Use of NIR spectroscopy in the production of modified industrial resins

被引:18
作者
Blanco, M. [1 ]
Villaescusa, V. [1 ]
机构
[1] Univ Autonoma Barcelona, Fac Ciencias, Dept Quim Analit, E-08193 Barcelona, Spain
关键词
near infrared spectroscopy; natural resins modification; PLS calibration; physico-chemical properties; load control;
D O I
10.1016/j.talanta.2006.07.028
中图分类号
O65 [分析化学];
学科分类号
070302 [分析化学]; 081704 [应用化学];
摘要
Natural resins are scarcely used, but after appropriate modification processes they acquire characteristics of viscosity, point of softening, stability, etc. that facilitate their application in fields such as paintings, varnishes, cosmetic, etc. The complexity of resins makes it very difficult to monitor the reactions involved in their modification, the extent of which is usually determined via more experimentally accessible parameters. However, 14 the methods typically used to determine such parameters are slow and produce environmentally unfriendly waste. In this work, we assessed the potential of NIR spectroscopy, as an alternative to the traditional analytical methods, for monitoring the industrial processes involved in the production of modified resins. To this end, we developed PLS calibration models that were used to quantify physical (viscosity and cloud point) and chemical parameters (acid and hydroxyl numbers), with a view to characterize the evolution of the resins during the reaction that take place throughout the fabrication process. Samples were withdrawn at different times stages of the process for analysis with the proposed quantitation models; the data thus obtained were compared with those provided by reference methods. Based on the results, NIR spectroscopy is an effective choice for the accurate, expeditious monitoring of industrial resin modification processes. (c) 2006 Elsevier B.V. All rights reserved.
引用
收藏
页码:1333 / 1338
页数:6
相关论文
共 9 条
[1]
[Anonymous], 2005, ANN BOOK ASTM STAND, V04.13
[2]
On the use of recent developments in vibrational spectroscopic instrumentation in an industrial environment: quicker, smaller and more robust [J].
Kip, BJ ;
Berghmans, T ;
Palmen, P ;
van der Pol, A ;
Huys, M ;
Hartwig, H ;
Scheepers, M ;
Wienke, D .
VIBRATIONAL SPECTROSCOPY, 2000, 24 (01) :75-92
[3]
Rosin derivatives: novel film forming materials for controlled drug delivery [J].
Mandaogade, PM ;
Satturwar, PM ;
Fulzele, SV ;
Gogte, BB ;
Dorle, AK .
REACTIVE & FUNCTIONAL POLYMERS, 2002, 50 (03) :233-242
[4]
Massart D.L., 1998, HDB CHEMOMETRICS Q B, P349
[5]
Near infrared reflectance spectroscopy for online particle size analysis of powders and ground materials [J].
Pasikatan, MC ;
Steele, JL ;
Spillman, CK ;
Haque, E .
JOURNAL OF NEAR INFRARED SPECTROSCOPY, 2001, 9 (03) :153-164
[6]
High-performance liquid chromatography of unmodified rosin and its applications in contact dermatology [J].
Sadhra, S ;
Gray, CN ;
Foulds, IS .
JOURNAL OF CHROMATOGRAPHY B, 1997, 700 (1-2) :101-110
[7]
Sampling and analysis of airborne resin acids and solvent-soluble material derived from heated colophony (rosin) flux: A method to quantify exposure to sensitizing compounds liberated during electronics soldering [J].
Smith, PA ;
Son, PS ;
Callaghan, PM ;
Jederberg, WW ;
Kuhlmann, K ;
Still, KR .
TOXICOLOGY, 1996, 111 (1-3) :225-238
[8]
Novel nitrogen-containing epoxy resin. I. Synthetic kinetics [J].
Zhang, XH ;
Wan, HM ;
Min, YQ ;
Qi, GR .
JOURNAL OF APPLIED POLYMER SCIENCE, 2005, 96 (03) :723-731
[9]
Zinkel Duane F., 1989, Naval Stores, Production, Chemistry, Utilization