Performance Monitoring of IEC Industrial Gas Turbines

Slides:



Advertisements
Similar presentations
Engineering Diploma Level 2 Unit 7 Application of Maintenance Techniques in Engineering In this unit you will get involved with both maintenance procedures.
Advertisements

Key Reliability Standard Spot Check Frank Vick Compliance Team Lead.
1 Component Design Basis Inspection (CDBI) Graydon Strong 6/17/14.
ORÇUN B İ LEN Maintenance involves fixing any sort of mechanical or electrical device which has become out of order or broken. It also includes.
Initial Performance History - O&M Lessons Learned
MENG 547 LECTURE 3 By Dr. O Phillips Agboola. C OMMERCIAL & INDUSTRIAL BUILDING ENERGY AUDIT Why do we audit Commercial/Industrial buildings Important.
SOFTWARE QUALITY ASSURANCE Maltepe University Faculty of Engineering SE 410.
ERT 312 SAFETY & LOSS PREVENTION IN BIOPROCESS ACCIDENT INVESTIGATION Prepared by: Miss Hairul Nazirah Abdul Halim.
System Implementation
Systems Engineering Management
SOFTWARE PROJECT MANAGEMENT Project Quality Management Dr. Ahmet TÜMAY, PMP.
D. Keane June Internal Quality Audits (4.14) -ISO Requirements for Internal Audits -The Audit Process -Templates for Meeting Requirements.
Large Steam& Gas Turbines P M V Subbarao Professor Mechanical Engineering Department Backbones of Modern Nations ……
Protection Against Occupational Exposure
Practical Energy Conservation Tips for Gas Turbine Propulsion Ships.
1 PredictiveOnLine PREDICTIVE SYSTEMS ENGINEERING Vintec Knowledge Ltd.
Copyright © 2005 by South-Western, a division of Thomson Learning All rights reserved 1 Chapter 8 Fundamentals of Decision Making.
Frankfurt (Germany), 6-9 June 2011 EL-HADIDY – EG – S5 – 0690 Mohamed EL-HADIDY Dalal HELMI Egyptian Electricity Transmission Company Egypt EXAMPLES OF.
Copyright © 2005 by South-Western, a division of Thomson Learning All rights reserved 1 Chapter 8 Fundamentals of Decision Making.
Time Series Data Analysis - I Yaji Sripada. Dept. of Computing Science, University of Aberdeen2 In this lecture you learn What are Time Series? How to.
QUALITY ASSURANCE MANAGEMENT CONTROLS Chapter 9. Quality Assurance (QA) Management is concerned with ensuring: 1) The information system produced by the.
Unit 2 -Gas And Diesel Power Plants
PLANNING ENGINEERING AND PROJECT MANAGEMENT By Lec. Junaid Arshad 1 Lecture#03 DEPARTMENT OF ENGINEERING MANAGEMENT.
Project quality management. Introduction Project quality management includes the process required to ensure that the project satisfies the needs for which.
Hardware Analyser vs Software Analyser
ENERGY CONVERSION MME 9617A Eric Savory Lecture 10 – Analyzing a complete plant: Energy conversion cycles Department.
Project management Topic 7 Controls. What is a control? Decision making activities – Planning – Monitor progress – Compare achievement with plan – Detect.
Regional Meeting on Applications of the Code of Conduct on Safety of Research Reactors Lisbon, Portugal, 2-6 November 2015 Diakov Oleksii, Institute for.
Controlling By: Mrs. Belen Apostol. What is controlling refers to the process of ascertaining whether organizational objectives have been achieved; if.
Project Management Methodology Project Closing. Project closing stage Must be performed for all projects, successfully completed or shut off by management.
Intelligent Maintenance Program
Roadmap to Greener Computing Henri Mikkola. Eco-Friendly Product Lifecycle Today through globalization products travel long distances before reaching.
Slide 1 A Practical Guide to Issuing a Request for Proposals Notes.
©Ian Sommerville 2004Software Engineering, 7th edition. Chapter 5 Slide 1 Project management.
Principal Investigator ESTCP Selection Meeting
About Calpine Founded in 1984 Headquartered in San Jose, Calif.
Auditing Concepts.
Fort Stanwix National Monument Energy Audit Contract
Wind Composite Services Group/WindCom
NERC Lessons Learned Summary
Software Quality Control and Quality Assurance: Introduction
Omar Behara*, Abdallah Kellafb ,Kamal Mohammedia ,
Testing the System.
Machine operation and daily maintenance management in SOLEIL
Use Cases Discuss the what and how of use cases: Basics Benefits
BRAYTON CYCLE AND EFFECT OF INTERCOOLING , REHEAT AND REGENRATION
Chapter 6: Database Project Management
Overhaul of Combustion Turbines Under NSR Regulations
Fundamentals of Information Systems, Sixth Edition
Principal Investigator ESTCP Selection Meeting
Center for Advanced Life Cycle Engineering (CALCE)
Air Filtration in Gas Turbine Applications
3E Plus Program Software Insulation Thickness Calculator
Economic Operation of Power Systems
ISO New England System R&D Needs
FEASIBILITY STUDY Feasibility study is a means to check whether the proposed system is correct or not. The results of this study arte used to make decision.
د. حنان الداقيز خريف /28/2016 Software Quality Assurance ضمان جودة البرمجيات ITSE421 5 – The components of the SQA.
Air Carrier Continuing Analysis and Surveillance System (CASS)
Air Carrier Continuing Analysis and Surveillance System (CASS)
Operations Management
Across the entire value chain
FACILITY LAYOUT Facility layout means:
Opportunities for Hydrogen-Based Energy Storage for Electric Utilities
BASIC PROFESSIONAL TRAINING COURSE Module III Basic principles of nuclear safety Case Studies Version 1.0, May 2015 This material was prepared.
Systems Analysis and Design
Operations Management
AIR Quality Control Concepts
Operations Management
What is Learning Curve Most organizations learn & improve over time. As firms and employees perform a task over and over, they learn how to perform more.
May 25, 2009 Standard Costs Chapter 8: Standard Costs.
Presentation transcript:

Performance Monitoring of IEC Industrial Gas Turbines Generation Div. Performance Monitoring of IEC Industrial Gas Turbines Victor Litinetski, Offer Weiss, Alex Gutman For presentation to 13th Israeli Symposium on Jet Engines and Gas Turbines November 06, 2014. Haifa, Israel IEC Generation Division Headquarters Mechanical Department V. Litinetski

Presentation Scope IEC performance monitoring approach Generation Div. Presentation Scope IEC performance monitoring approach Case Study 1. Compressor failure Case Study 2. Control system problem Case Study 3. Compressor washing optimization Case Study 4. GT Inlet Air Filter upgrade Summary Part 2. Case Studies in details V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Performance Monitoring: Introduction Generation Div. Performance Monitoring: Introduction Today, industrial gas turbines already have become one of the main engines for electricity generation. Modern industrial gas turbines have output 250 – 350 MW (up to 470 MW in developments). Combined- cycle applications on their base have outstanding thermal efficiency approaching 62%. Even small degradation of their performance (efficiency, power output etc.) could result in noticeable loss of profitability. Thus, performance monitoring of operational characteristics is especially important for effective and reliable operation of such engines. V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Performance Monitoring: Main Goals in IEC Generation Div. Performance Monitoring: Main Goals in IEC (Generation Div. Headquarters, Mechanical Dept.) Provision of continuous data on power output and heat rate of IEC’s industrial gas turbines. Both power output and heat rate are completely corrected to GT reference conditions. Only use of the corrected performance allows proper interpretation and analysis of the monitoring results. Observation of the important turbine parameters such as turbine exhaust temperature, inlet air filter dP, compressor efficiency etc. Optimization of inlet air filters operation and maintenance. Optimization of compressor washing procedures and schedule. 4 V. Litinetski 4 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Performance Monitoring: Actual Example Trend of corrected power output Generation Div. Performance Monitoring: Actual Example Trend of corrected power output 5 V. Litinetski Blue dashed lines denote compressor washings 5 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Performance Monitoring: IEC approach Generation Div. Performance Monitoring: IEC approach Performance monitoring systems are being developed in IEC Generation Division more than 10 years. Now the 5-th version of the monitoring software is used in IEC as a result of continuous long-term advancement to answer actual operation requirements. In-house development of these monitoring systems was inspired by unsuccessful implementation of purchased monitoring software from a well-known developer. Time consuming implementation had revealed inconsistency of the purchased system with the goals of performance monitoring. In this presentation, an IEC (Generation Division) performance monitoring experience is described for large industrial gas turbines. This experience is illustrated by several case studies. 6 V. Litinetski 6 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Generation Div. Case Studies in brief Case Studies GT performance monitoring approach is illustrated by several case studies. V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 1. Compressor Failure Generation Div. Case Study 1. Short description Case Study 1. Compressor Failure Sequence of events: - Performance monitoring data indicated a compressor problem 43 hours before the failure. - Waiting a response from OEM monitoring team. - Catastrophic failure occurred in field. The failure was a result of unfortunate combination of technical and organizational drawbacks. IEC own performance monitoring data would allow to prevent the disaster. 8 V. Litinetski 8 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 2. Control System Problem Generation Div. Case Study 2. Short description Case Study 2. Control System Problem - After a control system upgrade from Simple Cycle configuration to Combined Cycle configuration an unexpected increase of GT output was revealed. Since modern gas turbines are designed for maximum achievable capacity, this pointed at a possible decrease of safety margins of the turbine materials. - Detailed investigation on the base of monitoring data was undertaken by IEC's Mechanical Department. - Analysis of the operational data revealed an error in the control system software. - After IEC application to OEM with the explanation of the problem, the error was corrected. This had allowed to prevent future failures of the turbine internal parts. 9 V. Litinetski 9 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 3. Compressor wash optimization Generation Div. Case study 3. Short description Case Study 3. Compressor wash optimization The task was imposed by a power station, regarding a need of early compressor off-line water washing (OFLWW) – how much it would be profitable?. The power station requested an analysis based on actual performance monitoring data and experience. The result of analysis: The disputable early OFLWW is UNPROFITABLE. 10 V. Litinetski In this particular case, NOT performing OFLWW has saved about $80,000 and a number of man-hours. 10 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 4. GT Inlet air filter upgrade Generation Div. Case study 4. Short description Case Study 4. GT Inlet air filter upgrade The tasks: Substantiate an upgrade of the current inlet air filter to the advanced technology Efficient Particulate Air (EPA) filter of a peculiar compact design. Evaluate performance of the filter during one-year operation in field. The filter met expectations of the project team. It provided much better air filtration that led to substantial improvement of GT performance. Use of this filter allowed to save several millions dollars on filter house reconstruction + very high profit on improvement of GT performance. 11 V. Litinetski 11 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Generation Div. Summary Only use of the corrected GT performance allows proper interpretation and analysis of the performance monitoring results. GT performance monitoring allows effective solutions of various operational problems. It might provide high profits on performance improvements and prevent equipment failures. 12 V. Litinetski 12 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

PART 2 Part 2. Case Studies in details 13 Generation Div. Part 2. Case Studies in details PART 2 13 V. Litinetski 13 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 1. Operational Events Generation Div. Case Study 1. Operational Events Case Study 1. Compressor Failure Sequence of operational events (performance monitoring data): - Clear indications of a compressor problem were seen 43 hours before the failure. - Strong indications of possible damage to compressor were seen 5 hours before the failure (next slide). 14 V. Litinetski 14 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 1. Compressor Failure: 5 hours before... Generation Div. Case Study 1. Compressor Failure: 5 hours before... V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Nevertheless, the catastrophic failure occurred in field Generation Div. Case Study 1. Compressor Failure Nevertheless, the catastrophic failure occurred in field (next slide). 16 V. Litinetski 16 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 1. Compressor Failure: Rotor after failure Generation Div. Case Study 1. Compressor Failure: Rotor after failure V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 1. Some conclusions Generation Div. Case Study 1. Some conclusions Conclusions: Catastrophic failure of the compressor was a result of unfortunate combination of technical and organizational drawbacks. Additional in-house GT condition monitoring software has been developed 18 V. Litinetski 18 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 2. Control System Problem Generation Div. Case Study 2. Sequence of operational events Case Study 2. Control System Problem After a control system upgrade from Simple Cycle (SC) configuration to Combined Cycle (CC) configuration some operation anomalies were revealed. Irregular increases of the power output by 10-15 MW above the expected maximum were detected in about two months after the upgrade (Figure below). The event continued during a week and after that disappeared. Since modern gas turbines are designed for maximum achievable capacity, this pointed at a possible decrease of safety margins of the turbine materials. V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 2. Power output scattering Generation Div. Case Study 2. Power output scattering V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 2. IEC investigation of the problem Generation Div. Case Study 2. IEC investigation of the problem Detailed investigation was undertaken by IEC's Mechanical Department Performance monitoring data showed that the irregular increases of power output were accompanied by significant scattering of the turbine exhaust temperature (Figure below) 21 V. Litinetski 21 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 2. Scattering of exhaust temperature Generation Div. Case Study 2. Scattering of exhaust temperature V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 2. Performance data analysis Generation Div. Case Study 2. Performance data analysis Thorough analysis of the data revealed an error in the control system software, namely, an incorrect definition of so called Temperature Control Curve, which is an important element of the turbine load control, fuel efficiency and protection (Figure below). 23 V. Litinetski 23 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 2. Error in control system software Generation Div. Case Study 2. Error in control system software V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 2. Correction of the problem Generation Div. Case Study 2. Correction of the problem After IEC application to OEM with the explanation of the problem, Temperature Control Curve definition was corrected. Figure below shows the turbine exhaust temperature trend after correction. 25 V. Litinetski 25 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 2. Exhaust temperature after correction Generation Div. Case Study 2. Exhaust temperature after correction V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 3. Compressor wash optimization Generation Div. Case Study 3. Use of performance monitoring info Case Study 3. Compressor wash optimization The task was imposed by a power station, regarding a need of performing compressor off-line water washing (OFLWW). The station question was: whether the station could save money if it performed OFLWW earlier than planned by ~2000 operating hours of the GT. The power station asked for an analysis based on current performance monitoring data and accumulated monitoring experience. V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 3. Data use & approximation Generation Div. Case Study 3. Data use & approximation V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 3. Conclusions Generation Div. Case Study 3. Conclusions The following conclusions were made: Early OFLWW (at 40,000 op. hours) is UNPROFITABLE considering current air filter condition and GT performance degradation trends. Not performing OFLWW might save about $128,000 in this particular case. -------------------------------------------------------------------------------- Actually, the OFLWW was performed after 42,500 operating hours of GT. Corrected power degradation was slightly higher than predicted but the main result remained unchanged – the early OFLWW (if any) would be unprofitable. V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 4. GT Inlet air filter upgrade Generation Div. Case Study 4. The task Case Study 4. GT Inlet air filter upgrade The following tasks had been raised with operation and maintenance needs: 1. Substantiate an upgrade of the current inlet air filter to the advanced technology Efficient Particulate Air (EPA) filter. 2. After 1 year of EPA filter operation, evaluate actual performance of the GT with EPA filter and compare with actual performance of the GT with the regular air filter during the same operational term. Conclusions should be made on the base of actual performance monitoring data 30 V. Litinetski 30 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Three-layer compact design EPA cartridges Generation Div. Case Study 4. View of the installed filter V. Litinetski Three-layer compact design EPA cartridges Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Case Study 4. Conclusions Generation Div. Case Study 4. Conclusions The tasks were performed on the base of accumulated performance monitoring data during one-year operation with EPA filter. The filter met expectations of the project team. It obviously provided much better air filtration that led to substantial improvement of GT performance. Use of this filter allowed to save several millions dollars on filter house reconstruction. 32 V. Litinetski 32 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Generation Div. Summary in details An actual approach to continuous performance monitoring of 250MW-class industrial gas turbines is described in this presentation. The described performance monitoring practices may be useful in development, improvement and support of monitoring systems. The most important outcome of performance monitoring is a detailed analysis of GT operation events, providing a basis for solution of operational problems and decision making as well. Effective and reliable analyses of monitoring results could be performed only by highly educated personnel having strong knowledge in GT theory, equipment and operation. Monitoring team should include such persons. In-house development of the monitoring systems in IEC was inspired by unsuccessful implementation of purchased monitoring software from a well-known developer. The monitoring systems was gradually developed in Generation Division of IEC and successfully used for more than 10 years in actual gas turbines operation. The presented in this presentation performance monitoring approach has a general importance; it could be helpful for other gas turbine operators and used in actual performance monitoring of various gas turbine types. V. Litinetski Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section

Generation Div. THE END 34 V. Litinetski 34 Prepared by V. Litinetski. IEC Generation Div., Mechanical Dept., Gas Turbine Section