Lebpower
Mechanical
- Sep 16, 2017
- 33
Hello,
I'm Assessing a failure in the cyclones of the FCCU Regenerator. It is most likely to be related to high tempeture in the cyclones according to the data gotten from the tempeture intruments and according to the findings (sigma phase was found in the rupture zone).
I found the design data and analysis model used by the manufacter.
For the evaluation they used 3 models
1.-) The first model consists of one pair of cyclones including their part of the top dome, the hanger rods and the bracings. Constraint equations are used to model the rotational symmetry.
2.-) The second model consist of three pairs of cyclones to model the situation when one cyclone is filled with
catalyst and the situation one pair of cyclones has a 100 ºC higher temperature as the others. Constraint equations are used to model the rotational symmetry.
3.-) The third model consist of all cyclones and the top dome to calculate the seismic load.
and they examined 4 load cases.
Load Case 1: pressure and weight.
Internal pressure :2.9 bar
Differential pressure primary cyclones :0.08 bar
Differential pressure between pr. cycl. and sec. cycl. :0.1275 bar
Differential pressure secondary cyclones+plenum :0.175 bar
For this load case the first model is used.
Load Case 2: pressure and weight and one primary cyclone full of catalyst during 1000 hour
at 815 ºC.
Pressure and weight are the same as in load case 1. Additional one primary cyclone is filled with catalyst.
For this load case the second model is used.
Load case 3: Pressure and weight and one cyclone set 100ºC higher in temperature.
Pressure and weight are the same as in load case 1.
In the second model one pair of cyclones have a 100 ºC higher temperature as the other two.
The duct is also modelled with a 100 ºC higher temperature but not the plenum because in the plenum the high
temperature gas is mixed with the gasses with normal temperature.
For this load case the second model is used.
Load Case 4: pressure and weight and a seismic load.
Pressure and weight are the same as in load case 1.
For seismic conditions the normal gravity acceleration is increased to 11.157 m/s2 and a horizontal acceleration
of 1.51 m/s2 is added.
For this load case the third model is used.
DESIGN DATA.
Design code
2001 ASME BOILER AND PRESSURE VESSEL CODE VIII Division 2 + addenda.
Design conditions
Design pressure : 2.9 bar(g)
External pressure on the:
plenum inside the vessel: 0.175 bar
Secondary cyclone : 0.175 bar
Duct between prim and sec cycl.: 0.1275 bar
Primary cyclone : 0.08 bar
Design temperature : 755 ºC
: 815 ºC for 1000 hour (load case 2).
: 855 ºC for 1000 hour (load case 3).
Corrosion allowance : 3 mm for carbon steel
: 0 mm for stainless steel
They calculated the number of cycles and they got 525 cycles. They say a number of 500 cycles is the minimum required number of cycles, so the construction satisfies.
Concerns:
1.-) I'm not quite sure about when a "cycle" can be considered finished and if this can be associated to the failure in the cyclone legs. So, I'd really appreciate if anyone can give me more information about the Cycles in orden for me to understan and know more about them.
2.-) How can I estimate the remaining life of the cyclones considering the high tempetures that we have been witnessing inside the regenerator?
Greetings,
R.A.
I'm Assessing a failure in the cyclones of the FCCU Regenerator. It is most likely to be related to high tempeture in the cyclones according to the data gotten from the tempeture intruments and according to the findings (sigma phase was found in the rupture zone).
I found the design data and analysis model used by the manufacter.
For the evaluation they used 3 models
1.-) The first model consists of one pair of cyclones including their part of the top dome, the hanger rods and the bracings. Constraint equations are used to model the rotational symmetry.
2.-) The second model consist of three pairs of cyclones to model the situation when one cyclone is filled with
catalyst and the situation one pair of cyclones has a 100 ºC higher temperature as the others. Constraint equations are used to model the rotational symmetry.
3.-) The third model consist of all cyclones and the top dome to calculate the seismic load.
and they examined 4 load cases.
Load Case 1: pressure and weight.
Internal pressure :2.9 bar
Differential pressure primary cyclones :0.08 bar
Differential pressure between pr. cycl. and sec. cycl. :0.1275 bar
Differential pressure secondary cyclones+plenum :0.175 bar
For this load case the first model is used.
Load Case 2: pressure and weight and one primary cyclone full of catalyst during 1000 hour
at 815 ºC.
Pressure and weight are the same as in load case 1. Additional one primary cyclone is filled with catalyst.
For this load case the second model is used.
Load case 3: Pressure and weight and one cyclone set 100ºC higher in temperature.
Pressure and weight are the same as in load case 1.
In the second model one pair of cyclones have a 100 ºC higher temperature as the other two.
The duct is also modelled with a 100 ºC higher temperature but not the plenum because in the plenum the high
temperature gas is mixed with the gasses with normal temperature.
For this load case the second model is used.
Load Case 4: pressure and weight and a seismic load.
Pressure and weight are the same as in load case 1.
For seismic conditions the normal gravity acceleration is increased to 11.157 m/s2 and a horizontal acceleration
of 1.51 m/s2 is added.
For this load case the third model is used.
DESIGN DATA.
Design code
2001 ASME BOILER AND PRESSURE VESSEL CODE VIII Division 2 + addenda.
Design conditions
Design pressure : 2.9 bar(g)
External pressure on the:
plenum inside the vessel: 0.175 bar
Secondary cyclone : 0.175 bar
Duct between prim and sec cycl.: 0.1275 bar
Primary cyclone : 0.08 bar
Design temperature : 755 ºC
: 815 ºC for 1000 hour (load case 2).
: 855 ºC for 1000 hour (load case 3).
Corrosion allowance : 3 mm for carbon steel
: 0 mm for stainless steel
They calculated the number of cycles and they got 525 cycles. They say a number of 500 cycles is the minimum required number of cycles, so the construction satisfies.
Concerns:
1.-) I'm not quite sure about when a "cycle" can be considered finished and if this can be associated to the failure in the cyclone legs. So, I'd really appreciate if anyone can give me more information about the Cycles in orden for me to understan and know more about them.
2.-) How can I estimate the remaining life of the cyclones considering the high tempetures that we have been witnessing inside the regenerator?
Greetings,
R.A.