SoilFlex-LLWR: linking a soil compaction model with the least limiting water range concept

被引:25
作者
Keller, T. [1 ,2 ]
da Silva, A. P. [3 ]
Tormena, C. A. [4 ]
Giarola, N. F. B. [5 ]
Cavalieri, K. M. V. [6 ]
Stettler, M. [7 ]
Arvidsson, J. [2 ]
机构
[1] Agroscope, Dept Nat Resources & Agr, CH-8046 Zurich, Switzerland
[2] Swedish Univ Agr Sci, Dept Soil & Environm, SE-75007 Uppsala, Sweden
[3] Univ Sao Paulo, ESALQ, Dept Solos & Nutr Plantas, BR-13418900 Piracicaba, SP, Brazil
[4] Univ Estadual Maringa, Dept Agron, BR-87020900 Maringa, Parana, Brazil
[5] Univ Estadual Ponta Grossa, Dept Ciencia Solo & Engn Agr, BR-84030900 Ponta Grossa, PR, Brazil
[6] Univ Fed Parana UFPR, Dept Solos & Engn Agr, BR-80035050 Curitiba, Parana, Brazil
[7] Bern Univ Appl Sci, Sch Agr Forest & Food Sci HAFL, CH-3052 Zollikofen, Switzerland
关键词
Bulk density; soil water retention; penetrometer resistance; soil physical quality; GAS-DIFFUSION COEFFICIENT; BULK-DENSITY; MECHANICAL IMPEDANCE; PORE CHARACTERISTICS; PLANT-GROWTH; ROOT-GROWTH; FIELD; STRESS; PREDICTION; STRENGTH;
D O I
10.1111/sum.12175
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Soil compaction impacts growing conditions for plants: it increases the mechanical resistance to root growth and modifies the soil pore system and consequently the supply of water and oxygen to the roots. The least limiting water range (LLWR) defines a range of soil water contents within which root growth is minimally limited with regard to water supply, aeration and penetration resistance. The LLWR is a function of soil bulk density (BD), and hence directly affected by soil compaction. In this paper, we present a new model, SoilFlex-LLWR', which combines a soil compaction model with the LLWR concept. We simulated the changes in LLWR due to wheeling with a self-propelled forage harvester on a Swiss clay loam soil (Gleyic Cambisol) using the new SoilFlex-LLWR model, and compared measurements of the LLWR components as a function of BD with model estimations. SoilFlex-LLWR allows for predictions of changes in LLWR due to compaction caused by agricultural field traffic and therefore provides a quantitative link between impact of soil loading and soil physical conditions for root growth.
引用
收藏
页码:321 / 329
页数:9
相关论文
共 51 条
[1]   The use of in situ volumetric water content at field capacity to improve the prediction of soil water retention properties [J].
Al Majou, Hassan ;
Bruand, Ary ;
Duval, Odile .
CANADIAN JOURNAL OF SOIL SCIENCE, 2008, 88 (04) :533-541
[2]  
[Anonymous], 2006, WORLD REFERENCE BASE
[3]  
BAILEY AC, 1989, T ASAE, V32, P822, DOI 10.13031/2013.31076
[4]   GAS-DIFFUSION, FLUID-FLOW AND DERIVED PORE CONTINUITY INDEXES IN RELATION TO VEHICLE TRAFFIC AND TILLAGE [J].
BALL, BC ;
OSULLIVAN, MF ;
HUNTER, R .
JOURNAL OF SOIL SCIENCE, 1988, 39 (03) :327-339
[5]   Root elongation, water stress, and mechanical impedance: a review of limiting stresses and beneficial root tip traits [J].
Bengough, A. Glyn ;
McKenzie, B. M. ;
Hallett, P. D. ;
Valentine, T. A. .
JOURNAL OF EXPERIMENTAL BOTANY, 2011, 62 (01) :59-68
[6]   Root responses to soil physical conditions; growth dynamics from field to cell [J].
Bengough, AG ;
Bransby, MF ;
Hans, J ;
McKenna, SJ ;
Roberts, TJ ;
Valentine, TA .
JOURNAL OF EXPERIMENTAL BOTANY, 2006, 57 (02) :437-447
[7]   MECHANICAL IMPEDANCE TO ROOT-GROWTH - A REVIEW OF EXPERIMENTAL-TECHNIQUES AND ROOT-GROWTH RESPONSES [J].
BENGOUGH, AG ;
MULLINS, CE .
JOURNAL OF SOIL SCIENCE, 1990, 41 (03) :341-358
[8]   Quantifying effects of soil conditions on plant growth and crop production [J].
Benjamin, JG ;
Nielsen, DC ;
Vigil, MF .
GEODERMA, 2003, 116 (1-2) :137-148
[9]   LLWR Techniques for Quantifying Potential Soil Compaction Consequences of Crop Residue Removal [J].
Benjamin, Joseph G. ;
Karlen, Douglas L. .
BIOENERGY RESEARCH, 2014, 7 (02) :468-480
[10]   A Comparison of Two Models to Evaluate Soil Physical Property Effects on Corn Root Growth [J].
Benjamin, Joseph G. ;
Nielsen, David C. ;
Vigil, Merle F. ;
Mikha, Maysoon M. ;
Calderon, Francisco J. .
AGRONOMY JOURNAL, 2013, 105 (03) :713-720