A radiant syngas cooler (RSC) is an important device
in the heat
recovery type of entrained-flow gasifier that can effectively improve
the energy utilization efficiency. In this work, a three-dimensional
(3D) industrial RSC model is established. Heat transfer characteristics
and integral thermal deformation behavior are studied by numerical
simulation, combining the principle of fluid–structure coupling
to explore the variation of integral thermal deformation under different
operating conditions. The simulation results indicate that the setting
of the radiation screen has different effects on the uneven heating
of the membrane wall in the circumferential direction, varying with
heights. An equivalent stress concentration area in the middle and
upper parts under industrial constraints is shown on the cylinder
membrane wall. The equivalent stress of the upper cone membrane wall
surface exceeds the allowable stress of the material. The thermal
deformation of the top sealing structure and the bottom is 45.6 mm
and 64.5 mm, respectively. The upward movement of the fixed support
reduces the thermal deformation of the top sealing structure while
increasing the thermal deformation of the bottom. An increase in the
inlet temperature causes an increase in the thermal deformation of
the top sealing structure and the equivalent stress at the middle
and upper parts of the cylinder membrane wall while having an insignificant
impact on the thermal deformation of the bottom. The deposition of
ash and slag reduces the thermal deformation of the top sealing structure
and the total heat transfer rate of the cylinder membrane wall. With
a slight effect on the total thermal deformation, increasing the slag
thickness decreases the total heat transfer rate.