter in determining the leaf N status in rice crops. However, LCC can be calibrated with the chlorophyll meter to fix the critical color shade for local rice cultivar groups and crop conditions. Farmers can, then, use the LCC to qualitatively assess foliar N status and adjust N topdressing to their rice crops. Initial feedback on the use of LCC from farmer cooperators in the Philippines is highly encouraging. Both methods are affected by factors such as varietal group, plant density, crop stress that causes leaf chlorosis, soil nutrient status, and climate; therefore, they have to be adapted to specific soil, climatic, and crop conditions. Adequate training is necessary for both extension agents and farmers to properly use the new tools for increasing the efficiency N fertilizer use on rice. Wider farmer adoption of the two diagnostic tools discussed in this paper will minimize over-fertilization of rice, increase profitability, and decrease fertilizer-related pollution of the environment.
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页码:59 / 69
页数:10
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共 32 条
  • [1] Blackmer T.M., Schepers J.S., Varvel G.E., Walter-Shea E.A., Nitrogen deficiency detection using reflected short wave radiation from irrigated corn canopies, Agron J, 88, pp. 1-5, (1996)
  • [2] Broadbent F.E., Plant use of soil nitrogen, Nitrogen in Crop Production, pp. 171-182, (1984)
  • [3] Cassman K.G., Pingali P.L., Intensification of irrigated rice systems: Learning from the past to meet future challenges, GeoJournal, 35, 3, pp. 299-305, (1995)
  • [4] Cassman K.G., Gines H.C., Dizon M.A., Samson M.I., Alcantara J.M., Nitrogen-use efficiency in tropical lowland rice systems: Relative contributions of indigenous soil resources and applied nitrogen inputs, Field Crops Res, 47, pp. 1-12, (1996)
  • [5] Chubachi T., Asano I., Oikawa T., The diagnosis of nitrogen nutrition of rice plants (Sasanishiki) using chlorophyll meter, Soil Sci Plant Nutr, 57, pp. 190-193, (1986)
  • [6] Dobermann A., Cassman K.G., Peng S., Tan P.S., Phung C.V., Sta. Cruz P.C., Bajita J.B., Maa A., Olk D.C., Precision nutrient management in intensive irrigated rice systems, Symposium of the Paddy Soil Fertility Working Group of ISSS, (1996)
  • [7] Furuya S., Growth diagnosis of rice plants by means of leaf color, Jap Agric Res Q, 20, pp. 147-153, (1987)
  • [8] Garcia F.V., Peng S., Gines H.C., Laza R.C., Sanico A.L., Visperas R.M., Cassman K.G., Chlorophyll meter-based nitrogen management improves nitrogen use efficiency of irrigated rice in farmers' fields, Crop Research in Asia: Proc 2nd Asian Crop Sci Conf, pp. 187-190, (1996)
  • [9] Gardner G., Preserving agricultural resources, State of the World 1996, pp. 78-94, (1996)
  • [10] Hapgood F., High-tech Harvest Inc. Technology No. 3, 3, pp. 52-56, (1995)