| Citation: | ZHENG Ningyue, CHEN Xue, SUN Chuang, et al. Analysis on transient test of thermal conductivity of anisotropic materials based on laser heating[J]. Journal of Aerospace Power, 2024, 39(11):20220425 doi: 10.13224/j.cnki.jasp.20220425 |
Considering the transient process of laser heating sample, the heat transfer model of anisotropic material was established. The influences of heating time, spot diameter and other parameters on the temperature rise of typical materials under different laser power and sample thickness were discussed. The reasonable range of laser parameters and sample size was determined by analysis. Furthermore, the sensitivity and influencing factors of the transient test method were analyzed by combining the identification model of thermal conductivity inversion based on temperature rise. The results showed that the inversion errors of thermal conductivity, heating power and surface emissivity were less than 2% without considering the temperature test error in the experiment. In the actual test process, the initial temperature field uniformity and emissivity had a greater impact. When the test temperature was 800 K and the error was 1%, the inversion accuracy of thermal conductivity was high ( less than 2% ) and the deviation of surface emissivity was large. When the emissivity of material was obtained and the non-uniformity of initial temperature field was 0.13%, the deviations of axial and radial thermal conductivity can be reduced obviously by simultaneous inversion of thermal conductivity and correction coefficient of initial temperature field.
| [1] |
GUPTA R K,RAMKUMAR P. Titanium aluminides for metallic thermal protection system of reusable space transportation vehicle: a review[J]. Frontiers in Aerospace Engineering,2015,4(1): 14-19. doi: 10.12783/fae.2015.0401.02
|
| [2] |
ZHAO Yan,MENG Tian,JING Chengjun,et al. Experimental and numerical investigation on thermal performance of PV-driven aluminium honeycomb solar air collector[J]. Solar Energy,2020,204: 294-306. doi: 10.1016/j.solener.2020.04.047
|
| [3] |
PATEL V K. An efficient optimization and comparative analysis of ammonia and methanol heat pipe for satellite application[J]. Energy Conversion and Management,2018,165: 382-395. doi: 10.1016/j.enconman.2018.03.076
|
| [4] |
左可军,闻洁. 预测平纹编织C/SiC复合材料等效导热系数的三维纤维随机模型[J]. 航空动力学报,2018,33(6): 1326-1335. ZUO Kejun,WEN Jie. Three-dimensional fiber random model to predict effective thermal conductivity of plain braided C/SiC composites[J]. Journal of Aerospace Power,2018,33(6): 1326-1335. (in Chinese
ZUO Kejun, WEN Jie. Three-dimensional fiber random model to predict effective thermal conductivity of plain braided C/SiC composites[J]. Journal of Aerospace Power, 2018, 33(6): 1326-1335. (in Chinese)
|
| [5] |
江华,毛军逵,屠泽灿,等. 基于微结构识别的单向复合材料导热系数预估[J]. 航空动力学报,2016,31(11): 2641-2651. JIANG Hua,MAO Junkui,TU Zecan,et al. Thermal conductivity prediction of unidirectional composites based on microstructure identification[J]. Journal of Aerospace Power,2016,31(11): 2641-2651. (in Chinese
JIANG Hua, MAO Junkui, TU Zecan, et al. Thermal conductivity prediction of unidirectional composites based on microstructure identification[J]. Journal of Aerospace Power, 2016, 31(11): 2641-2651. (in Chinese)
|
| [6] |
刘华. 纳米复合隔热材料高温耦合传热实验测量及物性参数辨识[D]. 哈尔滨: 哈尔滨工业大学,2017. LIU Hua. Experiment on coupled heat transfer and thermal property identification of nanocomposite insulation at high temperature[D]. Harbin: Harbin Institute of Technology,2017. (in Chinese
LIU Hua. Experiment on coupled heat transfer and thermal property identification of nanocomposite insulation at high temperature[D]. Harbin: Harbin Institute of Technology, 2017. (in Chinese)
|
| [7] |
张涛,卢玫,陶亮,等. 基于粒子群优化算法的寻源导热反问题研究[J]. 上海理工大学学报,2013,35(4): 377-381. ZHANG Tao,LU Mei,TAO Liang,et al. Seeking heat source in inverse heat conduction problem by using particle swarm optimization[J]. Journal of University of Shanghai for Science and Technology,2013,35(4): 377-381. (in Chinese doi: 10.3969/j.issn.1007-6735.2013.04.014
ZHANG Tao, LU Mei, TAO Liang, et al. Seeking heat source in inverse heat conduction problem by using particle swarm optimization[J]. Journal of University of Shanghai for Science and Technology, 2013, 35(4): 377-381. (in Chinese) doi: 10.3969/j.issn.1007-6735.2013.04.014
|
| [8] |
文斌,吴青柏,蒋观利,等. 模拟退火优化算法的冻土热传导参数反分析[J]. 岩土力学,2013,34(8): 2401-2408. WEN Bin,WU Qingbai,JIANG Guanli,et al. Back analysis of frozen soil thermal properties based on simulated annealing optimization algorithm[J]. Rock and Soil Mechanics,2013,34(8): 2401-2408. (in Chinese
WEN Bin, WU Qingbai, JIANG Guanli, et al. Back analysis of frozen soil thermal properties based on simulated annealing optimization algorithm[J]. Rock and Soil Mechanics, 2013, 34(8): 2401-2408. (in Chinese)
|
| [9] |
ZHANG Hu,WU Kefan,XIAO Guangming,et al. Experimental study of the anisotropic thermal conductivity of 2D carbon-fiber/epoxy woven composites[J]. Composite Structures,2021,267: 113870. doi: 10.1016/j.compstruct.2021.113870
|
| [10] |
JANNOT Y,DEGIOVANNI A,SCHICK V,et al. Apparent thermal conductivity measurement of anisotropic insulating materials at high temperature by the parallel hot-wire method[J]. International Journal of Thermal Sciences,2021,160: 106672. doi: 10.1016/j.ijthermalsci.2020.106672
|
| [11] |
KUSIAK A,MARTAN J,BATTAGLIA J L,et al. Using pulsed and modulated photothermal radiometry to measure the thermal conductivity of thin films[J]. Thermochimica Acta,2013,556: 1-5. doi: 10.1016/j.tca.2013.01.010
|
| [12] |
ZHU Jie,WU Xuewang,LATTERY D M,et al. The ultrafast laser pump-probe technique for thermal characterization of materials with micro/nanostructures[J]. Nanoscale and Microscale Thermophysical Engineering,2017,21(3): 177-198. doi: 10.1080/15567265.2017.1313343
|
| [13] |
TKADLETZ M,LECHNER A,SCHALK N,et al. Reactively sputtered TiN/SiO2 multilayer coatings with designed anisotropic thermal conductivity–From theoretical conceptualization to experimental validation[J]. Surface and Coatings Technology,2020,393: 125763. doi: 10.1016/j.surfcoat.2020.125763
|
| [14] |
KIM G,KIM D,KANG S,et al. Research on measuring thermal conductivity of quartz and sapphire glass using rear-side photothermal deflection method[J]. Applied Sciences,2021,11(4): 1535. doi: 10.3390/app11041535
|
| [15] |
JEON P S,KIM J H,KIM H J,et al. Thermal conductivity measurement of anisotropic material using photothermal deflection method[J]. Thermochimica Acta,2008,477(1/2): 32-37.
|
| [16] |
HEADLEY A,HILEMAN M,ROBBINS A,et al. A thermal conductivity model for microporous insulations in gaseous environments[J]. International Journal of Heat and Mass Transfer,2019,135: 1278-1285. doi: 10.1016/j.ijheatmasstransfer.2019.02.073
|
| [17] |
ZHANG Hu,LI Yueming,TAO Wenquan. Theoretical accuracy of anisotropic thermal conductivity determined by transient plane source method[J]. International Journal of Heat and Mass Transfer,2017,108: 1634-1644. doi: 10.1016/j.ijheatmasstransfer.2017.01.025
|
| [18] |
RODRIGO O,BERTRAND G. Radial thermal conductivity of a PAN type carbon fiber using the 3 omega method[J]. International Journal of Thermal Sciences,2022,172: 107321. doi: 10.1016/j.ijthermalsci.2021.107321
|
| [19] |
ROTTMANN M,BEIKIRCHER T,EBERT H P. Thermal conductivity of evacuated expanded perlite measured with guarded-hot-plate and transient-hot-wire method at temperatures between 295 K and 1 073 K[J]. International Journal of Thermal Sciences,2020,152: 106338. doi: 10.1016/j.ijthermalsci.2020.106338
|
| [20] |
ZHENG Qiye,KAUR S,DAMES C,et al. Analysis and improvement of the hot disk transient plane source method for low thermal conductivity materials[J]. International Journal of Heat and Mass Transfer,2020,151: 119331. doi: 10.1016/j.ijheatmasstransfer.2020.119331
|
| [21] |
ZHAO Wenli,YANG Yi,BAO Zewei,et al. Methods for measuring the effective thermal conductivity of metal hydride beds: a review[J]. International Journal of Hydrogen Energy,2020,45(11): 6680-6700. doi: 10.1016/j.ijhydene.2019.12.185
|
| [22] |
ZHANG C,BI Kedong,WANG Jianli,et al. Measurement of thermal boundary conductance between metal and dielectric materials using femtosecond laser transient thermoreflectance technique[J]. Science China Technological Sciences,2012,55(4): 1044-1049. doi: 10.1007/s11431-012-4754-4
|
| [23] |
HOPKINS P E,SERRANO J R,PHINNEY L M. Comparison of thermal conductivity and thermal boundary conductance sensitivities in continuous-wave and ultrashort-pulsed thermoreflectance analyses[J]. International Journal of Thermophysics,2010,31(11): 2380-2393.
|
| [24] |
ZHU Jie,TANG Dawei,WANG Wei,et al. Ultrafast thermoreflectance techniques for measuring thermal conductivity and interface thermal conductance of thin films[J]. Journal of Applied Physics,2010,108(9): 371-379.
|
| [25] |
TANG Lei,DAMES C. Anisotropic thermal conductivity tensor measurements using beam-offset frequency domain thermoreflectance (BO-FDTR) for materials lacking in-plane symmetry[J]. International Journal of Heat and Mass Transfer,2021,164: 120600. doi: 10.1016/j.ijheatmasstransfer.2020.120600
|
| [26] |
CHANDA S,BALAJI C,VENKATESHAN S P,et al. Estimation of principal thermal conductivities of layered honeycomb composites using ANN–GA based inverse technique[J]. International Journal of Thermal Sciences,2017,111: 423-436. doi: 10.1016/j.ijthermalsci.2016.09.011
|
| [27] |
侯亚东,单勇,李江宁,等. 各向异性复合材料平板气膜冷却特性实验和数值研究[J]. 航空动力学报,2017,32(10): 2384-2393. HOU Yadong,SHAN Yong,LI Jiangning,et al. Experimental and numerical studies on the film cooling characteristics of anisotropic composite plates[J]. Journal of Aerospace Power,2017,32(10): 2384-2393. (in Chinese
HOU Yadong, SHAN Yong, LI Jiangning, et al. Experimental and numerical studies on the film cooling characteristics of anisotropic composite plates[J]. Journal of Aerospace Power, 2017, 32(10): 2384-2393. (in Chinese)
|
| [28] |
ADAMCZYK W P,PAWLAK S,OSTROWSKI Z. Determination of thermal conductivity of CFRP composite materials using unconventional laser flash technique[J]. Measurement,2018,124: 147-155. doi: 10.1016/j.measurement.2018.04.022
|
| [29] |
ADAMCZYK W P,OSTROWSKI Z,RYFA A. Development of a non-destructive technique for measuring thermal conductivity of material with small anisotropy based on application of the reduced order technique[J]. Measurement,2020,165: 108078. doi: 10.1016/j.measurement.2020.108078
|
| [30] |
SANS M,SCHICK V,PARENT G,et al. Experimental characterization of the coupled conductive and radiative heat transfer in ceramic foams with a flash method at high temperature[J]. International Journal of Heat and Mass Transfer,2020,148: 119077. doi: 10.1016/j.ijheatmasstransfer.2019.119077
|
| [31] |
ERCHIQUI F,ANNASABI Z. 3D hybrid finite element enthalpy for anisotropic thermal conduction analysis[J]. International Journal of Heat and Mass Transfer,2019,136: 1250-1264. doi: 10.1016/j.ijheatmasstransfer.2019.02.096
|
| [32] |
廖云丹. 纤维增强SiO2气凝胶隔热复合材料的可控制备及性能优化研究[D]. 广州: 广州大学,2012. LIAO Yundan. Controllable preparation and performance optimization of fiber-reinforced SiO2Aerogel composites for thermal insulation[D]. Guangzhou: Guangzhou University,2012. (in Chinese
LIAO Yundan. Controllable preparation and performance optimization of fiber-reinforced SiO2Aerogel composites for thermal insulation[D]. Guangzhou: Guangzhou University, 2012. (in Chinese)
|
| [33] |
BREUER S,SCHWOTZER M,SPEZIALE S,et al. Thermoelastic properties of synthetic single crystal portlandite Ca(OH)2 - Temperature-dependent thermal diffusivity with derived thermal conductivity and elastic constants at ambient conditions[J]. Cement and Concrete Research,2020,137: 106199. doi: 10.1016/j.cemconres.2020.106199
|
| [34] |
徐中,殷复振,崔健超. 陶瓷热障涂层隔热效果以及导热系数的研究[C]//第六届全国表面工程学术会议暨首届青年表面工程学术论坛. 甘肃 兰州: 青年表面工程学术论坛,2006: 241-244. XU Zhong,YIN Fuzhen,CUI Jianchao. Study on thermal insulation effect and thermal conductivity of ceramic thermal barrier coatings[C]//The 6th National Conference on Surface Engineering and the 1st Youth Academic Forum on Surface Engineering. Lanzhou Gansu: Youth Surface Engineering Academic Forum,2006: 241-244.
XU Zhong, YIN Fuzhen, CUI Jianchao. Study on thermal insulation effect and thermal conductivity of ceramic thermal barrier coatings[C]//The 6th National Conference on Surface Engineering and the 1st Youth Academic Forum on Surface Engineering. Lanzhou Gansu: Youth Surface Engineering Academic Forum, 2006: 241-244.
|
| [35] |
毋克凡,Nuanyai Pontarit,张虎,等. 树脂基碳纤维复合材料各向异性导热系数研究[J]. 工程热物理学报,2021,42(5): 1282-1287. WU Kefan,NUANYAI Pontarit,ZHANG Hu,et al. Anisotropic thermal conductivity of carbon-fiber/epoxy composites[J]. Journal of Engineering Thermophysics,2021,42(5): 1282-1287. (in Chinese
WU Kefan, NUANYAI Pontarit, ZHANG Hu, et al. Anisotropic thermal conductivity of carbon-fiber/epoxy composites[J]. Journal of Engineering Thermophysics, 2021, 42(5): 1282-1287. (in Chinese)
|