Fe3O4, Au nanoparticles influence on bio-nanofluid thermal conductivity

被引:1
作者
Ali, Ali J. [1 ]
Eddin, Bahaa E. [2 ]
Al-musawi, Sanaa T. Mousa [3 ]
Majdi, Hasan Shakir [4 ]
Chaichan, Miqdam T. [5 ]
机构
[1] Univ Technol Baghdad, Dept Biomed Engn, Baghdad 10066, Iraq
[2] Tambov State Tech Univ, Technol & Methods Nano Prod Mfg, Tambov 392036, Russia
[3] Univ Baghdad, Dept Reconstruct & Projects, Baghdad 10071, Iraq
[4] Al Mustaqbal Univ Coll, Dept Chem Engn & Petr Ind, Babylon 51001, Iraq
[5] Univ Technol Baghdad, Energy & Renewable Energies Technol Ctr, Baghdad 10066, Iraq
来源
JOURNAL OF THERMAL ENGINEERING | 2025年 / 11卷 / 01期
关键词
Bio-nanofluid; Glioblastoma; Hematocrit; Hyperthermia; Nanoparticles; Thermal Conductivity; MAGNETIC NANOPARTICLES; CARBON NANOTUBES; HYPERTHERMIA;
D O I
10.14744/thermal.0000910
中图分类号
O414.1 [热力学];
学科分类号
摘要
Hyperthermia therapy is one of the new technologies emerging from nanotechnology. This study examines the relationship between bio-nanofluid thermal conductivity and hematocrit differences. In the treatment of cancer, researchers have used several types of nanoparticles. The bio-nanofluid used in this study was created by adding two types of nanoparticles (Fe3O4 and Au) to blood for the first time. Based on the results, thermal conductivity was found to be significantly affected by the shape of nanoparticles, and the proposed thermal conductivity models agreed with the literature. According to the nanomaterial and the age and gender of the participants, as well as the nanoparticles' shape, analysis of the study results is presented. For each group of men, women, and children, the effective thermal conductivity values of Plasma-Au nanoparticles and plasma-Fe3O4 nanoparticle fluids changed with the thickness of the interlayer. In comparison to iron nanoparticles (magnetite oxide Fe3O4), gold nanoparticles improved the thermal conductivity more. Nano-layer thickness increases with radius at the same time as thermal conductivity increases. A bio-nanofluid composed of plasma, nano-Fe3O4, or nano-Au was calculated by Yang's model. In addition, the thermal conductivity of nano-biofluid, consisting of plasma nano-Fe3O4, nano-Au, and red blood cells, was calculated using the Maxwell model. As a result of varying hematocrit values, nano-biofluids improve at a different rate of thermal conductivity. Depending on the gender and age of the patient, the rate of improvement varies. Au nanoparticles (5 nm) increased the bio-nanofluid thermal conductivity for children by 0.623% and 0.306% more than that for men and women, respectively, at nano-layer thickness (t=1 nm). Using Fe3O4 NPs of 25 nm diameter, the children thermal conductivity of nano-biofluid increased by 0.58% and 0.268% higher than men and women, respectively, at nano-layer thickness (t= 5 nm).
引用
收藏
页码:159 / 169
页数:11
相关论文
共 49 条
[1]   Nanoparticle applications as beneficial oil and gas drilling fluid additives: A review [J].
Al-Shargabi, Mohammed ;
Davoodi, Shadfar ;
Wood, David A. ;
Al-Musai, Ameen ;
Rukavishnikov, Valeriy S. ;
Minaev, Konstantin M. .
JOURNAL OF MOLECULAR LIQUIDS, 2022, 352
[2]  
Ali A. J., 2019, IOP Conference Series: Materials Science and Engineering, V693, DOI 10.1088/1757-899X/693/1/012001
[3]   Effect of nanomaterial addition on the thermophysical properties of Iraqi paraffin wax [J].
Ali, Ahmed H. ;
Ibrahim, Sarmad I. ;
Jawad, Qusay A. ;
Jawad, Raid S. ;
Chaichan, Miqdam T. .
CASE STUDIES IN THERMAL ENGINEERING, 2019, 15
[4]   REVIEW ENHANCEMENT OF THERMAL CONDUCTIVITY AND HEAT TRANSFER USING CARBON NANOTUBE FOR NANOFLUIDS AND IONANOFLUIDS [J].
Ali, Ail J. ;
Tugolukov, E. N. .
JOURNAL OF THERMAL ENGINEERING, 2021, 7 (01) :66-90
[5]  
Bray F, 2018, CA-CANCER J CLIN, V68, P394, DOI [10.3322/caac.21492, 10.3322/caac.21609]
[6]   The Somatic Genomic Landscape of Glioblastoma [J].
Brennan, Cameron W. ;
Verhaak, Roel G. W. ;
McKenna, Aaron ;
Campos, Benito ;
Noushmehr, Houtan ;
Salama, Sofie R. ;
Zheng, Siyuan ;
Chakravarty, Debyani ;
Sanborn, J. Zachary ;
Berman, Samuel H. ;
Beroukhim, Rameen ;
Bernard, Brady ;
Wu, Chang-Jiun ;
Genovese, Giannicola ;
Shmulevich, Ilya ;
Barnholtz-Sloan, Jill ;
Zou, Lihua ;
Vegesna, Rahulsimham ;
Shukla, Sachet A. ;
Ciriello, Giovanni ;
Yung, W. K. ;
Zhang, Wei ;
Sougnez, Carrie ;
Mikkelsen, Tom ;
Aldape, Kenneth ;
Bigner, Darell D. ;
Van Meir, Erwin G. ;
Prados, Michael ;
Sloan, Andrew ;
Black, Keith L. ;
Eschbacher, Jennifer ;
Finocchiaro, Gaetano ;
Friedman, William ;
Andrews, David W. ;
Guha, Abhijit ;
Iacocca, Mary ;
O'Neill, Brian P. ;
Foltz, Greg ;
Myers, Jerome ;
Weisenberger, Daniel J. ;
Penny, Robert ;
Kucherlapati, Raju ;
Perou, Charles M. ;
Hayes, D. Neil ;
Gibbs, Richard ;
Marra, Marco ;
Mills, Gordon B. ;
Lander, Eric ;
Spellman, Paul ;
Wilson, Richard .
CELL, 2013, 155 (02) :462-477
[7]   In vitro cytotoxicity of Fe-Cr-Nb-B magnetic nanoparticles under high frequency electromagnetic field [J].
Chiriac, Horia ;
Petreus, Tudor ;
Carasevici, Eugen ;
Labusca, Luminita ;
Herea, Dumitru-Daniel ;
Danceanu, Camelia ;
Lupu, Nicoleta .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2015, 380 :13-19
[8]   Combustion analysis and performance characteristics of compression ignition engines with diesel fuel supplemented with nano-TiO2 and nano-Al2O3 [J].
Dhahad, Hayder A. ;
Ali, Sinan A. ;
Chaichan, Miqdam T. .
CASE STUDIES IN THERMAL ENGINEERING, 2020, 20
[9]   A short review on hybrid nanofluids in machining processes [J].
Dubey, Vineet ;
Sharma, Anuj Kumar .
ADVANCES IN MATERIALS AND PROCESSING TECHNOLOGIES, 2023, 9 (01) :138-151
[10]  
Eddin BE, 2021, Therm Sci Eng Prog, V27