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The study on ultrasonic velocities of CoxFe3−x O4 nanoferrofluid prepared by co-precipitation method

https://doi.org/10.17586/2220-8054-2016-7-3-558-560

Abstract

Nanoferrofluids of CoxFe3−xO4 were prepared by the chemical co-precipitation method by varying the value of x (0.2, 0.6 and 1.0 M). The structural and surface morphological investigations were done by X-ray diffraction (XRD) and SEM techniques respectively. The particle size calculated from the data of XRD, (3 1 1) plane revealed that the particle size increases with higher cobalt content and are in the range of 5 – 16 nm. The ultrasonic velocity of the aqueous carrier fluid and Cobalt ferrofluids was measured by varying the temperature from 30 – 70 ◦C. The ultrasonic velocities of magnetic nanoferrofluids decrease with concentration in the absence of magnetic field. The higher value for the nanoferrofluid’s velocity compared to that of the carrier liquid in the absence of a magnetic field shows the influence of dispersed particles on the velocity of ultrasonic propagation.

About the Authors

P. Chithralekha
G. Venkataswamy Naidu College
Russian Federation

Department of Physics

Kovilpatti–628 502



C. Murugeswari
Thiagarajar College
Russian Federation

Department of Physics

Madurai–625 009



K. Ramachandran
School of Physics, Madurai Kamaraj University
Russian Federation

Madurai–625 021



R. Srinivasan
Thiagarajar College
Russian Federation

Department of Physics

Madurai–625 009



References

1. Rosensweig R.E. Ferrohydrodynamics. Cambridge University Press, 1985.

2. Rosensweig R.E., Nestor J.W. and Timmins R.S. Rheology of transformer oil based ferrofluid. In Mater. Assoc. Direct Energy Convers. Proc. Symp. Chem. Eng. Ser. 1965, 5, P. 104–106.

3. Papell S.S. Low viscosity magnetic fluid obtained by the colloidal suspension of magnetic particles. In U.S. Patent, 1965, 3, P. 215–218.

4. Thomas J.R., J. Appl. Phys., 1966, P. 372014.

5. Hess P.H. and Parker P.H. J. Appl. Polym. Sci., 1966, P. 101915.

6. Rosensweig R.E. J. Sci. American, 1982, 247(4), P. 136-138.

7. M. Motozawa, T. Sawada. J. Magn. Mater., 2005, 289, P. 66–68.

8. CheolGi Kim, Chong-Oh Kim, I. Dumitru, N. Lupu, and H. Chiriac sensor letters, 2007, 5, P. 1–3.

9. Arunas Jagminas, Ke¸stutis Mazˇeika, Rokas Kondrotas, Marija Kurtinaitien, Aldona Jagminiene˙ and Agne˙ Mikalauskaite˙. Int. J. Appl. Electromagnet. Mech, 2014, 6.

10. Ruo-Yu Hong, Jian-Hua Li, Shi-Zhong Zhang, Hong-Zhong Li, Ying Zheng, Jian-min Ding, Dong-Guang Wei. J. App. Sur. Sci., 2009, 255, P. 3485–3486.

11. Meaz T.M., Amer M.A. and El-Nimr M.K. Egypt. J. Solids, 2008, 31(1).


Review

For citations:


Chithralekha P., Murugeswari C., Ramachandran K., Srinivasan R. The study on ultrasonic velocities of CoxFe3−x O4 nanoferrofluid prepared by co-precipitation method. Nanosystems: Physics, Chemistry, Mathematics. 2016;7(3):558-560. https://doi.org/10.17586/2220-8054-2016-7-3-558-560

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ISSN 2220-8054 (Print)
ISSN 2305-7971 (Online)