An experimental study of the wall characteristics of a local fluid constriction plasma generator

A local energy conversion efficiency for a confined-discharge plasma generator is defined as the fraction of local power input which is transferred to the gas. The local efficiency is a maximum near the gas inlet and diminishes with axial distance. The thermal development length is the axial exten...

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Main Author: Smith, Wayne Lee
Other Authors: Mechanical Engineering
Format: Others
Language:en
Published: Virginia Polytechnic Institute and State University 2017
Subjects:
Online Access:http://hdl.handle.net/10919/76137
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spelling ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-761372021-05-05T05:40:22Z An experimental study of the wall characteristics of a local fluid constriction plasma generator Smith, Wayne Lee Mechanical Engineering LD5655.V855 1973.S655 A local energy conversion efficiency for a confined-discharge plasma generator is defined as the fraction of local power input which is transferred to the gas. The local efficiency is a maximum near the gas inlet and diminishes with axial distance. The thermal development length is the axial extent of that region in the plasma generator duct where the local efficiency is nonzero. This length varies with mass flow rate, current, and duct diameter. Nondimensionalization of the energy equation results in a dimensionless S parameter which determines the thermal development length. The S parameter is the product of mass flow rate, electrical conductivity, enthalpy, and duct diameter divided by the arc current squared. The thermal development length is the product of two times the S parameter and the duct diameter. Below-atmospheric static pressures occur when a calorimeter is installed at the generator plasma exit. These pressures result from deceleration of the plasma in the calorimeter. Empirical expressions for enthalpy and electrical conductivity as functions of current and mass flow rate are substituted into the S parameter, allowing the parameter to be evaluated directly from the mass flow rate and current. The S parameter is effective in evaluating redevelopment thermal lengths downstream of local radial fluid injection into the plasma. Also, the S parameter is found to be effective in evaluating thermal development lengths of independent data from a previous investigator. Master of Science 2017-03-10T18:28:53Z 2017-03-10T18:28:53Z 1973 Thesis Text http://hdl.handle.net/10919/76137 en OCLC# 33879572 In Copyright http://rightsstatements.org/vocab/InC/1.0/ x, 108 leaves application/pdf application/pdf Virginia Polytechnic Institute and State University
collection NDLTD
language en
format Others
sources NDLTD
topic LD5655.V855 1973.S655
spellingShingle LD5655.V855 1973.S655
Smith, Wayne Lee
An experimental study of the wall characteristics of a local fluid constriction plasma generator
description A local energy conversion efficiency for a confined-discharge plasma generator is defined as the fraction of local power input which is transferred to the gas. The local efficiency is a maximum near the gas inlet and diminishes with axial distance. The thermal development length is the axial extent of that region in the plasma generator duct where the local efficiency is nonzero. This length varies with mass flow rate, current, and duct diameter. Nondimensionalization of the energy equation results in a dimensionless S parameter which determines the thermal development length. The S parameter is the product of mass flow rate, electrical conductivity, enthalpy, and duct diameter divided by the arc current squared. The thermal development length is the product of two times the S parameter and the duct diameter. Below-atmospheric static pressures occur when a calorimeter is installed at the generator plasma exit. These pressures result from deceleration of the plasma in the calorimeter. Empirical expressions for enthalpy and electrical conductivity as functions of current and mass flow rate are substituted into the S parameter, allowing the parameter to be evaluated directly from the mass flow rate and current. The S parameter is effective in evaluating redevelopment thermal lengths downstream of local radial fluid injection into the plasma. Also, the S parameter is found to be effective in evaluating thermal development lengths of independent data from a previous investigator. === Master of Science
author2 Mechanical Engineering
author_facet Mechanical Engineering
Smith, Wayne Lee
author Smith, Wayne Lee
author_sort Smith, Wayne Lee
title An experimental study of the wall characteristics of a local fluid constriction plasma generator
title_short An experimental study of the wall characteristics of a local fluid constriction plasma generator
title_full An experimental study of the wall characteristics of a local fluid constriction plasma generator
title_fullStr An experimental study of the wall characteristics of a local fluid constriction plasma generator
title_full_unstemmed An experimental study of the wall characteristics of a local fluid constriction plasma generator
title_sort experimental study of the wall characteristics of a local fluid constriction plasma generator
publisher Virginia Polytechnic Institute and State University
publishDate 2017
url http://hdl.handle.net/10919/76137
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