Design, quality, and quality assurance of solid recovered fuels for the substitution of fossil feedstock in the cement industry

2014 ◽  
Vol 32 (7) ◽  
pp. 565-585 ◽  
Author(s):  
R Sarc ◽  
KE Lorber ◽  
R Pomberger ◽  
M Rogetzer ◽  
EM Sipple
2019 ◽  
Vol 37 (9) ◽  
pp. 885-897 ◽  
Author(s):  
Renato Sarc ◽  
IM Seidler ◽  
L Kandlbauer ◽  
KE Lorber ◽  
R Pomberger

Production, quality and quality assurance, as well as co-incineration of solid recovered fuels in cement industry, have become state-of-the-art in the European cement industry. At the global level, average thermal substitution rate is about 17%, whereby, only 13% in Canada and in the USA 16%, while in the European Union 28 it is about 44% (i.e. 11,300,000 t waste fuels utilised in 2016). In Austria, thermal substitution rate was ca. 80% in 2017, which was worldwide the highest one. Regarding solid recovered fuels for the cement industry, two types are relevant, namely solid recovered fuels PREMIUM Quality and solid recovered fuels MEDIUM Quality. In the case study shown, solid recovered fuels PREMIUM Quality from 11 and solid recovered fuels MEDIUM Quality from nine different solid recovered fuels production plants have been investigated. Investigations consist of sorting and sieving analyses (for PREMIUM), as well as physical–chemical analyses (for both solid recovered fuels types) according to the (inter)national standards (i.e. Austrian ‘ÖNORM’, European ‘EN’ standards and CEN TC 343 guidelines). The results gained from the first investigation were published in 2014 and here, results of further investigations are updated for 2016 and 2018 and confronted with legal and market relevant requirements. During the investigation, not enough parallel samples could be investigated and therefore no adequate scientific statistical analyses could be elaborated but a more practical indicative interpretation has been made. Finally, it can be confirmed, that all investigated solid recovered fuels fulfil the Austrian legal and international solid recovered fuels and co-incineration market requirements.


Author(s):  
N. R. Yakubaliev ◽  
E. G. Khomutova

The article reveals the problem of poorly studied methodology of lean design and its practical application. The principle of the Q6 system is described as the basis for the implementation of lean methods in design at NHC Miles and Kamov JSC. The sequence of implementation of the first elements of Q6 within the framework of the project “Design Quality Assurance System” has been determined.


1998 ◽  
Vol 35 (5) ◽  
pp. 750-768 ◽  
Author(s):  
Dennis E Becker ◽  
WJ (Bill) Burwash ◽  
RA (Bob) Montgomery ◽  
Y (Bill) Liu

The Confederation Bridge is a 12.9 km long multi-span bridge spanning the Northumberland Strait to connect the provinces of Prince Edward Island and New Brunswick on the east coast of Canada. It is the longest continuous marine span bridge over ice-covered water in the world. The bridge is a design, build, operate, and transfer facility with the Government of Canada being the ultimate owner. Construction started in October 1993, and the bridge officially opened, on schedule, to traffic on June 1, 1997. The combination of deep water, high lateral and eccentric loads, complex geology and variable strength bedrock, and short construction window due to ice and bad weather introduced many foundation engineering challenges. This paper summarizes and discusses the geotechnical aspects of foundation design and construction monitoring services for the bridge. The geological setting and geotechnical conditions, the loading conditions and design criteria, specialized geotechnical analyses, foundation design, and construction quality assurance - quality control issues are described and discussed.Key words: Confederation Bridge, Northumberland Strait, foundation design, quality assurance, ring footing, drilled shafts.


2020 ◽  
Author(s):  
D.A. Zakharov ◽  
V.V. Mizgulin ◽  
V.S. Malitsky

The article describes the systems engineering processes, the current problems encountered in the work of a system engineer, the reasons for their occurrence and the goals, functionality of the new system tool “Product Studio”. «Product Studio» is Design Product Quality Assurance System and it aims to simplify the activities of the system engineer, providing the necessary functionality to perform the relevant processes from requirements definition and management, to the formation of architectural and technical solutions. Keywords: system engineering, system modeling tools, system life cycle process, software system, system engineering activities, architectural design, system modeling languages, current problems in the SE work


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