|
|
Application of electrical impedance method in the study of root resistance to erosion |
LI Qiang1,2, LIU Guobin2, ZHANG Zheng1,2, KANG Furen1, MA Chunyan1,2, ZHAO Xueqing3, JIANG Jinyu3 |
1. Yulin University, Shaanxi Key Laboratory of Ecological Restoration in Shaanbei Mining Area, 719000, Yulin, Shaanxi, China; 2. State Key Laboratory of Soil Erosion and Dry-land Farming on the Loess Plateau, Institute of Soil and Water Conservation, CAS, 712100, Yangling, Shaanxi, China; 3. Desert Control Research Institute of Shaanxi Province, Yulin, Shaanxi, 719000, Yulin, Shaanxi, China |
|
|
Abstract [Background] In semi-arid areas, soil erosion is a serious threat to land productivity and sustainability for both natural and human-managed ecosystems. Traditional vegetation techniques are recognized as effectively in reducing soil erosion, whereas the most evident vegetation source that protects soil against erosion is root wedging, which is an important mechanism where roots can bind soil together and tie weak surface soil layers into strong and stable subsurface layers. Plant roots significantly affect soil erosion process of overland flow by physical consolidation (root link and root-soil adhesive) and biochemical functions.[Methods] This study introduced electrical impedence method, with the purpose to evaluate the relative contributions of root link, root-soil adhesive as well as root biochemical functions to soil erosion resistance non-directly. For this purpose, a simulated scouring experiment was conducted on a sandy soil with sand content 36.8%, silt content 51.2% and clay content 12.0%. Three treatments considered were:1) fallow (CK), 2) root-penetrated soil and 3) simulated-root-penetrated soil. Each treatment had 4 replicates. Rectangular, undisturbed soil samples (20 cm×10 cm×10 cm) were taken in the fallow and root pans and were conducted with a hydrological flume (2 m×0.10 m). The flume contained an opening at its lower base, equaling the size of metal sampling box, so that the surface of soil sample was at the same level of the flume surface. Space between the sample box and the flume edges was sealed with painter' mastic to prevent edge effects. The slope of the flume bottom could be varied and clear tap water flow was applied at 4.0 L/min rate discharge on a washing flume slope of 15° for 15 min. During the 15 minutes of each experiment, samples of runoff and detached soil were collected in every 1 min in the first 3 min and 2 min in the following time using 10 L buckets for determining sedimentation. Then, this paper analyzed the relative role in creating the soil configuration of soil resistance to erosion quantitatively, using no root-penetrated soil, root-penetrated soil erosion simulation test.[Results] The linear equation can well fit the relationship between the soil resistance and the accumulated sediment loss, and the mean of the per 3 min electrical impedance of the flow can better reflect the soil physical consolidation effect of the root system. Physical consolidation effect is the key role in soil erosion resistance, with the contribution rate of 66.5%. The values obtained by electrical impedance method is 13.5% smaller than that of the collected sediment method, though a significant relationship is found between them.[Conclusions] To some extent, the electrical impedance method is able to estimate soil erosion resistance of root non-directly. It is expected to provide new technical means for estimating soil consolidation effects of plant roots in the flow-induced erosion regions.
|
Received: 06 May 2019
|
|
|
|
|
[1] |
TUO Dengfeng, XU Mingxiang, GAO Liqian. Changed surface roughness by wind erosion accelerates water erosion[J]. Jouranl of Soils and Sediments, 2016(16):105.
|
[2] |
GYSSELS G, POESEN J. The importance of plant root characteristics in controlling concentrated flow erosion rates[J]. Earth Surface Processes and Landforms, 2003, 28(4):371.
|
[3] |
朱显谟. 黄土高原地区植被因素对于水土流失的影响[J]. 土壤学报, 1960, 8(2):110. ZHU Xianmo. The influence of vegetation on soil erosion in the Loess Plateau[J]. Acta Pedologica Sinica, 1960, 8(2):110.
|
[4] |
刘国彬. 黄土高原草地土壤抗冲性及其机理研究[J]. 水土保持学报, 1998, 12(1):93. LIU Guobin. Study on soil anti scourability and mechanism of grassland on the Loess Plateau[J]. Journal of Soil and Water Conservation, 1998, 12(1):93.
|
[5] |
温维亮, 郭新宇, 赵春江, 等. 作物根系构型三维探测与重建方法研究进展[J]. 中国农业科学, 2015, 48(3):436. WEN Weiliang, GUO Xinyu, ZHAO Chunjiang, et al. Research progress on three-dimensional detection and reconstruction of crop root Architecture[J]. Scientia Agricultura Sinica, 2015, 48(3):436.
|
[6] |
曹丹妮, 钟琦, 秦嘉惠,等. 基于知识图谱的根系对土壤侵蚀阻控作用的研究进展[J]. 中国水土保持科学, 2018, 16(6):127. CAO Danni, ZHONG Qi, QIN Jiahui, et al. Research progress of root resistance and control of soil erosion based on knowledge map[J]. Science of Soil and Water Conservation in China, 2018, 16(6):127.
|
[7] |
CAO Yang, REPO T, SILVENNOINEN R, et al. Analysis of the willow root system by electrical impedance spectroscopy[J]. Journal of Experimental Botany, 2011, 62(1):351.
|
[8] |
DIETRICH RC, BENGOUGH AG, JONES HG, et al. A new physical interpretation of plant root capacitance[J]. Journal of Experimental Botany, 2012, 63(17):6149.
|
[9] |
张正, 刘国彬, 李强, 等. 电容法估测植物根系生物量研究[J]. 草地学报, 2014, 32(2):383. ZHANG Zheng, LIU Guobin, LI Qiang, et al. Estimation of root biomass by capacitance method[J]. Acta Agrestia Sinica, 2014, 32(2):383.
|
[10] |
李强, 曹扬, 张正, 等. 应用电阻抗法植物根系生物学研究进展[J]. 植物科学学报, 2016, 34(3):488. LI Qiang, CAO Yang, ZHANG Zheng, et al. Research progress of plant root biology by electrical impedance method[J]. Plant Science Journal, 2016, 34(3):488.
|
[11] |
LI Qiang, LIU Guobin, ZHANG Zheng, et al. Relative contribution of root physical enlacing and biochemistrical exudates to soil erosion resistance in the loess soil[J]. Catena, 2017, 153, 61.
|
[12] |
张正,刘国彬,李强.四端子电极提高根系生物量电容法估测的有效性[J].农业工程学报, 2017,33(5):185. ZHANG Zheng, LIU Guobin, LI Qiang. Four terminal electrode improves the effectiveness of root biomass capacitance estimation[J]. Transactions of the CSAE, 2017,33(5):185.
|
[13] |
刘国彬.黄土高原草地土壤抗冲性及其机理研究[D]. 陕西杨凌:中国科学院水利部水土保持研究所, 1996:32. LIU Guobin. Study on the erosion resistance and mechanism of grassland soil on the Loess Plateau[D]. Yang Ling, Shaanxi:Institute of soil and water conservation, Ministry of Water resources, Chinese Academy of Sciences, 1996:32.
|
[14] |
DIETRICH R C, BENGOUGH A G, JONES H G, et al. Can root electrical capacitance be used to predict root mass in soil[J]. Annals of Botany, 2013,112(2):457.
|
[15] |
吴林坤, 林向民, 林文雄. 根系分泌物介导下植物-土壤-微生物互作关系研究进展与展望[J].植物生态学报, 2014, 38(3):298. WU Linkun, LIN Xiangmin, LIN Wenxiong. Research progress and Prospect of plant soil microbial interaction mediated by root exudates[J]. Chinese Journal of Plant Ecology, 2014, 38(3):298.
|
[16] |
程谅,占海歌,郭忠录. 3种草本植物根系对土壤抗蚀特性的响应[J]. 草业科学, 2019, 36(2):284. CHENG Lang, ZHAN Haige, GUO Zhonglu. Response of root system of three herbaceous plants to soil erosion resistance[J]. Pratacultural Science, 2019, 36(2):284.
|
[17] |
DALTON F N. In-situ root extent measurements by electrical capacitance methods[J]. Plant Soil, 1995, 173(1):157.
|
[18] |
李强. 黄土丘陵区植物根系强化土壤抗冲性机理及固土效应[D]. 中国科学院研究生院(教育部水土保持与生态环境研究中心), 2014:95. LI Qiang. Mechanism of plant roots strengthening soil anti scourability and soil consolidation effect in Loess Hilly Area[D]. Graduate School of Chinese Academy of Sciences (Ministry of Education, Soil and Water conservation Research Center for Sustainable and Ecological Environment), 2014:95.
|
[19] |
李强, 刘国彬, 张正,等. 黄土风沙区根系强化抗冲性土体构型的定量化研究[J]. 中国水土保持科学, 2017, 15(3):99. LI Qiang, LIU Guobin, ZHANG Zheng, et al. Quantitative study on the soil configuration of root system strengthening anti scourability in the aeolian sand area of loess[J]. Science of Soil and Water Conservation,2017, 15(3):99.
|
[20] |
刘红岩, 周正朝, 王宁,等. 黄土区草被生长初期土壤抗冲性及其影响因素[J]. 中国水土保持科学, 2018, 16(2):58. LIU Hongyan, ZHOU Zhengchao, WANG Ning, et al. Soil erosion resistance and its influencing factors in the early stage of vegetation growth in Loess Area[J]. Science of Soil and Water Conservation, 2018, 16(2):58.
|
[21] |
李强, 杨俊诚, 张正,等. 植物根系抗侵蚀指标及模型研究进展[J]. 农业资源与环境学报, 2020, 31(1):17. LI Qiang, YANG Juncheng, ZHANG Zheng, et al. Research progress on anti erosion indexes and models of plant roots[J]. Journal of Agricultural Resources and Environment,2020, 31(1):17.
|
|
|
|