Calcium phosphate decontamination of stainless steel surfaces

被引:15
|
作者
Grant, CS
Webb, GE
Jeon, YW
机构
[1] Dept. of Chemical Engineering, North Carolina State University, Raleigh
[2] Dept. of Environmental Engineering, Kyungpook National University, Taegu
关键词
D O I
10.1002/aic.690420324
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A primary constituent in high-temperature (120 - 140 degrees C) milk fouling residues is calcium phosphate in the form of calcium phosphate dihydrate (brushite, CaHPO4 . 2H(2)O) and hydroxyapatite [Ca-5-(PO4)(3)OH]. The removal of these mineral-rich deposits from stainless steel occurs by dissolution and mechanical cleaning. This research uses a novel solid scintillation technique to noninvasively and continuously investigate the removal of P-32-labeled mixtures of calcium phosphate from inner surface of stainless steel tubes. The proposed mass-transfer model suggests that the film is initially removed by dissolution, when compared to the experimental results. An alternative first-order model presented includes the effects of the solvent flow rate and solvent pH on decontamination rates. This model agrees with the experimental cleaning data over the range of pH and flow rates studied.
引用
收藏
页码:861 / 875
页数:15
相关论文
共 50 条
  • [21] Microbial decontamination of stainless steel and polyethylene surfaces using GlidArc plasma activated water without chemical additives
    Kamgang-Youbi, Georges
    Herry, Jean-Marie
    Meylheuc, Thierry
    Laminsi, Samuel
    Naitali, Murielle
    [J]. JOURNAL OF CHEMICAL TECHNOLOGY AND BIOTECHNOLOGY, 2018, 93 (09) : 2544 - 2551
  • [22] Electrochemical deprotonation of phosphate on stainless steel
    Da Silva, S
    Basséguy, R
    Bergel, A
    [J]. ELECTROCHIMICA ACTA, 2004, 49 (26) : 4553 - 4561
  • [23] Rouging - A discoloration of stainless steel surfaces
    Corbett, RA
    [J]. MATERIALS PERFORMANCE, 2001, 40 (02) : 64 - 66
  • [24] A COMPARISON OF ENAMELED AND STAINLESS STEEL SURFACES
    Fedak, David
    Baldwin, Charles
    [J]. 67TH PORCELAIN ENAMEL INSTITUTE TECHNICAL FORUM, PROCEEDINGS, 2006, 26 (09): : 45 - 53
  • [25] Effect of water vapor on tritium decontamination of stainless steel 316
    Torikai, Y
    Perevezentsev, AN
    Matsuyama, M
    Watanabe, K
    [J]. FUSION SCIENCE AND TECHNOLOGY, 2002, 41 (03) : 736 - 740
  • [26] ELECTROLYTIC DECONTAMINATION OF STAINLESS-STEEL USING A BASIC ELECTROLYTE
    CHILDS, EL
    LONG, JL
    [J]. NUCLEAR TECHNOLOGY, 1981, 54 (02) : 208 - 214
  • [27] TOTAL EMISSIVITY OF SANDBLASTED SURFACES OF STAINLESS-STEEL 1.4301 AND OF GLASS SURFACES COATED WITH STAINLESS-STEEL
    LOHRENGEL, J
    RASPER, M
    [J]. PTB-MITTEILUNGEN, 1989, 99 (04): : 235 - 240
  • [28] Collagen immobilization on 316L stainless steel surface with cathodic deposition of calcium phosphate
    Roguska, Agata
    Hiromoto, Sachiko
    Yamamoto, Akiko
    Wozniak, Michal Jerzy
    Pisarek, Marcin
    Lewandowska, Malgorzata
    [J]. APPLIED SURFACE SCIENCE, 2011, 257 (11) : 5037 - 5045
  • [29] Adsorption of prion and tissue proteins to surgical stainless steel surfaces and the efficacy of decontamination following dry and wet storage conditions
    Secker, T. J.
    Herve, R.
    Keevil, C. W.
    [J]. JOURNAL OF HOSPITAL INFECTION, 2011, 78 (04) : 251 - 255
  • [30] Experimental Study on Melt Decontamination of Stainless Steel and Carbon Steel Using Induction Melting
    Zhao, Pengfei
    Chung, Wonsub
    Lee, Mincheol
    Ahn, Seokyoung
    [J]. METALS, 2021, 11 (08)