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Proceedings Papers
The Steamside Oxidation Behavior of Candidate USC Materials at Temperatures between 650°C and 800°C
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AM-EPRI2007, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Fifth International Conference, 471-487, October 3–5, 2007,
... steels and nickel-based alloys. As well as possessing the required mechanical properties and fireside corrosion resistance, these materials must also exhibit acceptable steamside oxidation resistance. As part of the DOE/OCDO program, steamside oxidation testing is being performed at the Babcock...
Abstract
View Papertitled, The <span class="search-highlight">Steamside</span> <span class="search-highlight">Oxidation</span> Behavior of Candidate USC Materials at Temperatures between 650°C and 800°C
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for content titled, The <span class="search-highlight">Steamside</span> <span class="search-highlight">Oxidation</span> Behavior of Candidate USC Materials at Temperatures between 650°C and 800°C
The U.S. Department of Energy (DOE) and the Ohio Coal Development Office (OCDO) are sponsoring the “Boiler Materials for Ultrasupercritical Coal Power Plants” program. This program is aimed at identifying, evaluating, and qualifying the materials needed for the construction of critical components for coal-fired boilers capable of operating at much higher efficiencies than the current generation of supercritical plants. Operation at ultrasupercritical (USC) conditions (steam temperatures up to 760°C (1400°F)) will necessitate the use of new advanced ferritic materials, austenitic stainless steels and nickel-based alloys. As well as possessing the required mechanical properties and fireside corrosion resistance, these materials must also exhibit acceptable steamside oxidation resistance. As part of the DOE/OCDO program, steamside oxidation testing is being performed at the Babcock & Wilcox Research Center. More than thirty ferritic, austenitic and nickel-based materials have been exposed for up to 4,000 hours in flowing steam at temperatures between 650°C (1202°F) and 800°C (1472°F). In addition to wrought materials, steamside oxidation tests have been conducted on weld metals, coated materials and materials given special surface treatments. Exposed specimens were evaluated to determine oxidation kinetics and oxide morphology. High chromium ferritic, austenitic and nickel-based alloys displayed very good oxidation behavior over the entire temperature range due to the formation of a dense chromium oxide. With increasing steam temperature, low chromium ferritic materials experienced breakaway oxidation, and low chromium austenitic materials experienced significant oxide exfoliation. Special surface treatments that were applied to these materials appeared to have a beneficial effect on their oxidation behavior.
Proceedings Papers
AM-EPRI2010, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Sixth International Conference, 198-212, August 31–September 3, 2010,
... ultrasupercritical (A-USC) boilers. Beyond mechanical properties and fireside corrosion resistance, these materials must also exhibit adequate steamside oxidation and exfoliation resistance. A comprehensive database of steamside oxidation test results at temperatures relevant to A-USC conditions has been compiled...
Abstract
View Papertitled, Characterization of Steam-Formed <span class="search-highlight">Oxides</span> on Candidate Materials for USC Boilers
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for content titled, Characterization of Steam-Formed <span class="search-highlight">Oxides</span> on Candidate Materials for USC Boilers
In the “Boiler Materials for Ultrasupercritical Coal Power Plants” program, sponsored by the U.S. Department of Energy and the Ohio Coal Development Office, various materials are being assessed for their suitability in the high-temperature, high-pressure environment of advanced ultrasupercritical (A-USC) boilers. Beyond mechanical properties and fireside corrosion resistance, these materials must also exhibit adequate steamside oxidation and exfoliation resistance. A comprehensive database of steamside oxidation test results at temperatures relevant to A-USC conditions has been compiled over recent years. These tests have been conducted on ferritic and austenitic materials with chromium content ranging from 2 to 26%. The specimens were evaluated for oxidation kinetics and oxide morphology. The findings indicate that steamside oxidation behavior is significantly affected by temperature, the chromium content of the material, and the ability of chromium to diffuse through the material's crystallographic lattice structure. Additionally, surface treatments have been applied to enhance the steamside oxidation resistance of certain materials. While these treatments have shown potential, their effectiveness can be limited by the operational temperatures.
Proceedings Papers
AM-EPRI2013, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Seventh International Conference, 765-776, October 22–25, 2013,
... thoroughly evaluated in steam at temperatures between 620°C and 800°C (1148°F and 1472°F) for times up to 10,000 hours. The results from this test program indicate that the oxidation rates and oxide morphologies associated with steamside oxidation are a strong function of the crystallographic lattice...
Abstract
View Papertitled, Effect of Temperature, Alloy Composition and Surface Treatment on the <span class="search-highlight">Steamside</span> <span class="search-highlight">Oxidation</span> / <span class="search-highlight">Oxide</span> Exfoliation Behavior of Candidate A-USC Boiler Materials
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for content titled, Effect of Temperature, Alloy Composition and Surface Treatment on the <span class="search-highlight">Steamside</span> <span class="search-highlight">Oxidation</span> / <span class="search-highlight">Oxide</span> Exfoliation Behavior of Candidate A-USC Boiler Materials
As part of the Boiler Materials for Ultrasupercritical Coal Power Plants program, sponsored by the United States (U.S.) Department of Energy (DOE) and the Ohio Coal Development Office (OCDO), the steamside oxidation and oxide exfoliation behavior of candidate alloys have been thoroughly evaluated in steam at temperatures between 620°C and 800°C (1148°F and 1472°F) for times up to 10,000 hours. The results from this test program indicate that the oxidation rates and oxide morphologies associated with steamside oxidation are a strong function of the crystallographic lattice structure and the chromium content of the material. Oxide exfoliation correlates to oxide thickness. The time required to reach the critical oxide thickness for exfoliation can be estimated based on oxidation kinetic relationships. For austenitic stainless steels, shot peening is effective in reducing steamside oxidation/exfoliation, but the efficacy of this technique is limited by the operating temperature. Nickel-based alloys exhibit very low oxidation/exfoliation rates, but have a propensity to form aluminum/titanium oxides along near surface grain boundaries.
Proceedings Papers
AM-EPRI2004, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Fourth International Conference, 1326-1340, October 25–28, 2004,
..., and nickel-based alloys with superior steamside oxidation resistance at high temperatures (up to 800°C). Initial tests on over 20 candidate materials exposed to flowing steam at 650°C for 4,000 hours show promise for nickel-based and austenitic alloys, while highlighting the dependence of oxidation...
Abstract
View Papertitled, An Evaluation of the <span class="search-highlight">Steamside</span> <span class="search-highlight">Oxidation</span> of Candidate USC Materials at 650°C and 800°C
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for content titled, An Evaluation of the <span class="search-highlight">Steamside</span> <span class="search-highlight">Oxidation</span> of Candidate USC Materials at 650°C and 800°C
A collaborative program by the U.S. Department of Energy and Ohio Coal Development Office aims to identify new materials for ultrasupercritical (USC) coal power plants operating at significantly higher efficiencies. These USC plants require advanced ferritic alloys, austenitic steels, and nickel-based alloys with superior steamside oxidation resistance at high temperatures (up to 800°C). Initial tests on over 20 candidate materials exposed to flowing steam at 650°C for 4,000 hours show promise for nickel-based and austenitic alloys, while highlighting the dependence of oxidation resistance on chromium content for ferritic alloys. Notably, even within 9% Cr ferritic steels, varying compositions resulted in significantly different oxidation behaviors.
Proceedings Papers
AM-EPRI2007, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Fifth International Conference, 1-15, October 3–5, 2007,
... compared to the nickel-based alloys. Steamside Oxidation Tests Steamside oxidation testing has been completed at 650°C (1 and 17 atm); 700°C (17 atm); and 800°C (1 and 17 atm). The oxidation rates primarily followed a parabolic rate law, and the rate constants derived were found to be in agreement...
Abstract
View Papertitled, U.S. Program on Materials Technology for Ultrasupercritical Coal-Fired Boilers
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for content titled, U.S. Program on Materials Technology for Ultrasupercritical Coal-Fired Boilers
One of the pathways for achieving the goal of utilizing the available large quantities of indigenous coal, at the same time reducing emissions, is by increasing the efficiency of power plants by utilizing much higher steam conditions. The US Ultra-Supercritical Steam (USC) Project funded by US Department of Energy (DOE) and the Ohio Coal Development Office (OCDO) promises to increase the efficiency of pulverized coal-fired power plants by as much as nine percentage points, with an associated reduction of CO 2 emissions by about 22% compared to current subcritical steam power plants, by increasing the operating temperature and pressure to 760°C (1400°F) and 35 MPa (5000 psi), respectively. Preliminary analysis has shown such a plant to be economically viable. The current project primarily focuses on developing the materials technology needed to achieve these conditions in the boiler. The scope of the materials evaluation includes mechanical properties, steam-side oxidation and fireside corrosion studies, weldability and fabricability evaluations, and review of applicable design codes and standards. These evaluations are nearly completed, and have provided the confidence that currently-available materials can meet the challenge. While this paper deals with boiler materials, parallel work on turbine materials is also in progress. These results are not presented here in the interest of brevity.
Proceedings Papers
AM-EPRI2013, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Seventh International Conference, 74-85, October 22–25, 2013,
..., Diamalloy3006 and SHS9172 coatings. Probe trials in six plants are ongoing. A617, A740H and A263 performed equally in steamside oxidation lab test ≤750°C while A617 and A740H outperformed A263 at 800°C; high pressure tests are planned. Slow strain rate testing confirmed relaxation cracking of A263. A creep...
Abstract
View Papertitled, NextGenPower – Demonstration and Component Fabrication of Nickel Alloys and Protective Coatings for Steam Temperatures of 750°C
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for content titled, NextGenPower – Demonstration and Component Fabrication of Nickel Alloys and Protective Coatings for Steam Temperatures of 750°C
The EU NextGenPower-project aims at demonstrating Ni-alloys and coatings for application in high-efficiency power plants. Fireside corrosion lab and plants trials show that A263 and A617 perform similar while A740H outperforms them. Lab tests showed promising results for NiCr, Diamalloy3006 and SHS9172 coatings. Probe trials in six plants are ongoing. A617, A740H and A263 performed equally in steamside oxidation lab test ≤750°C while A617 and A740H outperformed A263 at 800°C; high pressure tests are planned. Slow strain rate testing confirmed relaxation cracking of A263. A creep-fatigue interaction test program for A263 includes LCF tests. Negative creep of A263 is researched with gleeble tests. A263 Ø80 - 500mm trial rotors are forged with optimized composition. Studies for designing and optimizing the forging process were done. Segregation free Ø300 and 1,000mm rotors have been forged. A263 – A263 and A293 – COST F rotor welding show promising results (A263 in precipitation hardened condition). Cast step blocks of A282, A263 and A740H showed volumetric cracking after heat treatment. New ‘as cast’ blocks of optimized composition are without cracks. A 750°C steam cycle has been designed with integrated CO 2 capture at 45% efficiency (LHV). Superheater life at ≤750°C and co-firing is modeled.
Proceedings Papers
AM-EPRI2007, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Fifth International Conference, 520-530, October 3–5, 2007,
... materials for ultrasupercritical coal power plants Steamside oxidation , J. Mat. Eng. & Per., Vol. 15 (2006), pp. 255-274. 4. D.K. McDonald and E.S. Robitz, Coal ash corrosion resistant materials testing program , Proceedings from the Fourth International Conference on Advances in Materials Technology...
Abstract
View Papertitled, <span class="search-highlight">Steamside</span> <span class="search-highlight">Oxidation</span> Behavior of Experimental 9%Cr Steels
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for content titled, <span class="search-highlight">Steamside</span> <span class="search-highlight">Oxidation</span> Behavior of Experimental 9%Cr Steels
Reducing emissions and increasing economic competitiveness require more efficient steam power plants that utilize fossil fuels. One of the major challenges in designing these plants is the availability of materials that can stand the supercritical and ultra-supercritical steam conditions at a competitive cost. There are several programs around the world developing new ferritic and austenitic steels for superheater and reheater tubes exposed to the advanced steam conditions. The new steels must possess properties better than current steels in terms of creep strength, steamside oxidation resistance, fireside corrosion resistance, and thermal fatigue resistance. This paper introduces a series of experimental 9%Cr steels containing Cu, Co, and Ti. Stability of the phases in the new steels is discussed and compared to the phases in the commercially available materials. The steels were tested under both the dry and moist conditions at 650°C for their cyclical oxidation resistance. Results of oxidation tests are presented. Under the moist conditions, the experimental steels exhibited significantly less mass gain compared to the commercial P91 steel. Microstructural characterization of the scale revealed different oxide compositions.
Proceedings Papers
AM-EPRI2016, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Eighth International Conference, 813-822, October 11–14, 2016,
... chemistry on the fireside, steamside oxidation is a multifaceted phenomenon because of the numerous chemical (alloy, oxide and water chemistry) and mechanical (stresses associated with thermal expansion of the oxide and alloy, oxide growth and any applied, thermal or residual stresses) variables. Major...
Abstract
View Papertitled, Field and Laboratory Observations on the Steam <span class="search-highlight">Oxidation</span> Behavior of Creep Strength Enhanced Ferritic Steels and Austenitic Stainless Steels
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for content titled, Field and Laboratory Observations on the Steam <span class="search-highlight">Oxidation</span> Behavior of Creep Strength Enhanced Ferritic Steels and Austenitic Stainless Steels
Because of the problems experienced with steam-side oxidation in commercial power plants, there has been continuing interest in better understanding the steam oxidation behavior of creep strength enhanced ferritic steels such as grades 23, 24 and 91 as well as 300-series stainless steels such as 347H and 304H. Analysis of field-exposed tubes has provided information on the oxidation reaction products but relatively few specimens are available and there is limited information about the kinetics. Specimens have included tube sections with a shot peened surface, a treatment that is now widely used for austenitic boiler tubes. To complement this information, additional laboratory studies have been conducted in 1bar steam at 600°-650°C on coupons cut from conventional and shot-peened tubing. Exposures of 1-15 kh provide some information on the steam oxidation kinetics for the various alloys classes. While shot-peened type 304H retained its beneficial effect on oxidation resistance past 10,000 h at 600° and 625°C, the benefit appeared to decline after similar exposures at 650°C.
Proceedings Papers
AM-EPRI2019, 2019 Joint EPRI – 123HiMAT International Conference on Advances in High-Temperature Materials, 939-947, October 21–24, 2019,
...,0.3Co,0.08V,<10ppm S < indicates below the detectability limit of <0.01% The complexity of steamside oxidation is evident when one considers the gap between results obtained in the laboratory and those observed in the field [22]. Also, the wide range of results obtained in laboratory testing...
Abstract
View Papertitled, Water Chemistry and Pressure Effects on Steam <span class="search-highlight">Oxidation</span> of Ferritic and Austenitic Steels
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for content titled, Water Chemistry and Pressure Effects on Steam <span class="search-highlight">Oxidation</span> of Ferritic and Austenitic Steels
Traditional laboratory steam experiments are conducted at ambient pressure with water of variable chemistry. In order to better understand the effect of steam pressure and water chemistry, a new recirculating, controlled chemistry water loop with a 650°C autoclave was constructed. The initial experiments included two different water chemistries at 550° and 650°C. Two 500-h cycles were performed using oxygenated (OT, pH ~9 and ~100 ppb O 2 ) or all-volatile treated (AVT, pH ~9 and <10 ppb O 2 ) water conditions at each temperature. Coupons exposed included Fe-(9-11)%Cr and conventional and advanced austenitic steels as well as shot peened type 304H stainless steel. Compared to ambient steam exposures, the oxides formed after 1,000 h were similar in thickness for each of the alloy classes but appeared to have a different microstructure, particularly for the outer Fe-rich layer. An initial attempt was made to quantify the scale adhesion in the two environments.
Proceedings Papers
AM-EPRI2016, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Eighth International Conference, 912-923, October 11–14, 2016,
... tubings casings coal ash fireside corrosion HAYNES 282 Alloy header steamside oxidation resistance valves Advances in Materials Technology for Fossil Power Plants Proceedings from the Eighth International Conference October 11 14, 2016, Albufeira, Algarve, Portugal httpsdoi.org/10.31399...
Abstract
View Papertitled, Fireside Corrosion and <span class="search-highlight">Steamside</span> <span class="search-highlight">Oxidation</span> Behavior of HAYNES 282 Alloy for A-USC Applications
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for content titled, Fireside Corrosion and <span class="search-highlight">Steamside</span> <span class="search-highlight">Oxidation</span> Behavior of HAYNES 282 Alloy for A-USC Applications
The Advanced Ultrasupercritical (A-USC) power plants are aimed to operate at steam inlet temperatures greater than 700°C; consequently, a complete materials overhaul is needed for the next-generation power plants. HAYNES 282, a gamma-prime strengthened alloy, is among the leading candidates because of its unique combination of properties, superior creep and LCF strength, fabricability and thermal stability. It is currently being evaluated in wrought and cast forms for A-USC turbine rotors, casings, boiler tubings, header, and valves. The candidate materials for A-USC applications not only require oxidation resistance for steam cycles but fireside corrosion resistance to coal ash is also of an extreme importance. In order to study the effect of both environments on the performance of 282 alloy, the alloy was exposed for extended periods in various oxidizing environments, such as air, air plus water vapor (10%), and 17bar steam up to 900°C. The fireside corrosion resistance of 282 alloy was evaluated at 700°C in synthetic coal ash and at 843°C in alkali salt deposits in a controlled gaseous environment.
Proceedings Papers
Preface
Free
AM-EPRI2004, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Fourth International Conference, xxxvi-xxxvii, October 25–28, 2004,
... to eliminate the thermal fatigue problem. In addition to creep and thermal fatigue, other property requirements include steamside oxidation resistance, fracture toughness, weldability, and fabricability. For superheater/reheater tubes, steamside oxidation resistance and fireside corrosion resistance are major...
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View Papertitled, Preface
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for content titled, Preface
Preface for the 2004 Advances in Materials Technology for Fossil Power Plants conference.
Proceedings Papers
AM-EPRI2016, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Eighth International Conference, 924-930, October 11–14, 2016,
... failures and erosion damage in turbines [13-15]. The consequences of exfoliation tend to grow more severe with faster and heavier oxidation rate, i.e. with higher temperatures and more sensitive materials. OXIDATION Steam oxidation test was conducted to three alloys, austenitic stainless steels Sanicro 25...
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View Papertitled, Supercritical Water <span class="search-highlight">Oxidation</span> and Creep Behaviour of Boiler Tube Materials
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for content titled, Supercritical Water <span class="search-highlight">Oxidation</span> and Creep Behaviour of Boiler Tube Materials
High efficiency in power generation is not only desirable because of economical reasons but also for enhanced environmental performance meaning reduced quantity of forming ash and emissions. In modern medium to large size plants, improvements require supercritical steam values. Furthermore, in future there will be an increasing share of renewables, such as wind and solar power, which will enhance the fluctuation of supply with the consequence that other power sources will have to compensate by operating in a more demanding cyclic or ramping mode. The next generation plant will need to operate at higher temperatures and pressure cycles coupled with demanding hot corrosion and oxidation environments. Such an operation will significantly influence the performance of materials used for boilers and heat exchanger components by accelerating oxidation rates and lowering mechanical properties like creep resistance. The paper discusses the oxidation behaviour of San25, 800H and alloy 263 in supercritical water at temperatures 650 and 700 °C at 250 bar, and compares the changes of mechanical properties of materials at these temperatures.
Proceedings Papers
A Study of the Performance Requirements and Construction Rules for 700°C Advanced USC Power Plants
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AM-EPRI2007, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Fifth International Conference, 260-270, October 3–5, 2007,
..., encompassing the creation of high-strength alloys, fireside corrosion-resistant materials, and steamside oxidation-resistant alloys. A significant challenge emerged as some of the developed materials fell outside the scope of existing domestic technical standards. Moreover, the potential failure modes...
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View Papertitled, A Study of the Performance Requirements and Construction Rules for 700°C Advanced USC Power Plants
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for content titled, A Study of the Performance Requirements and Construction Rules for 700°C Advanced USC Power Plants
In response to the need to reduce carbon dioxide gas emissions, Japan has been actively researching 700°C-class thermal power plants with a focus on improving overall plant efficiency. This technological advancement is fundamentally grounded in advanced materials development, encompassing the creation of high-strength alloys, fireside corrosion-resistant materials, and steamside oxidation-resistant alloys. A significant challenge emerged as some of the developed materials fell outside the scope of existing domestic technical standards. Moreover, the potential failure modes for advanced ultra-supercritical (A-USC) components operating at 700°C were anticipated to differ substantially from those observed in traditional ultra-supercritical (USC) components at 600°C. Consequently, researchers systematically examined and analyzed the potential failure modes specific to 700°C A-USC components, using these insights to establish comprehensive performance requirements. The research initiative, which commenced in June 2006, was strategically planned to develop a draft technical interpretation by March 2011. This paper provides a detailed overview of the investigative process, encompassing the comprehensive analysis of failure modes, the derivation of performance requirements, and the progression toward developing a new technical interpretation framework for high-temperature power plant components.
Proceedings Papers
AM-EPRI2013, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Seventh International Conference, 753-764, October 22–25, 2013,
... Abstract Laboratory-scale tests are frequently used to generate understanding of high-temperature oxidation phenomena, to characterise and rank the performance of existing, future materials and coatings. Tests within the laboratory have the advantage of being well controlled, monitored...
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View Papertitled, High Pressure Steam <span class="search-highlight">Oxidation</span>: Extents and Influences
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for content titled, High Pressure Steam <span class="search-highlight">Oxidation</span>: Extents and Influences
Laboratory-scale tests are frequently used to generate understanding of high-temperature oxidation phenomena, to characterise and rank the performance of existing, future materials and coatings. Tests within the laboratory have the advantage of being well controlled, monitored and offer the opportunity of simplification which enables the study of individual parameters through isolating them from other factors, such as temperature transients. The influence of pressure on the oxidation of power plant materials has always been considered to be less significant than the effects of temperature and Cr content, but still remains a subject of differing opinions. Experimental efforts, reported in the literature, to measure the influence of steam pressure on the rate of oxidation have not produced very consistent or conclusive results. To examine this further a series of high pressure steam oxidation exposures have been conducted in a high pressure flowing steam loop, exposing a range of materials to flowing steam at 650 and 700 °C and pressure of 25, 50 and 60 bar. Data is presented for ferritic-martensitic alloys showing the effect of increasing pressure on the mass change and oxide thickness of these alloys in the flowing steam loop. In addition the effect observed on the diffusion of aluminium from an aluminised coating in these alloys is also presented and the differences in the extent of diffusion discussed.
Proceedings Papers
AM-EPRI2016, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Eighth International Conference, 55-65, October 11–14, 2016,
... strength, weldability, resistance to fireside corrosion/erosion, and resistance to steamside oxidation and spallation (exfoliation). Thermal fatigue resistance as well as cost considerations would dictate the use of ferritic/martensitic steels. Unfortunately, the strongest of these steels which can be used...
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View Papertitled, Materials Performance in the First U.S. Ultrasupercritical (USC) Power Plant
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for content titled, Materials Performance in the First U.S. Ultrasupercritical (USC) Power Plant
Early supercritical units such as American Electric Power (AEP) Philo U6, the world’s first supercritical power plant, and Eddystone U1 successfully operated at ultrasupercritical (USC) levels. However due to the unavailability of metals that could tolerate these extreme temperatures, operation at these levels could not be sustained and units were operated for many years at reduced steam (supercritical) conditions. Today, recently developed creep strength enhanced ferritic (CSEF) steels, advanced austenitic stainless steels, and nickel based alloys are used in the components of the steam generator, turbine and piping systems that are exposed to high temperature steam. These materials can perform under these prolonged high temperature operating conditions, rendering USC no longer a goal, but a practical design basis. This paper identifies the engineering challenges associated with designing, constructing and operating the first USC unit in the United States, AEP’s John W. Turk, Jr. Power Plant (AEP Turk), including fabrication and installation requirements of CSEF alloys, fabrication and operating requirements for stainless steels, and life management of high temperature components
Proceedings Papers
AM-EPRI2016, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Eighth International Conference, 867-876, October 11–14, 2016,
...-term oxidation test in environments containing water vapor[3]. He put forward a concept of oxidation attack parameter to evaluate the oxidation performance of alloys. However, the oxidation behavior of Fe-base and Ni-base alloys is rarely mentioned in published research, especially for HR120 and Haynes...
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View Papertitled, High Temperature <span class="search-highlight">Oxidation</span> of Austenitic Steels and Nickel-Based Alloys in Steam Environment
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for content titled, High Temperature <span class="search-highlight">Oxidation</span> of Austenitic Steels and Nickel-Based Alloys in Steam Environment
Most effective method to increase the boiler efficiency and decrease emissions is to increase the steam temperature of modern coal-fired power plants. The increase in the steam temperature of the AUSC power plants will require higher grade heat-resistant materials to support the long-term safety and service reliability of power plants. The corrosion resistance of alloys is one of the most important factors for the application in AUSC power plants.
Proceedings Papers
AM-EPRI2007, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Fifth International Conference, 531-543, October 3–5, 2007,
... the effects of these parameters through steam exposure tests on ferritic (P92), austenitic (Esshete 1250), and superalloy (IN740) materials. Results indicate that oxidation rates vary with dissolved oxygen levels in feed water, increasing for austenitic materials and decreasing for ferritic materials, while...
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View Papertitled, An Investigation of Key Experimental Parameters in Steam <span class="search-highlight">Oxidation</span> <span class="search-highlight">Testing</span> and the Impact they have on the Interpretation of Experimental Results
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for content titled, An Investigation of Key Experimental Parameters in Steam <span class="search-highlight">Oxidation</span> <span class="search-highlight">Testing</span> and the Impact they have on the Interpretation of Experimental Results
The acceptance of materials for long-term, safety-critical power generation applications requires multiple testing stages and data generation. Initial screening involves short-term exposures under simplified, constant atmospheres and temperatures, which can eliminate unsuitable materials but fail to distinguish between those with broadly acceptable properties. Subsequent pilot plant testing, costing over £100K for month-long exposures, is typically required. An intermediate laboratory testing step that better replicates in-service conditions would offer a cost-effective approach to material selection and lifetime prediction. For steam oxidation degradation, key experimental parameters—such as water chemistry, pressure, steam delivery, and flow rate—must be tailored to produce oxide scale morphologies similar to those observed in actual plant conditions. This study examines the effects of these parameters through steam exposure tests on ferritic (P92), austenitic (Esshete 1250), and superalloy (IN740) materials. Results indicate that oxidation rates vary with dissolved oxygen levels in feed water, increasing for austenitic materials and decreasing for ferritic materials, while also influencing spallation tendencies. Additionally, steam pressure and delivery methods impact oxidation rates and scale morphology. A comparison with service-exposed materials revealed that traditional oxide scale morphologies were not adequately replicated, whereas cyclic oxidation tests provided a closer match to service-grown scales.
Proceedings Papers
The Effect of Heat Flux on the Steam Oxidation Kinetics and Scale Morphology of Low Alloy Materials
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AM-EPRI2010, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Sixth International Conference, 171-184, August 31–September 3, 2010,
... Abstract The drive for increased efficiency and carbon reduction in next-generation boilers is pushing conventional materials to their limits in terms of strength and oxidation resistance. While traditional isothermal testing of simple coupons provides some insight into material performance...
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View Papertitled, The Effect of Heat Flux on the Steam <span class="search-highlight">Oxidation</span> Kinetics and Scale Morphology of Low Alloy Materials
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for content titled, The Effect of Heat Flux on the Steam <span class="search-highlight">Oxidation</span> Kinetics and Scale Morphology of Low Alloy Materials
The drive for increased efficiency and carbon reduction in next-generation boilers is pushing conventional materials to their limits in terms of strength and oxidation resistance. While traditional isothermal testing of simple coupons provides some insight into material performance, it fails to accurately represent the heat transfer conditions present in operational boilers. This paper introduces a novel test method designed to evaluate the degradation of candidate materials under more realistic heat flux conditions. The method, applied to tubular specimens using both laboratory air and steam as cooling media, demonstrates a significant impact of thermal gradients on material performance. Initial comparisons between tubular heat flux specimens and flat isothermal specimens of 15Mo3 revealed increased oxidation kinetics and altered oxide morphology under heat flux conditions. The paper details the design of this heat flux test, presents results from initial work on 15Mo3 under air and steam conditions, and includes findings from further studies on oxides formed on 2-1/4Cr material under both heat flux and isothermal conditions. This research represents a crucial step toward more accurate prediction of material behavior in next-generation boiler designs.
Proceedings Papers
AM-EPRI2016, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Eighth International Conference, 877-887, October 11–14, 2016,
... microstructural examination, mechanical testing in the as-received condition and after ageing, long-term creep and steam oxidation testing. This paper presents an overview of metallurgical characterization performed on laboratory and industrial Thor material, including microstructural examination and mechanical...
Abstract
View Papertitled, Tenaris New High Steam <span class="search-highlight">Oxidation</span> Resistant, Creep Strength Enhanced Ferritic Steel Thor 115
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A new martensitic steel for power generation applications was developed: Tenaris High Oxidation Resistance (Thor) is an evolution of the popular ASTM grade 91, offering improved steam oxidation resistance and better long-term microstructural stability, with equal or better creep strength. Thanks to its design philosophy, based on consolidated metallurgical knowledge of microstructural evolution mechanisms, and an extensive development performed in the last decade, Thor was engineered to overcome limitations in the use of ASTM grade 91, above 600 °C, particularly related to scale growth and liftoff. After laboratory development, Thor was successfully validated at the industrial level. Several heats up to 80 metric tons were cast at the steel shop, hot rolled to tubes of various dimensions, and heat treated. Trial heats underwent extensive characterization, including deep microstructural examination, mechanical testing in the as-received condition and after ageing, long-term creep and steam oxidation testing. This paper presents an overview of metallurgical characterization performed on laboratory and industrial Thor material, including microstructural examination and mechanical testing in time-independent and time-dependent regimes. Data relevant to the behavior and the performance of Thor steel are also included.
Proceedings Papers
AM-EPRI2007, Advances in Materials Technology for Fossil Power Plants: Proceedings from the Fifth International Conference, 208-219, October 3–5, 2007,
... different rolling processes. This paper summarizes the results of the investigations on base material, including creep tests and high temperature oxidation behavior, but also presents mechanical properties after welding, cold bending and hot induction bending. boron content chromium content chromium...
Abstract
View Papertitled, VM12, a New 12%Cr Steel for Application at High Temperature in Advanced Power Plants: Status of Development
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for content titled, VM12, a New 12%Cr Steel for Application at High Temperature in Advanced Power Plants: Status of Development
The T/P91 and T/P92 steel grades were developed as a result of a demand of high creep strength for advanced power plants. Nevertheless, their operating temperature range is limited by their oxidation performance which is lower compared with usual 12%Cr steels or austenitic steels. Moreover, the new designed power plants require higher pressure and temperature in order to improve efficiency and reduce harmful emissions. For these reasons, Vallourec and Mannesmann have recently developed a new 12%Cr steel which combines good creep resistance and high steam-side oxidation resistance. This new steel, with a chromium content of 12% and with other additional elements such as cobalt, tungsten and boron, is named VM12. Manufacturing of this grade has been successfully demonstrated by production of several laboratory and industrial heats and rolling of tubes and pipes in several sizes using different rolling processes. This paper summarizes the results of the investigations on base material, including creep tests and high temperature oxidation behavior, but also presents mechanical properties after welding, cold bending and hot induction bending.
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