The invention relates to a method and system for surface layer modification of Fe—Cr ferritic steels for improved resistance to various corrosive environments. More particularly the invention relates to an article of manufacture and a method and system for surface modification of Fe—Cr ferritic steels to improve corrosion resistance to alkali sulfates and alkali chlorides, such as are present in liquid phase coal ash.
Fe—Cr ferritic steels, and other bulk alloys of steel, have conventionally been used to provide corrosion resistant structures for a wide variety of applications. High temperature fireside metal corrosion, or “wastage,” in conventional coal-fired steam generators can be caused by gas-phase oxidation or liquid phase coal-ash corrosion. While gas phase corrosion does not typically cause corrosion problems for properly selected ferritic steels, liquid phase coal ash corrosion can be a serious problem. Such coal ash corrosion can rapidly degrade a wide variety of steels normally used for their corrosion resistant properties. In particular, the presence of alkali chlorides, such as NaCl in the coal ash deposit, can lead to catastrophic metal corrosion in the range of about 650° C.-800° C.
An improved article of manufacture, composition of matter and method and system of manufacture are provided for modification of the surface chemistry of Fe—Cr ferritic steels to achieve resistance to fireside corrosion and also provide a passivating protective layer to reduce other forms of corrosion, such as degradation of Fe—Cr ferritic steels used in numerous types of corrosive chemical environments or even for applications where the material is subject to a high energy plasma.
In this invention the surface of Fe—Cr ferritic steels is modified to prevent and/or minimize transport of chlorine ions, sulfur ions and/or chloride or sulfide species to form a protective or passivating Cr-rich oxide scale on an underlying Fe—Cr ferritic steel substrate. The protective layer is obtained most preferably by contacting the Fe—Cr ferritic steels with a solution of Si and Al dissolved in lithium at temperatures in the range of 600-650° C. and for times in the range of 1-2 hours or other time periods sufficient for the dissolved Si and Al to react with a surface transition metal, such as Fe and Cr, to form a silicide and/or aluminide coating. The coating process is preferably done under a vacuum or inert atmosphere. In one example, Li together with Si (in powder form) and Al also (in powder form) is sealed in a gas tight stainless steel capsule together with a number of Fe-based alloy specimens. After heating to appropriate temperatures to melt the Li and dissolve the Si and Al powder in the molten Li to form a mixture, the specimens were coated with the liquid metal mixture. After coating was complete, the capsule was opened and the liquid metal mixture was drained. A small amount of methanol can be used to dissolve any residual Li from the specimen surfaces. Subsequent testing of the coated specimens was performed in an environment containing low concentrations of NaCl in an air atmosphere containing SO2 at 650° C. The coated specimens exhibited virtually no corrosion when compared with those without the coating. Further details are provided in Example 1.
Various aspects of the invention are described hereinafter, and these and other improvements are described in greater detail below, including the drawings described in the following section.
A system and method for surface modification of Fe—Cr ferritic steels is shown in
In order to achieve protection from corrosive environments, such as liquid phase coal ash at elevated temperatures, a passivating, surface modified layer, is established on the Fe—Cr ferritic steel. In general, the surface modified layer is created by chemically modifying the Fe—Cr steel to achieve a surface layer composition which is an aluminide/silicide layer formed in conjunction with the base Fe—Cr ferritic composition. Preferably the resulting article of manufacture has a passivating layer of about 1.0 micrometer thickness or greater and is formed by subjecting the base steel structures to a mixture of aluminum and silicon powder in a controlled gas atmosphere at an elevated temperature to react with the steel. Most preferably the aluminum/silicon powder is also combined with Li solid, and then the temperature is increased to melt the Li to form a liquid mixture, which causes the chemical reaction to proceed between the Fe—Cr ferritic steel and the aluminum/silicon powder mixture. The atmosphere above the Fe—Cr ferritic steel is preferably controlled to optimize formation of the surfaced modified, protective layer on the Fe—Cr ferritic steel. The gas atmosphere and temperature in the chamber 20 can be adjusted to accelerate or decrease growth rate. The resulting articles of manufacture can then be further processed for use in specific environmental application, such as for use in coal-fired stem generators or any other corrosive environment, particularly where subjected to liquid phase coal ash. Applications are particularly advantageous when the steel is subject to a chloride or sulfide, such as NaCl or Na2SO4.
The following non-limiting example describes one method of processing Fe—Cr ferritic steels to form the surface modified layer.
Surface modification of an Fe-Cr based alloy was performed to improve corrosion protection from the environment containing low concentrations (0-500 vppm) NaCl in air containing 1% SO2 at 650° C. The surface modification on the Fe-based alloys was performed as follows: Loaded 4 g Li (mp=180° C., volume≈8 ml) in a wire mesh plus 1-2 wt. % Si (in powder form) plus 0.1-0.5 wt. % Al (in powder form) inside a SS304 tube and sealed with a Swagelock fitting to make it gas tight. Three stacks of specimens were inserted into the capsule as shown schematically in
It should be understood that various changes and modifications referred to in the embodiment described herein would be apparent to those skilled in the art. Such changes and modifications can be made without departing from the spirit and scope of the present invention.
This application claims priority to U.S. Provisional Patent Application No. 60/707,120 filed on Aug. 10, 2005, and this application is incorporated herein by reference.
The United States Government has certain rights in the invention pursuant to Contract No. W-31-109-ENG-38 between the U.S. Department of Energy and the University of Chicago operating Argonne National Laboratory.
Number | Date | Country | |
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60707120 | Aug 2005 | US |