178
K. L. Meena and T. S. Srivatsan
8. Thermal conductivity of the microwave (MW) sintered sample was noticeably
higher than the conventional sintered (CS) sample due to rapid heating experienced by the MW sintered sample resulting in a smaller grain size and the
resultant improvement in thermal conductivity.
Acknowledgements The authors extend their heartfelt appreciation and a deep sense of gratitude
to the Department of Mechanical & Industrial Engineering and the Department of Metallurgical and
Materials Engineering at the Indian Institute of Technology, Roorkee, for providing the required
facilities that facilitated execution of this research investigation along with the required experiments.
This research did not receive any specific grant from funding agencies in the public, commercial,
or not-for-profit sectors.
References
1. Rittidech A, Somrit R, Tunkasiri T (2013) Ceram Int 39:S433–S436. https://doi.org//10.1016/
j.Ceramint.2012.10.108
2. Rainforth WM (2004) J Mater Sci 39:6705–6721. https://doi.org//10.1023/B:JMSC.000004
5601.49480.79
3. Smuk B, Szutkowska M, Walter J (2003) Mater Process Technol 133:195–198. https://doi.org//
10.1016/S0924-0136(02)00232-7
4. Cahoon HP, Christensen CJ (1956) J Am Ceram Soc 39:337–344. https://doi.org/10.1111/j.
1151-2916.1956.tb15599.x
5. Claussen N, Steep J (1976) J Am Ceram Soc 59:457–458. https://doi.org/10.1111/j.1151-2916.
1976.Tb09524.x
6. Wang J, Stevens R (1989) J Mater Sci 24:3421–3440
7. Zhang W, Chen H, Prentki R (2017) Comp Mater Sci 137:153–161. https://doi.org/10.1016/j.
commatsci.2017.05.021
8. Jeevan V, Rao CSP, Selvaraj N et al (2018) Mater Today Proc 5:254–260. https://doi.org/10.
1016/j.matpr.2017.11.080
9. Du J, Chong X, Jiang Y et al (2015) Int J Heat Mass Transf 89:872–883. https://doi.org/10.
1016/j.ijheatmasstransfer.2015.05.046
10. Dey AK, Chatterjee S, Biswas K (2017) J Mater Eng Perform 26(12):6107–116. https://doi.
org/10.1007/s11665-017-2851-z
11. Krishnamurthy N, Jain R (2018) Int J Eng Technol 7(3.4):73. https://doi.org/10.14419/ijet.
v7i3.4.16750
12. Megahed M, Attia MA, Abdelhameed M, El-Shafei AG (2017) Acta Metall Sinic (English
Letters) 30(8):781–90. https://doi.org/10.1007/s40195-017-0568-5
13. Kosmac T, Swain MV, Claussen N (1985) Materials science. Engineering 71:57–64
14. Szutkowska M (2004) J Mater Process Technol 153–154, 868–874. https://doi.org//10.1016/j.
jmatprotec.2004.04.406
15. Hannink RHJ, Kelly PM, Muddle BC (2004) J Am Ceram Soc 83:461–487. https://doi.org//
10.1111/j.1151-2916.2000.tb01221x
16. Garvie RC (1965) J Phys Chem 69:1238–1243
17. Kelly JR, Denry I (2008) Dental Mater 24:289–298. https://doi.org//10.1016/j.dental.2007.
05.005
18. Zhang F, Vanmeensel K, Inokoshi M, Batuk M, Hadermann J, Van Meerbeek B, Vleugels J
(2015) J Eur Ceram Soc 35(2):741–750. https://doi.org/10.1016/j.jeurceramsoc.2014.09.018
19. Xiu Z, Laeng J, Sun X et al (2008) J Alloy Compd 458:398–404. https://doi.org/10.1016/j.jal
lcom.2007.03.116
K. L. Meena and T. S. Srivatsan
8. Thermal conductivity of the microwave (MW) sintered sample was noticeably
higher than the conventional sintered (CS) sample due to rapid heating experienced by the MW sintered sample resulting in a smaller grain size and the
resultant improvement in thermal conductivity.
Acknowledgements The authors extend their heartfelt appreciation and a deep sense of gratitude
to the Department of Mechanical & Industrial Engineering and the Department of Metallurgical and
Materials Engineering at the Indian Institute of Technology, Roorkee, for providing the required
facilities that facilitated execution of this research investigation along with the required experiments.
This research did not receive any specific grant from funding agencies in the public, commercial,
or not-for-profit sectors.
References
1. Rittidech A, Somrit R, Tunkasiri T (2013) Ceram Int 39:S433–S436. https://doi.org//10.1016/
j.Ceramint.2012.10.108
2. Rainforth WM (2004) J Mater Sci 39:6705–6721. https://doi.org//10.1023/B:JMSC.000004
5601.49480.79
3. Smuk B, Szutkowska M, Walter J (2003) Mater Process Technol 133:195–198. https://doi.org//
10.1016/S0924-0136(02)00232-7
4. Cahoon HP, Christensen CJ (1956) J Am Ceram Soc 39:337–344. https://doi.org/10.1111/j.
1151-2916.1956.tb15599.x
5. Claussen N, Steep J (1976) J Am Ceram Soc 59:457–458. https://doi.org/10.1111/j.1151-2916.
1976.Tb09524.x
6. Wang J, Stevens R (1989) J Mater Sci 24:3421–3440
7. Zhang W, Chen H, Prentki R (2017) Comp Mater Sci 137:153–161. https://doi.org/10.1016/j.
commatsci.2017.05.021
8. Jeevan V, Rao CSP, Selvaraj N et al (2018) Mater Today Proc 5:254–260. https://doi.org/10.
1016/j.matpr.2017.11.080
9. Du J, Chong X, Jiang Y et al (2015) Int J Heat Mass Transf 89:872–883. https://doi.org/10.
1016/j.ijheatmasstransfer.2015.05.046
10. Dey AK, Chatterjee S, Biswas K (2017) J Mater Eng Perform 26(12):6107–116. https://doi.
org/10.1007/s11665-017-2851-z
11. Krishnamurthy N, Jain R (2018) Int J Eng Technol 7(3.4):73. https://doi.org/10.14419/ijet.
v7i3.4.16750
12. Megahed M, Attia MA, Abdelhameed M, El-Shafei AG (2017) Acta Metall Sinic (English
Letters) 30(8):781–90. https://doi.org/10.1007/s40195-017-0568-5
13. Kosmac T, Swain MV, Claussen N (1985) Materials science. Engineering 71:57–64
14. Szutkowska M (2004) J Mater Process Technol 153–154, 868–874. https://doi.org//10.1016/j.
jmatprotec.2004.04.406
15. Hannink RHJ, Kelly PM, Muddle BC (2004) J Am Ceram Soc 83:461–487. https://doi.org//
10.1111/j.1151-2916.2000.tb01221x
16. Garvie RC (1965) J Phys Chem 69:1238–1243
17. Kelly JR, Denry I (2008) Dental Mater 24:289–298. https://doi.org//10.1016/j.dental.2007.
05.005
18. Zhang F, Vanmeensel K, Inokoshi M, Batuk M, Hadermann J, Van Meerbeek B, Vleugels J
(2015) J Eur Ceram Soc 35(2):741–750. https://doi.org/10.1016/j.jeurceramsoc.2014.09.018
19. Xiu Z, Laeng J, Sun X et al (2008) J Alloy Compd 458:398–404. https://doi.org/10.1016/j.jal
lcom.2007.03.116
