[1]
PT. PLN (Persero), Protap Deklarasi Kondisi Pembangkit Dan Indeks Kinerja Pembangkit,. (2007).
Google Scholar
[2]
L.Ceschini, A.Marconi, C.Martini, A.Morri, A.DiSchino, Tensile and impact behaviour of a microalloyed medium carbon steel : Effect of the cooling condition and corresponding microstructure, Material and design (2013), Vol. 45, pp.171-178.
DOI: 10.1016/j.matdes.2012.08.063
Google Scholar
[3]
D.Q. Bai, S.Yue, T.M. Maccagno and J.J. Jonas, Effect of Deformation and cooling rate on the microstructure of low carbon Nb-B Steels, ISIJ Internasional (1998), Vol.38, No. 4, pp.371-379.
DOI: 10.2355/isijinternational.38.371
Google Scholar
[4]
Jenan Mohammed Nagie, The Effect of cooling rate on mechanical properties of carbon steel (St 35), Engineering Sciences (2014), Vol.07, No. 01, pp.109-118.
DOI: 10.24237/djes.2014.07108
Google Scholar
[5]
L.Storojeva, D.Ponge, R.Kaspar, D.Raabe, Development of microstructure and texture of medium carbon steel during heavy warm deformation, Acta Materialia (2004), Vol. 52, pp.2209-2220.
DOI: 10.1016/j.actamat.2004.01.024
Google Scholar
[6]
S.Serajzadeh, Modelling of temperatur history and phase transformation during cooling of steel, materials processing technology (2004), pp.311-317.
DOI: 10.1016/j.jmatprotec.2003.11.010
Google Scholar
[7]
J. Van den Bosch, D. Sapundjiev, A. Almazouzi, Effect of temperature and strain rate on the mechanical properties of T91 material tested in liquid lead bismuth eutectic,, nuclear Material (2006), Vol. 356.
DOI: 10.1016/j.jnucmat.2006.05.034
Google Scholar
[8]
Q S Wang, W Q Wang, Z M Shi, Study on microstructure of directional solidified T91 Steel, Earth and environtmental science (2018), Vol.106.
Google Scholar
[9]
ASTM A213/A213M-15a, Standard specification for seamless ferritic and austenitic alloy-steel boiler, superheater and heat exchanger tube,, (2015).
DOI: 10.1520/a0213_a0213m-21b
Google Scholar
[10]
D. Rasouli, Sh. Khameneh Asl, A. Akbarzadeh, G.H. Daneshi, Effect of Cooling rate on the microstructure and mechanical properties of microalloyed forging steel, Material Processing Technology (2008), Vol.206. pp.92-98.
DOI: 10.1016/j.jmatprotec.2007.12.006
Google Scholar