Thermal Mode Optimization of Combustion Chamber Walls for Power-Plants Using Semitransparent Porous Ceramics

The paper examines control and management by thermal mode of the internal surface of heat-insulated combustion chamber walls for green & efficient diesel and gas turbine engines due to the application of opaque or semitransparent thermal barrier materials (coatings). The authors’ m...

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Main Authors: Vladimir G. Merzlikin, Andrei Bystrov, Vitaly Minashkin, Vladimir N. Marynenko, Fedor Zagumennov
Format: Article
Language:English
Published: MDPI AG 2020-03-01
Series:Coatings
Subjects:
Online Access:https://www.mdpi.com/2079-6412/10/3/252
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spelling doaj-e41e5088bbc841b9a82cb316b3c185d72020-11-25T02:08:43ZengMDPI AGCoatings2079-64122020-03-0110325210.3390/coatings10030252coatings10030252Thermal Mode Optimization of Combustion Chamber Walls for Power-Plants Using Semitransparent Porous CeramicsVladimir G. Merzlikin0Andrei Bystrov1Vitaly Minashkin2Vladimir N. Marynenko3Fedor Zagumennov4Plekhanov Russian University of Economics, Stremyanny, 36, Moscow 117997, RussiaPlekhanov Russian University of Economics, Stremyanny, 36, Moscow 117997, RussiaPlekhanov Russian University of Economics, Stremyanny, 36, Moscow 117997, RussiaMoscow Polytechnic University, Bolshaya Semenovskaya, 38, Moscow 111116, RussiaPlekhanov Russian University of Economics, Stremyanny, 36, Moscow 117997, RussiaThe paper examines control and management by thermal mode of the internal surface of heat-insulated combustion chamber walls for green &amp; efficient diesel and gas turbine engines due to the application of opaque or semitransparent thermal barrier materials (coatings). The authors&#8217; model is devoted to combined radiant heat transfer both inside the heat-insulated combustion chamber and its ceramics walls, which could be scattering and absorbing for penetrating radiant component in the subsurface volume of optically heterogeneous porous material. The influence of thermal conduction, scattering (absorption) and external convective effects on the increase of the internal overheating zone in subsurface layers is simulated under intensive radiation. The unique set of optical, thermal-physical and mechanical properties of structural ceramics, depending on their porosity, were first proposed. The radiation fields of the absorbed energy in the near IR region and the corresponding temperature distributions in the modeled opaque and semitransparent ceramics walls were calculated under a stationary radiant-convective heat load during the active combustion phase at time intervals 0.01&#8230;0.1 s (diesel engines) and 10...100 s (turbine ones). In order to control the emission of nitrogen oxides, the authors propose a generation model of NO<sub>x</sub>, its growth or reduction caused by the management of radiant overheating inside semitransparent heat-insulation in which surface temperature is due to volumetric radiant absorption. It is shown that for semitransparent materials (coatings), the optimal thermal mode is determined first of all by thermal radiant characteristics in near IR at heating small times and it begins to correct at long ones due to the effect of thermal conductivity. This process may be modeled and regulated by the selected microstructural porosity of ceramic heat insulation.https://www.mdpi.com/2079-6412/10/3/252semitransparentopaquecoatingabsorptionscatteringcombustion chambersubsurfaceoverheating
collection DOAJ
language English
format Article
sources DOAJ
author Vladimir G. Merzlikin
Andrei Bystrov
Vitaly Minashkin
Vladimir N. Marynenko
Fedor Zagumennov
spellingShingle Vladimir G. Merzlikin
Andrei Bystrov
Vitaly Minashkin
Vladimir N. Marynenko
Fedor Zagumennov
Thermal Mode Optimization of Combustion Chamber Walls for Power-Plants Using Semitransparent Porous Ceramics
Coatings
semitransparent
opaque
coating
absorption
scattering
combustion chamber
subsurface
overheating
author_facet Vladimir G. Merzlikin
Andrei Bystrov
Vitaly Minashkin
Vladimir N. Marynenko
Fedor Zagumennov
author_sort Vladimir G. Merzlikin
title Thermal Mode Optimization of Combustion Chamber Walls for Power-Plants Using Semitransparent Porous Ceramics
title_short Thermal Mode Optimization of Combustion Chamber Walls for Power-Plants Using Semitransparent Porous Ceramics
title_full Thermal Mode Optimization of Combustion Chamber Walls for Power-Plants Using Semitransparent Porous Ceramics
title_fullStr Thermal Mode Optimization of Combustion Chamber Walls for Power-Plants Using Semitransparent Porous Ceramics
title_full_unstemmed Thermal Mode Optimization of Combustion Chamber Walls for Power-Plants Using Semitransparent Porous Ceramics
title_sort thermal mode optimization of combustion chamber walls for power-plants using semitransparent porous ceramics
publisher MDPI AG
series Coatings
issn 2079-6412
publishDate 2020-03-01
description The paper examines control and management by thermal mode of the internal surface of heat-insulated combustion chamber walls for green &amp; efficient diesel and gas turbine engines due to the application of opaque or semitransparent thermal barrier materials (coatings). The authors&#8217; model is devoted to combined radiant heat transfer both inside the heat-insulated combustion chamber and its ceramics walls, which could be scattering and absorbing for penetrating radiant component in the subsurface volume of optically heterogeneous porous material. The influence of thermal conduction, scattering (absorption) and external convective effects on the increase of the internal overheating zone in subsurface layers is simulated under intensive radiation. The unique set of optical, thermal-physical and mechanical properties of structural ceramics, depending on their porosity, were first proposed. The radiation fields of the absorbed energy in the near IR region and the corresponding temperature distributions in the modeled opaque and semitransparent ceramics walls were calculated under a stationary radiant-convective heat load during the active combustion phase at time intervals 0.01&#8230;0.1 s (diesel engines) and 10...100 s (turbine ones). In order to control the emission of nitrogen oxides, the authors propose a generation model of NO<sub>x</sub>, its growth or reduction caused by the management of radiant overheating inside semitransparent heat-insulation in which surface temperature is due to volumetric radiant absorption. It is shown that for semitransparent materials (coatings), the optimal thermal mode is determined first of all by thermal radiant characteristics in near IR at heating small times and it begins to correct at long ones due to the effect of thermal conductivity. This process may be modeled and regulated by the selected microstructural porosity of ceramic heat insulation.
topic semitransparent
opaque
coating
absorption
scattering
combustion chamber
subsurface
overheating
url https://www.mdpi.com/2079-6412/10/3/252
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