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Guides techniques

Tetra a publié une série de guides qui peuvent être commandés.

HRSG Inspection Planning Guide (2nd Edition)

Inspection is part of routine maintenance for any Heat Recovery Steam Generator (HRSG). Visual inspections are performed at regular intervals in accordance with the requirements of regulatory bodies and insurers.

HRSG Tube Failure Diagnostic Guide (3rd Edition)

Heat Recovery Steam Generator (HRSG) tubes provide the media for extraction of useful energy from the waste heat in gas turbine exhaust at combined cycle power plants (GT-CCs) or from heat generated by process streams at petrochemical facilities.

Article Techniques

Une sélection de documents techniques disponibles à titre de référence.

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Creep Classification of Grade 91 Steel

Background Grade 91 steel is superior to many other industry used materials for its increased resistance to m...

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Power Boiler Piping

Boiler piping design requirements is divided into internal and external jurisdictions. These are divided...

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Welding Procedure Specification (WPS)

Before any welding activity can commence, the welder and the QC Engineer has to be fully aware of the content ...

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Water Chemistry in HRSGs

The environment on the inside of HRSG tubing is an important factor in maintaining tube integrity. The c...

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HRSG Inspection Planning

Building a good inspection plan for the HRSG involves doing the following: Set the Time and General Schedul...

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Tube Failures related to Water Chemistry

Most corrosion induced tube failures have a component that is directly related to water chemistry. The c...

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Articles, présentations et articles

Sélection d'articles, de présentations et d'articles issus de conférences et d'événements majeurs de l'industrie.

Title
Author
Flow Accelerated Corrosion Failures in Nominally Low-Risk HRSG Tube Locations
Flow Accelerated Corrosion Failures in Nominally Low-Risk HRSG Tube LocationsFlow Accelerated Corrosion Failures in Nominally Low-Risk HRSG Tube Locations
Malloy J., Fabricius A., Taylor M., Rusaas J., Vestdam K.
Proceedings of the ASME 2022 Power Conference
Developing and Implementing Ch. VII O&M Programs at CCGT Plants: Case Studies
Developing and Implementing Ch. VII O&M Programs at CCGT Plants: Case StudiesDeveloping and Implementing Ch. VII O&M Programs at CCGT Plants: Case Studies
Jackson P., Rosario R., Johny A., Fabricius A., Wholey A.
ASME PVP 2021
The Change In Boiler and Steam Turbine Failure Modes With Minimum Load Operation - Supplemented With Modeling to Predict Susceptibility and Validation Through Plant Testing
The Change In Boiler and Steam Turbine Failure Modes With Minimum Load Operation - Supplemented With Modeling to Predict Susceptibility and Validation Through Plant TestingThe Change In Boiler and Steam Turbine Failure Modes With Minimum Load Operation - Supplemented With Modeling to Predict Susceptibility and Validation Through Plant Testing
Reid T., Malloy J., Scoffone M., Fabricius A., Reid, S.
ASME 2020 Virtual Power Conference
HRSG Fleet Integrity Management - Lessons Learned From The Field
HRSG Fleet Integrity Management - Lessons Learned From The FieldHRSG Fleet Integrity Management - Lessons Learned From The Field
Fabricius A., Jackson P., Taylor M.
ASME 2020 Virtual Power Conference
On The Use of Computational Fluid Dynamics (CFD) To Assess The Impact of Low-Load Operations on Heat Recovery Steam Generator (HRSG) Tube Module Integrity
On The Use of Computational Fluid Dynamics (CFD) To Assess The Impact of Low-Load Operations on Heat Recovery Steam Generator (HRSG) Tube Module IntegrityOn The Use of Computational Fluid Dynamics (CFD) To Assess The Impact of Low-Load Operations on Heat Recovery Steam Generator (HRSG) Tube Module Integrity
Fabricius A., Moelling D., Rusaas J.
ASME 2019 Power Conference, July 2019

Projets Récents

Avec plus de 30 ans d'expérience dans les services de production d'électricité et de vapeur industrielle, Tetra Engineering a une longue histoire de projets.

Europe

High Energy Piping (HEP) Remaining Life Assessment (RLA), 2015

Tetra was hired by a client to investgate the remaning life of the HEP on 3 units of a thermal power station. The plant intended to operate the units for another 100,000 hours. The scope of work entailed a piping stress analysis of the main steam and hot reheat lines, thermal stress analysis of the SH header outlet/main steam line and remaining life assessment (creep, fatigue, creep-fatigue) of critical areas based on inspection history and results from the pipe stress/finite element analysis. The figure shows time-dependent stresses and temperatures during start up.

Europe

Study of impact of cyclic loads on superheater tubes, 2015

During the shutdown of the unit at night, the HP bypass was kept open to maintain a vacuum in the steam turbine condenser in order to guarantee a faster start the next morning. Therefore, a small quantity of high pressure steam from the HP drum was flowing through the SH on the way to the HP bypass valve. The small HP steam flow takes the path of least resistance and only goes through tubes on one side of the unit, affecting their temperature. The temperature of the tubes on the other side change differently and a temperature difference of around 80°C can be seen 2 hours after shutdown. The CCGT owner engaged Tetra Engineering to investigate the impact of these resultant cyclic loads on the fatigue life of the tube to header welds. The study concluded that the temperature difference of 80°C between different tubes does not cause high enough fatigue stresses alone to be considered critical

South East Asia

CFD Study of HRSG Gas Path, 2015

Tetra Engineering  performed a CFD analysis of the HRSG gas path at a CCGT in Asia in collaboration with CFD specialist R&R Consult. The results showed a very uneven flow distribution at base load over the HPHTSH tube sheet, with a higher mass flow located towards the outlet header sections and towards the side walls. The swirling motion of the GT flow results in a different flow pattern for the low load case, compared to the base load case. The flow was more evenly distributed in the longitudinal direction at the SH, but a considerable variation is seen in the span-wise direction. The uneven flow distribution was thought to be a contributing factor to the repeated fatigue failures seen in the boiler over the last couple of years.

South East Asia

Superheater Tube Root Cause Failure Analysis, 2015

Tetra Engineering completed a Tube Failure Analysis of failed SH tubes from a CCGT plant in South East Asia. The results show the following damage mechanisms present: Short-term Creep and Fatigue damage (Creep-Fatigue interaction) Short-term Creep and Stress Corrosion Cracking (SCC) or Hydrogen Embrittlement The fact that short-term creep damage was observed on both of the failed tubes indicates a sudden change in temperature. It was possible that newly discovered damage to the turbine exhaust flow correction device could have allowed a larger mass flow to one side of the boiler (due to swirl influence), increasing the tube temperatures locally and/or increasing local stresses when expansion is prevented, thus accelerating creep damage. The plant had suffered from frequent fatigue failures, with several independent metallurgical analyses over the years confirming thermal fatigue as the previous root cause. No signs of any creep damage had previously been discovered.

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