Effects of irrigation level and method on soil salt balance and crop water use efficiency in arid oasis regions

Liping Tang, Xueshuang Shi, Zhipeng Song, Han Zhao, Fahu Li

Abstract


Fresh water resource scarcity and soil salt accumulation in the root-zone are two key limiting factors for sustainable agricultural development in the oasis region of arid inland basin, northwest China. The aim of this study was to explore an appropriate irrigation scheme to maintain sustainable crop cultivation in this region. The effects of four irrigation levels (full irrigation, mild deficit, moderate deficit, and severe deficit) and three irrigation methods (border, surface drip and subsurface drip) on soil water and salt dynamics, highland barley (Hordeum vulgare L.) yield, and crop water use efficiency were studied by field plot experiments. The results showed that soil salt in 0-100 cm profile was accumulated under all experimental treatments after one season of highland barley planting, but the accumulated salt mass decreased with the decrease of the lower limit of irrigation. Salt mass in 0-100 cm soil profile under subsurface drip irrigation was 16.8%-57.8% and 2.9%-58.4% less than that under border and surface drip irrigation, respectively. The grain yield of highland barley decreased first and then increased with the decrease of the lower limit of irrigation under surface drip and subsurface drip irrigation, but it was on the contrary under border irrigation. Mean grain yield for all irrigation levels under subsurface drip irrigation was 5.7% and 18.8% higher than that under border and surface drip irrigation, respectively. Water use efficiency increased with the decrease of the lower limit of irrigation, and the averaged water use efficiency of all irrigation levels under subsurface drip irrigation was 11.9% and 14.2% higher than that under border and surface drip irrigation, respectively. Considering economic benefit and irrigation water requirement, subsurface drip irrigation with the lower limit of irrigation of 50%-55% field capacity is suggested for highland barley planting in the arid oasis region.
Keywords: arid oasis, highland barley, irrigation method, irrigation level, soil salt balance, water use efficiency
DOI: 10.25165/j.ijabe.20231606.7788

Citation: Tang L P, Shi X S, Song Z P, Zhao H, Li F H. Effects of irrigation level and method on soil salt balance and crop
water use efficiency in arid oasis regions. Int J Agric & Biol Eng, 2023; 16(6): 158–166.

Keywords


arid oasis, highland barley, irrigation method, irrigation level, soil salt balance, water use efficiency

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References


Shen Q, Liang L, Luo X, Li Y J, Zhang L P. Analysis of the spatial-temporal variation characteristics of vegetative drought and its relationship with meteorological factors in China from 1982 to 2010. Environmental Monitoring and Assessment, 2017; 189(9): 471.

Yang N, Wang G C, Shi Z M, Zhao D, Jiang W J, Guo L, et al. Application of multiple approaches to investigate the hydrochemistry evolution of groundwater in an arid region: Nomhon, northwestern China. Water, 2018; 10(11): 1667.

Xiao Y, Shao J L, Cui Y L, Zhang G, Zhang Q L. Groundwater circulation and hydrogeochemical evolution in Nomhon of Qaidam Basin, northwest China. Journal of Earth System Science, 2017; 126(2): 26.

Zhang T, Zhang Z Z, Li Y H, He K N. The effects of saline stress on the growth of two shrub species in the Qaidam Basin of northwestern China. Sustainability, 2019; 11(3): 828.

Wang Y G, Xiao D N, Li Y, Li X Y. Soil salinity evolution and its relationship with dynamics of groundwater in the oasis of inland river basins: Case study from the Fubei region of Xinjiang Province, China. Environmental Monitoring and Assessment, 2008; 140(1/3): 291–302.

Li X B, Kang Y H. Agricultural utilization and vegetation establishment on saline-sodic soils using a water-salt regulation method for scheduled drip irrigation. Agricultural Water Management, 2020; 231: 105995.

Liu B, Ma G H, Bussmann R W, Bai K Y, Li J Q, Cao W, et al. Determining factors for the diversity of hulless barley agroecosystem in the Himalaya region - A case study from northwest Yunnan, China. Global Ecology and Conservation, 2019; 18: e00600.

Zhang K Z, Yang J G, Qiao Z W, Cao X Z, Luo Q C, Zhao J S, et al. Assessment of β-glucans, phenols, flavor and volatile profiles of hulless barley wine originating from highland areas of China. Food Chemistry, 2019; 293: 32–40.

He Q, Wang X M, He L, Yang L, Wang S W, Bi Y R. Alternative respiration pathway is involved in the response of highland barley to salt stress. Plant Cell Reports, 2019; 38(3): 295–309.

Shi X S, Li F H, Yan B Y, He D, Pubu D J, Qu Z. Effects of water deficit on water use and yield of spring highland barley under straw mulching. Transactions of the CSAE, 2016; 32(SI): 105–111.

Thameur A, Lachiheb B, Ferchichi A. Drought effect on growth, gas exchange and yield, in two strains of local barley Ardhaoui, under water deficit conditions in southern Tunisia. Journal of Environmental Management, 2012; 113: 495–500.

Fereres E, Soriano M A. Deficit irrigation for reducing agricultural water use. Journal of Experimental Botany, 2007; 58(2): 147–159.

Xue Q W, Zhu Z X, Musick J T, Stewart B A, Dusek D A. Physiological mechanisms contributing to the increased water-use efficiency in winter wheat under deficit irrigation. Journal of Plant Physiology, 2006; 163(2): 154–164.

Liu Z F, Yao Z J, Yu C Q, Zhong Z M. Assessing crop water demand and deficit for the growth of spring highland barley in Tibet, China. Journal of Integrative Agriculture, 2013; 12(3): 541–551.

Shi X S, Li F H, Yan B Y, He D, Pubu D J, Qu Z. Effects of water deficit at different growth stages on water use and yield of spring highland barley. Transactions of the CSAM, 2015; 46(10): 144–151, 265.

Al-Ghobari H M, Dewidar A Z. Integrating deficit irrigation into surface and subsurface drip irrigation as a strategy to save water in arid regions. Agricultural Water Management, 2018; 209: 55–61.

Geerts S, Raes D. Deficit irrigation as an on-farm strategy to maximize crop water productivity in dry areas. Agricultural Water Management, 2009; 96(9): 1275–1284.

Ayars J E, Schoneman R A, Dale F, Meso B, Shouse P. Managing subsurface drip irrigation in the presence of shallow ground water. Agricultural Water Management, 2001; 47(3): 243–264.

Camp C R. Subsurface drip irrigation: A review. Transactions of the ASAE, 1998; 41(5): 1353–1367.

Lamm F R. Cotton, tomato, corn, and onion production with subsurface drip irrigation: A review. Transactions of the ASABE, 2016; 59(1): 263–278.

Valentín F, Nortes P A, Domínguez A, Sánchez J M, Intrigliolo D S, Alarcón J J, et al. Comparing evapotranspiration and yield performance of maize under sprinkler, superficial and subsurface drip irrigation in a semi-arid environment. Irrigation Science, 2020; 38: 105–115.

Sinobas L R, Rodríguez M G. A review of subsurface drip irrigation and its management. In: Lee T S, (Ed.), Water quality, soil and managing irrigation of crops. Rijeka, Croatia: InTech. 2012; pp.171–194.

Hassanli A M, Ebrahimizadeh M A, Beecham S. The effects of irrigation methods with effluent and irrigation scheduling on water use efficiency and corn yields in an arid region. Agricultural Water Management, 2009; 96: 93–99.

Kang S Z, Hao X M, Du T S, Tong L, Su X L, Lu H N, et al. Improving agricultural water productivity to ensure food security in China under changing environment: From research to practice. Agricultural Water Management, 2017; 179(SI): 5–17.

Kukal S S, Singh Y, Jat M L, Sidhu H S. Improving water productivity of wheat-based cropping systems in south Asia for sustained productivity. Advances in Agronomy, 2014; 127: 157–258.

Kang Y H, Wang R S, Wan S Q, Hu W, Jiang S F, Liu S P. Effects of different water levels on cotton growth and water use through drip irrigation in an arid region with saline ground water of northwest China. Agricultural Water Management, 2012; 109: 117–126.

Wang J W, Niu W Q, Li Y, Lv W. Subsurface drip irrigation enhances soil nitrogen and phosphorus metabolism in tomato root zones and promotes tomato growth. Applied Soil Ecology, 2018; 124: 240–251.

Piri H, Naserin A. Effect of different levels of water, applied nitrogen and irrigation methods on yield, yield components and IWUE of onion. Scientia Horticulturae, 2020; 268: 109361.

Capra A, Consoli S, Scicolone B. Water management strategies under deficit irrigation. Journal of Agricultural Engineering, 2008; 39(4): 27–34.

Pardo J J, Martínez-Romero A, Léllis B C, Tarjuelo J M, Domínguez A. Effect of the optimized regulated deficit irrigation methodology on water use in barley under semiarid conditions. Agricultural Water Management, 2020; 228: 105925.

Çolak Y B, Yazar A, Alghory A, Tekin S. Evaluation of crop water stress index and leaf water potential for differentially irrigated quinoa with surface and subsurface drip systems. Irrigation Science, 2021; 39: 81–100.

Rajak D, Manjunatha M V, Rajkumar G R, Hebbara M, Minhas P S. Comparative effects of drip and furrow irrigation on the yield and water productivity of cotton ( Gossypium hirsutum L.) in a saline and waterlogged vertisol. Agricultural Water Management, 2006; 83(1/2): 30–36.

Tal A. Rethinking the sustainability of Israel’s irrigation practices in the Drylands. Water Research, 2016; 90: 387–394.

Liu X, Chi C M. Conversion relationship of salinity indices of salt-affected soils in semi-desert areas. Journal of Anhui Agri. Sci., 2013; 41(28): 11592–11594.

Zhao Y G, Li Y Y, Wang J, Pang H C, Li Y. Buried straw layer plus plastic mulching reduces soil salinity and increases sunflower yield in saline soils. Soil & Tillage Research, 2016; 155(SI): 363–370.

Mostafa H, El-Nady R, Awad M, El-Ansary M. Drip irrigation management for wheat under clay soil in arid conditions. Ecological Engineering, 2018; 121(SI): 35–43.

Wang R S, Kang Y H, Wan S Q, Hu W, Liu S P, Liu S H. Salt distribution and the growth of cotton under different drip irrigation regimes in a saline area. Agricultural Water Management, 2011; 100(1): 58–69.

El-Wahed M H A, Baker G A, Ali M M, El-Fattah F A A. Effect of drip deficit irrigation and soil mulching on growth of common bean plant, water use efficiency and soil salinity. Scientia Horticulturae, 2017; 225: 235–242.

Dar E A, Brar A S, Singh K B. Water use and productivity of drip irrigated wheat under variable climatic and soil moisture regimes in north-west, India. Agriculture, Ecosystems and Environment, 2017; 248: 9–19.




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