Arid Land Geography ›› 2021, Vol. 44 ›› Issue (5): 1417-1426.doi: 10.12118/j.issn.1000–6060.2021.05.22
• Earth Information Sciences • Previous Articles Next Articles
LI Jingxin1,2(),XU Erqi1(),ZHANG Hongqi1
Received:
2020-09-26
Revised:
2020-12-30
Online:
2021-09-25
Published:
2021-09-22
Contact:
Erqi XU
E-mail:18b@igsnrr.ac.cn;xueq@igsnrr.ac.cn
LI Jingxin,XU Erqi,ZHANG Hongqi. Accurate calculation of water resources carrying status in arid areas based on Google Earth Engine: A case study of Xinjiang Production and Construction Corps[J].Arid Land Geography, 2021, 44(5): 1417-1426.
Tab. 2
Statistics of main crops irrigation norm of conventional, above mulch and mixed irrigation scenarios in Xinjiang Production and Construction Corps /m3·hm-2"
作物 | 北疆 | 南疆 | 东疆 | ||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
常规灌溉 | 膜上灌溉 | 混合灌溉 | 常规灌溉 | 膜上灌溉 | 混合灌溉 | 常规灌溉 | 膜上灌溉 | 混合灌溉 | |||
小麦 | 4725 | 3660 | 5160 | 5115 | 3945 | 5580 | 5220 | 4050 | 5700 | ||
玉米 | 4800 | 3720 | 5235 | 5310 | 4110 | 5805 | 6480 | 5025 | 7050 | ||
水稻 | 12405 | 9420 | 13530 | 13980 | 10800 | 15255 | - | - | - | ||
薯类 | 4725 | 4035 | 4725 | 5265 | 4500 | 5265 | 5400 | 4650 | 5400 | ||
油菜 | 4815 | 3915 | 4815 | 5325 | 4095 | 5325 | 5175 | 4050 | 5175 | ||
葵花 | 4845 | 3855 | 4845 | 5565 | 4260 | 5565 | 5775 | 4470 | 5775 | ||
豆类 | 4260 | 3285 | 4260 | 5070 | 3900 | 5070 | 5445 | 4230 | 5445 | ||
棉花 | 5835 | 4515 | 4515 | 6600 | 5625 | 5625 | 7650 | 5895 | 5895 | ||
甜菜 | 5325 | 4125 | 5325 | 5715 | 4425 | 5715 | - | - | - | ||
苜蓿 | 4575 | 3540 | 4575 | 5115 | 3975 | 5115 | 5295 | 4125 | 5295 | ||
蔬菜 | 5520 | 4260 | 5520 | 6435 | 4950 | 6435 | 6255 | 4845 | 6255 | ||
葡萄 | 5970 | 4620 | 5970 | 6510 | 5025 | 6510 | 9225 | 7170 | 9225 | ||
瓜类 | 4695 | 3615 | 4695 | 5370 | 4170 | 5370 | 5580 | 4305 | 5580 | ||
果树 | 6195 | 4980 | 6195 | 7275 | 5640 | 7275 | 8295 | 6375 | 8295 |
Tab. 3
Calculation method and illustration of each water requirement (except planting irrigation water requirement) of Xinjiang Production and Construction Corps"
非种植业需水 | 需水项 | 计算方法 | 灌溉定额参考来源 |
---|---|---|---|
生活需水 | 城镇居民生活需水 | 式中:WSi代表第i师生产需水量(108 m3);QSi为第i师人均生产用水定额[L·(d·人)-1];Pi为第i师人口数量(人)。 | 结合中国工程院对新疆水资源供需情况调研分析[ |
生产需水 | 农业-林草地灌溉需水 | 式中:WDi代表第i师林地/草地灌溉需水量(108 m3);QDi、ADi为第i师林地/草地灌溉定额(m3·hm-2)和灌溉面积(hm2);Ri为第i师林地/草地灌溉面积比例,最终林地灌溉需水与草地灌溉需水之和为林草地灌溉总需水。 | 根据中国工程院已有研究[ |
农业-牲畜需水 | 式中:WLi为第i师牲畜需水量(108 m3);Qai和Qbi分别为第i师大牲畜(牛、马和驴)和小牲畜(羊和猪)需水定额[L·(d·头)-1];Mai和Mbi分别为第i师大牲畜和小牲畜数量(头)。 | 根据中国工程院已有研究[ | |
工业 需水 | 式中:WGi代表第i师工业需水量(108 m3);IAVi为第i师当年工业增加值(104元);IGi和Di分别为前一年份万元工业增加值用水量[108 m3·(104元)-1]和近10 a来平均万元工业增加值用水量降幅(%);QCi为当前年份万元工业增加值用水量[108 m3·(104元)-1]。 | 根据《新疆生产建设兵团年鉴》和《兵团年鉴》中可获取的数据,2017年各师工业用水量平均值分别为0.08×108 m3(N)、0.22×108 m3(S)和0.24×108 m3(E),工业增加值分别为18.00×108元(N)、30.80×108元(S)和55.90×108元(E),由此可得万元工业增加值用水量分别为39.43×108 m3·(104元)-1(N)、71.43 ×108 m3·(104元)-1(S)和42.84×108 m3·(104元)-1(E)。 | |
城镇公共需水 | 式中:WCi代表第i师生产需水量(108 m3);QCi为第i师人均生产用水定额[L·(d·人)-1];Pi为第i师人口数量(人)。 | 根据已有研究结论[ | |
生态需水 | 河道外生态需水 | 式中:WROi为第i师河道外生态需水量(108 m3);QEi为第i师河道外人均生态需水定额[L·(d·人)-1];Pi为第i师人口数量(人)。 | 结合已有研究[ |
Tab. 4
Water requirement of mixed irrigation scenario based on the corrected cultivated land area of Xinjiang production and Construction Corps /108 m3"
师名 | 农业需水 合计 | 农业需水类别 | 生活 需水 | 工业 需水 | 城镇公共 需水 | 河道外 生态需水 | 总需 水量 | ||
---|---|---|---|---|---|---|---|---|---|
农作物 | 牲畜 | 林草地 | |||||||
一师 | 27.89 | 27.77 | 0.10 | 0.02 | 0.18 | 0.43 | 0.03 | 0.02 | 28.54 |
二师 | 10.34 | 9.78 | 0.54 | 0.02 | 0.11 | 0.24 | 0.02 | 0.01 | 10.71 |
三师 | 12.63 | 12.36 | 0.25 | 0.02 | 0.12 | 0.18 | 0.02 | 0.01 | 12.97 |
四师 | 9.53 | 8.65 | 0.83 | 0.05 | 0.14 | 0.29 | 0.02 | 0.01 | 9.99 |
五师 | 5.94 | 5.39 | 0.53 | 0.01 | 0.07 | 0.04 | 0.01 | 0.01 | 6.07 |
六师 | 11.03 | 9.79 | 1.20 | 0.04 | 0.21 | 0.40 | 0.03 | 0.02 | 11.68 |
七师 | 10.17 | 9.61 | 0.53 | 0.03 | 0.14 | 0.14 | 0.02 | 0.01 | 10.47 |
八师 | 17.23 | 16.92 | 0.27 | 0.05 | 0.37 | 0.63 | 0.05 | 0.03 | 18.32 |
九师 | 4.45 | 3.66 | 0.75 | 0.04 | 0.05 | 0.03 | 0.01 | 0.00 | 4.54 |
十师 | 2.88 | 2.67 | 0.20 | 0.02 | 0.06 | 0.09 | 0.01 | 0.01 | 3.04 |
十二师 | 1.93 | 1.01 | 0.91 | 0.01 | 0.08 | 0.25 | 0.01 | 0.01 | 2.27 |
十三师 | 4.15 | 3.04 | 1.10 | 0.01 | 0.06 | 0.30 | 0.01 | 0.00 | 4.53 |
十四师 | 2.46 | 2.21 | 0.24 | 0.01 | 0.03 | 0.01 | 0.01 | 0.00 | 2.50 |
合计 | 120.64 | 112.86 | 7.45 | 0.32 | 1.61 | 3.03 | 0.22 | 0.15 | 125.64 |
Tab. 5
Water resources carrying capacity of mixed irrigation scenario based on statistics of Xinjiang Production and Construction Corps"
师名 | 总供水量/108 m3 | 总需水量/108 m3 | 超载程度/% | 不超载 | 临界状态 | 一般超载 | 中度超载 | 严重超载 |
---|---|---|---|---|---|---|---|---|
一师 | 23.08 | 24.16 | 4.70 | √ | ||||
二师 | 10.84 | 9.42 | -13.10 | √ | ||||
三师 | 12.71 | 11.02 | -13.26 | √ | ||||
四师 | 12.80 | 8.01 | -37.40 | √ | ||||
五师 | 5.00 | 4.54 | -9.19 | √ | ||||
六师 | 12.90 | 10.79 | -16.34 | √ | ||||
七师 | 9.39 | 7.85 | -16.45 | √ | ||||
八师 | 13.38 | 15.36 | 14.77 | √ | ||||
九师 | 2.33 | 3.99 | 70.87 | √ | ||||
十师 | 6.86 | 2.50 | -63.47 | √ | ||||
十二 | 2.31 | 2.20 | -4.91 | √ | ||||
十三 | 3.25 | 4.14 | 27.34 | √ | ||||
十四 | 2.39 | 2.47 | 3.25 | √ |
Tab. 6
Water resources carrying capacity of mixed irrigation scenario based on corrected cultivated land area of Xinjiang Production and Construction Corps"
师名 | 总供水量/108 m3 | 总需水量/108 m3 | 超载程度/% | 不超载 | 临界状态 | 一般超载 | 中度超载 | 严重超载 |
---|---|---|---|---|---|---|---|---|
一师 | 23.08 | 28.54 | 23.67 | √ | ||||
二师 | 10.84 | 10.71 | -1.18 | √ | ||||
三师 | 12.71 | 12.97 | 2.01 | √ | ||||
四师 | 12.80 | 9.99 | -21.92 | √ | ||||
五师 | 5.00 | 6.07 | 21.42 | √ | ||||
六师 | 12.90 | 11.68 | -9.45 | √ | ||||
七师 | 9.39 | 10.47 | 11.55 | √ | ||||
八师 | 13.38 | 18.32 | 36.92 | √ | ||||
九师 | 2.33 | 4.54 | 94.60 | √ | ||||
十师 | 6.86 | 3.04 | -55.63 | √ | ||||
十二师 | 2.31 | 2.27 | -1.96 | √ | ||||
十三师 | 3.25 | 4.53 | 39.18 | √ | ||||
十四师 | 2.39 | 2.50 | 4.70 | √ |
[1] | Tan M H, Zheng L Q. Increase in economic efficiency of water use caused by crop structure adjustment in arid areas[J]. Journal of Environmental Management, 2019(230):386-391. |
[2] | Yang G, Li F D, Chen D, et al. Assessment of changes in oasis scale and water management in the arid Manas River Basin, north western China[J]. Science of the Total Environment, 2019(691):506-515. |
[3] | 黄会平, 张岑. 基于3S的干旱区土地利用/覆被变化及其对水资源的影响分析--以张掖市甘州区为例[J]. 水土保持研究, 2009, 16(4):270-274. |
[ Huang Huiping, Zhang Chen. LUCC and analysis of water resources effect in arid area: A case of Ganzhou District, Zhangye, Gansu Province[J]. Research of Soil and Water Conservation, 2009, 16(4):270-274. ] | |
[4] | 邵双林, 陈红艳. 新疆生产建设兵团水资源利用情况及用水水平评价[J]. 水利规划与设计, 2010(3):38-39, 49. |
[ Shao Shuanglin, Chen Hongyan. Evaluation of water resources utilization and water use level of Xinjiang Production and Construction Corps[J]. Water Conservancy Planning and Design, 2010(3):38-39, 49. ] | |
[5] | 周宏飞, 吴波, 王玉刚, 等. 新疆生产建设兵团农垦生态建设的成就、问题及对策刍议[J]. 中国科学院院刊, 2017, 32(1):55-63. |
[ Zhou Hongfei, Wu Bo, Wang Yugang, et al. Ecological achievement of Xinjiang Production and Construction Corps and its problems and countermeasures[J]. Bulletin of Chinese Academy of Sciences, 2017, 32(1):55-63. ] | |
[6] | 程钢. 石河子垦区农业开发与绿洲生态演变研究[D]. 石河子: 石河子大学, 2013. |
[ Cheng Gang. Agricultural development and oasis ecosystem evolution in Shihezi reclamation zone: Based on the analysis about the ecosystem service function[D]. Shihezi: Shihezi University, 2013. ] | |
[7] | 封玲. 石河子水资源利用方式对绿洲生态环境的影响[J]. 石河子大学学报(哲学社会科学版), 2005, 19(2):9-12. |
[ Feng Ling. Influence to oasis ecological environment owing to the way of water resources in Shihezi[J]. Journal of Shihezi University (Philosophy and Social Science Edition), 2005, 19(2):9-12. ] | |
[8] | Chen Z K, Niu Y P, Zhao R H, et al. The combination of limited irrigation and high plant density optimizes canopy structure and improves the water use efficiency of cotton[J]. Agriculture Water Manage, 2019(218):139-148. |
[9] |
Yang G, Tian L J, Li X L, et al. Numerical assessment of the effect of water-saving irrigation on the water cycle at the Manas River Basin oasis, China[J]. Science of the Total Environment, 2020(707):135587, doi: 10.1016/j.scitotenv.2019.135587.
doi: 10.1016/j.scitotenv.2019.135587 |
[10] | 李年亮. 新疆兵团第十三师水资源配置与优化模拟研究[D]. 西安: 西安理工大学, 2019. |
[ Li Nianliang. Water resources allocation and optimization simulation of Xinjiang Corps Thirteenth Division[D]. Xi’an: Xi’an University of Technology, 2019. ] | |
[11] | 张敏. 新疆兵团高效节水灌溉发展中存在的问题与解决思路[J]. 节水灌溉, 2013(7):79-80. |
[ Zhang Min. Preliminary analysis of existing problems and solutions of water-saving irrigation development in Xinjiang Construction Crops[J]. Water Saving Irrigation, 2013(7):79-80. ] | |
[12] | 中国工程院. “新疆水土资源可持续利用与生态文明建设”专题报告与调研报告[R]. 北京: 中国工程院, 2014. |
[ Chinese Academy of Engineering. Special report and research report on “Sustainable Utilization of Water and Soil Resources and Ecological Civilization Construction in Xinjiang”[R]. Beijing: Chinese Academy of Engineering, 2014. ] | |
[13] | 李明思, 刘洪光, 郑旭荣. 长期膜下滴灌农田土壤盐分时空变化[J]. 农业工程学报, 2012, 28(22):82-87. |
[ Li Mingsi, Liu Hongguang, Zheng Xurong. Spatiotemporal variation for soil salinity of field land under long-term mulched drip irrigation[J]. Transactions of the Chinese Society of Agricultural Engineering, 2012, 28(22):82-87. ] | |
[14] | 王振华, 杨培岭, 郑旭荣, 等. 膜下滴灌系统不同应用年限棉田根区盐分变化及适耕性[J]. 农业工程学报, 2014, 30(4):90-99. |
[ Wang Zhenhua, Yang Peiling, Zheng Xurong, et al. Soil salinity changes of root zone and arable in cotton field with drip irrigation under mulch for different years[J]. Transactions of the Chinese Society of Agricultural Engineering, 2014, 30(4):90-99. ] | |
[15] | 李红山, 李杰军, 吴瑞, 等. 浅谈兵团农田防护林存在的问题及对策[J]. 甘肃林业科技, 2007, 32(3):79-81. |
[ Li Hongshan, Li Jiejun, Wu Rui, et al. Simple discussion on problems existed in forest for farm protection and countermeasures[J]. Journal of Gansu Forestry Science and Technology, 2007, 32(3):79-81. ] | |
[16] | 刘艳珍. 兵团农八师地下水现状与对策[J]. 水利科技与经济, 2011(17):36-37, 44. |
[ Liu Yanzhen. Status quo and countermeasures of underground water of Agricultural Eighth Division[J]. Water Conservancy Science and Technology and Economy, 2011(17):36-37, 44. ] | |
[17] | 王东, 孟涛, 王云智. 新疆石河子市地下水超采现状分析及对策[J]. 地下水, 2007, 29(2):78-80. |
[ Wang Dong, Meng Tao, Wang Yunzhi. Status quo analysis and countermeasures of underground water overdraft in Shihezi City, Xinjiang[J]. Ground Water, 2007, 29(2):78-80. ] | |
[18] | 吴彬. 石河子市地下水系统演化规律与水环境效应研究[D]. 乌鲁木齐: 新疆农业大学, 2007. |
[ Wu Bin. Study on groundwater system evolvement law and water environment effect of Shihezi City[D]. Urumqi: Xinjiang Agriculture University, 2007. ] | |
[19] | 王静, 刘海隆, 王玲. 气候变化背景下玛纳斯河流域绿洲适宜规模研究[J]. 干旱区地理, 2019, 42(1):113-120. |
[ Wang Jing, Liu Hailong, Wang Ling. Suitable oasis scale in Manas River Basin in the context of climate change[J]. Arid Land Geography, 2019, 42(1):113-120. ] | |
[20] | 中国工程院. 新疆可持续发展中有关水资源的战略研究[R]. 北京: 中国工程院, 2012. |
[ Chinese Academy of Engineering. Study of strategy on water resources in sustainable development of Xinjiang[R]. Beijing: Chinese Academy of Engineering, 2012. ] | |
[21] |
Hu Y F, Hu Y. Land cover changes and their driving mechanisms in Central Asia from 2001 to 2017 supported by Google Earth Engine[J]. Remote Sensing, 2019, 11(5):554, doi: 10.3390/rs11050554.
doi: 10.3390/rs11050554 |
[22] | 胡云锋, 商令杰, 张千力, 等. 基于GEE平台的1990年以来北京市土地变化格局及驱动机制分析[J]. 遥感技术与应用, 2018, 33(4):573-583. |
[ Hu Yunfeng, Shang Lingjie, Zhang Qianli, et al. Land change patterns and driving mechanism in Beijing since 1990 based on GEE platform[J]. Remote Sensing Technology and Application, 2018, 33(4):573-583. ] | |
[23] | 李建军, 罗格平, 丁建丽, 等. 近50 a人工灌排技术进步对玛纳斯河流域耕地格局变化的影响[J]. 自然资源学报, 2016, 31(4):570-582. |
[ Li Jianjun, Luo Geping, Ding Jianli, et al. Effect of progress in artificial irrigation and drainage technology on the change of cultivated land pattern in the past 50 years in Manasi River Watershed[J]. Journal of Natural Resources, 2016, 31(4):570-582. ] | |
[24] | 禹朴家, 徐海量, 乔木, 等. 利用CBERS数据测算净耕地系数的可行性分析[J]. 干旱区研究, 2009, 26(6):846-851. |
[ Yu Piaojia, Xu Hailiang, Qiao Mu, et al. Arable land in the Manas River Basin based on CBERS data[J]. Arid Zone Research, 2009, 26(6):846-851. ] | |
[25] | 陈志恺, 王浩. 新疆水资源供需发展趋势、合理配置与可持续利用研究[R]. 北京: 中国工程院, 2012. |
[ Chen Zhikai, Wang Hao. Research on the supply and requirement development trend, rational allocation and sustainable utilization of water resources in Xinjiang[R]. Beijing: Chinese Academy of Engineering, 2012. ] | |
[26] | 焦会青, 盛钰, 赵成义, 等. 基于COMSOL软件的绿洲盐渍化土壤中多离子耦合运移模型构建[J]. 农业工程学报, 2018, 34(5):100-107. |
[ Jiao Huiqing, Sheng Yu, Zhao Chengyi, et al. Modeling of multiple ions coupling transport for salinized soil in oasis based on COMSOL[J]. Transactions of the Chinese Society of Agricultural Engineering, 2018, 34(15):100-107. ] | |
[27] | 王振华. 典型绿洲区长期膜下滴灌棉田土壤盐分运移规律与灌溉调控研究[D]. 北京: 中国农业大学, 2014. |
[ Wang Zhenhua. Salt movement trends in cotton fields with long-term drip irrigation under mulch in typical oasis and irrigation management[D]. Beijing: China Agricultural University, 2014. ] | |
[28] | 王成, 姚宝林, 王兴鹏, 等. 棉花膜下滴灌干播湿出土壤水盐变化与耗水规律试验研究[J]. 中国农村水利水电, 2012(10):25-30. |
[ Wang Cheng, Yao Baolin, Wang Xingpeng, et al. Soil salt transfer law and water consumption characteristics for cotton with drip irrigation under mulch with dry sowing and wet seeding[J]. China Rural Water and Hydropower, 2012(10):25-30. ] | |
[29] | 李光明, 邓杰. 产业支撑、生态保护与城市可持续发展研究--以乌鲁木齐为例[J]. 干旱区地理, 2016, 39(4):868-876. |
[ Li Guangming, Deng Jie. Industry supporting, ecology protection and urban sustainable development: A case of the Urumqi[J]. Arid Land Geography, 2016, 39(4):868-876. ] | |
[30] | 方创琳. 天山北坡城市群可持续发展战略思路与空间布局[J]. 干旱区地理, 2019, 42(1):1-11. |
[ Fang Chuanglin. Strategic thinking and spatial layout for the sustainable development of urban agglomeration in northern slope of Tianshan Mountains[J]. Arid Land Geography, 2019, 42(1):1-11. ] | |
[31] | 张晓宇, 许端阳, 卢周扬帆, 等. 基于系统动力学的阿拉善“三生”用水系统演化模拟与调控[J]. 干旱区资源与环境, 2019, 33(8):107-113. |
[ Zhang Xiaoyu, Xu Duanyang, Luzhou Yangfan, et al. Evolution simulation and regulation of production-living-ecological water system in Alax based on system dynamics[J]. Journal of Arid Land Resources and Environment, 2019, 33(8):107-113. ] |
|