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2×2 braided composites. Journal of composite materials, 40(6), 533-546. [11] Wan, Z., Li, J. (2006). Braided angle measurement technique for three-dimensional braided composite material preform using mathematical morphology and image texture. AUTEX Research Journal, 6(1), 30-39. [12] Gong, L., and Wan, Z. (2006). Automatic measurement technology on braided pitch length of three-dimensional braided composite material preform. Computer Measurement & Control (in Chinese), 14(6), 730-733. [13] Wan, Z., Shen, J., and Wang, X. (2004). Measure and research on braided

Engineering , vol. 3, no. 3, March 2013. [7] G. Cibira and M. Koščová, “Photovoltaic module parameters acquisition model”, Applied Surface Science , vol. 312, 2014, ISSN 0169-4332. [8] S. Weixiang, C. F. Hoong, W. Peng, L. P. Chiang and K. S. Yang, “Development of a mathematical model for solar module photovoltaic systems”, 6th IEEE International conference on industrial electronics and applications , Beijing, China, 2011, pp. 2056-2061. [9] E948-15, “Standard test method for electrical performance of PV cells using reference cells under simulated sunlight”, ASTM

A. Di Bucchianico et al. (Eds), mODa 7: 7th International Workshop on Model-Oriented Data Analysis, Physica-Verlag, Heidelberg, pp. 163-171. Tricaud, C. and Chen, Y. (2012). Optimal Mobile Sensing and Actuation Policies in Cyber-physical Systems, Springer-Verlag, London. Tricaud, C., Patan, M., Uciński, D. and Chen, Y. (2008). D-optimal trajectory design of heterogeneous mobile sensors for parameter estimation of distributed systems, American Control Conference, Seattle, WA, USA, pp. 663-668. Uciński, D. (2000). Optimal selection of measurement locations for

, 46 (7), 1500-1501. [19] Nara, A., Yasuda, N., Satake, H., Toriumi, A. (2002). Applicability limits of the two-frequency capacitance measurement technique for the thickness extraction of ultrathin gate oxide. IEEE Transactions on Semiconductor Manufacturing , 15 (2), 209-213. [20] Luo, Z., Ma, T.P. (2004). A new method to extract EOT of ultrathin gate dielectric with high leakage current. IEEE Electron Device Letters , 25 (9), 655-657. [21] Liu, H., Kuang, Q., Luan, S., Zhao, A., Tallavarjula, S. (2010). Frequency dispersion effect and parameters extraction method

): Measurement of Force Produced by an Insect-Mimicking Flapping-Wing System . – Journal of Bionic Engineering, 7 Suppl., pp.S94-S102. [8] Czekałowski P. and Sibilski K. (2012): Influence of cruise flight speed of entomopter on aerodynamics loads . – Gliwice: Modelling in Engineering, vol.45. No.14, pp.206-212. [9] Czekałowski P. (2009): Investigation of the Entomopter’s wings movement kinematics on its performance - the general concept of research . – Modelling in Engineering, vol. 37, pp.71-76, Gliwice. [10] Jaroszewicz A. (2009): Modeling and simulation of flight

References Binnenbruck, B., Deußen, D., Witte, B.: The Influence of Geodetic Refraction and Its Determination Using a Digital Camera. In: INGEO 2002: Proceedings of the 2nd International Conference on Engineering Surveying. [CD-ROM]. Bratislava: Department of Surveying FCE SUT, 2002, pp. 25-36, ISBN 80-227-1792-4. Böckem, B.: Development of a Dispersometer for the Implementation into Geodetic High-Accuracy Direction Measurement Systems. Zürrich: Institut fűr Geodäsie und Photogrammetrie ETH Zürrich, 2001, 140 pp., ISBN 3-906467-33-3. Brunner, F.K.: Vertical

References Muller, R. P. G. (1995). An Experimental and Analytical Investigation on the Fatigue Behavior of Fuselage Riveted Lap Joints. Ph. D. Thesis, pp.161. Netherlands: Delft University of Technology. Hakanen, M. (2007). Institute of Aviation - XRD measurements on riveted samples , Unpublished report. Vaajakoski, Finland: Stresstech Oy. (#699) Hakanen, M. (2008). Institute of Aviation - Residual stress on rivets. Unpublished report. Vaajakoski, Finland: Stresstech Oy. (#744) Cullity, B. D. (1964). Fundamentals of X-ray diffraction. Warsaw: PWN. ASM

Abstract

This paper is focused on rationalization checking parameters of shaft in companies engaged in the production of components of electric motors, wind turbines and vacuum systems. Customers increasing constantly their requirements to ensure the overall quality of the product, i.e. the quality of machining, dimensional and shape accuracy and overall purity of the subscribed products. The aim of this paper is to introduce using modern measurement technology in controlling these components and compare the results with existing control methodology. The main objective of this rationalization is to eliminate mistakes and shortcomings of current inspection methods.

measurements of aeration parameters in large water tanks. Measurement Science and Technology , 14(2), 199