Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Peter G. Loutzenhiser is active.

Publication


Featured researches published by Peter G. Loutzenhiser.


Review of Scientific Instruments | 2015

Characterization of a 6 kW high-flux solar simulator with an array of xenon arc lamps capable of concentrations of nearly 5000 suns

Robert J. Gill; Evan Bush; Philipp Haueter; Peter G. Loutzenhiser

A systematic methodology for characterizing a novel and newly fabricated high-flux solar simulator is presented. The high-flux solar simulator consists of seven xenon short-arc lamps mounted in truncated ellipsoidal reflectors. Characterization of spatial radiative heat flux distribution was performed using calorimetric measurements of heat flow coupled with CCD camera imaging of a Lambertian target mounted in the focal plane. The calorimetric measurements and images of the Lambertian target were obtained in two separate runs under identical conditions. Detailed modeling in the high-flux solar simulator was accomplished using Monte Carlo ray tracing to capture radiative heat transport. A least-squares regression model was used on the Monte Carlo radiative heat transfer analysis with the experimental data to account for manufacturing defects. The Monte Carlo ray tracing was calibrated by regressing modeled radiative heat flux as a function of specular error and electric power to radiation conversion onto measured radiative heat flux from experimental results. Specular error and electric power to radiation conversion efficiency were 5.92 ± 0.05 mrad and 0.537 ± 0.004, respectively. An average radiative heat flux with 95% errors bounds of 4880 ± 223 kW ⋅ m(-2) was measured over a 40 mm diameter with a cavity-type calorimeter with an apparent absorptivity of 0.994. The Monte Carlo ray-tracing resulted in an average radiative heat flux of 893.3 kW ⋅ m(-2) for a single lamp, comparable to the measured radiative heat fluxes with 95% error bounds of 892.5 ± 105.3 kW ⋅ m(-2) from calorimetry.


Solar Energy | 2015

Solar electricity via an Air Brayton cycle with an integrated two-step thermochemical cycle for heat storage based on Co3O4/CoO redox reactions: Thermodynamic analysis

Andrew J. Schrader; Alexander P. Muroyama; Peter G. Loutzenhiser


Solar Energy | 2017

A review of the state-of-the-art in solar-driven gasification processes with carbonaceous materials

Peter G. Loutzenhiser; Alexander P. Muroyama


Solar Energy | 2017

Solar electricity via an Air Brayton cycle with an integrated two-step thermochemical cycle for heat storage based on Co 3 O 4 /CoO redox reactions III: Solar thermochemical reactor design and modeling

Andrew J. Schrader; Gianmarco De Dominicis; Garrett L. Schieber; Peter G. Loutzenhiser


International Journal of Hydrogen Energy | 2017

H2O splitting via a two-step solar thermoelectrolytic cycle based on non-stoichiometric ceria redox reactions: Thermodynamic analysis

Garrett L. Schieber; Ellen B. Stechel; Andrea Ambrosini; James E. Miller; Peter G. Loutzenhiser


Fuel | 2018

Design and demonstration of a prototype 1.5 kWth hybrid solar/autothermal steam gasifier

Alexander P. Muroyama; Iacopo Guscetti; Garrett L. Schieber; Sophia Haussener; Peter G. Loutzenhiser


Journal of Solar Energy Engineering-transactions of The Asme | 2017

Design and Characterization of a Novel Upward Flow Reactor for the Study of High-Temperature Thermal Reduction for Solar-Driven Processes

H. Evan Bush; Karl-Philipp Schlichting; Robert J. Gill; Sheldon M. Jeter; Peter G. Loutzenhiser


Solar Energy | 2018

Solar electricity via an Air Brayton cycle with an integrated two-step thermochemical cycle for heat storage based on Fe2O3/Fe3O4 redox reactions: Thermodynamic and kinetic analyses

H. Evan Bush; Peter G. Loutzenhiser


ASME 2018 12th International Conference on Energy Sustainability | 2018

Design Using Ray Tracing for a Solar Chemistry Test Module

Clayton Nguyen; Lu Shen; Sheldon M. Jeter; Peter G. Loutzenhiser


international conference on fuel cell science engineering and technology fuelcell collocated with asme international conference on energy sustainability | 2016

High performance reduction/oxidation metal oxides for thermochemical energy storage (PROMOTES)

James E. Miller; Andrea Ambrosini; Sean Michael Babiniec; Eric N. Coker; Clifford K. Ho; Hany Al-Ansary; Sheldon M. Jeter; Peter G. Loutzenhiser; Nathan G. Johnson; Ellen B. Stechel

Collaboration


Dive into the Peter G. Loutzenhiser's collaboration.

Top Co-Authors

Avatar

Alexander P. Muroyama

Georgia Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

Andrea Ambrosini

Sandia National Laboratories

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Garrett L. Schieber

Georgia Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

James E. Miller

Sandia National Laboratories

View shared research outputs
Top Co-Authors

Avatar

Sheldon M. Jeter

Georgia Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

Andrew J. Schrader

Georgia Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

Clifford K. Ho

Sandia National Laboratories

View shared research outputs
Top Co-Authors

Avatar

Eric N. Coker

Sandia National Laboratories

View shared research outputs
Top Co-Authors

Avatar

H. Evan Bush

Georgia Institute of Technology

View shared research outputs
Researchain Logo
Decentralizing Knowledge