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1¡¢Pore Structure and Its Influencing Factors of Shale Oil Reservoir in Jianghan Basin, China. Scientific Research Publishing, Inc. USA£¬P233£¬2020.

2¡¢ÖйúµäÐͺ£ÏàºÍ½ÏàÒ³ÑÒ´¢²ã¿×϶½á¹¹¼°º¬ÆøÐÔ.¿ÆÑ§³ö°æÉ磬P388£¬2018.

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2023Äê

Tang, X., Jiang, Z., Yuan, Z., Jiao, Y., Lin, C., & Liu, X. (2023). Pore Water and Its Multiple Controlling Effects on Natural Gas Enrichment of the Quaternary Shale in Qaidam Basin, China. Energies, 16(17), 6170.

Miao, H., Jiang, Z., Tang, X., Wang, G., Wu, Q., Fan, W., & Zheng, H. (2023). Strata Uplift Controlled Deep Shale Gas Accumulation Modes: A Case Study from the Weiyuan Block, Sichuan Basin. Energy & Fuels, 37(17), 12889-12904.

Miao, H., Jiang, Z., Tang, X., Deng, Z., Zhang, C., Liang, Z., & Shi, Y. (2023). Hydrocarbon generation potential and organic matter accumulation patterns in organic-rich shale during the mesoproterozoic oxygenation event: evidence from the Xiamaling formation shale. Geomechanics and Geophysics for Geo-Energy and Geo-Resources, 9(1), 134.

Duan, X., Wu, Y., Jiang, Z., Hu, Z., Tang, X., Zhang, Y., ... & Chen, W. (2023). A New Method for Predicting the Gas Content of Low-Resistivity Shale: A Case Study of Longmaxi Shale in Southern Sichuan Basin, China. Energies, 16(17), 6169.

Wu, W., Liang, Z., Xu, L., Liu, Y., Li, Y., Tang, X., ... & Chen, Y. (2023). The Effect of Thermal Maturity on the Pore Structure Heterogeneity of Xiamaling Shale by Multifractal Analysis Theory: A Case from Pyrolysis Simulation Experiments. Minerals, 13(10), 1340.

Zhang, F., Jiang, Z., Zhang, Y., Hu, B., Yang, Z., Yang, Y., Tang, X., & Han, Y. (2023). A New Method for Converting T 2 Spectrum into Pore Radius. Journal of Earth Science, 34(4), 966-974.

Zhao, W., Yang, L., Jiang, Z., He, W., Huang, L., Chang, Q., Tang, X., & Ye, H. (2023). Geneses of multi-stage carbonate minerals and their control on reservoir physical properties of dolomitic shales. Marine and Petroleum Geology, 153, 106216.

ÌÆÏà·, ÏôººÃô, ½ªÕñѧ, Áõѧΰ, ÑîÔÙȨ, Áõ¸ñ, & ÕÅ·«. (2023). »ùÓںϽð×¢ÈëÓë´óÊÓÓòͼÏñ¼¼ÊõµÄÖÂÃÜ´¢²ã¿×϶ÓëºíµÀ±íÕ÷. ʯÓÍʵÑ鵨ÖÊ, 45(1), 185-192.

Íõêų¬, ½ªÕñѧ, ÌÆÏà·, ÁõÏþÑ©, ºØÊÀ½Ü, ÉÛÔóÓî, ... & Ëε¿µ. (2023). ²ñ´ïľÅèµØÈýºþµØÇøµÚËÄϵÆß¸öȪ×麬ˮÄàÒ³ÑÒ ÆøÌåÎü¸½¼°Á÷¶¯ÄÜÁ¦·ÖÎö. Natural Gas Geoscience, 34(2).

½ªÕñѧ, ÁºÖ¾¿­, Éêò£ºÆ, ÌÆÏà·, Îâΰ, Àî׿, ... & ¹ùæ¼. (2023). ´¨ÄÏãòÖݵØÇøÒ³ÑÒÆøÌðµãµØÖʹ¤³ÌÒ»Ì廯¹Ø¼üÒªËØñîºÏ¹ØÏµ¼°¹¥¹Ø·½Ïò. µØÇò¿ÆÑ§, 48(1), 110-129.

2022Äê

Yang, Z., Tang, X., Xiao, H., Zhang, F., Jiang, Z., & Liu, G. (2022). Water film thickness of tight reservoir in Fuyu oil layer of Cretaceous Quantou Formation in Songliao Basin and its influence on the lower limit of seepage. Marine and Petroleum Geology, 139, 105592.

Shi, Y., Tang, X., Wu, W., Jiang, Z., Xiang, S., Wang, M., ... & Xiao, Y. (2022). Control of complex structural deformation and fractures on shale gas enrichment in southern Sichuan Basin, China. Energy & Fuels, 36(12), 6229-6242.

He, S., Tang, X., Shao, Z., Jiang, Z., Wang, B., Liu, X., ... & Xu, M. (2022). Pore Structure Characteristics, Genesis, and Its Controlling Effect on Gas Migration of Quaternary Mudstone Reservoir in Qaidam Basin. Geofluids, 2022.

Liu, X., Jiang, Z., Liu, S., Zhang, B., Zhang, K., & Tang, X. (2022). Molecular simulation of methane adsorption capacity of matrix components of shale. Nanomaterials, 12(22), 4037.

Shi, X., Wu, W., Shi, Y., Jiang, Z., Zeng, L., Ma, S., Tang, X., & Zheng, M. (2022). Influence of Multi-Period Tectonic Movement and Faults on Shale Gas Enrichment in Luzhou Area of Sichuan Basin, China. Energies, 15(18), 6846.

Zhang, F., Jiang, Z., Xiao, H., Hu, B., Chen, P., Tang, X., ... & Wang, Q. (2022). Testing origin of reservoir quality difference of tight sandstones in the Yanchang Formation, Ordos Basin, China. Marine and Petroleum Geology, 137, 105507.

ÌÆÏà·, ½ªÕñѧ, ÉÛÔóÓî, Áú¹ú»Õ, ºØÊÀ½Ü, ÁõÏþÑ©, & Íõêų¬. (2022). µÚËÄϵÄàÑÒÐÍÉúÎïÆø´¢²ãÌØÕ÷¼°¶¯Ì¬³É²Ø¹ý³Ì. ÏÖ´úµØÖÊ, 36(02), 682.

ÌÆÏà·, ½ªÕñѧ, ÉÛÔóÓî, ºîÔóÉú, ºØÊÀ½Ü, ÁõÏþÑ©, & Íõêų¬. (2022). µÚËÄϵÈõ³ÉÑÒÄàÒ³ÑÒ¿×϶½á¹¹¼°ÎïÐÔÌØÕ÷. ʯÓÍʵÑ鵨ÖÊ, 44(2), 210-218.

Ѧ×ÓöÎ, ½ªÕñѧ, ºÂÃàÖù, ÌÆÏà·, ÀîÉú½Ü, ÄôÖÛ, ... & ³ÂÈð»ª. (2022). ´¨ÄÏÉî²ãÒ³ÑÒÓлúÖÊʯ¶Ô´¢²ã¿×϶µÄ¿ØÖÆ×÷ÓÃ. ÖÐÄÏ´óѧѧ±¨: ×ÔÈ»¿ÆÑ§°æ, 53(9), 3532-3544.

2021Äê

Tang, X., Jiang, Z., Jiang, S., Wang, H., He, Z., & Feng, J. (2021). Structure, burial, and gas accumulation mechanisms of lower Silurian Longmaxi Formation shale gas reservoirs in the Sichuan Basin (China) and its periphery. AAPG Bulletin, 105 (12), 2425-2447.

Tang, X., Jiang, Z., Song, Y., Luo, Q., Li, Z., Wang, G., & Wang, X. (2021). Advances on the Mechanism of Reservoir Forming and Gas Accumulation of the Longmaxi Formation Shale in Sichuan Basin, China. Energy & Fuels, 35(5), 3972-3988.

Tang, X., Wu, W., Zhong, G., Jiang, Z., He, S., Liu, X., ... & Yang, J. (2021). Characteristics and Origin of Methane Adsorption Capacity of Marine, Transitional, and Lacustrine Shales in Sichuan Basin, China. Geofluids, 2021.

ÀîÕ×·á, ÌÆÏà·, »ÆÁ¢Á¼, ³£ÇïÉú, ÑîÀÚÀÚ, ÑîÔÙȨ. ×¼¸Á¶ûÅèµØÂêºþ°¼ÏÝ·ç³Ç×éÒ³ÑÒÑÒÏà·¢ÓýÌØÕ÷[J]. ÄÜÔ´Óë»·±£, 2021, 43(04): 108-114.

ФÑô, ÏôººÃô, ½ªÕñѧ, ÌÆÏà·, ÕÅ·«, ÖìÁÖ, ÀîÏþ»Û. ºãËÙÓë¸ßѹѹ¹¯ÊµÑé±íÕ÷ÖÂÃÜɰÑÒ´¢²ã¿×ºí½á¹¹²îÒìÐÔ·ÖÎö[J]. ÄÜÔ´Óë»·±£, 2021, 43(03): 59-63.

2020Äê

Jiang, Z., Yan, S., Tang, X., Zhuo, L. I., Xingmeng, W. A. N. G., Guozhen, W, & Hengyuan, Q. (2020). Controlling factors of marine shale gas differential enrichment in southern China. Petroleum Exploration and Development, 47(3), 661-673.

Zhou, T., Su, J., Fan, S., Li, Z., Liu, X., & Tang, X. (2020). Pore structure and controlling factors of dolomite-bearing high-salinity shale reservoir in Qianjiang Formation, Jianghan Basin, China. Interpretation, 8(4), T675-T686.

ËÎÑÒ, ¸ß·ïÁÕ, ÌÆÏà·, ³ÂÀÚ, ÍõÐÒÃÉ. º£ÏàÓë½ÏàÒ³ÑÒ´¢²ã¿×϶½á¹¹²îÒìµÄÓ°ÏìÒòËØ[J]. ʯÓÍѧ±¨, 2020, 41(12): 1501-1512.

Îâΰ, Ѧ×ÓöÎ, ʯѧÎÄ, ½ªÕñѧ, ÍõöÎ, ÁõÏþÑ©, ºØÊÀ½Ü, ÌÆÏà·, ½ªºèÑô. ÓлúÖʳÉÊì¶È¶ÔÄÏ·½º£ÏàÒ³ÑÒ´¢²ã¿×϶µÄ¿ØÖÆ×÷ÓÃ[J]. ÄÜÔ´Óë»·±£, 2020, 42(07): 98-104.

½ªÕñѧ, ËÎÑÒ, ÌÆÏà·, Àî׿, ÍõÐÒÃÉ, Íõ¹úÕé, Ѧ×ÓöÎ, ÀîöÎ, ÕÅÀ¥, ³£¼Ñçù, ³ðºãÔ¶. ÖйúÄÏ·½º£ÏàÒ³ÑÒÆø²îÒ츻¼¯µÄ¿ØÖÆÒòËØ[J]. ʯÓÍ¿±Ì½Ó뿪·¢, 2020, 47(03): 617-628.

2019Äê

Tang, X., Jiang, S., Jiang, Z., Li, Z., He, Z., Long, S., & Zhu, D. (2019). Heterogeneity of Paleozoic Wufeng-Longmaxi Formation shale and its effects on the shale gas accumulation in the Upper Yangtze Region, China. Fuel, 239, 387-402.

Tang, X., Jiang, Z., Jiang, S., Cheng, L., Zhong, N., Tang, L., & Zhou, W. (2019). Characteristics, capability, and origin of shale gas desorption of the Longmaxi Formation in the southeastern Sichuan Basin, China. Scientific reports, 9(1), 1035.

Fan, C., Tang, X*., Zhang, Y., Song, Y., Jiang, Z., Luo, Q., & Li, B. (2019). Characteristics and formation mechanisms of tight oil: A case study of the Huahai Depression, Jiuquan Basin, Northwest China. Energy Exploration & Exploitation, 37(1), 296-314.

Fan, C., Tang, X*., Zhang, Y., Song, Y., Jiang, Z., Luo, Q., & Li, B. (2019). Characteristics and origin of the pore structure of the lacustrine tight oil reservoir in the northwestern Jiuquan Basin, China. Interpretation, 7(3), T625-T636.

Tang, L., Song, Y., Jiang, Z., Pang, X., Li, Z., Li, Q., Li, W., Tang, X., Pan, A. (2019). Influencing Factors and Mathematical Prediction of Shale Adsorbed Gas Content in the Upper Triassic Yanchang Formation in the Ordos Basin, China. Minerals, 9(5), 265.

Tang, L., Song, Y., Li, Q., Pang, X., Jiang, Z., Li, Z., Tang, X., Yu, H., Sun, Y., Fan, S., Zhu, L. (2019). A Quantitative Evaluation of Shale Gas Content in Different Occurrence States of the Longmaxi Formation: A New Insight from Well JY©\A in the Fuling Shale Gas Field, Sichuan Basin. Acta Geologica Sinica©\English Edition, 93(2), 400-419.

Huang, H., Chen, L., Dang, W., Luo, T., Sun, W., Jiang, Z., Tang, X., Zhang, S., Ji, W., Shao, S., Huang, Y. (2019). Discussion on the rising segment of the mercury extrusion curve in the high pressure mercury intrusion experiment on shales. Marine and Petroleum Geology, 102, 615-624.

ÂÞÅô, ÁõÏþÑ©, ¹ùÓîºâ, ÌÆÏà·*, Ö£ÃÎÌì, ÀîÁèÑÞ, ÕÔÓ±. (2019). ²»Í¬³Á»ýÀàÐ͸»ÓлúÖÊÒ³ÑÒ¿×϶½á¹¹²îÒìÌØÕ÷[J]. ÄÜÔ´Óë»·±£, 12, 53-60.

ÖÜö©, ½ªÕñѧ, ³ðºãÔ¶, ½ðÏþ´º, ÍõÈðºþ, á¯ÎÄÅÊ, ÌÆÏà·, ÀîöÎ, Íõ¹úÕé, ²ÜÏãÄÝ, Ëï«h. (2019). ¹ðÖÐÛêÏÝÏÂʯ̿ͳ¹կ×éÒ³ÑÒÆø³É²ØÌõ¼þºÍÓÐÀûÇøÔ¤²â[J]. ʯÓÍѧ±¨, 40(07), 798-812.

2018Äê

Tang, X., Jiang, Z., Jiang, S., Li, Z., Peng, Y., Xiao, D., & Xing, F. (2018). Effects of organic matter and mineral compositions on pore structures of shales: A comparative study of lacustrine shale in Ordos Basin and Marine Shale in Sichuan Basin, China. Energy Exploration & Exploitation, 36(1), 28-42.

Huang, H., Sun, W., Ji, W., Chen, L., Jiang, Z., Bai, Y., Tang, X., Du, K., Qu, Y., Ouyang, S. (2018). Impact of laminae on gas storage capacity: A case study in Shanxi Formation, Xiasiwan Area, Ordos Basin, China. Journal of Natural Gas Science and Engineering, 60, 92-102.

Huang, H., Chen, L., Sun, W., Xiong, F., Ji, W., Jia, J., Tang, X., Zhang, S., Gao, J., Luo, B. (2018). Pore-throat structure and fractal characteristics of Shihezi Formation tight gas sandstone in the Ordos Basin, China. Fractals, 26(02), 1840005.

Li, X., Jiang, Z., Song, Y., Zhai, G., Bao, S., Li, Z., Tang, X., Wang, P., Li, T., Wang, G., Zhou, W., Qiu, H., Miao, Y. (2018). Porosity evolution mechanisms of marine shales at over-maturity stage: Insight from comparable analysis between Lower Cambrian and Lower Silurian inside and at the margin of the Sichuan Basin, South China. Interpretation, 6(3), T739-T757.

Li, X., Jiang, Z., Wang, P., Song, Y., Li, Z., Tang, X., Li, T., Zhai, G., Bao, S., Xu, C., Wu, F. (2018). Porosity-preserving mechanisms of marine shale in Lower Cambrian of Sichuan Basin, South China. Journal of Natural Gas Science and Engineering, 55, 191-205.

ÌÆÁî, ËÎÑÒ, ½ªÕñѧ, ÌÆÏà·, Àî׿, ÀîÙ»ÎÄ, Ëï«h. (2018). Óå¶«ÄÏÅèԵת»»´øÁúÂíϪ×éÒ³ÑÒÆøÉ¢Ê§¹ý³Ì, ÄÜÁ¦¼°ÆäÖ÷¿ØÒòËØ. ÌìÈ»Æø¹¤Òµ, 38(12), 37-47.

2017Äê

Tang, X., Jiang, Z., Jiang, S., Cheng, L., & Zhang, Y. (2017). Characteristics and origin of in-situ gas desorption of the Cambrian Shuijingtuo Formation shale gas reservoir in the Sichuan Basin, China. Fuel, 187, 285-295.

Tang, X., Jiang, Z., Li, Z., Cheng, L., Zhang, Y., Sun, P., & Fan, C. (2017). Factors controlling organic matter enrichment in the Lower Cambrian Niutitang Formation Shale on the eastern shelf margin of the Yangtze Block, China. Interpretation, 5(3), T399-T410.

Jiang, S., Tang, X., Long, S., McLennan, J., Jiang, Z., Jiang, Z., ... & He, Z. (2017). Reservoir quality, gas accumulation and completion quality assessment of Silurian Longmaxi marine shale gas play in the Sichuan Basin, China. Journal of Natural Gas Science and Engineering, 39, 203-215.

Jiang, S., Tang, X., Cai, D., Xue, G., He, Z., Long, S., ... & Dahdah, N. (2017). Comparison of marine, transitional, and lacustrine shales: A case study from the Sichuan Basin in China. Journal of Petroleum Science and Engineering, 150, 334-347.

Jiang, S., Xiao, D., Tang, X., Xing, F., Xiang, C., Pahnke, P., Tom, A., Lu, S. (2017). Nano to Micron-Sized Pore Types and Pore Size Distribution Revealed by Innovative Test Methods-Case Studies from Fluvial, Lacustrine and Marine Tight and Shale Oil and Gas Plays in China and US. Journal of Nanoscience and Nanotechnology, 17(9), 6296-6306.

½¯Ë¡, ÌÆÏà·. (2017). Ò³ÑÒÓÍÆø¸»¼¯µÄÖ÷¿ØÒòËØ¼°Îó±ç: ÒÔÃÀ¹ú, °¢¸ùÍ¢ºÍÖйúµäÐÍÒ³ÑÒΪÀý. µØÇò¿ÆÑ§, 42(7), 1083-1091.

Àî׿, ½ªÕñѧ, ÌÆÏà·, ÍõÅó·É, »Æè±, Íõ¹úÕé. (2017). Óå¶«ÄÏÏÂÖ¾ÁôͳÁúÂíϪ×éÒ³ÑÒÑÒÏàÌØÕ÷¼°Æä¶Ô¿×϶½á¹¹µÄ¿ØÖÆ. µØÇò¿ÆÑ§: ÖйúµØÖÊ´óѧѧ±¨, 42(7), 1116-1123.

2016Äê

Tang, X., Jiang, Z., Jiang, S., & Li, Z. (2016). Heterogeneous nanoporosity of the Silurian Longmaxi Formation shale gas reservoir in the Sichuan Basin using the QEMSCAN, FIB-SEM, and nano-CT methods. Marine and Petroleum Geology, 78, 99-109.

Tang, X., Jiang, Z., Jiang, S., Wang, P., & Xiang, C. (2016). Effect of organic matter and maturity on pore size distribution and gas storage capacity in high-mature to post-mature shales. Energy & Fuels, 30(11), 8985-8996.

Tang, X., Jiang, Z., Huang, H., Jiang, S., Yang, L., Xiong, F., ... & Feng, J. (2016). Lithofacies characteristics and its effect on gas storage of the Silurian Longmaxi marine shale in the southeast Sichuan Basin, China. Journal of Natural Gas Science and Engineering, 28, 338-346.

Wang, P., Jiang, Z., Chen, L., Yin, L., Li, Z., Zhang, C., Tang, X., Wang, G. (2016). Pore structure characterization for the Longmaxi and Niutitang shales in the Upper Yangtze Platform, South China: Evidence from focused ion beam¨CHe ion microscopy, nano-computerized tomography and gas adsorption analysis. Marine and Petroleum Geology, 77, 1323-1337.

Jiang, S., Peng, Y., Gao, B., Zhang, J., Cai, D., Xue, G.,Bao, S., Xu, Z., Tang, X., Dahdah, N. (2016). Geology and shale gas resource potentials in the Sichuan Basin, China. Energy Exploration & Exploitation, 34(5), 689-710.

ÌÆÏà·, ·ë½à, ½ªÕñѧ, Àî׿, Ô­Ô°, »ÆºÎöÎ, ÍõÅó·É, ÎÂů. Ò³ÑÒÓÍÆø´¢²ãµÄ΢¹ÛµØÖÊÌØÕ÷È·¶¨·½·¨ºÍ×°ÖÃ[P]. ±±¾©£ºCN105488349A,2016-04-13.

½ªÕñѧ, ÌÆÏà·, Àî׿, »ÆºÎöÎ, ÑîÅåÅå, Ñîäì, ... & ºÂ½ø. (2016). ´¨¶«ÄϵØÇøÁúÂíϪ×éÒ³ÑÒ¿×϶½á¹¹È«¿×¾¶±íÕ÷¼°Æä¶Ôº¬ÆøÐԵĿØÖÆ. µØÑ§Ç°Ôµ, 23(2), 126-134.

½ªÕñѧ, Àî׿, ÌÆÏà·, ÀîÎÀ±ø, »ÆºÎöÎ. Ò³ÑÒÈ«¿×¾¶¿×϶Ìå»ýµÄ±íÕ÷·½·¨[P]. ±±¾©£ºCN105445161A,2016-03-30.

»Æè±, ½ªÕñѧ, ³ÌÀñ¾ü, ÍõÅó·É, ÌÆÏà·, ÍõÖÇ. (2016). ´¨¶«±±Å£ÌãÌÁ×éÒ³ÑÒ¿×϶½á¹¹ÌØÕ÷¼°Æä¿ØÖÆÒòËØ. ´óÇìʯÓ͵ØÖÊÓ뿪·¢, (05), 156-162.

Ñîäì, ½ªÕñѧ, ËÎÑÒ, »ÆºÎöÎ, ÌÆÏà·, ¼ÍÎÄÃ÷, ³ÂÀÚ. (2016). Óå¶«ÄÏÅ£ÌãÌÁ×éÓëÁúÂíϪ×é¸ßÑÝ»¯º£ÏàÒ³ÑÒÈ«¿×¾¶¿×϶½á¹¹ÌØÕ÷¶Ô±ÈÑо¿. ¸ßУµØÖÊѧ±¨, 22(2), 368-377.

Ô­Ô°, ½ªÕñѧ, Ó÷å·, ÍõÅó·É, Àî͢΢, ¹ùÌìÐñ, ÕÔÈôÍ®£¬ ÌÆÏà·. (2016). ¸ß·á¶ÈµÍÑÝ»¯³Ì¶ÈºþÏàÒ³ÑÒ´¢²ãÌØÕ÷¡ª¡ªÒÔ²ñ´ïľÅèµØ±±ÔµÖÐÙªÂÞͳΪÀý. µØÖÊѧ±¨, (2016 Äê 03), 541-552.

2015Äê

Tang, X., Jiang, Z., Li, Z., Gao, Z., Bai, Y., Zhao, S., & Feng, J. (2015). The effect of the variation in material composition on the heterogeneous pore structure of high-maturity shale of the Silurian Longmaxi formation in the southeastern Sichuan Basin, China. Journal of Natural Gas Science and Engineering, 23, 464-473.

Jiang, Z., Tang, X., Cheng, L., Li, Z., Zhang, Y., Bai, Y., ... & Hao, J. (2015). Characterization and origin of the Silurian Wufeng-Longmaxi Formation shale multiscale heterogeneity in southeastern Sichuan Basin, China. Interpretation, 3(2), SJ61-SJ74.

Xiong, F., Jiang, Z., Tang, X., Li, Z., Bi, H., Li, W., & Yang, P. (2015). Characteristics and origin of the heterogeneity of the Lower Silurian Longmaxi marine shale in southeastern Chongqing, SW China. Journal of Natural Gas Science and Engineering, 27, 1389-1399.

Yang, L., Ge, H., Shen, Y., Zhang, J., Yan, W., Wu, S., & Tang, X. (2015). Imbibition inducing tensile fractures and its influence on in-situ stress analyses: a case study of shale gas drilling. Journal of Natural Gas Science and Engineering, 26, 927-939.

ÌÆÏà·, ½ªÕñѧ, ÕÅݺݺ, ¸ßÌð, »ÆºÎöÎ, ·ë½à, Ò¦Á¢åã. (2015). Óå¶«ÄϵØÇøÒ³ÑÒÆø¸»¼¯Çø²îÒìÐÔ·Ö²¼³ÉÒò. Î÷°²Ê¯ÓÍ´óѧѧ±¨: ×ÔÈ»¿ÆÑ§°æ, 30(3), 24-30.

ÌÆÏà·, ½ªÕñѧ, ºÂ½ø, Àî׿, Ô­Ô°, »ÆºÎöÎ, ÀîÎÀ±ø, ÑîÅåÅå. Ò³ÑÒÆø´¢²ãÌØÐÔÔ¤²â·½·¨ºÍ×°ÖÃ[P]. ±±¾©£ºCN104462849A,2015-03-25.

½ªÕñѧ, ·ë½à, ÌÆÏà·, Ô­Ô°, Àî׿, ÕÔÈôÍ®, ÍõÅó·É, ºÂ½ø. Ò³ÑÒÆø´¢²ãµÄµØÖʲÎÊýÈ·¶¨·½·¨ºÍ×°ÖÃ[P]. ±±¾©£ºCN104573339A,2015-04-29.

ºÂ½ø, ½ªÕñѧ, ÐϽðÑÞ, Àî׿, ÌÆÏà·, ËÕ½¿. (2015). Ò»ÖָĽøµÄÒ³ÑÒÆøËðÊ§Æøº¬Á¿¹ÀËã·½·¨. ÏÖ´úµØÖÊ, 29(6), 1475-1482.

ÍõÏãÔö, ºÂ½ø, ½ªÕñѧ, ¹ù³¬, ÐϽðÑÞ, Àî׿, ÌÆÏà·. (2015). ¶õ¶û¶à˹ÅèµØÏÂËÂÍåµØÇø³¤ 7 ¶ÎÓÍÈÜÏàÒ³ÑÒÆøÁ¿Ó°ÏìÒòËØ¼°Æä·Ö²¼ÌØÕ÷. ÌìÈ»ÆøµØÇò¿ÆÑ§, 26(4), 744-753.

2014Ä꼰֮ǰ

±ÏºÕ, ½ªÕñѧ, ÀîÅô, Àî׿, ÌÆÏà·, ÕŶ¨Óî, ÐíÒ°. (2014). Óå¶«ÄϵØÇøÇ­½­°¼ÏÝÎå·å×顪ÁúÂíϪ×éÒ³ÑÒ´¢²ãÌØÕ÷¼°Æä¶Ôº¬ÆøÁ¿µÄÓ°Ïì. ÌìÈ»ÆøµØÇò¿ÆÑ§, 25(8), 1275-1283.

ÉÛ¹úÁ¼, ¶ÅÉç¿í, ÌÆÏà·, ÕÔ¹âÁÁ, ´÷Áú, ÕÅ´óȨ. (2013). ×¼¸Á¶ûÅèµØ±±Èý̨͹ÆðÖÐÏÂÈýµþͳ³Á»ýÌåϵÓë´¢²ãÌØÕ÷. ÑÒÐÔÓÍÆø²Ø, 25(3), 58-65.

¶ÅÖÒÃ÷, Ê·»ù°², Ëï¹úÇ¿, ¼¾ÚS, ÎâÖ¾ÐÛ, ÌÆÏà·. (2013). ²ñ´ïľÅèµØÂíÏɵØÇøÏ¸ɲñ¹µ×éÉ϶αè×´ºÓÈý½ÇÖÞ³Á»ýÌØÕ÷. ÌìÈ»ÆøµØÇò¿ÆÑ§, 24(3), 505-511.

Ê·»ù°², ÌÆÏà·, ÕÅ˳´æ, Õź긣, ФÑà. (2012). ¶«×¼¸Á¶ûÎ÷ÔµÍí¹ÅÉú´ú»ðɽÑÒµÄï¯Ê¯ U¡ªPb ÄêÁäºÍ Hf Í¬Î»ËØÌØÕ÷¼°¹¹ÔìÒâÒå, 47(4), 955-979.

ÕŽÜ, Ê·»ù°², ÕÅ˳´æ, Ò󽨹ú, ÌÆÏà·. (2012). ×¼¸Á¶ûÅèµØÎ÷±±ÔµÍíʯ̿ϵ¡ªÔç¶þµþϵ»ðɽÑÒÑÒʯѧºÍµØÇò»¯Ñ§Ñо¿. µØÖÊ¿ÆÑ§, 47(4), 980-992.

Ýß¿ËÀ´, ÌÆÏà·. (2010). ÇൺÊзï»Ëµº¶«º£°¶»ùÑҷ绯¼°Æä¶Ôº£°¶ÇÖÊ´µÄÓ°Ïì. Î÷²¿Ì½¿ó¹¤³Ì, 22(10), 175-177.

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