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  • This paper describes a development of various procedures and technological steps in sugar beet processing, sugar production and waste treatment in sugar plants during last twenty years including follow-up trends and disciplines. The main features of new trends are complex processing of raw materials, implementation of non-waste technologies, re-use and purification of waste waters with anaerobic treatment to produce biogas and optimal use of heat in the technological process including connected agricultural applications. New technological procedures are based on limitation of demanding thermal processes and replacement of chemical processes by physical ones which reduce negative impact on the environment, e.g. a substitution of chemical purification (carbonatation) by membrane or adsorption techniques, or minimising of waste industrial gases including gas compounds responsible for typical odour. Authors also present an example of technological scheme which connect and combine sugar technology with liquid biofuel production (bioethanol) involving other processes for utilisation of waste materials such as distillation residues. Another important tendency in sugar technology is rapid concentration of production which requires new procedures enabling to exploit the production capacity throughout the whole year. New methods for computer control, process simulation and modelling are developed on the account of implementation of new processes into complicated production scheme of a modern sugar plant. This paper also introduces a complex simulation scheme of sugar plant starting from beet processing, over integrated bioethanol production and waste treatment.
  • This paper describes a development of various procedures and technological steps in sugar beet processing, sugar production and waste treatment in sugar plants during last twenty years including follow-up trends and disciplines. The main features of new trends are complex processing of raw materials, implementation of non-waste technologies, re-use and purification of waste waters with anaerobic treatment to produce biogas and optimal use of heat in the technological process including connected agricultural applications. New technological procedures are based on limitation of demanding thermal processes and replacement of chemical processes by physical ones which reduce negative impact on the environment, e.g. a substitution of chemical purification (carbonatation) by membrane or adsorption techniques, or minimising of waste industrial gases including gas compounds responsible for typical odour. Authors also present an example of technological scheme which connect and combine sugar technology with liquid biofuel production (bioethanol) involving other processes for utilisation of waste materials such as distillation residues. Another important tendency in sugar technology is rapid concentration of production which requires new procedures enabling to exploit the production capacity throughout the whole year. New methods for computer control, process simulation and modelling are developed on the account of implementation of new processes into complicated production scheme of a modern sugar plant. This paper also introduces a complex simulation scheme of sugar plant starting from beet processing, over integrated bioethanol production and waste treatment. (en)
Title
  • Trends and development of technological procedures in the sugar industry during last twenty years
  • Trends and development of technological procedures in the sugar industry during last twenty years (en)
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  • Trends and development of technological procedures in the sugar industry during last twenty years
  • Trends and development of technological procedures in the sugar industry during last twenty years (en)
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  • RIV/60461373:22330/14:43899299!RIV15-MSM-22330___
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  • 51173
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  • RIV/60461373:22330/14:43899299
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  • sugar industry; technology; trends (en)
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  • [D308E778421F]
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  • Praha
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  • Praha
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  • Proceedings of the 21st International Congress of Chemical and Process Engineering CHISA 2014
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  • Bubník, Zdeněk
  • Henke, Svatopluk
  • Hinková, Andrea
  • Kadlec, Pavel
  • Pour, Vladimír
  • Šárka, Evžen
  • Gebler, J.
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number of pages
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  • Česká společnost chemického inženýrství
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  • 978-80-02-02555-9
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  • 22330
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