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Thomas H. Kuehn

Researcher at University of Minnesota

Publications -  123
Citations -  4274

Thomas H. Kuehn is an academic researcher from University of Minnesota. The author has contributed to research in topics: Heat transfer & Natural convection. The author has an hindex of 32, co-authored 120 publications receiving 3896 citations. Previous affiliations of Thomas H. Kuehn include Iowa State University.

Papers
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Journal ArticleDOI

Performance evaluation of filtering facepiece respirators using virus aerosols

TL;DR: Physical penetration and infectivity penetration of adenovirus and influenza virus aerosols through respirators were measured to better characterize the effectiveness of filtering facepiece respirators against airborne virus.
Journal Article

Comparison of emissions from selected commercial kitchen appliances and food products

TL;DR: In this paper, the authors measured emissions from various grease-producing cooking processes in an attempt to quantify the emissions that enter typical commercial kitchen exhaust hoods, including single-sided griddles, open-vat deep fat fryers, under-fired broilers, full size convection ovens, and six burner ranges.

Wellbore heat transfer in CO2-based geothermal systems

TL;DR: In this paper, the authors explore the hypothesis that wellbore flow can be assumed to be adiabatic for the majority of a CO2-Plume Geothermal (CPG) facility's lifespan.
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Heat depletion in sedimentary basins and its effect on the design and electric power output of CO2 Plume Geothermal (CPG) systems

TL;DR: In this paper, the authors numerically simulate the temperature depletion of a sedimentary basin and find the corresponding CPG electricity generation variation over time, and find that for a given reservoir depth, temperature, thickness, permeability, and well configuration, an optimal well spacing provides the largest average electric generation over the reservoir lifetime.
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Performance analysis of a parabolic trough solar collector with a porous absorber receiver

TL;DR: In this article, the thermal performance of a parabolic trough solar collector with an innovative porous absorber receiver is investigated and a one-dimensional finite-difference computer program is used to compute steady-state fluid velocity and transient temperature distributions along the line of vertical symmetry near the midpoint of the collector.