Products and stability of phosphate reactions with lead under freeze-thaw cycling in simple systems

被引:19
|
作者
Hafsteinsdottir, Erla G. [1 ]
White, Duanne A. [1 ]
Gore, Damian B. [1 ]
Stark, Scott C. [2 ]
机构
[1] Macquarie Univ, Dept Environm & Geog, N Ryde, NSW 2109, Australia
[2] Australian Antarctic Div, Dept Sustainabil Environm Water Populat & Communi, Kingston, Tas 7050, Australia
基金
澳大利亚研究理事会;
关键词
Metal fixation; Freeze-thaw; Lead minerals; Phosphate; Pyromorphite; HEAVY-METAL STABILIZATION; IMMOBILIZATION; CHLOROPYROMORPHITE; SOIL; ORTHOPHOSPHATES; PRECIPITATION; SEDIMENTS; REGION; ORIGIN; IMPACT;
D O I
10.1016/j.envpol.2011.08.026
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Orthophosphate fixation fixation of metal contaminated soils in environments that undergo freeze thaw cycles is understudied. Freeze thaw cycling potentially influences the reaction rate, mineral chemical stability and physical breakdown of particles during fixation. This study determines what products form when phosphate (triple superphosphate [Ca(H2PO4)(2)] or sodium phosphate [Na3PO4]) reacts with lead (PbSO4 or PbCl2) in simple chemical systems in vitro, and assesses potential changes in formation during freeze-thaw cycles. Systems were subjected to multiple freeze-thaw cycles from +10 degrees C to -20 degrees C and then analysed by X-ray diffractometry. Pyromorphite formed in all systems and was stable over multiple freeze-thaw cycles. Low temperature lead orthophosphate reaction efficiency varied according to both phosphate and lead source; the most time-efficient pyromorphite formation was observed when PbSO4 and Na3PO4 were present together. These findings have implications for the manner in which metal contaminated materials in freezing ground can be treated with phosphate. (C) 2011 Elsevier Ltd. All rights reserved.
引用
下载
收藏
页码:3496 / 3503
页数:8
相关论文
共 50 条
  • [31] Analysis of Pore Structure of Rice Husk Ash Concrete Under Freeze-Thaw Cycling
    Zhao, Xiaoguang
    Wu, Shu
    Wang, Liyun
    Xu, Xiaoye
    Sun, Shengnan
    [J]. Integrated Ferroelectrics, 2024, 240 (03) : 599 - 612
  • [32] Durability of reactive powder concrete under chloride-salt freeze-thaw cycling
    Wang, Yue
    An, Ming-zhe
    Yu, Zi-ruo
    Han, Song
    Ji, Wen-yu
    [J]. MATERIALS AND STRUCTURES, 2017, 50 (01)
  • [33] Performance Deterioration of High Strength Concrete under Mixed Erosion and Freeze-Thaw Cycling
    Zhang, Jian
    Diao, Bo
    Zheng, Xiaoning
    Li, Yandong
    [J]. ADVANCES IN STRUCTURES, PTS 1-5, 2011, 163-167 : 1655 - +
  • [34] Effects of freeze-thaw cycling on the engineering properties of vegetation concrete
    Yang, Yueshu
    Chen, Jinshun
    Zhou, Tianli
    Liu, Daxiang
    Yang, Qi
    Xiao, Hai
    Liu, Deyu
    Chen, Jiangang
    Xia, Zhenyao
    Xu, Wennian
    [J]. JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2023, 345
  • [35] Freeze-thaw cycling damage evolution of additive cement mortar
    Liu, Taoying
    Zhang, Chaoyang
    Zhou, Keping
    Tian, Yonggang
    [J]. EUROPEAN JOURNAL OF ENVIRONMENTAL AND CIVIL ENGINEERING, 2021, 25 (11) : 2089 - 2110
  • [36] Effect of chloride salt and freeze-thaw cycling on the microstructure of concrete
    Li, Min
    Zhang, Ye
    Wu, Zhishen
    Qian, Chunxiang
    Sun, Wei
    [J]. CEMENT WAPNO BETON, 2013, 18 (02): : 74 - +
  • [37] The effect of freeze-thaw cycling on the mechanical properties of expansive soils
    Tang, Liang
    Cong, Shengyi
    Geng, Lin
    Ling, Xianzhang
    Gan, Fada
    [J]. COLD REGIONS SCIENCE AND TECHNOLOGY, 2018, 145 : 197 - 207
  • [38] Modification of pea protein isolate functionality by freeze-thaw cycling
    Kumar, Pavitra K.
    Sivabalan, Sivapratha
    Parhi, Ashutos
    Sablani, Shyam S.
    [J]. JOURNAL OF FOOD MEASUREMENT AND CHARACTERIZATION, 2022, 16 (01) : 162 - 170
  • [39] Influence of freeze-thaw cycling on the resilient modulus of PFBC materials
    Wolfe, WE
    Butalia, TS
    Meek, BL
    [J]. FUEL, 1999, 78 (02) : 143 - 148
  • [40] Elastic anisotropy, permeability, and freeze-thaw cycling of rapakivi granite
    Ivankina, Tatiana I.
    Zel, Ivan Yu.
    Petruzalek, Matej
    Rodkin, Mikhail V.
    Matveev, Maksim A.
    Lokajicek, Tomas
    [J]. INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2020, 136