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Ciężak, P., & Rdzanek, A. (2020). Corrosion monitoring of aircraft based on the corrosion prognostic health management (CPHM) system. Journal of KONBiN, 50(4), 205–216. https://doi.org/10.2478/jok-2020-0082CiężakP.RdzanekA., (2020). Corrosion monitoring of aircraft based on the corrosion prognostic health management (CPHM) system. Journal of KONBiN, 50(4), 205–216. https://doi.org/10.2478/jok-2020-0082Search in Google Scholar
Cusati, V., Corcione, S., & Memmolo, V. (2021). Impact of structural health monitoring on aircraft operating costs by multidisciplinary analysis. Sensors, 21(20), 6938. https://doi.org/10.3390/s21206938CusatiV.CorcioneS.MemmoloV., (2021). Impact of structural health monitoring on aircraft operating costs by multidisciplinary analysis. Sensors, 21(20), 6938. https://doi.org/10.3390/s21206938Search in Google Scholar
Demo, J., Andrews, C., Friedersdorf, F., Morgan, A., & Jostes, L. (2013). Deployment of a wireless corrosion monitoring system for aircraft applications. 2013 IEEE Aerospace Conference, Big Sky, MT, USA, 1–10. https://doi.org/10.1109/AERO. 2013.6496924DemoJ.AndrewsC.FriedersdorfF.MorganA.JostesL., (2013). Deployment of a wireless corrosion monitoring system for aircraft applications. 2013 IEEE Aerospace Conference, Big Sky, MT, USA, 1–10. https://doi.org/10.1109/AERO.2013.6496924Search in Google Scholar
Friedersdorf, F. J., Demo, J. C., Brown, N. K., & Kramer, P. C. (2019). Electrochemical sensors for continuous measurement of corrosion and coating system performance in outdoor and accelerated atmospheric tests. In S. Papavinasam, R. B. Rebak, L. Yang, & N. S. Berke (Eds.), Advances in electrochemical techniques for corrosion monitoring and laboratory corrosion measurements (pp. 91–113). ASTM International. https://doi.org/10.1520/stp160920170222FriedersdorfF. J.DemoJ. C.BrownN. K.KramerP. C., (2019). Electrochemical sensors for continuous measurement of corrosion and coating system performance in outdoor and accelerated atmospheric tests. In PapavinasamS.RebakR. B.YangL.BerkeN. S. (Eds.), Advances in electrochemical techniques for corrosion monitoring and laboratory corrosion measurements (pp. 91–113). ASTM International. https://doi.org/10.1520/stp160920170222Search in Google Scholar
Herzberg, E., Acton, C., Chan, T., Guo, S., Lai, A., & Stroh, R. (2019). Estimated impact of corrosion on cost and availability of DOD weapon systems – FY19 update. LMI.HerzbergE.ActonC.ChanT.GuoS.LaiA.StrohR., (2019). Estimated impact of corrosion on cost and availability of DOD weapon systems – FY19 update. LMI.Search in Google Scholar
Hoen-Velterop, L. (2017). Assessing the corrosion environment severity helicopters encounter using environmental sensors. Department of Defense – Allied Nations Technical Corrosion Conference. Paper No. 2017-400177.Hoen-VelteropL., (2017). Assessing the corrosion environment severity helicopters encounter using environmental sensors. Department of Defense – Allied Nations Technical Corrosion Conference. Paper No. 2017-400177.Search in Google Scholar
Li, L., Chakik, M., & Prakash, R. (2021). A review of corrosion in aircraft structures and graphene-based sensors for advanced corrosion monitoring. Sensors, 21(9), 2908. https://doi.org/10.3390/s21092908LiL.ChakikM.PrakashR., (2021). A review of corrosion in aircraft structures and graphene-based sensors for advanced corrosion monitoring. Sensors, 21(9), 2908. https://doi.org/10.3390/s21092908Search in Google Scholar
National Transportation Safety Board. (1988). Aircraft accident report: Aloha Airlines Flight 243 (Boeing 737-200) (Report No. PB89-910404). National Technical Information Service.National Transportation Safety Board. (1988). Aircraft accident report: Aloha Airlines Flight 243 (Boeing 737-200) (Report No. PB89-910404). National Technical Information Service.Search in Google Scholar
Rakas, J., Bauranov, A., & Messika, B. (2018). Failures of critical systems at airports: Impact on aircraft operations and safety. Safety Science, 110, 141–157. https://doi.org/10.1016/j.ssci.2018.05.022RakasJ.BauranovA.MessikaB., (2018). Failures of critical systems at airports: Impact on aircraft operations and safety. Safety Science, 110, 141–157. https://doi.org/10.1016/j.ssci.2018.05.022Search in Google Scholar
Tzortzinis, G., Knickle, B. T., Bardow, A., Breña, S. F., & Gerasimidis, S. (2020a). Strength evaluation of deteriorated girder ends. I: Experimental study on naturally corroded I-beams. Thin-Walled Structures, 107220. https://doi.org/10.1016/j.tws.2020.107220TzortzinisG.KnickleB. T.BardowA.BreñaS. F.GerasimidisS., (2020a). Strength evaluation of deteriorated girder ends. I: Experimental study on naturally corroded I-beams. Thin-Walled Structures, 107220. https://doi.org/10.1016/j.tws.2020.107220Search in Google Scholar
Tzortzinis, G., Knickle, B. T., Bardow, A., Breña, S. F., & Gerasimidis, S. (2020b). Strength evaluation of deteriorated girder ends. II: Numerical study on corroded I-beams. Thin-Walled Structures, 107216. https://doi.org/10.1016/j.tws.2020.107216TzortzinisG.KnickleB. T.BardowA.BreñaS. F.GerasimidisS., (2020b). Strength evaluation of deteriorated girder ends. II: Numerical study on corroded I-beams. Thin-Walled Structures, 107216. https://doi.org/10.1016/j.tws.2020.107216Search in Google Scholar
United States Government Accountability Office. (2019). Defense Management: observations on changes to the reporting structure for DOD’s corrosion office and its implementation of GAO recommendations (Report to Congressional Committees, GAO-19-513). United States Government Accountability Office.United States Government Accountability Office. (2019). Defense Management: observations on changes to the reporting structure for DOD’s corrosion office and its implementation of GAO recommendations (Report to Congressional Committees, GAO-19-513). United States Government Accountability OfficeSearch in Google Scholar
Wright, R. F., Lu, P., Devkota, J., Lu, F., Ziomek-Moroz, M., & Ohodnicki, P. R. (2019). Corrosion sensors for structural health monitoring of oil and natural gas infrastructure: A review. Sensors, 19(18), 3964. https://doi.org/10.3390/s19183964WrightR. F.LuP.DevkotaJ.LuF.Ziomek-MorozM.OhodnickiP. R., (2019). Corrosion sensors for structural health monitoring of oil and natural gas infrastructure: A review. Sensors, 19(18), 3964. https://doi.org/10.3390/s19183964Search in Google Scholar