Infrared thermographic testing of hyperconductive flat heat pipes; Optical Engineering; Vol. 57, iss. 3
| Parent link: | Optical Engineering Vol. 57, iss. 3.— 2018.— [035105, 2 p.] |
|---|---|
| Yhteisötekijät: | Национальный исследовательский Томский политехнический университет Инженерная школа неразрушающего контроля и безопасности Испытательный центр Лаборатория радиационных испытаний материалов и изделий, Национальный исследовательский Томский политехнический университет Инженерная школа неразрушающего контроля и безопасности Центр промышленной томографии Научно-производственная лаборатория "Тепловой контроль" |
| Muut tekijät: | Simonova O. S. Olga Sergeevna, Vavilov V. P. Vladimir Platonovich, Chulkov A. O. Arseniy Olegovich, Suntsov S. B. Sergey Borisovich |
| Yhteenveto: | Title screen Active infrared thermography has been applied for the evaluation of the internal structure and operation quality of hyperconductive flat mini heat pipes used in satellite electronics. The distribution of effective transverse thermal diffusivity in heat pipes has been obtained by means of the Parker technique to exhibit areas with low content of fluid in the porous structure. The lateral components of thermal diffusivity were determined by placing a slit mask between a flash heater and a heat pipe. Peculiarities of heat pipe operation in a working regime have been experimentally studied by placing a local heat source on the pipe surface and following the surface temperature dynamics. |
| Kieli: | englanti |
| Julkaistu: |
2018
|
| Aiheet: | |
| Linkit: | https://doi.org/10.1117/1.OE.57.3.035105 |
| Aineistotyyppi: | Elektroninen Kirjan osa |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=666987 |
Samankaltaisia teoksia
Ermanno Grinzato’s contribution to infrared diagnostics and nondestructive testing: in memory of an outstanding researcher; Quantitative InfraRed Thermography Journal; Vol. 21, iss. 6 : (2012 - 2022) In memory of Dr. Ermanno Grinzato: a landmark in Quantitative InfraRed Thermography. Guest Editors: Paolo Bison, Xavier Maldague, Stefano Sfarra, Vladimir Vavilov
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2024)
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2024)
Infrared Thermographic Testing of Steel Structures by Using the Phenomenon of Heat Release Caused by Deformation; Journal of Nondestructive Evaluation; Vol. 37, iss. 2
Tekijä: Moyseychik E. Eugeny
Julkaistu: (2018)
Tekijä: Moyseychik E. Eugeny
Julkaistu: (2018)
Analyzing efficiency of optical and THz infrared thermography in nondestructive testing of GFRPs by using the Tanimoto criterion; NDT & E International; Vol. 117
Julkaistu: (2021)
Julkaistu: (2021)
Methodology of processing experimental data in transient thermal nondestructive testing (NDT); Thermosense XVII, Orlando, FL, United States, April 17, 1995
Julkaistu: (1995)
Julkaistu: (1995)
Crawling spot thermal nondestructive testing (NDT) for plaster inspection and comparison with dynamic thermography with extended heating; Thermosense XVII, Orlando, FL, United States, April 17, 1995
Julkaistu: (1995)
Julkaistu: (1995)
Enhancing Generalizability of a Machine Learning Model for Infrared Thermographic Defect Detection by Using 3D Numerical Modeling; Fracture and Structural Integrity; Vol. 18, iss. 70
Tekijä: Chulkov A. O. Arseniy Olegovich
Julkaistu: (2024)
Tekijä: Chulkov A. O. Arseniy Olegovich
Julkaistu: (2024)
Noise suppression in pulsed IR thermographic NDT: Efficiency of data processing algorithms; NDT & E International; Vol. 148
Julkaistu: (2024)
Julkaistu: (2024)
Peculiarities of detecting hidden corrosion in thick metals by transient IR thermography; Thermosense XXVIII,Orlando, Kissimmee, April 17, 2006
Julkaistu: (2006)
Julkaistu: (2006)
Fusion of infrared and terahertz imaging for non-invasive inspection of marqueteries coupled with finite element analyses; Infrared Physics and Technology; Vol. 140
Julkaistu: (2024)
Julkaistu: (2024)
Comparing the Efficiency of Ultrasonic Infrared Thermography under High-Power and Resonant Stimulation of Impact Damage in a CFRP Composite; Russian Journal of Nondestructive Testing; Vol. 54, iss. 5
Julkaistu: (2018)
Julkaistu: (2018)
A novel force-temperature model for evaluating internal forces in CFRP by means of infrared thermography; NDT and E International; Vol. 143
Julkaistu: (2024)
Julkaistu: (2024)
Crack detection in aluminum parts by using ultrasound-excited infrared thermography; Infrared Physics & Technology; Vol. 61
Tekijä: Xingwang Guo
Julkaistu: (2013)
Tekijä: Xingwang Guo
Julkaistu: (2013)
Enhancing resistance to low-velocity impact of electrospun-manufactured interlayer-strengthened CFRP by using infrared thermography; NDT & E International; Vol. 144
Julkaistu: (2024)
Julkaistu: (2024)
A pessimistic view of the energy auditing of building structures with the use of infrared thermography; Russian Journal of Nondestructive Testing; Vol. 46, iss. 12
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2010)
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2010)
Optical and Mechanical Excitation Thermography for Impact Response in Basalt-Carbon Hybrid Fiber-Reinforced Composite Laminates; IEEE Transactions on Industrial Informatics; Vol. 14, iss. 2
Julkaistu: (2018)
Julkaistu: (2018)
Infrared thermographic surveying of building debris: Tomsk High Military School of Communication Engineering catastrophe case study; Thermosense XX, Orlando, April 13, 1998
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (1998)
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (1998)
Inspecting smokestacks by IR thermographic surveying and heat conduction modeling; Thermosense XXIII, Orlando, April 16, 2001
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2001)
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2001)
Infrared thermographic detector of hidden corrosion; Sensor Review; Vol. 40, iss. 3
Tekijä: Simonov D. A. Denis Andreevich
Julkaistu: (2020)
Tekijä: Simonov D. A. Denis Andreevich
Julkaistu: (2020)
Characterising Hidden Defects in GFRP/CFRP Composites by using Laser Vibrometry and Active IR Thermography; Nondestructive Testing and Evaluation; Vol. 37, iss. 6
Julkaistu: (2022)
Julkaistu: (2022)
On the choice of the optimal algorithm for the processing of infrared thermograms in active thermal testing; Russian Journal of Nondestructive Testing; Vol. 49, iss. 11
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2013)
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2013)
Infrared Thermographic Diagnostics of Wood Fire Resistance under Combined Thermal Exposure of a Surface Fire Front and Burning and Smoldering Particles; Russian Journal of Nondestructive Testing; Vol. 60, iss. 10
Tekijä: Kasymov D. P. Denis Petrovich
Julkaistu: (2024)
Tekijä: Kasymov D. P. Denis Petrovich
Julkaistu: (2024)
Noise-limited thermal/infrared nondestructive testing; NDT & E International; Vol. 61
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2014)
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2014)
Non-contact one-sided evaluation of hidden corrosion in metallic constructions by using transient infrared thermography; Revista de Metalurgia (Madrid); Vol. SPEC
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2003)
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2003)
A Physical-Constrained Decomposition Method of Infrared Thermography: Pseudo Restored Heat Flux Approach Based on Ensemble Bayesian Variance Tensor Fraction; IEEE Transactions on Industrial Informatics; Vol. 20, iss. 3
Julkaistu: (2024)
Julkaistu: (2024)
Principle, Equipment and Applications of Line-Scanning Infrared Thermographic NDT; Journal of Nondestructive Evaluation; Vol. 42
Julkaistu: (2023)
Julkaistu: (2023)
A method and apparatus for characterizing defects in large flat composite structures by Line Scan Thermography and neural network techniques; Frattura ed Integrita Strutturale; Vol. 17, iss. 63
Julkaistu: (2023)
Julkaistu: (2023)
The multi-dimensional ensemble empirical mode decomposition (MEEMD); Journal of Thermal Analysis and Calorimetry; Vol. 128, iss. 3
Julkaistu: (2017)
Julkaistu: (2017)
Infrared thermographic assessment of heat release phenomena in steel parts subjected to quasi-static deformation; Measurement; Vol. 185
Tekijä: Moyseychik E. A. Evgeny Alekseevich
Julkaistu: (2021)
Tekijä: Moyseychik E. A. Evgeny Alekseevich
Julkaistu: (2021)
Detecting Delaminations in Semitransparent Glass Fiber Composite by Using Pulsed Infrared Thermography; Journal of Nondestructive Evaluation; Vol. 39, iss. 3
Julkaistu: (2020)
Julkaistu: (2020)
Quantitative evaluation of building thermal performance by IR thermography inspection data; Thermosense XIX: An International Conference on Thermal Sensing and Imaging, Orlando, April 21, 1997
Julkaistu: (1997)
Julkaistu: (1997)
Determining thermal diffusivity components in thick anisotropic composites by IR thermography; Thermosense XXVIII,Orlando, Kissimmee, April 17, 2006
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2006)
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2006)
Using the Unsupervised Mixture of Gaussian Models for Multispectral Non-destructive Evaluation of the Replica of Botticelli’s “The Birth of Venus”; Journal of Nondestructive Evaluation; Vol. 42, iss. 2
Julkaistu: (2023)
Julkaistu: (2023)
Dynamic thermal tomography: Recent improvements and applications; NDT & E International; Vol. 71
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2015)
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2015)
Infrared Thermography of The Process of Surface Forest Fire Spread and Transition to Crown Fire; Russian Journal of Nondestructive Testing; Vol. 61, iss. 10
Julkaistu: (2025)
Julkaistu: (2025)
Defining the Thermal Features of Sub-Surface Reinforcing Fibres in Non-Polluting Thermo–Acoustic Insulating Panels: A Numerical–Thermographic–Segmentation Approach; Infrastructures; Vol. 6, iss. 9
Julkaistu: (2021)
Julkaistu: (2021)
Thermal stresses applied on helicopter blades useful to retrieve defects by means of infrared thermography and speckle patterns; Thermal Science and Engineering Progress; Vol. 18
Julkaistu: (2020)
Julkaistu: (2020)
The Detection and Characterization of Defects in Metal/Non-metal Sandwich Structures by Thermal NDT, and a Comparison of Areal Heating and Scanned Linear Heating by Optical and Inductive Methods; Journal of Nondestructive Evaluation; Vol. 40, iss. 2
Julkaistu: (2021)
Julkaistu: (2021)
3D modeling of pulsed thermal NDT: Back to basic features and subtle phenomena; NDT & E International; Vol. 130
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2022)
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2022)
Thermal tomography characterization and pulse-phase thermography of impact damage in CFRP, or why end users are still reluctant about practical use of transient IR thermography; Thermosense XX, Orlando, April 13, 1998
Julkaistu: (1998)
Julkaistu: (1998)
Advanced modeling of thermal NDT problems: from buried landmines to defects in composites; Thermosense XXIV, Orlando, April 01, 2002
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2002)
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2002)
Samankaltaisia teoksia
-
Ermanno Grinzato’s contribution to infrared diagnostics and nondestructive testing: in memory of an outstanding researcher; Quantitative InfraRed Thermography Journal; Vol. 21, iss. 6 : (2012 - 2022) In memory of Dr. Ermanno Grinzato: a landmark in Quantitative InfraRed Thermography. Guest Editors: Paolo Bison, Xavier Maldague, Stefano Sfarra, Vladimir Vavilov
Tekijä: Vavilov V. P. Vladimir Platonovich
Julkaistu: (2024) -
Infrared Thermographic Testing of Steel Structures by Using the Phenomenon of Heat Release Caused by Deformation; Journal of Nondestructive Evaluation; Vol. 37, iss. 2
Tekijä: Moyseychik E. Eugeny
Julkaistu: (2018) -
Analyzing efficiency of optical and THz infrared thermography in nondestructive testing of GFRPs by using the Tanimoto criterion; NDT & E International; Vol. 117
Julkaistu: (2021) -
Methodology of processing experimental data in transient thermal nondestructive testing (NDT); Thermosense XVII, Orlando, FL, United States, April 17, 1995
Julkaistu: (1995) -
Crawling spot thermal nondestructive testing (NDT) for plaster inspection and comparison with dynamic thermography with extended heating; Thermosense XVII, Orlando, FL, United States, April 17, 1995
Julkaistu: (1995)