Eragrostis curvula (Schrad.) Nees. complex pastures in southern New South Wales, Australia: impact of Eragrostis curvula, Medicago sativa L. and Phalaris aquatica L. pastures on soil water
W. H. Johnston A B C and P. S. Cornish AA University of Western Sydney, Locked Bag 1787, Penrith South DC, NSW 1797, Australia.
B Present address: NSW Department of Natural Resources, PO Box 189, Queanbeyan, NSW 2620, Australia.
C Corresponding author. Email: bill.johnston@dipnr.nsw.gov.au
Australian Journal of Experimental Agriculture 45(10) 1267-1289 https://doi.org/10.1071/EA04115
Submitted: 3 June 2004 Accepted: 27 June 2005 Published: 15 November 2005
Abstract
Gypsum blocks were used to monitor soil water under 5 rotationally grazed pastures [Eragrostis curvula cvv. 4650, 4660 and Consol; Medicago sativa cv. Aurora and Phalaris aquatica (a 50/50 mixture of cvv. Uneta and Sirolan)] at depths of 15, 30, 60 and 120 cm at Wagga Wagga in southern NSW, Australia from 18 December 1993 to 23 November 1998.
At 120 cm depth, soil matric potential (ψ) varied from approximately –14 kPa in winter and spring, to less than –1500 kPa in autumn. During 2 droughts the soil remained drier than its water holding capacity limit, but when rainfall was average or above average, there was no evidence that deficits were maintained through winter. The nature of the rainfall (rainfall/day and numbers of consecutive wet days), which varies through the seasons, impacted markedly on ψ, with considerable short-term variation observed in response to isolated heavy rainfall events in summer and autumn.
Medicago sativa cv. Aurora generated lower ψ than E. curvula in mid- to late-spring; whereas except for 4650, which was not persistent at the site, E. curvula reduced ψ in early to mid-summer, and to generally more negative extremes than by M. sativa. There was no indication that the roots of P. aquatica did not extend to the same depths as the other pastures, but it seemed unable to dry the soil to the same extent. Summer-active weeds, which were prominent in the P. aquatica pasture in years of above average rainfall, reduced the deficit difference between it and the other pastures.
Gypsum block ψ was converted to volumetric soil water content (θv) using soil water retention curves and estimates of soil bulk density (ρb). Relative to P. aquatica, E. curvua Consol and M. sativa maintained a deficit of between 25 and 75 mm for most non-winter periods. There was no evidence that the deficit created by either pasture was consistently greater than the other.
There was considerable dynamism within the datasets for all the pastures, which was ascribed to the frequent occurrence of non-matrix flow, mainly in response to heavy rainfall events (>25 mm in <5 days) that occurred when the soil was dry in summer and autumn. In the long-term it was estimated that such events could be associated with up to 25% of the rainfall.
Additional keywords: gypsum blocks, soil water potential, soil water status, salinity, deep drainage.
Acknowledgments
The support of John Aveyard, former Officer in Charge of the Research Centre, and technical and field staff, including John and Tom Rodham, Greg White, Vic Shoemark, Sarah McGeoch and Dennis Skerry was greatly appreciated. The research was supported by the Wool Research and Development Corporation. Hamish Cresswell provided useful comments on the manuscript.
Bettenay E,
Blackmore AV, Hoingston FJ
(1964) Aspects of the hydrologic cycle and related salinity in the Belka Valley, Western Australia. Australian Journal of Soil Research 2, 187–210.
| Crossref | GoogleScholarGoogle Scholar |
Bird PR,
Jackson TT,
Kearney GA,
Saul GR,
Waller RA, Whipp G
(2004) The effect of improved pastures and grazing management on soil water storage on a basaltic plains site in south-west Victoria. Australian Journal of Experimental Agriculture 44, 559–569.
| Crossref | GoogleScholarGoogle Scholar |
Blackmore D, Connell D
(1997) Are rural land practices in the Murray–Darling Basin a threat to the environment? Australian Journal of Soil Research 35, 1037–1047.
| Crossref | GoogleScholarGoogle Scholar |
Bouma J
(1981) Soil morphology and preferential flow along macropores. Agricultural Water Management 3, 235–250.
| Crossref | GoogleScholarGoogle Scholar |
Brouwer J, Fitzpatrick RW
(2002) Restricting layers, flow paths, and correlation between duration of soil saturation and soil morphological features along a hillslope with an altered soil water regime in western Victoria. Australian Journal of Soil Research 40, 927–946.
Carbon BA,
Roberts FJ,
Farrington P, Beresford JD
(1982) Deep drainage and water use of forests and pastures grown on deep sands in a Mediterranean environment. Journal of Hydrology 55, 53–64.
| Crossref | GoogleScholarGoogle Scholar |
Dolling PJ
(2001) Water use and drainage under phalaris, annual pasture, and crops on a duplex soil in Western Australia. Australian Journal of Agricultural Research 52, 305–316.
| Crossref | GoogleScholarGoogle Scholar |
Dunin F, Passioura J
(2001) Enduring prosperity for farmland? Preface to ‘Towards a farming future: water control by perennials in cropland’ Australian Journal of Agricultural Research 52,
| Crossref | GoogleScholarGoogle Scholar |
Dunin FX
(1970) Changes in water balance components with pasture management in south-eastern Australia. Journal of Hydrology 10, 90–102.
| Crossref | GoogleScholarGoogle Scholar |
Edwards K, Johnston WH
(1978) Agricultural climatology of the upper Murrumbidgee River Valley New South Wales. Australian Journal of Agricultural Research 29, 851–862.
| Crossref | GoogleScholarGoogle Scholar |
Fawcett RG, Collis-George N
(1967) A filter paper method for determining the moisture characteristics of soil. Australian Journal of Experimental Agriculture and Animal Husbandry 7, 162–167.
| Crossref | GoogleScholarGoogle Scholar |
Hamblin AP
(1981) Filter-paper method for routine measurement of field water potential. Journal of Hydrology 53, 355–360.
| Crossref | GoogleScholarGoogle Scholar |
Heng LK,
White RE,
Chen D,
Helyar KR, Fisher R
(2001) Seasonal differences in soil water balance under perennial and annual pastures on an acid Sodosol in southeastern Australia. European Journal of Soil Science 52, 227–236.
| Crossref | GoogleScholarGoogle Scholar |
Hirth JR,
Hains PJ,
Ridley AM, Wilson KF
(2001) Lucerne in crop rotations on the Riverine Plains 2. Biomass and grain yields, water use efficiency, soil nitrogen, and profitability. Australian Journal of Agricultural Research 52, 279–294.
| Crossref |
Holford ICR, Doyle AD
(1978) The effect of grazed lucerne on the moisture status of wheat growing soils. Australian Journal of Experimental Agriculture and Animal Husbandry 18, 112–117.
| Crossref | GoogleScholarGoogle Scholar |
Johnston CD
(1987) Preferred water flow and localised recharge in a variable regolith. Journal of Hydrology 94, 129–142.
| Crossref | GoogleScholarGoogle Scholar |
Johnston WH
(1996) The place of C4 grasses in temperate pastures in Australia. New Zealand Journal of Agricultural Research 39, 527–540.
Johnston WH
(2000) Calibration of gypsum blocks and data loggers and their evaluation for monitoring soil water status. Australian Journal of Experimental Agriculture 40, 1131–1136.
| Crossref | GoogleScholarGoogle Scholar |
Johnston WH,
Clifton CA,
Cole IA,
Koen TB,
Mitchell ML, Waterhouse DB
(1999) Low input grasses useful in limiting environments (LIGULE). Australian Journal of Agricultural Research 50, 29–53.
Johnston WH,
Cornish PS, Shoemark VF
(2005) Eragrostis curvula (Schrad.) Nees. complex pastures in southern New South Wales, Australia: a comparison of E. curvula, Medicago sativa L. and Phalaris aquatica L. pastures under rotational grazing. Australian Journal of Experimental Agriculture 44, 401–420.
| Crossref |
Johnston WH,
Garden DL,
Rančić A,
Koen TB,
Dassanayake KB,
Langford CM,
Ellis NJS,
Rab A,
Tuteja NK,
Mitchell M,
Wadsworth J,
Dight D,
Holbrook K,
LeLievre R, McGeoch SM
(2003) Impact of pasture development and grazing on water-yielding catchments in the Murray–Darling Basin in southeastern Australia. Australian Journal of Experimental Agriculture 43, 817–841.
Johnston WH,
Koen TB, Shoemark VF
(2002) Water use, competition and a temperate-zone C4 grass (Eragrostis curvula (Schrad.) Nees. complex) cv. Consol. Australian Journal of Agricultural Research 53, 715–728.
| Crossref | GoogleScholarGoogle Scholar |
Kemp DR, Culvenor RA
(1994) Improving the grazing and drought tolerance of temperate perennial grasses. New Zealand Journal of Agricultural Research 37, 365–378.
Murphy SR, Lodge GM
(2004) Surface soil water dynamics in pastures in northern New South Wales. 1. Use of electrical resistance sensors. Australian Journal of Experimental Agriculture 44, 273–281.
| Crossref | GoogleScholarGoogle Scholar |
Nicholls N
(1991) The El Niño/southern oscillation and Australian vegetation. Vegetatio 91, 23–36.
| Crossref | GoogleScholarGoogle Scholar |
O’Loughlin EM
(1988) Hydrology of changing landscapes. Civil Engineering Transactions. The Institute of Engineers Australia CE30, 163–173.
Oram R, Lodge G
(2003) Trends in temperate Australian grass breeding and selection. Australian Journal of Agricultural Research 54, 211–241.
| Crossref | GoogleScholarGoogle Scholar |
Pearson CJ,
Brown R,
Collins WJ,
Archer KA,
Wood MS,
Petersen C, Bootle B
(1997) An Australian temperate pastures database. Australian Journal of Agricultural Research 48, 453–465.
| Crossref | GoogleScholarGoogle Scholar |
Petheram C,
Walker G,
Grayson R,
Thierfelder T, Zhang L
(2002) Towards a framework for predicting impacts of land-use change on recharge: 1. A review of recharge studies in Australia. Australian Journal of Soil Research 40, 397–417.
Ridley AM,
Christy B,
Dunin FX,
Hains PJ,
Wilson KF, Ellington A
(2001) Lucerne in crop rotations on the Riverine Plains 1. The soil water balance. Australian Journal of Agricultural Research 52, 263–278.
| Crossref |
Ridley AM,
White RE,
Simpson RJ, Callinan L
(1997) Water use and drainage under phalaris cocksfoot and annual ryegrass pastures. Australian Journal of Agricultural Research 48, 1011–1023.
| Crossref |
Stirzaker RJ,
Passioura JB, Wilms Y
(1996) Soil structure and plant growth: impact of bulk density and biopores. Plant and Soil 185, 151–162.
Tennant D, Hall D
(2001) Improving water use of annual crops and pastures — limitations and opportunities in Western Australia. Australian Journal of Agricultural Research 52, 171–182.
| Crossref | GoogleScholarGoogle Scholar |
White RE,
Christy BP,
Ridley AM,
Okom AE, Murphy SR , et al.
(2003) SGS water theme: influence of soil, pasture type and management on water use in grazing systems across the high rainfall zone of southern Australia. Australian Journal of Experimental Agriculture 43, 907–926.
Williams B,
Walker J, Tane H
(2001) Drier landscapes and rising water tables: an ecohydrological paradox. Natural Resources Management 4(1), 10–18.
Yunusa IAM,
Mele PM,
Rab MA,
Schefe CR, Beverley CR
(2002) Priming of soil structural and hydrological properties by native woody species, annual crops, and a permanent pasture. Australian Journal of Soil Research 40, 207–219.
| Crossref | GoogleScholarGoogle Scholar |