Soil Structure & Compaction
Benchmark Value
Scoring Curve
This curve shows how a field measurement for this indicator would score across all available benchmark forms in this context.
Evidence & Context
"The limited data available on seedling growth indicated that the height of one-year-old seedlings was independent of soil compaction up to shear strengths of 70 kPa, which is more than four times the strength of uncompacted soil."
Topsoil shear strength measured in kPa, reflecting the maximum mechanical resilience before native woodland seedling elongation rates are impacted.
Maximum soil shear strength at which native woodland seedling height growth is unaffected by compaction.
Derived from direct Australian forestry trials assessing seedling development rates under mechanical soil compaction, establishing that seedling height growth is independent of compaction up to this limit.
Sources (1)
Department of Conservation and Land Management. 1996. The effects of soil compaction on the emergence, survival and growth of eucalyptus seedlings. Department of Conservation and Land Management, Western Australia.
View SourceSupporting Sources (11)
Additional references from the underlying research that informed this benchmark.
Effects of grazing on alpine grassland soil available nutrients across the Tibetan Plateau
View SourceKirkpatrick, J. B., Bridle, K., & Wild, A. S. (2014). Patterns of variation in Australian alpine soils and their relationships to parent material, vegetation formation, climate and topography. CATENA, 121, 186-194.
View SourcePhosphorus: a finite resource essential for life, critical for agriculture and food security
View SourceManea, A., & Aon, M. A. (2020). Penetration resistance: An effective indicator for monitoring soil compaction in pastures. Ecological Indicators, 117, 106647.
View SourceDepartment of Primary Industries and Regional Development, Western Australia. (n.d.). Soil compaction overview.
View SourceiForest. 2015. Effects of Soil Compaction on Seedling Morphology, Growth, and Architecture of Quercus castaneifolia. iForest - Biogeosciences and Forestry.
View SourceLunt, I. D., Eldridge, D. J., Morgan, J. W., & Witt, G. B. (2007). A framework to predict the effects of livestock grazing and grazing exclusion on conservation values in natural ecosystems in Australia. Australian Journal of Botany, 55(4), 401-415.
View SourceSaputra, D. D., and others. 2024. Stay on trails: Detrimental effects of recreational activities on soil compaction and infiltration. Journal of Degraded and Mining Lands Management.
View SourceDrewry, J. J., Cameron, K. C., & Buchan, G. D. (2008). Pasture yield and soil physical property responses to soil compaction from treading and grazing – a review. Australian Journal of Soil Research, 46(4), 237-256.
View SourceSouth Australian Department for Environment and Water. 2021. Soil health. Penetrometer. Government of South Australia.
View SourceTERN. (n.d.). Sustaining the Australian Alps. Terrestrial Ecosystem Research Network.
View Source