ЕФЕКТИВНИЙ КОЕФІЦІЄНТ ТЕПЛОПРОВІДНОСТІ БІОПАЛИВ ЗА УМОВ ВИСОКОТЕМПЕРАТУРНОГО ЗНЕВОДНЕННЯ

The paper is devoted to determining the effective thermal conductivity coefficient of a mathematical model of high temperature drying biomass. The method of experimental research kinetics of drying and theoretical processing of the results is developed. The results of the research are presented. The...

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Datum:2018
1. Verfasser: Korinchuk, D.M.
Format: Artikel
Sprache:Ukrainian
Veröffentlicht: Institute of Engineering Thermophysics of NAS of Ukraine 2018
Online Zugang:https://ihe.nas.gov.ua/index.php/journal/article/view/288
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Назва журналу:Thermophysics and Thermal Power Engineering

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Thermophysics and Thermal Power Engineering
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author Korinchuk, D.M.
spellingShingle Korinchuk, D.M.
ЕФЕКТИВНИЙ КОЕФІЦІЄНТ ТЕПЛОПРОВІДНОСТІ БІОПАЛИВ ЗА УМОВ ВИСОКОТЕМПЕРАТУРНОГО ЗНЕВОДНЕННЯ
author_facet Korinchuk, D.M.
author_sort Korinchuk, D.M.
title ЕФЕКТИВНИЙ КОЕФІЦІЄНТ ТЕПЛОПРОВІДНОСТІ БІОПАЛИВ ЗА УМОВ ВИСОКОТЕМПЕРАТУРНОГО ЗНЕВОДНЕННЯ
title_short ЕФЕКТИВНИЙ КОЕФІЦІЄНТ ТЕПЛОПРОВІДНОСТІ БІОПАЛИВ ЗА УМОВ ВИСОКОТЕМПЕРАТУРНОГО ЗНЕВОДНЕННЯ
title_full ЕФЕКТИВНИЙ КОЕФІЦІЄНТ ТЕПЛОПРОВІДНОСТІ БІОПАЛИВ ЗА УМОВ ВИСОКОТЕМПЕРАТУРНОГО ЗНЕВОДНЕННЯ
title_fullStr ЕФЕКТИВНИЙ КОЕФІЦІЄНТ ТЕПЛОПРОВІДНОСТІ БІОПАЛИВ ЗА УМОВ ВИСОКОТЕМПЕРАТУРНОГО ЗНЕВОДНЕННЯ
title_full_unstemmed ЕФЕКТИВНИЙ КОЕФІЦІЄНТ ТЕПЛОПРОВІДНОСТІ БІОПАЛИВ ЗА УМОВ ВИСОКОТЕМПЕРАТУРНОГО ЗНЕВОДНЕННЯ
title_sort ефективний коефіцієнт теплопровідності біопалив за умов високотемпературного зневоднення
title_alt EFFECTIVE COEFFICIENT OF THERMAL CONDUCTIVITY OF BIOFUEL IN THE CONDITIONS OF HIGH-TEMPERATURE DRYING
description The paper is devoted to determining the effective thermal conductivity coefficient of a mathematical model of high temperature drying biomass. The method of experimental research kinetics of drying and theoretical processing of the results is developed. The results of the research are presented. The average value of the effective coefficient of thermal conductivity is calculated and the possibility of its application in calculations of high temperature drying of biomass is substantiated. The modeling of high-temperature drying of biomass and peat will allow developing and substantiat-ing the methods of intensification of the drying process, developing engineering methods for calculating the equipment and ensuring the creation of the most rational designs of drying plants. Increasing the accuracy of mathematical modeling requires conducting experimental studies and de-termining the value of the effective coefficient of thermal conductivity of materials in the dry zone, as well as the influence of the temperature regime and properties of biomass on its value. The aim of the work is to determine the effective coefficient of heat conductivity of biomass in con-ditions of high temperature drying in biofuel production technologies. The methodology of determination of the effective coefficient of thermal conductivity for use in cal-culations of drying process under the model of high temperature drying of biomass is developed. The article presents the results of an experimental study of the kinetics of high- temperature drying of biomass samples of pine, willow and poplar of flat form. The theoretical model of flat particle drying was developed and cal-culations of the process of high-temperature drying of flat bodies were conducted. According to the results of the research, the value of the effective coefficient of thermal conductivity for a series of experiments is de-termined by the method of minimizing the relative error of theoretical and experimental results. The average value of the effective coefficient of thermal conductivity is calculated and the its applicability in the calcula-tions of high temperature drying of biomass using the mathematical model is substantiated. Based on these studies, the validity of the provisions of the developed mathematical model is concluded. The results can be used to upgrade and optimize processes in aerodynamic dryers.
publisher Institute of Engineering Thermophysics of NAS of Ukraine
publishDate 2018
url https://ihe.nas.gov.ua/index.php/journal/article/view/288
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spelling oai:ojs2.ihenasgovua.s43.yourdomain.com.ua:article-2882018-12-14T18:58:03Z EFFECTIVE COEFFICIENT OF THERMAL CONDUCTIVITY OF BIOFUEL IN THE CONDITIONS OF HIGH-TEMPERATURE DRYING ЕФЕКТИВНИЙ КОЕФІЦІЄНТ ТЕПЛОПРОВІДНОСТІ БІОПАЛИВ ЗА УМОВ ВИСОКОТЕМПЕРАТУРНОГО ЗНЕВОДНЕННЯ Korinchuk, D.M. The paper is devoted to determining the effective thermal conductivity coefficient of a mathematical model of high temperature drying biomass. The method of experimental research kinetics of drying and theoretical processing of the results is developed. The results of the research are presented. The average value of the effective coefficient of thermal conductivity is calculated and the possibility of its application in calculations of high temperature drying of biomass is substantiated. The modeling of high-temperature drying of biomass and peat will allow developing and substantiat-ing the methods of intensification of the drying process, developing engineering methods for calculating the equipment and ensuring the creation of the most rational designs of drying plants. Increasing the accuracy of mathematical modeling requires conducting experimental studies and de-termining the value of the effective coefficient of thermal conductivity of materials in the dry zone, as well as the influence of the temperature regime and properties of biomass on its value. The aim of the work is to determine the effective coefficient of heat conductivity of biomass in con-ditions of high temperature drying in biofuel production technologies. The methodology of determination of the effective coefficient of thermal conductivity for use in cal-culations of drying process under the model of high temperature drying of biomass is developed. The article presents the results of an experimental study of the kinetics of high- temperature drying of biomass samples of pine, willow and poplar of flat form. The theoretical model of flat particle drying was developed and cal-culations of the process of high-temperature drying of flat bodies were conducted. According to the results of the research, the value of the effective coefficient of thermal conductivity for a series of experiments is de-termined by the method of minimizing the relative error of theoretical and experimental results. The average value of the effective coefficient of thermal conductivity is calculated and the its applicability in the calcula-tions of high temperature drying of biomass using the mathematical model is substantiated. Based on these studies, the validity of the provisions of the developed mathematical model is concluded. The results can be used to upgrade and optimize processes in aerodynamic dryers. Работа посвящена определению эффективного коэффициента теплопроводности математической модели высокотемпературной сушки биомассы. Разработана методика экспериментальных исследований кинетики сушки и теоретической обработки результатов. Представлены результаты исследования. Рассчитано среднее значение эффективного коэффициента теплопроводности и обоснована возможность применения его в расчетах высокотемпературной сушки биомассы. Робота присвячена визначенню ефективного коефіцієнту теплопровідності математичної моделі високотемпературного сушіння біомаси. Розроблено методику експериментальних досліджень кінетики сушіння та теоретичної обробки результатів. Представлені результати дослідження. Розраховано середнє значення ефективного коефіцієнту теплопровідності та обґрунтовано можливість застосування його в розрахунках високотемпературного сушіння біомаси. Institute of Engineering Thermophysics of NAS of Ukraine 2018-06-20 Article Article application/pdf https://ihe.nas.gov.ua/index.php/journal/article/view/288 10.31472/ihe.2.2018.07 Thermophysics and Thermal Power Engineering; Vol 40 No 2 (2018): Industrial Heat Engineering; 49-55 Теплофизика и Теплоэнергетика; Vol 40 No 2 (2018): Industrial Heat Engineering; 49-55 Теплофізика та Теплоенергетика; Vol 40 No 2 (2018): Industrial Heat Engineering; 49-55 2663-7235 uk https://ihe.nas.gov.ua/index.php/journal/article/view/288/232 Copyright (c) 2018 Industrial Heat Engineering http://creativecommons.org/licenses/by/4.0