The evaporative platens gave many operational issues including header cracking causing unnecessary and costly downtime due to maintenance. Simulations were required to predict the effects of removing the platens within the boilers. The simulation had to point out the new steam flow distribution based on the design changes and also any new possible hot spots on the tubes due to poor flow through the remaining water walls and superheater tubes. |
CUSTOMER PROFILE
Steinmüller is an innovative engineering services provider operating in Southern Africa for over 45 years. With the global backing of the Bilfinger-Berger Group they excel at developing, implementing, optimising and maintaining industrial plants using state-of-the-art technologies.
CHALLENGE
The evaporative platens gave many operational issues, including header cracking, causing unnecessary and costly down time due to maintenance. Simulations were required to predict the effects of removing the platens within the boilers. The simulation had to point out the new steam flow distribution based on the design changes and also any new possible hot spots on the tubes due to poor flow through the remaining water walls and super heater tubes.
BENEFITS
With the ability to implement momentum conservation Flownex allowed Steinmüller to solve, simulate & predict:
Flow distribution in water walls and Superheater tubes based on geometry, elevation and heat radiation and convection from the boiler flame.
Dynamic pressure and level in the drum.
The steam conditions and steam quality available to the turbines.
Simulate both the flue gas and steam networks in the same solution linked with:
Radiation and convection heat transfer from the flame and flue gas to the tube walls,
Conduction through the tube walls and
The convection on the inside of the tubes to the steam side
SOLUTION
By simulating the complete flow distribution model of a de-mothballed boiler plant in Flownex, Steinmüller was able to make the correct design decisions with regard to the Evaporator platens and the effect of their possible removal in terms of flow distribution, possible hot spots and steam quality to the turbines. This proved the wide range of application of Flownex and that it is extremely valuable to engineers to do “what if” studies.
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INTRODUCTION
Steinmüller is an innovative engineering services provider operating in Southern Africa for over 45 years. With the global backing of the Bilfinger-Berger Group they excel at developing, implementing, optimising and maintaining industrial plants using state-of-the-art technologies.
In the quest to repower retired power stations, Steinmüller used Flownex to successfully solve, simulate & predict the implications of repowering a boiler plant. Using Flownex the engineering team was able to do what-if studies and to make decisions such as whether to remove the evaporative platens to optimize the plant in terms of reliability, plant availability and overall plant efficiency. Flownex proved valuable in the investigation by providing the new flow distribution in the water walls and super heaters based on design changes and also the steam condition that is provided to the turbines.
CHALLENGES
The evaporative platens gave many operational issues including header cracking causing unnecessary and costly down time due to maintenance. Simulations were required to predict the effects of removing the platens within the boilers. The simulation had to point out the new steam flow distribution based on the design changes and also any new possible hot spots on the tubes due to poor flow through the remaining water walls and super heater tubes.
SOLUTION
With the aid of Flownex, Steinmüller was able to simulate various scenarios the boiler plant would experience, proving to be a valuable tool in “what-if” studies.
With the ability to implement momentum conservation Flownex allowed Steinmüller to solve, simulate & predict:
Flow distribution in water walls and Superheater tubes based on geometry, elevation and heat radiation and convection from the boiler flame.
Dynamic pressure and level in the drum.
The steam conditions and steam quality available to the turbines.
Simulate both the flue gas and steam networks in the same solution linked with:
radiation and convection heat transfer from the flame and flue gas to the tube walls,
conduction through the tube walls and
the convection on the inside of the tubes to the steam side.
RESULTS
By simulating the complete flow distribution model of a de-mothballed boiler plant in Flownex, Steinmüller was able to make the correct design decisions with regard to the Evaporator platens and the effect of their possible removal in terms of flow distribution, possible hot spots and steam quality to the turbines. This proved the wide range of application of Flownex and that it is extremely valuable to engineers to do “what if” studies.