Quantifying the impact of frost damage during flowering on apple yield in Shaanxi province, China
暂无分享,去创建一个
P. Feng | Yang Song | Jing Wang | Yang Li | Mingxia Huang | Lu Liu | Zhenjiang Qu | Renwei Chen
[1] J. Wang,et al. Spatiotemporal evolution and suitability of apple production in China from climate change and land use transfer perspectives , 2022, Food and Energy Security.
[2] Guijun Yang,et al. Forecasting regional apple first flowering using the sequential model and gridded meteorological data with spatially optimized calibration , 2022, Comput. Electron. Agric..
[3] P. Feng,et al. Dominant sources of uncertainty in simulating maize adaptation under future climate scenarios in China , 2022, Agricultural Systems.
[4] Binhui Liu,et al. Predicting yield loss in winter wheat due to frost damage during stem elongation in the central area of Huang-huai plain in China , 2022, Field Crops Research.
[5] P. Feng,et al. Assessing maize potential to mitigate the adverse effects of future rising temperature and heat stress in China , 2021, Agricultural and Forest Meteorology.
[6] Yongguang Hu,et al. A Review of Methods and Techniques for Detecting Frost on Plant Surfaces , 2021, Agriculture.
[7] Xuexi Huo,et al. Impact of Internet Information on Apple Growers’ Adaptive Behaviors to Frost Disasters: Theory and Empirical Research from the Perspective of Psychological Perception , 2021, Agriculture.
[8] H. Brown,et al. Developing perennial fruit crop models in APSIM Next Generation using grapevine as an example , 2021, in silico Plants.
[9] Chunjiang Zhao,et al. Estimation of Apple Flowering Frost Loss for Fruit Yield Based on Gridded Meteorological and Remote Sensing Data in Luochuan, Shaanxi Province, China , 2021, Remote. Sens..
[10] S. Ostoja,et al. Climate change reduces frost exposure for high-value California orchard crops. , 2020, The Science of the total environment.
[11] Y. Rao,et al. Response of winter wheat to spring frost from a remote sensing perspective: Damage estimation and influential factors , 2020 .
[12] Blas M. Benito,et al. Late-spring frost risk between 1959 and 2017 decreased in North America but increased in Europe and Asia , 2020, Proceedings of the National Academy of Sciences.
[13] Bin Wang,et al. Optimizing sowing window and cultivar choice can boost China’s maize yield under 1.5 °C and 2 °C global warming , 2020, Environmental Research Letters.
[14] M. Feng,et al. Canopy hyperspectral characteristics and yield estimation of winter wheat (Triticum aestivum) under low temperature injury , 2020, Scientific Reports.
[15] C. Schleussner,et al. Increasing risks of apple tree frost damage under climate change , 2019, Climatic Change.
[16] Jianqiang He,et al. Possible impact of climate change on apple yield in Northwest China , 2019, Theoretical and Applied Climatology.
[17] Z. György,et al. Frost hardiness of apple (Malus X domestica) flowers in different phenological phases , 2019, Scientia Horticulturae.
[18] Eike Luedeling,et al. Distribution margins as natural laboratories to infer species’ flowering responses to climate warming and implications for frost risk , 2019, Agricultural and Forest Meteorology.
[19] P. Abbate,et al. Frost damage on grain number in wheat at different spike developmental stages and its modelling , 2019, European Journal of Agronomy.
[20] D. Plénet,et al. A simulation study of synergies and tradeoffs between multiple ecosystem services in apple orchards. , 2019, Journal of environmental management.
[21] Heikki Hänninen,et al. Divergent trends in the risk of spring frost damage to trees in Europe with recent warming , 2018, Global change biology.
[22] G. O'Leary,et al. Frost response in wheat and early detection using proximal sensors , 2018, Journal of Agronomy and Crop Science.
[23] Lian Meirong,et al. Identifying climatic factors and circulation indices related to apple yield variation in main production areas of China. , 2018 .
[24] M. I. Minguez,et al. Effect of freezing temperature and duration on winter survival and grain yield of winter wheat , 2018, Agricultural and Forest Meteorology.
[25] S. Asseng,et al. Estimating spring frost and its impact on yield across winter wheat in China , 2018, Agricultural and Forest Meteorology.
[26] K. Steininger,et al. Spring frost risk for regional apple production under a warmer climate , 2018, PloS one.
[27] D. Ripoche,et al. Analyzing ecosystem services in apple orchards using the STICS model , 2018 .
[28] G. Matteucci,et al. Assessing spring frost effects on beech forests in Central Apennines from remotely-sensed data , 2018 .
[29] C. Rixen,et al. Increase in the risk of exposure of forest and fruit trees to spring frosts at higher elevations in Switzerland over the last four decades , 2018 .
[30] M. Bindi,et al. Late spring frost impacts on future grapevine distribution in Europe , 2017, Field Crops Research.
[31] Masaharu Kitano,et al. Dynamic distribution of thermal effects of an oscillating frost protective fan in a tea field , 2017 .
[32] E. Wang,et al. Changes in wheat potential productivity and drought severity in Southwest China , 2017, Theoretical and Applied Climatology.
[33] W. Cao,et al. Effects of jointing and booting low temperature stresses on grain yield and yield components in wheat , 2017 .
[34] I. Farrera,et al. A global evaluation of apple flowering phenology models for climate adaptation , 2017 .
[35] C. Körner,et al. Convergence of leaf-out towards minimum risk of freezing damage in temperate trees , 2016 .
[36] R. Savé,et al. Future climate change impacts on apple flowering date in a Mediterranean subbasin , 2016 .
[37] Melba R. Salazar-Gutierrez,et al. Freezing tolerance of apple flower buds , 2016 .
[38] Yann Guédon,et al. Differentiated Responses of Apple Tree Floral Phenology to Global Warming in Contrasting Climatic Regions , 2015, Front. Plant Sci..
[39] H. Fraga,et al. Modeling Phenology, Water Status, and Yield Components of Three Portuguese Grapevines Using the STICS Crop Model , 2015, American Journal of Enology and Viticulture.
[40] Marco Bindi,et al. Modelling olive trees and grapevines in a changing climate , 2015, Environ. Model. Softw..
[41] Philippe Ciais,et al. Declining global warming effects on the phenology of spring leaf unfolding , 2015, Nature.
[42] W. Cao,et al. Spring Freeze Effect on Wheat Yield is Modulated by Winter Temperature Fluctuations: Evidence from Meta‐Analysis and Simulating Experiment , 2015 .
[43] E. Wang,et al. Differences between observed and calculated solar radiations and their impact on simulated crop yields , 2015 .
[44] G. O'Leary,et al. Simulating the impact of extreme heat and frost events on wheat crop production: a review , 2015 .
[45] Annette Menzel,et al. Chilling outweighs photoperiod in preventing precocious spring development , 2014, Global change biology.
[46] T. Hytönen,et al. The regulation of seasonal flowering in the Rosaceae. , 2013, Journal of experimental botany.
[47] Holger Hoffmann,et al. Future Bloom and Blossom Frost Risk for Malus domestica Considering Climate Model and Impact Model Uncertainties , 2013, PloS one.
[48] Volker Dose,et al. Detecting nonlinear response of spring phenology to climate change by Bayesian analysis , 2013, Global change biology.
[49] L. Webb,et al. Evaluation of recent trends in Australian pome fruit spring phenology , 2013, International Journal of Biometeorology.
[50] Frank-M. Chmielewski,et al. Shortcomings of classical phenological forcing models and a way to overcome them , 2012 .
[51] O. M. Heide. Temperature rather than photoperiod controls growth cessation and dormancy in Sorbus species , 2011, Journal of experimental botany.
[52] Chang-Hoi Ho,et al. Phenology shifts at start vs. end of growing season in temperate vegetation over the Northern Hemisphere for the period 1982–2008 , 2011 .
[53] S. Grab,et al. Advance of apple and pear tree full bloom dates in response to climate change in the southwestern Cape, South Africa: 1973–2009 , 2011 .
[54] Kazuhiko Kobayashi,et al. Apple (Malus pumila var. domestica) phenology is advancing due to rising air temperature in northern Japan , 2010 .
[55] Y. Guédon,et al. Analysis of the flowering time in apple and pear and bud break in vine, in relation to global warming in France. , 2010 .
[56] Constance A. Harrington,et al. Modeling the effects of winter environment on dormancy release of Douglas-fir , 2010 .
[57] C. Augspurger,et al. Leaf phenology in 22 North American tree species during the 21st century , 2009 .
[58] A. Crisci,et al. Risk of spring frost to apple production under future climate scenarios: the role of phenological acclimation , 2009, International journal of biometeorology.
[59] C. Beierkuhnlein,et al. A new generation of climate‐change experiments: events, not trends , 2007 .
[60] H. Keulen,et al. A method for assessing frost damage risk in sweet cherry orchards of South Patagonia , 2006 .
[61] C. M. Jiménez,et al. Statistical Model Estimates Potential Yields in Pear Cultivars `Blanquilla' and `Conference' before Bloom , 2003 .
[62] Carlos Miranda Jiménez,et al. A statistical model to estimate potential yields in peach before bloom , 2003 .
[63] K. Kramer. A modelling analysis of the effects of climatic warming on the probability of spring frost damage to tree species in the Netherlands and Germany , 1994 .
[64] 邵主恩,赵西宁,高晓东,王绍飞,王宪志,吴普特 SHAO Zhuen. Assessing ecosystem services in apple orchard in the Loess Plateau based on STICS model , 2021, Acta Ecologica Sinica.
[65] Wang Jing-hon. Revision on Meteorological Indices of Florescence Frost Disaster for Fuji Apple in Shaanxi Province , 2015 .
[66] Chusak Limsakul,et al. Multi-substation control central load area forecasting by using HP-filter and double neural networks (HP-DNNs) , 2013 .
[67] DU Ji-wen. Analysis of frost damage during apple bloom period in Shaanxi province , 2008 .
[68] O. M. Heide,et al. Low temperature, but not photoperiod, controls growth cessation and dormancy induction and release in apple and pear. , 2005, Tree physiology.
[69] Şan,et al. The Late Spring Frost Hardiness of Some Apple Varieties at Various Stages of Flower Buds , 2005 .
[70] H. Sinoquet,et al. An overview of the crop model STICS , 2003 .
[71] James W. Jones,et al. The DSSAT cropping system model , 2003 .
[72] V. Singh,et al. The EPIC model. , 1995 .