Controlled experiments to predict horseweed (Conyza canadensis) dispersal distances

被引:75
作者
Dauer, Joseph T. [1 ]
Mortensen, David A.
Humston, Robert
机构
[1] Penn State Univ, Dept Crop & Soil Sci, University Pk, PA 16802 USA
[2] Virginia Mil Inst, Dept Biol, Lexington, VA 24450 USA
关键词
long-distance dispersal; wind dispersal; settlement velocity; glyphosate resistance; seed movement;
D O I
10.1614/WS-05-017R3.1
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Controlled-environment experiments were conducted to predict the dispersal distance of horseweed seed. Seed were released from a fixed height and collected at three distances from the introduction point along a 6-m wind tunnel. Dispersal potential was assessed at wind speeds of 8 and 16 kin hr(-1) and release heights of 50.8 and 76.2 cm. In separate experiments, settlement velocity was determined to be 0.323 m sec(-1) (SD = 0.0687). These data were used to parameterize a mechanistic model and compared to a quantile extrapolation (QE) of wind-tunnel results. The QE method predicted a greater mean dispersal distance than the mechanistic model, with large disparities between maximum dispersal distances. Quantile extrapolation predicted dispersal distances over 100 m, whereas the mechanistic model predicted a maximum distance of approximately 30 in. Air turbulence within the wind tunnel and complex dynamics of seed flight may have contributed to the discrepancy between models. Predicting the mean and numerical distribution of seed dispersal distance is crucial when estimating the spread of wind-dispersed seed and for the design of a field-sampling protocol. Although controlled-environment experiments lack the wind variability present in natural systems, predictions from wind-tunnel studies provide a better first approximation of dispersal distance than the mechanistic model. Field experiments designed on the basis of these outcomes are more likely to capture the true dispersal distribution. This should provide more accurate data to inform management decisions for wind-dispersed species.
引用
收藏
页码:484 / 489
页数:6
相关论文
共 48 条
[11]   Long-distance seed dispersal in plant populations [J].
Cain, ML ;
Milligan, BG ;
Strand, AE .
AMERICAN JOURNAL OF BOTANY, 2000, 87 (09) :1217-1227
[12]   Modeling the unsteady lift and drag on a finite-length circular cylinder in cross-flow [J].
Capone, DE ;
Lauchle, GC .
JOURNAL OF FLUIDS AND STRUCTURES, 2000, 14 (06) :799-817
[13]   Why trees migrate so fast: Confronting theory with dispersal biology and the paleorecord [J].
Clark, JS .
AMERICAN NATURALIST, 1998, 152 (02) :204-224
[14]  
DAUER JT, 2004, WEED SCI SOC AM ABST, V44, P267
[15]   The release of genetically modified grasses .1. Pollen dispersal to traps in Lolium perenne [J].
Giddings, GD ;
Hamilton, NRS ;
Hayward, MD .
THEORETICAL AND APPLIED GENETICS, 1997, 94 (08) :1000-1006
[16]  
HAP I, 2005, INT WEED RESISTANCE
[17]   Long-distance dispersal of tree seeds by wind [J].
Horn, HS ;
Nathan, R ;
Kaplan, SR .
ECOLOGICAL RESEARCH, 2001, 16 (05) :877-885
[18]   Modeling seed dispersal by wind in herbaceous species [J].
Jongejans, E ;
Schippers, P .
OIKOS, 1999, 87 (02) :362-372
[19]   Field experiments on seed dispersal by wind in ten umbelliferous species (Apiaceae) [J].
Jongejans, E ;
Telenius, A .
PLANT ECOLOGY, 2001, 152 (01) :67-78
[20]   ZIGZAGGING AND CASTING AS A PROGRAMMED RESPONSE TO WIND-BORNE ODOR - A REVIEW [J].
KENNEDY, JS .
PHYSIOLOGICAL ENTOMOLOGY, 1983, 8 (02) :109-120