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INVESTIGATION OF THERMO‐PHYSICAL PROPERTIES OF DIATOMITE/WATER NANOFLUID

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Abstract (2. Language): 
In this study, the thermo physical properties of the nanofluid obtained with prepared solution by adding as basic fluid 1.3% the diatomite nanoparticles into water were determined. Many researchers are working to improve the performance of heat transfer fluids. One of the methods used, if we want to increase the overall thermal conductivity of the fluid, the high thermal conductive materials such as metal oxides, metals and carbon should be added to heat transfer fluids as nano‐sized particles. In this study, specific heat capacity, thermal conductivity and viscosity of nanofluid obtained with diatomite nanoparticles in order to increase the fluid's thermal performance and not found in the literature were investigated experimentally.
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REFERENCES

References: 

[1] A. Ghadimi, R. Saidur, H.S.C. Metselaar, A review of nanofluid stability properties and
characterization in stationary conditions, International Journal of Heat and Mass Transfer
54 (2011) 4051–4068.
[2] K.H. Solangi, S.N. Kazi , M.R. Luhur , A. Badarudin , A. Amiri , Rad Sadri, M.N.M. Zubir,
Samira Gharehkhani, K.H. Teng, A comprehensive review of thermo‐physical properties and
convective heat transfer to nanofluids, Energy 89 (2015) 1065‐1086.
[3] R. Saidura, K.Y. Leong, H.A. Mohammad, A review on applications and challenges of
nanofluids, Renewable and Sustainable Energy Reviews 15 (2011) 1646–1668.
[4] Yanjiao Li, Jing'en Zhou, Simon Tung, Eric Schneider, Shengqi Xi, A review on development
of nanofluid preparation and characterization, Powder Technology 196 (2009) 89–101.
[5] Y. Xuan, Q. Li, Investigation on convective heat transfer and flow features of nanofluids, J.
Heat Transfer 125 (2003) 151–155.
[6] Zhen‐Hua Liu, Yuan‐Yang Li, A new frontier of nanofluid research‐Application of nanofluids
in heat pipes, International Journal of Heat and Mass Transfer 55 (2012) 6786–97.
[7] A. Akbarinia, M. Abdolzadeh , R. Laur, Critical investigation of heat transfer enhancement
using nanofluids in microchannels with slip and non‐slip flow regimes, Applied Thermal
Engineering 31 (2011) 556‐565.
[8] Satya V. Ravikumar, Jay M. Jha, Ishita Sarkar, Soumya S. Mohapatra , Surjya K. Pal, Sudipto
Chakraborty, Achievement of ultrafast cooling rate in a hot steel plate by air‐atomized
spray with different surfactant additives, Experimental Thermal and Fluid Science 50 (2013)
79–89.
18 Sinan Öztaş‐Uğur Karakaya‐Ümit İskender 2/1 (2016) 1‐22
Gazi Journal of Engineering Sciences
[9] Omid Mahian , Ali Kianifar , Soteris A. Kalogirou , Ioan Pop, Somchai Wongwises, A review
of the applications of nanofluids in solar energy, International Journal of Heat and Mass
Transfer 57 (2013) 582–594.
[10] P. Gunnasegaran, M.Z. Abdullah , N.H. Shuaib, Influence of nanofluid on heat transfer in a
loop heat pipe, International Communications in Heat and Mass Transfer 47 (2013) 82–91.
[11] Xiande Fang, Run Wang, Weiwei Chen, Helei Zhang, Chunxiang Ma, A review of flow boiling
heat transfer of nanofluids, Applied Thermal Engineering 91 (2015) 1003‐1017.
[12] Mohammad Hemmat Esfe, Seyfolah Saedodin, Somchai Wongwises, Davood Toghraie, An
experimental study on the effect of diameter on thermal conductivity and dynamic
viscosity of Fe/water nanofluids, J Therm Anal Calorim (2015) 119:1817–1824.
[13] Weerapun Duangthongsuk, Somchai Wongwises, An experimental study on the thermal
and hydraulic performances of nanofluids flow in a miniature circular pin fin heat sink,
Experimental Thermal and Fluid Science 66 (2015) 28–35.
[14] Mohammad Mehrali, Emad Sadeghinezhad , Marc A. Rosen, Amir Reza Akhiani , Sara Tahan
Latibari, Mehdi Mehrali , Hendrik Simon Cornelis Metselaar, Heat transfer and entropy
generation for laminar forced convection flow of graphene nanoplatelets nanofluids in a
horizontal tube, International Communications in Heat and Mass Transfer 66 (2015) 23–31.
[15] M.A. Akhavan‐Behabadi, F. Hekmatipour, S.M. Mirhabibi , B. Sajadi, Experimental
investigation of thermal–rheological properties and heat transfer behavior of the heat
transfer oil–copper oxide (HTO–CuO) nanofluid in smooth tubes, Experimental Thermal
and Fluid Science 68 (2015) 681–688.
[16] Haoran Li, Li Wang, Yurong He*, Yanwei Hu, Jiaqi Zhu, Baocheng Jiang, Experimental
investigation of thermal conductivity and viscosity of ethylene glycol based ZnO nanofluids,
Applied Thermal Engineering 88 (2015) 363‐368.
[17] Maryam Shafahi, Vincenzo Bianco, Kambiz Vafai, Oronzio Manca, An investigation of the
thermal performance of cylindrical heat pipes using nanofluids, International Journal of
Heat and Mass Transfer 53 (2010) 376–383.
[18] Tooraj Yousefi, Farzad Veisy, Ehsan Shojaeizadeh, Sirus Zinadini, An experimental
investigation on the effect of MWCNT‐H 2 O nanofluid on the efficiency of flat‐plate solar
collectors, Experimental Thermal and Fluid Science 39 (2012) 207–212.
[19] Mostafa Keshavarz Moraveji, Sina Razvarz, Experimental investigation of aluminum oxide
nanofluid on heat pipe thermal performance, International Communications in Heat and
Mass Transfer 39 (2012) 1444–1448.
[20] Rohit S. Khedkar , Shriram S. Sonawane*,Kailas L Wasewar, Water to Nanofluids heat
transfer in concentric tube heat exchanger:Experimental study, Procedia Engineering 51
(2013) 318 – 323.
[21] Douglas Hector Fontes, Gherhardt Ribatski , Enio Pedone Bandarra Filho, Experimental
evaluation of thermal conductivity, viscosity and breakdown voltage AC of nanofluids of
carbon nanotubes and diamond in transformer oil, Diamond & Related Materials 58 (2015)
115–121.
[22] Mohammad Hemmat Esfe, Ali Akbar Abbasian Arani, Mohammad Rezaie, Wei‐Mon Yan,
Arash Karimipour, Experimental determination of thermal conductivity and dynamic
Sinan Öztaş‐Uğur Karakaya‐Ümit İskender 2/1 (2016) 1‐20 19
Gazi Mühendislik Bilimleri Dergisi
viscosity of Ag–MgO/water hybrid nanofluid, International Communications in Heat and
Mass Transfer 66 (2015) 189–195.
[23] Chahrazed Abdellahoum , Amina Mataoui, Hakan F. Oztop, Comparison of viscosity
variation formulations for turbulent flow of Al2O3–water nanofluid over a heated cavity in a
duct, Advanced Powder Technology 26 (2015) 1210–1218.
[24] K.H. Solangi, S.N. Kazi, M.R. Luhur , A. Badarudin, A. Amiri, Rad Sadri, M.N.M. Zubir, Samira
Gharehkhani, K.H. Teng, A comprehensive review of thermo‐physical properties and
convective heat transfer to nanofluids, Energy 89 (2015) 1065‐1086.
[25] Zoubida Haddad, Chérifa Abid, Hakan F. Oztop, Amina Mataoui, A review on how the
researchers prepare their nanofluids, International Journal of Thermal Sciences 76 (2014)
168‐189.
[26] John Philip , P.D. Shima, Thermal properties of nanofluids, Advances in Colloid and
Interface Science 183–184 (2012) 30–45.
[27] Adi T. Utomo, Heiko Poth, Phillip T. Robbins, Andrzej W. Pacek, Experimental and
theoretical studies of thermal conductivity, viscosity and heat transfer coefficient of titania
and alumina nanofluids, International Journal of Heat and Mass Transfer 55 (2012) 7772–
7781.
[28] P. C. Mukesh Kumar, K. Palanisamy, J. Kumar, R. Tamilarasa, S. Sendhilnathan, CFD analysis
of heat transfer and pressure drop in helically coiled heat exchangers using Al2O3/water
nanofluid, Journal of Mechanical Science and Technology 29 (2) (2015) 697‐705.
[29] Ramin Hajian, Mohammad Layeghi, Kamal Abbaspour Sani, Experimental study of
nanofluid effects on the thermal performance with response time of heat pipe, Energy
Conversion and Management 56 (2012) 63–68.
[30] Yanjun Li, José Fernández‐Seara b , Kai Du, Ángel Álvarez Pardiñas, Luis Lugo Latas, Weixue
Jiang, Experimental investigation on heat transfer and pressure drop of ZnO/Ethylene
Glycol‐Water nanofluids in transition flow, Applied Thermal Engineering,
http://dx.doi.org/doi: 10.1016/j.applthermaleng.2015.09.020.
[31] S.J. Chung, J.P. Leonard, I. Nettleship, J.K. Lee, Y. Soong, D.V. Martello, M.K. Chyu,
Characterization of ZnO nanoparticle suspension in water: effectiveness of ultrasonic
dispersion, Powder Technol. 194 (2009) 75‐80.
[32] Yi‐Hsuan Hung, Tun‐Ping Teng, Bo‐Gu Lin, Evaluation of the thermal performance of a heat
pipe using alumina nanofluids, Experimental Thermal and Fluid Science 44 (2013) 504–511.

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