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author A. V. Ovsyannik
V. P. Kliuchinski
author_facet A. V. Ovsyannik
V. P. Kliuchinski
author_sort A. V. Ovsyannik
collection DOAJ
description The article examines the possibility of increasing the efficiency of the turbo-expander cycles on low-boiling working fluids using those methods that are used for steam turbines, viz. increasing the parameters of the working fluid before the turbo-expander and using secondary overheating. Thus, four schemes of the turbo-expander cycle are considered: the one without overheating of the low-boiling working fluid, the one with single overheating of low-boiling fluid, the one with double overheating and the one with double overheating at supercritical parameters. All the studied cycles were considered with a heat exchanger at the outlet of the turbo expander, designed to heat the condensate of a low-boiling working fluid formed in the condenser of the turbo expander unit. Cycles in P–h coordinates were built for the studied schemes. The method of thermodynamic analysis of the studied cycles based on the exergetic efficiency has been developed. The results of the research are presented in the form of Grassman-Shargut diagrams, which show exergy losses in the elements of the studied cycles on a scale, and also show the positive effect of the operation of the turbo-expander cycle in the form of electrical power. The analysis of the obtained results showed that the main losses that have a significant impact on the exergy efficiency are the losses of exergy in the recovery boiler. The increase of parameters of low-boiling working body, and the use of intermediate superheating reduce losses in the waste heat boiler and, consequently, increases exergetic efficiency of turbo-expander cycle. The turbo-expander cycle with double overheating at supercritical parameters of the low-boiling fluid is of the largest exergetic efficiency out of the schemes that have been examined.
first_indexed 2024-04-10T02:51:46Z
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id doaj.art-16449842ba914d6682411cfd04cf960b
institution Directory Open Access Journal
issn 1029-7448
2414-0341
language Russian
last_indexed 2024-04-10T02:51:46Z
publishDate 2021-02-01
publisher Belarusian National Technical University
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series Izvestiâ Vysših Učebnyh Zavedenij i Ènergetičeskih ob Edinennij SNG. Ènergetika
spelling doaj.art-16449842ba914d6682411cfd04cf960b2023-03-13T07:41:52ZrusBelarusian National Technical UniversityIzvestiâ Vysših Učebnyh Zavedenij i Ènergetičeskih ob Edinennij SNG. Ènergetika1029-74482414-03412021-02-01641657710.21122/1029-7448-2021-64-1-65-771750Turbo-Expander Units on Low Boiling Working FluidsA. V. Ovsyannik0V. P. Kliuchinski1Гомельский государственный технический университет имени П. О. СухогоГомельский государственный технический университет имени П. О. СухогоThe article examines the possibility of increasing the efficiency of the turbo-expander cycles on low-boiling working fluids using those methods that are used for steam turbines, viz. increasing the parameters of the working fluid before the turbo-expander and using secondary overheating. Thus, four schemes of the turbo-expander cycle are considered: the one without overheating of the low-boiling working fluid, the one with single overheating of low-boiling fluid, the one with double overheating and the one with double overheating at supercritical parameters. All the studied cycles were considered with a heat exchanger at the outlet of the turbo expander, designed to heat the condensate of a low-boiling working fluid formed in the condenser of the turbo expander unit. Cycles in P–h coordinates were built for the studied schemes. The method of thermodynamic analysis of the studied cycles based on the exergetic efficiency has been developed. The results of the research are presented in the form of Grassman-Shargut diagrams, which show exergy losses in the elements of the studied cycles on a scale, and also show the positive effect of the operation of the turbo-expander cycle in the form of electrical power. The analysis of the obtained results showed that the main losses that have a significant impact on the exergy efficiency are the losses of exergy in the recovery boiler. The increase of parameters of low-boiling working body, and the use of intermediate superheating reduce losses in the waste heat boiler and, consequently, increases exergetic efficiency of turbo-expander cycle. The turbo-expander cycle with double overheating at supercritical parameters of the low-boiling fluid is of the largest exergetic efficiency out of the schemes that have been examined.https://energy.bntu.by/jour/article/view/2042тригенерацияфреонвторичные энергетические ресурсытепловые отходыэнергосбережениетермодинамическая эффективностьэксергетический анализперегрев рабочего теласверхкритические параметрыдиаграммы грассмана – шаргутапотери эксергиисовершаемая работапродукты сгоранияэлектрическая энергия
spellingShingle A. V. Ovsyannik
V. P. Kliuchinski
Turbo-Expander Units on Low Boiling Working Fluids
Izvestiâ Vysših Učebnyh Zavedenij i Ènergetičeskih ob Edinennij SNG. Ènergetika
тригенерация
фреон
вторичные энергетические ресурсы
тепловые отходы
энергосбережение
термодинамическая эффективность
эксергетический анализ
перегрев рабочего тела
сверхкритические параметры
диаграммы грассмана – шаргута
потери эксергии
совершаемая работа
продукты сгорания
электрическая энергия
title Turbo-Expander Units on Low Boiling Working Fluids
title_full Turbo-Expander Units on Low Boiling Working Fluids
title_fullStr Turbo-Expander Units on Low Boiling Working Fluids
title_full_unstemmed Turbo-Expander Units on Low Boiling Working Fluids
title_short Turbo-Expander Units on Low Boiling Working Fluids
title_sort turbo expander units on low boiling working fluids
topic тригенерация
фреон
вторичные энергетические ресурсы
тепловые отходы
энергосбережение
термодинамическая эффективность
эксергетический анализ
перегрев рабочего тела
сверхкритические параметры
диаграммы грассмана – шаргута
потери эксергии
совершаемая работа
продукты сгорания
электрическая энергия
url https://energy.bntu.by/jour/article/view/2042
work_keys_str_mv AT avovsyannik turboexpanderunitsonlowboilingworkingfluids
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