A controlled water-table depth system to study the influence of fine-scale differences in water regime for plant growth

被引:15
作者
Araya, Yoseph N. [1 ]
Gowing, David J. [1 ]
Dise, Nancy [2 ]
机构
[1] Open Univ, Dept Life Sci, Milton Keynes MK7 6AA, Bucks, England
[2] Manchester Metropolitan Univ, Dept Environm & Geog Sci, Manchester M1 5GD, Lancs, England
关键词
Water-table depth; Plant production; Soil moisture; Niche separation; ENVIRONMENTAL HETEROGENEITY; CIRCULATION TECHNIQUE; PRESSURE; GREENHOUSE; SOILS;
D O I
10.1016/j.aquabot.2009.10.004
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
A method was developed to maintain water-table depths at a constant level in outdoor mesocosms. The system included a water treatment reservoir, where tap water was microbially deoxygenated and denitrified; an adjustable-level control chamber that set desired water-table depths and plant growing mesocosms. The soil water status was evaluated by constant monitoring using tensiometers, pressure transducers and dipwells. The robustness of the system was tested by inducing sudden incidents of flooding and drainage. The system was able to revert to the original set water-table depths within 5 and 10 min, respectively. It also reliably sustained consistent water-table depths throughout the growing season without the need for maintenance. As an example, the method was used to grow plants at five set water-table depths: 50,150, 250, 350, and 450 mm below ground surface. Two wet grassland species Festuca pratensis (meadow fescue). and Carex nigra (common sedge) were grown and dry biomass production recorded. Results showed differences in growth response between the two species to subjected water-table depths. In monoculture, F. pratensis production followed the order 50 = 150 = 350 > 250 = 450 mm (p < 0.001), while for C. nigra it was 150 = 250 > 50 = 350 = 450 mm (p < 0.001). In mixture, F. pratensis did not show a significant trend (p < 0.06), whereas C nigra showed 50 = 150 > 250 > 350 = 450 mm (p < 0.001). The ease of the system to establish constant and/or dynamic water-table depths and its reliability outdoors renders it useful for a wide variety of studies involving plant growth. (C) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:70 / 74
页数:5
相关论文
共 23 条
[1]   THE MEASUREMENT OF SMALL-SCALE ENVIRONMENTAL HETEROGENEITY USING CLONAL TRANSPLANTS OF ANTHOXANTHUM-ODORATUM AND DANTHONIA-SPICATA [J].
ANTONOVICS, J ;
CLAY, K ;
SCHMITT, J .
OECOLOGIA, 1987, 71 (04) :601-607
[2]  
BERENDSE F, 1984, ACTA OECOL-OEC PLANT, V5, P3
[3]   NUTRIENT TRANSFER BETWEEN THE ROOT ZONES OF SOYBEAN AND MAIZE PLANTS CONNECTED BY A COMMON MYCORRHIZAL MYCELIUM [J].
BETHLENFALVAY, GJ ;
REYESSOLIS, MG ;
CAMEL, SB ;
FERRERACERRATO, R .
PHYSIOLOGIA PLANTARUM, 1991, 82 (03) :423-432
[4]   Using a porous-tube system to study potato responses to constant water tension in a rooting matrix [J].
Cao, WX ;
Tibbitts, TW .
JOURNAL OF THE AMERICAN SOCIETY FOR HORTICULTURAL SCIENCE, 1996, 121 (03) :399-403
[5]   TIME COURSE OF PLANT-PLANT INTERACTIONS IN EXPERIMENTAL MIXTURES OF ANNUALS - DENSITY, FREQUENCY, AND NUTRIENT EFFECTS [J].
CONNOLLY, J ;
WAYNE, P ;
MURRAY, R .
OECOLOGIA, 1990, 82 (04) :513-526
[6]  
Davies WJ, 1999, PHYSIOLOGICAL PLANT ECOLOGY, P67
[7]   The role of experimental microcosms in ecological research [J].
Fraser, LH ;
Keddy, P .
TRENDS IN ECOLOGY & EVOLUTION, 1997, 12 (12) :478-481
[8]   Designs for greenhouse studies of interactions between plants [J].
Gibson, DJ ;
Connolly, J ;
Hartnett, DC ;
Weidenhamer, JD .
JOURNAL OF ECOLOGY, 1999, 87 (01) :1-16
[9]  
Goldberg D. E., 1990, Perspectives on plant competition., P27
[10]  
Gowing D., 2002, WATER REGIME REQUIRE