dc.identifier.citation | [1] B. Piquet, “FAST (Flight Airworthiness Support Technology)”Special Edition
A350XWB,” Airbus Technical Magazine, no. June, pp. 1–25, 2013.
[2] M. J. Grayson, Charles E.; French, Mary; O’Brien, Traditional Archery from Six
Continents. Columbia and London: University of Missouri Press, 2007.
[3] D. Daniel, “Composing Composites,” Last visit on June 15, 2020.
[4] “Composite Structures – Fiber Forms and Types of Fiber,” Last visit on June 15,
2020.
[5] HEXCEL, “HexWeb® Honeycomb Sandwich Design Technology,” Tech. Rep.
AGU 075b, 2000.
[6] HEXCEL, “Typical Products for Jets,” Last visit on June 15, 2020.
[7] Hexcel Composites, “HexWeb® Honeycomb Attributes and Properties,” tech.
rep., HEXCEL, 1999.
[8] P. Avitabile, Modal Testing: A Practitioner’s Guide. The Society for Experimental
Mechanics and John Wiley & Sons Ltd, 2018.
[9] V. V. Vasiliev and E. V. Morozov, Advanced Mechanics of Composite Materials.
Great Britain: Elsevier Ltd, 2007.
[10] SAE, Composite Materials Handbook - Vol.6 Structural Sandwich Composites,
vol. 6. 2013.
[11] J. Kaye, “The Transient Temperature Distribution in a Wing Flying at Supersonic
Speeds,” Journal of the Aeronautical Sciences, vol. 17, no. 12, pp. 787–
807, 1950.
[12] R. J. Monaghan, “Formulae and Approximations for Aerodynamic Heating
Rates in high speed flight,” Tech. Rep. 360, AERONAUTICAL RESEARCH
COUNCIL, LONDON, 1957.
[13] E. R. van Driest, “The Problem of Aerodynamic Heating,” AERONAUTICAL
ENGINEERING REVIEW, pp. 26–41, 1956.
[14] J. Rohacs, I. Jankovics, I. Gal, J. Bakunowicz, G. Mingione, and A. Carozza,
“Small Aircraft Infrared Radiation Measurements Supporting the Engine Airframe
Aero-thermal Integration,” Periodica Polytechnica Transportation Engineering,
2018.
[15] K. Daryabeigi, “Heat Transfer in Adhesively Bonded Honeycomb Core Panels,”
Journal of Thermophysics and Heat Transfer, vol. 16, no. 2, 2002.
[16] J. Fatemi and M. H. Lemmen, “Effective Thermal/Mechanical Properties of
Honeycomb Core Panels for Hot Structure Applications,” Journal of Spacecraft
and Rockets, vol. 46, no. 3, pp. 514–525, 2009.
[17] J. D. D. Melo and D. W. Radford, “Time and temperature dependence of the
viscoelastic properties of PEEK/IM7,” Journal of Composite Materials, vol. 38,
no. 20, pp. 1815–1830, 2004.
[18] J. D. D. Melo and D. W. Radford, “Time and temperature dependence of the
viscoelastic properties of CFRP by dynamic mechanical analysis,” Composite
Structures, vol. 70, pp. 240–253, 2005.
[19] Q. Liu and Y. Zhao, “Role of Anisotropic Core in Vibration Properties of
Honeycomb Sandwich Panels,” Journal of Thermoplastic Composite Materials,
vol. 15, no. 1, 2002.
[20] G. Aklilu, S. Adali, and G. Bright, “Temperature Effect on Mechanical Properties
of Carbon, Glass and Hybrid Polymer Composite Specimens,” International
Journal of Engineering Research in Africa, vol. 39, pp. 119–138, 2018.
[21] K. E. Vosteen, Louis F. ; Fuller, “BEHAVIOR OF A CANTILEVER PLATE
UNDER RAPID-HEATING CONDITIONS,” tech. rep., 1955.
[22] R. T. L.F. Vosteen, R.R. McWhitney, “Effect of Transient Heating on Vibration
Frequencies of SimpleWing Structures,” tech. rep., National Advisory Committee
for Aeronautics, WASHINGTON, 1957.
[23] H. L. Dryden and J. E. Duberg, “AEROELASTIC EFFECTS OF AERODYNAMIC
HEATING,” ADVISORY GROUP FOR AERONAUTICAL RESEARCH
AND DEVELOPMENT, 1955.
[24] H. L. Runyan and N. H. Jones, “EFFECT OF AERODYNAMIC HEATING ON
THE FLUTTER OF A RECTANGULAR WING AT A MACH NUMBER OF
2,” Tech. Rep. 411, NATIONAL ADVISORY COMMITTEE FOR AERONAUTICS,
WASHINGTON, 1958.
[25] M. W. Kehoe and V. C. Deaton, “Correlation of Analytical and Experimental
Hot Structure Vibration Results,” tech. rep., NASA, 1993.
[26] H. T. Snyder and M. W. Kehoe, “Determination of the Effects of Heating on
Modal Characteristics of an Aluminum Plate with Application to Hypersonic
Vehicles,” tech. rep., NASA Technical Memorandum, 1991.
[27] Y. W. Kim, “Temperature dependent vibration analysis of functionally graded
rectangular plates,” Journal of Sound and Vibration, vol. 284, no. 3-5, pp. 531–
549, 2005.
[28] P. Vangipuram and N. Ganesan, “Buckling and vibration of rectangular composite
viscoelastic sandwich plates under thermal loads,” Composite Structures,
vol. 77, pp. 419–429, 2007.
[29] P. Jeyaraj, C. Padmanabhan, and N. Ganesan, “Vibration and Acoustic Response
of an Isotropic Plate in a Thermal Environment,” Journal of Vibration
and Acoustics, vol. 130, no. 5, pp. 051005–1 – 051005–6, 2008.
[30] P. Jeyaraj, N. Ganesan, and C. Padmanabhan, “Vibration and acoustic response
of a composite plate with inherent material damping in a thermal environment,”
Journal of Sound and Vibration, vol. 320, no. 1-2, pp. 322–338, 2009.
[31] Y. Liu and Y. Li, “Vibration and acoustic response of rectangular sandwich plate
under thermal environment,” Shock and Vibration, vol. 20, no. 5, pp. 1011–1030,
2013.
[32] H. Liu, X. Li, and F. Liu, “Thermal Modal Analysis ofWing Considering Aerodynamic
Heating,” in Proceedings - 6th International Symposium on Computational
Intelligence and Design, ISCID 2013, vol. 2, pp. 372–375, 2013.
[33] Q. Geng, H. Li, and Y. Li, “Dynamic and acoustic response of a clamped rectangular
plate in thermal environments: Experiment and numerical simulation,”
The Journal of the Acoustical Society of America, vol. 135, no. 5, pp. 2674–
2682, 2014.
[34] S. Zhao, Y. Wang, D. Wu, Y. Pu, and L. Shang, “Experimental Research on
Thermal-Vibration for Composite TrilaminatedWing Structure,” Advanced Materials
Research, vol. 1061-1062, pp. 799–805, 2014.
[35] X. Zhang, K. Yu, Y. Bai, and R. Zhao, “Thermal vibration characteristics of
fiber-reinforced mullite sandwich structure with ceramic foams core,” Composite
Structures, vol. 131, pp. 99–106, 2015.
[36] H. Cheng, H. Li, W. Zhang, B. Liu, Z. Wu, and F. Kong, “Effects of Radiation
Heating on Modal Characteristics of Panel Structures,” Journal of Spacecraft
and Rockets, vol. 52, no. 4, pp. 1228–1235, 2015.
[37] X. Li and K. Yu, “Vibration and acoustic responses of composite and sandwich
panels under thermal environment,” Composite Structures, vol. 131, pp. 1040–
1049, 2015.
[38] M. Du, Q. Geng, and Y. ming Li, “Vibrational and acoustic responses of a laminated
plate with temperature gradient along the thickness,” Composite Structures,
vol. 157, pp. 483–493, 2016.
[39] G. Vio, D. Munk, and D. Verstraete, “Transient Temperature Effects on the
Aerothermoelastic Response of a Simple Wing,” Aerospace, vol. 5, 2018.
[40] Y. Bai, K. Yu, J. Zhao, and R. Zhao, “Experimental and Simulation Investigation
of Temperature Effects on Modal Characteristics of Composite Honeycomb
Structure,” Composite Structures, vol. 201, pp. 816–827, 2018.
[41] T. Johnson, “History of Composites,” Last visit on June 15, 2020.
[42] M. C.-Y. Niu, Composite Airframe Structures. Hong Kong Conmilit Press Ltd.,
3 ed., 2010.
[43] J. Reddy, Mechanics of Laminated Composite Plates and Shells Theory and
Analysis. CRC Press, 2003.
[44] W. S. Burton and A. K. Noor, “Assessment of continuum models for sandwich
panel honeycomb cores,” Computer Methods in Applied Mechanics and Engineering,
vol. 145, pp. 341–360, 1997.
[45] Dynamic Testing Agency, Handbook on Modal Testing. 1993.
[46] O. Døssing and Bruel & Kjaer, “Structural Testing Part 2:Modal Analysis and
Simulation,” tech. rep., 1998.
[47] D. J. Ewins, Modal Testing: Theory, Practice and Application. 2001.
[48] PLASCORE, “PAMG-XR1 5056 Aluminum Honeycomb,” tech. rep.
[49] EURO-COMPOSITES, “Mechanical Properties of ECG Honeycomb,” tech.
rep.
[50] HEXCEL, “HexWeb ® HRH-10 Aramid Fibre/Phenolic Honeycomb,” tech.
rep., 2017.
[51] J. S. Bendat and A. G. Piersol, Random Data Analysis and Measurement Procedures.
2010.
[52] C. Lalanne, Mechanical Vibration and Shock Analysis: Third edition, vol. 3.
2014. | tr_TR |