Analytical heat conduction model of particle reinforced tertiary composite materials based on complete spatial randomness of fillers in base matrix and its application in the development of cryosorption pump

被引:2
作者
Chatterjee, Aritra [1 ,2 ]
Verma, Ravi [1 ,2 ]
Shivaprakash, N. C. [2 ]
Kasthurirengan, S. [1 ]
Behera, Upendra [1 ]
机构
[1] Indian Inst Sci, Ctr Cryogen Technol, Bangalore 560012, Karnataka, India
[2] Indian Inst Sci, Dept Instrumentat & Appl Phys, Bangalore 560012, Karnataka, India
关键词
Particle reinforced composites; Thermal conductivity; Scanning electron microscopy; Bivariate Poisson distribution; Cryosorption pump; EFFECTIVE THERMAL-CONDUCTIVITY; POLYMER COMPOSITES; EPOXY COMPOSITES; ALUMINUM-ALLOYS; TEMPERATURE; INTERFACE; POWDER;
D O I
10.1016/j.cryogenics.2018.09.009
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this article, we propose an analytical heat conduction model within a stochastic frame work which estimates the thermal conductivity (TC) value of particle reinforced composite materials comprising of three parent elements i.e. a base matrix along with two different filler element particles randomly distributed in it. The spatial distribution of the filler particles in a sample of specific dimension has been estimated by applying bivariate Poisson distribution. This distribution is then used to arrive at the TC value of the composite. This concept has been applied to predict the TC of the tertiary composite comprised of epoxy as the base matrix, aluminium and zinc particles as filler elements. The TC values obtained from this model for different volume fractions of fillers were extensively compared with experimental results. The model is found to predict the results fairly well with less aberrations up to the total filler volume fraction of similar to 20%. The developed model for TC prediction has been used in the design of high efficiency cryosorption pump where the adhesive material used is Epoxy-Aluminium - Zinc composite.
引用
收藏
页码:116 / 126
页数:11
相关论文
共 43 条
[1]   Mathematical model for evaluating effective thermal conductivity of polymer composites with hybrid fillers [J].
Agrawal, Alok ;
Satapathy, Alok .
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2015, 89 :203-209
[2]  
Alok A, 2013, PROCEDIA ENG, V51, p573
[3]  
[Anonymous], 1954, TREATISE ELECT MAGNE
[4]   Electrical resistivity and thermal conductivity of pure aluminum and aluminum alloys up to and above the melting temperature [J].
Brandt, R. ;
Neuer, G. .
INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2007, 28 (05) :1429-1446
[6]   Estimation of principal thermal conductivities of layered honeycomb composites using ANN-GA based inverse technique [J].
Chanda, Samrajeet ;
Balaji, C. ;
Venkateshan, S. P. ;
Yenni, Govinda Rao .
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2017, 111 :423-436
[7]   Model and simulation predictions of the thermal conductivity of compact random nanoparticle composites [J].
Chuang, Pi-Yueh ;
Huang, Mei-Jiau .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2013, 61 :490-498
[8]  
Cremers C. J., 1990, THERMAL CONDUCTIVITY, V21
[9]   Experimental and numerical analyses on the thermal conductive behaviors of carbon fiber/epoxy plain woven composites [J].
Dong, Kai ;
Liu, Kui ;
Zhang, Qian ;
Gu, Bohong ;
Sun, Baozhong .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2016, 102 :501-517
[10]   Effective thermal conductivity of composite spheres in a continuous medium with contact resistance [J].
Felske, JD .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2004, 47 (14-16) :3453-3461