Chris Guenther
United States Department of Energy
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ASME 2013 International Mechanical Engineering Congress and Exposition | 2013
Jonathan Tucker; Lawrence J. Shadle; Sofiane Benyahia; Joseph S. Mei; Chris Guenther; M. E. Koepke
Useful prediction of the kinematics, dynamics, and chemistry of a system relies on precision and accuracy in the quantification of component properties, operating mechanisms, and collected data. In an attempt to emphasize, rather than gloss over, the benefit of proper characterization to fundamental investigations of multiphase systems incorporating solid particles, a set of procedures were developed and implemented for the purpose of providing a revised methodology having the desirable attributes of reduced uncertainty, expanded relevance and detail, and higher throughput. Better, faster, cheaper characterization of multiphase systems result. Methodologies are presented to characterize particle size, shape, size distribution, density (particle, skeletal and bulk), minimum fluidization velocity, void fraction, particle porosity, and assignment within the Geldart Classification. A novel form of the Ergun equation was used to determine the bulk void fractions and particle density. Accuracy of properties-characterization methodology was validated on materials of known properties prior to testing materials of unknown properties. Several of the standard present-day techniques were scrutinized and improved upon where appropriate. Validity, accuracy, and repeatability were assessed for the procedures presented and deemed higher than present-day techniques. A database of over seventy materials has been developed to assist in model validation efforts and future desig
Other Information: PBD: 15 Sep 2001 | 2001
Chris Guenther; Bill Rogers
The HPCCK project was initiated with a kickoff meeting held on June 12, 2001 in Morgantown, WV, which was attended by all project participants. SRIs existing g-RCFR reactor was reconfigured to a SRT-RCFR geometry (Task 1.1). This new design is suitable for performing the NBFZ experiments of Task 1.2. It was decided that the SRT-RCFR apparatus could be modified and used for the HPBO experiments. The purchase, assembly, and testing of required instrumentation and hardware is nearly complete (Task 1.1 and 1.2). Initial samples of PBR coal have been shipped from FWC to SRI (Task 1.1). The ECT device for coal flow measurements used at FWC will not be used in the SRI apparatus and a screw type feeder has been suggested instead (Task 5.1). NEA has completed a upgrade of an existing Fluent simulator for SRIs RCFR to a version that is suitable for interpreting results from tests in the NBFZ configuration (Task 1.3) this upgrade includes finite-rate submodels for devolatilization, secondary volatiles pyrolysis, volatiles combustion, and char oxidation. Plans for an enhanced version of CBK have been discussed and development of this enhanced version has begun (Task 2.5). A developmental framework for implementing pressure and oxygen effects on ash formation in an ash formation model (Task 3.3) has begun.
Powder Technology | 2007
Chris Guenther; Ronald W. Breault
Chemical Engineering Science | 2008
Veeraya Jiradilok; Dimitri Gidaspow; Ronald W. Breault; Lawrence J. Shadle; Chris Guenther; Shaoping Shi
Powder Technology | 2013
R. Garg; C. Tong; Mehrdad Shahnam; Chris Guenther
Aiche Journal | 2012
Tingwen Li; Chris Guenther
Powder Technology | 2012
Tingwen Li; Chris Guenther
Powder Technology | 2014
Rupen Panday; Lawrence J. Shadle; Mehrdad Shahnam; Ray Cocco; Allan Issangya; James S. Spenik; J. Christopher Ludlow; Balaji Gopalan; Franklin Shaffer; Madhava Syamlal; Chris Guenther; S.B. Reddy Karri; Ted M. Knowlton
Powder Technology | 2010
Ronald W. Breault; Chris Guenther
Archive | 2003
Madhava Syamlal; Chris Guenther