An experimental study of dissolution–reprecipitation in fluorapatite: fluid infiltration and the formation of monazite

被引:0
|
作者
Daniel E. Harlov
Richard Wirth
Hans-Jürgen Förster
机构
[1] GeoForschungsZentrum Potsdam,Institute of Earth Sciences
[2] University of Potsdam,undefined
关键词
Apatite; Reaction Front; Fluorapatite; Transmission Electron Microscopy Investigation; Electron Energy Loss Spectrum;
D O I
暂无
中图分类号
学科分类号
摘要
In a series of timed experiments, monazite inclusions are induced to form in the Durango fluorapatite using 1 and 2 N HCl and H2SO4 solutions at temperatures of 300, 600, and 900°C and pressures of 500 and 1,000 MPa. The monazite inclusions form only in reacted areas, i.e. depleted in (Y+REE)+Si+Na+S+Cl. In the HCl experiments, the reaction front between the reacted and unreacted regions is sharp, whereas in the H2SO4 experiments it ranges from sharp to diffuse. In the 1 N HCl experiments, Ostwald ripening of the monazite inclusions took place both as a function of increased reaction time as well as increased temperature and pressure. Monazite growth was more sluggish in the H2SO4 experiments. Transmission electron microscopic (TEM) investigation of foils cut across the reaction boundary in a fluorapatite from the 1 N HCl experiment (600°C and 500 MPa) indicate that the reacted region along the reaction front is characterized by numerous, sub-parallel, 10–20 nm diameter nano-channels. TEM investigation of foils cut from a reacted region in a fluorapatite from the 1 N H2SO4 experiment at 900°C and 1,000 MPa indicates a pervasive nano-porosity, with the monazite inclusions being in direct contact with the surrounding fluorapatite. For either set of experiments, reacted areas in the fluorapatite are interpreted as replacement reactions, which proceed via a moving interface or reaction front associated with what is essentially a simultaneous dissolution–reprecipitation process. The formation of a micro- and nano-porosity in the metasomatised regions of the fluorapatite allows fluids to permeate the reacted areas. This permits rapid mass transfer in the form of fluid-aided diffusion of cations to and from the growing monazite inclusions. Nano-channels and nano-pores also serve as sites for nucleation and the subsequent growth of the monazite inclusions.
引用
收藏
页码:268 / 286
页数:18
相关论文
共 50 条
  • [31] Formation of monazite and xenotime inclusions in fluorapatite megacrysts, Gloserheia Granite Pegmatite, Froland, Bamble Sector, southern Norway
    Daniel E. Harlov
    Mineralogy and Petrology, 2011, 102
  • [32] A story told by a single nanoparticle in the body fluid: demonstration of dissolution-reprecipitation of nanocrystals in a biological system
    Wu, Cheng-Yeu
    Young, David
    Martel, Jan
    Young, John D.
    NANOMEDICINE, 2015, 10 (17) : 2659 - 2676
  • [33] Experimental study of the silica dissolution onto sandstone formation: Influence of PH, salinity, and temperature on dissolution
    Alameen, M. Basheer
    Elraies, Khaled A.
    Almansour, Abdullah
    Mohyaldinn, Mysara
    GEOENERGY SCIENCE AND ENGINEERING, 2024, 234
  • [34] Etching of fission tracks in monazite: An experimental study
    Jones, Sean
    Gleadow, Andy
    Kohn, Barry
    Reddy, Steven M.
    TERRA NOVA, 2019, 31 (03) : 179 - 188
  • [35] A comparative study on the dissolution and solubility of hydroxylapatite and fluorapatite at 25 °C and 45 °C
    Zhu, Yinian
    Zhang, Xuehong
    Chen, Yudao
    Xie, Qinglin
    Lan, Junkang
    Qian, Meifang
    He, Na
    CHEMICAL GEOLOGY, 2009, 268 (1-2) : 89 - 96
  • [36] Experimental validation and applications of a fluid infiltration model
    Kao, CS
    Hunt, JR
    JOURNAL OF ENVIRONMENTAL ENGINEERING-ASCE, 2001, 127 (02): : 162 - 169
  • [37] Olivine dissolution in molten silicates: An experimental study with application to chondrule formation
    Soulie, Camille
    Libourel, Guy
    Tissandier, Laurent
    METEORITICS & PLANETARY SCIENCE, 2017, 52 (02) : 225 - 250
  • [38] Hellandite-(Y)-hingganite-(Y)-fluorapatite retrograde coronae: a novel type of fluid-induced dissolution-reprecipitation breakdown of xenotime-(Y) in the metagranites of Fabova Hol'a, Western Carpathians, Slovakia
    Ondrejka, Martin
    Molnarova, Alexandra
    Putis, Marian
    Bacik, Peter
    Uher, Pavel
    Volekova, Bronislava
    Milovska, Stanislava
    Mikus, Tomas
    Pukancik, Libor
    MINERALOGICAL MAGAZINE, 2022, 86 (04) : 586 - 605
  • [39] EXPERIMENTAL STUDY OF FLUID MECHANICS OF BICOMPONENT FIBER FORMATION
    LEE, B
    WHITE, JL
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1973, (AUG26): : 48 - 48
  • [40] The formation of deposit in a magnetic fluid: Numerical and experimental study
    Balakin, Boris V.
    Notoy, Iryna
    Hoffmann, Alex C.
    Kosinski, Pawel
    POWDER TECHNOLOGY, 2012, 228 : 108 - 114