
Fernández-Fuentes et al .                                                                                                                                                                    90 
 
 
Rev. Téc. Ing. Univ. Zulia. Vol. 44, No. 2, May-August, 2021. 
 
service aged 1.25Cr0.5Mo steel, expressed in a reduction of the rupture time by 67.8 %. The observed mechanical 
behavior corresponds to the microstructural features, which shows that the heat treatment resulted in a decrease in 
the relative frequency of small precipitates, with an increase in the frequency of larger ones. It results in an increase 
in the distance between particles, with a detrimental effect on the increase in mechanical strength due to precipitation 
(Abbaschian et al. 2009). 
Conclusions 
 
The 1.25Cr0.5Mo steel qualitatively retains a microstructure of ferritic-perlitic type with grain boundary and 
inside  ferrite  precipitation  after  a prolonged  period of  operation in a  steam  pipeline,  which  is  typical  of  the as-
received condition. 
The  heat  treatment,  with  a  similar  regime  to  that  required  after  welding,  does  not  modify  this  type  of 
microstructure. However, because of the competitive growth phenomenon, it results in quantitative changes in the 
size distribution of the precipitates present inside ferrite grain, expressed by a decrease in the number of particles 
smaller than 80 nm and an increase in the number of particles larger than 80 nm. 
For  the  1.25Cr0.5Mo  steel  the  density  of  particles  inside  ferrite  grain  obeys  a  lognormal  distribution 
function  in  the as-received  condition  as well  as  in the  subjected  to  heat treatment  with  a similar  regime to  that 
required after welding condition, showing an increase of 16% of the geometric mean of the equivalent diameter due 
to the effect of the heat treatment. 
The  creep  rupture  time  fits  adequately  to  a  model  of  type 
    
  , where: A, B, C and D are the model parameters, t
r
 the creep 
rupture time (h), S the stress (MPa) and T the temperature (K). 
The heat treatment of in-service aged 1.25Cr0.5Mo steel, with parameters similar to those required post 
welding, reduces 67.8 % the creep rupture time, which is associated with a corresponding increase in the size of the 
precipitates  inside  the  ferrite,  leading  to  the  detriment  of  the  effect  of  increasing  the  mechanical  strength  by 
precipitation. 
Acknowledgments 
 
Thanks  to  the  support  provided  by  LAPROSOLDA  and  LDTAD  of  UFU  (Brazil),  DEMa  -  CCDM  of 
UFSCar (Brazil) and CAPES-Brazil/MES-Cuba agreement. 
 
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