Please wait a minute...
Journal of Integrative Agriculture  2013, Vol. 12 Issue (8): 1330-1340    DOI: 10.1016/S2095-3119(13)60542-0
Special Focus: Water Versus Energy Advanced Online Publication | Current Issue | Archive | Adv Search |
Water and Energy Consumption by Agriculture in the Minqin Oasis Region
 LI Cheng, WANG Yue , QIU Guo-yu
Key Laboratory for Urban Habitat Environmental Science and Technology, School of Environment and Energy, Peking University, Shenzhen 518055, P.R.China
Download:  PDF in ScienceDirect  
Export:  BibTeX | EndNote (RIS)      
摘要  Water used in agriculture consumes much energy, mainly due to pumping water for irrigation, but the water-energy nexus is always neglected in arid and semi-arid areas. Based on hydrological observation data, irrigation data and socioeconomic data over the past 50 yr, this study has derived a detailed estimate of greenhouse gas (GHG) emissions from agricultural water use in the Minqin Oasis. Results show that the decreasing water supply and increasing demand for agriculture has caused severe water deficits over the past 50 yr in this region. The groundwater energy use rate rose by 76% between 1961 and 2009 because of the serious decline in groundwater levels. An increase in pump lift by an average 1 m would cause GHG emission rates to rise by around 2%. Over the past 10 yr, the GHG emissions from groundwater accounted for 65-88% of the total emissions from agricultural water. GHG emissions for diverted water varied from 0.047 to 0.074 Mt CO2e as the water input increased. Long distance conveyance and high pump lifts need more electricity input than groundwater abstraction does. Government policies have had a favorable effect on total emissions by reducing water abstraction. But groundwater depletion, exacerbated by a growing population and an expansion in arable land, remains the principal energy-water nexus challenge in the region. In response to the increasing water-energy crisis, energy-saving irrigation technology, matching to cost efficiencies, and better coordination between different infrastructural agencies could be feasible ways of rendering the water and energy sectors more sustainable over the long term.

Abstract  Water used in agriculture consumes much energy, mainly due to pumping water for irrigation, but the water-energy nexus is always neglected in arid and semi-arid areas. Based on hydrological observation data, irrigation data and socioeconomic data over the past 50 yr, this study has derived a detailed estimate of greenhouse gas (GHG) emissions from agricultural water use in the Minqin Oasis. Results show that the decreasing water supply and increasing demand for agriculture has caused severe water deficits over the past 50 yr in this region. The groundwater energy use rate rose by 76% between 1961 and 2009 because of the serious decline in groundwater levels. An increase in pump lift by an average 1 m would cause GHG emission rates to rise by around 2%. Over the past 10 yr, the GHG emissions from groundwater accounted for 65-88% of the total emissions from agricultural water. GHG emissions for diverted water varied from 0.047 to 0.074 Mt CO2e as the water input increased. Long distance conveyance and high pump lifts need more electricity input than groundwater abstraction does. Government policies have had a favorable effect on total emissions by reducing water abstraction. But groundwater depletion, exacerbated by a growing population and an expansion in arable land, remains the principal energy-water nexus challenge in the region. In response to the increasing water-energy crisis, energy-saving irrigation technology, matching to cost efficiencies, and better coordination between different infrastructural agencies could be feasible ways of rendering the water and energy sectors more sustainable over the long term.
Keywords:  water       energy       irrigation       emissions       Minqin Oasis  
Received: 17 October 2012   Accepted:
Fund: 

This research is partially supported by the Special Fund for Forestry Research in the Public Interest, China (201304305), the National 973 Program of China (2009CB825103), the Shenzhen Science and Technology Project, China (ZYC201006170373A).

Corresponding Authors:  Correspondence QIU Guo-yu, Tel: +86-755-26033309, E-mail: qiugy@pkusz.edu.cn   

Cite this article: 

LI Cheng, WANG Yue , QIU Guo-yu. 2013. Water and Energy Consumption by Agriculture in the Minqin Oasis Region. Journal of Integrative Agriculture, 12(8): 1330-1340.

[1]Chai C W, Zhao M, Xu X Z, He F Y, Wei Q S. 2010. Thesuggestion on returning farmland and characteristicsof sand farmland system in Minqin Oasis. Research ofSoil and Water Conservation, 17, 189-193 (in Chinese)

[2]Chaitra B S, Chandrakanth M G. 2005. Optimal extraction ofgroundwater for irrigation: synergies from surface waterbodies in tropical India. Water Policy, 7, 597-611

[3]Dale V H, Efroymson R A, Kline K L. 2011. The land useclimatechange-energy nexus. Landscape Ecology, 26,755-773

[4]Erdal G, Esengün K, Erdal H, Gündüz O. 2007. Energy useand economical analysis of sugar beet production inTokat Province of Turkey. Energy, 32, 35-41

[5]Feng S Y, Huo Z L, Kang S Z, Tang Z J, Wang F X. 2011.Groundwater simulation using a numerical model underdifferent water resources management scenarios in anarid region of China. Environmental Earth Science,62, 961-971

[6]Forestry Bureau of Minqin. 2004. Introduction ofEnvironmental protection in the Shiyang River Basin[2013-03-25] http://www.minqin.gansu.gov.cn/Item.aspx?id=10032. (in Chinese)Gupta R K. 2002. Water and energy linkages for groundwaterexploitation: a case study of Gujarat State, India. WaterResources Development, 18, 25-45

[7]Huang C H, Xue X, Wang T, Mascellis R D, Mele G, You QG, Peng F, Tedeschi A. 2011. Effects of saline waterirrigation on soil properties in northwest China.Environmental Earth Science, 63, 701-708

[8]Hu L T, Wang Z J, Tian W, Zhao J S. 2009. Coupled surfacewater-groundwater model and its application in the aridShiyang River basin, China. Hydrology Processes, 23,2033-2044

[9]Huo Z L, Feng S Y, Kang S Z, Dai X Q, Li W C, Chen S J.2007. The response of water-land environment to humanactivities in arid Minqin Oasis, Northwest China. AridLand Research and Management, 21, 21-36

[10]Jackson T M, Khan S, Hafeez M. 2010. A comparativeanalysis of water application and energy consumptionat the irrigated field level. Agricultural WaterManagement, 97, 1477-1485

[11]Ji X B, Kang E, Chen R S, Zhao W Z, Zhang Z H, Jin B W.2006. The impact of the development of water resourceson environment in arid inland river basin of Hexi region,Northwestern China. Environmental Geology, 50, 793-806

[12]Kahrl F, Roland-Holst D. 2008. China’s water-energy nexus. Water Policy, 10, 51-65

[13]Kang S Z, Su X L, Tong L, Shi P Z, Yang X Y, Abe Y K, DuT S, Shi Q L, Zhang J H. 2004. The impacts of humanactivities on the water-land environment of ShiyangRiver basin, an arid region in northwest China.Hydrological Sciences Journal, 49, 413-427

[14]Khan S, Hanjra M A, Mu J X. 2009. Water management andcrop production for food security in China: a review.Agricultural Water Management, 96, 349-360

[15]Khan S, Khan M A, Hanjra M A, Mu J. 2009. Pathways toreduce the environmental footprints of water and energyinputs in food production. Food Policy, 34, 141-149

[16]Lal R. 2004. Carbon emission from farm operations.Environment International, 30, 981-990

[17]Li M, Zhang X, Feng G. 2007. Several methods to reduceT&D losses in the rural electricity network. RuralElectrification, 7, 44. (in Chinese)Li X Y, Xiao D N. 2005. Dynamics of water resource andland use in oases in middle and lower reaches of ShiyangRiver watershed, northwest China. Advance WaterScience, 16, 643-648

[18]Li X Y, Xiao D N, He X Y, Chen W, Song D M. 2007.Evaluation of landscape changes and ecologicaldegradation by GIS in arid regions: a case study of theterminal oasis of the Shiyang River, northwest China.Environmental Geology, 52, 947-956

[19]Lofman D, Petersen M, Bower A. 2002. Water, energy andenvironment nexus: the California experience. WaterResources Development, 18, 73-85

[20]Ma Y H, Fan S Y, Zhou L H, Dong Z Y, Zhang K C, Feng JM. 2007. The temporal change of driving factors duringthe course of land desertification in arid region of NorthChina: the case of Minqin County. EnvironmentalGeology, 51, 999-1008

[21]Minqin Water Conservancy Bureau. 2003. Water ResourcesBulletin. China Statistics Press, Beijing. (in Chinese)Minqin Water Conservancy Bureau. 2010. Water ResourcesBulletin. China Statistics Press, Beijing. (in Chinese)

[22]Mohammadi A, Tabatabaeefar A, Shahin S, Rafiee S,Keyhani A. 2008. Energy use and economical analysisof potato production in Iran a case study: ardabilprovince. Energy Conversion and Management, 49,3566-3570

[23]Moreno M A, Ortega J F, Córcoles J I, Martínez A, TarjueloJ M. 2010. Energy analysis of irrigation delivery systems:monitoring and evaluation of proposed measures forimproving energy efficiency. Irrigation Science, 28,445-460

[24]Mukherji A. 2007. The energy-irrigation nexus and its impacton groundwater markets in eastern Indo-Gangetic basin:evidence from West Bengal, India. Energy Policy, 35,6413-6430

[25]Mushtaq S, Maraseni T N, Maroulis J, Hafeez M. 2009.Energy and water tradeoffs in enhancing food security:a selective international assessment. Energy Policy,37, 3635-3644

[26]National Farmers Federation. 2007. Farm Facts (NationalFarmers Federation). [2013-03-27] http://www.nff.org.au/farm-facts.htmlPimentel D, Hurd L E, Bellotti A C, Forester M J, Oka N,Sholes O D, Whitman R J. 1973. Food production andthe energy crisis. Science, 182, 443-449

[27]Rothausen S G S A, Conway D. 2011. Greenhouse-gasemissions from energy use in the water sector. NatureClimate Change, 1, 210-219

[28]Sauer T, Havlík P, Schneider U A, Schmid E, Kindermann G,Obersteiner M. 2010. Agriculture and resourceavailability in a changing world: the role of irrigation.Water Resource Research, 46, W06503.

[29]Scott A, Pasqualetti M J. 2010. Energy and water resourcesscarcity: critical infrastructure for growth and economicdevelopment in Arizona and Sonora. Natural ResourcesJournal, 50, 645-682

[30]Schroll H. 1994. Energy-flow and ecological sustainabilityin Danish agriculture. Ecosystems and Environment,51, 301-310.Shah T. 2009. Climate change and groundwater: India’sopportunities for mitigation and adaptation.Environmental Research Letters, 4, 35-40

[31]Siddiqi A, Anadon L D. 2011. The water-energy nexus inMiddle East and North Africa. Energy Policy, 39, 4529-4540

[32]Statistical Bureau of Minqin County. 2009. StatisticalYearbook. China Statistics Press, Beijing. (in Chinese)Stokes R J, Horvath A. 2009. Energy and air emission effectsof water supply. Environmental Science &Technology, 43, 2680-2687

[33]Sun D F, Dawson R, Li H, Wei R, Li B G. 2007. A landscapeconnectivity index for assessing desertification: a casestudy of Minqin County, China. Landscape Ecology,22, 531-543

[34]Sun H. 2006. Theoretical calculation for T&D losses in therural electricity network. Rural Electrification, 4, 12-13 (in Chinese)

[35]Sun Y, Kang S Z, Li F S, Zhang L. 2009. Comparison ofinterpolation methods for depth to groundwater andits temporal and spatial variations in the Minqin oasisof northwest China. Environmental Modelling &Software, 24, 1163-1170

[36]Topak R, Süheri S, Acar B. 2010. Comparison of energy ofirrigation regimes in sugar beet production in a semiaridregion. Energy, 35, 5464-5471

[37]Vlek P L G, Rodríguez-kuhl G, Sommer R. 2004. Energy useand CO2 production in tropical agriculture and meansand strategies for reduction or mitigation. Environment,Development and Sustainability, 6, 213-233

[38]Wang G X, Cheng G D. 1999a. The ecological features andsignificance of hydrology within arid inland river basinsof China. Environmental Geology, 37, 2l8-222

[39]Wang G X, Cheng G D. 1999b. Water resource developmentand its influence on the environment in arid area ofChina: the case of Hei River basin. Journal of Arid Environments, 43, 121-131

[40]Wang J, Xu Z, Huang J, Rozelle S. 2005. Incentives in watermanagement reform: assessing the effect on water use,productivity and poverty in the Yellow River basin.Environment and Development Economics, 10, 769-799

[41]Wang J X, Huang J K, Rozelle S, Huang Q Q, Zhang L J.2009. Understanding the water crisis in northern China:what government and farmers are doing. InternationalJournal of Water Resources Development, 25, 141-158

[42]Wang J X, Rothausen S G S A, Conway D, Zhang L J,Xiong W, Holman I P, Li Y M. 2012. China’s waterenergynexus: greenhouse-gas emissions fromgroundwater use for agriculture. EnvironmentalResearch Letters, 7, 014035.Wang Q, Shi J A, Chen G J, Xue L H. 2002. Environmentaleffects induced by human activities in arid ShiyangRiver basin, Gansu Province, northwest China.Environmental Geology, 43, 219-227

[43]Xia X. 2003. Analysis of present T&D losses in the ruralelectricity network. Rural Electrification, 10, 20. (inChinese)

[44]Zhang K C, Qu J J, Zu R P, Fang H Y. 2005. Temporalvariations of sandstorm in Minqin Oasis during 1954-2000 Environmental Geology, 49, 332-338

[45]Zhang X Y, Wang X M, Yan P. 2008. Re-evaluating theimpacts of human activity and environmental changeon desertification in the Minqin Oasis, China.Environmental Geology, 55, 705-715

[46]Zhu G F, Li Z Z, Su Y H, Ma J Z, Zhang Y Y. 2007.Hydrogeochemical and isotope evidence ofgroundwater evolution and recharge in Minqin Basin,Northwest China. Journal of Hydrology, 333, 239-251.
[1] Yunji Xu, Xuelian Weng, Shupeng Tang, Weiyang Zhang, Kuanyu Zhu, Guanglong Zhu, Hao Zhang, Zhiqin Wang, Jianchang Yang. Untargeted lipidomic analysis of milled rice under different alternate wetting and soil drying irrigation regimes[J]. >Journal of Integrative Agriculture, 2025, 24(9): 3351-3367.
[2] Jinxin Yu, Jiayi He, Xuefeng Zhang, Chuxiao Lin, Shiyan Liu, Xin Gong, Xinnian Zeng, Jiali Liu. Differential energy pathways are required for rapid long-term memory formation in the oriental fruit fly, Bactrocera dorsalis[J]. >Journal of Integrative Agriculture, 2025, 24(8): 3155-3168.
[3] Jinpeng Li, Siqi Wang, Zhongwei Li, Kaiyi Xing, Xuefeng Tao, Zhimin Wang, Yinghua Zhang, Chunsheng Yao, Jincai Li. Effects of micro-sprinkler irrigation and topsoil compaction on winter wheat grain yield and water use efficiency in the Huaibei Plain, China[J]. >Journal of Integrative Agriculture, 2025, 24(8): 2974-2988.
[4] Jiaying Ma, Jian Liu, Yue Wen, Zhanli Ma, Jinzhu Zhang, Feihu Yin, Tehseen Javed, Jihong Zhang, Zhenhua Wang. Enhancing the yield and water use efficiency of processing tomatoes (Lycopersicon esculentum Miller) through optimal irrigation and salinity management under mulched drip irrigation[J]. >Journal of Integrative Agriculture, 2025, 24(6): 2410-2424.
[5] Xiaoqiang Liu, Mingqi Li, Dong Xue, Shuai He, Junliang Fan, Fucang Zhang, Feihu Yin. Optimal drip irrigation leaching amount and timing enhanced cotton fiber yield, quality and nitrogen uptake by regulating soil salinity and nitrate nitrogen in saline-alkaline fields[J]. >Journal of Integrative Agriculture, 2025, 24(6): 2389-2409.
[6] Martín Flores-Saavedra, Pietro Gramazio, Santiago Vilanova, Diana M. Mircea, Mario X. Ruiz-González, Óscar Vicente, Jaime Prohens, Mariola Plazas. Introgressed eggplant lines with the wild Solanum incanum evaluated under drought stress conditions[J]. >Journal of Integrative Agriculture, 2025, 24(6): 2203-2216.
[7] Jin Wang, Minghua Wei, Haiyan Wang, Changjuan Mo, Yingchun Zhu, Qiusheng Kong. A time-course transcriptome reveals the response of watermelon to low-temperature stress[J]. >Journal of Integrative Agriculture, 2025, 24(5): 1786-1799.
[8] Hairen Shi, Pei Guo, Jieyan Zhou, Zhen Wang, Meiyue He, Liyuan Shi, Xiaojuan Huang, Penghui Guo, Zhaoxia Guo, Yuwen Zhang, Fujiang Hou. Effects of stocking rate on growth performance, energy and nitrogen utilization, methane emission, and grazing behavior in Tan sheep grazed on typical steppe[J]. >Journal of Integrative Agriculture, 2025, 24(4): 1234-1245.
[9] Ying Zhao, Xiaozeng Han, Chen Qiu, Wenxiu Zou, Xinchun Lu, Jun Yan, Xu Chen. The enhancements of pore morphology and size distribution by straw return are mediated by increases in aggregate-associated carbon and nitrogen[J]. >Journal of Integrative Agriculture, 2025, 24(4): 1562-1576.
[10] Jiannan Xiao, Shikui Dong, Hao Shen, Ran Zhang, Hang Shi, Fencai He, Wei Li, Xiaoyan Li, Yu Li, Chengxiang Ding. Short-term P addition may improve the stimulating effects of N deposition on N2O emissions in alpine grasslands on the Qinghai-Tibet Plateau[J]. >Journal of Integrative Agriculture, 2025, 24(3): 900-912.
[11] Jinwen Pang, Zhonghong Tian, Mengjie Zhang, Yuhao Wang, Tianxiang Qi, Qilin Zhang, Enke Liu, Weijun Zhang, Xiaolong Ren, Zhikuan Jia, Kadambot H. M. Siddique, Peng Zhang. Enhancing carbon sequestration and greenhouse gas mitigation in semiarid farmland: The promising role of biochar application with biodegradable film mulching[J]. >Journal of Integrative Agriculture, 2025, 24(2): 517-526.
[12] Qingyun Tang, Guodong Wang, Lei Zhao, Zhiwen Song, Yuxiang Li.
Responses of yield, root traits and their plasticity to the nitrogen environment in nitrogen-efficient cultivars of drip-irrigated rice
[J]. >Journal of Integrative Agriculture, 2025, 24(2): 480-496.
[13] Ben Zhao, Anzhen Qin, Wei Feng, Xinqiang Qiu, Pingyan Wang, Haixia Qin, Yang Gao, Guojie Wang, Zhandong Liu, Syed Tahir Ata-Ul-Karim. Water deficit affects the nitrogen nutrition index of winter wheat under controlled water conditions[J]. >Journal of Integrative Agriculture, 2025, 24(2): 724-738.
[14] Jingyi Feng, He Zhang, Hongyuan Zhang, Xirui Kang, Hui Wang, Hong Pan, Quangang Yang, Zhongchen Yang, Yajie Sun, Yanhong Lou, Yuping Zhuge. Optimization of fertilization combined with water-saving irrigation improves the water and nitrogen utilization efficiency of wheat and reduces nitrogen loss in the Nansi Lake basin, China[J]. >Journal of Integrative Agriculture, 2025, 24(10): 4034-4047.
[15] Kun Han, Xinzhu Li, Liang Jia, Dazhao Yu, Wenhua Xu, Hongkun Chen, Tao Song, Peng Liu. Optimizing tillage and fertilization practices to improve the carbon footprint and energy efficiency of wheat–maize cropping systems[J]. >Journal of Integrative Agriculture, 2025, 24(10): 3789-3802.
No Suggested Reading articles found!