Test of conformance or non-conformance with geometrical specifications

Author:

Hausotte Tino1ORCID,Butzhammer Lorenz1ORCID,Reuter Tamara1ORCID,Braun Matthias1,Grömme Ulrich1

Affiliation:

1. 9171 Chair of Manufacturing Metrology (FMT), Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU) , Nägelsbachstraße 25, 91052 Erlangen , Germany

Abstract

Abstract Systematic and random measurement errors are the cause of uncertain conformance and non-conformance statements. A wrong conformance statement occurs if the workpiece is accepted and is a reject part (type II error or false-negative) and a wrong non-conformance statement if the workpiece is rejected and is an in-spec part (type I error or false-positive). In order to avoid type I and type II errors, measurement uncertainty must be taken into account in the conformance and non-conformance testing. In practice, some procedures are used to consider measurement errors or the uncertainty that deviate from the state-of-the-art in research and technology. As these methods have become established over many years, they are still widely used despite better theoretical knowledge. The standard ISO 14253-1:2017 specifies a procedure based on probability and measurement uncertainty that is in accordance to the internationally accepted “Guide to the expression of uncertainty in measurement” and its supplements but is often not used due to the complexity of the evaluation of measurement uncertainty. In this contribution we give an overview and comparison of the different existing methods and provide an suggestion for supplementing the standard ISO 14253-1:2017, as Monte Carlo simulations enable a direct probability-based conformance and non-conformance testing even for complex measurement processes.

Funder

Deutsche Forschungsgemeinschaft

Bundesministerium für Wirtschaft und Klimaschutz

Publisher

Walter de Gruyter GmbH

Reference23 articles.

1. Joint Committee for Guides in Metrology (JCGM/WG 1), JCGM 200:2012 – International Vocabulary of Metrology ? Basic and, General Concepts and Associated Terms (VIM 3rd edition, JCGM 200:2008 with Minor Corrections), Sèvres Cedex, France, Bureau International des Poids et Mesures (BIPM), 2012. Available at: https://www.bipm.org/en/committees/jc/jcgm/publications.

2. Joint Committee for Guides in Metrology (JCGM/WG 1), JCGM 100:2008 – GUM 1995 with Minor Corrections – Evaluation of Measurement Data – Guide to the Expression of Uncertainty in Measurement, Sèvres Cedex France, Bureau International des Poids et Mesures (BIPM), 2008. Available at: https://www.bipm.org/en/committees/jc/jcgm/publications.

3. DIN EN ISO 14253-1:2018-07 Geometrische Produktspezifikationen (GPS) – Prüfung von Werkstücken und Messgeräten durch Messen – Teil 1: Entscheidungsregeln für den Nachweis von Konformität oder Nichtkonformität mit Spezifikationen (ISO 14253-1:2017).

4. Joint Committee for Guides in Metrology (JCGM/WG 1), JCGM 106:2012 – Evaluation of Measurement Data – the Role of Measurement Uncertainty in Conformity Assessment, Sèvres Cedex, France, Bureau International des Poids et Mesures (BIPM), 2012. Available at: https://www.bipm.org/en/committees/jc/jcgm/publications.

5. Joint Committee for Guides in Metrology (JCGM/WG 1), JCGM 101:2008 ? Evaluation of Measurement Data – Supplement 1 to the “Guide to the Expression of Uncertainty in Measurement” – Propagation of Distributions Using a Monte Carlo Method, Sèvres Cedex, France, Bureau International des Poids et Mesures (BIPM), 2008. Available at: https://www.bipm.org/en/committees/jc/jcgm/publications.

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