Research Progress of Disposal Technology for Hyperaccumulator

Article Preview

Abstract:

Phytoextraction of heavy metal polluted environment generates large quantities of hyperaccumulators. How to safely dispose hyperaccumulators has been one of the most important issues in the phytoextraction field. In recent years, disposal technologies for hyperaccumulators have been extensively studied with aim at reduction, recycle and harmless treatment. This paper reviewed the progress in disposal technologies for hyperaccumulators, such as Incineration, composting, burial method and so on. Focused on summaring the disposal technology for arsenic-containing hyperaccumulator Pteris vittata L.. Also pointed out the problems of the current disposal of hyperaccumulator and the possible research direction we should pay attention to in the future, hoping to provide insight into developing harmless disposal or resource-reuse-oriented methods for disposal of the plants used for large scale phytoremediation application.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 955-959)

Pages:

2851-2858

Citation:

Online since:

June 2014

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Jianhua Shi, Xuezhi Zhou. Recycling Technology Discipline of JACW. China Economic Publishing House. (2007). In Chinese.

Google Scholar

[2] Xueren Ji. Gas example set by the Japanese invaders-drug use in 1800 cases. Social Sciences Academic Press. (2008): 8~9. In Chinese.

Google Scholar

[3] Xiaoyong Liao, Tongbin Chen, Hua Xie. Acta Scientiae Circumstantiae. 2004. 5, 24(3): 455-462. In Chinese.

Google Scholar

[4] Tongbin Chen, Haixiang Li, Mei Lei. Acta Scientiae Circumstantiae. 2010. 2, 30(2): 402-408. In Chinese.

Google Scholar

[5] Kun Chen, Gesheng Ke, Xixi Su. Soil repair will have a breakthrough in Guangxi. Guangxi Daily. 2009-4-27. In Chinese.

Google Scholar

[6] Hetland MD, Gallagher JR, Daly DJ, Hassett DJ, Heebink LV. Processing of plants used to phytomnediate lead-conlaminated sites. In: Leeson A, Foote EA. Banks Mk, Magar VS. eds. Phytoremediation Wetlands and Sediments. The Sixth International in situ and on-site Bioremediation Symposium, San Diego, California, 4-7 June. Battelle Press, Columbus, Richland, 2001, 129-136.

Google Scholar

[7] Xingchun Xie , HaijuanWang, Hongbin Wang, et. al. Advanced Materials Research Vols. 821-822 (2013) pp.1110-1117.

Google Scholar

[8] Canjun Nie. The Research in Plant Density and Pyrolysis Decomposition of Peteris Vittata L. . Huazhong Agricultural University. Master's Thesis. (2006). In Chinese.

Google Scholar

[9] Weilin Xiao. Post remediation treatment of arsenic hyperaccumulator plant Pteris Vittata L.and the resourceful utilization. Nanchang University, Master's Thesis, 2007. In Chinese.

Google Scholar

[10] Xiulan Yan, Tongbin Chen, Xiaoyong Liao. A safe incineration method to dispose hyperaccumulator Pteris Vittata L.. Chinese patent: 200510127448. 0, (2009). In Chinese.

Google Scholar

[11] Cao X, Ma L, Shiralipour A, et. al. Environmental Science and Pollution Research, (2010), 17(3): 586-594.

Google Scholar

[12] Anderson CWN, Brooks RR, Chiamcci A, et. al . Journal of Geochemical Exploration, (1999), 67: 407-415.

Google Scholar

[13] Bungar R, Hüttle RF. Biomass and Bioenergy, (2001), 20: 181-187.

Google Scholar

[14] Hammer D, Kayser A, Keller C. Soil Use and Management, (2003), 19(3): 187-192.

Google Scholar

[15] Suichu Qin. Crop nutrition disorder and diagnosis. Hangzhou: Zhejiang Science And Technology Press. (1988), 118 ~ 148. In Chinese.

Google Scholar

[16] Yangchun Xu, Qirong Shen. ACTA PEDOLOGICA SINICA. (2004), 41 (1): 87 - 92. In Chinese.

Google Scholar

[17] Juan Zhang, Qirong Shen, Wei Ran, et. al. Soils. 2004, 36 (1): 37 -42. In Chinese.

Google Scholar

[18] Fengmin Li, Zhiting Xiong, Hongying Hu. Environmental Science. 2003, 24 (3): 30 - 34. In Chinese.

Google Scholar

[19] Xiangjun Zhou, Zongqi Yang, Yanhong Jing. Resource Development and Market. 2010, 26(3): 210-211. In Chinese.

Google Scholar

[20] Limei Liu. Yunnan Journal of Traditional Chinese Medicine and Materia Medica. 2008, 29(8): 46-47. In Chinese.

Google Scholar

[21] Loppinet-Serani A, Aymonier C, Cansell F. ChemSusChem, (2008), 1(6): 486-503.

DOI: 10.1002/cssc.200700167

Google Scholar

[22] Carrier M, Loppinet-Serani A, Absalon C, et al. Biomass and Bioenergy, (2011), 35(2): 872-883.

DOI: 10.1016/j.biombioe.2010.11.007

Google Scholar

[23] Srokol Z. Bouche A G, van Estrik A, et al. Carbohydrate Research, (2004), 339(10): 1717-1726.

DOI: 10.1016/j.carres.2004.04.018

Google Scholar

[24] Yang J G, Tang C B, He J, et al. Journal of Hazardous materials, (2010), 179(1-3): 1037-1041.

Google Scholar

[25] Yamei Pan, Huiwei Liao, Yuan Zhou. Environmental Protection of Chemical Industry. 2013, 33(1): 63-66. In Chinese.

Google Scholar

[26] Wei Ma. The effect of magnetic field on the mechanism of arsenic wastewater treatment and new technology research. Northeastern University, Ph.D. Thesis, 1996. In Chinese.

Google Scholar

[27] Ande Wu (translate). Arsenic. Arsenic f. 1986: 8-15. In Chinese.

Google Scholar

[28] The Information Room of Zhuzhou Smelter. Domestic arsenic resources and its production application report. 1981. 2. In Chinese.

Google Scholar

[29] Bingkun Guo. Arsenic separation and recovery of nonferrous smelting process. Arsenic f. 1986: 1-7. In Chinese.

Google Scholar

[30] B.V. ENG.,M.R. MACNAIR, A.A. MEHANG, R.F. SHORE. Environmental Pollution. 2000, (110): 179-187.

Google Scholar

[31] Songran Zhu. Lead Battery Operation Manual. Beijing: China Machine Press. 1993: 1-58. In Chinese.

Google Scholar

[32] Jimei Wang, Shuchun Zhang. Environmental Protection. 1989, (11): 16-17. In Chinese.

Google Scholar

[33] Chinese Drugs of Editorial Board. Chinese Drugs. Beijing: People's Medical Publishing House. 1991: 390. In Chinese.

Google Scholar

[34] Jinlong Pan. Glass Technology. Beijing: China Light Industry Press. 1996, 56-154. In Chinese.

Google Scholar

[35] Liu DH, Jiang WS, Liu CJ, Xin CH, Hou WQ. Bioresource Technology, 2000, 71: 273 -277.

Google Scholar

[36] Mulligan CN, Yong RN, Gibbs BF. Engineering Geology, 2001, 60: 193 -207.

Google Scholar

[37] Lim JM, Salido AL, Butcher DJ. Microchemical Journal, 2004, 76: 3- 9.

Google Scholar