作物学报 ›› 2010, Vol. 36 ›› Issue (05): 840-847.doi: 10.3724/SP.J.1006.2010.00840
鱼欢1,2,邬华松1,3,王之杰2
YU Huan1,2,WU Hua-Song1,3,WANG Zhi-Jie2
摘要:
为了探讨玉米生长过程中适宜的施氮量,以加拿大玉米品种Pioneer 38B84为试验材料,在底施氮为45 kg hm-2和基本苗7.9万株 hm-2条件下,研究追氮量0、34、68、101、135、169和203 kg hm-2以及氮饱和参考小区等8个处理对吐丝后玉米穗位叶SPAD值、Dualex值、地上部生物量及产量的影响。结果表明,SPAD值、地上部生物量以及产量均随追氮量增加而增加,Dualex值随追氮量增加而降低。追氮101、135、169和203 kg hm-2处理的SPAD-氮饱和指数(SPAD-NSI)在各测定日期均大于0.95。追氮101 kg hm-2处理的Dualex-NSI在吐丝后18~46 d大于0.95;追氮135、169和203 kg hm-2各处理的Dualex-NSI在各测定日期均大于0.95。SPAD 值、Dualex 值、SPAD-NSI和Dulaex-NSI均与追氮量显著相关。在拔节期追氮101 kg hm-2 或135 kg hm-2即可满足玉米生长对氮素的需求,获得最大的经济产量。当超过最大产量施肥量时,氮肥用量的增加对SPAD值、Dualex值、地上部生物量以及产量均无显著影响。追肥不仅可达到与氮饱和参考小区同样的产量效果,而且还可减少氮肥的施用量,减少种植者的经济投入。在本试验条件下,基施氮45 kg hm-2,在拔节期适宜的追氮量为101 kg hm-2或135 kg hm-2。SPAD叶绿素仪与Dualex仪均可用来诊断玉米的氮素营养状况。
| [1] Elia A, Santamaria P, Serio F. Nitrogen nutrition, yield and quality of spinach. J Sci Food Agric, 1988,76: 341–346 [2] Samonte S O P B, Wilson L T, Medley J C, Pinson S R M, McClung A M, Lales J S. Nitrogen utilization efficiency: Relationships with grain yield, grain protein, and yield-related traits in rice. Agron J,2006, 98: 168–176 [3] Ferguson R B, Hergert G W, Schepers J S, Gotway C A, Cahoon J E, Peterson T A. Site-specific nitrogen management of irrigated maize: Yield and soil residual nitrate effects. Soil Sci Soc Am J,2002, 66: 544–553 [4] Arora Y, Juo A S R. Leaching of fertilizer ions in a Kaolinitic Ultisol in the high rainfall tropics: Leaching of nitrate in field plots under cropping and bare fallow. ,1982, 46: 1212–1218Soil Sci Soc Am J [5] Randall G W, Vetsch J A, Huffman J R. Corn production on a subsurface-drained mollisol as affected by time of nitrogen application and nitrapyrin. Agron J, 2003, 95: 1213–1219 [6] Fox R H, Kern J M, Piekielek W P. Nitrogen fertilizer source, and method and time of application effects on no-till corn yields and nitrogen uptake. Agron J, 1986, 78: 741–746 [7] Russelle M P, Deibert E J, Hauck R D, Stevanovic M, Olson R A. Effects of water and nitrogen management on yield and 15N-depleted fertilizer use efficiency of irrigated corn. Soil Sci Soc Am J, 1981, 45: 553–558 [8] Welch L F, Mulvaney D L, Oldham M G, Boone L V, Pendleton J W. Corn yields with fall, spring, and sidedress nitrogen. Agron J, 1971, 63: 119–123 [9] Wood C W, Reeves D W, Duffield R R, Edmisten K L. Field chlorophyll measurements for evaluation of corn nitrogen status. J Plant Nutr,1992, 15: 487–500 [10] Arregui L M, Lasa B, Lafarga A, Iranneta I, Baroja E, Quemada M. Evaluation of chlorophyll meters as tools for N fertilization in winter wheat under humid Mediterranean conditions. Eur J Agron,2006, 24: 140–148 [11] Turner F T, Jund M F. Chlorophyll meter to predict nitrogen topdress requirement for semidwarf rice. Agron J, 1991, 83: 926–928 [12] Varvel G E, Schepers J S, Francis D D. Ability for in-season correction of nitrogen deficiency in corn using chlorophyll meters. Soil Sci Soc Am J,1997, 6: 1233–1239 [13] Schepers J S, Francis D D, Vigil M, Below F E. Comparison of corn leaf nitrogen concentration and chlorophyll meter readings. Commun Soil Sci Plan,1992,23: 2173–2187 [14] Hussain F, Bronson K F, Yadvinder S, Bijay S, Peng S. Use of chlorophyll meter sufficiency indices for nitrogen management of irrigated rice in Asia. Agron J, 2000, 92: 875–879 [15] Blackmer T M, Schepers J S. Use of a chlorophyll meter to monitor nitrogen status and schedule fertigation for corn. J Prod Agric,1995, 8: 56–60 [16] Tremblay N, Bélec C. Adapting nitrogen fertilization to unpredictable seasonal conditions with the least impact on-the environment. Horttechnology,2006, 16: 408–412 [17] Shapiro C A. Using a chlorophyll meter to manage nitrogen applications to corn with high nitrate irrigation water. Commun Soil Sci Plan, 1999, 30: 1037–1049 [18] Caldwell M M, Gold W G, Harris G, Ashurst C W. A modulated lamp system for solar UV-B (280–320 nm) supplementation studies in the field. Photochem Photobiol,1983, 37: 479–485 [19] Cerovic Z G, Ounis A, Cartelat A, Latouche G, Goulas Y, Meyer S, Moya I. The use of chlorophyll fluorescence excitation spectra for the non-destructive in situassessment of UV-absorbing compounds in leaves. Plant Cell Environ, 2002, 25: 1663–1676 [20] Cartelat A, Cerovic Z G, Goulas Y, Meyer S, Lelarge C, Prioul J L, Barbottin A, Jeuffroy M H, Gata P, Agati G, Moya I. Optically assessed contents of leaf polyphenolics and chlorophyll as indicators of nitrogen deficiency in wheat (Triticum aestivum L.). Field Crops Res,2005, 91: 35–49 [21] Goulas Y, Cerovic Z G, Cartelat A, Moya I. Dualex: a new instrument for field measurements of epidermal UV-absorbance by chlorophyll fluorescence. Appl Optics, 2004, 43: 4488–4496 [22] Tremblay N, Wang Z J, Bélec C. Evaluation of the Dualex for the assessment of corn nitrogen status. J Plant Nutr, 2007, 30: 1355–1369 [23] Delgado J A, Ristau R J, Dillon M A, Duke H R, Stuebe A, Follett R F, Shaffer M J, Riggenbach R R, Sparks R T, Thompson A, Kawanabe L M, Kunugi A, Thompson K. Use of innovative tools to increase nitrogen use efficiency and protect environmental quality in crop rotations. Commun Soil Sci Plan, 2001, 32: 1321–1354 [24] Ma B L, Dwyer L M, Gregorich E G. Soil N amendment, effects on seasonal N mineralization and N cycling in maize production. Agron J, 1999, 91: 1003–1009 |
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