Scientia Agricultura Sinica ›› 2014, Vol. 47 ›› Issue (21): 4246-4256.doi: 10.3864/j.issn.0578-1752.2014.21.010

• TILLAGE & CULTIVATION·PHYSIOLOGY & ECOLOGY • Previous Articles     Next Articles

Study on Spatial Differences of Late Frost Injury to Winter Wheat and Its Reasons at Field Scale

WU Yong-feng1, HU Xin2, ZHONG Xiu-li1, LÜ Guo-hua1, REN De-chao2, SONG Ji-qing1   

  1. 1Institute of Environment and Sustainable Development in Agriculture, Chinese Academy of Agricultural Sciences/Key Laboratory of Agricultural Environment, Ministry of Agriculture, Beijing 100081
    2Wheat Research Institute, Shangqiu Academy of Agriculture and Forestry Sciences, Shangqiu 476000, Henan
  • Received:2014-01-06 Revised:2014-08-05 Online:2014-11-01 Published:2014-11-01

Abstract: 【Objective】At the field scale, the study was conducted to investigate spatial differences of late frost injury to winter wheat and their influences on yields. The reasons for the spatial differences were discussed, which might provide a priori knowledge for predicting late frost damage and regulating influence factors.【Method】A frost-prone farmland in Shangqiu was selected as the study area where a winter wheat cultivar Aikang58 was sowed. Natural frost occurred in April 7, 10 and 21, 2013, when the winter wheat was in the periods from middle jointing to booting stage. At maturity, ear number and actual yield per square meter, and soil fertilities were respectively measured based on one hundred sampling points (the interval between samples is 5 m). Four indexes, such as dead ear rate (DER), injured ear rate (IER), injured ear index (IEI) and yield loss rate (YLR), were established to evaluate late frost damage. Their spatial differences and relations with ear number and actual yield were estimated using multiple linear stepwise regression method, geo-statistics method, cluster method, ANOVA and multiple comparison methods. In order to reveal the reasons for the spatial differences, late frost indexes related to developmental progressions of winter wheat and soil fertility factors were measured at early returning green stage. 【Result】 Through the stepwise regression, DER was found to be the only factor affected ear number and showed a negative effect. Factors, including IEI, DER and IER, all showed negative effects on actual yield. Of all the factors, IEI was the most powerful (its direct path coefficient reached -0.453) to actual yield. DER, IER and IEI were the factors impacted YLR and all showed positive effects, indicating that YLR increased with their increments. DER showed the most influence (its direct path coefficient was up to 0.626) on YLR. Late frost damage had a positive spatial autocorrelation (P<0.05). Sampling points with similar frost damage degrees tended to the clustering distribution in the local space. Of all the damage evaluation indexes, YLR showed the strongest clustering distribution (Moran’s I=0.5538). The result of frost damage divisions indicated that ear number and actual yield significantly decreased (P<0.05) with deepening frost injuries. The index DER showed the biggest increase (the amplitude reached 271.3%), followed by IER (36.4%) and IEI (31.8%). They comprehensively led to a sharp rise of YLR (132.1%). Sampling points with the most severe frost injury almost showed a contiguous distribution. Developmental progression of winter wheat and soil nitrogen in the turn-green stage showed obviously spatial differences and had a certain spatial correlation with late frost damage. A significant difference (P<0.05) was found between total nitrogen, hydrolysable nitrogen, available phosphorus, available potassium and organic matter and the frost evaluation indexes. As soil nutrient content reduced, frost damage had a deepening trend. After the green up, the persistent drought made the soil water content decreased rapidly, further exacerbating the extent of frost damage. 【Conclusion】 At the field scale, the spatial differences of ear number and actual yield influenced by late frost damage were obvious. The spatial pattern of frost damage was significantly related to the developmental progress of winter wheat and soil nitrogen at returning-green stage, indicating that it maybe has an opportunity to predict frost damage risks early and regulating influence factors in the fine scale.

Key words: winter wheat, field scale, late frost damage, spatial division, developmental progress, soil fertility

[1]    Paulsen G, Heyne E. Grain production of winter wheat after spring freeze injury. Agronomy Journal, 1983, 75(4): 705-707.
[2]    Single W V. Frost injury and the physiology of the wheat plant. Journal of the Australian Institute of Agricultural Science, 1985, 51(2): 128-134.
[3]    Boer R, Campbell L, Fletcher D. Characteristics of frost in a major wheat-growing region of Australia. Australian Journal of Agricultural Research, 1993, 44(8): 1731-1743.
[4]    Cromey M G, Wright D S C, Boddington H J. Effects of frost during grain filling on wheat yield and grain structure. New Zealand Journal of Crop and Horticultural Science, 1998, 26(4): 279-290.
[5]    Marcellos H, Single W V. Frost injury in wheat ears after ear emergence. Australian Journal of Plant Physiology, 1984, 11(2): 7-15.
[6]    Zhong X L, Mei X R, Li Y Z, Yoshida H, Zhao P, Wang X G, Han L S, Hu X, Huang S H, Huang J Y, Sun Z F. Changes in frost resistance of wheat young ears with development during jointing stage. Journal of Agronomy and Crop Science, 2008, 194(5): 343-349.
[7]    张雪芬, 郑有飞, 王春乙, 陈怀亮, 任振和, 邹春辉. 冬小麦晚霜冻害时空分布与多时间尺度变化规律分析. 气象学报, 2009, 67(2): 321-330.
Zhang X F, Zheng Y F, Wang C Y, Chen H L, Ren Z H, Zou C H. Spatial-temporal distribution and multiple-temporal scale variation analyses of winter wheat late freezing injury. Acta Meteorologica Sinica, 2009, 67(2): 321-330. (in Chinese)
[8]    Mahfoozi S, Limin A E, Ahakpaz F, Fowler D B. Phenological development and expression of freezing resistance in spring and winter wheat under field conditions in northwest Iran. Field Crops Research, 2006, 97(2-3): 182-187.
[9]    冯玉香, 何维勋, 孙忠富, 钟秀丽. 我国冬小麦霜冻害的气候分析. 作物学报, 1999, 25(3): 335-340.
Feng Y X, He W X, Sun Z F, Zhong X L. Climatological study on frost damage of winter wheat in China. Acta Agronomy Sinica, 1999, 25(3): 335-340. (in Chinese)
[10]   钟秀丽, 王道龙, 李玉中, 赵鹏, 闫旭宇, 孙忠富. 黄淮麦区小麦拔节后霜害的风险评估. 应用气象学报, 2007, 18(1): 102-107.
Zhong X L, Wang D L, Li Y Z, Zhao P, Yan X Y, Sun Z F. Risk assessment of frost damage in wheat. Journal of Applied Meteorological Science, 2007, 18(1): 102-107. (in Chinese)
[11]   钟秀丽, 王道龙, 赵鹏, 闫旭宇, 苏常红, 孙忠富. 黄淮麦区小麦拔节后霜冻的农业气候区划. 中国生态农业学报, 2008, 16(1): 11-15.
Zhong X L, Wang D L, Zhao P, Yan X Y, Su C H, Sun Z F. Frost- driven agricultural climatic divisions of winter-wheat in Huang-Huai wheat production zones. Chinese Journal of Eco-Agriculture, 2008, 16(1): 11-15. (in Chinese)
[12]   林晓梅, 岳耀杰, 苏筠. 我国冬小麦霜冻灾害致灾因子危险度评价——基于作物生育阶段气象指标. 灾害学, 2009, 24(4): 45-50.
Lin X M, Yue Y J, Su J. Frost hazard risk assessment of winter wheat: based on the meteorological indicator at different growing stages. Journal of Catastrophology, 2009, 24(4): 45-50. (in Chinese)
[13]   顾万龙, 姬兴杰, 朱业玉. 河南省冬小麦晚霜冻害风险区划. 灾害学, 2012, 27(3): 39-44.
Gu W L, Ji X J, Zhu Y Y. Risk regionalization of winter wheat late freezing injury in Henan province. Journal of Catastrophology, 2012, 27(3): 39-44. (in Chinese)
[14]   张朝生, 章申, 张立成, 王立军. 长江水系河流沉积物重金属元素含量的计算方法研究. 环境科学学报, 1995, 15(3): 257-264.
Zhang C S, Zhang S, Zhang L C, Wang L J. Calculation of heavy metal contents in sediments of the Changjiang river system. Acta Scientiae Circumstantiae, 1995, 15(3): 257-264. (in Chinese)
[15]   Moran P. Notes on continuous stochastic phenomena. Biometrika, 1950, 37(1-2): 17-23.
[16]   胡和兵, 刘红玉, 郝敬锋, 安静. 城市化流域生态系统服务价值时空分异特征及其对土地利用程度的响应. 生态学报, 2013, 33(8): 2565-2576.
Hu H B, Liu H Y, Hao J F, An J. Spatio-temporal variation in the value of ecosystem services and its response to land use intensity in an urbanized watershed. Acta Ecologica Sinica, 2013, 33(8): 2565-2576. (in Chinese)
[17]   孟斌, 王劲峰, 张文忠, 刘旭华. 基于空间分析方法的中国区域差异研究. 地理科学, 2005, 25(4): 393-400.
Meng B, Wang J F, Zhang W Z, Liu X H. Evaluation of regional disparity in China based on spatial analysis. Scientia Geographica Sinica, 2005, 25(4): 393-400. (in Chinese)
[18]   阳体冰, 朱塘松. 江苏省三麦春霜冻害的发生规律及其防御. 中国农业科学, 1963, 4(3): 13-18.
Yang B T, Zhu T S. Occurrence and prevention of spring frost damage to three types of wheat in Jiangsu province. Scientia Agricultura Sinica, 1963, 4(3): 13-18. (in Chinese)
[19]   Whaley J M, Kirby E J M, Spink J H, Foulkes M J, Sparkes D L. Frost damage to winter wheat in the UK: the effect of plant population density. European Journal of Agronomy, 2004, 21(1): 105-115.
[20]   Legge W G, Fowler D B, Gusta L V. Cold hardiness of winter wheat tillers acclimated under field conditions. Canadian Journal of Plant Science, 1983, 63(4): 879-888.
[21]   Marcellos H, Single W V. Temperatures in wheat during radiation frost. Australian Journal of Experimental Agriculture and Animal Husband, 1975, 15(77): 818-822.
[22]   马爱平, 亢秀丽, 靖华, 王裕智, 刘建华, 崔欢虎. 春季低温冻害下不同栽培因子对小麦产量的影响. 农学学报, 2011, 1(3): 13-17.
Ma A P, Kang X L, Jing H, Wang Y Z, Liu J H, Cui H H. Contribution of different culture factors to wheat yield under spring low temperature freezing injury condition. Journal of Agriculture, 2011, 1(3): 13-17. (in Chinese)
[23]   Willis W O, Carlson C W, Alessi J, Haas H J. Depth of freezing and spring run-off as related to fall soil-moisture level. Canadian Journal of Soil Science, 1961, 41(1): 115-123.
[24]   Cambardella C A, Moorman T B, Novak J M, Parkin T B, Karlen D L, Turco R F, Konopka A E. Field-scale variability of soil properties in central Iowa soils. Soil Science Society of America Journal, 1994, 58(5): 1501-1511.
[25]   高祥照, 胡克林, 郭焱, 李保国, 马韫韬, 杜森, 王运华. 土壤养分与作物产量的空间变异特征与精确施肥. 中国农业科学, 2002, 35(6): 660-666.
Gao X Z, Hu K L, Guo Y, Li B G, Ma W T, Du S, Wang Y H. Spatial variability of soil nutrients and crop yield and site-specific fertilizer management. Scientia Agricultura Sinica, 2002, 35(6): 660-666. (in Chinese)
[26]   鲁坦, 范雪峰. 2010年河南省晚霜冻天气成因分析. 气象与环境科学, 2012, 35(1): 43-48.
Lu T, Fan X F. Cause analysis of late frost of Henan province in 2010. Meteorological and Environmental Sciences, 2012, 35(1): 43-48. (in Chinese)
[27]   王慧芳. 基于多源数据冬小麦冻害遥感监测研究[D]. 杭州: 浙江大学, 2013.
Wang H F. Winter wheat freeze injury research based on multi-sources remote sensing data [D]. Hangzhou: Zhejiang University, 2013. (in Chinese)
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