Innovative and Advanced Materials Research for High Temperature Solar Receivers

Author(s):  
Fritz Zaversky ◽  
Fabienne Sallaberry ◽  
M. Alejandra Mazo ◽  
Aitana Tamayo ◽  
David Morris ◽  
...  
2012 ◽  
Vol 710 ◽  
pp. 792-798
Author(s):  
G. Nagashiresha ◽  
T.S. Sridhar ◽  
Sukla Chandra

There is an ever increasing demand and innovation worldwide in the area of materials research in aerospace industry. Research on materials is the focused area in aerospace sector because reducing aircraft/spacecraft weight and/or increasing the temperature capabilities is the key factor in increasing the performance. Hence there is always an urge on the development of advanced materials especially in the area of light weight, High temperature resistant materials. There are different ways of keeping abreast on current state of art on the development of advanced materials namely reading Journal publications, attending conferences/seminars or performing intellectual property (IP) analysis specifically looking at patents. Patent portfolio indicates the technology and research direction of a company. Intellectual property plays a key role in the present global competitive world. It is not only an asset for the company but also helps in increasing the bottom line of an organization. Hence, an attempt was made to look at the global patent scenario of materials used for aerospace industry. A high level scan of aerospace materials patent portfolio in the past 20 years was done to understand the current technology focus and trend of materials research. The study was restricted to Aerospace/Aviation Players. Four different types of Materials are considered for the study namely Light weight metals (includes Al and Ti alloys), Superalloys, High temperature coatings and Composites. A further deep dive analysis on the above materials has been done to understand the Industry focus on various technology areas such as Manufacturing, Inspection, Application etc. This analysis helps technologists in understanding the current state of art and research focus in Materials area specific to Aerospace/Aviation Industry


Alloy Digest ◽  
1971 ◽  
Vol 20 (9) ◽  

Abstract Armco 18 SR is a ferritic stainless steel that provides excellent resistance to high temperature scaling. It is readily welded by conventional methods and is not subject to troublesome embrittlement or loss of corrosion resistance in the heat-affected zones that affect many other straight chromium alloys. This datasheet provides information on composition, physical properties, hardness, and tensile properties. It also includes information on high temperature performance and corrosion resistance as well as forming, heat treating, machining, and joining. Filing Code: SS-259. Producer or source: Armco Steel Corporation, Advanced Materials Division.


2010 ◽  
Vol 156-157 ◽  
pp. 677-677

This paper has been published in Advanced Materials Research Volumes 148 - 149, pp 544 http://www.scientific.net/AMR.148-149.544


Author(s):  
Dieter Bohn ◽  
Nathalie Po¨ppe ◽  
Joachim Lepers

The present paper reports a detailed technological assessment of two concepts of integrated micro gas turbine and high temperature (SOFC) fuel cell systems. The first concept is the coupling of micro gas turbines and fuel cells with heat exchangers, maximising availability of each component by the option for easy stand-alone operation. The second concept considers a direct coupling of both components and a pressurised operation of the fuel cell, yielding additional efficiency augmentation. Based on state-of-the-art technology of micro gas turbines and solid oxide fuel cells, the paper analyses effects of advanced cycle parameters based on future material improvements on the performance of 300–400 kW combined micro gas turbine and fuel cell power plants. Results show a major potential for future increase of net efficiencies of such power plants utilising advanced materials yet to be developed. For small sized plants under consideration, potential net efficiencies around 70% were determined. This implies possible power-to-heat-ratios around 9.1 being a basis for efficient utilisation of this technology in decentralised CHP applications.


Coatings ◽  
2021 ◽  
Vol 11 (9) ◽  
pp. 1144
Author(s):  
Laihao Yu ◽  
Yingyi Zhang ◽  
Tao Fu ◽  
Jie Wang ◽  
Kunkun Cui ◽  
...  

Traditional refractory materials such as nickel-based superalloys have been gradually unable to meet the performance requirements of advanced materials. The Mo-Si-based alloy, as a new type of high temperature structural material, has entered the vision of researchers due to its charming high temperature performance characteristics. However, its easy oxidation and even “pesting oxidation” at medium temperatures limit its further applications. In order to solve this problem, researchers have conducted large numbers of experiments and made breakthrough achievements. Based on these research results, the effects of rare earth elements like La, Hf, Ce and Y on the microstructure and oxidation behavior of Mo-Si-based alloys were systematically reviewed in the current work. Meanwhile, this paper also provided an analysis about the strengthening mechanism of rare earth elements on the oxidation behavior for Mo-Si-based alloys after discussing the oxidation process. It is shown that adding rare earth elements, on the one hand, can optimize the microstructure of the alloy, thus promoting the rapid formation of protective SiO2 scale. On the other hand, it can act as a diffusion barrier by producing stable rare earth oxides or additional protective films, which significantly enhances the oxidation resistance of the alloy. Furthermore, the research focus about the oxidation protection of Mo-Si-based alloys in the future was prospected to expand the application field.


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