Field sprayer for inter- and intra-row weed control: performance and labor savings

被引:32
作者
Carballido, J. [1 ]
Rodriguez-Lizana, A. [2 ]
Agueera, J. [1 ]
Perez-Ruiz, M. [2 ]
机构
[1] Univ Cordoba, Dept Ingn Rural, Cordoba 14014, Spain
[2] Univ Seville, Dept Ingn Aeroespacial & Mecan Fluidos, Area Ingn Agroforestal, Seville 41013, Spain
关键词
hooded sprayer; precision farming; herbicide application; site-specific management; SUGAR-BEET; GENE FLOW; DIVERSITY;
D O I
10.5424/sjar/2013113-3812
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
Studies of new tools and methods for weed control have been motivated by increased consumer demand for organic produce, consumer and regulatory demands for a reduction in environmentally harmful herbicide use, and the decreased availability of farm workers willing to perform manual tasks, such as hand weeding. This study describes the performance of a new sprayer system for commercial production that integrates two herbicide applications in a single pass, selective herbicide (SH) application in narrow bands over the crop row, and a non-selective herbicide (NSH) application between crop rows. A real-time kinematic (RTK) global positioning system (UPS) was used for autoguidance in seeding and spraying operations. Conventional broadcast SHs and experimental treatments were applied at a constant nominal speed of 5.5 km h(-1) comparison. Trials in commercial sugar beet fields demonstrated the following: (i) average hand-weeding time can be reduced by 53% (ii) the new sprayer system reduced SH use by 76%, and (iii) sugar beet density did not change significantly during treatment. These results demonstrate the feasibility of using the new RTK-GPS controller sprayer system for differential and efficient herbicide application in inter- and intra-row zones in row crop production.
引用
收藏
页码:642 / 651
页数:10
相关论文
共 40 条
[1]  
Abidine A. Z., 2004, California Agriculture, V58, P44, DOI 10.3733/ca.v058n01p44
[2]  
Abidine AZ, 2002, 021152 ASAE
[3]  
[Anonymous], 2011, R: A Language and Environment for Statistical Computing
[4]  
Ascard J, 1998, WEED RES, V38, P69, DOI 10.1046/j.1365-3180.1998.00073.x
[5]  
Ascard J, 2011, 9 EWRS WORKSH PHYS C
[6]  
Bainer R, 1963, PRINCIPLES FARM MACH
[7]  
Bermejo JL, 2008, TECHNICAL REPORT
[8]  
Dedousis A. P., 2007, Precision agriculture '07. Papers presented at the 6th European Conference on Precision Agriculture, Skiathos, Greece, 3-6 June, 2007, P493
[9]   Genetic diversity and gene flow between wild, cultivated and weedy forms of Beta vulgaris L-(Chenopodiaceae), assessed by RFLP and microsatellite markers [J].
Desplanque, B ;
Boudry, P ;
Broomberg, K ;
Saumitou-Laprade, P ;
Cuguen, J ;
Van Dijk, H .
THEORETICAL AND APPLIED GENETICS, 1999, 98 (08) :1194-1201
[10]   Air-Propelled Abrasive Grit for Postemergence In-Row Weed Control in Field Corn [J].
Forcella, Frank .
WEED TECHNOLOGY, 2012, 26 (01) :161-164