期刊文献+

Oxygen atmosphere enhances ball milling remediation of petroleum-contaminated soil and reuse as adsorptive/catalytic materials for wastewater treatment 被引量:1

原文传递
导出
摘要 Ball milling is an environmentally friendly technology for the remediation of petroleumcontaminated soil(PCS),but the cleanup of organic pollutants requires a long time,and the post-remediation soil needs an economically viable disposal/reuse strategy due to its vast volume.The present paper develops a ball milling process under oxygen atmosphere to enhance PCS remediation and reuse the obtained carbonized soil(BCS-O)as wastewater treatment materials.The total petroleum hydrocarbon removal rates by ball milling under vacuum,air,and oxygen atmospheres are 39.83%,55.21%,and 93.84%,respectively.The Langmuir and pseudo second-order models satisfactorily describe the adsorption capacity and behavior of BCS-O for transition metals.The Cu^(2+),Ni^(2+),and Mn^(2+)adsorbed onto BCS-O were mainly bound to metal carbonates and metal oxides.Furthermore,BCS-O can effectively activate persulfate(PDS)oxidation to degrade aniline,while BCS-O loaded with transition metal(BCS-O-Me)shows better activation efficiency and reusability.BCS-O and BCS-O-Me activated PDS oxidation systems are dominated by^(1)O_(2)oxidation and electron transfer.The main active sites are oxygen-containing functional groups,vacancy defects,and graphitized carbon.The oxygen-containing functional groups and vacancy defects primarily activate PDS to generate^(1)O_(2)and attack aniline.Graphitized carbon promotes aniline degradation by accelerating electron transfer.The paper develops an innovative strategy to simultaneously realize efficient remediation of PCS and sequential reuse of the postremediation soil.
出处 《Journal of Environmental Sciences》 2025年第1期652-664,共13页 环境科学学报(英文版)
基金 supported by the National Natural Science Foundation of China(No.41772240) the Key Research and Development program of Jiangsu Province(No.BE2021637).
  • 相关文献

参考文献1

二级参考文献20

  • 1Adesola N A, Babalola J O, Sanni R A, 2006. Biosorption of lead ions from aqueous solution solution by maize leaf. International Journal of Physics Science, 1(1): 23-32.
  • 2Adeyiga A A, Liang H U, Greer T, 2006. Removal of metal ions from wastewater with natural wastes. Hampton University, Hampton.
  • 3Ahalya N, Ramachandra T V, Kanamadi R D, 2007. Biosorption of heavy metals, http://www.ces.iisc.emet.in/energy/water/ paper/biosorptionfoiosorption.htm, accessed November 10 2007.
  • 4Akhnazaroza S, Kefarov V, 1982. Experiment Optimization in Chemistry and Chemical Engineering. Moscow: Mir Publishers.
  • 5Augustine A A, Orike B D, Edidiong A D, 2007. Adsorption kinetics and modeling of Cu(II) ions sorption from aqueous solution by mercaptoacetic acid modified cassava wastes. Electronic Journal of Environmental, Agricultural and Food Chemistry, 6(4): 2221-2233.
  • 6Bismarck A, Wuertz C, 1999. Basic surface oxides on carbon fibers. Journal Springer, 37: 1019-1025.
  • 7http://www.nebguide.com. 2007. Safe Drinking Water: Lead, from. January 26, 2007.
  • 8Inglezakias V J, Stylianou M A, Gkantzou D, Loizidou M D, 2007. Removal of Pb(II) from aqueous solutions by using clinoptilolite and benzoate as adsorbents. Desalination, 210: 248-256.
  • 9Karthikeyan R S, Rakhsit S K, Baradarajan A, 1996. Optimization of batch fermentation conditions for dextran production. Journal of Bioprocess Engineering, 15(5): 247- 251.
  • 10Khuri A I, Cornell J A, 1987. Response Surfaces: Design and Analysis. New York: Marcel Decker Inc.

共引文献17

同被引文献18

引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部