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Dive into the research topics where Hans Leibold is active.

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Featured researches published by Hans Leibold.


Waste Management | 2017

Screw pyrolysis technology for sewage sludge treatment

Marco Tomasi Morgano; Hans Leibold; Frank Richter; Dieter Stapf; Helmut Seifert

Sewage sludge quantities have grown continuously since the introduction of the European Directive (UWWTD 91/271/EEC) relating to the treatment of urban wastewater. In the present, most of the sewage sludge is combusted in single fuels incineration plants or is co-fired in waste incineration or coal power plants. The combustion of sewage sludge is a proven technology. Other treatments, such as fluidized bed gasification, were successfully adopted to produce suitable syngas for power production. Besides, the number of large wastewater treatment plants is relatively small compared to the local rural ones. Moreover, alternative technologies are arising with the main target of nutrients recovery, with a special focus on phosphorus. The aforementioned issues, i.e. the small scale (below 1MW) and the nutrients recovery, suggest that pyrolysis in screw reactors may become an attractive alternative technology for sewage sludge conversion, recovery and recycling. In this work, about 100kg of dried sewage sludge from a plant in Germany were processed at the newly developed STYX Reactor, at KIT. The reactor combines the advantages of screw reactors with the high temperature filtration, in order to produce particle and ash free vapors and condensates, respectively. Experiments were carried out at temperatures between 350°C and 500°C. The yield of the char decreased from 66.7wt.% to 53.0wt.%. The same trend was obtained for the energy yield, while the maximum pyrolysis oil yield of 13.4wt.% was obtained at 500°C. Besides mercury, the metals and the other minerals were completely retained in the char. Nitrogen and sulfur migrated from the solid to the condensate and to the gas, respectively. Based on the energy balance, a new concept for the decentral production of char as well as heat and power in an externally fired micro gas turbine showed a cogeneration efficiency up to about 40%.


Powder Technology | 2008

HTHP syngas cleaning concept of two stage biomass gasification for FT synthesis

Hans Leibold; Andreas Hornung; H. Seifert


Environmental Progress | 2012

State of the art of the bioliq® process for synthetic biofuels production

Nicolaus Dahmen; Eckhard Dinjus; T. Kolb; Hans Leibold; Ralph Stahl


Journal of Analytical and Applied Pyrolysis | 2015

Screw pyrolysis with integrated sequential hot gas filtration

Marco Tomasi Morgano; Hans Leibold; Frank Richter; Helmut Seifert


Wiley Interdisciplinary Reviews: Energy and Environment | 2017

The bioliq process for producing synthetic transportation fuels

Nicolaus Dahmen; J. Abeln; Mark Eberhard; T. Kolb; Hans Leibold; Joerg Sauer; Dieter Stapf; Bernd Zimmerlin


Powder Technology | 2008

Evaluation of the temperature-dependent adhesion characteristics of fly ashes with a HT-rheometer

Bernd Zimmerlin; Hans Leibold; Helmut Seifert


Chemical Engineering & Technology | 2003

Coupled Pressure Pulse (CPP) Recleaning System for Ceramic Hot‐Gas Filters with an Integrated Safety Filter

Robert Mai; Hans Leibold; Helmut Seifert; Steffen Heidenreich; Walter Haag; Astrid Walch


Journal of Supercritical Fluids | 2015

High pressure in synthetic fuels production

Nicolaus Dahmen; Neda Djordjevic; T. Henrich; T. Kolb; Hans Leibold; Jörg Sauer


Journal of Analytical and Applied Pyrolysis | 2017

Experimental comparison of two bench scale units for fast and intermediate pyrolysis

Axel Funke; Marco Tomasi Morgano; Nicolaus Dahmen; Hans Leibold


Chemie Ingenieur Technik | 2002

Coupled Pressure Pulse‐ (CPP) Abreinigungssystem für keramische Heißgasfilter mit integriertem Sicherheitsfilter

Robert Mai; Hans Leibold; Helmut Seifert; Steffen Heidenreich; Walter Haag; Astrid Walch

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Helmut Seifert

Karlsruhe Institute of Technology

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Bernd Zimmerlin

Karlsruhe Institute of Technology

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Robert Mai

Karlsruhe Institute of Technology

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Marco Tomasi Morgano

Karlsruhe Institute of Technology

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Frank Richter

Karlsruhe Institute of Technology

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Dieter Stapf

Karlsruhe Institute of Technology

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Nicolaus Dahmen

Karlsruhe Institute of Technology

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T. Kolb

Karlsruhe Institute of Technology

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