Force calibration of tension meter for measuring static tensions of AGTD parts at temperatures up to 700 °C
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Mouritz, A. P. Introduction to Aerospace Materials, Woodhead Publishing, Sawston, Cambridge, UK, 2012, pp. 251. DOI: 10.1533/9780857095152.
Hunter, G. W., Wrbanek, J. D., Okojie, R. S., Neudeck, P. G., Fralick, G. C., Chen, L., Xu, J., & Beheim, G. M. Development and application of high-temperature sensors and electronics for propulsion applications. Sensors for Propulsion Measurement Applications. Proc. of SPIE, 2006, vol. 6222, article no. 622209-1. DOI: 10.1117/12.668458.
Wu, T., Ma, L., & Zhao, L. Development of temperature-compensated resistance strain gages for use to 700°C. Experimental Mechanics, 1981, no. 21, pp. 117–123. DOI: 10.1007/BF02326368.
Holmes, H. K., & Moore, T. C. High temperature strain gage apparent strain compensation. The 1992 NASA Langley Measurement Technology Conference: Measurement Technology for Aerospace Application in High-Temperature Enviroments, no. N93-13672, pp. 211-222. Available at: https://ntrs.nasa.gov/api/citations/19930004484/downloads/19930004484.pdf. (accessed 10.3.2024)
Strain Gage termal output and gage factor Variation with temperature. Technical Note, TN-504-1, Measurement Group, Inc., P.O. Box 27777, Raleigh, North Carolina 27611, 2014, pp. 1-13.
Bertodo, R. Development of High-Temperature Strain Gauges Proceedings of the Institution of Mechanical Engineers, 1959, vol. 173, iss. 1, pp. 605–622. DOI: 10.1243/PIME_PROC_1959_173_052_02.
Wu, T., Ma, L., & Zhao, L. Development of temperature-compensated resistance strain gages for use to 700°C. Experimental Mechanics, 1981, no. 21, pp. 117–123. DOI: 10.1007/BF02326368.
Gusev, Yu. A., Gol’tsov, A. S., & Krygin, S. S. Vliyanie shuntirovaniya vysokotemperaturnykh tenzorezistorov na tochnost’; izmereniya staticheskikh deformatsii elementov GTD [Influence of shunting of high-temperature strain gauges on the accuracy of measurement of static deformations of GTE elements]. Aviatsiyno-kosmichna tekhnika i tekhnolohiya – Aerospace Engineering and Technology, 2022, no. 4sup2 (182), pp. 35-41. DOI: 10.32620/aktt.2022.4sup2.06.
Li, X., Yu, R., Wang, P., Kang, R., Shu, Z., Yue, Z., Zhao, Z., Wang, X., & Lu. J. T. Plastic deformation and ductile fracture of L907A ship steel at increasing strain rate and temperature, International Journal of Impact Engineering, 2023, vol. 174, article no. 104515. DOI: 10.1016/j.ijimpeng.2023.104515.
DOI: https://doi.org/10.32620/aktt.2024.4.05