发表论文

  [1] Liu X, Zhao X, Yin H, et al. Intermediate-calcium based cementitious materials prepared by MSWI fly ash and other solid wastes: hydration characteristics and heavy metals solidification behavior[J]. Journal of Hazardous Materials, 2018:262-271. (SCI)

  [2] Cao Y, Dallimer M, Stringer L C, et al. Land expropriation compensation among multiple stakeholders in a mining area: Explaining “skeleton house” compensation[J]. Land Use Policy, 2018, 74:97–110. (SCI)

  [3] Wang J, Wang R, Zhu Y, et al. Life cycle assessment and environmental cost accounting of coal-fired power generation in China[J]. Energy Policy, 2018, 115:374-384. (SCI)

  [4] Yuan Y, Zhao Z, Niu S, et al. Reclamation promotes the succession of the soil and vegetation in opencast coal mine: A case study from Robinia pseudoacacia, reclaimed forests, Pingshuo mine, China[J]. Catena, 2018, 165:72-79. (SCI)

  [5] Jing Z, Wang J, Zhu Y, et al. Effects of Land Subsidence Resulted from Coal Mining on Soil Nutrient distributions in a Loess Area of China[J]. Journal of Cleaner Production, 2017, 177:350-361. (SCI)

  [6] Yao L, Naeth M A, Mollard F P O, et al. Ecological role of pyrolysis by-products in seed germination of grass species[J]. Ecological Engineering, 2017, 108:78-82. (SCI)

  [7] Wang J, Li X, Bai Z, et al. The effects of coal gangue and fly ash on the hydraulic properties and water content distribution in reconstructed soil profiles of coalmined land with a high groundwater table[J]. Hydrological Processes, 2017, 31(3):687-697. (SCI)

  [8] Wang J, Wang P, Qin Q, et al. The effects of land subsidence and rehabilitation on soil hydraulic properties in a mining area in the Loess Plateau of China[J]. Catena, 2017, 159:51-59. (SCI)

  [9] Zhang J, Xu Q, Rao Y, et al. Government, enterprise and resident: Roles of local agents in regulating and simulating built-up land use and change in a mining city[J]. Land Use Policy the International Journal Covering All Aspects of Land Use, 2017, 67:222-238.

  [10] Wang J, Yang P. Potential flue gas desulfurization gypsum utilization in agriculture: A comprehensive review[J]. Renewable & Sustainable Energy Reviews, 2017, 82:1969-1978.

  [11] Shi X Y, Wang Y P, Sun X D. Quality of Soils on Reclaimed Land from a Coal Mining Area[J]. Advanced Materials Research, 2013, 610-613:2974-2979.

  [12] Li Y, Tsukamoto S, Hu K, et al. Quartz OSL and K-feldspar post-IR IRSL dating of sand accumulation in the Lower Liao Plain (Liaoning, NE China)[J]. Geochronometria, 2017, 44(1):1-15. (SCI)

  [13] Yuan Y, Zhao Z, Zhang P, et al. Soil organic carbon and nitrogen pools in reclaimed mine soils under forest and cropland ecosystems in the Loess Plateau, China[J]. Ecological Engineering, 2017, 102:137-144. (SCI)

  [14] Wang J, Yang R, Feng Y. Spatial variability of reconstructed soil properties and the optimization of sampling number for reclaimed land monitoring in an opencast coal mine[J]. Arabian Journal of Geosciences, 2017, 10(2):46. (SCI)

  [15] Zhang J, Chen Y, Rao Y, et al. Alternative spatial allocation of suitable land for biofuel production in China[J]. Energy Policy, 2017, 110:631-643. (SCI)

  [16] Zhou W, Yang K, Bai Z, et al. The development of topsoil properties under different reclaimed land uses in the Pingshuo opencast coalmine of Loess Plateau of China[J]. Ecological Engineering, 2017, 100:237-245. (SCI)

  [17] Liu X, Bai Z, Zhou W, et al. Changes in soil properties in the soil profile after mining and reclamation in an opencast coal mine on the Loess Plateau, China[J]. Ecological Engineering, 2016. (SCI)

  [18] Cao Y, Bai Z, Zhou W, et al. Characteristic analysis and pattern evolution on landscape types in typical compound area of mine agriculture urban in Shanxi Province, China[J]. Environmental Earth Sciences, 2016, 75(7):585. (SCI)

  [19] Yuan Y, Zhao Z, Bai Z, et al. Reclamation patterns vary carbon sequestration by trees and soils in an opencast coal mine, China[J]. Catena, 2016, 147:404-410. (SCI)

  [20] Zhang X, Bai Z, Fan X, et al. Urban Expansion Process, Pattern, and Land Use Response in an Urban Mining Composited Zone from 1986 to 2013[J]. Journal of Urban Planning & Development, 2016, 142(4):04016014. (SCI)

  [21] Zhang N, Li H, Zhao Y, et al. Hydration characteristics and environmental friendly performance of a cementitious material composed of calcium silicate slag [J]. Journal of Hazardous Materials, 2016, 306:67-76. (SCI)

  [22] Zhang N, Li H, Liu X. Hydration mechanism and leaching behavior of bauxite-calcination-method red mud-coal gangue based cementitious materials[J]. Journal of Hazardous Materials, 2016, 314:172-180. (SCI)

  [23] Zhang N, Li H, Peng D, et al. Properties evaluation of silica-alumina based concrete: Durability and environmental friendly performance[J]. Construction & Building Materials, 2016, 115:105-113. (SCI)

  [24] Zhang N, Li H X, Liu X M. Hydration kinetics of cementitious materials composed of red mud and coal gangue[J]. International Journal of Minerals, Metallurgy and Materials, 2016, 23(10):1215-1224. (SCI)

  [25] Zhang, Hong-Xu, Xiao-Ming. Recovery of scandium from bauxite residue-red mud: a review[J]. Rare Metals, 2016, 35(12):1-14. (SCI)

  [26] Wang J, Guo L, Bai Z, et al. Using computed tomography (CT) images and multi-fractal theory to quantify the pore distribution of reconstructed soils during ecological restoration in opencast coal-mine[J]. Ecological Engineering, 2016, 92:148-157. (SCI)

  [27] Cao Y, Bai Z, Zhou W, et al. Analyses of traits and driving forces on urban land expansion in a typical coal-resource-based city in a loess area[J]. Environmental Earth Sciences, 2016, 75(16):1191. (SCI)

  [28] Liu L, Zhang Y, Lv F, et al. Effects of red mud on rheological, crystalline, and mechanical properties of red mud/PBAT composites[J]. Polymer Composites, 2016, 37(7):2001-2007.

  [29] Liu X, Zhou W, Bai Z. Vegetation coverage change and stability in large open-pit coal mine dumps in China during 1990–2015[J]. Ecological Engineering, 2016, 95:447-451. (SCI)

  [30] Chen W, Wang Y, Li X, et al. Land use/land cover change and driving effects of water environment system in Dunhuang Basin, northwestern China[J]. Environmental Earth Sciences, 2015, 75(12):1-11. (SCI)

  [31] Wang J, Zhang M, Bai Z, et al. Multi-fractal characteristics of the particle distribution of reconstructed soils and the relationship between soil properties and multi-fractal parameters in an opencast coal-mine dump in a loess area[J]. Environmental Earth Sciences, 2015, 73(8):4749-4762. (SCI)

  [32] Zhang B, Zhang L, Yang H, et al. Subsidence prediction and susceptibility zonation for collapse above goaf with thick alluvial cover: a case study of the Yongcheng coalfield, Henan Province, China[J]. Bulletin of Engineering Geology & the Environment, 2015(3):1-16. (SCI)

  [33] Wang X, Zhang Y, Lu R, et al. Novel multiple coagulant from Bayer red mud for oily sewage treatment[J]. Desalination & Water Treatment, 2015, 54(3):690-698. (SCI)

  [34] Wang X, Zhang Y, Lv F, et al. Removal of alkali in the red mud by SO2 and simulated flue gas under mild conditions[J]. Environmental Progress & Sustainable Energy, 2015, 34(1):81-87. (SCI)

  [35] Cao Y. Forces Driving Changes in Urban Construction Land of Urban Agglomerations in China[J]. Journal of Urban Planning & Development, 2015, 141(2):05014011. (SCI)

  [36] Guo L L, Wang J M, Bai Z K, et al. Analysis of spatial variability of soil granules in early stage of reclamation at opencast coal mine dump in loess area[J]. China Mining Magazine, 2015, 955-959:3746-3756.

  [37] Cao Y, Wang J, Bai Z, et al. Differentiation and mechanisms on physical properties of reconstructed soils on open-cast mine dump of loess area[J]. Environmental Earth Sciences, 2015, 74(8):6367-6380. (SCI)

  [38] Bao N, Lechner A, Fletcher A, et al. SPOTing long-term changes in vegetation over short-term variability[J]. International Journal of Surface Mining Reclamation & Environment, 2014, 28(1):2-24.

  [39] Wang J, Bai Z, Yang P. Mechanism and numerical simulation of multicomponent solute transport in sodic soils reclaimed by calcium sulfate[J]. Environmental Earth Sciences, 2014, 72(1):157-169. (SCI)

  [40] Yang Y Y, Wu H N, Shen S L, et al. Environmental impacts caused by phosphate mining and ecological restoration: a case history in Kunming, China[J]. Natural Hazards, 2014, 74(2):755-770. (SCI)

  [41] Cao Y, Bai Z, Zhou W, et al. Gradient Analysis of Urban Construction Land Expansion in the Chongqing Urban Area of China[J]. Journal of Urban Planning & Development, 2014, 141(1):05014009. (SCI)

  [42] Wang X K, Zhang Y H, Lv F Z, et al. Removal of Alkali in the Red Mud Using CO2 at Ambient Conditions[J]. Advanced Materials Research, 2014, 875-877:39-43. (SCI)

  [43] Guo Y X, Zhang Y H, Meng X H, et al. Effect of Additives on the Synthesis of Foam Glasses from Polishing Porcelain Tile Waste and Carbon Ash[J]. Applied Mechanics & Materials, 2014, 535:654-657. (SCI)

  [44] Yang S, Zhang Y, Yu J, et al. Antibacterial and mechanical properties of honeycomb ceramic materials incorporated with silver and zinc[J]. Materials & Design, 2014, 59(6):461-465. (SCI)

  [45] Yang S, Zhang Y, Yu J, et al. Multi-functional honeycomb ceramic materials produced from bauxite residues[J]. Materials & Design, 2014, 59(6):333-338. (SCI)

  [46] Guo Y, Zhang Y, Huang H, et al. Novel glass ceramic foams materials based on red mud[J]. Ceramics International, 2014, 40(5):6677-6683. (SCI)

  [47] Meng X, Zhang Y, Zhou F, et al. Influence of carbon ash on the rheological properties of bentonite dispersions[J]. Applied Clay Science, 2014, s 88–89(3):129-133. (SCI)

  [48] Lu R, Zhang Y, Zhou F, et al. Novel polyaluminum ferric chloride composite coagulant from Bayer red mud for wastewater treatment[J]. Desalination & Water Treatment, 2014, 52(40-42): 7645-7653. (SCI)

  [49] Wang J, Bai Z, Yang P. Simulation and prediction of ion transport in the reclamation of sodic soils with gypsum based on the support vector machine[J]. Scientific World Journal, 2014, 2014(1):805342.

  [50] Zhao Z, Shahrour I, Bai Z, et al. Soils development in opencast coal mine spoils reclaimed for 1–13 years in the West-Northern Loess Plateau of China[J]. European Journal of Soil Biology, 2013, 55(3):40-46. (SCI)

  [51] Zhou Y, Luo M, Bai Z K. Land Reclamation Zoning and Evaluation of Land Suitability in Mining Areas in China[J]. Advanced Materials Research, 2013, 726-731:4751-4759.

  [52] Wang R Q, Li X, Zhou A G. Eco-Environment Status and Protection Countermeasures in the Luziping Phosphate Mining Area, Xingshan[J]. Applied Mechanics & Materials, 2013, 409-410:226-230.

  [53] Jiao Z Z, Wang J M, Yang R X, et al. Study on Soil Carbon Sequestration in the Heidaigou Opencast Coal Mine[J]. Advanced Materials Research, 2013, 726-731:204-208.

  [54] Lv G, Wu L, Liao L, et al. Preparation and characterization of red mud sintered porous materials for water defluoridation[J]. Applied Clay Science, 2013, 74(4):95-101. (SCI)

  [55] Tong W, Zhang Y, Zhen Z, et al. Effects of surface properties of red mud on interactions with Escherichia coli[J]. Journal of Materials Research, 2013, 28(17):2332-2338. (SCI)

  [56] Yin Y, Zhang Y, Zhen Z, et al. Thermal degradation and flame retarding characteristics of polypropylene composites incorporated with boron mud[J]. Composites Science & Technology, 2013, 85(9):131-135.

  [57] Zhen Z, Zhang Y, Ji J, et al. Novel functional materials with active adsorption and antimicrobial properties[J]. Materials Letters, 2012, 89(25):19-21. (SCI)

  [58] Zhang Y, Chen W, Lv G, et al. Adsorption of polyvinyl alcohol from wastewater by sintered porous red mud.[J]. Water Science & Technology Journal of the International Association on Water Pollution Research, 2012, 65(11):2055.

  [59] Zhang M, Wang J M, Bai Z K, et al. The Topsoil Quality Variation Under Different Reclamation Modes in Pasture Opencast Coal Mine of China[J]. Advanced Materials Research, 2012, 518-523:4790-4795.

  [60] Wang J, Chen Y, Shao X, et al. Land-use changes and policy dimension driving forces in China: Present, trend and future[J]. Land Use Policy, 2012, 29(4):737-749. (SCI)

  [61] Lu R R, Zhang Y H, Zhou F S, et al. Research of Leaching Alumina and Iron Oxide from Bayer Red Mud[J]. Applied Mechanics & Materials, 2012, 151:355-359.

  [62] Li X F, Wang J M, Wu K N. Restoration of Water System in Coalmine Subsided Area with Higher Level of Underground Water — Taking Jiawang Mining Area of Xuzhou as an Example in China[J]. Advanced Materials Research, 2012, 518-523:4227-4232.

  [63] Zhao Z, Bai Z, Zhang Z, et al. Population structure and spatial distributions patterns of 17 years old plantation in a reclaimed spoil of Pingshuo opencast mine, China[J]. Ecological Engineering, 2012, 44(3):147-151. (SCI)

  [64] Li H, Shao H, Li W, et al. Improving Soil Enzyme Activities and Related Quality Properties of Reclaimed Soil by Applying Weathered Coal in OpencastMining Areas of the Chinese Loess Plateau[J]. Clean-Soil Air Water, 2012, 40(3):233-238. (SCI)

  [65] Lu R R, Zhang Y H, Zhou F S, et al. Research of Leaching Alumina and Iron Oxide from Bayer Red Mud[J]. Applied Mechanics & Materials, 2012, 151:355-359.

  [66] Wang F, Zhang Y H, Zhao T, et al. The Effect of Fly Ash and Red Mud Content on the Compressive Strength of Foam Concrete[J]. Advanced Materials Research, 2011, 374-377:1523-1526.

  [67] Zhang N, Liu X, Sun H, et al. Evaluation of blends bauxite-calcination-method red mud with other industrial wastes as a cementitious material: properties and hydration characteristics.[J]. Journal of Hazardous Materials, 2011, 185(1):329. (SCI)

  [68] Zhang N, Liu X, Sun H, et al. Pozzolanic behaviour of compound-activated red mud-coal gangue mixture[J]. Cement & Concrete Research, 2011, 41(3):270-278. (SCI)

  [69] Zhang Y, Zhang A, Zhen Z, et al. Red mud/polypropylene composite with mechanical and thermal properties[J]. Journal of Composite Materials, 2011, 45(26):2811-2816. (SCI)

  [70] Zhang Y, Zhang A, Zhen Z, et al. Red mud/polypropylene composite with mechanical and thermal properties[J]. Journal of Composite Materials, 2011, 45(26):2811-2816. (SCI)

  [71] Zhang J, Fu M, Hassani F P, et al. Land Use-Based Landscape Planning and Restoration in Mine Closure Areas[J]. Environmental Management, 2011, 47(5):739-750. (SCI)

  [72] Zhang J, Fu M, Tao J, et al. Response of ecological storage and conservation to land use transformation: A case study of a mining town in China[J]. Ecological Modelling, 2010, 221(10):1427-1439. (SCI)

  [73] Zhao Z, Xi M, Jiang G, et al. Effects of IDSA, EDDS and EDTA on heavy metals accumulation in hydroponically grown maize ( Zea mays, L.)[J]. Journal of Hazardous Materials, 2010, 181(1):455-459. (SCI)

  [74] Wu X, Wang Z R. The relationship between the swelling pressure and shear strength of unsaturated soil: the Yanji Basin as a case study[J]. Arabian Journal of Geosciences, 2017, 10(15):330 (SCI)

  [75] Wu X, Fu R Z, Zhang L J, et al. The effect of the metal deposits exploitation on the safe operation of water conservancy project[J]. Environmental Earth Sciences, 2016, 75: 544 (SCI)

  [76] Wu X, Jiang X W, Chen Y F, et.al. Numerical modelling of fractures induced by coal mining beneath reservoirs and aquifers in China[J]. Quarterly Journal of Engineering Geology and Hydrogeology, 2013, 46: 237-244 (SCI)

  [77] Wu X, Chen Y F, Hu J, et.al. Current status and remediation measures for the solid mine ecological environment in Beijing, China[J]. Environ Earth Sciences, 2011, 64 (6): 1555-1562 (SCI)

  [78] Cheng Q, Wu X, Mu W P, et al. Hydrogeochemical characterization and suitability assessment of groundwater in an agro-pastoral area, Ordos Basin, NW China[J]. Environmental Earth Sciences, 2016, 75(20): 1356. (SCI)

  [79] Wang Z R, Tian X, Wu X. Hydrochemical characteristic and quality assessment of shallow groundwater and CBM co-produced water of Shizhuangnan Block, Qinshui Basin, China[J]. Environmental Earth Sciences, 2018, 77:57. (SCI)

  [80] Zhu G, Wu X, Yu S, et al. Surface water control for mining thick, relatively shallow coal seams in the Loess Area of Western China[J]. Mine Water & the Environment, 2018, DOI:/10.1007/s10230- 018-0517-1. (SCI)

  [81] Huang X, Wang G, Liang X, et al. Hydrochemical and stable isotope (δD and δ 18O) characteristics of groundwater and hydrogeochemical processes in the Ningtiaota Coalfield, Northwest China[J]. Mine Water and the Environment, 2018, 37(1): 119-136. (SCI)

  2.中文论文

  [1]     曹银贵, 张笑然, 白中科, . 黄土区矿--城复合区土地利用时空转换特征 [J]. 农业工程学报, 2015, (07): 238-246. EI

  [2]     樊文华, 白中科, 李慧峰, . 不同复垦模式及复垦年限对土壤微生物的影响 [J]. 农业工程学报, 2011, (02): 330-336. EI

  [3]     樊文华, 白中科, 李慧峰, . 复垦土壤重金属污染潜在生态风险评价 [J]. 农业工程学报, 2011, (01): 348-354. EI

  [4]     樊文华, 李慧峰, 白中科, . 黄土区大型露天煤矿煤矸石自燃对复垦土壤质量的影响 [J]. 农业工程学报, 2010, (02): 319-324. EI

  [5]     胡兴定, 白中科. 基于耕作半径的采矿复垦区农村居民点安置规模预测 [J]. 农业工程学报, 2016, (03): 259-266. EI

  [6]     孙琦, 白中科, 曹银贵, . 特大型露天煤矿土地损毁生态风险评价 [J]. 农业工程学报, 2015, (17): 278-288. EI

  [7]     王金满, 白中科, 罗明, . 基于专业序列的中国多层次土地复垦标准体系 [J]. 农业工程学报, 2010, (05): 312-315. EI

  [8]     王金满, 郭凌俐, 白中科, . 基于CT分析露天煤矿复垦年限对土壤有效孔隙数量和孔隙度的影响 [J]. 农业工程学报, 2016, (12): 229-236. EI

  [9]     王金满, 杨睿璇, 白中科. 草原区露天煤矿排土场复垦土壤质量演替规律与模型 [J]. 农业工程学报, 2012, (14): 229-235. EI

  [10]   王金满, 张萌, 白中科, . 黄土区露天煤矿排土场重构土壤颗粒组成的多重分形特征 [J]. 农业工程学报, 2014, (04): 230-238. EI

  [11]    余勤飞, 侯红, 白中科, . 中国污染场地国家分类体系框架构建 [J]. 农业工程学报, 2013, (12): 228-234. EI

  [12]   张召, 白中科, 贺振伟, . 基于RSGIS的平朔露天矿区土地利用类型与碳汇量的动态变化 [J]. 农业工程学报, 2012, (03): 230-236. EI

  [13]   吴初, 武雄, 钱程, . 杭锦旗气田开发污染物对地下水环境影响 [J]. 煤炭学报, 2017, (12): 3262-3269. EI

  [14]   谢苗苗, 白中科, 付梅臣, . 大型露天煤矿地表扰动的温度分异效应 [J]. 煤炭学报, 2011, (04): 643-647. EI

  [15]   张顺峰, 胡瑞林, 武雄. 浅埋厚煤层开采地表变形动态预测与排水设计 [J]. 煤炭学报, 2012, (S2): 301-306. EI

  [16]   朱阁, 武雄, 李平虎, . 黄土地区煤矿地表水防排水研究 [J]. 煤炭学报, 2014, (07): 1354-1360. EI

  [17]   武雄, 张顺峰, 田红, . 铁矿开采对脖子梁副坝安全运行的影响 [J]. 岩土力学, 2010, (05): 1517-1521. EI

  [18]   王卓然, 武雄. 周边采煤活动对岳城水库库区大坝和坝基的渗流影响研究 [J]. 地学前缘, 2018, (01): 276-285. EI

  [19]   杨柯, 姜建军, 刘飞, . 平朔露天煤矿复垦区土壤中多环芳烃分布特征、来源解析及风险分析 [J]. 地学前缘, 2016, (05): 281-290.EI

  [20]   卞跃跃, 赵丹, 韩永. 兖州煤田奥陶系灰岩地下水水化学特征及其形成机理[J]. 地球学报, 2017, 38(2):236-242.

  [21]   韩武波, 殷海善, 白中科. 露天矿用地演化特征与租地制度探索 [J]. 中国土地科学, 2012, (11): 86-90.

  [22]   贺振伟, 白中科, 张继栋, . 中国土地复垦监管现状与阶段性特征 [J]. 中国土地科学, 2012, (07): 56-59.

  [23]   李帅, 白中科, 张继栋. 山西省露天采矿用地方式改革研究 [J]. 中国土地科学, 2013, (05): 42-47.

  [24]   王金满, 白中科, 宿梅双. 山地丘陵区坡式梯田土地整治工程量快速测算方法 [J]. 中国土地科学, 2013, (01): 78-83.

  [25]   杨博宇, 白中科, 张笑然. 特大型露天煤矿土地损毁碳排放研究——以平朔矿区为例 [J]. 中国土地科学, 2017, (06): 59-69.

  [26]   杨延君, 白中科, 周伟, . 露天采石场密集区复垦模式研究 [J]. 中国土地科学, 2010, (07): 36-40.

  [27]   余勤飞, 白中科. 基于文献数据统计的中国土地复垦研究——复垦对象、期刊与机构分析 [J]. 中国土地科学, 2014, (03): 89-96.

  [28]   张弘, 白中科, 王金满, . 矿山土地复垦公众参与内在机制及其利益相关者分析 [J]. 中国土地科学, 2013, (08): 81-86.

  [29]   丁翔, 白中科. 黄土区露天煤矿复垦土地植被覆盖度监测及影响因素 [J]. 经济地理, 2017, (11): 198-204.

  [30]   原野, 赵中秋, 白中科, . 露天煤矿复垦生态系统碳库研究进展 [J]. 生态环境学报, 2016, (05): 903-910.

  [31]   郭东罡, 上官铁梁, 白中科, . 山西太岳山油松群落对采伐干扰的生态响应 [J]. 生态学报, 2011, (12): 3296-3307.

  [32]   郭东罡, 上官铁梁, 白中科, . 黄河中游连伯滩湿地景观格局变化 [J]. 生态学报, 2011, (18): 5192-5198.

  [33]   宋丽丽, 白中科, 樊翔, . 生物土壤结皮对照相法测量植被覆盖度结果的影响 [J]. 生态学报, 2018, (04): 1272-1283.

  [34]   王洪丹, 王金满, 曹银贵, . 黄土区露天煤矿排土场土壤与地形因子对植被恢复的影响 [J]. 生态学报, 2016, (16): 5098-5108.

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