BS 6200-6 1-1990 Sampling and analysis of iron steel and other ferrous metals - Guidelines on atomic absorption spectrometric techniques - Recommendations for the drafting of stand.pdf
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1、BRITISH STANDARD BS 6200-6.1: 1990 Sampling and analysis of iron, steel and other ferrous metals Part 6: Guidelines on atomic absorption spectrometric techniques Section 6.1 Recommendations for the drafting of standard methods for the chemical analysis of iron and steel by flame atomic absorption sp
2、ectrometryBS 6200-6.1:1990 This British Standard, having been prepared under the directionof the Iron and Steel Standards Policy Committee, waspublished under the authorityof the Board of BSI andcomes into effect on 28 September 1990 BSI 09-1999 The following BSI references relate to the work on thi
3、s standard: Committee reference ISM/18 Draft announced in BSI News April 1989 ISBN 0 580 18179 0 Foreword This Section of BS 6200 has been prepared under the direction of the Iron and Steel Standards Policy Committee. The text is identical with Information Circular No.8 “Chemical analysis of ferrous
4、 materials: Recommendations for the drafting of standard methods of analysis employing flame atomic absorption spectrometry for the chemical analysis of iron and steel”, published by the Commission of the European Communities. In the Synopsis on page 1, reference is made to a complementary Informati
5、on Circular, No.9, the text of which forms the basis for BS6200-6.2. Both Information Circular No.8 and Information Circular No.9 were prepared by the European Committee ECISS/TC20 “Methods of chemical analysis” with the active participation and approval of the UK. The recommendations given in these
6、 documents have also been adopted by ISO/TC17/SC1, “Steel Methods of determination of chemical composition”. Most of the European and ISO standards involving flame atomic absorption spectrometry produced by these two committees have been prepared in accordance with these recommendations. Many of the
7、se methods have been implemented as Subsections of BS6200-3. A British Standard does not purport to include all the necessary provisions of a contract. Users of British Standards are responsible for their correct application. Compliance with a British Standard does not of itself confer immunity from
8、 legal obligations. Summary of pages This document comprises a front cover, an inside front cover, pages i and ii, pages1 to 20, an inside back cover and a back cover. This standard has been updated (see copyright date) and may have had amendments incorporated. This will be indicated in the amendmen
9、t table on the inside front cover. Amendments issued since publication Amd. No. Date of issue CommentsBS 6200-6.1:1990 BSI 09-1999 i Contents Page Foreword Inside front cover 1 Introduction 1 2 Instrument criteria 2 3 Adjustment of atomic absorption spectrometer 5 4 Preparation of solutions 5 5 Cali
10、bration procedure 6 6 Interferences 7 7 Background correction 7 8 Expression of results 7 9 Safety 8 10 Miscellaneous 8 11 Summary of recommendations 8 12 Literature 9 Appendix 1 The determination of calcium in steel, based on EURONORM 177-85 10 Appendix 2 The determination of cobalt in iron and ste
11、el 14 Publications referred to Inside back coverii blankBS 6200-6.1:1990 BSI 09-1999 1 Synopsis Standard methods of chemical analysis have traditionally been based on the techniques of classical chemistry. Generally, by specification of quantities and purity of reagents, such methods may be describe
12、d completely and thereafter followed exactly in any laboratory. Today, however, the bulk of analysis is done by instrumental methods for which different laboratories may use instruments from various manufacturers with different configurations and operational settings. It becomes of pressing importan
13、ce to consider how such methods may be specified in Standard documents with regard to both instrument quality and procedure. The present document considers these matters for methods employing flame atomic absorption spectrometry and makes recommendations. These prescribe instrument quality in terms
14、of limit of detection, curve linearity and precision. Recommendations concerning the preparation of solutions, the calibration procedure and the expression of results are also included. Methods for the determination of calcium in steel and for cobalt in iron and steel are included as illustrative ex
15、amples of the drafting recommendations. NOTEAttention is also drawn to Information Circular No9: Chemical analysis of ferrous materials; operational guidelines for the application of flame atomic absorption spectrometry in standard methods for the chemical analysis of iron and steel. 1 Introduction
16、An acceptable analytical procedure has to be written in such a form and in such detail that after faithful execution by a well trained analyst an unquestionable result will be obtained. Neither the individual analyst nor the make of apparatus used should have any influence on the final result. These
17、 requirements are particularly stringent in the formulation of standard methods used for reference purposes and for arbitration in cases of dispute. Traditionally, Standard methods of analysis have been based on the techniques of classical chemistry. While technically sound, they do not reflect mode
18、rn developments such as optical emission spectroscopy, X-Ray fluorescence and atomic absorption spectrometry, now in widespread use. New and revised standard procedures now in the course of preparation will increasingly embody these techniques and it becomes pressingly important to consider how such
19、 methods may be specified. With traditional chemical methods there was little problem. Generally, by specification of quantities and purities of reagents, the methods could be described completely and thereafter followed exactly in any laboratory. With instrumental methods, however, the situation is
20、 different. Different makes of instruments may be employed in the various laboratories, with different configurations or operational settings, and it becomes more difficult to specify the procedure precisely. Clearly, the standard should not refer to a particular make of instrument, to the implied e
21、xclusion of other satisfactory equipment, nor should it include operational settings or measurement times or solution concentrations which may be appropriate to a given instrument only. On the other hand, if matters are left in the hands of the individual analyst just to “follow the manufacturers in
22、structions” the document can no longer be regarded as a Standard, nor is there any guarantee that the instrument employed will have a quality of performance suitable for the purpose. The way forward is for the Standard document to specify instrument suitability in terms of fundamental performance cr
23、iteria such as precision, limit of detection and linearity, according to agreed definitions. Individual manufacturers would then be free to meet these requirements in any way they choose. Also, since even a good instrument may deteriorate, the Standard should contain reference to practical procedure
24、s for the determination of these criteria, to ensure that the instrument meets the specification and continues to do so during its functional years. Other essential aspects of the Standard include instrument optimization, preparation of the test sample, calibration procedures, calculation of results
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