HPCL determination of cyanuric acid in swimming pool waters using phenyl and confirmatory porous graphitic carbon columns

被引:41
作者
Cantú, R
Evans, O
Kawahara, FK
Wymer, LJ
Dufour, AP
机构
[1] US EPA, Off Res & Dev, Natl Exposure Res Lab, Cincinnati, OH 45268 USA
[2] US EPA, Off Res & Dev, Natl Risk Management Res Lab, Cincinnati, OH 45268 USA
关键词
Chlorine - Phosphates - Ultraviolet detectors;
D O I
10.1021/ac001412t
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
The chlorinated salts of cyanuric acid have found an important role in recreational swimming pool waters across the United States. Upon application to pool water, they can (1) release disinfectant chlorine or (2) stabilize the free available chlorine by acting as chlorine reservoirs in the form of cyanuric acid, preventing the photolytic destruction of residual chlorine by sunlight. Recommended levels of the cyanuric acid stabilizer are in the 10-100 mg/L concentration range according to the National Swimming Fool Foundation (San Antonio; TX). Two isocratic HPLC methods with UV detection (213 nn) employing phenyl and porous graphitic carbon (PGC) columns and phosphate buffer eluents (pH 6.7 and pH 9.1, respectively) were developed to accurately measure cyanuric acid in swimming pools. The two methods allowed fast separation and detection of the stabilizer in 4 (phenyl) and 8 (PGC) min. Both methods offered practical sensitivities with method detection limits of 0.07 (phenyl) and 0.02 mg/L (PGC), Neither one of the two methods required the use of sample cleanup cartridges. They exhibit chromatograms with excellent baseline stability enabling low-level quantitation, Most important, the PGC column had a useful lifetime of-five months and 500 sample analyses/column, Eleven pool water samples were fortified with 4.8-50.0 mg/L stabilizer, and the average recovery was 99.8%, Finally, statistical analysis on the relative precisions of the two methods indicated equivalence at the 0.05 critical level.
引用
收藏
页码:3358 / 3364
页数:7
相关论文
共 24 条
  • [1] THE USE OF TRANSFORMATIONS
    BARTLETT, MS
    [J]. BIOMETRICS, 1947, 3 (01) : 39 - 52
  • [2] An HPLC method with UV detection, pH control, and reductive ascorbic acid for cyanuric acid analysis in water
    Cantú, R
    Evans, O
    Kawahara, FK
    Shoemaker, JA
    Dufour, AP
    [J]. ANALYTICAL CHEMISTRY, 2000, 72 (23) : 5820 - 5828
  • [3] CANTU R, 2001, BOOK ABSTRACTS 1
  • [4] *EPA, 1992, 738F92010 EPA
  • [5] *EPA, 1984, 600D84167 EPA
  • [6] TRACE ANALYSES FOR WASTEWATERS
    GLASER, JA
    FOERST, DL
    MCKEE, GD
    QUAVE, SA
    BUDDE, WL
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1981, 15 (12) : 1426 - 1435
  • [7] GRAVES RL, 1995, METHODS DETERMINATIO
  • [8] ONLINE SAMPLE HANDLING OF WATER-SOLUBLE ORGANIC POLLUTANTS IN AQUEOUS SAMPLES USING POROUS GRAPHITIC CARBON
    GUENU, S
    HENNION, MC
    [J]. JOURNAL OF CHROMATOGRAPHY A, 1994, 665 (02) : 243 - 251
  • [9] A REVIEW OF TOXICOLOGY STUDIES ON CYANURATE AND ITS CHLORINATED DERIVATIVES
    HAMMOND, BG
    BARBEE, SJ
    INOUE, T
    ISHIDA, N
    LEVINSKAS, GJ
    STEVENS, MW
    WHEELER, AG
    CASCIERI, T
    [J]. ENVIRONMENTAL HEALTH PERSPECTIVES, 1986, 69 : 287 - 292
  • [10] Graphitized carbons for solid-phase extraction
    Hennion, MC
    [J]. JOURNAL OF CHROMATOGRAPHY A, 2000, 885 (1-2) : 73 - 95