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5篇 您的检索式:作者名="Geovane"
    题名 作者 年代 出处 被引量
1Copolymers of sodium styrenesulphonate with n-butylvinylether and noctadecylvinylether prepared by micellar copolymerization 显示文摘Miguel G Neummau Geovane L de Sena 1999Polymer1999,40,:1
2Commercial formulation containing quinclorac and metsulfuron-methyl herbicides inhibit acetylcholinesterase and induce biochemical alterations in tissues of Leporinus obtusidens显示文摘Alexandra Pretto Vania Lucia Loro Charlene Menezes Bibiana Silveira Moraes Geovane Boschmann Reimche Renato Zanella Luis Antonio de ávila 2010Ecotoxicology and Environmental Safety2010,,3:1
3Imazethapyr and Imazapic, Bispyribac- Sodium and Penoxsulam: Zooplankton and Dissipation in Subtropical Rice Paddy Water 显示文摘REIMCHE GEOVANE B 2015Science of the Total Environment2015,,514:1
4Soil texture prediction through stratification of a regional soil spectral library显示文摘Knowing the spatial distribution of soil texture,which is a physical property,is essential to support agricultural and environmental decision making.Soil texture can be estimated using visible,near infrared,and shortwave infrared(Vis-NIR-SWIR)spectroscopy.However,the performance of spectroscopic models is variable because of soil heterogeneity.Currently,few studies address the effects of soil sample variability on the performance of the models,especially for larger spectral libraries that include soils that are more heterogeneous.Therefore,the objectives of this study were to:i)apply Vis-based color parameters on the stratification of a regional soil spectral library;ii)evaluate the performance of the predictive models generated from the spectral library stratification;iii)compare the performance of stratified models(SMs)and the model without stratification(WSM),and iv)explain possible changes in prediction accuracy based on the SMs.Thus,a regional soil spectral library with 1535 samples from the State of Santa Catarina,Brazil was used.Soil reflectance data were obtained by Vis-NIR-SWIR spectroscopy in the laboratory using a spectroradiometer covering the 350–2500 nm spectral range.Sand,silt,and clay fractions were determined using the pipette method.Twenty-two components of color parameters were derived from the Vis spectrum using the colorimetric models.A cubist regression algorithm was used to assess the accuracy of the applicability of the initial models(SMs and WSM)and of the validation between the clusters.Fractional order derivatives(FODs)at 0.5,1.5,and 2 intervals were used to explain possible changes in the performance of the SMs.The SMs with higher contents of clay and iron oxides obtained the highest accuracy,and the most important spectral bands were identified,mainly in the 480–550 and 850–900 nm ranges and the 1400,1900,and 2200 nm bands.Therefore,stratification of soil spectral libraries is a good strategy to improve regional assessments of soil resources,reducing prediction errors in the qualitative determination of soil properties.José Janderson Ferreira COSTA élvio GIASSON Elisangela Benedet DA SILVA Tales TIECHER Antonny Francisco Sampaio DE SENA Ryshardson Geovane Pereira de Oliveira E SILVA 2022Pedosphere2022,32,2:0
5Natural disaster in the mountainous region of Rio de Janeiro state,Brazil:Assessment of the daily rainfall erosivity as an early warning index显示文摘Rainfall erosivity is defined as the potential of rain to cause erosion.It has great potential for application in studies related to natural disasters,in addition to water erosion.The objectives of this study were:ⅰ)to model the Rday using a seasonal model for the Mountainous Region of the State of Rio de Janeiro(MRRJ);ⅱ)to adjust thresholds of the Rday index based on catastrophic events which occurred in the last two decades;andⅲ)to map the maximum daily rainfall erosivity(Rmaxday)to assess the region's suscepti-bility to rainfall hazards according to the established Rday limits.The fitted Rday model presented a satisfactory result,thereby enabling its application as a Rday estimate in MRRJ.Events that resulted in Rday>1500 MJ ha-1.mm.h-1.day-1 were those with the highest number of fatalities.The spatial distribution of Rmaxday showed that the entire MRRJ has presented values that can cause major rainfall.The Rday index proved to be a promising indicator of rainfall disasters,which is more effective than those normally used that are only based on quantity(mm)and/or intensity(mm.h-1)of the rain.Geovane J.Alves Carlos R.Mello Li Guo Michael S.Thebaldi 2022International Soil and Water Conservation Research2022,10,4:0
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